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Title:
2,4-PYRIMIDINEDIAMINE COMPOUNDS FOR USE IN THE TREATMENT OR PREVENTION OF AUTOIMMUNE DISEASES
Document Type and Number:
WIPO Patent Application WO/2005/016893
Kind Code:
A2
Abstract:
The present invention provides methods of treating or preventing autoimmune diseases with 2,4-pyrimidinediamine compounds, as well as methods of treating, preventing or ameliorating symptoms associated with such diseases. Specific examples of autoimmune diseases that can be treated or prevented with the compounds include rheumatoid arthritis and/or its associated symptoms, systemic lups erythematosis and/or its associated symptoms and multiple sclerosis and/or its associated symptoms.

Inventors:
RAJINDER SINGH (US)
ANKUSH ARGADE (US)
LI HUI (US)
BHAMIDIPATI SOMASEKHAR (US)
CARROLL DAVID (US)
SYLVAIN CATHERINE (US)
CLOUGH JEFFREY (US)
KEIM HOLGER (US)
Application Number:
PCT/US2004/024716
Publication Date:
February 24, 2005
Filing Date:
July 30, 2004
Export Citation:
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Assignee:
RIGEL PHARMACEUTICALS INC (US)
RAJINDER SINGH (US)
ANKUSH ARGADE (US)
LI HUI (US)
BHAMIDIPATI SOMASEKHAR (US)
CARROLL DAVID (US)
SYLVAIN CATHERINE (US)
CLOUGH JEFFREY (US)
KEIM HOLGER (US)
International Classes:
A61K31/505; A61K31/506; A61K31/538; A61K31/5415; A61K31/542; A61P37/00; C07D403/12; C07D405/12; C07D405/14; C07D413/02; C07D413/12; C07D413/14; C07D417/02; C07D417/12; C07D417/14; C07D498/02; C07D498/04; C07D498/06; (IPC1-7): C07D239/00
Domestic Patent References:
WO2002096888A12002-12-05
WO2000039101A12000-07-06
WO2003040141A12003-05-15
WO2003026664A12003-04-03
WO2003055489A12003-07-10
WO2003030909A12003-04-17
WO2003063794A22003-08-07
WO2004014382A12004-02-19
Other References:
None
Attorney, Agent or Firm:
Rothenberger, Scott D. (Suite 1500 50 South Sixth Stree, Minneapolis MN, US)
Download PDF:
Claims:
What is claimed is:
1. A 2,4 pyrimidinediamine compound according to structure: including salts, hydrates, solvates and Noxides thereof, wherein: Ll is a direct bond or a linker; L2 is a direct bond or a linker; X is selected from the group consisting of N and CH; Y is selected from the group consisting of 0, S, SO, SO2, SoNR36, NH, NR3s and NR37 ; Z is selected from the group consisting of 0, S, SO, SO2, SONR36, NH, NR35 and NR37 ; RS is selected from the group consisting of R6, (C1C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C1C4) alkanyl optionally substituted with one or more of the same or different R8 groups, (C2C4) alkenyl optionally substituted with one or more of the same or different R8 groups and (C2C4) alkynyl optionally substituted with one or more of the same or different R8 groups; each R6 independently is selected from the group consisting of hydrogen, an electronegative group, ORd, SRd, (C1C3) haloalkyloxy, (C1C3) perhaloalkyloxy, NRcRc, halogen, (C1C3) haloalkyl, (C1C3) perhaloalkyl,CF3,CH2CF3,CF2CF3,CN,NC,OCN, <BR> <BR> <BR> SCN, NO, NO2, N3, S(O)Rd, S(O)2Rd, S(O)2ORd, S(O)NRcRc ; S (0) 2NRcRc, OS(O)Rd, OS(O)2Rd, OS(O)2ORd, OS(O)NRcRc, OS(O)2NRcRc, C(O)Rd, C(O)ORd, C(O)NRcRc, C (NH) NRCRC,OC (O) Rd,SC (O) Rd, OC (O) ORd, SC (O) ORd, OC(O)NRcRc, SC(O)NRcRc, OC (NH) NRcRc, SC (NH) NRcRc, [NHC(O)]nRd, [NHC(O)]nORd, [NHC(O)]nNRcRc and [NHC (NH)],, NR"R (C5C10) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different groups, (C6C16) arylalkyl optionally substituted with one or more of the same or different groups, 510 membered heteroaryl optionally substituted with one or more of the same or different R8 groups and 616 membered heteroarylalkyl optionally substituted with one or more of the same or different W groups; R8 is selected from the group consisting of Ra, Rb, Ra substituted with one or more of the same or different Ra or Rb,ORa substituted with one or more of the same or different Ra or Rb,B (ORa) 2, B (NRcRc) 2, (CH2)mRb, (CHRa)mRb, O(CH2)mRb, S(CH2)mRb, OCHRaRb, OCRa(Rb)2, O(CHRa)mRb, O(CH2)mCH[(CH2)mRb]Rb, S(CHRa)mRb, C(O)NH(CH2)mRb, C(O)NH(CHRa)mRb, O(CH2)mC(O)NH(CH2)mRb, S(CH2)mC(O)NH(CH2)mRb, O(CHRa)mC(O)NH(CHRa)mRb, S(CHRa)mC(O)NH(CHRa)mRb, NH(CH2)mRb, NH(CHRa)mRb, NH[(CH2)mRb], N[(CH2)mRb]2, NHC(O)NH(CH2)mRb, NHC(O)(CH2)mCHRbRb and NH (CH2),,,C (0)NH (CH2R" ; each R31, independently of the others, is methyl or (ClC6) alkyl ; each R35 is, independently of the others, selected from the group consisting of hydrogen and R8, or, alternatively, two R35 bonded to the same carbon atom are taken together to form an oxo (=0), NH or NR38 group and the other two R35 are each, independently of one another, selected from the group consisting of hydrogen and R8 ; each R36 is independently selected from the group consisting of hydrogen and (C1C6) alkyl ; each R37 is independently selected from the group consisting of hydrogen and a progroup; R3g is selected from the group consisting of (C1C6) alkyl and (C5C14) aryl; each Ra is independently selected from the group consisting of hydrogen, (ClC6) alkyl, (C3C8) cycloalkyl, cyclohexyl, (C4C11) cycloalkylalkyl, (C5C10) aryl, phenyl, (C6C16) arylalkyl, benzyl, 26 membered heteroalkyl, 38 membered cycloheteroalkyl, morpholinyl, piperazinyl, homopiperazinyl, piperidinyl, 411 membered cycloheteroalkylalkyl, 510 membered heteroaryl and 616 membered heteroarylalkyl ; each Rb is a suitable group independently selected from the group consisting of =O, ORd, (C1C3) haloalkyloxy,OCF3, =S, SRd, =NRd, =NORd, NRcRc, halogen,CF3, CN, NC, OCN, SCN, NO, NO2, =N2, N3, S(O)Rd, S(O)2Rd, S(O)2ORd, S(O)NRcRc, S(O)2NRcRc, OS(O)Rd, OS(O)2Rd, OS(O)2ORd, OS(O)2NRcRc, C(O)Rd, C(O)ORd, C(O)NRcRc, C (NH) NRCRCC (NRa) NR'R',C (NOH) Ra,C (NOH) NRCRcrOC (O) Rd, OC(O)ORd, OC(O)NRcRc, OC (NH) NR'R',OC (NRa) NWRe, [NHC (O)],, R, [NRaC(O)]nRd, [NHC(O)]nORd, [NRaC(O)]nORd, [NHC(O)]nNRcRc, [NRaC(O)]nNRcRc, [NHC(NH)]nNrcRc and [NRaC(NRa)]nNRcRc ; each R° is independently a protecting group or Ra, or, alternatively, each Rc is taken together with the nitrogen atom to which it is bonded to form a 5 to 8membered cycloheteroalkyl or heteroaryl which may optionally include one or more of the same or different additional heteroatoms and which may optionally be substituted with one or more of the same or different Ra or suitable Rb groups; each Rd is independently a protecting group or Ra ; each m is independently an integer from 1 to 3; each n is independently an integer from 0 to 3; and yy is 1 through 6.
2. The compound of Claim 1 in which R5 is fluoro.
3. The compound of Claim 2 in which R6 is hydrogen.
4. The compound of Claim 1 in which Y and Z are each, independently of one another, selected from the group consisting of O and NH.
5. The compound of Claim 4 in which X is CH.
6. The compound of Claim 5 in which Y and Z are each 0.
7. The compound of Claim 6 in which each R35 is hydrogen.
8. The compound of Claim 5 in which Y is O and Z is NH.
9. A 2,4 pyrimidinediamine compound according to structure: including salts, hydrates, solvates and Noxides thereof, wherein: Ll is a direct bond or a linker; L2 is a direct bond or a linker; R2 is a disubstituted phenyl group with two Rb groups or R is a trisubstituted phenyl group with three Rb groups; X is selected from the group consisting of N and CH; Y is selected from the group consisting of 0, S, SO, SO2, SONR36, NH, NR35 and NR37 ; Z is selected from the group consisting of 0, S, SO, SO2, SONT36, NH, NR35 and NR37 ; R5 is selected from the group consisting of R6, (C1C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C1C4) alkanyl optionally substituted with one or more of the same or different R8 groups, (C2C4) alkenyl optionally substituted with one or more of the same or different R8 groups and (C2C4) alkynyl optionally substituted with one or more of the same or different R8 groups ; each R6 independently is selected from the group consisting of hydrogen, an electronegative group,ORd,SRd, (C1C3) haloalkyloxy, (C1C3) perhaloalkyloxy,NRCRC, halogen, (C1C3) haloalkyl, (C1C3) perhaloalkyl,CF3,CH2CF3,CF2CF3,CN,NC,OCN, <BR> <BR> SCN,NO,NO2,N3,S (O) Rd,S (0) 2Rd,S (0) 20Rd,S (O) NRCRC ; S (0) 2NRcRc, OS (O) Rd, OS(O)2Rd, OS(O)2ORd, OS(O)NRcRc, OS(O)2NRcRc, C(O)Rd, C(O)ORd, C(O)NRcRc, C (NH) NRCRC,OC (O) Rd, SC(O)Rd, OC(O)ORd, SC(O)ORd, OC(O)NRcRc, SC(O)NRcRc, OC (NH) NRCRC,SC (NH) NRcRc, [NHC(O)]nRd, [NHC(O)]nORd, [NHC(O)]nNRcRc and [NHC(NH)]nNRcRc, (C5C10) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R8 groups, (C6C16) arylalkyl optionally substituted with one or more of the same or different R8 groups, 510 membered heteroaryl optionally substituted with one or more of the same or different R8 groups and 616 membered heteroarylalkyl optionally substituted with one or more of the same or different R8 groups; R8 is selected from the group consisting of Ra, Rb, Ra substituted with one or more of the same or different Ra or Rb, ORa substituted with one or more of the same or different Ra or Rb, B(ORa)2, B(NRcRc)2, (CH2)mRb, (CHRa)mRb, O(CH2)mRb, S(CH2)mRb, OCHRaRb, OCRa(Rb)2, O(CHRa)mRb, O(CH2)mCH[(CH2)mRb]Rb, S(CHRa)mRb, C(O)NH(CH2)mRb, C(O)NH(CHRa)mRb, O(CH2)mC(O)NH(CH2)mRb, S(CH2)mC(O)NH(CH2)mRb, O(CHRa)mC(O)NH(CHRa)mRb, S(CHRa)mC(O)NH(CHRa)mRb, NH(CH2)mRb, NH(CHRa)mRb, NH[(CH2)mRb], N[(CH2)mRb]2, NHC(O)NH(CH2)mRb, NHC(O)(CH2)mCHRbRb and NH(CH2)mC(O)NH(CH2)mRb ; each R35 is, independently of the others, selected from the group consisting of hydrogen and R8, or, alternatively, two R35 bonded to the same carbon atom are taken together to form an oxo (=0), NH or NR38 group and the other two R35 are each, independently of one another, selected from the group consisting of hydrogen and R8 ; each R36 is independently selected from the group consisting of hydrogen and (C1C6) alkyl ; each R37 is independently selected from the group consisting of hydrogen and a progroup; R38 is selected from the group consisting of (C1C6) alkyl and (C5C14) aryl; each Ra is independently selected from the group consisting of hydrogen, (C1C6) alkyl, (C3C8) cycloalkyl, cyclohexyl, (C4C11) cycloalkylalkyl, (C5C10) aryl, phenyl, (C6C16) arylalkyl, benzyl, 26 membered heteroalkyl, 38 membered cycloheteroalkyl, morpholinyl, piperazinyl, homopiperazinyl, piperidinyl, 411 membered cycloheteroalkylalkyl, 510 membered heteroaryl and 616 membered heteroarylalkyl ; each Rb is a suitable group independently selected from the group consisting of =0,ORd, (C1C3) haloalkyloxy,OCF3, =S,SRd, =NRd, =NORd, NRcRc, halogen,CF3, <BR> <BR> <BR> CN,NC,OCN,SCN,NO,NO2, =N2,N3,S (O) Rd,S (0) 2Rd,S (0) 20Rd,S (O) NRCRC, S(O)2NRcRc, OS(O)Rd, OS(O)2Rd, OS(O)2ORd, OS(O)2NRcRc, C(O)Rd, C(O)ORd, C(O)NRcRc, C (NH) NRCRC)C (NRa) NRCRCpC (NOH) Ran ~C (NOH) NRcRc, OC (O) R, OC(O)ORd, OC(O)NRcRc, OC (NH) NRcRc, OC(NRa)NRcRc, [NHC(O)]nRd, [NRaC(O)]nRd, [NHC (O)] nORd, [NRaC(O)]nORd, [NHC(O)]nNRcRc, [NRaC(O)]nNRcRc, [NHC (NH) nNRCRC and [NRaC(NRa)]nNRcRc ; each R° is independently a protecting group or Ra, or, alternatively, each R° is taken together with the nitrogen atom to which it is bonded to form a 5 to 8membered cycloheteroalkyl or heteroaryl which may optionally include one or more of the same or different additional heteroatoms and which may optionally be substituted with one or more of the same or different Ra or suitable Rb groups; each Rd is independently a protecting group or Ra ; each m is independently an integer from 1 to 3; and each n is independently an integer from 0 to 3; with the provisio that N4 (2, 2Dimethyl3oxo4H5pyrid [1,4] oxazin6yl)N2 (3chloro4methoxyphenyl) 5fluoro2,4pyrimidinediamine ; N4 (2, 2Dimethyl3oxo4H5pyrid [1, 4] oxazin6yl)N2 (3, 5dimethoxyphenyl) 5 fluoro2, 4pyrimidinediamine; N2 (3, 4Dichlorophenyl)N4 (2, 2dimethyl3oxo4H5pyrid [l, 4] oxazin6yl)5 fluoro2, 4pyrimidinediamine ; N4 (2, 2dimethyl3oxo4H5pyrid [1, 4] oxazin6yl)N2 (3fluoro4methoxyphenyl) 5fluoro2, 4pyrimidinediamine ; N2 (3, 5Dichlorophenyl)N4 (2, 2dimethyl3oxo4H5pyrid [1, 4] oxazin6yl)5 fluoro2, 4pyrimidinediamine ; N2 (3Chloro4trifluoromethoxyphenyl)N4 (2, 2dimethyl3oxo4H5 pyrid [1, 4] oxazin6yl)5fluoro2, 4pyrimidinediamine; N2 (3Chloro4methoxy5methylphenyl)N4 (2, 2dimethyl3oxo4H5 pyrid [1, 4] oxazin6yl)5fluoro2, 4pyrimidinediamine ; N2 (3Chloro4hydroxy5methylphenyl)N4 (2, 2dimethyl3oxo4H5 pyrid [1, 4] oxazin6yl)5fluoro2, 4pyrimidinediamine ; and N2 (3, 5Dimethyl4methoxyphenyl)N4 (2, 2dimethyl3oxo4H5pyrid [1, 4] oxazin 6yl)5fluoro2, 4pyrimidinediamine are not included.
10. A compound according to the structural formula: and salts, hydrates, solvates, Noxides and prodrugs thereof, wherein: R2 is selected from the group consisting of (C1C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3C8) cycloalkyl optionally substituted with one or more of the same or different R groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 38 membered cycloheteroalkyl optionally substituted with one or more of the same or different R8 groups, (C5C15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R groups and 515 membered heteroaryl optionally substituted with one or more of the same or different R8 groups; R6a is (C5C10) aryl optionally substituted with one or more of the same or different R8 groups or phenyl optionally substituted with one or more of the same or different R8 groups; R8 is selected from the group consisting of Ra, Rb, Ra substituted with one or more of the same or different Ra or Rb,ORa substituted with one or more of the same or different Ra or Rb,B (ORa)2, B(NRcRc)2, (CH2)mRb, (CHRa)mRb, O(CH2)mRb, S(CH2)mRb, OCHRaRb, OCRa(Rb)2, O(CHRa)mRb, O (CH2)mCH[(CH2)mRB]RB, S(CHRa)mRb, (O) NH(CH2)mRb, C(O)NH(CHRa)mRb, O(CH2)mC(O)NH(CH2)mRb, S(CH2)mC(O)NH(CH2)mRb, O(CHRa)mC(O)NH(CHRa)mRb, S(CHRa)mC(O)NH(CHRa)mRb, NH(CH2)mRb, NH(CHRa)mRb, NH[(CH2)mRb], N[(CH2)mRb]2, NHC(O)NH(CH2)mRh, NHC(O)(CH2)mCHRbRb and NH(CH2)mC(O)NH(CH2)mRb; each Ra is independently selected from the group consisting of hydrogen, (C 1C6) alkyl, (C3C8) cycloalkyl, cyclohexyl, (C4Cl1) cycloalkylalkyl, (C5C10) aryl, phenyl, (C6C16) arylalkyl, benzyl, 26 membered heteroalkyl, 38 membered cycloheteroalkyl, morpholinyl, piperazinyl, homopiperazinyl, piperidinyl, 411 membered cycloheteroalkylalkyl, 510 membered heteroaryl and 616 membered heteroarylalkyl ; each Rb is a suitable group independently selected from the group consisting of =0, ORd, (C1C3) haloalkyloxy,OCF3, =S,SRd, =NRd, =NORd,NRCRC, halogen,CF3,CN, NC, OCN, SCN, NO, NO2, =N2, N3, S(O)Rd, S(O)2Rd, S(O)2ORd, S(O)NRcRc, S (0) 2NRCRC,OS (O) Rd,OS (0) 2Rd,OS (0) 20Rd,OS (0) 2NRCRC,C (O) Rd,C (O) ORd, C(O)NRcRc, C (NH) NRcRc, C (NRa) NR'R",C (NOH) Rac (NOH) NRcRc, OC(O)Rd, OC(O)ORd, OC(O)NRcRc, OC (NH) NRcRc,OC (NRa) NRcRc, [NHC(O)]nRd, [NRaC (O)] nRd, [NHC(O)]nORd, [NRaC(O)]nORd, [NHC(O)]nNRcRc, [NRaC(O)]nNRcRc, [NHC (NH)]nNRcRc and [NRaC(NRa)]nNRcRc ; each RA ils independently Ra, or, alternatively, each Rc is taken together with the nitrogen atom to which it is bonded to form a 5 to 8membered cycloheteroalkyl or heteroaryl which may optionally include one or more of the same or different additional heteroatoms and which is optionally substituted with one or more of the same or different Ra or suitable Rb groups; each Rd is independently Ra ; each m is independently an integer from 1 to 3; each n is independently an integer from 0 to 3; R35 is a hydrogen or a suitable R8 ; and R45 is a (C3C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups.
11. A compound according to the structural formula: and salts, hydrates, solvates and Noxides thereof, wherein: OR'2 21 \/ \ f R2 is selected from the group consisting of oR23, oR22 and SA R2', wherein each R21 is independently a halogen atom or an alkyl optionally substituted with one or more of the same or different halo groups, R22 and R23 are each, independently of one another, a hydrogen atom, methyl or ethyl optionally substituted with one or more of the same or different halo groups; R4 is a (C3C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups ; and W is selected from the group consisting of Ra, Rb, Ra substituted with one or more of the same or different Ra or Rb,ORa substituted with one or more of the same or different Ra or Rb,B (ORa) 2, B (NRCRC) 2, (CH2)mRb, (CHRa)mRB, O(CH2)mRb, S(CH2)mRb, OCHRaRb, OCRa(Rb)2, O(CHRa)mRb, O (CH2)mCH[(CH2)mRb]Rb, S(CHRa)mRb, C(O)NH(CH2)mRb, C(O)NH(CHRa)mRb, O(CH2)mC(O)NH(CH2)mRb, S(CH2)mC(O)NH(CH2)mRb, O(CHRa)mC(O)NH(CHRa)mRb, S(CHRa)mC(O)NH(CHRa)mRb, NH(CH2)mRb, NH(CHRa)mRb, NH[(CH2)mRb], N[(CH2)mRb]2, NHC(O)NH(CH2)mRb, NHC(O)(CH2)mCHRbRb and NH (CH2),, rC (0)NH (CH2).,R" ; each Ra is independently selected from the group consisting of hydrogen, (C1C6) alkyl, (C3C8) cycloalkyl, cyclohexyl, (C4C11) cycloalkylalkyl, (C5C10) aryl, phenyl, (C6C16) arylalkyl, benzyl, 26 membered heteroalkyl, 38 membered cycloheteroalkyl, morpholinyl, piperazinyl, homopiperazinyl, piperidinyl, 411 membered cycloheteroalkylalkyl, 510 membered heteroaryl and 616 membered heteroarylalkyl ; each Rb is a suitable group independently selected from the group consisting of=O, ORd, (C1C3) haloalkyloxy, OCF3, =S, SRd, =NRd, =NORd, NRcRc, halogen, CF3,CN, NC, OCN, SCN, NO, NO2, =N2, N3, S(O)Rd, S(O)2Rd, S(O)2ORd, S(O)NRcRc, S(O)2NRcRc, OS(O)Rd, OS(O)2Rd, OS(O)2ORd, OS(O)2NRcRc, C(O)Rd, C(O)ORd, C(O)NRcRc, C (NH) NRCRC)C (NRa) NRCRCnC (NOH) Ra,C (NOH) NRcRc, OC (O) R OC(O)ORd, OC(O)NRcRc, OC (NH) NRCRCOC (NRa) NRcRc, [NHC(O)]nRd, [NRaC(O)]nRd, [NHC(O)]nORd, [NRaC(O)]nORd, [NHC(O)]nNRcRc, [NRaC(O)]nNRcRc, [NHC(NH)]nNRcRc and [NRaC(NRa)]nNRcRc ; each R° is independently Ra, or, alternatively, each Rc is taken together with the nitrogen atom to which it is bonded to form a 5 to 8membered cycloheteroalkyl or heteroaryl which may optionally include one or more of the same or different additional heteroatoms and which is optionally substituted with one or more of the same or different Ra or suitable Rb groups; each Rd is independently Ra ; each m is independently an integer from 1 to 3; and each n is independently an integer from 0 to 3.
12. A compound according to the structural formula: and salts, hydrates, solvates and Noxides thereof, wherein: R2 is selected from the group consisting of (C1C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 38 membered cycloheteroalkyl optionally substituted with one or more of the same or different R8 groups, (C5C15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R8 groups and 515 membered heteroaryl optionally substituted with one or more of the same or different R8 groups; R4 is selected from the group consisting of hydrogen, (C 1C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 38 membered cycloheteroalkyl optionally substituted with one or more of the same or different R8 groups, (C5C15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R groups and 515 membered heteroaryl optionally substituted with one or more of the same or different R8 groups; and R8 is selected from the group consisting of Ra, Rb, Ra substituted with one or more of the same or different Ra or Rb,ORa substituted with one or more of the same or different Ra or Rb, B(ORa)2, B(NRcRc)2, (CH2)mRb, (CHRa)mRb, O(CH2)mRb, S(CH2)mRb, OCHRaRb, OCRa(Rb)2, O(CHRa)mRb, O (CH2)mCH[(CH2)mRb]Rb, S(CHRa)mRb, C(O)NH(CH2)mRb, C(O)NH(CHRa)mRb, O(CH2)mC(O)NH(CH2)mRb, S(CH2)mC(O)NH(CH2)mRb, O(CHRa)mC(O)NH(CHRa)mRb, S(CHRa)mC(O)NH(CHRa)mRb, NH(CH2)mRb, NH(CHRa)mRb, NH[CH2)mRb], N[(CH2)mRb]2, NHC(O)NH(CH2)mRb, NHC(O)(CH2)mCHRbRb and NH(CH2)mC(O)NH(CH2)mRb ; each Ra is independently selected from the group consisting of hydrogen, (C 1C6) alkyl, (C3C8) cycloalkyl, cyclohexyl, (C4C11) cycloalkylalkyl, (C5C10) aryl, phenyl, (C6C16) arylalkyl, benzyl, 26 membered heteroalkyl, 38 membered cycloheteroalkyl, morpholinyl, piperazinyl, homopiperazinyl, piperidinyl, 411 membered cycloheteroalkylalkyl, 510 membered heteroaryl and 616 membered heteroarylalkyl ; each Rb is a suitable group independently selected from the group consisting of =0, <BR> <BR> <BR> ORd, (C1C3) haloalkyloxy,OCF3, =S,SRd, =NRd, =NORd,NRCRC, halogen,CF3,CN,<BR> <BR> <BR> <BR> <BR> <BR> NC,OCN,SCN,NO,NO2, =N2,N3,S (O) Rd,S (0) 2Rd,S (0) 20Rd,S (O) NRCRC, S(O)2NRcRc, OS(O)Rd, OS(O)2Rd, OS(O)2ORd, OS(O)2NRcRc, C(O)Rd, C(O)ORd, C(O)NRcRc, C (NH) NR'R',C (NRa) NRCRCfC (NOH) RasC (NOH)NRcRc, OC(O)Rd, OC(O)ORd, OC(O)NRcRc, OC (NH) NR'R',OC (NRa) NRcRc, [NHC(O)]nRd, [NRaC (O)] nRd, [NHC (O) ]nORd, [NRaC(O)]nORd, [NHC(O)]nNRcRc, [NRaC(O)]nNRcRc, [NHC(NH)]nNRcRc and [NRaC(NRa)]nNRcRc ; each R° is independently Ra, or, alternatively, each Rc is taken together with the nitrogen atom to which it is bonded to form a 5 to 8membered cycloheteroalkyl or heteroaryl which may optionally include one or more of the same or different additional heteroatoms and which is optionally substituted with one or more of the same or different Ra or suitable Rb groups; each Rd is independently Ra ; each m is independently an integer from 1 to 3; each n is independently an integer from 0 to 3; and R55 is selected from the group consisting of (C1C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 38 membered cycloheteroalkyl optionally substituted with one or more of the same or different R8 groups, (C5C15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R8 groups and 515 membered heteroaryl optionally substituted with one or more of the same or different R8 groups.
13. A compound according to the structural formula: and salts, hydrates, solvates and Noxides thereof, wherein: R4 is selected from the group consisting of hydrogen, (C1C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 38 membered cycloheteroalkyl optionally substituted with one or more of the same or different R8 groups, (CSC15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R8 groups and 515 membered heteroaryl optionally substituted with one or more of the same or different R8 groups; and R8 is selected from the group consisting of Ra, Rb, Ra substituted with one or more of the same or different Ra or Rb,ORa substituted with one or more of the same or different Ra or Rb, B (ORa) 2,B (NRCRC) 2, (CH2)mRb, (CHRa)mRb, O(CH2)mRb, S(CH2)mRb, OCHRaRb, OCRa(Rb)2, O(CHRa)mRb, O(CH2)mCH[(CH2)mRb]Rb, S(CHRa)mRb, C(O)NH(CH2)mRb, C(O)NH(CHRa)mRb, O(CH2)mC(O)NH(CH2)mRb, S(CH2)mC(O)NH(CH2)mRb, O(CHRa)mC(O)NH(CHRa)mRb, S(CHRa)mC(O)NH(CHRa)mRb, NH(CH2)mRb, NH(CHRa)mRb, NH[(CH2)mRb], NL (CH2)".Rb] 2,NHC (O)NH (CH2) mRb,NHC (O) (CH2)".CHRbRb and NH(CH2)mC(O)NH(CH2)mRb; each Ra is independently selected from the group consisting of hydrogen, (C 1C6) alkyl, (C3C8) cycloalkyl, cyclohexyl, (C4C11) cycloalkylalkyl, (C5C10) aryl, phenyl, (C6C16) arylalkyl, benzyl, 26 membered heteroalkyl, 38 membered cycloheteroalkyl, morpholinyl, piperazinyl, homopiperazinyl, piperidinyl, 411 membered cycloheteroalkylalkyl, 510 membered heteroaryl and 616 membered heteroarylalkyl ; each Rb is a suitable group independently selected from the group consisting of=O, ORd, (C1C3) haloalkyloxy, OCF3, =S, SRd, =NRd, =NORd, NRcRc, halogen, CF3, CN, NC,OCN,SCN,NO,NO2, =N2,N3,S (O) Rd,S (0) 2Rd,S (0) 20Rd,S (O) NRCRC, S(O)2NRcRc, OS(O)Rd, OS(O)2Rd, OS(O)2ORd, OS(O)2NRcRc, C(O)Rd, C(O)ORd, C(O)NRcRc, C (NH) NRcRc, C (NRa) NR'R',C (NOH) Ra, C (NOH) NRCRC)OC (O) Rd, OC(O)ORd, OC(O)NRcRc, OC (NH) NRcRc, OC (NRa) NR°R°, [NHC (O)] nRd, [NRaC(O)]nRd, [NHC(O)]nORd, [NRaC(O)]nORd, [NHC(O)]nNRcRc, [NRaC(O)]nNRcRc, [NHC(NH)]nNRcRc and [NRaC(NRa)]nNRcRc ; each R° is independently Ra, or, alternatively, each R° is taken together with the nitrogen atom to which it is bonded to form a 5 to 8membered cycloheteroalkyl or heteroaryl which may optionally include one or more of the same or different additional heteroatoms and which is optionally substituted with one or more of the same or different Ra or suitable Rb groups; each Rd is independently Ra ; each m is independently an integer from 1 to 3; each n is independently an integer from 0 to 3; and each R35 individually is a hydrogen or R8.
14. A 2, 4pyrimidinediamine compound according to structure: and salts, hydrates, solvates and Noxides thereof, wherein R is a phenyl group or indazole group, substituted with one or more of the same R8 groups; Rus vis a fluorine atom; R6 is a hydrogen atom; R8 is selected from the group consisting of Ra, Rb, Ra substituted with one or more of the same or different Ra or Rb,ORa substituted with one or more of the same or different Ra or RbB (ORa)2, B(NRcRc)2, (CH2)mRb, (CHRa)mRb, O(CH2)mRb, S(CH2)mRb, OCHRaRb, OCRa(Rb)2, O(CHRa)mRb, O (CH2)mCH[(CH2)mRb]Rb, S(CHRa)mRb, C(O)NH(CH2)mRb, C(O)NH(CHRa)mRb, O(CH2)mC(O)NH(CH2)mRb, S(CH2)mC(O)NH(CH2)mRb, O(CHRa)mC(O)NH(CHRa)mRb, S(CHRa)mC(O)NH(CHRa)mRb, NH(CH2)mRb, NH(CHRa)mRb, NH[(CH2)mRb], N[(CH2)mRb]2, NHC(O)NH(CH2)mRb, NHC(O)(CH2)mCHRbRb and NH (CH2),,,C (0)NH (CH2) R' ; each Ra is independently selected from the group consisting of hydrogen, (C 1C6) alkyl, (C3C8) cycloalkyl, cyclohexyl, (C4C11) cycloalkylalkyl, (C5C10) aryl, phenyl, (C6C16) arylalkyl, benzyl, 26 membered heteroalkyl, 38 membered cycloheteroalkyl, morpholinyl, piperazinyl, homopiperazinyl, piperidinyl, 411 membered cycloheteroalkylalkyl, 510 membered heteroaryl and 616 membered heteroarylalkyl ; each Rb is a suitable group independently selected from the group consisting of=O, ORd, (C1C3) haloalkyloxy, =S,SRd, =NRd, =NORd, =NRcRc, halogen,CF3,CN,NC, OCN, SCN, NO, NO2, =N2, N3, S(O)Rd, S(O)2Rd, S(O)2ORd, S(O)NRcRc, S(O)2NRcRc, OS(O)Rd, OS(O)2Rd, OS(O)2ORd, OS(O)2NRcRc, C(O)Rd, C(O)ORd, C(O)NRcRc, C (NH) NR'R",C (NRa) NRcRc, C (NOH) Ra, C (NOH) NU'ROC (O) Rd,OC (O) OR, OC (O) NRCRCOC (NH) NRCRCxOC (NRa) NRcRc, [NHC(O)]nRd, [NRaC(O)]nRd, [NHC (O)] nORd, [NRaC (O)] nORd, [NHC (O)] nNRcRc, [NRaC(O)]nNRcRc, [NHC (NH)] nNRCRC and [NRaC(NRa)]nNRcRc ; each R° is independently a protecting group or Ra, or, alternatively, each Rc is taken together with the nitrogen atom to which it is bonded to form a 5 to 8membered cycloheteroalkyl or heteroaryl which may optionally include one or more of the same or different additional heteroatoms and which may optionally be substituted with one or more of the same or different Ra or suitable Rb groups; each Rd is independently an Ra ; each m is independently an integer from 1 to 3; and each n is independently an integer from 0 to 3.
15. The compound of Claim 14 in which R2 is a di or tri substituted phenyl group.
16. The compound of Claim 15 in which one or more of the W groups are selected from the group consisting of halogens and alkoxy groups.
17. The compound of Claim 16 in which the 2,4pyrimidinediamine compound is 1256,1257, 1258,1259 or 1260.
18. A 2, 4pyrimidinediamine compound according to structure: and salts, hydrates, solvates and Noxides thereof, wherein Nz NRss R is for phenyl substituted with one or more R8 groups ; R" O OXNX R4is H Rus vis a fluorine atom; R6 is a hydrogen atom; Rll and R12 are each, independently of one another, selected from the group consisting of hydrogen, alkyl, alkoxy, halogen, haloalkoxy, aminoalkyl and hydroxyalkyl ; R35 is hydrogen or R8 ; and R8 is selected from the group consisting of Ra, Rb, Ra substituted with one or more of the same or different Ra or Rb, ORa substituted with one or more of the same or different Ra or Rb, B (ORa) 2,B (NRCRC) 2, (CH2)mRb, (CHRa)mRb, O(CH2)mRB, S(CH2)mRb, OCHRaRb, OCRa(Rb)2, O(CHRa)mRb, O (CH2)mCH[(CH2)mRb]Rb, S(CHRa)mRb, C(O)NH(CH2)mRb, C(O)NH(CHRa)mRb, O(CH2)mC(O)NH(CH2)mRb, S(CH2)mC(O)NH(CH2)mRb, O(CHRa)mC(O)NH(CHRa)mRb, S(CHRa)mC(O)NH(CHRa)mRb, NH(CH2)mRb, NH(CHRa)mRb, NH[(CH2)mRb], N[(CH2)mRb]2, NHC(O)NH(CH2)mRb, NHC(O)(CH2)mCHRbRb and NH(CH2)mC(O)NH(CH2)mRb; each Ra is independently selected from the group consisting of hydrogen, (C 1C6) alkyl, (C3C8) cycloalkyl, cyclohexyl, (C4C11) cycloalkylalkyl, (C5C10) aryl, phenyl, (C6C16) arylalkyl, benzyl, 26 membered heteroalkyl, 38 membered cycloheteroalkyl, morpholinyl, piperazinyl, homopiperazinyl, piperidinyl, 411 membered cycloheteroalkylalkyl, 510 membered heteroaryl and 616 membered heteroarylalkyl ; each Rb is a suitable group independently selected from the group consisting of =0, ORd, (C1C3) haloalkyloxy, =S,SRd, =NRd, =NORd, NRcRc, halogen,CF3,CN,NC, OCN, SCN, NO, NO2, =N2, N3, S(O)Rd, S(O)2Rd, S(O)2ORd, S(O)NRcRc, S(O)2NRcRc, OS(O)Rd, OS(O)2Rd, OS(O)2ORd, OS(O)2NRcRc, C(O)Rd, C(O)ORd, C(O)NRcRc, C (NH) NR°R°,C (NRa) NRcRc, C (NOH) Ra,C (NOH) NRcRc, OC(O)Rd, OC(O)ORd, CRC OC (NH) NR'R',OC (NRa) NRcRc, [NHC(O)]nRd, [NRaC(O)]nRd, [NHC(O)]nORd, [NRaC(O)]nORd, [NHC(O)nNRcRc, [NRaC(O)]nNRcRc, [NHC (NH)]nNRcRc and [NRaC(NRa)]nNRcRc ; each R° is independently a protecting group or Ra, or, alternatively, each R° is taken together with the nitrogen atom to which it is bonded to form a 5 to 8membered cycloheteroalkyl or heteroaryl which may optionally include one or more of the same or different additional heteroatoms and which may optionally be substituted with one or more of the same or different Ra or suitable Rb groups; each Rd is independently an Ra ; each m is independently an integer from 1 to 3; and each n is independently an integer from 0 to 3.
19. The compound of claim 18 in which R35 is not a methyl group.
20. The compound of Claim 18 in which the 2, 4pyrimidinediamine compound is 1000,1001 or 1002..
21. A 2, 4pyrimidinediamine compound according to structure: and salts, hydrates, solvates and Noxides thereof, wherein is a fluorine atom; R6 is a hydrogen atom; Y is selected from the group consisting of 0, S, SO, SO2, SONR36, NH and NR37 ; Z is selected from the group consisting of 0, S, SO, SO2, SONAR36, NH and NR37 ; eac R35 is, independently of the others, selected from the group consisting of hydrogen and R8, or, alternatively, two R35 bonded to the same carbon atom are taken together to form an oxo (=0), NH or NR38 group and the other two R35 each, independently of one another, are selected from the group consisting of hydrogen and R8 ; R8 is selected from the group consisting of Ra, Rb, Ra substituted with one or more of the same or different Ra or Rb,ORa substituted with one or more of the same or different Ra or Rb, B (ORa) 2,B (NRcRc) 2, (CH2)mRb, (CHRa)mRb, O(CH2)mRb, S(CH2)mRb, OCHRaRb, OCRa(Rb)2, O(CHRa)mRb, O (CH2)mCH[(CH2)mRb]Rb, S(CHRa)mRb, C(O)NH(CH2)mRb, C(O)NH(CHRa)mRb, O(CH2)mC(O)NH(CH2)mRb, S(CH2)mC(O)NH(CH2)mRb, O(CHRa)mC(O)NH(CHRa)mRb, S(CHRa)mC(O)NH(CHRa)mRb, NH(CH2)mRb, NH(CHRa)mRb, NH[(CH2)mRb], N[(CH2)mRb]2, NHC(O)NH(CH2)mRb, NHC(O)(CH2)mCHRbRb and NH(CH2)mC(O)NH(CH2)mRb ; each Ra is independently selected from the group consisting of hydrogen, (C 1C6) alkyl, (C3C8) cycloalkyl, cyclohexyl, (C4C11) cycloalkylalkyl, (C5C10) aryl, phenyl, (C6C16) arylalkyl, benzyl, 26 membered heteroalkyl, 38 membered cycloheteroalkyl, morpholinyl, piperazinyl, homopiperazinyl, piperidinyl, 411 membered cycloheteroalkylalkyl, 510 membered heteroaryl and 616 membered heteroarylalkyl ; each Rb is a suitable group independently selected from the group consisting of=O, ORd, (C1C3) haloalkyloxy, =S,SRd, =NRd, =NORd, NRcRc, halogen, CF3,CN,NC, OCN, SCN, NO, NO2, =N2, N3, S(O)Rd, S(O)2Rd, S(O)2ORd, S(O)NRcRc, S(O)2NRcRc, OS(O)Rd, OS(O)2Rd, OS(O)2ORd, OS(O)2NRcRc, C(O)Rd, C(O)ORd, C(O)NRcRc, C (NH) NRCRcsC (NRa) NR°R°,C (NOH) Ra, C (NOH) NR°R°,OC (O) Rd, OC (O) ORd, OC(O)NRcRc, OC (NH) NRcRc, IOC(NRa)NRcRc, [NHC(O)]nRd, [NRaC(O)]nRd, [NHC(O)]nORd, [NRaC(O)]nORd, [NHC(O)]nNRcRc, [NRaC(O)]nNRcRc, [NHC (NH)] nNRCRC and [NRaC(NRa)]nNRcRc ; each R° is independently a protecting group or Ra, or, alternatively, each RA ils taken together with the nitrogen atom to which it is bonded to form a 5 to 8membered cycloheteroalkyl or heteroaryl which may optionally include one or more of the same or different additional heteroatoms and which may optionally be substituted with one or more of the same or different Ra or suitable Rb groups; each Rd is independently an Ra ; each m is independently an integer from 1 to 3; each n is independently an integer from 0 to 3; R36 is hydrogen or alkyl ; and R37 is selected from the group consisting of hydrogen and a progroup.
22. The compound of Claim 21 in which Y is oxygen, Z is NH and one or more R3s is an alkyl group.
23. The compound of Claim 21 in which R4 is.
24. The compound of Claim 21 in which R4 is.
25. The compound of Claim 21 in which Y is oxygen, Z is NH.
26. The compound of Claim 21 in which the 2,4pyrimidinediamine compound is 217,218, 219,220, 221,222, 223,224, 225,226, 227,228, 229,230, 231,232, 233,234, 236, 237,238, 239,240, 241,242, 243,244, 245,246, 247,1281, 1283,1283, 1284,1285, 1287, 1288, 1289,1290 or 1291.
27. A 2, 4pyrimidinediamine compound according to structure: and salts, hydrates, solvates and Noxides thereof, wherein wherein Y is 0, S, SO, SO2, SONR36, NH, NR37 ; or NR3s ; R4 is selected from the group consisting of (C1C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 38 membered cycloheteroalkyl optionally substituted with one or more of the same or different R8 groups, (C5C15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different W groups and 515 membered heteroaryl optionally substituted with one or more of the same or different R8 groups; Rs is a fluorine atom; R6 is a hydrogen atom; R8 is selected from the group consisting of Ra, Rb, Ra substituted with one or more of the same or different Ra or Rb,ORa substituted with one or more of the same or different Ra or Rb,B (ORa) 2, B (NRcRc) 2, (CH2)mRb, (CHRa)mRb, O(CH2)mRb, S(CH2)mRb, OCHRaRb, OCRa(Rb)2, O(CHRa)mRb, O (CH2)mCH[(CH2)mRb]Rb, S(CHRa)mRb, C(O)NH(CH2)mRb, C(O)NH(CHRa)mRb, O(CH2)mC(O)NH(CH2)mRb, S(CH2)mC(O)NH(CH2)mRb, O(CHRa)mC(O)NH(CHRa)mRb, S(CHRa)mC(O)NH(CHRa)mRb, NH(CH2)mRb, NH(CHRa)mRb, NH[(CH2)mRb], N[(CH2)mRb]2, NHC(O)NH(CH2)mRb, NHC(O)(CH2)mCHRbRb and NH(CH2)mC(O)NH(CH2)mRb ; each Ra is independently selected from the group consisting of hydrogen, (C 1C6) alkyl, (C3C8) cycloalkyl, cyclohexyl, (C4C11) cycloalkylalkyl, (C5C10) aryl, phenyl, (C6C16) arylalkyl, benzyl, 26 membered heteroalkyl, 38 membered cycloheteroalkyl, morpholinyl, piperazinyl, homopiperazinyl, piperidinyl, 411 membered cycloheteroalkylalkyl, 510 membered heteroaryl and 616 membered heteroarylalkyl ; each Rb is a suitable group independently selected from the group consisting of=O, ORd, (C1C3) haloalkyloxy, =S,SRd, =NRd, =NORd, NRcRc, halogen, CF3, CN, NC, OCN, SCN, NO, NO2, =N2, N3, S(O)Rd, S(O)2Rd, S(O)2ORd, S(O)NRcRc, S(O)2NRcRc, OS(O)Rd, OS(O)2Rd, OS(O)2ORd, OS(O)2NRcRc, C(O)Rd, C(O)ORd, C(O)NRcRc, C (NH) NRcRc, C(NRa)NRcRc, C (NOH) Ra,C (NOH) NU'ROC (O) Rd,OC (O) ORd) OC(O)NRcRc, OC (NH) NRCRCpOC (NRa) NRcRc, [NHC(O)]nRd, [NRaC(O)]nRd, [NHC(O)]nORd, [NRaC(O)]nORd, [NHC(O)nNRcRc, [NRaC(O)]nNRcRc, [NHC(NH)]nNRcRc and [NRaC(NRa)]nNRcRc ; each Rc is independently a protecting group or Ra, or, alternatively, each Rc is taken together with the nitrogen atom to which it is bonded to form a 5 to 8membered cycloheteroalkyl or heteroaryl which may optionally include one or more of the same or different additional heteroatoms and which may optionally be substituted with one or more of the same or different Ra or suitable Rb groups; each Rd is independently an Ra ; each m is independently an integer from 1 to 3; each ra is independently an integer from 0 to 3; R35 is hydrogen or R8 ; R36 is hydrogen or alkyl ; and R37 is selected from the group consisting of hydrogen and a progroup.
28. The compound of Claim 27 in which the 2,4pyrimidinediamine compound is 1070,1071, 1073,1074, 1075,1076, 1078, 1080, 1085,1091 or 1092.
29. A 2,4pyrimidinediamine compound according to structure: and salts, hydrates, solvates and Noxides thereof, wherein R is selected from the group consisting of (C 1C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 38 membered cycloheteroalkyl optionally substituted with one or more of the same or different R8 groups, (C5C15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R8 groups and 515 membered heteroaryl optionally substituted with one or more of the same or different W groups ; t5 is a fluorine atom; R6 is a hydrogen atom; and R is selected from the group consisting of Ra, Rb, Ra substituted with one or more of the same or different Ra or Rb,ORa substituted with one or more of the same or different Ra or Rb,B (ORa)2, B(NRcRc)2, (CH2)mRb, (CHRa)mRb, O(CH2)mRb, S(CH2)mRb, OCHRaRb, OCRa(Rb)2, O(CHRa)mRb, O (CH2)mCH[(CH2)mRb]Rb, S(CHRa)mRb, C(O)NH(CH2)mRb, C(O)NH(CHRa)mRb, O(CH2)mC(O)NH(CH2)mRb, S(CH2)mC(O)NH(CH2)mRb, O(CHRa)mC(O)NH(CHRa)mRb, S(CHRa)mC(O)NH(CHRa)mRb, NH(CH2)mRb, NH((CHRa)mRb, NH[(CH2)mRb], N[(CH2)mRb]2, NHC(O)NH(CH2)mRb, NHC(O)(CH2)mCHRbRb and NH (CH2) mC (O)NH (CH2) Rb ; each Ra is independently selected from the group consisting of hydrogen, (C1C6) alkyl, (C3C8) cycloalkyl, cyclohexyl, (C4C11) cycloalkylalkyl, (C5C10) aryl, phenyl, (C6C16) arylalkyl, benzyl, 26 membered heteroalkyl, 38 membered cycloheteroalkyl, morpholinyl, piperazinyl, homopiperazinyl, piperidinyl, 411 membered cycloheteroalkylalkyl, 510 membered heteroaryl and 616 membered heteroarylalkyl ; each Rb is a suitable group independently selected from the group consisting of =0, ORd, (C1C3) haloalkyloxy, OCF3, =S, SRD, =NRd, =NORd, NRcRc, halogen, CF3,CN, NC, OCN, SCN, NO, NO2, =N2, N3, S(O)Rd, S(O)2Rd, S(O)2ORd, S(O)NRcRc S(O)2NRcRc, OS(O)Rd, OS(O)2Rd, OS(O)2ORd, OS(O)2NRcRc, C(O)Rd, C(O)ORd, C(O)NRcRc, C (NH) NRCR¢nC (NRa) NIeW,C (NOH) RasC (NOH) NRcRc, OC (O) Rd, OC(O)ORd, OC(O)NRcRc, OC (NH) NRcRc, OC (NRa) NRcRc, [NHC(O)]nRd, [NRaC (O)] nRd, [NHC(O)]nORd, [NRaC(O)]nORd, [NHC(O)]nNRcRc, [NRaC(O)]nNRcRc, [NHC(NH)]nNRcRc and [NRaC(NRa)]nNRcRc ; each R° is independently a protecting group or Ra, or, alternatively, each Rc is taken together with the nitrogen atom to which it is bonded to form a 5 to 8membered cycloheteroalkyl or heteroaryl which may optionally include one or more of the same or different additional heteroatoms and which may optionally be substituted with one or more of the same or different Ra or suitable Rb groups; each Rd is independently a protecting group or Ra ; each m is independently an integer from 1 to 3; and each n is independently an integer from 0 to 3. Ras _, Ra 30.
30. The compound of Claim 29 in which R is e, and each and R48 independently is selected from the group consisting of a hydrogen, alkyl, alkoxy, hydroxyl, halogen, isoxazole, piperazino, Nalkyl piperazine, morpholino and CH3NHC (O) CH20, with the proviso that R46, e and R48 are all not hydrogen and when one of R46, R47 or R48 is isoxazole, piperazino, Nalkyl piperazine, morpholino or CH3NHC (O) CH20, then the remaining R46, R47 or R48 are hydrogen.
31. The compound of Claim 29 in which Fl= R2' ORS W is selected from the group consisting of OR', R2 and OR" OR' oye ; and each R21, R22 and R23 are each, independently of one another, an alkyl group.
32. The compound of claim 31 in which R22 and R23 or R21 and R22 or R21, R22 and R23 are each methyl groups.
33. A 2,4pyrimidinediamine compound according to structure: and salts, hydrates, solvates and Noxides thereof, wherein R 210 R2 T T) R4 is selected from the group consisting of RZB R35 Ras O \ Meea 0 Me p Raz R35 w R H H and R,, H H, 3. nci O O N N. S H R5 is a fluorine atom; R6 is a hydrogen atom; R8 is selected from the group consisting of Ra, Rb, Ra substituted with one or more of the same or different Ra or Rb, ORa substituted with one or more of the same or different Ra or Rb,B (ORa) 2, B (NRcRc(2, (CH2)mRb, (CHRa)mRb, O(CH2)mRb, S(CH2)mRb, OCHRaRb, OCRa(Rb)2, O(CHRa)mRb, O (CH2)mCH[(CH2)mRb]Rb, S(CHRa)mRb, C(O)NH(CH2)mRb, C(O)NH(CHRa)mRb, O(CH2)mC(O)NH(CH2)mRb, S((CH2)mC(O)NH(CH2)mRb, O(CHRa)mC(O)NH(CHRa)mmRb, S(CHRa)mC(O)NH(CHRa)mRb, NH(CH2)mRb, NH(CHRa)mRb, NH[(CH2)mRb], N[(CH2)mRb]2, NHC(O)NH(CH2)mRb, NHC(O)(CH2)mCHRbRb and NH(CH2) mC (O)NH(CH2) mRb ; R21 is an alkyl group; R23 is an alkyl group; each R28 individually is a halogen or alkoxy; R29 is a (C1C6) alkyl or (C3C9) cycloalkyl ; X is selected from the group consisting of N and CH Y is selected from the group consisting of 0, S, SO, SO2, SONR36, NH and NR37 ; Z is selected from the group consisting of 0, S, SO, SO2, SoNR36, NH and NR37v each R35 is, independently of the others, selected from the group consisting of hydrogen and R8, or, alternatively, two R35 bonded to the same carbon atom are taken together to form an oxo (=0), NH or NR38 group and the other two R35 each, independently of one another, are selected from the group consisting of hydrogen and R8 ; each R36 is independently selected from the group consisting of hydrogen and (C1C6) alkyl ; each R37 is independently selected from the group consisting of hydrogen and a progroup; R38 is selected from the group consisting of (C1C6) alkyl and (CSC14) aryl; each Ra is independently selected from the group consisting of hydrogen, (C1C6) alkyl, (C3C8) cycloalkyl, cyclohexyl, (C4C11) cycloalkylalkyl, (C5C10) aryl, phenyl, (C6C16) arylalkyl, benzyl, 26 membered heteroalkyl, 38 membered cycloheteroalkyl, morpholinyl, piperazinyl, homopiperazinyl, piperidinyl, 411 membered cycloheteroalkylalkyl, 510 membered heteroaryl and 616 membered heteroarylalkyl ; each Rb is a suitable group independently selected from the group consisting of =0, ORd, (C1C3) haloalkyloxy, OCF3, =S, SRd, =NRd, =NORd, NRcRc, halogen, CF3, CN, NC, OCN, SCN, NO, NO2, =N2, N3, S(O)Rd, S(O)2Rd, S(O)2ORd, S(O)NRcRc, S(O)2NRcRc, OS(O)Rd, OS(O)2Rd, OS(O)2ORd, OS(O)2NRcRc, C(O)Rd, C(O)ORd, C(O)NRcRc, C (NH) NRCRCC (NRa) NR'R',C (NOH) Ra,C (NOH) NR°R°,OC (O) Rd, OC(O)ORd, OC(O)NRcRc, OC (NH) NRCRC,OC (NRa) NRcRc, [NHC(O)]nRd, [NRaC(O)]nRd, [NHC(O)]nORd, [NRaC(O)]nORd, [NHC(O)]nNRcRc, [NRaC(O)]nNRcRc, [NHC (NH)]nNRcRc and [NRaC(NRa)]nNRcRc ; each R is independently a protecting group or Ra, or, alternatively, each Rc is taken together with the nitrogen atom to which it is bonded to form a 5 to 8membered cycloheteroalkyl or heteroaryl which may optionally include one or more of the same or different additional heteroatoms and which may optionally be substituted with one or more of the same or different Ra or suitable Rb groups; each Rd is independently a protecting group or Ra ; each m is independently an integer from 1 to 3; and each n is independently an integer from 0 to 3.
34. The compound of claim 33 in which R28 is a methoxy.
35. The compound of claim 33 in which Wl is a methyl group.
36. The compound of claim 33 in which each R28 is a chlorine.
37. The compound of claim 33 in which R21 is a methyl group and R28 is a chlorine.
38. A 2, 4pyrimidinediamine compound according to structure: and salts, hydrates, solvates and Noxides thereof, wherein 0 Rss N_ v'N \ N \N/P I Rsz R ? in 2 1 O N R is or ; R210 Rze R4 is selected from the group consisting of and, Rus Y Rss R35 R3sX X) Rss ; R5 is a fluorine atom; R6 is a hydrogen atom; R8 is selected from the group consisting of Ra, Rb, Ra substituted with one or more of the same or different Ra or Rb,ORa substituted with one or more of the same or different Ra or Rb, B(ORa)2, B(NRcRc)2, (CH2)mRb, (CHRa)mRb, O(CH2)mRb, S(CH2)mRb, OCHRaRb, OCRa(Rb)2, O(CHRa)mRb, O (CH2)mCH[(CH2)mRb]Rb, S(CHRa)mRb, C(O)NH(CH2)mRb, C(O)NH(CHRa)mRb, O(CH2)mC(O)NH(CH2)mRb, S(CH2)mC(O)NH(CH2)mRb, O(CHRa)mC(O)NH(CHRa)mRb, S(CHRa)mC(O)NH(CHRa)mRb, NH(CH2)mRb, NH(CHRa)mRb, NH[(CH2)mRb], N[(CH2)mRb]2, NHC(O)NH(CH2)mRb, NHC(O)(CH2)mCHRbR b and NH(CH2)mC(O)NH(CH2)mRb; Rl is an alkyl group; each W8 individually is a halogen or alkoxy; X is selected from the group consisting of N and CH Y is selected from the group consisting of 0, S, SO, SO2, SONT36, NH and NR37; Z is selected from the group consisting of 0, S, SO, SO2, SONR36, NH and NR37; each R3s is, independently of the others, selected from the group consisting of hydrogen and R8, or, alternatively, two R35 bonded to the same carbon atom are taken together to form an oxo (=0), NH or NR38 group and the other two R35 each, independently of one another, are selected from the group consisting of hydrogen and R8 ; each R36 is independently selected from the group consisting of hydrogen and (C1C6) alkyl ; each R37 is independently selected from the group consisting of hydrogen and a progroup; Rg is selected from the group consisting of (C1C6) alkyl and (C5C14) aryl; each Ra is independently selected from the group consisting of hydrogen, (C1C6) alkyl, (C3C8) cycloalkyl, cyclohexyl, (C4C11) cycloalkylalkyl, (CSC10) aryl, phenyl, (C6C16) arylalkyl, benzyl, 26 membered heteroalkyl, 38 membered cycloheteroalkyl, morpholinyl, piperazinyl, homopiperazinyl, piperidinyl, 411 membered cycloheteroalkylalkyl, 510 membered heteroaryl and 616 membered heteroarylalkyl ; each Rb is a suitable group independently selected from the group consisting of =0, ORd, (C1C3) haloalkyloxy,OCF3, =S,SRd, =NRd, =NORd,NRCRC, halogen,CF3,CN, NC, OCN, SCN, NO, NO2, =N2, N3, S(O)Rd, S(O)2Rd, S(O)2ORd, S(O)NRcRc, S(O)2NRcRc, OS(O)Rd, OS(O)2Rd, OS(O)2ORd, OS(O)2NRcRc, C(O)Rd, C(O)ORd, C(O)NRcRc, C (NH) NRCRC,C (NRa) NR'R',C (NOH) Ra,C (NOH) NRcRc, OC (O) Rd, OC(O)ORd, OC(O)NRcRc, OC (NH) NR'R',OC (NRa) NRcRc, [NHC(O)]nRd, [N (0) ]nRd, [NHC(O)]nORd, [NRaC(O)]nORd, [NHC(O)]nNRcRc, [NRaC(O)]nNRcRc, [NHC(NH)]nNRcRc and [NRaC(NRa)]nNRcRc ; each Rc is independently a protecting group or Ra, or, alternatively, each R° is taken together with the nitrogen atom to which it is bonded to form a 5 to 8membered cycloheteroalkyl or heteroaryl which may optionally include one or more of the same or different additional heteroatoms and which may optionally be substituted with one or more of the same or different Ra or suitable Rb groups; each Rd is independently a protecting group or Ra ; each m is independently an integer from 1 to 3; each n is independently an integer from 0 to 3; p is 1, 2 or 3 ; R50 is an alkyl group or (CH2) qOH; q is an integer from 1 to 6; and R52 is an alkyl group or a substituted alkyl group.
39. The compound of claim 38 in which R21 is a methyl group.
40. The compound of claim 38 in which each R28 is a chlorine.
41. The compound of claim 38 in which Ral is a methyl group and W8 is a chlorine.
42. The compound of claim 3 8 in which R50 isCH2CH20H.
43. The compound of claim 38 in which R52 is trifluoromethyl.
44. The compound of claim 38 in which R50 is a methyl group.
45. The compound of claim 3 8 in which each R28 is a chlorine.
46. The compound of claim 38 in which R50 is a methyl group and R28 is a chlorine.
47. A 2,4pyrimidinediamine compound according to structure: and salts, hydrates, solvates and Noxides thereof, wherein R4 is a cycloalkyl ; R5 is a fluorine atom; R6 is a hydrogen atom; R21 is an alkyl group; and Wo is an alkyl group or a halogen.
48. The compound of claim 47 in which Wl is a methyl group.
49. The compound of any one of Claims 148 further comprising a pharmaceutically acceptable carrier, diluent or excipient.
50. A method of treating or preventing an autoimmune disease and/or one or more symptoms associated therewith, comprising the step of administering to a subject suffering from an autoimmune disease or at risk of developing an autoimmune disease an effective amount of a 2,4pyrimidinediamine compound according to any one of Claims 149.
Description:
METHODS OF TREATING OR PREVENTING AUTOIMMUNE DISEASES WITH 2, 4-PYRIMIDINEDIAMINE COMPOUNDS 1. CROSS REFERENCE TO RELATED APPLICATION This application claims benefit under 35 U. S. C. § 119 (e) to application Serial No.

60/491, 641, filed July 30,2003 (attorney docket No. 28575/US/US/2), Serial No.

60/531,598, filed December 19,2003 (attorney docket No. 28575/US/8) and Serial No.

60/572,246, filed May 18,2004 (attorney docket No. 28575/US/9).

2. FIELD OF THE INVENTION The present invention relates generally to 2, 4-pyrimidinediamine compounds, pharmaceutical compositions comprising the compounds, intermediates and synthetic methods of making the compounds and methods of using the compounds and compositions in a variety of contexts, such as in the treatment or prevention of autoimmune diseases and/or the symptoms associated therewith.

3. BACKGROUND OF THE INVENTION Crosslinking of Fc receptors, such as the high affinity receptor for IgE (FccRI) and/or the high affinity receptor for IgG (FcyRI) activates a signaling cascade in mast, basophil and other immune cells that results in the release of chemical mediators responsible for numerous adverse events. For example, such crosslinking leads to the release of preformed mediators of Type I (immediate) anaphylactic hypersensitivity reactions, such as histamine, from storage sites in granules via degranulation. It also leads to the synthesis and release of other mediators, including leukotrienes, prostaglandins and platelet-activating factors (PAFs), that play important roles im'inflammatory reactions.

Additional mediators that are synthesized and released upon crosslinking Fc receptors include cytokines and nitric oxide.

The signaling cascade (s) activated by crosslinking Fc receptors such as FceRI and/or FcRI comprises an array of cellular proteins. Among the most important intracellular signal propagators are the tyrosine kinases. And, an important tyrosine kinase involved in the signal transduction pathways associated with crosslinking the FceRI and/or FcyRI

receptors, as well as other signal transduction cascades, is Syk kinase (see Valent et al., 2002, Irate. J. Hemato. 75 (4): 257-362 for review).

As the mediators released as a result of FcERI and FCYRI receptor cross-linking are responsible for, or play important roles in, the manifestation of numerous adverse events, the availability of compounds capable of inhibiting the signaling cascade (s) responsible for their release would be highly desireable. Moreover, owing to the critical role that Syk kinase plays these and other receptor signaling cascade (s), the availability of compounds capable of inhibiting Syk kinase would also be highly desirable.

4. SUMMARY OF THE INVENTION In one aspect, the present invention provides novel 2,4-pyrimidinediamine compounds that, as will be discussed in more detail below, have myriad biological activities. The compounds generally comprise a 2,4-pyrimidinediamine"core"having the following structure and numbering convention: The compounds of the invention are substituted at the C2 nitrogen (N2) to form a secondary amine and are optionally further substituted at one or more of the following positions: the C4 nitrogen (N4), the C5 position and/or the C6 position. When substituted at N4, the substituent forms a secondary amine. The substituent at N2, as well as the optional substituents at the other positions, may range broadly in character and physico- chemical properties. For example, the substituent (s) may be a branched, straight-chained or cyclic alkyl, a branched, straight-chained or cyclic heteroalkyl, a mono-or polycyclic aryl a mono-or polycyclic heteroaryl or combinations of these groups. These substituent groups may be further substituted, as will be described in more detail below.

The N2 and/or N4 substituents may be attached directly to their respective nitrogen atoms, or they may be spaced away from their respective nitrogen atoms via linkers, which may be the same or different. The nature of the linkers can vary widely, and can include virtually any combination of atoms or groups useful for spacing one molecular moiety from another. For example, the linker may be an acyclic hydrocarbon bridge (e. g, a saturated or

unsaturated alkyleno such as methano, ethano, etheno, propano, prop [l] eno, butano, but [1] eno, but [2] eno, buta [1, 3] dieno, and the like), a monocyclic or polycyclic hydrocarbon bridge (e. g., [1, 2] benzeno, [2,3] naphthaleno, and the like), a simple acyclic heteroatomic or heteroalkyldiyl bridge (e. g,-O-,-S-,-S-O-,-NH-,-PH-,-C (O)-,-C (O) NH-, -S (O)-,-S (O) 2-, -S (O) NH-, -S (O) 2NH-,-O-CH2-,-CH2-O-CH2-,-O-CH=CH-CH2-, and the like), a monocyclic or polycyclic heteroaryl bridge (e. g. , [3,4] furano, pyridino, thiopheno, piperidino, piperazino, pyrazidino, pyrrolidino, and the like) or combinations of such bridges.

The substituents at the N2, N4, C5 and/or C6 positions, as well as the optional linkers, may be further substituted with one or more of the same or different substituent groups. The nature of these substituent groups may vary broadly. Non-limiting examples of suitable substituent groups include branched, straight-chain or cyclic alkyls, mono-or polycyclic aryls, branched, straight-chain or cyclic heteroalkyls, mono-or polycyclic heteroaryls, halos, branched, straight-chain or cyclic haloalkyls, hydroxyls, oxos, thioxos, branched, straight-chain or cyclic alkoxys, branched, straight-chain or cyclic haloalkoxys, trifluoromethoxys, mono-or polycyclic aryloxys, mono-or polycyclic heteroaryloxys, ethers, alcohols, sulfides, thioethers, sulfanyls (thiols), imines, azos, azides, amines (primary, secondary and tertiary), nitriles (any isomer), cyanates (any isomer), thiocyanates (any isomer), nitrosos, nitros, diazos, sulfoxides, sulfonyls, sulfonic acids, sulfamides, sulfonamides, sulfamic esters, aldehydes, ketones, carboxylic acids, esters, amides, amidines, formadines, amino acids, acetylenes, carbamates, lactones, lactams, glucosides, gluconurides, sulfones, ketals, acetals, thioketals, oximes, oxamic acids, oxamic esters, etc., and combinations of these groups. Substituent groups bearing reactive functionalities may be protected or unprotected, as is well-known in the art.

In one illustrative embodiment, the 2, 4-pyrimidinediamine compounds of the invention are compounds according to structural formula (I) :

including salts, hydrates, solvates and N-oxides thereof, wherein: Ll and L2 are each, independently of one another, selected from the group consisting of a direct bond and a linker; R2 and R4 are. described infra ; Rs is selected from the group consisting of R6, (C1-C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C1-C4) alkanyl optionally substituted with one or more of the same or different R8 groups, (C2-C4) alkenyl optionally substituted with one or more of the same or different R8 groups and (C2-C4) alkynyl optionally substituted with one or more of the same or different R8 groups ; each R6 is independently selected from the group consisting of hydrogen, an electronegative group,-ORd,-SRd, (C1-C3) haloalkyloxy, (C1-C3) perhaloalkyloxy, -NRcRc, halogen, (C1-C3) haloalkyl, (C1-C3) perhaloalkyl,-CF3,-CH2CF3,-CF2CF3,-CN, -NC, -OCN, -SCN, -NO, -NO2, -N3, -S(O)Rd, -S(O)2Rd, -S(O)2ORd, -S(O)NRcRc, -S(O)2NRcRc, -OS(O)Rd, -OS(O)2Rd, -OS(O)2ORd, -OS(O)NRcRc, -OS(O)2NRcRc, -C(O)Rd, -C(O)ORd, -C(O)NRcRc, -C (NH) NU'ROC (O) Rd,-SC (O) Rd,-OC (O) ORd,-SC (O) ORd, -OC(O)NRcRc, -SC(O)NRcRc, -OC (NH) NRcRc, -SC (NH) NRCRC, ~ [NHC (O)] R, -[NHC(O)]nORd, -[NHC(O)]nNRcRc and -[NHC(NH)]nNRcRc, (C5-C10) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R8 groups, (C6-C16) arylalkyl optionally substituted with one or more of the same or different R8 groups, 5-10 membered heteroaryl optionally substituted with one or more of the same or different R8 groups and 6- 16 membered heteroarylalkyl optionally substituted with one or more of the same or different R8 groups ; R 8 is selected from the group consisting of Ra, Rb, Ra substituted with one or more of the same or different Ra or Rb,-ORa substituted with one or more of the same or different Ra or Rb, -B (ORa) 2,-B (NRcRc) 2, -(CH2)m-Rb, -(CHRa)m-Rb, -O-(CH2)m-Rb, -S-(CH2)m-Rb, -O-CHRaRb, -O-CRa(Rb)2, -O-(CHRa)m-Rb -O- (CH2)m-CH[(CH2)mRb]Rb, -S-(CHRa)m-Rb, -C(O)NH-(CH2)m-Rb, -C(O)NH-(CHRa)m-Rb, -O-(CH2)m-C(O)NH-(CH2)m-Rb, -S-(CH2)m-C(O)NH-(CH2)m-Rb, -O-(CHRa)m-C(O)NH-(CHRa)m-Rb, -S-(CHRa)m-C(O)NH-(CHRa)m-Rb, -NH-(CH2)m-Rb, -NH-(CHRa)m-Rb, -NH[(CH2)mRb], - N[(CH2)mRb]2, -NH-C(O)-NH-(CH2)m-Rb, -NH-C(O)-(CH2)m-CHRbRb and -NH-(CH2)m-C(O)-NH-(CH2)m-Rb ;

each Ra is independently selected from the group consisting of hydrogen, (C1-C6) alkyl, (C3-C8) cycloalkyl, cyclohexyl, (C4-C11) cycloalkylalkyl, (C5-C10) aryl, phenyl, (C6-C16) arylalkyl, benzyl, 2-6 membered heteroalkyl, 3-8 membered cycloheteroalkyl, morpholinyl, piperazinyl, homopiperazinyl, piperidinyl, 4-11 membered cycloheteroalkylalkyl, 5-10 membered heteroaryl and 6-16 membered heteroarylalkyl ; each Rb is a suitable group independently selected from the group consisting of =O, <BR> <BR> <BR> -ORd, (C1-C3) haloalkyloxy,-OCF3, =S,-SRd, =NRd, =NORd,-NRCRc, halogen,-CF3,-CN,<BR> <BR> <BR> <BR> <BR> <BR> -NC,-OCN,-SCN,-NO,-NO2, =N2,-N3,-S (O) Rd,-S (O) 2Rd,-S (O) 2ORd,-S (O) NRCRc,<BR> <BR> <BR> <BR> <BR> <BR> -S (O) 2NRCRC,-OS (O) Rd,-OS (0) 2Rd,-OS (0) 20Rd,-OS (0) 2NRCRC,-C (O) Rd,-C (O) ORd, -C (O) NRCRC-C (NH) NR'R',-C (NRa)NRcRc, -C (NOH) Ra,-C (NOH) NR'R',-OC (O) Rd, -OC (O) ORd-OC (O) NRCRCn-OC (NH) NRcRc, -OC(NRa)NRcRc, -[NHC(O)]nRd, -[NRaC(O)]nRd, -[NHC(O)]nORd, -[NRaC(O)]nORd, -[NHC(O)]nNRcRc, -[NRaC(O)]nNRcRc, -[NHC(NH)]nNRcRc and -[NRaC(NRa)]nNRcRc; each Rc is independently a protecting group or Ra, or, alternatively, each Rc is taken together with the nitrogen atom to which it is bonded to form a 5 to 8-membered cycloheteroalkyl or heteroaryl which may optionally include one or more of the same or different additional heteroatoms and which may optionally be substituted with one or more of the same or different Ra or suitable Rb groups; each Rd is independently a protecting group or Ra ; each m is independently an integer from 1 to 3; and each H is independently an integer fiom 0 to 3.

In one embodiment, R is F and R6 is hydrogen.

In another aspect, the present invention provides prodrugs of the 2,4- pyrimidinediamine compounds. Such prodrugs may be active in their prodrug form, or may be inactive until converted under physiological or other conditions of use to an active drug form. In the prodrugs of the invention, one or more functional groups of the 2,4- pyrimidinediamine compounds are included in promoieties that cleave from the molecule under the conditions of use, typically by way of hydrolysis, enzymatic cleavage or some other cleavage mechanism, to yield the functional groups. For example, primary or secondary amino groups may be included in an amide promoiety that cleaves under conditions of use to generate the primary or secondary amino group. Thus, the prodrugs of

the invention include special types of protecting groups, termed"progroups,"masking one or more functional groups of the 2,4-pyrimidinediamine compounds that cleave under the conditions of use to yield an active 2,4-pyrimidinediamine drug compound. Functional groups within the 2,4-pyrimidinediamine compounds that may be masked with progroups for inclusion in a promoiety include, but are not limited to, amines (primary and secondary), hydroxyls, sulfanyls (thiols), carboxyls, carbonyls, phenols, catechols, diols, alkynes, phosphates, etc. Myriad progroups suitable for masking such functional groups to yield promoieties that are cleavable under the desired conditions of use are known in the art. All of these progroups, alone or in combinations, may be included in the prodrugs of the invention. Specific examples of promoieties that yield primary or secondary amine groups that can be included in the prodrugs of the invention include, but are not limited to amides, carbamates, imines, ureas, phosphenyls, phosphoryls and sulfenyls. Specific examples of promoieties that yield sulfanyl groups that can be included in the prodrugs of the invention include, but are not limited to, thioethers, for example S-methyl derivatives (monothio, dithio, oxythio, aminothio acetals), silyl thioethers, thioesters, thiocarbonates, thiocarbamates, asymmetrical disulfides, etc. Specific examples of promoieties that cleave to yield hydroxyl groups that can be included in the prodrugs of the invention include, but are not limited to, sulfonates, esters and carbonates. Specific examples of promoieties that yield carboxyl groups that can be included in the prodrugs of the invention included, but are not limited to, esters (including silyl esters, oxamic acid esters and thioesters), amides and hydrazides.

In one illustrative embodiment, the prodrugs of the invention are compounds according to structural formula (1) in which the protecting group of Rc and Rd is a progroup.

In another illustrative embodiment, the prodrugs of the invention are compounds according to structural formula (II): including salts, hydrates, solvates and N-oxides thereof, wherein: R2, R4, R5, R6, Ll and LZ are as previously defined for structural formula (I);

R2b is a progroup; R4b is progroup or an alkyl group, e. g. , methyl, and as further defined by the examples.

In another aspect, the present invention provides compositions comprising one or more compounds and/or prodrugs of the invention and an appropriate carrier, excipient or diluent. The exact nature of the carrier, excipient or diluent will depend upon the desired use for the composition, and may range from being suitable or acceptable for veterinary uses to being suitable or acceptable for human use.

In still another aspect, the present invention provides intermediates useful for synthesizing the 2,4-pyrimidinediamine compounds and prodrugs of the invention. In one embodiment, the intermediates are 4-pyrimidineamines according to structural formula (III): including salts, hydrates, solvates and N-oxides thereof, wherein R4, R5, R6 and L2 are as previously defined for structural formula (I) ; LG is a leaving group such as, for example,-S (0) 2Me,-SMe or halo (e. g. , F, Cl, Br, 1) ; and R4c is hydrogen, a progroup, an alkyl group or as described herein.

In another embodiment, the intermediates are 2-pyrimidineamines according to structural formula (IV): including salts, hydrates, solvates and N-oxides thereof, wherein R2, R5, R6 and L are as previously defined for structural formula (1) ; LG is a leaving group, such as, for example, -S (O) 2Me,-SMe or halo (e. g., F, Cl, Br, I) and.

In yet another embodiment, the intermediates are 4-amino-or 4-hydroxy-2- pyrimidineamines according to structural formula (V):

including salts, hydrates, solvates and N-oxides thereof, wherein R2, R5, R6 and L are as previously defined for structural formula (I), R7 is an amino or hydroxyl group and R2C is hydrogen or a progroup.

In another embodiment, the intermediates are N4-substituted cytosines according to structural formula (VI): including salts, hydrates, solvates and N-oxides thereof, wherein R4, R5, R6 and L2 are as previously defined for structural formula (I) and R4c is as previously defined in formula (III).

In yet another aspect, the present invention provides methods of synthesizing the 2,4-pyrimidinediamine compounds and prodrugs of the invention. In one embodiment, the method involves reacting a 4-pyrimidineamine according to structural formula (III) with an amine of the formula HR2CN-Ll-R2, where Ll, R2 and Rc are as previously defined for structural formula (IV) to yield a 2,4-pyrimidinediamine according to structural formula (I) or a prodrug according to structural formula (II).

In another embodiment, the method involves reacting a 2-pyrimidineamine according to structural formula (IV) with an amine of the formula R4-L2-NHR4c where L4, R4 and R4c are as previously defined for structural formula (III) to yield a 2,4- pyrimidinediamine according to structural formula (I) or a prodrug according to structural formula (II).

In yet another embodiment, the method involves reacting a 4-amino-2- pyrimidineamine according to structural formula (V) (in which R7 is an amino group) with

an amine of the formula W-0-NHRc, where L2, R4 and Wu are as defined for structural formula (III), to yield a 2,4-pyrimidinediamine according to structural formula (I) or a prodrug according to structural formula (II). Alternatively, the 4-amino-2-pyrimidineamine may be reacted with a compound of the formula R4-L2-LG, where R4 and L2 are as previously defined for structural formula (1) and LG is a leaving group.

In still another embodiment, the method involves halogenating a 4-hydroxy-2- pyrimidineamine according to structural formula (V) (R7 is a hydroxyl group) to yield a 2- pyrimidineamine according to structural formula (IV) and reacting this pyrimidineamine with an appropriate amine, as described above.

In yet another embodiment, the method involves halogenating an N4-substituted cytosine according to structural formula (VI) to yield a 4-pyrimidineamine according to structural formula (III) and reacting this pyrimidineamine with an appropriate amine, as described above.

The 2,4-pyrimidinediamine compounds of the invention are potent inhibitors of degranulation of immune cells, such as mast, basophil, neutrophil and/or eosinophil cells.

Thus, in still another aspect, the present invention provides methods of regulating, and in particular inhibiting, degranulation of such cells. The method generally involves contacting a cell that degranulates with an amount of a 2,4-pyrimidinediamine compound or prodrug of the invention, or an acceptable salt, hydrate, solvate, N-oxide and/or composition thereof, effective to regulate or inhibit degranulation of the cell. The method may be practiced in in vitro contexts or in in vivo contexts as a therapeutic approach towards the treatment or prevention of diseases characterized by, caused by or associated with cellular degranulation.

While not intending to be bound by any theory of operation, biochemical data confirm that the 2,4-pyrimidinediamine compounds exert their degranulation inhibitory effect, at least in part, by blocking or inhibiting the signal transduction cascade (s) initiated by crosslinking of the high affinity Fc receptors for IgE ("FceRI") and/or IgG ("FczRI").

Indeed, the 2,4-pyrimidinediamine compounds are potent inhibitors of both FcERI-mediated and FcaRI-mediated degranulation. As a consequence, the 2,4-pyrimidine compounds may be used to inhibit these Fc receptor signalling cascades in any cell type expressing such FceRI and/or FcSyRI receptors including but not limited to macrophages, mast, basophil, neutrophil and/or eosinophil cells.

The methods also permit the regulation of, and in particular the inhibition of, downstream processes that result as a consequence of activating such Fc receptor signaling cascade (s). Such downstream processes include, but are not limited to, FceRI-mediated and/or FcyRI-mediated degranulation, cytokine production and/or the production and/or release of lipid mediators such as leukotrienes and prostaglandins. The method generally involves contacting a cell expressing an Fc receptor, such as one of the cell types discussed above, with an amount of a 2,4-pyrimidinediamine compound or prodrug of the invention, or an acceptable salt, hydrate, solvent, N-oxide and/or composition thereof, effective to regulate or inhibit the Fc receptor signaling cascade and/or a downstream process effected by the activation of this signaling cascade. The method may be practiced in in vitro contexts or in in vivo contexts as a therapeutic approach towards the treatment or prevention of diseases characterized by, caused by or associated with the Fc receptor signaling cascade, such as diseases effected by the release of granule specific chemical mediators upon degranulation, the release and/or synthesis of cytokines and/or the release and/or synthesis of lipid mediators such as leukotrienes and prostaglandins.

In yet another aspect, the present invention provides methods of treating and/or preventing diseases characterized by, caused by or associated with the release of chemical mediators as a consequence of activating Fc receptor signaling cascades, such as FceRI and/or FczRI-signaling cascades. The methods may be practiced in animals in veterinary contexts or in humans. The methods generally involve administering to an animal subject or human an amount of a 2,4-pyrimidinediamine compound or prodrug of the invention, or an acceptable salt, hydrate, solvate, N-oxide and/or composition thereof, effective to treat or prevent the disease. As discussed previously, activation of the FceRI or FcyRI receptor signaling cascade in certain immune cells leads to the release and/or synthesis of a variety of chemical substances that are pharmacological mediators of a wide variety of diseases.

Any of these diseases may be treated or prevented according to the methods of the invention.

For example, in mast cells and basophil cells, activation of the FceRI or Fc'yRI signaling cascade leads to the immediate (i. e. , within 1-3 min. of receptor activation) release of preformed mediators of atopic and/or Type I hypersensitivity reactions (e. g., histamine, proteases such as tryptase, etc. ) via the degranulation process. Such atopic or Type I hypersensitivity reactions include, but are not limited to, anaphylactic reactions to

environmental and other allergens (e. g., pollens, insect and/or animal venoms, foods, drugs, contrast dyes, etc. ), anaphylactoid reactions, hay fever, allergic conjunctivitis, allergic rhinitis, allergic asthma, atopic dermatitis, eczema, urticaria, mucosal disorders, tissue disorders and certain gastrointestinal disorders.

The immediate release of the preformed mediators via degranulation is followed by the release and/or synthesis of a variety of other chemical mediators, including, among other things, platelet activating factor (PAF), prostaglandins and leukotrienes (e. g. , LTC4) and the de yaovo synthesis and release of cytokines such as TNFa, IL-4, IL-5, IL-6, IL-13, etc. The first of these two processes occurs approximately 3-30 min. following receptor activation; the latter approximately 30 min.-7 hrs. following receptor activation. These"late stage" mediators are thought to be in part responsible for the chronic symptoms of the above-listed atopic and Type I hypersensitivity reactions, and in addition are chemical mediators of inflammation and inflammatory diseases (e. g. , osteoarthritis, inflammatory bowel disease, ulcerative colitis, Crohn's disease, idiopathic inflammatory bowel disease, irritable bowel syndrome, spastic colon, etc. ), low grade scarring (e. g., scleroderma, increased fibrosis, keloids, post-surgical scars, pulmonary fibrosis, vascular spasms, migraine, reperfusion injury and post myocardial infarction), and sicca complex or syndrome. All of these diseases may be treated or prevented according to the methods of the invention.

Additional diseases which can be treated or prevented according to the methods of the invention include diseases associated with basophil cell and/or mast cell pathology.

Examples of such diseases include, but are not limited to, diseases of the skin such as scleroderma, cardiac diseases such as post myocardial infarction, pulmonary diseases such as pulmonary muscle changes or remodeling and chronic obstructive pulmonary disease (COPD) and diseases of the gut such as inflammatory bowel syndrome (spastic colon).

The 2, 4-pyrimidinediamine compounds of the invention are also potent inhibitors of the tyrosine kinase Syk kinase. Thus, in still another aspect, the present invention provides methods of regulating, and in particular inhibiting, Syk kinase activity. The method generally involves contacting a Syk kinase or a cell comprising a Syk kinase with an amount of a 2, 4-pyrimidinediamine compound or prodrug of the invention, or an acceptable salt, hydrate, solvate, N-oxide and/or composition thereof, effective to regulate or inhibit Syk kinase activity. In one embodiment, the Syk kinase is an isolated or recombinant Syk kinase. In another embodiment, the Syk kinase is an endogenous or recombinant Syk

kinase expressed by a cell, for example a mast cell or a basophil cell. The method may be practiced in in vitro contexts or in in vivo contexts as a therapeutic approach towards the treatment or prevention of diseases characterized by, caused by or associated with Syk kinase activity.

While not intending to be bound by any particular theory of operation, it is believed that the 2,4-pyrimdinediamine compounds of the invention inhibit cellular degranulation and/or the release of other chemical mediators primarily by inhibiting Syk kinase that gets activated through the gamma chain homodimer of FcERI (see, e. g., FIG. 2). This gamma chain homodimer is shared by other Fc receptors, including FcyRI, FcyRIII and FcoRI. For all of these receptors, intracellular signal transduction is mediated by the common gamma chain homodimer. Binding and aggregation of those receptors results in the recruitment and activation of tyrosine kinases such as Syk kinase. As a consequence of these common signaling activities, the 2,4-pyrimidinediamine compounds described herein may be used to regulate, and in particular inhibit, the signaling cascades of Fc receptors having this gamma chain homodimer, such as FcERI, FcyRI, FczRIII and FcoRI, as well as the cellular responses elicited through these receptors.

Syk kinase is known to play a critical role in other signaling cascades. For example, Syk kinase is an effector of B-cell receptor (BCR) signaling (Turner et al., 2000, Immunology Today 21: 148-154) and is an essential component of integrin beta (1), beta (2) and beta (3) signaling in neutrophils (Mocsai et al., 2002, Immunity 16: 547-558). As the 2,4-pyrimidinediamine compounds described herein are potent inhibitors of Syk kinase, they can be used to regulate, and in particular inhibit, any signaling cascade where Syk plays a role, such as, fore example, the Fc receptor, BCR and integrin signaling cascades, as well as the cellular responses elicited through these signaling cascades. The particular cellular response regulated or inhibited will depend, in part, on the specific cell type and receptor signaling cascade, as is well known in the art. Non-limiting examples of cellular responses that may be regulated or inhibited with the 2,4-pyrimidinediamine compounds include a respiratory burst, cellular adhesion, cellular degranulation, cell spreading, cell migration, phagocytosis (e. g., in macrophages), calcium ion flux (e. g., in mast, basophil, neutrophil, eosinophil and B-cells), platelet aggregation, and cell maturation (e. g., in B- cells).

Thus, in another aspect, the present invention provides methods of regulating, and in particular inhibiting, signal transduction cascades in which Syk plays a role. The method generally involves contacting a Syk-dependent receptor or a cell expressing a Syk- dependent receptor with an amount of a 2, 4-pyrimidinediamine compound or prodrug of the invention, or an acceptable salt, hydrate, solvate, N-oxide and/or composition thereof, effective to regulate or inhibit the signal transduction cascade. The methods may also be used to regulate, and in particular inhibit, downstream processes or cellular responses elicited by activation of the particular Syk-dependent signal transduction cascade. The methods may be practiced to regulate any signal transduction cascade where Syk is not known or later discovered to play a role. The methods may be practiced in ill vitro contexts or in in vivo contexts as a therapeutic approach towards the treatment or prevention of diseases characterized by, caused by or associated with activation of the Syk-dependent signal transduction cascade. Non-limited examples of such diseases include those previously discussed.

Cellular and animal data also confirm that the 2,4-pyrimidinediamine compounds of the invention may also be used to treat or prevent autoimmune diseases and/or symptoms of such diseases. The methods generally involve administering to a subject suffering from an autoimmune disease or at risk of developing an autoimmune disease an amount of a 2,4- pyrimidinediamine method or prodrug of the invention, or an acceptable salt, N-oxide, hydrate, solvate or composition thereof, effective to treat or prevent the autoimmune disease and/or its associated symptoms. Autoimmune diseases that can be treated or prevented with the 2,4-pyrimidinediamine compounds include those diseases that are commonly associated with nonanaphylactic hypersensitivity reactions (Type II, Type III and/or Type IV hypersensitivity reactions) and/or those diseases that are mediated, at least in part, by activation of the FctyR signaling cascade in monocyte cells. Such autoimmune disease include, but are not limited to, those autoimmune diseases that are frequently designated as single organ or single cell-type autoimmune disorders and those autoimmune disease that are frequently designated as involving systemic autoimmune disorder. Non-limiting examples of diseases frequently designated as single organ or single cell-type autoimmune disorders include: Hashimoto's thyroiditis, autoimmune hemolytic anemia, autoimmune atrophic gastritis of pernicious anemia, autoimmune encephalomyelitis, autoimmune orchitis, Goodpasture's disease, autoimmune thrombocytopenia, sympathetic ophthalmia,

myasthenia gravis, Graves'disease, primary biliary cirrhosis, chronic aggressive hepatitis, ulcerative colitis and membranous glomerulopathy. Non-limiting examples of diseases often designated as involving systemic autoimmune disorder include: systemic lupus erythematosis, rheumatoid arthritis, Sjogren's syndrome, Reiter's syndrome, polymyositis- dermatomyositis, systemic sclerosis, polyarteritis nodosa, multiple sclerosis and bullous pemphigoid.

5. BRIEF DESCRIPTION OF THE FIGURES FIG. 1 provides a cartoon illustrating allergen-induced production of IgE and consequent release of preformed and other chemical mediators from mast cells; FIG. 2 provides a cartoon illustrating the FceRI signal transduction cascade leading to degranulation of mast and/or basophil cells; and FIG. 3 provides a cartoon illustrating the putative points of action of compounds that selectively inhibit upstream FceRI-mediated degranulation and compounds that inhibit both FceRI-mediated and ionomycin-induced degranulation.

6. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS 6.1 Definitions As used herein, the following terms are intended to have the following meanings: "Alkyi"by itself or as part of another substituent refers to a saturated or unsaturated branched, straight-chain or cyclic monovalent hydrocarbon radical having the stated number of carbon atoms (i. e. , C1-C6 means one to six carbon atoms) that is derived by the removal of one hydrogen atom from a single carbon atom of a parent alkane, alkene or alkyne.

Typical alkyl groups include, but are not limited to, methyl; ethyls such as ethanyl, ethenyl, ethynyl; propyls such as propan-1-yl, propan-2-yl, cyclopropan-1-yl, prop-1-en-1-yl, prop-1-en-2-yl, prop-2-en-1-yl, cycloprop-1-en-1-yl ; cycloprop-2-en-1-yl, prop-1-yn-1-yl, prop-2-yn-1-yl, etc.; butyls such as butan-1-yl, butan-2-yl, 2-methyl-propan-1-yl, 2-methyl-propan-2-yl, cyclobutan-1-yl, but-1-en-1-yl, but-1-en-2-yl, 2-methyl-prop-1-en-1-yl, but-2-en-1-yl, but-2-en-2-yl, buta-1, 3-dien-1-yl, buta-1, 3-dien-2-yl, cyclobut-1-en-1-yl, cyclobut-1-en-3-yl, cyclobuta-1, 3-dien-1-yl,

but-1-yn-1-yl, but-1-yn-3-yl, but-3-yn-1-yl, etc.; and the like. Where specific levels of saturation are intended, the nomenclature"alkanyl,""alkenyl"and/or"alkynyl"is used, as defined below. In preferred embodiments, the alkyl groups are (C1-C6) alkyl.

"Alkanyl"by itself or as part of another substituent refers to a saturated branched, straight-chain or cyclic alkyl derived by the removal of one hydrogen atom from a single carbon atom of a parent alkane. Typical alkanyl groups include, but are not limited to, methanyl; ethanyl ; propanyls such as propan-1-yl, propan-2-yl (isopropyl), cyclopropan-1-yl, etc.; butanyls such as butan-1-yl, butan-2-yl (sec-butyl), 2-methyl-propan-1-yl (isobutyl), 2-methyl-propan-2-yl (t-butyl), cyclobutan-1-yl, etc.; and the like. In preferred embodiments, the alkanyl groups are (Cl-C6) alkanyl.

"Alkenvl"by itself or as part of another substituent refers to an unsaturated branched, straight-chain or cyclic alkyl having at least one carbon-carbon double bond derived by the removal of one hydrogen atom from a single carbon atom of a parent alkene.

The group may be in either the cis or trans conformation about the double bond (s). Typical alkenyl groups include, but are not limited to, ethenyl; propenyls such as prop-1-en-1-yl, prop-1-en-2-yl, prop-2-en-1-yl, prop-2-en-2-yl, cycloprop-1-en-1-yl ; cycloprop-2-en-1-yl ; butenyls such as but-1-en-1-yl, but-1-en-2-yl, 2-methyl-prop-1-en-1-yl, but-2-en-1-yl, but-2-en-2-yl, buta-1, 3-dien-1-yl, buta-1, 3-dien-2-yl, cyclobut-1-en-1-yl, cyclobut-1-en-3-yl, cyclobuta-1, 3-dien-1-yl, etc.; and the like. In preferred embodiments, the alkenyl group is (C2-C6) alkenyl.

"Alktnvl"by itself or as part of another substituent refers to an unsaturated branched, straight-chain or cyclic alkyl having at least one carbon-carbon triple bond derived by the removal of one hydrogen atom from a single carbon atom of a parent alkyne.

Typical alkynyl groups include, but are not limited to, ethynyl; propynyls such as prop-1-yn-1-yl, prop-2-yn-1-yl, etc.; butynyls such as but-1-yn-1-yl, but-1-yn-3-yl, but-3-yn-1-yl, etc.; and the like. In preferred embodiments, the alkynyl group is (C2-C6) alkynyl.

"AlkYldiyl"by itself or as part of another substituent refers to a saturated or unsaturated, branched, straight-chain or cyclic divalent hydrocarbon group having the stated number of carbon atoms (i. e., C 1-C6 means from one to six carbon atoms) derived by the removal of one hydrogen atom from each of two different carbon atoms of a parent alkane, alkene or alkyne, or by the removal of two hydrogen atoms from a single carbon atom of a

parent alkane, alkene or alkyne. The two monovalent radical centers or each valency of the divalent radical center can form bonds with the same or different atoms. Typical alkyldiyl groups include, but are not limited to, methandiyl; ethyldiyls such as ethan-1,1-diyl, ethan-1, 2-diyl, ethen-1, 1-diyl, ethen-1, 2-diyl; propyldiyls such as propan-1, 1-diyl, propan-1, 2-diyl, propan-2,2-diyl, propan-1, 3-diyl, cyclopropan-1, 1-diyl, cyclopropan-1, 2-diyl, prop-1-en-1, 1-diyl, prop-1-en-1, 2-diyl, prop-2-en-1, 2-diyl, prop-1-en-1,3-diyl, cycloprop-1-en-1, 2-diyl, cycloprop-2-en-1,2-diyl, cycloprop-2-en-l, 1-diyl, prop-1-yn-1, 3-diyl, etc.; butyldiyls such as, butan-1, 1-diyl, butan-1, 2-diyl, butan-1, 3-diyl, butan-1, 4-diyl, butan-2,2-diyl, 2-methyl-propan-1, 1-diyl, 2-methyl-propan-1, 2-diyl, cyclobutan-1, 1-diyl ; cyclobutan-1, 2-diyl, cyclobutan-1, 3-diyl, but-1-en-l, l-diyl, but-1-en-1, 2-diyl, but-1-en-1, 3-diyl, but-1-en-1, 4-diyl, 2-methyl-prop-1-en-1, 1-diyl, 2-methanylidene-propan-1, 1-diyl, buta-1,3-dien-1, 1-diyl, buta-1, 3-dien-1, 2-diyl, buta-1, 3-dien-1, 3-diyl, buta-1, 3-dien-1, 4-diyl, cyclobut-1-en-1, 2-diyl, cyclobut-1-en-1, 3-diyl, cyclobut-2-en-1,2-diyl, cyclobuta-1,3-dien-1, 2-diyl, cyclobuta-1,3-dien-1, 3-diyl, but-1-yn-1,3-diyl, but-1-yn-1, 4-diyl, buta-1, 3-din-1, 4-diyl, etc.; and the like. Where specific levels of saturation are intended, the nomenclature alkanyldiyl, alkenyldiyl and/or alkynyldiyl is used. Where it is specifically intended that the two valencies are on the same carbon atom, the nomenclature"alkylidene"is used. In preferred embodiments, the alkyldiyl group is (C1-C6) alkyldiyl. Also preferred are saturated acyclic alkanyldiyl groups in which the radical centers are at the terminal carbons, e. g., methandiyl (methano) ; ethan-1, 2-diyl (ethano); propan-1, 3-diyl (propano) ; butan-1, 4-diyl (butano); and the like (also referred to as alkylenos, defined i7lf a).

"Alkyleno"by itself or as part of another substituent refers to a straight-chain saturated or unsaturated alkyldiyl group having two terminal monovalent radical centers derived by the removal of one hydrogen atom from each of the two terminal carbon atoms of straight-chain parent alkane, alkene or alkyne. The locant of a double bond or triple bond, if present, in a particular alkyleno is indicated in square brackets. Typical alkyleno groups include, but are not limited to, methano ; ethylenos such as ethano, etheno, ethyno; propylenos such as propano, prop [l] eno, propa [1, 2] dieno, prop [l] yno, etc.; butylenos such as butano, but [l] eno, but [2] eno, buta [1, 3] dieno, but [l] yno, but [2] yno, buta [1, 3] diyno, etc.; and the like. Where specific levels of saturation are intended, the nomenclature alkano,

alkeno and/or alkyno is used. In preferred embodiments, the alkyleno group is (C1-C6) or (C1-C3) alkyleno. Also preferred are straight-chain saturated alkano groups, e. g., methan, ethano, propano, butano, and the like.

"Heteroalkvl,"Heteroalkanvl,"Heteroalkenvl,"Heteroalkvnvl,"H eteroalkvldivl" and"HeteroalkYleno"by themselves or as part of another substituent refer to alkyl, alkanyl, alkenyl, alkynyl, alkyldiyl and alkyleno groups, respectively, in which one or more of the carbon atoms are each independently replaced with the same or different heteratoms or heteroatomic groups. Typical heteroatoms and/or heteroatomic groups which can replace the carbon atoms include, but are not limited to,-O-,-S-,-S-O-,-NR'-,-PH-,-S (O)-, <BR> <BR> <BR> <BR> - S (O) 2-, -S (O) NR'-, -S (0) 2NR'-, and the like, including combinations thereof, where each R'is independently hydrogen or (C1-C6) alkyl.

"Cycloal l"and"Heterocycloalkyl"by themselves or as part of another substituent refer to cyclic versions of"alkyl"and"heteroalkyl"groups, respectively. For heteroalkyl groups, a heteroatom can occupy the position that is attached to the remainder of the molecule. Typical cycloalkyl groups include, but are not limited to, cyclopropyl ; cyclobutyls such as cyclobutanyl and cyclobutenyl; cyclopentyls such as cyclopentanyl and cyclopentenyl; cyclohexyls such as cyclohexanyl and cyclohexenyl; and the like. Typical heterocycloalkyl groups include, but are not limited to, tetrahydrofuranyl (e. g., tetrahydrofuran-2-yl, tetrahydrofuran-3-yl, etc. ), piperidinyl (e. g., piperidin-1-yl, piperidin- 2-yl, etc. ), morpholinyl (e. g., morpholin-3-yl, morpholin-4-yl, etc. ), piperazinyl (e. g., piperazin-1-yl, piperazin-2-yl, etc. ), and the like.

"cyclic Heteroatomic Bridge"refers to a divalent bridge in which the backbone atoms are exclusively heteroatoms and/or heteroatomic groups. Typical acyclic heteroatomic bridges include, but are not limited to,-O-,-S-,-S-O-,-NR'-,-PH-,-S (O)-, -S (O) 2-,-S (O) NR'-,-S (0) 2NR'-, and the like, including combinations thereof, where each R'is independently hydrogen or (C1-C6) alkyl.

"Parent Aromatic Ring Svstem"refers to an unsaturated cyclic or polycyclic ring system having a conjugated 71 electron system. Specifically included within the definition of"parent aromatic ring system"are fused ring systems in which one or more of the rings are aromatic and one or more of the rings are saturated or unsaturated, such as, for example, fluorene, indane, indene, phenalene, tetrahydronaphthalene, etc. Typical parent aromatic ring systems include, but are not limited to, aceanthrylene, acenaphthylene,

acephenanthrylene, anthracene, azulene, benzene, chrysene, coronene, fluoranthene, fluorene, hexacene, hexaphene, hexalene, indacene, s-indacene, indane, indene, naphthalene, octacene, octaphene, octalene, ovalene, penta-2,4-diene, pentacene, pentalene, pentaphene, perylene, phenalene, phenanthrene, picene, pleiadene, pyrene, pyranthrene, rubicene, tetrahydronaphthalene, triphenylene, trinaphthalene, and the like, as well as the various hydro isomers thereof.

"Aryl"by itself or as part of another substituent refers to a monovalent aromatic <BR> <BR> <BR> <BR> hydrocarbon group having the stated number of carbon atoms (i. e. , C5-C15 means from 5 to 15 carbon atoms) derived by the removal of one hydrogen atom from a single carbon atom of a parent aromatic ring system. Typical aryl groups include, but are not limited to, groups derived from aceanthrylene, acenaphthylene, acephenanthrylene, anthracene, azulene, benzene, chrysene, coronene, fluoranthene, fluorene, hexacene, hexaphene, hexalene, as-indacene, s-indacene, indane, indene, naphthalene, octacene, octaphene, octalene, ovalene, penta-2,4-diene, pentacene, pentalene, pentaphene, perylene, phenalene, phenanthrene, picene, pleiadene, pyrene, pyranthrene, rubicene, triphenylene, trinaphthalene, and the like, as well as the various hydro isomers thereof. In preferred embodiments, the aryl group is (C5-C15) aryl, with (C5-C10) being even more preferred.

Particularly preferred aryls are cyclopentadienyl, phenyl and naphthyl.

"Arvlaryl"by itself or as part of another substituent refers to a monovalent hydrocarbon group derived by the removal of one hydrogen atom from a single carbon atom of a ring system in which two or more identical or non-identical parent aromatic ring systems are joined directly together by a single bond, where the number of such direct ring junctions is one less than the number of parent aromatic ring systems involved. Typical arylaryl groups include, but are not limited to, biphenyl, triphenyl, phenyl-naphthyl, binaphthyl, biphenyl-naphthyl, and the like. Where the number of carbon atoms in an arylaryl group are specified, the numbers refer to the carbon atoms comprising each parent aromatic ring. For example, (C5-C15) arylaryl is an arylaryl group in which each aromatic ring comprises from 5 to 15 carbons, e. g. , biphenyl, triphenyl, binaphthyl, phenylnaphthyl, etc. Preferably, each parent aromatic ring system of an arylaryl group is independently a (C5-C15) aromatic, more preferably a (C5-C10) aromatic. Also preferred are arylaryl groups in which all of the parent aromatic ring systems are identical, e. g. , biphenyl, triphenyl, binaphthyl, trinaphthyl, etc.

"Biaryl"by itself or as part of another substituent refers to an arylaryl group having two identical parent aromatic systems joined directly together by a single bond. Typical biaryl groups include, but are not limited to, biphenyl, binaphthyl, bianthracyl, and the like.

Preferably, the aromatic ring systems are (C5-C15) aromatic rings, more preferably (C5-C10) aromatic rings. A particularly preferred biaryl group is biphenyl.

"Arylalkyl'by itself or as part of another substituent refers to an acyclic alkyl group in which one of the hydrogen atoms bonded to a carbon atom, typically a terminal or sp3 carbon atom, is replaced with an aryl group. Typical arylalkyl groups include, but are not limited to, benzyl, 2-phenylethan-1-yl, 2-phenylethen-1-yl, naphthylmethyl, 2-naphthylethan-1-yl, 2-naphthylethen-1-yl, naphthobenzyl, 2-naphthophenylethan-1-yl and the like.'Where specific alkyl moieties are intended, the nomenclature arylalkanyl, arylakenyl and/or arylalkynyl is used. In preferred embodiments, the arylalkyl group is (C6-C21) arylalkyl, e. g., the alkanyl, alkenyl or alkynyl moiety of the arylalkyl group is (C1-C6) and the aryl moiety is (C5-C15). In particularly preferred embodiments the arylalkyl group is (C6-C13), e. g., the alkanyl, alkenyl or alkynyl moiety of the arylalkyl group is (C1-C3) and the aryl moiety is (C5-C10).

"Parent Heteroaromatic Ring System"refers to a parent aromatic ring system in which one or more carbon atoms are each independently replaced with the same or different heteroatoms or heteroatomic groups. Typical heteroatoms or heteroatomic groups to replace the carbon atoms include, but are not limited to, N, NH, P, 0, S, S (O), S (0) 2, Si, etc.

Specifically included within the definition of"parent heteroaromatic ring systems"are fused ring systems in which one or more of the rings are aromatic and one or more of the rings are saturated or unsaturated, such as, for example, benzodioxan, benzofuran, chromane, chromene, indole, indoline, xanthene, etc. Also included in the definition of"parent heteroaromatic ring system"are those recognized rings that include common substituents, such as, for example, benzopyrone and 1-methyl-1,2, 3,4-tetrazole. Specifically excluded from the definition of"parent heteroaromatic ring system"are benzene rings fused to cyclic polyalkylene glycols such as cyclic polyethylene glycols. Typical parent heteroaromatic ring systems include, but are not limited to, acridine, benzimidazole, benzisoxazole, benzodioxan, benzodioxole, benzofuran, benzopyrone, benzothiadiazole, benzothiazole, benzotriazole, benzoxaxine, benzoxazole, benzoxazoline, carbazole, P-carboline, chromane, chromene, cinnoline, furan, imidazole, indazole, indole, indoline, indolizine, isobenzofuran,

isochromene, isoindole, isoindoline, isoquinoline, isothiazole, isoxazole, naphthyridine, oxadiazole, oxazole, perimidine, phenanthridine, phenanthroline, phenazine, phthalazine, pteridine, purine, pyran, pyrazine, pyrazole, pyridazine, pyridine, pyrimidine, pyrrole, pyrrolizine, quinazoline, quinoline, quinolizine, quinoxaline, tetrazole, thiadiazole, thiazole, thiophene, triazole, xanthene, and the like.

"Heteroaryl"by itself or as part of another substituent refers to a monovalent heteroaromatic group having the stated number of ring atoms (e. g.,"5-14 membered"means from 5 to 14 ring atoms) derived by the removal of one hydrogen atom from a single atom of a parent heteroaromatic ring system. Typical heteroaryl groups include, but are not limited to, groups derived from acridine, benzimidazole, benzisoxazole, benzodioxan, benzodiaxole, benzofuran, benzopyrone, benzothiadiazole, benzothiazole, benzotriazole, benzoxazine, benzoxazole, benzoxazoline, carbazole, ß-carboline, chromane, chromene, cinnoline, furan, imidazole, indazole, indole, indoline, indolizine, isobenzofuran, isochromene, isoindole, isoindoline, isoquinoline, isothiazole, isoxazole, naphthyridine, oxadiazole, oxazole, perimidine, phenanthridine, phenanthroline, phenazine, phthalazine, pteridine, purine, pyran, pyrazine, pyrazole, pyridazine, pyridine, pyrimidine, pyrrole, pyrrolizine, quinazoline, quinoline, quinolizine, quinoxaline, tetrazole, thiadiazole, thiazole, thiophene, triazole, xanthene, and the like, as well as the various hydro isomers thereof. In preferred embodiments, the heteroaryl group is a 5-14 membered heteroaryl, with 5-10 membered heteroaryl being particularly preferred.

"Heteroaryl-Heteroaryl"by itself or as part of another substituent refers to a monovalent heteroaromatic group derived by the removal of one hydrogen atom from a single atom of a ring system in which two or more identical or non-identical parent heteroaromatic ring systems are joined directly together by a single bond, where the number of such direct ring junctions is one less than the number of parent heteroaromatic ring systems involved. Typical heteroaryl-heteroaryl groups include, but are not limited to, bipyridyl, tripyridyl, pyridylpurinyl, bipurinyl, etc. Where the number of atoms are specified, the numbers refer to the number of atoms comprising each parent heteroaromatic ring systems. For example, 5-15 membered heteroaryl-heteroaryl is a heteroaryl-heteroaryl group in which each parent heteroaromatic ring system comprises from 5 to 15 atoms, e. g., bipyridyl, tripuridyl, etc. Preferably, each parent heteroaromatic ring system is independently a 5-15 membered heteroaromatic, more preferably a 5-10 membered

heteroaromatic. Also preferred are heteroaryl-heteroaryl groups in which all of the parent heteroaromatic ring systems are identical.

"Biheteroaryl"by itself or as part of another substituent refers to a heteroaryl-heteroaryl group having two identical parent heteroaromatic ring systems joined directly together by a single bond. Typical biheteroaryl groups include, but are not limited to, bipyridyl, bipurinyl, biquinolinyl, and the like. Preferably, the heteroaromatic ring systems are 5-15 membered heteroaromatic rings, more preferably 5-10 membered heteroaromatic rings.

"Heteroarylalkyl"by itself or as part of another substituent refers to an acyclic alkyl group in which one of the hydrogen atoms bonded to a carbon atom, typically a terminal or sp3 carbon atom, is replaced with a heteroaryl group. Where specific alkyl moieties are intended, the nomenclature heteroarylalkanyl, heteroarylakenyl and/or heteroarylalkynyl is used. In preferred embodiments, the heteroarylalkyl group is a 6-21 membered heteroarylalkyl, e. g. , the alkanyl, alkenyl or alkynyl moiety of the heteroarylalkyl is (C1-C6) alkyl and the heteroaryl moiety is a 5-15-membered heteroaryl. In particularly preferred embodiments, the heteroarylalkyl is a 6-13 membered heteroarylalkyl, e. g. , the alkanyl, alkenyl or alkynyl moiety is (Cl-C3) alkyl and the heteroaryl moiety is a 5-10 membered heteroaryl.

"Halogen"or"Halo"by themselves or as part of another substituent, unless otherwise stated, refer to fluoro, chloro, bromo and iodo.

"Haloalkyl"by itself or as part of another substituent refers to an alkyl group in which one or more of the hydrogen atoms is replaced with a halogen. Thus, the term "haloalkyl"is meant to include monohaloalkyls, dihaloalkyls, trihaloalkyls, etc. up to perhaloalkyls. For example, the expression"(C1-C2) haloalkyl"includes fluoromethyl, difluoromethyl, trifluoromethyl, 1-fluoroethyl, 1,1-difluoroethyl, 1, 2-difluoroethyl, 1,1, 1-trifluoroethyl, perfluoroethyl, etc.

The above-defined groups may include prefixes and/or suffixes that are commonly used in the art to create additional well-recognized substituent groups. As examples, "alkyloxy"or"alkoxy"refers to a group of the formula-OR", "alkylamine"refers to a group of the formula-NHR"and"dialkylamine"refers to a group of the formula-NR"R", where each R"is independently an alkyl. As another example,"haloalkoxy"or "haloalkyloxy"refers to a group of the formula-OR"', where R"'is a haloalkyl.

"Protecting group"refers to a group of atoms that, when attached to a reactive functional group in a molecule, mask, reduce or prevent the reactivity of the functional group. Typically, a protecting group may be selectively removed as desired during the course of a synthesis. Examples of protecting groups can be found in Greene and Wuts, Protective Groups in Organic Chemistry, 3rd Ed. , 1999, John Wiley & Sons, NY and Harrison et al., Compendium of Syfathetic Organic Methods, Vols. 1-8,1971-1996, John Wiley & Sons, NY. Representative amino protecting groups include, but are not limited to, formyl, acetyl, trifluoroacetyl, benzyl, benzyloxycarbonyl ("CBZ"), tert-butoxycarbonyl ("Boc"), trimethylsilyl ("TMS"), 2-trimethylsilyl-ethanesulfonyl ("TES"), trityl and substituted trityl groups, allyloxycarbonyl, 9-fluorenylmethyloxycarbonyl ("FMOC"), nitro- veratryloxycarbonyl ("NVOC") and the like. Representative hydroxyl protecting groups include, but are not limited to, those where the hydroxyl group is either acylated or alkylated such as benzyl and trityl ethers, as well as alkyl ethers, tetrahydropyranyl ethers, trialkylsilyl ethers (e. g., TMS or TIPPS groups) and allyl ethers.

"Prodrug"refers to a derivative of an active 2,4-pyrimidinediamine compound (drug) that requires a transformation under the conditions of use, such as within the body, to release the active 2,4-pyrimidinediamine drug. Prodrugs are frequently, but not necessarily, pharmacologically inactive until converted into the active drug. Prodrugs are typically obtained by masking a functional group in the 2,4-pyrimidinediamine drug believed to be in part required for activity with a progroup (defined below) to form a promoiety which undergoes a transformation, such as cleavage, under the specified conditions of use to release the functional group, and hence the active 2,4-pyrimidinediamine drug. The cleavage of the promoiety may proceed spontaneously, such as by way of a hydrolysis reaction, or it may be catalyzed or induced by another agent, such as by an enzyme, by light, by acid or base, or by a change of or exposure to a physical or environmental parameter, such as a change of temperature. The agent may be endogenous to the conditions of use, such as an enzyme present in the cells to which the prodrug is administered or the acidic conditions of the stomach, or it may be supplied exogenously.

A wide variety of progroups, as well as the resultant promoieties, suitable for masking functional groups in the active 2,4-pyrimidinediamines compounds to yield prodrugs are well-known in the art. For example, a hydroxyl functional group may be masked as a sulfonate, ester or carbonate promoiety, which may be hydrolyzed in vivo to

provide the hydroxyl group. An amino functional group may be masked as an amide, carbamate, imine, urea, phosphenyl, phosphoryl or sulfenyl promoiety, which may be hydrolyzed in vivo to provide the amino group. A carboxyl group may be masked as an ester (including silyl esters and thioesters), amide or hydrazide promoiety, which may be hydrolyzed iii vivo to provide the carboxyl group. Nitrogen protecting groups and nitrogen pro-drugs of the invention may include lower alkyl groups as well as amides, carbamates, etc. Other specific examples of suitable progroups and their respective promoieties will be apparent to those of skill in the art.

"Progroup"refers to a type of protecting group that, when used to mask a functional group within an active 2,4-pyrimidinediamine drug to form a promoiety, converts the drug into a prodrug. Progroups are typically attached to the functional group of the drug via bonds that are cleavable under specified conditions of use. Thus, a progroup is that portion of a promoiety that cleaves to release the functional group under the specified conditions of use. As a specific example, an amide promoiety of the formula-NH-C (O) CH3 comprises the progroup-C (O) CH3.

"Fc Receptor"refers to a member of the family of cell surface molecules that binds the Fc portion (containing the specific constant region) of an immunoglobulin. Each Fc receptor binds immunoglobulins of a specific type. For example the Fco receptor ("FcotR") binds IgA, the FceR binds IgE and the Fer binds IgG.

The FcoR family includes the polymeric Ig receptor involved in epithelial transport of IgA/IgM, the mycloid specific receptor RcoRI (also called CD89), the FcoM, uR and at least two alternative IgA receptors (for a recent review see Monteiro & van de Winkel, 2003, Annu. Rev. Immunol, advanced e-publication. The FcoRI is expressed on neutrophils, eosinophils, moncytes/macrophages, dendritic cells and kupfer cells. The FcoRI inclues one alpha chain and the FcR gamma homodimer that bears an activation motif (ITAM) in the cytoplasmic domain and phosphorylates Syk kinase.

The FceR family includes two types, designated FceRI and FceRII (also known as CD23). FceRI is a high affinity receptor (binds IgE with an affinity of about 101°M-l) found on mast, basophil and eosinophil cells that anchors monomeric IgE to the cell surface. The FceRI possesses one alpha chain, one beta chain and the gamma chain homodimer discussed above. The FceRII is a low affinity receptor expressed on mononuclear

phagocytes, B lymphocytes, eosinophils and platelets. The FceRII comprises a single polypeptide chain and does not include the gamma chain homodimer.

The For family includes three types, designated FwctyRI (also known as CD64), FcwyRII (also known as CD32) and FcyRIII (also known as CD16). Fc-yRI is a high affinity receptor (binds IgGl with an affinity of 108M-1) found on mast, basophil, mononuclear, neutrophil, eosinophil, deudritic and phagocyte cells that anchors nomomeric IgG to the cell surface. The FcwyRI includes one alpha chain and the gamma chain dimer shared by FcoRI and FceRI.

The FcaRII is a low affinity receptor expressed on neutrophils, monocytes, eosinophils, platelets and B lymphocytes. The FcyRII includes one alpha chain, and does not include the gamma chain homodimer discussed above.

The FczRIII is a low affinity (bindes IgGl with an affinity of 5xlOSM-1) expressed on NK, eosinophil, macrophage, neutrophil and mast cells. It comprises one alpha chain and the gamma homodimer shared by FcαRI, FceRI and FcoyRI.

Skilled artisans will recognize that the subunit structure and binding properties of these various Fc receptors, cell types expressing them, are not completely characterized.

The above discussion merely reflects the current state-of-the-art regarding these receptors (see, e. g. , Immunobiology: The Immune System in Health & Disease, 5th Edition, Janeway et al. , Eds, 2001, ISBN 0-8153-3642-x, Figure 9.30 at pp. 371), and is not intended to be limiting with respect to the myriad receptor signaling cascades that can be regulated with the compounds described herein.

"Fc Receptor-Mediated Degranulation"or"Fc Receptor-Induced Degranulation" refers to degranulation that proceeds via an Fc receptor signal transduction cascade initiated by crosslinking of an Fc receptor.

"IgE-Induced Degranulation"or"FceRI-Mediated Degranulation"refers to degranulation that proceeds via the IgE receptor signal transduction cascade initiated by crosslinking of FceRl-bound IgE. The crosslinking may be induced by an IgE-specific allergen or other multivalent binding agent, such as an anti-IgE antibody. Referring to FIG. 2, in mast and/or basophil cells, the FceRI signaling cascade leading to degranulation may be broken into two stages: upstream and downstream. The upstream stage includes all of the processes that occur prior to calcium ion mobilization (illustrated as"Ca2+"in FIG. 2; see also FIG. 3). The downstream stage includes calcium ion mobilization and all processes

downstream thereof. Compounds that inhibit FceRI-mediated degranulation may act at any point along the FceRI-mediated signal transduction cascade. Compounds that selectively inhibit upstream FceRI-mediated degranulation act to inhibit that portion of the FceRI signaling cascade upstream of the point at which calcium ion mobilization is induced. In cell-based assays, compounds that selectively inhibit upstream FceRI-mediated degranulation inhibit degranulation of cells such as mast or basophil cells that are activated or stimulated with an IgE-specific allergen or binding agent (such as an anti-IgE antibody) but do not appreciably inhibit degranulation of cells that are activated or stimulated with degranulating agents that bypass the FceRI signaling pathway, such as, for example the calcium ionophores ionomycin and A23187.

"IgG-Induced Degranulation"or"FcyRI-Mediated Degranulation"refers to degranulation that proceeds via the Fc'yRI signal transduction cascade initiated by crosslinking of FcyRI-bound IgG. The crosslinking may be induced by an IgG-specific allergen or another multivalent binding agent, such as an anti-IgG or fragment antibody.

Like the FceRI signaling cascade, in mast and basophil cells the FcRI signaling cascade also leads to degranulation which may be broken into the same two stages: upstream and downstream. Similar to FcERI-mediated degranulation, compounds that selectively inhibit upstream FcyRI-mediated degranulation act upstream of the point at which calcium ion mobilization is induced. In cell-based assays, compounds that selectively inhibit upstream FcaRI-mediated degranulation inhibit degranulation of cells such as mast or basophil cells that are activated or stimulated with an IgG-specific allergen or binding agent (such as an anti-IgG antibody or fragment) but do not appreciably inhibit degranulation of cells that are activated or stimulated with degranulating agents that bypass the FcyRI signaling pathway, such as, for example the calcium ionophores ionomycin and A23187.

"Ionophore-Induced Degranulation"or"Ionophore-Mediated Degranulation"refers to degranulation of a cell, such as a mast or basophil cell, that occurs upon exposure to a calcium ionophore such as, for example, ionomycin or A23187.

"Syk Kinsase"refers to the well-known 72kDa non-receptor (cytoplasmic) spleen protein tyrosine kinase expressed in B-cells and other hematopoetic cells. Syk kinase includes two consensus Src-homology 2 (SH2) domains in tandem that bind to phosphorylated immunoreceptor tyrosine-based activation motifs ("ITAMs"), a"linker" domain and a catalytic domain (for a review of the structure and function of Syk kinase see

Sada et al., 2001, J. Biochem. (Tokyo) 130: 177-186) ; see also Turner et al., 2000, Immunology Today 21: 148-154). Syk kinase has been extensively studied as an effector of B-cell receptor (BCR) signaling (Turner et al., 2000, supra). Syk kinase is also critical for tyrosine phosphorylation of multiple proteins which regulate important pathways leading from immunoreceptors, such as Ca2+ mobilization and mitogen-activated protein kinase (MAPK) cascades (see, e. g. , FIG. 2) and degranulation. Syk kinase also plays a critical role in integrin signaling in neutrophils (see, e. g., Mocsai et al. 2002, Immunity 16: 547-558).

As used herein, Syk kinase includes kinases from any species of animal, including but not limited to, homosapiens, simian, bovine, porcine, rodent, etc. , recognized as belonging to the Syk family. Specifically included are isoforms, splice variants, allelic variants, mutants, both naturally occuring and man-made. The amino acid sequences of such Syk kinases are well known and available from GENBANK. Specific examples of mRNAs encoding different isofbrms of human Syk kinase can be found at GENBANK accessionno. gil21361552lre INM_003177. 2l, gil496899lenlblZ29630. 1 lHSSYKPTK [496899] and gill5030258lgblBC011399. 1lBC011399 [15030258], which are incorporated herein by reference.

Skilled artisans will appreciate that tyrosine kinases belonging to other families may have active sites or binding pockets that are similar in three-dimensional structure to that of Syk. As a consequence of this structural similarity, such kinases, referred to herein as"Syk mimics, "are expected to catalyze phosphorylation of substrates phosphorylated by Syk.

Thus, it will be appreciated that such Syk mimics, signal transduction cascades in which such Syk mimics play a role and biological responses effected by such Syk mimics and Syk mimic-dependent signaling cascades may be regulated, and in particular inhibited, with the 2,4-pyrimidinediamine compounds described herein.

"Svk-Dependent Signaling Cascade"refers to a signal transduction cascade in which Syk kinase plays a role. Non-limiting examples of such Syk-dependent signaling cascades include the FcoRI, FcERI, FcyRI, FcyRIII, BCR and integrin signaling cascades.

"Autoimmune Disease"refers to those diseases which are commonly associated with the nonanaphylactic hypersensitivity reactions (Type II, Type III and/or Type IV hypersensitivity reactions) that generally result as a consequence of the subject's own humoral and/or cell-mediated immune response to one or more immunogenic substances of

endogenous and/or exogenous origin. Such autoimmune diseases are distinguished from diseases associated with the anaphylactic (Type I or IgE-mediated) hypersensitivity reactions.

6.2 The 2, 4-Pyrimidinediamine Compounds The compounds of the invention are generally 2,4-pyrimidinediamine compounds according to structural formula (I): including salts, hydrates, solvates and N-oxides thereof, wherein: Ll and l are each, independently of one another, selected from the group consisting of a direct bond and a linker; R2 and R4 are as described in the following embodiments and examples; Rs is selected from the group consisting of R6, (C1-C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C1-C4) alkanyl optionally substituted with one or more of the same or different R8 groups, (C2-C4) alkenyl optionally substituted with one or more of the same or different R8 groups and (C2-C4) alkynyl optionally substituted with one or more of the same or different R groups; each R6 independently is selected from the group consisting of hydrogen, an electronegative group,-ORd,-SRd, (C1-C3) haloalkyloxy, (C1-C3) perhaloalkyloxy, -NRcRc, halogen, (C1-C3) haloalkyl, (Cl-C3) perhaloalkyl,-CF3,-CH2CF3,-CF2CF3,-CN, -NC,-OCN,-SCN,-NO,-NO2,-N3,-S (O) Rd,-S (O) 2Rd,-S (O) 2ORd,-S (O) NRCRc, -S(O)2NRcRc, -OS(O)Rd, -OS(O)2Rd, -OS(O)2ORd, -OS(O)NRcRc, -OS(O)2NRcRc, -C(O)Rd, -C(O)ORd, -C(O)NRcRc, -C(NH)NRcRc, -OC(O)Rd, -SC(O)Rd, -OC(O)ORd, -SC(O)ORd, -OC(O)NRcRc, -SC(O)NRcRc, -OC (NH) NRCRC,-SC (NH) NRCRC,-[NHC (O)], zRd, -[NHC(O)]nORd, -[NHC(O)]nNRcRc and -[NHC(NH)]nNRcRc, (C5-C10) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R8 groups, (C6-C 16) arylalkyl optionally substituted with one or more of the same or different R8 groups, 5-10 membered heteroaryl optionally substituted with one or more of the same or different R8 groups and 6-

16 membered heteroarylalkyl optionally substituted with one or more of the same or different R8 groups; R8 is selected from the group consisting of Ra, Rb, Ra substituted with one or more of the same or different Ra or Rb,-ORa substituted with one or more of the same or different Ra or R,-B (ORa) 2, -B (NRR) 2, -(CH2) m-Rb, -(CHRa)m-Rb, -O-(CH2)m-Rb, -S-(CH2)m-Rb, -O-CHRaRb, -O-CRa(Rb)2, -O-(CHRa)m-Rb, -O- (CH2)m-CH[(CH2)mRb]Rb, -S-(CHRa0m-Rb, -C(O)NH-(CH2)m-Rb, -C(O)NH-(CHRa)m-Rb, -O-(CH2)m-C(O)NH-(CH2)m-Rb, - S- (CH2)",-C (O) NH- (CH2),,-Rb,-O- (CHRa), n C (O) NH- (CHRa)",-Rb, -S-(CHRa)m-C(O)NH-(CHRa)m-Rb, -NH-(CH2)m-Rb, -NH-(CHRa)m-Rb, -NH[(CH2)mRb], - N[(CH2)mRb]2, -NH-C(O)-NH-(CH2)m-Rb, -NH-C(O)-(CH2)m-CHRbRb and -NH-(CH2)m-C(O)-NH-(CH2)m-Rb; each Ra is independently selected from the group consisting of hydrogen, (C1-C6) alkyl, (C3-C8) cycloalkyl, cyclohexyl, (C4-C11) cycloalkylalkyl, (C5-C10) aryl, phenyl, (C6-C16) arylalkyl, benzyl, 2-6 membered heteroalkyl, 3-8 membered cycloheteroalkyl, morpholinyl, piperazinyl, homopiperazinyl, piperidinyl, 4-11 membered cycloheteroalkylalkyl, 5-10 membered heteroaryl and 6-16 membered heteroarylalkyl ; each Rb is a suitable group independently selected from the group consisting of =O, <BR> <BR> <BR> -ORd, (Cl-C3) haloalkyloxy,-OCF3, =S,-SRd, =NRd, =NORD,-NRcR, halogen,-CF3,-CN, -NC, -OCN, -SCN, -NO, -NO2, =N2, -N3, -S(O)Rd, -S(O)2Rd, -S(O)2ORd, -S(O)NRcRc, -S(O)2NRcRc, -OS(O)Rd, -OS(O)2Rd, -OS(O)2ORd, -OS(O)2NRcRc, -C(O)Rd, -C(O)ORd, -C(O)NRcRc, -C(NH)NRcRc, -C(NRa)NRcRc, -C (NOH) Ran-C (NOH) NR'R",-OC (O) Rd, -OC(O)ORd, -OC(O)NRcRc, -OC (NH) NRcRc, -OC(NRa)NRcRc, -[NHC(O)]nRd, -[NRaC(O)]nRd -[NHC(O)]nORd, -[NRaC(O)]nORd, -[NHC(O)]nNRcRc, -[NRaC(O)]nNRcRc, -[NHC(NH)]nNRcRc and -[NRaC(NRa)]nNRcRc ; each Rc is independently Ra, or, alternatively, each R is taken together with the nitrogen atom to which it is bonded to form a 5 to 8-membered cycloheteroalkyl or heteroaryl which may optionally include one or more of the same or different additional heteroatoms and which is optionally substituted with one or more of the same or different Ra or suitable Rb groups; each Rd is independently Ra ; each in is independently an integer from 1 to 3; and each ra is independently an integer from 0 to 3.

In the compounds of structural formula (I), Ll and L2 represent, independently of one another, a direct bond or a linker. Thus, as will be appreciated by skilled artisans, the substituents R2 and/or R4 may be bonded either directly to their respective nitrogen atoms or, alternatively, spaced away from their respective nitrogen atoms by way of a linker. The identity of the linker is not critical and typical suitable linkers include, but are not limited to, (C1-C6) alkyldiyls, (C1-C6) alkanos and (C1-C6) heteroalkyldiyls, each of which may be optionally substituted with one or more of the same or different W groups, where R is as previously defined for structural formula (I). In a specific embodiment, Ll and L2 are each, independently of one another, selected from the group consisting of a direct bond, (C 1-C3) alkyldiyl optionally substituted with one or more of the same or different Ra, suitable Rb or R9 groups and 1-3 membered heteroalkyldiyl optionally substituted with one or more of the same or different Ra, suitable Rb or R9 groups, wherein R9 is selected from the group consisting of (C1-C3) alkyl,-ORa,-C (O) ORa, (C5-C10) aryl optionally substituted with one or more of the same or different halogens, phenyl optionally substituted with one or more of the same or different halogens, 5-10 membered heteroaryl optionally substituted with one or more of the same or different halogens and 6 membered heteroaryl optionally substituted with one or more of the same or different halogens; and Ra and Rb are as previously defined for structural formula (I). Specific R9 groups that may be used to substitute Ll and L2 include-ORa,-C (O) ORa, phenyl, halophenyl and 4-halophenyl, wherein Ra is as previously defined for structural formula (I).

In another specific embodiment, Ll and L2 are each, independently of one another, selected from the group consisting of methano, ethano and propano, each of which may be optionally monosubstituted with an R9 group, where R9 is as previously defined above.

In all of the above embodiments, specific Ra groups that may be included in R9 groups are selected from the group consisting of hydrogen, (C1-C6) alkyl, phenyl and benzyl.

In still another specific embodiment, Ll and L2 are each a direct bond such that the 2,4-pyrimidinediamine compounds of the invention are compounds according to structural formula (Ia) :

including salts, hydrates, solvates and N-oxides thereof, wherein R, R4, Rs and R6 are as previously defined for structural formula (I). Additional specific embodiments of the 2, 4-pyrimidinediamine compounds of the invention are described below.

In a first embodiment of the compounds of structural formula (I) and (Ia), L1, L2, R5, OR" Zu R6, R8, Ra, Rb, RC, Rd, m and n are as previously defined, R2 is'/°R", wherein each R3l, independently of the others, is methyl or (C1-C6) alkyl and R4 is X is selected from the group consisting of N and CH, Y is selected from the group consisting of O, S, SO, SO2, SONAR36, NH, NR35 and NR37, Z is selected from the group consisting of O, S, SO, SO2, SONAR36, NH, NR35 and NR37. Each R35 is, independently of the others, selected from the group consisting of hydrogen and R8, or, alternatively, two R3s bonded to the same carbon atom are taken together to form an oxo (=O), NH or NR38 group and the other two R35 are each, independently of one another, selected from the group consisting of hydrogen and R8. Each R36 is independently selected from the group consisting of hydrogen and (C1-C6) alkyl. Each R37 is independently selected from the group consisting of hydrogen and a progroup. R38 is selected from the group consisting of (C1-C6) alkyl and (C5-C14) aryl.

In particular, Y is O, Z is NH and X is N. Rs can be halogen and R6 is a hydrogen.

In a second embodiment of the compounds of structural formula (I) and (Ia), L1, L2, S Ruz R8, Rua, R, Rc, Rd, m, n, R35, R36, R37, R38, X, Y and Z are as previously defined, R2 wherein each R3l, independently of the others, is methyl or (C1-C6) alkyl Y/ ^ Jy. and R4 is ° Zi. In particular, Y is O, Z is NH and X is N. Rs can be halogen

and R6 is a hydrogen. In one particular aspect, Y is O, Z is NH, X is N and each R31 is methyl.

In a third embodiment of the compounds of structural formula (I) and (Ia), L1, Lez, Rs R6, R8, Ra, Rb, Rc, Rd, m, n, R31, R35, R36, R37, R38, X, Y and Z are as previously defined, R3 I \ N) YY NN, i'7 N I NN R31) yy N N N N N \/my MY 35 Z / RssY w , Y 35 Z X. s'. w and R is R or X and yy is 1-6. In particular, Y is O, Z is NH and X is N. R5 can be halogen and R6 is a hydrogen.

In a fourth embodiment of the compounds of structural formula (I) and (Ia), L1, L2, S R6, R8, Ra Rb, Rc, Rd, m, n, R35, R36, R37, R38, X, Y and Z are as previously defined, W m35 \ ° I ° Rss 35R 35 y 0 is'or"andRis R or Y 0 Z X . Substitution about the phenyl ring can be at the 2, 3, 4, 5 or 6 positions. In particular, Y is O, Z is NH and X is N. Rs can be halogen and R6 is a hydrogen.

In a fifth embodiment of the compounds of structural formula (I) and (Ia), Ll, L2, R5, R6, R8, Ra, Rb, Rc, Rd, m, n, R35, R36, R37, R38, X, Y and Z are as previously defined, R2 is a Y 11 1 phenyl group disubstituted with two Rb groups and R4 is 0 Z X '\ Substitution

about the R phenyl ring can be at the 2,3, 2,4, 2,5, 2,6, 3,4, 3,5, 3,6, 4,5, 4,6 or 5,6 positions, with the proviso that the following compounds are not included: N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-N2- (3-chloro-4- methoxyphenyl) -5-fluoro-2,4-pyrimidinediamine ; N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-N2- (3, 5-dimethoxyphenyl)-5- fluoro-2,4-pyrimidinediamine ; N2- (3, 4-Dichlorophenyl)-N4- (2, 2-dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5- fluoro-2,4-pyrimidinediamine ; N4- (2, 2-dimethyl-3-oxo-4H-5-pyrid [l, 4] oxazin-6-yl)-N2- (3-fluoro-4- methoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine; N2- (3, 5-Dichlorophenyl)-N4- (2, 2-dimethyl-3-oxo-4H-5-pyrid [ 1, 4] oxazin-6-yl)-5- fluoro-2, 4-pyrimidinediamine ; and N2- (3-Chloro-4-trifluoromethoxyphenyl)-N4- (2, 2-dimethyl-3-oxo-4H-5- pyrid [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine.

In particular, Y is O, Z is NH and X is N. Rs can be halogen and R6 is a hydrogen.

In certain aspects, each Rb independently is selected from (C1-C6) alkoxy, (C 1-16) alkyl, (C1-C6) perhaloalkyls, halogens, carboxylic acid, carboxylic ester, carboxamides, sulfonamides and imidazoles.

In a sixth embodiment of the compounds of structural formula (1) and (Ia), Ll, L2, RI, R, RI, Rua Ruz Rc, Rd, na, n, R35, R36, R37, R38, X, Y and Z are as previously defined, R is a phenyl group trisubstituted with three Rb groups and R4 is Substitution about the R2 phenyl ring can be at the 2,3, 4,2, 3,5, 2,3, 6,2, 4,5, 2,4, 6,2, 5,6, 3,4, 5,3, 4,6, 3,5, 6, or 4,5, 6 positions, with the proviso that the following compounds are not included: N2- (3-Chloro-4-methoxy-5-methylphenyl)-N4- (2, 2-dimethyl-3-oxo-4H-5- pyrid [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine ;

N2- (3-Chloro-4-hydroxy-5-methylphenyl)-N4- (2, 2-dimethyl-3-oxo-4H-5- pyrid [1,4] oxazin-6-yl) -5-fluoro-2,4-pyrimidinediamine ; and N2- (3, 5-Dimethyl-4-methoxyphenyl)-N4- (2, 2-dimethyl-3-oxo-4H-5- pyrid [1,4] oxazin-6-yl) -5-fluoro-2,4-pyrimidinediamine.

In particular, Y is O, Z is NH and X is N. Rs foan be halogen and R6 is a hydrogen.

In certain aspects, each Rb independently is selected from (C1-C6) alkoxy, (C1-16) alkyl, (C1-C6) perhaloalkyls, halogens, carboxylic acid, carboxylic esters, carboxamides, sulfonamides In certain embodiments, the compounds disclosed in U. S. Patent Application Serial Nos. 10/631,029, filed on July 29,2003 and 10/355,543, filed January 31,2003, respectively, are not included within the scope of the present application.

In a seventh embodiment of the compounds of structural formula (I) and (Ia), R5, R6, Ll and L are as previously defined, R is selected from the group consisting of (C1-C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3-C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different W groups, 3-8 membered cycloheteroalkyl optionally substituted with one or more of the same or different R8 groups, (C5-C15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R8 groups and 5-15 membered heteroaryl optionally substituted with one or more of the same or Rea N different R8 groups, R-is"', R (C5-CIO) aryl optionally substituted with one or more of the same or different R8 groups or phenyl optionally substituted with one or more of the same or different R8 groups and R8 is as previously defined.

In an eigth embodiment of the compounds of structural formulae (I) and (Ia), R5, R6, R8, Ll and L2 are as previously defined, R2 is selected from the group consisting of wherein each R21 is independently a

halogen atom or an alkyl optionally substituted with one or more of the same or different halo groups, R2 and R23 are each, independently of one another, a hydrogen atom, methyl or ethyl group optionally substituted with one or more of the same or different halo groups and R4 is a (C3-C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups.

In a nineth embodiment of the compounds of structural formulae (I) and (Ia), R5, R6, R8, Ll and L2 are as previously defined, R2 is selected from the group consisting of (Cl-C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3-C8) cycloalkyl optionally substituted with one or more of the same or different R3 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 3-8 membered cycloheteroalkyl optionally substituted with one or more of the same or different R8 groups, (C5-C 15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R8 groups and 5-15 membered heteroaryl optionally substituted with one or more of the same or different R8 groups, R4 is R35 is a hydrogen or Rg ; and R45 is a (C3-C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups..

In a tenth embodiment compounds of structural formulae

R selected from the group consisting of (C1-C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3-C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 3-8 membered cycloheteroalkyl optionally substituted with one or more of the same or different R groups, (C5-C15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R groups and 5-15 membered heteroaryl optionally substituted with one or more of the same or different R8 groups, R4 is selected from the group consisting of hydrogen, (C1-C6) alkyl optionally substituted with one or more of the same or different R 8 groups, (C3-C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 3-8 membered cycloheteroalkyl optionally substituted with one or more of the same or different R8 groups, (C5-C15) aryl optionally substituted with one or more of the same or different R groups, phenyl optionally substituted with one or more of the same or different R8 groups and 5-15 membered heteroaryl optionally substituted with one or more of the same or different R8 groups, and R5s is selected from the group consisting of (C 1-C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3-C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 3-8 membered cycloheteroalkyl optionally substituted with one or more of the same or different R8 groups, (C5-C15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R8 groups and 5-15 membered heteroaryl optionally substituted with one or more of the same or different R8 groups.

In an eleveth embodiment of the compounds of structural formulae (I) and (Ia), R5, N R6, R8, Ll and L2 are as previously defined, R2 is and R4 is selected from the group consisting of hydrogen, (C1-C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3-C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 3-8 membered cycloheteroalkyl optionally

substituted with one or more of the same or different R3 groups, (C5-C15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R8 groups and 5-15 membered heteroaryl optionally substituted with one or more of the same or different R8 groups.

In a twelfth embodiment of the compounds of structural formulae (1) and (Ia), R5, Ras po N R6, R8, L and L are as previously defined, R2 is'or I of N-R35 R3/'R4 is selected from the group consisting of hydrogen, (C1-C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3-C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 3-8 membered cycloheteroalkyl optionally substituted with one or more of the same or different R8 groups, (C5-C15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R8 groups and 5-15 membered heteroaryl optionally substituted with one or more of the same or different R8 groups and each R35 individually is a hydrogen or a suitable R8.

In a thirteenth embodiment of the compounds of structural formulae (1) and (Ia), R5, R6, R8, Ll and L2 are as previously defined, W is selected from the group consisting of (C 1-C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3-C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 3-8 membered cycloheteroalkyl optionally substituted with one or more of the same or different R8 groups, (C5-C15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R8 groups and 5-15 membered heteroaryl optionally substituted with one or more of the Rss N same or different R8 groups, R4 is and R35 is a hydrogen or a suitable R8. same or different R groups, 1S In a fourteenth embodiment, the compounds of structural formulae (1) and (Ia), R5, R6, R8, Ll and L2 are as previously defined, R4 is a substituted phenyl group, substituted

. 11'---"'N N/ with the same or different R8 ou s and RZ is "Zri""_ gr p wherem yy-1 to

6. In one aspect, the R4 phenyl group is di or tri substituted with the same or different R8 groups, and in particular, halogen atoms. In particular, R4 can be substituted at the 3 and 4 positions relative to attachment to the N4 amine, particularly with halogen atoms and/or alkoxy groups.

In a fifteenth embodiment, the compounds of structural formulae (I) and (Ia), R5, R6, R8, Ll and L2 are as previously defined, R4 is a substituted phenyl group, substituted with g mN w \N , CN the same or different R8 groups and W is \. In one aspect, the R4 phenyl

group is di or tri substituted with the same or different R8 groups, and in particular, halogen atoms. In particular, R4 can be substituted at the 3 and 4 positions relative to attachment to the N4 amine, particularly with halogen atoms and/or alkoxy groups.

In a sixteenth embodiment, the compounds of structural formulae (1) and (Ia), R5, R6, R8, L'and l are as previously defined, R4 is a substituted phenyl group, substituted N w \N I N with the same or different R8 groups and R2 is \. In one aspect, the R4 phenyl group is di or tri substituted with thesame or different R8 groups, and in particular, halogen atoms. In particular, R4 can be substituted at the 3 and 4 positions relative to attachment to the N4 amine, particularly with halogen atoms and/or alkoxy groups.

In a seventeenth embodiment, the compounds of structural formulae (I) and (Ia), R5, R6, R8, Ll and L2 are as previously defined, R4 is a substituted phenyl group, substituted

N 35 with the same or different R8 groups and RZ is I35 ss. , wherein R is an w alkylalkoxy group, and in particular is In one aspect, the R4 phenyl

group is di or tri substituted with the same or different R8 groups, and in particular, halogen atoms. In particular, R4 can be substituted at the 3 and 4 positions relative to attachment to the N4 amine, particularly with halogen atoms and/or alkoxy groups.

In a eighteenth embodiment, the compounds of structural formulae (I) and (la), R5, R6, R8, Ll and L2 are as previously defined, R4 is a substituted phenyl group, substituted g XN N/ with the same or different R groups and R2 is R35, wherein is an alkyl ON group, and in particular is/. In one aspect, the R4 phenyl group is di or tri P P Y b''

substituted with the same or different R groups, and in particular, halogen atoms. In particular, R4 can be substituted at the 3 and 4 positions relative to attachment to the N4 amine, particularly with halogen atoms and/or alkoxy groups.

In a ninteenth embodiment, the compounds of structural formulae (I) and (Ia), R5, R35 R35 i R35 R6, R8, L'and L are as previously defined R4 is R35 and R2 is _ I \ o N and in particular, is substituted at the 3 or 4 position with the

isoxazole. Y is selected from the group consisting of O, S, SO, SO2, SONAR36, NH and NR37. Z is selected from the group consisting of O, S, SO, SO2, SONAR36, NH and NR37.

Each W5 is, independently of the others, selected from the group consisting of hydrogen and R8, or, alternatively, two R35 bonded to the same carbon atom are taken together to form an oxo (=O), NH or NR38 group and the other two R35 each, if present, independently of one another, are selected from the group consisting of hydrogen and R8. Each R36 is independently selected from the group consisting of hydrogen and (C1-C6) alkyl. Each R37 is independently selected from the group consisting of hydrogen and a progroup.. R38 is selected from the group consisting of (C1-C6) alkyl and (C5-C14) aryl..

In certain aspects, R37 is selected from the group consisting of aryl, arylalkyl, heteroaryl, Rua Rb-CRaRb-O-C (O) R8, -CRaRb-O-PO(OR8)2, -CH2-O-PO(OR8)2, - CH2-PO (OR$) 2,-C (O)-CRaRb-N (CH3) 2,-CRaRb-O-C (O)-CRaRb-N (CH3) 2,-C (O) R, -C(O) CF3 and-C (O)-NR8-C (O) R8 In one aspect, Y is oxygen, Z is NH and one or more of R35 is an alkyl group, and in particular, a methyl group. In certain, two R35's form a gem dialkyl moiety, in particular, a gem dimethyl moiety adjacent to the NH depicted as In a twentieth embodiment, the compounds of structural formulae (I) and (Ia), R5, Ras 0 I R3S\j J' R, R, L and L are as previously defined, R is, wherein each R are as defined above, and in particular are both halogen atoms, e. g. , fluorine, and R2 is a substituted phenyl group, substituted with the same or different R8 groups. In one aspect, the R phenyl group is di or tri substituted with the same or different R8 groups, and in particular, halogen atoms. In particular, R2 can be substituted at the 3 and 5 positions relative to attachment to the N2 amine, particularly with halogen atoms and/or alkoxy groups.

In a twenty first embodiment, the compounds of structural formulae (1) and (Ia), R5, ., Y'Y° zu R6, R8, L'and L'are as previously defined, R4 is tXZX wherein Y and Z are

_ i o 2 defined as above and R is and in particular is substituted at the 3 or 4 position with the isoxazole. In one aspect of the thirty ninth embodiment with regard to R4, Y is NH and Z is O, e. g., In a twenty second embodiment the compounds of structural formulae (I) and (la), 0 R8AcNH 0 R5, R6, R8, Ll and L2 are as previously defined, R4 is o NH2 0 zizi NHR'or oRs wherein R8 and R are as defined above and W is a phenyl zu th ß In one aspect-OR, R8 is a group substituted at the 3 or 4 posltlon W1 hydrogen atom.

In a twenty third embodiment, the compounds of structural formulae (I) and (Ia), R5, o/ R6, R, Ll and L2 are as previously defined, R4 is \ot and R2 is a substituted phenyl group, substituted with at least two of the same or different R8 groups as defined above. Suitable examples include compounds 340,343, 349,350 and 351.

In a twenty fourth embodiment, the compounds of structural formulae (I) and (Ia), 0 R5, R6, R8, Ll and L2 are as previously defined, R4 is \oJg and R is CoX6, o In a twenty fifth embodiment, the compounds of structural formulae (I) and (Ia), R5, R6, R8, L'and L'are as previously defined, R4 is and W is R35 I wherein Y and R35 are as defined above. Suitable examples include

compounds 368, 381, 382,383 and 384.

In a twenty sixth embodiment, the compounds of structural formulae (I) and (Ia), R5, R6, R8, Ll and L2 are as previously defined, R4 is selected from the group consisting of (C1-C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3-C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 3-8 membered cycloheteroalkyl optionally substituted with one or more of the same or different R8 groups, (C5-C15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R groups and 5-15 membered heteroaryl optionally substituted with one or more of the Rss - I I 8 2 35 same or different R8 groups and R is o wherein R is as defined above.

Suitable examples include compounds 205 and 206.

In a twenty seventh embodiment the compounds of structural formulae (I) and (Ia), spi R5, R6, R8, Ll and L2 are as previously defined, (,, and R2 is a phenyl group substituted with one or more of the same R 8 groups. Suitable examples include compounds 328,329, 330,341, 553,554, 555,556, 559 and 560.

In a twenty eighth embodiment, the compounds of structural formulae (I) and (Ia), R5, R6, R8, Ll and L are as previously defined, R4 is selected from the group consisting of (C1-C6) alkyl optionally substituted with one or more of the same or different R8 groups,

(C3-C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 3-8 membered cycloheteroalkyl optionally substituted with one or more of the same or different R8 groups, (C5-C15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R8 groups and 5-15 membered heteroaryl optionally substituted with one or more of the "0 2 1,, wherein Y is as defined above or same or different R8 groups and R 1S is NR35 and R35 is as defined above. Suitable examples include compounds 1070,1071, 1073,1074, 1075,1076, 1078,1080, 1085,1091 and 1092.

In a twenty nineth embodiment, the compounds of structural formulae (I) and (Ia), N H2N HN.. R5, R6, R8, L'and L2 are as previously defined, R4 is HNN, wherein R2 is a substituted phenyl group or an indazole, substituted with one or more of the same or different R3 groups as defined above. Suitable examples include compounds 1251, 1252, 1253,1254 and 1255.

In a thirtieth embodiment, the compounds of structural formulae (I) and (Ia), R5, R6, Ras 0 Rss% \ I _ O N R8, Ll and L2 are as previously defined, is wherein each R3s _ I \ o z. independently is as described above and R is Suitable examples include compounds 217, 218, 219,220, 221,222, 223,224, 225,226, 227,228, 229,230, 231,232, 233,234, 236,237, 238,239, 240,241, 242,243, 244,245, 246,247, 1281,1283, 1283, 1284,1285, 1287, 1288,1289, 1290 and 1291.

In a thirty first embodiment, the compounds of structural formulae (I) and (Ia), R5, 0 R20 4 Ry Rz-1 R6, R8, Ll and LZ are as previously defined, R4 is RP'wherein RZ is

a hydrogen or lower alkyl group, W and Ry are each independently lower alkyl groups, or taken together form a cycloalkyl and RI is a halogen atom or a lower alkyl group and R2 is as defined above. Suitable examples include compounds 402,403, 407,408, 409 and 410.

In a thirty second embodiment, the compounds of structural formulae (I) and (la), / N-Rss I R5, 2areas previously defined, (-d is 9N/and R4 is B" Rl-R"0 zu / ° N. Rl l and R are each, independently of one another, selected from the group consisting of alkyl, alkoxy, halogen, haloalkoxy, aminoalkyl and hydroxyalkyl ; In a thirty third embodiment, the compounds of structural formulae (I) and (Ia), R5, R6, R8, Ll and L2 are as previously defined, W is selected from (C1-C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3-C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 3-8 membered cycloheteroalkyl optionally substituted with one or more of the same or different R8 groups, (C5-C15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different R8 groups and 5-15 membered heteroaryl optionally substituted with one or more of the same or different R8 ae u Rzt R2t _ Rar _ OR / groups, R48 oR23, Ræ oR23 0 A R23 N) R29 I \ N H ; non

R5, R6, R8, Ra, Rb, Rc, Rd, m and ra are as described above; each R21, R22 and R23 are each, independently bf one another, as described above and in particular, an alkyl group; each R28 individually is a halogen or alkoxy; R29 is a (C1-C6) alkyl or (C3-C9) cycloalkyl ; Wo is an alkyl group or a halogen; X is selected from the group consisting of N and CH; Y, Z, R3s, R36, R37 and R38 are as described above;

each R46, R and and independently is selected from the group consisting of a hydrogen, alkyl, alkoxy, hydroxyl, halogen, isoxazole, piperazino, N-alkyl piperazine, morpholino and CH3NHC (O) CH2O-, with the proviso that R46, R47 and R48 are all not hydrogen and when one of R46, R47 or R48 is isoxazole, piperazino, N-alkyl piperazine, morpholino or CH3NHC (O) CH20-, then the remaining R46, R47 or R48 are hydrogen; R50 is an alkyl group or- (CH2) qOH; q is an integer from 1 to 6; R52 is an alkyl group or a substituted alkyl group pis 1, 2 or 3 ; and x = 1-8.

In a thirty fourth embodiment of the compounds of structural formulae (I) and (Ia), R2, R4, R5, Ll and L2 are as previously described for their respective structures (1) and (Ia)" with the proviso that R is not 3,4, 5-trimethoxyphenyl, 3,4, 5-tri (C1-C6) alkoxyphenyl or

where R21, R22 and R23 are as defined for Rl, RZ and R3, respectively of U. S. Patent No. 6,235, 746, the disclosure of which is incorporated by reference. In a specific embodiment of this first embodiment, R21 is hydrogen, halo, straight-chain or branched (C1- C6) alkyl optionally substituted with one or more of the same or different R25 groups, hydroxyl, (C1-C6) alkoxy optionally substituted with one or more of the same or different phenyl or R25 groups, thiol (-SH), (C1-C6) alkylthio optionally substituted with one or more of the same or different phenyl or R25 groups, amino (-NH2), -NHR26 or -NR26R26; R22 and R23 are each, independently of one another, a (C 1-C6) straight-chain or branched alkyl optionally substituted with one or more of the same or different R25 groups ; W 5 is selected from the group consisting of halo, hydroxyl, (C1-C6) alkoxy, thiol, (C1-C6) alkylthio, (C1- C6) alkylamino and (C1-C6) dialkylamino; and each R26 is independently a (C1-C6) alkyl

optionally substituted with one or more of the same or different phenyl or R25 groups or a -C (o) R27, where R27 is a (C 1-C6) alkyl optionally substituted with one or more of the same or different phenyl or R25 groups.

In another specific embodiment, R21 is methoxy optionally substituted with one or more of the same or different halo groups and/or R22 and R23 are each, independently of one another, a methyl or ethyl optionally substituted with one or more of the same or different halo groups.

In a thirty fifth embodiment, the compounds of structural formulae (I) and (la), R5, R6, R8, Ll and L2 are as previously defined,: R5, R6, R30, R3s and x are as defined above. In certain embodiments, x is 2 through 4. In other embodiments, R35 is a methyl group. In still additional embodiments, Wo is chlorine, methyl or trifluoromethyl. In still other embodiments, Rs is fluorine and Ru ils hydrogen.

In a thirty sixth embodiment the 2,4-pyrimidinediamine includes those compounds according to structures I and I (a) wherein R2 is selected from the group consisting of (C1-C6) alkyl optionally substituted with one or more of the same or different R8 groups, (C3-C8) cycloalkyl optionally substituted with one or more of the same or different R8 groups, cyclohexyl optionally substituted with one or more of the same or different R8 groups, 3-8 membered cycloheteroalkyl optionally substituted with one or more of the same or different kg groups, (C5-C15) aryl optionally substituted with one or more of the same or different R8 groups, phenyl optionally substituted with one or more of the same or different Rs groups and 5-15 membered heteroaryl optionally substituted with one or more of the same or different R8 groups. R4 is R5, R6 and R8 are described as above. In certain embodiments, R@ is a fluorine atom and R@ is a hydrogen atom.. In certain embodiments, R is a di or tri-substituted phenyl group.

In a thirty seventh embodiment, the invention pertains to 2, 4-pyrimidinediamine R46 oR37 _ Ra- / compounds according to structures I and I (a) wherein R is R43 A oR23, R21 OR 21 O\ S O \v <R22 or oR23 R is ° H and RS R6 R22 and R23 R46 R4

and R48 are as defined above, each R21, independently of one another, is an alkyl group.. In certain embodiments, Rs is a fluorine atom and R6 is a hydrogen atom..

In a thirty eighth embodiment, the present invention relates to 2,4- pyrimidinediamine compounds according to structures I and I (a) wherein R2 is

Rs R6 Rs R21, R23, R28, R3s R36, R37, R38, Y, Z, Ra, Rb, Rc, Rd, m and n are as described above, and X is selected from the group consisting of N and CH. In a particular embodiment, W8 is a methoxy. In another embodiment, R23 is methyl. In particular embodiments, R21 is a methyl group. In other embodiments, each W8 is chlorine. In still additional embodiments, R21 is a methyl group and at least one R28 is a chlorine. In another embodiment, W8 is a methoxy.

In a thirty nineth embodiment, the present invention provides pyrimidinediamine compounds according to structures I and I (a) wherein R2 is

0 N \H Ras \ ! N R3s R iS, H N O N/ % \ V°"Y° R is,,,, H, Rss Y Me p \ \ ''Ras H, H or R, R, R, R, R, each

R28, R29, Ra, Rb, Rc. Rd, m and n, X, Y, Z, each R35, each R36, each R37 and R38 are as described above.

In certain embodiments, R29 is a t-butyl group. In other embodiments, R21 is a methyl group. In certain embodiments, each R28 is a chlorine. In still another embodiment, R21 is a methyl group and at least one of R28 is a chlorine.

In a fortieth embodiment, the invention pertains to 2,4-pyrimidinediamine compounds according to structures I and I (a) wherein R2 is 0 N/ \N zu R35 y Rays R35 I R20 Rze R35 x I 4 za "y RZB S" ss Z X 5 6 8 21 R is R,, R, R, R, R, R, each

R28 Ra, Rb, Rc. Rd, m, n, p, X, Y, Z, each R3s, each R36, each R37 and R38 are as described above. In particular embodiments, Wl is a methyl group. In other embodiments, each W8 is a chlorine. In still other embodiments, Wl is a methyl group and at least one of R28 is a chlorine. In still another aspect, p is 1 or 2.

In a forty first embodiment, the invention relates to 2,4-pyrimidinediamine aN/R 50 R" Z.//\ Rsz 4. compounds according to structures I and I (a) wherein R is , R is Rays FRe3 5 ruz R35 Rays /, S' R28/, S as X 5 6 8 21 28 a ,, or , R, R, R, R, eachR, R,

b RC Rd X Y Z R3s R36 R37 R38 R50 and R52 are as described above.

In certain aspects, Wo is-CH2CH2-OH or methyl. In another aspect, R52 is trifluoromethyl. In still another aspect, at least one R8 is a chlorine. In yet another aspect, R50 is a methyl and at least one R8 is a chlorine.

In a forty second embodiment, applicable to the first through forty first embodiments, Rs of the pyrimidine ring is a halogen atom, such as fluorine, and R6 of the pyrimidine ring is a hydrogen atom.

In a forty third embodiment, Ll and L2 are covalent bonds for the above-identified embodiments.

Also specifically described are combinations of the above first through forty third embodiments.

Those of skill in the art will appreciate that the 2,4-pyrimidinediamine compounds described herein may include functional groups that can be masked with progroups to create prodrugs. Such prodrugs are usually, but need not be, pharmacologically inactive until converted into their active drug form. Indeed, many of the active 2,4-pyrimidinediamine compounds described in TABLE 1, include promoieties that are hydrolyzable or otherwise cleavable under conditions of use. For example, ester groups commonly undergo acid- catalyzed hydrolysis to yield the parent carboxylic acid when exposed to the acidic conditions of the stomach, or base-catalyzed hydrolysis when exposed to the basic conditions of the intestine or blood. Thus, when administered to a subject orally, 2,4- pyrimidinediamines that include ester moieties may be considered prodrugs of their corresponding carboxylic acid, regardless of whether the ester form is pharmacologically active. Referring to TABLE 1, numerous ester-containing 2, 4-pyrimidinediamines of the invention are active in their ester, "prodrug"form.

In the prodrugs of the invention, any available functional moiety may be masked with a progroup to yield a prodrug. Functional groups within the 2,4-pyrimidinediamine compounds that may be masked with progroups for inclusion in a promoiety include, but are not limited to, amines (primary and secondary), hydroxyls, sulfanyls (thiols), carboxyls, etc. Myriad progroups suitable for masking such functional groups to yield promoieties that are cleavable under the desired conditions of use are known in the art. All of these progroups, alone or in combinations, may be included in the prodrugs of the invention.

In one illustrative embodiment, the prodrugs of the invention are compounds according to structural formula (I) in which Rc and Rd may be, in addition to their previously-defined alternatives, a progroup.

Those of skill in the art will appreciate that many of the compounds and prodrugs of the invention, as well as the various compound species specifically described and/or illustrated herein, may exhibit the phenomena of tautomerism, conformational isomerism, geometric isomerism and/or optical isomerism. For example, the compounds and prodrugs of the invention may include one or more chiral centers and/or double bonds and as a consequence may exist as stereoisomers, such as double-bond isomers (i. e. , geometric isomers), enantiomers and diasteromers and mixtures thereof, such as racemic mixtures. As another example, the compounds and prodrugs of the invention may exist in several tautomeric forms, including the enol form, the keto form and mixtures thereof. As the various compound names, formulae and compound drawings within the specification and claims can represent only one of the possible tautomeric, conformational isomeric, optical isomeric or geometric isomeric forms, it should be understood that the invention encompasses any tautomeric, conformational isomeric, optical isomeric and/or geometric isomeric forms of the compounds or prodrugs having one or more of the utilities described herein, as well as mixtures of these various different isomeric forms. In cases of limited rotation around the 2,4-pyrimidinediamine core structure, atropisomers are also possible and are also specifically included in the compounds of the invention.

Moreover, skilled artisans will appreciate that when lists of alternative substituents include members which, owing to valency requirements or other reasons, cannot be used to substitute a particular group, the list is intended to be read in context to include those members of the list that are suitable for substituting the particular group. For example, skilled artisans will appreciate that while all of the listed alternatives for Rb can be used to

substitute an alkyl group, certain of the alternatives, such as =O, cannot be used to substitute a phenyl group. It is to be understood that only possible combinations of substituent-group pairs are intended.

The compounds and/or prodrugs of the invention may be identified by either their chemical structure or their chemical name. When the chemical structure and the chemical name conflict, the chemical structure is determinative of the identity of the specific compound.

Depending upon the nature of the various substituents, the 2,4-pyrimidinediamine compounds and prodrugs of the invention may be in the form of salts. Such salts include salts suitable for pharmaceutical uses ("pharmaceutically-acceptable salts"), salts suitable for veterinary uses, etc. Such salts may be derived from acids or bases, as is well-known in the art.

In one embodiment, the salt is a pharmaceutically acceptable salt. Generally, pharmaceutically acceptable salts are those salts that retain substantially one or more of the desired pharmacological activities of the parent compound and which are suitable for administration to humans. Pharmaceutically acceptable salts include acid addition salts formed with inorganic acids or organic acids. Inorganic acids suitable for forming pharmaceutically acceptable acid addition salts include, by way of example and not limitation, hydrohalide acids (e. g., hydrochloric acid, hydrobromic acid, hydriodic, etc.), sulfuric acid, nitric acid, phosphoric acid, and the like. Organic acids suitable for forming pharmaceutically acceptable acid addition salts include, by way of example and not limitation, acetic acid, trifluoroacetic acid, propionic acid, hexanoic acid, cyclopentanepropionic acid, glycolic acid, oxalic acid, pyruvic acid, lactic acid, malonic acid, succinic acid, malic acid, maleic acid, fumaric acid, tartaric acid, citric acid, palmitic acid, benzoic acid, 3- (4-hydroxybenzoyl) benzoic acid, cinnamic acid, mandelic acid, alkylsulfonic acids (e. g., methanesulfonic acid, ethanesulfonic acid, 1,2-ethane-disulfonic acid, 2-hydroxyethanesulfonic acid, etc.), arylsulfonic acids (e. g., benzenesulfonic acid, 4-chlorobenzenesulfonic acid, 2-naphthalenesulfonic acid, 4-toluenesulfonic acid, cycloalkylsulfonic acids (e. g., camphorsulfonic acid), 4-methylbicyclo [2.2. 2]-oct-2-ene-1- carboxylic acid, glucoheptonic acid, 3-phenylpropionic acid, trimethylacetic acid, tertiary butylacetic acid, lauryl sulfuric acid, gluconic acid, glutamic acid, hydroxynaphthoic acid, salicylic acid, stearic acid, muconic acid, and the like.

Pharmaceutically acceptable salts also include salts formed when an acidic proton present in the parent compound is either replaced by a metal ion (e. g., an alkali metal ion, an alkaline earth metal ion or an aluminum ion), an ammonium ion or coordinates with an organic base (e. g., ethanolamine, diethanolamine, triethanolamine, N-methylglucamine, morpholine, piperidine, dimethylamine, diethylamine, etc.).

The 2,4-pyrimidinediamine compounds and of the invention, as well as the salts thereof, may also be in the form of hydrates, solvates and N-oxides, as are well-known in the art.

6.3 Methods of Synthesis The compounds and prodrugs of the invention may be synthesized via a variety of different synthetic routes using commercially available starting materials and/or starting materials prepared by conventional synthetic methods. Suitable exemplary methods that may be routinely adapted to synthesize the 2,4-pyrimidinediamine compounds and prodrugs of the invention are found in U. S. Patent No. 5, 958, 935, U. S. Patent Application 10/355,543, filed January 31,2003 (US Publication US20040029902-A1), WO 03/063794, published August 1,2003, U. S. Patent Application 10/631,029, filed July 29,2003 and WO 2004/014382, published February 19,2004, the disclosures of which are incorporated herein by reference. All of the compounds of structural formulae (I), (Ia) and (II) may be prepared by routine adaptation of these methods.

A variety of exemplary synthetic routes that can be used to synthesize the 2,4- pyrimidinediamine compounds of the invention are described in Schemes (I)- (XI), below.

In Schemes (I)- (XI), like-numbered compounds have similar structures. These methods r may be routinely adapted to synthesize the prodrugs according to structural formula (II).

In one exemplary embodiment, the compounds can be synthesized from substituted or unsubstituted uracils or thiouracils as illustrated in Scheme (I), below: Scheme (I) Rs Rs H2NRz R5 son 4. y a\ 6 2 \/ L 1 R N D'N x 1 equiv 4 L, L"2 8 H 3 H R 4'L2, NH2 RQ. L NH2 10 1 equiv 6 R6 6 R R R 5/NH PoX3 R 5 N' t I _ 5 X : 5e R5 Y (other halogenating agnt excess L11 2 H H 3 H 2 C4 halide is More 4 12 reactive towards nucleophiles 10 excess R6 R5 Rk N' 2 5 2 R4 Ha NXH R4 H 3 H 14

In Scheme (1), R, R4, R5, R6, Ll and L2 are as previously defined for structural formula (I), X is a halogen (e. g. , F, Cl, Br or I) and Y and Y'are each, independently of one another, selected from the group consisting of O and S. Referring to Scheme (I), uracil or thiouracil 2 is dihalogenated at the 2-and 4-positions using standard halogenating agent POX3 (or other standard halogenating agent) under standard conditions to yield 2,4-bishalo pyrimidine 4. Depending upon the Rs substituent, in pyrimidine 4, the halide at the C4 position is more reactive towards nucleophiles than the halide at the C2 position. This differential reactivity can be exploited to synthesize 2,4-pyrimidinediamines according structural formula (I) by first reacting 2,4-bishalopyrimidine 4 with one equivalent of amine 10, yielding 4N-substituted-2-halo-4-pyrimidineamine 8, followed by amine 6 to yield a 2,4-pyrimidinediamine according structural formula (I). 2N, 4N-bis (substituted)-2, 4-

pyrimidinediamines 12 and 14 can be obtained by reacting 2,4-bishalopyrimidine 4 with excess 6 or 10, respectively.

In most situations, the C4 halide is more reactive towards nucleophiles, as illustrated in the Scheme. However, as will be recognized by skilled artisans, the identity of the Rs substituent may alter this reactivity. For example, when Rs is trifluoromethyl, a 50: 50 mixture of 4N-substituted-4-pyrimidineamine 8 and the corresponding 2N-substituted-2- pyrimidineamine is obtained. Regardless of the identity of the Rs substituent, the regioselectivity of the reaction can be controlled by adjusting the solvent and other synthetic conditions (such as temperature), as is well-known in the art.

The reactions depicted in Scheme (I) may proceed more quickly when the reaction mixtures are heated via microwave. When heating in this fashion, the following conditions may be used: heat to 175°C in ethanol for 5-20 min. in a Smith Reactor (Personal Chemistry) in a sealed tube (at 20 bar pressure).

The uracil or thiouracil 2 starting materials may be purchased from commercial sources or prepared using standard techniques of organic chemistry. Commercially available uracils and thiouracils that can be used as starting materials in Scheme (I) include, by way of example and not limitation, uracil (Aldrich #13, 078-8; CAS Registry 66-22-8) ; 2- thio-uracil (Aldrich #11, 558-4; CAS Registry 141-90-2); 2,4-dithiouracil (Aldrich &num 15, 846- 1 ; CAS Registry 2001-93-6); 5-acetouracil (Chem. Sources Int'1 2000 ; CAS Registry 6214- 65-9); 5-azidouracil; 5-aminouracil (Aldrich &num 85, 528-6; CAS Registry 932-52-5); 5-bromouracil (Aldrich #85, 247-3; CAS Registry 51-20-7); 5- (trans-2-bromovinyl)-uracil (Aldrich #45, 744-2; CAS Registry 69304-49-0); 5- (trans-2-chlorovinyl)-uracil (CAS Registry 81751-48-2) ; 5- (trans-2-carboxyvinyl)-uracil ; uracil-5-carboxylic acid (2,4-dihydroxypyrimidine-5-carboxylic acid hydrate; Aldrich #27, 770-3; CAS Registry 23945-44-0) ; 5-chlorouracil (Aldrich #22, 458-8 ; CAS Registry 1820-81-1); 5-cyanouracil (Chem. Sources Int'l 2000 ; CAS Registry 4425-56-3); 5-ethyluracil (Aldrich #23, 044-8; CAS Registry 4212-49-1); 5-ethenyluracil (CAS Registry 37107-81-6); 5-fluorouracil (Aldrich #85, 847-1; CAS Registry 51-21-8) ; 5-iodouracil (Aldrich #85, 785-8; CAS Registry 696-07-1); 5-methyluracil (thymine; Aldrich #13, 199-7; CAS Registry 65-71-4); 5-nitrouracil (Aldrich #85, 276-7; CAS Registry 611-08-5); uracil-5-sulfamic acid (Chem.

Sources Int'l 2000 ; CAS Registry 5435-16-5); 5- (trifluoromethyl)-uracil (Aldrich #22, 327- 1; CAS Registry 54-20-6); 5- (2, 2,2-trifluoroethyl)-uracil (CAS Registry 155143-31-6);

5- (pentafluoroethyl)-uracil (CAS Registry 60007-38-3); 6-aminouracil (Aldrich #A5060-6 ; CAS Registry 873-83-6) uracil-6-carboxylic acid (orotic acid; Aldrich #0-840-2 ; CAS Registry 50887-69-9); 6-methyluracil (Aldrich #D11, 520-7; CAS Registry 626-48-2); uracil-5-amino-6-carboxylic acid (5-aminoorotic acid; Aldrich #19, 121-3; CAS Registry #7164-43-4) ; 6-amino-5-nitrosouracil (6-amino-2, 4-dihydroxy-5-nitrosopyrimidine ; Aldrich #27, 689-8; CAS Registry 5442-24-0); uracil-5-fluoro-6-carboxylic acid (5-fluoroorotic acid; Aldrich #42, 513-3; CAS Registry 00000-00-0); and uracil-5-nitro-6-carboxylic acid (5-nitroorotic acid; Aldrich #18, 528-0; CAS Registry 600779-49-9). Additional 5-, 6-and 5,6-substituted uracils and/or thiouracils are available from General Intermediates of Canada, Inc. , Edmonton, Alberta, CA (www. generalintermediates. com) and/or Interchim, France (www. interchim. com), or may be prepared using standard techniques. Myriad textbook references teaching suitable synthetic methods are provided infra.

Amines 6 and 10 may be purchased from commercial sources or, alternatively, may be synthesized utilizing standard techniques. For example, suitable amines may be synthesized from nitro precursors using standard chemistry. Specific exemplary reactions are provided in the Examples section. See also Vogel, 1989, Practical Organic Chemistry, Addison Wesley Longman, Ltd. and John Wiley & Sons, Inc.

Skilled artisans will recognize that in some instances, amines 6 and 10 and/or substituents Rs and/or R6 on uracil or thiouracil 2 may include functional groups that require protection during synthesis. The exact identity of any protecting group (s) used will depend upon the identity of the functional group being protected, and will be apparent to these of skill in the art. Guidance for selecting appropriate protecting groups, as well as synthetic strategies for their attachment and removal, may be found, for example, in Greene & Wuts, Protective Groups in Organic Synthesis, 3d Edition, John Wiley & Sons, Inc. , New York (1999) and the references cited therein (hereinafter"Greene & Wuts").

A specific embodiment of Scheme (I) utilizing 5-fluorouracil (Aldrich #32, 937-1) as a starting material is illustrated in Scheme (Ia), below: Scheme (Ia) F 6N F 6N R4. LN 54w 6. L 5 / s L2, 6 L H 3 H 9 10 1equiv F 6 F 6 F 6 N 11 equiv N O ^ N z O CI ^\N' CI excess H 3 H 3 5 11 10 excess i F s F5 6N R4 N4NXN R4 R H 3 H 13

In Scheme (Ia), R2, R4, Ll and L2 are as previously defined for Scheme (I).

According to Scheme (Ia), 5-fluorouracil 3 is halogenated with POC13 to yield 2,4-dichloro- 5-fluoropyrimidine 5, which is then reacted with excess amine 6 or 10 to yield N2, N4-bis substituted 5-fluoro-2, 4-pyrimidinediamine 11 or 13, respectively. Alternatively, non-bis 2N, 4N-disubstituted-5-fluoro-2, 4-pyrimidinediamine 9 may be obtained by reacting 2,4- dichloro-5-fluoropyrimidine 5 with one equivalent of amine 10 (to yield 2-chloro-N4- substituted-5-fluoro-4-pyrimidineamine 7) followed by one or more equivalents of amine 6.

In another exemplary embodiment, the 2,4-pyrimidinediamine compounds of the invention may be synthesized from substituted or unsubstituted cytosines as illustrated in Schemes (IIa) and (IIb), below: Scheme (IIa) R6 R6 R6 5 6 acylation, silylation, etc. 5 NH PO _ s (other halogenatng agents H 20 22 24 6 R6 RB 5"6 R'R N deprotect /PHN 4 N Z. N Rz R5 10'fie 26 (X) 28 Scheme (IIb)

w w R6 R5 p R55/NH Pox3 _ Zizi ) I- L, N"'lp acid-or base (other halogenating agerts) -L H a N Z X 3 3 20 23 25 2 3 H 3 H 3 21 20 23 R6 s 21 R'Re R' NH Pox3 _ 5/N II PGRI-L2 (other halogenating agents) p L2 X 2) deprotect H H a H a H 27 29 ?

In Schemes (IIa) and (IIb), R2, R4, R5, R6, Ll, L2 and X are as previously defined for Scheme (I) and PG represents a protecting group. Referring to Scheme (IIa), the C4 exocyclic amine of cytosine 20 is first protected with a suitable protecting group PG to yield N4-protected cytosine 22. For specific guidance regarding protecting groups useful in this context, see Vorbrüggen and Ruh-Pohlenz, 2001, Handbook of lVucleoside Synthesis, John Wiley & Sons, NY, pp. 1-631 ("Vorbriiggen"). Protected cytosine 22 is halogenated at the C2 position using a standard halogenation reagent under standard conditions to yield 2-chloro-4N-protected-4-pyrimidineamine 24. Reaction with amine 6 followed by deprotection of the C4 exocyclic amine and reaction with amine 10 yields a 2,4-pyrimidinediamine according to structural formula a).

Alternatively, referring to Scheme (IIb), cytosine 20 may be reacted with amine 10 or protected amine 21 to yield N4-substituted cytosine 23 or 27, respectively. These substituted cytosines may then be halogenated as previously described, deprotected (in the case of N4-substituted cytosine 27) and reacted with amine 6 to yield a 2,4-pyrimidinediamine according to structural formula (I).

Commercially-available cytosines that may be used as starting materials in Schemes (IIa) and (lib) include, but are not limited to, cytosine (Aldrich #14, 201-8; CAS Registry 71-30-7); N4-acetylcytosine (Aldrich #37, 791-0 ; CAS Registry 14631-20-0); 5-fluorocytosine (Aldrich #27, 159-4; CAS Registry 2022-85-7); and 5- (trifluoromethyl)- cytosine. Other suitable cytosines useful as starting materials in Schemes (IIa) are available from General Intermediates of Canada, Inc. , Edmonton, Alberta, CA (www. generalintermediates. com) and/or Interchim, France (www. interchim. com), or may be prepared using standard techniques. Myriad textbook references teaching suitable synthetic methods are provided infra.

In still another exemplary embodiment, the 2,4-pyrimidinediamine compounds of the invention may be synthesized from substituted or unsubstituted 2-amino-4-pyrimidinols as illustrated in Scheme (III), below: Scheme (III)

In Scheme (III), R2, R4, R5, R6, Ll, L2 and X are as previously defined for Scheme (I) and Z is a leaving group as discussed in more detail in connection with Scheme IV, infra.

Referring to Scheme (III), 2-amino-4-pyrimidinol 30 is reacted with amine 6 (or optionally protected amine 21) to yield N2-substituted-4-pyrimidinol 32, which is then halogenated as previously described to yield N2-substituted-4-halo-2-pyrimidineamine 34. Optional deprotection (for example if protected amine 21 was used in the first step) followed by reaction with amine 10 affords a 2, 4-pyrimidinediamine according to structural formula (I).

Alternatively, pyrimidinol 30 can be reacted with acylating agent 31.

Suitable commercially-available 2-amino-4-pyrimidinols 30 that can be used as starting materials in Scheme (III) include, but are not limited to, 2-amino-6-chloro-4-pyrimidinol hydrate (Aldrich #A4702-8 ; CAS Registry 00000-00-0) and 2-amino-6-hydroxy-4-pyrimidinol (Aldrich #A5040-1 ; CAS Registry 56-09-7). Other 2-amino-4-pyrimidinols 30 useful as starting materials in Scheme (III) are available from General Intermediates of Canada, Inc. , Edmonton, Alberta, CA (www. generalintermediates. com) and/or Interchim, France (www. interchim. com), or may

be prepared using standard techniques. Myriad textbook references teaching suitable synthetic methods are provided i7tfra.

Alternatively, the 2,4-pyrimidinediamine compounds of the invention may be prepared from substituted or unsubstituted 4-amino-2-pyrimidinols as illustrated in Scheme (IV), below: Scheme (IV) In Scheme (IV), R2, R4, R5, R6, Ll and L2 are as previously defined for Scheme (I) and Z represents a leaving group : Referring to Scheme (IV), the C2-hydroxyl of 4-amino-2-pyrimidinol 40 is more reactive towards nucleophiles than the C4-amino such that reaction with amine 6 yields N2-substituted-2,4-pyrimidinediamine 42. Subsequent reaction with compound 44, which includes a good leaving group Z, or amine 10 yields a 2,4-pyrimidinediamine according to structural formula (1). Compound 44 may include virtually any leaving group that can be displaced by the C4-amino of N2-substituted-2,4-pyrimidinediamine 42. Suitable leaving groups Z include, but are not limited to, halogens, methanesulfonyloxy (mesyloxy;"OMs"), trifluoromethanesulfonyloxy ("OTf") andp-toluenesulfonyloxy (tosyloxy;"OTs"), benzene sulfonyloxy ("besylate") and metanitro benzene sulfonyloxy ("nosylate"). Other suitable leaving groups will be apparent to those of skill in the art.

Substituted 4-amino-2-pyrimidinol starting materials may be obtained commercially or synthesized using standard techniques. Myriad textbook references teaching suitable synthetic methods are provided infra.

In still another exemplary embodiment, the 2,4-pyrimidinediamine compounds of the invention can be prepared from 2-chloro-4-aminopyrimidines or 2-amino-4-chloropyrimidines as illustrated in Scheme (V), below: Scheme (V)

In Scheme (V), R2, R4, R5, R6, Ll, L2 and X are as defined for Scheme (I) and Z is as defined for Scheme (IV). Referring to Scheme (V), 2-amino-4-chloropyrimidine 50 is reacted with amino 10 to yield 4N-substituted-2-pyrimidineamine 52 which, following reaction with compound 31 or amine 6, yields a 2,4-pyrimidinediamine according to structural formula (I). Alternatively, 2-chloro-4-amino-pyrimidine 54 may be reacted with compound 44 followed by amine 6 to yield a compound according to structural formula (I).

A variety of pyrimidines 50 and 54 suitable for use as starting materials in Scheme (V) are commercially available, including by way of example and not limitation, 2-amino-4,6-dichloropyrimidine (Aldrich &num A4860-1 ; CAS Registry 56-05-3) ; 2-amino-4-chloro-6-methoxy-pyrimidine (Aldrich #51, 864-6; CAS Registry 5734-64-5); 2-amino-4-chloro-6-methylpyrimidine (Aldrich #12, 288-2; CAS Registry 5600-21-5); and 2-amino-4-chloro-6-methylthiopyrimidine (Aldrich #A4600-5 ; CAS Registry 1005-38-5).

Additional pyrimidine starting materials are available from General Intermediates of Canada, Inc. , Edmonton, Alberta, CA (www. generalintermediates. com) and/or Interchim, France (www. interchim. com), or may be prepared using standard techniques. Myriad textbook references teaching suitable synthetic methods are provided infra.

Alternatively, 4-chloro-2-pyrimidineamines 50 may be prepared as illustrated in Scheme (Va): Scheme (Va)

In Scheme (Va), Rs and R6 are as previously defined for structural formula (I). In Scheme (Va), dicarbonyl 53 is reacted with guanidine to yield 2-pyrimidineamine 51.

Reaction with peracids like m-chloroperbenzoic acid, trifluoroperacetic acid or urea hydrogen peroxide complex yields N-oxide 55, which is then halogenated to give 4-chloro- 2-pyrimidineamine 50. The corresponding 4-halo-2-pyrimidineamines may be obtained by using suitable halogenation reagents.

In yet another exemplary embodiment, the 2,4-pyrimidinediamine compounds of the invention can be prepared from substituted or unsubstituted uridines as illustrated in Scheme (VI), below: Scheme (VI) HO OH f ru R5 ; QCH20H 5 1 2 R4. L N OH 10 H HO, R 6 62 R"C-CH20H Ho oh O a N z O 21 Rs, 4 N--O 21 J/ C4 reactive 6p 5 Ni O center ° 11 H 23N+O H 3 64 acid-catalyzed deprotection R6 R6 R6 R6 E ? 5 is D5 Ie ''rN DPOX,"NH R5> 1) POX3 vNH 2 s 1 2 5 H 3 H Ha H 3 H H a

(I) 28 In Scheme (VI), R2, R4, R5, R6, L1, L2 and X are as previously defined for Scheme (1) and the superscript PG represents a protecting group, as discussed in connection with Scheme (IIb). According to Scheme (VI), uridine 60 has a C4 reactive center such that reaction with amine 10 or protected amine 21 yields N4-substituted cytidine 62 or 64, respectively. Acid-catalyzed deprotection of N4-substituted 62 or 64 (when"PG" represents an acid-labile protecting group) yields N4-substituted cytosine 28, which may be subsequently halogenated at the C2-position and reacted with amine 6 to yield a 2, 4-pyrimidinediamine according to structural formula (I).

Cytidines may also be used as starting materials in an analogous manner, as illustrated in Scheme (VII), below: Scheme (VII) HO, OH f 'rL NOCO" HQ _CHZOH 1\1 0 Hzj HO O R 4'L2N 4 N 2 0 R 6"'10 H 3 R 6"C-CH20H 62 s NON 4 N-z O Hp OH rus C4 reactive X 70 ~t R5t « NoQCH2OH center g. z 64 H 3 64 acid-catalyzed deprotection R 6 R6 R6 POX3 Rs s Rs s H s H R ts No H 3 H H 3 H 3 H H (I) 28

In Scheme (VII), R, R4, R, R, L, L2 and X are as previously defined in Scheme (1) and the superscript PG represents a protecting group as discussed above. Referring to Scheme (VII), like uridine 60, cytidine 70 has a C4 reactive center such that reaction with amine 10 or protected amine 21 yields N4-substituted cytidine 62 or 64, respectively. These cytidines 62 and 64 are then treated as previously described for Scheme (VI) to yield a 2,4-pyrimidinediamine according to structural formula (I).

Although Schemes (VI) and (VII) are exemplified with ribosylnucleosides, skilled artisans will appreciate that the corresponding 2'-deoxyribo and 2', 3'-dideoxyribo nucleosides, as well as nucleosides including sugars or sugar analogs other than ribose, would also work.

Numerous uridines and cytidines useful as starting materials in Schemes (VI) and (VII) are known in the art, and include, by way of example and not limitation, 5-trifluoromethyl-2'-deoxycytidine (Chem. Sources &num ABCR F07669 ; CAS Registry 66,384- 66-5); 5-bromouridine (Chem. Sources Int'l 2000 ; CAS Registry 957-75-5);

5-iodo-2'-deoxyuridine (Aldrich #1-775-6 ; CAS Registry 54-42-2); 5-fluorouridine (Aldrich #32, 937-1; CAS Registry 316-46-1); 5-iodouridine (Aldrich #85, 259-7; CAS Registry 1024-99-3); 5- (trifluoromethyl) uridine (Chem. Sources Int'l 2000 ; CAS Registry 70-00-8); 5-trifluoromethyl-2'-deoxyuridine (Chem. Sources Int'l 2000 ; CAS Registry 70- 00-8). Additional uridines and cytidines that can be used as starting materials in Schemes (VI) and (VII) are available from General Intermediates of Canada, Inc. , Edmonton, Alberta, CA (www. generalintermediates. com) and/or Interchim, France (www. interchim. com), or may be prepared using standard techniques. Myriad textbook references teaching suitable synthetic methods are provided if fra.

The 2, 4-pyrimidinediamine compounds of the invention can also be synthesized from substituted pyrimidines, such as chloro-substituted pyrimidines, as illustrated in Schemes (VIII) and (IX), below: Scheme (VIII)

Scheme (IX) Ar ci 5/fi R2 Fez N 4 N N R2 C) H 3 H ci H 3 H C I N' L. i R2 N 4 N Z CI 'Suzuki 91./ CI CI/SRa ci ci SR8 N' s H a H °90 92 95 HN'L, R2 Bn3SnH Cl N' N' N'cl H 3 N RZ. LN qNC CI/6 N, H 3 s H 3 H H 3 H 99

In Schemes (VIII) and (IX), R2, R4, Ll, L2 and Ra are as previously defined for structural formula (I) and"Ar"represents an aryl group. Referring to Scheme (VIII), reaction of 2, 4,6-trichloropyrimidine 80 (Aldrich #T5, 620-0; CAS#3764-01-0) with amine 6 yields a mixture of three compounds: substituted pyrimidine mono-, di-and triamines 81, 82 and 83, which can be separated and isolated using HPLC or other conventional techniques. Mono-and diamines 81 and 82 may be further reacted with amines 6 and/or 10 to yield N2, N4, N6-trisubstituted-2, 4, 6-pyrimidinetriamines 84 and 85, respectively.

N2, N4-bis-substituted-2, 4-pyrimidinediamines can be prepared in a manner analogous to Scheme (VIII) by employing 2, 4-dichloro-5-methylpyrimidine or 2,4-dichloro- pyrimidine as starting materials. In this instance, the mono-substituted pyrimidineamine corresponding to compound 81 is not obtained. Instead, the reaction proceeds to yield the N2, N4-bis-substituted-2,4-pyrimidinediamine directly.

Referring to Scheme (IX), 2,4, 5,6-tetrachloropyrimidine 90 (Aldrich #24, 671-9; CAS#1780-40-1) is reacted with excess amine 6 to yield a mixture of three compounds: 91, 92, and 93, which can be separated and isolated using HPLC or other conventional techniques. As illustrated, N2, N4-bis-substituted-5,6,-dichloro-2, 4-pyrimidinediamine 92 may be further reacted at the C6 halide with, for example a nucleophilic agent 94 to yield

compound 95. Alternatively, compound 92 can be converted into N2, N4-bis-subsituted-5- chloro-6-aryl-2,4-pyrimidinediamine 97 via a Suzuki reaction. 2, 4-Pyrimidinediamine 95 may be converted to 2, 4-pyrimidinediamine 99 by reaction with Bn3SnH.

As will be recognized by skilled artisans, 2,4-pyrimidinediamines according to the invention, synthesized via the exemplary methods described above or by other well-known means, may also be utilized as starting materials and/or intermediates to synthesize additional 2,4-pyrimidinediamine compounds of the invention. A specific example is illustrated in Scheme (X), below: Scheme (X)

In Scheme (X), R4, R5, R6, L2 and Ra are as previously defined for structural formula (I). Each Ra is independently an Ra, and may be the same or different from the illustrated Ra. Referring to Scheme (X), carboxylic acid or ester 100 may be converted to amide 104 by reaction with amine 102. In amine 102, Ra may be the same or different than Ra of acid or ester 100. Similarly, carbonate ester 106 may be converted to carbamate 108. A second specific example is illustrated in Scheme (XI), below: Scheme (XI)

In Scheme (XI), R4, R5, R6, L2 and Rc are as previously defined for structural formula (I). Referring to Scheme (XI), amide 110 or 116 may be converted to amine 114 or 118, respectively, by borane reduction with borane methylsulfide complex 112. Other suitable reactions for synthesizing 2,4-pyrimidinediamine compounds from 2,4-pyrimidinediamine starting materials will be apparent to those of skill in the art.

Although many of the synthetic schemes discussed above do not illustrate the use of protecting groups, skilled artisans will recognize that in some instances substituents R2, R4, R5, R6, Ll and/or L may include functional groups requiring protection. The exact identity of the protecting group used will depend upon, among other things, the identity of the functional group being protected and the reaction conditions used in the particular synthetic scheme, and will be apparent to those of skill in the art. Guidance for selecting protecting groups and chemistries for their attachment and removal suitable for a particular application can be found, for example, in Greene & Wuts, supra.

Prodrugs according to structural formula (II) may be prepared by routine modification of the above-described methods. Alternatively, such prodrugs may be prepared by reacting a suitably protected 2, 4-pyrimidinediamine of structural formula (I) with a suitable progroup. Conditions for carrying out such reactions and for deprotecting the product to yield a prodrug of formula (II) are well-known.

Myriad references teaching methods useful for synthesizing pyrimidines generally, as well as starting materials described in Schemes (I)- (IX), are known in the art. For specific guidance, the reader is referred to Brown, D. J. ,"The Pyrimidines", in The Chefnistry ofHeterocyclic Cornpouyads, Volume 16 (Weissberger, A. , Ed. ), 1962, Interscience Publishers, (A Division of John Wiley & Sons), New York ("Brown I") ; Brown, D. J. ,"The Pyrimidines", in The Chemistry ofHeteocyclic Compounds, Volume 16, Supplement I (Weissberger, A. and Taylor, E. C. , Ed. ), 1970, Wiley-Interscience, (A Division of John Wiley & Sons), New York (Brown II") ; Brown, D. J. ,"The Pyrimidines", in The Chenaistry of Heteocyclic Compounds, Volume 16, Supplement II (Weissberger, A. and Taylor, E. C. , Ed. ), 1985, An Interscience Publication (John Wiley & Sons), New York ("Brown III"); Brown, D. J.,"The Pyrimidines"in The e of Heterocyclic Compounds, Volume 52 (Weissberger, A. and Taylor, E. C. , Ed. ), 1994, John Wiley & Sons, Inc. , New York, pp. 1-1509 (Brown IV"); Kenner, G. W. and Todd, A. , in Heterocyclic Compou7tds, Volume 6, (Elderfield, R. C. , Ed. ), 1957, John Wiley, New York, Chapter 7 (pyrimidines); Paquette, L. A., Principles of Modern Heterocyclic Chemistry, 1968, W. A. Benjamin, Inc. , New York, pp. 1-401 (uracil synthesis pp. 313,315 ; pyrimidine synthesis pp. 313-316; amino pyrimidine synthesis pp. 315); Joule, J. A. , Mills, K. and Smith, G. F., Heterocyclic Chemistry, 3rd Edition, 1995, Chapman and Hall, London, UK, pp. 1-516 ; Vorbriiggen, H. and Ruh-Pohlenz, C., Handbook ofnucleoside Synthesis, John Wiley & Sons, New York, 2001, pp. 1-631 (protection of pyrimidines by acylation pp.

90-91 ; silylation of pyrimidines pp. 91-93); Joule, J. A. , Mills, K. and Smith, G. F., Heterocyclic Chemistry, 4th Edition, 2000, Blackwell Science, Ltd, Oxford, UK, pp. 1- 589; and Comprehensive Organic Synthesis, Volumes 1-9 (Trost, B. M. and Fleming, I., Ed. ), 1991, Pergamon Press, Oxford, UK.

It should be understood by the skilled artisan that in Schemes I through XI, the N4 nitrogen can be substituted by R4c as described throughout the specification and in the examples provided herein.

6.4 Inhibition of Fc Receptor Signal Cascades Active 2,4-pyrimidinediamine compounds of the invention inhibit Fc receptor signalling cascades that lead to, among other things, degranulation of cells. As a specific example, the compounds inhibit the FceRI and/or FcγRI signal cascades that lead to

degranulation of immune cells such as neutrophil, eosinophil, mast and/or basophil cells.

Both mast and basophil cells play a central role in allergen-induced disorders, including, for example, allergic rhinitis and asthma. Referring to FIG. 1, upon exposure allergens, which may be, among other things, pollen or parasites, allergen-specific IgE antibodies are synthesized by B-cells activated by IL-4 (or IL-13) and other messengers to switch to IgE class specific antibody synthesis. These allergen-specific IgEs bind to the high affinity FcERI. Upon binding of antigen, the FcsRl-bound IgEs are cross-linked and the IgE receptor signal transduction pathway is activated, which leads to degranulation of the cells and consequent release and/or synthesis of a host of chemical mediators, including histamine, proteases (e. g. , tryptase and chymase), lipid mediators such as leukotrienes (e. g., LTC4), platelet-activating factor (PAF) and prostaglandins (e. g. , PGD2) and a series of cytokines, including TNF-a, IL-4, IL-13, IL-5, IL-6, IL-8, GMCSF, VEGF and TGF-ß.

The release and/or synthesis of these mediators from mast and/or basophil cells accounts for the early and late stage responses induced by allergens, and is directly linked to downstream events that lead to a sustained inflammatory state.

The molecular events in the FceRI signal transduction pathway that lead to release of preformed mediators via degranulation and release and/or synthesis of other chemical mediators are well-known and are illustrated in FIG. 2. Referring to FIG. 2, the FcsRI is a heterotetrameric receptor composed of an IgE-binding alpha-subunit, a beta subunit, and two gamma subunits (gamma homodimer). Cross-linking of FcRI-bound IgE by multivalent binding agents (including, for example IgE-specific allergens or anti-IgE antibodies or fragments) induces the rapid association and activation of the Src-related kinase Lyn. Lyn phosphorylates immunoreceptor tyrosine-based activation motifs (ITAMS) on the intracellular beta and gamma subunits, which leads to the recruitment of additional Lyn to the beta subunit and Syk kinase to the gamma homodimer. These receptor-associated kinases, which are activated by intra-and intermolecular phosphorylation, phosphorylate other components of the pathway, such as the Btk kinase, LAT, and phospholipase C-gamma PLC-gamma). Activated PLC-gamma initiates pathways that lead to protein kinase C activation and Ca2+ mobilization, both of which are required for degranulation. FcsRI cross-linking also activates the three major classes of mitogen activated protein (MAP) kinases, i. e. ERK1/2, JNK1/2, and p38. Activation of

these pathways is important in the transcriptional regulation of proinflammatory mediators, such as TNF-a and IL-6, as well as the lipid mediator leukotriene CA (LTC4).

Although not illustrated, the FcwyRI signaling cascade is believed to share some common elements with the FceRI signaling cascade. Importantly, like FceRI, the FcyRI includes a gamma homodimer that is phosphorylated and recruits Syk, and like FceRI, activation of the FcyRI signaling cascade leads to, among other things, degranulation.

Other Fc receptors that share the gamma homodimer, and which can be regulated by the active 2,4-pyrimidinediamine compounds include, but are not limited to, FcodLL and FczRIII.

The ability of the 2,4-pyrimidinediamine compounds of the invention to inhibit Fc receptor signaling cascades may be simply determined or confirmed in in vitro assays.

Suitable assays for confirming inhition of FceRI-mediated degranulation are provided in the Examples section. In one typical assay, cells capable of undergoing FcERI-mediated degranulation, such as mast or basophil cells, are first grown in the presence of IL-4, Stem Cell Factor (SCF), IL-6 and IgE to increase expression of the FccRI, exposed to a 2,4- pyrimidinediamine test compound of the invention and stimulated with anti-IgE antibodies (or, alternatively, an IgE-specific allergen). Following incubation, the amount of a chemical mediator or other chemical agent released and/or synthesized as a consequence of activating the FceRI signaling cascade may be quantified using standard techniques and compared to the amount of the mediator or agent released from control cells (i. e. , cells that are stimulated but that are not exposed to test compound). The concentration of test compound that yields a 50% reduction in the quantity of the mediator or agent measured as compared to control cells is the ICso of the test compound. The origin of the mast or basophil cells used in the assay will depend, in part, on the desired use for the compounds and will be apparent to those of skill in the art. For example, if the compounds will be used to treat or prevent a particular disease in humans, a convenient source of mast or basophil cells is a human or other animal which constitutes an accepted or known clinical model for the particular disease. Thus, depending upon the particular application, the mast or basophil cells may be derived from a wide variety of animal sources, ranging from, for example, lower mammals such as mice and rats, to dogs, sheep and other mammals commonly employed in clinical testing, to higher mammals such as monkeys, chimpanzees and apes, to humans. Specific examples of cells suitable for carrying out the in vitro assays include, but are not limited to,

rodent or human basophil cells, rat basophil leukemia cell lines, primary mouse mast cells (such as bone marrow-derived mouse mast cells"BMMC") and primary human mast cells isolated from cord blood ("CHMC") or other tissues such as lung. Methods for isolating and culturing these cell types are well-known or are provided in the Examples section (see, e. g., Demo et al., 1999, Cytometry 36 (4): 340-348 and copending application Serial No.

10/053,355, filed November 8,2001, the disclosures of which are incorporated herein by reference). Of course, other types of immune cells that degranulate upon activation of the FceRI signaling cascade may also be used, including, for example, eosinophils.

As will be recognized by skilled artisans, the mediator or agent quantified is not critical. The only requirement is that it be a mediator or agent released and/or synthesized as a consequence of initiating or activating the Fc receptor signaling cascade. For example, referring to FIG. 1, activation of the Fc6RI signaling cascade in mast and/or basophil cells leads to numerous downstream events. For example, activation of the FceRI signal cascade leads to the immediate release (i. e. , within 1-3 min. following receptor activation) of a variety of preformed chemical mediators and agents via degranulation. Thus, in one embodiment, the mediator or agent quantified may be specific to granules (i. e., present in granules but not in the cell cytoplasm generally). Examples of granule-specific mediators or agents that can be quantified to determine and/or confirm the activity of a 2,4- pyrimidinediamine compound of the invention include, but are not limited to, granule- specific enzymes such as hexosaminidase and tryptase and granule-specific components such as histamine and serotonin. Assays for quantifying such factors are well-known, and in many instances are commercially available. For example, tryptase and/or hexosaminidase release may be quantified by incubating the cells with cleavable substrates that fluoresce upon cleavage and quantifying the amount of fluorescence produced using conventional techniques. Such cleavable fluorogenic substrates are commercially available.

For example, the fluorogenic substrates Z-Gly-Pro-Arg-AMC (Z=benzyloxycarbonyl; AMC=7-amino-4-methylcoumarin; BIOMOL Research Laboratories, Inc. , Plymouth Meeting, PA 19462, Catalog No. P-142) and Z-Ala-Lys-Arg-AMC (Enzyme Systems Products, a division of ICN Biomedicals, Inc. , Livermore, CA 94550, Catalog No. AMC- 246) can be used to quantify the amount of tryptase released. The fluorogenic substrate 4- methylumbelliferyl-N-acetyl-ß-D-glucosaminide (Sigma, St. Louis, MO, Catalog &num 69585) can be used to quantify the amount of hexosaminidase released. Histamine release may be

quantified using a commercially available enzyme-linked immunosorbent assay (ELISA) such as Immunotech histamine ELISA assay #IM2015 (Beckman-Coulter, Inc. ). Specific methods of quantifying the release of tryptase, hexosaminidase and histamine are provided in the Examples section. Any of these assays may be used to determine or confirm the activity of the 2,4-pyrimidinediamine compounds of the invention.

Referring again to FIG. 1, degranulation is only one of several responses initiated by the FceRI signaling cascade. In addition, activation of this signaling pathway leads to the de novo synthesis and release of cytokines and chemokines such as IL-4, IL-5, IL-6, TNF-a, IL-13 and MIP1-a), and release of lipid mediators such as leukotrienes (e. g. , LTC4), platelet activating factor (PAF) and prostaglandins. Accordingly, the 2,4- pyrimidinediamine compounds of the invention may also be assessed for activity by quantifying the amount of one or more of these mediators released and/or synthesized by activated cells.

Unlike the granule-specific components discussed above, these"late stage" mediators are not released immediately following activation of the FceRI signaling cascade.

Accordingly, when quantifying these late stage mediators, care should be taken to insure that the activated cell culture is incubated for a time sufficient to result in the synthesis (if necessary) and release of the mediator being quantified. Generally, PAF and lipid mediators such as leukotriene C4 are released 3-30 min. following FceRI activation. The cytokines and other late stage mediators are released approx. 4-8 hrs. following FceRI activation. Incubation times suitable for a specific mediator will be apparent to those of skill in the art. Specific guidance and assays are provided in the Examples section.

The amount of a particular late stage mediator released may be quantified using any standard technique. In one embodiment, the amount (s) may be quantified using ELISA assays. ELISA assay kits suitable for quantifying the amount of TNFA, IL-4, IL-5, IL-6 and/or IL-13 released are available from, for example, Biosource International, Inc., Camarillo, CA 93012 (see, e. g. , Catalog Nos. KHC3011, KHC0042, KHC0052, KHC0061 and KHC0132). ELISA assay kits suitable for quantifying the amount of leukotriene C4 (LTC4) released from cells are available from Cayman Chemical Co. , Ann Arbor, MI 48108 (see, e. g., Catalog No. 520211).

Typically, active 2, 4-pyrimidinediamine compounds of the invention will exhibit IC50S with respect to FceRI-mediated degranulation and/or mediator release or synthesis of

about 20 RM or lower, as measured in an in vitro assay, such as one of the ill vitro assays described above or in the Examples section. Of course, skilled artisans will appreciate that compounds which exhibit lower IC50s, for example on the order of 10 tM, 1 J. M, 100 nM, 10 nM, 1 nM, or even lower, are particularly useful.

Skilled artisans will also appreciate that the various mediators discussed above may induce different adverse effects or exhibit different potencies with respect to the same adverse effect. For example, the lipid mediator LTC4 is a potent vasoconstrictor-it is approximately 1000-fold more potent at inducing vasoconstriction than histamine. As another example, in addition to mediating atopic or Type I hypersensitivity reactions, cytokines can also cause tissue remodeling and cell proliferation. Thus, although compounds that inhibit release and/or synthesis of any one of the previously discussed chemical mediators are useful, skilled artisans will appreciate that compounds which inhibit the release and/or synthesis of a plurality, or even all, of the previously described mediators find particular use, as such compounds are useful for ameliorating or avoiding altogether a plurality, or even all, of the adverse effects induced by the particular mediators. For example, compounds which inhibit the release of all three types of mediators-granule- specific, lipid and cytokine-are useful for treating or preventing immediate Type I hypersensitivity reactions as well as the chronic symptoms associated therewith.

Compounds of the invention capable of inhibiting the release of more than one type of mediator (e. g., granule-specific or late stage) may be identified by determining the ICso with respect to a mediator representative of each class using the various in vitro assays described above (or other equivalent in vitro assays). Compounds of the invention which are capable of inhibiting the release of more than one mediator type will typically exhibit an ICso for each mediator type tested of less than about 20 µM. For example, a compound which exhibits and IC50 of 1 µM with respect to histamine release (IC50histamine) and an IC50 of 1 nM with respect to leukotriene LTC4 synthesis and/or release (IC50LTC4) inhibits both immediate (granule-specific) and late stage mediator release. As another specific example, a compound that exhibits an IC50tptase of 10 HM, an IC50LTC4 of 1 LM and an IC50IL-4 of 1 uM inhibits immediate (granule-specific), lipid and cytokine mediator release. Although the above specific examples utilize the ICsos of one representative mediator of each class, skilled artisans will appreciate that the ICsos of a plurality, or even all, mediators comprising one or more of the classes may be obtained. The quantity (ies) and identity (ies) of mediators

for which ICso data should be ascertained for a particular compound and application will be apparent to those of skill in the art.

Similar assays may be utilized to confirm inhibition of signal transduction cascades initiated by other Fc receptors, such as FcoRI, FctyRI and/or FcyRIII signaling, with routine modification. For example, the ability of the compounds to inhibit FcwyRI signal transduction may be confirmed in assays similar to those described above, with the exception that the FcyRI signaling cascade is activated, for example by incubating the cells with IgG and an IgG-specific allergen or antibody, instead of IgE and an IgE-specific allergen or antibody. Suitable cell types, activating agents and agents to quantify to confirm inhibition of other Fc receptors, such as Fc receptors that comprise a gamma homodimer, will be apparent to those of skill in the art.

One particularly useful class of compounds includes those 2,4-pyrimidinediamine compounds that inhibit the release of immediate granule-specific mediators and late stage mediators with approximately equivalent ICSOS. By approximately equivalent is meant that the IC50S for each mediator type are within about a 10-fold range of one another. Another particularly useful class of compounds includes those 2,4-pyrimidinediamine compounds that inhibit the release of immediate granule-specific mediators, lipid mediators and cytokine mediators with approximately equivalent ICs0sa In a specific embodiment, such compounds inhibit the release of the following mediators with approximately equivalent ICs0s : histamine, tryptase, hexosaminidase, IL-4, IL-5, IL-6, IL-13, TNFoc and LTC4. Such compounds are particularly useful for, among other things, ameliorating or avoiding altogether both the early and late stage responses associated with atopic or immediate Type I hypersensitivity reactions.

Ideally, the ability to inhibit the release of all desired types of mediators will reside in a single compound. However, mixtures of compounds can also be identified that achieve the same result. For example, a first compound which inhibits the release of granule specific mediators may be used in combination with a second compound which inhibits the release and/or synthesis of cytokine mediators.

In addition to the FcERI or FcyRI degranulation pathways discussed above, degranulation of mast and/or basophil cells can be induced by other agents. For example, ionomycin, a calcium ionophore that bypasses the early FcERI or FczRI signal transduction machinery of the cell, directly induces a calcium flux that triggers degranulation. Referring

again to FIG. 2, activated PLCy initiates pathways that lead to, among other things, calcium ion mobilization and subsequent degranulation. As illustrated, this Ca2+ mobilization is triggered late in the FcERI signal transduction pathway. As mentioned above, and as illustrated in FIG. 3, ionomycin directly induces Ca2+ mobilization and a Ca2+ flux that leads to degranulation. Other ionophores that induce degranulation in this manner include A23187. The ability of granulation-inducing ionophores such as ionomycin to bypass the early stages of the FcERI and/or FcyRI signaling cascades may be used as a counter screen to identify active compounds of the invention that specifically exert their degranulation- inhibitory activity by blocking or inhibiting the early FcERI or FczRI signaling cascades, as discussed above. Compounds which specifically inhibit such early FcERI or FcyRI- mediated degranulation inhibit not only degranulation and subsequent rapid release of histamine, tryptase and other granule contents, but also inhibit the pro-inflammatory activation pathways causing the release of TNFoc, IL-4, IL-13 and the lipid mediators such as LTC4. Thus, compounds which specifically inhibit such early FcERI and/or Fc'yRI- mediated degranulation block or inhibit not only acute atopic or Type I hypersensitivity reactions, but also late responses involving multiple inflammatory mediators.

Compounds of the invention that specifically inhibit early FcERI and/or FcRI- mediated degranulation are those compounds that inhibit FcERI and/or FcyRI-mediated degranulation (for example, have an ICso of less than about 20 LM with respect to the release of a granule-specific mediator or component as measured in an in vitro assay with cells stimulated with an IgE or IgG binding agent) but that do not appreciably inhibit ionophore-induced degranulation. In one embodiment, compounds are considered to not appreciably inhibit ionophore-induced degranulation if they exhibit an ICso of ionophore- induced degranulation of greater than about 20 1M, as measured in an in vitro assay. Of course, active compounds that exhibit even higher ICsos of ionophore-induced degranulation, or that do not inhibit ionophore-induced degranulation at all, are particularly useful. In another embodiment, compounds are considered to not appreciably inhibit ionophore-induced degranulation if they exhibit a greater than 10-fold difference in their ICs0s of FcERI and/or FcyRI-mediated degranulation and ionophore-induced degranulation, as measured in an in vitro assay. Assays suitable for determining the ICso of ionophore- induced degranulation include any of the previously-described degranulation assays, with the modification that the cells are stimulated or activated with a degranulation-inducing

calcium ionophore such as ionomycin or A23187 (A. G. Scientific, San Diego, CA) instead of anti-IgE antibodies or an IgE-specific allergen. Specific assays for assessing the ability of a particular 2,4-pyrimidinediamine compound of the invention to inhibit ionophore- induced degranulation are provided in the Examples section.

As will be recognized by skilled artisans, compounds which exhibit a high degree of selectivity of FcERI-mediated degranulation find particular use, as such compounds selectively target the FcERI cascade and do not interfere with other degranulation mechanisms. Similarly, compounds which exhibit a high degree of selectivity of FcyRI- mediated degranulation find particular use, as such compounds selectively target the FcyRI cascade and do not interfere with other degranulation mechanisms. Compounds which exhibit a high degree of selectivity are generally 10-fold or more selective for FcERI-or FcyRI-mediated degranulation over ionophore-induced degranulation, such as ionomycin- induced degranulation.

Accordingly, the activity of the 2,4-pyrimidinediamine compounds of the invention may also be confirmed in biochemical or cellular assays of Syk kinase activity. Referring again to FIG. 2, in the FcERI signaling cascade in mast and/or basophil cells, Syk kinase phosphorylates LAT and PLC-gammal, which leads to, among other things, degranulation.

Any of these activities may be used to confirm the activity of the 2,4-pyrimidinediamine compounds of the invention. In one embodiment, the activity is confirmed by contacting an isolated Syk kinase, or an active fragment thereof with a 2, 4-pyrimidinediamine compound in the presence of a Syk kinase substrate (e. g., a synthetic peptide or a protein that is known to be phophorylated by Syk in a signaling cascade) and assessing whether the Syk kinase phosphorylated the substrate. Alternatively, the assay may be carried out with cells that express a Syk kinase. The cells may express the Syk kinase endogenously or they may be engineered to express a recombinant Syk kinase. The cells may optionally also express the Syk kinase substrate. Cells suitable for performing such confirmation assays, as well as methods of engineering suitable cells will be apparent to those of skill in the art. Specific examples of biochemical and cellular assays suitable for confirming the activity of the 2,4- pyrimidinediamine compounds are provided in the Examples section.

Generally, compounds that are Syk kinase inhibitors will exhibit an ICso with respect to a Syk kinase activity, such as the ability of Syk kinase to phosphorylate a synthetic or endogenous substrate, in an ira vitro or cellular assay in the range of about 20 ftM or less.

Skilled artisans will appreciate that compounds that exhibit lower IC50s, such as in the range of 10, uM, 1, uM, 100 nM, 10 nM, 1 nM, or even lower, are particularly useful.

6.5 Uses and Compositions As previously discussed, the active compounds of the invention inhibit Fc receptor signaling cascades, especially those Fc receptors including a gamma homodimer, such as the FcERI and/or FcyRI signaling cascades, that lead to, among other things, the release and/or synthesis of chemical mediators from cells, either via degranulation or other processes. As also discussed, the active compounds are also potent inhibitors of Syk kinase.

As a consequence of these activities, the active compounds of the invention may be used in a variety of in vitro, in vivo and ex vivo contexts to regulate or inhibit Syk kinase, signaling cascades in which Syk kinase plays a role, Fc receptor signaling cascades, and the biological responses effected by such signaling cascades. For example, in one embodiment, the compounds may be used to inhibit Syk kinase, either in vitro or in vivo, in virtually any cell type expressing Syk kinase. They may also be used to regulate signal transduction cascades in which Syk kinase plays a role. Such Syk-dependent signal transduction cascades include, but are not limited to, the FceRI, FcaRI, FcryRIII, BCR and integrin signal transduction cascades. The compounds may also be used in vitro or in vivo to regulate, and in particular inhibit, cellular or biological responses effected by such Syk-dependent signal transduction cascades. Such cellular or biological responses include, but are not limited to, respiratory burst, cellular adhesion, cellular degranulation, cell spreading, cell migration, cell aggregation, phagcytosis, cytokine synthesis and release, cell maturation and Ca2+ flux.

Importantly, the compounds may be used to inhibit Syk kinase in vivo as a therapeutic approach towards the treatment or prevention of diseases mediated, either wholly or in part, by a Syk kinase activity. Non-limiting examples of Syk kinase mediated diseases that may be treated or prevented with the compounds are those discussed in more detail, below.

In another embodiment, the active compounds may be used to regulate or inhibit the Fc receptor signaling cascades and/or FCERI-and/or FcyRI-mediated degranulation as a therapeutic approach towards the treatment or prevention of diseases characterized by, caused by and/or associated with the release or synthesis of chemical mediators of such Fc receptor signaling cascades or degranulation. Such treatments may be administered to animals in veterinary contexts or to humans. Diseases that are characterized by, caused by

or associated with such mediator release, synthesis or degranulation, and that can therefore be treated or prevented with the active compounds include, by way of example and not limitation, atopy or anaphylactic hypersensitivity or allergic reactions, allergies (e. g., allergic conjunctivitis, allergic rhinitis, atopic asthma, atopic dermatitis and food allergies), low grade scarring (e. g., of scleroderma, increased fibrosis, keloids, post-surgical scars, pulmonary fibrosis, vascular spasms, migraine, reperfusion injury and post myocardial infarction), diseases associated with tissue destruction (e. g., of COPD, cardiobronchitis and post myocardial infarction), diseases associated with tissue inflammation (e. g., irritable bowel syndrome, spastic colon and inflammatory bowel disease), inflammation and scarring.

In addition to the myriad diseases discussed above, cellular and animal empirical data confirm that the 2,4-pyrimidinediamine compounds described herein are also useful for the treatment or prevention of autoimmune diseases, as well as the various symptoms associated with such diseases. The types of autoimmune diseases that may be treated or prevented with the 2,4-pyrimidinediamine compounds generally include those disorders involving tissue injury that occurs as a result of a humoral and/or cell-mediated response to immunogens or antigens of endogenous and/or exogenous origin. Such diseases are frequently referred to as diseases involving the nonanaphylactic (i. e. , Type II, Type III and/or Type IV) hypersensitivity reactions.

As discussed previously, Type I hypersensitivity reactions generally result from the release of pharmacologically active substances, such as histamine, from mast and/or basophil cells following contact with a specific exogenous antigen. As mentioned above, such Type I reactions play a role in numerous diseases, including allergic asthma, allergic rhinitis, etc.

Type II hypersensitivity reactions (also referred to as cytotoxic, cytolytic complement-dependent or cell-stimulating hypersensitivity reactions) result when immunoglobulins react with antigenic components of cells or tissue, or with an antigen or hapten that has become intimately coupled to cells or tissue. Diseases that are commonly associated with Type II hypersensitivity reactions include, but are not limited, to autoimmune hemolytic anemia, erythroblastosis fetalis and Goodpasture's disease.

Type III hypersensitivity reactions, (also referred to as toxic complex, soluble complex, or immune complex hypersensitivity reactions) result from the deposition of

soluble circulating antigen-immunoglobulin complexes in vessels or in tissues, with accompanying acute inflammatory reactions at the site of immune complex deposition.

Non-limiting examples of prototypical Type III reaction diseases include the Arthus reaction, rheumatoid arthritis, serum sickness, systemic lupus erythematosis, certain types of glomerulonephritis, multiple sclerosis and bullous pemphingoid.

Type IV hypersensitivity reactions (frequently called cellular, cell-mediated, delayed, or tuberculin-type hypersensitivity reactions) are caused by sensitized T- lymphocytes which result from contact with a specific antigen. Non-limiting examples of diseases cited as involving Type IV reactions are contact dermatitis and allograft rejection including, but not limited to, heart transplant.

Autoimmune diseases associated with any of the above nonanaphylactic hypersensitivity reactions may be treated or prevented with the 2,4-pyrimidinediamine compounds of the invention. In particular, the methods may be used to treat or prevent those autoimmune diseases frequently characterized as single organ or single cell-type autoimmune disorders including, but not limited to: Hashimoto's thyroiditis, autoimmune hemolytic anemia, autoimmune atrophic gastritis of pernicious anemia, autoimmune encephalomyelitis, autoimmune orchitis, Goodpasture's disease, autoimmune thrombocytopenia, sympathetic ophthalmia, myasthenia gravis, Graves'disease, primary biliary cirrhosis, chronic aggressive hepatitis, ulcerative colitis and membranous glomerulopathy, as well as those autoimmune diseases frequently characterized as involving systemic autoimmune disorder, which include but are not limited to: systemic lupus erythematosis, rheumatoid arthritis, Sjogren's syndrome, Reiter's syndrome, polymyositis- dermatomyositis, systemic sclerosis, polyarteritis nodosa, multiple sclerosis and bullous pemphigoid.

It will be appreciated by skilled artisans that many of the above-listed autoimmune diseases are associated with severe symptoms, the amelioration of which provides significant therapeutic benefit even in instances where the underlying autoimmune disease may not be ameliorated. Many of these symptoms, as well as their underlying disease states, result as a consequence of activating the FcyR signaling cascade in monocyte cells.

As the 2, 4-pyrimidinediamine compounds described herein are potent inhibitors of such FcR signaling in monocytes and other cells, the methods find use in the treatment and/or

prevention of myriad adverse symptoms associated with the above-listed autoimmune diseases.

As a specific example, rheumatoid arthritis (RA) typically results in swelling, pain, loss of motion and tenderness of target joints throughout the body. RA is characterized by chronically inflamed synovium that is densely crowded with lymphocytes. The synovial membrane, which is typically one cell layer thick, becomes intensely cellular and assumes a form similar to lymphoid tissue, including dentritic cells, T-, B-and NK cells, macrophages and clusters of plasma cells. This process, as well as a plethora of immunopathological mechanisms including the formation of antigen-immunoglobulin complexes, eventually result in destruction of the integrity of the joint, resulting in deformity, permanent loss of function and/or bone erosion at or near the joint. The methods may be used to treat or ameliorate any one, several or all of these symptoms of RA. Thus, in the context of RA, the methods are considered to provide therapeutic benefit (discussed more generally, irzfra) when a reduction or amelioration of any of the symptoms commonly associated with RA is achieved, regardless of whether the treatment results in a concomitant treatment of the underlying RA and/or a reduction in the amount of circulating rheumatoid factor ("RF").

As another specific example, systemic lupus erythematosis ("SLE") is typically associated with symptoms such as fever, joint pain (arthralgias), arthritis, and serositis (pleurisy or pericarditis). In the context of SLE, the methods are considered to provide therapeutic benefit when a reduction or amelioration of any of the symptoms commonly associated with SLE are achieved, regardless of whether the treatment results in a concomitant treatment of the underlying SLE.

As another specific example, multiple sclerosis ("MS") cripples the patient by disturbing visual acuity; stimulating double vision; disturbing motor functions affecting walking and use of the hands; producing bowel and bladder incontinence; spasticity; and sensory deficits (touch, pain and temperature sensitivity). In the context of MS, the methods are considered to provide therapeutic benefit when an improvement or a reduction in the progression of any one or more of the crippling effects commonly associated with MS is achieved, regardless of whether the treatment results in a concomitant treatment of the underlying MS.

When used to treat or prevent such diseases, the active compounds may be administered singly, as mixtures of one or more active compounds or in mixture or

combination with other agents useful for treating such diseases and/or the symptoms associated with such diseases. The active compounds may also be administered in mixture or in combination with agents useful to treat other disorders or maladies, such as steroids, membrane stablizers, 5LO inhibitors, leukotriene synthesis and receptor inhibitors, inhibitors of IgE isotype switching or IgE synthesis, IgG isotype switching or IgG synthesis, (3-agonists, tryptase inhibitors, aspirin, COX inhibitors, methotrexate, anti-TNF drugs, retuxin, PD4 inhibitors, p38 inhibitors, PDE4 inhibitors, and antihistamines, to name a few.

The active compounds may be administered per se in the form of prodrugs or as pharmaceutical compositions, comprising an active compound or prodrug.

Pharmaceutical compositions comprising the active compounds of the invention (or prodrugs thereof) may be manufactured by means of conventional mixing, dissolving, granulating, dragee-making levigating, emulsifying, encapsulating, entrapping or lyophilization processes. The compositions may be formulated in conventional manner using one or more physiologically acceptable carriers, diluents, excipients or auxiliaries which facilitate processing of the active compounds into preparations which can be used pharmaceutically.

The active compound or prodrug may be formulated in the pharmaceutical compositions per se, or in the form of a hydrate, solvate, N-oxide or pharmaceutically acceptable salt, as previously described. Typically, such salts are more soluble in aqueous solutions than the corresponding free acids and bases, but salts having lower solubility than the corresponding free acids and bases may also be formed.

Pharmaceutical compositions of the invention may take a form suitable for virtually any mode of administration, including, for example, topical, ocular, oral, buccal, systemic, nasal, injection, transdermal, rectal, vaginal, etc. , or a form suitable for administration by inhalation or insufflation.

For topical administration, the active compound (s) or prodrug (s) may be formulated as solutions, gels, ointments, creams, suspensions, etc. as are well-known in the art.

Systemic fonnulations include those designed for administration by injection, e. g., subcutaneous, intravenous, intramuscular, intrathecal or intraperitoneal injection, as well as those designed for transdermal, transmucosal oral or pulmonary administration.

Useful injectable preparations include sterile suspensions, solutions or emulsions of the active compound (s) in aqueous or oily vehicles. The compositions may also contain

formulating agents, such as suspending, stabilizing and/or dispersing agent. The formulations for injection may be presented in unit dosage form, e. g., in ampules or in multidose containers, and may contain added preservatives.

Alternatively, the injectable formulation may be provided in powder form for reconstitution with a suitable vehicle, including but not limited to sterile pyrogen free water, buffer, dextrose solution, etc. , before use. To this end, the active compound (s) may be dried by any art-known technique, such as lyophilization, and reconstituted prior to use.

For transmucosal administration, penetrants appropriate to the barrier to be permeated are used in the formulation. Such penetrants are known in the art.

For oral administration, the pharmaceutical compositions may take the form of, for example, lozenges, tablets or capsules prepared by conventional means with pharmaceutically acceptable excipients such as binding agents (e. g., pregelatinised maize starch, polyvinylpyrrolidone or hydroxypropyl methylcellulose); fillers (e. g. , lactose, microcrystalline cellulose or calcium hydrogen phosphate); lubricants (e. g. , magnesium stearate, talc or silica); disintegrants (e. g. , potato starch or sodium starch glycolate); or wetting agents (e. g. , sodium lauryl sulfate). The tablets may be coated by methods well known in the art with, for example, sugars, films or enteric coatings.

Liquid preparations for oral administration may take the form of, for example, elixirs, solutions, syrups or suspensions, or they may be presented as a dry product for constitution with water or other suitable vehicle before use. Such liquid preparations may be prepared by conventional means with pharmaceutically acceptable additives such as suspending agents (e. g. , sorbitol syrup, cellulose derivatives or hydrogenated edible fats); emulsifying agents (e. g. , lecithin or acacia); non-aqueous vehicles (e. g. , almond oil, oily esters, ethyl alcohol, cremophore or fractionated vegetable oils); and preservatives (e. g., methyl or propyl-p-hydroxybenzoates or sorbic acid). The preparations may also contain buffer salts, preservatives, flavoring, coloring and sweetening agents as appropriate.

Preparations for oral administration may be suitably formulated to give controlled release of the active compound or prodrug, as is well known.

For buccal administration, the compositions may take the form of tablets or lozenges formulated in conventional manner.

For rectal and vaginal routes of administration, the active compound (s) may be formulated as solutions (for retention enemas) suppositories or ointments containing conventional suppository bases such as cocoa butter or other glycerides.

For nasal administration or administration by inhalation or insufflation, the active compound (s) or prodrug (s) can be conveniently delivered in the form of an aerosol spray from pressurized packs or a nebulizer with the use of a suitable propellant, e. g., dichlorodifluoromethane, trichlorofluoromethane, dichlorotetrafluoroethane, fluorocarbons, carbon dioxide or other suitable gas. In the case of a pressurized aerosol, the dosage unit may be determined by providing a valve to deliver a metered amount. Capsules and cartridges for use in an inhaler or insufflator (for example capsules and cartridges comprised of gelatin) may be formulated containing a powder mix of the compound and a suitable powder base such as lactose or starch.

A specific example of an aqueous suspension formulation suitable for nasal administration using commercially-available nasal spray devices includes the following ingredients: active compound or prodrug (0.5-20 mg/ml); benzalkonium chloride (0.1-0. 2 mg/mL); polysorbate 80 (TWEEN# 80; 0.5-5 mg/ml); carboxymethylcellulose sodium or microcrystaline cellulose (1-15 mg/ml); phenylethanol (1-4 mg/ml); and dextrose (20-50 mg/ml). The pH of the final suspension can be adjusted to range from about pH5 to pH7, with a pH of about pH 5.5 being typical.

Another specific example of an aqueous suspension suitable for administration of the compounds via inhalation, and in particular for such administration of a compound of the invention, contains 1-20 mg/mL of the compound or prodrug, 0. 1-1% (v/v) Polysorbate 80 (TWEENS80), 50 mM citrate and/or 0.9% sodium chloride.

For ocular administration, the active compound (s) or prodrug (s) may be formulated as a solution, emulsion, suspension, etc. suitable for administration to the eye. A variety of vehicles suitable for administering compounds to the eye are known in the art. Specific non-limiting examples are described in U. S. Patent No. 6,261, 547; U. S. Patent No.

6,197, 934; U. S. Patent No. 6,056, 950; U. S. Patent No. 5,800, 807; U. S. Patent No.

5,776, 445; U. S. Patent No. 5,698, 219; U. S. Patent No. 5,521, 222; U. S. Patent No.

5,403, 841 ; U. S. Patent No. 5,077, 033 ; U. S. Patent No. 4, 882, 150; and U. S. Patent No.

4,738, 851.

For prolonged delivery, the active compound (s) or prodrug (s) can be formulated as a depot preparation for administration by implantation or intramuscular injection. The active ingredient may be formulated with suitable polymeric or hydrophobic materials (e. g. , as an emulsion in an acceptable oil) or ion exchange resins, or as sparingly soluble derivatives, e. g. , as a sparingly soluble salt. Alternatively, transdermal delivery systems manufactured as an adhesive disc or patch which slowly releases the active compound (s) for percutaneous absorption may be used. To this end, permeation enhances may be used to facilitate transdermal penetration of the active compound (s). Suitable transdermal patches are described in for example, U. S. Patent No. 5,407, 713.; U. S. Patent No. 5,352, 456; U. S.

Patent No. 5,332, 213; U. S. Patent No. 5,336, 168; U. S. Patent No. 5,290, 561; U. S. Patent No. 5,254, 346; U. S. Patent. 5,164, 189; U. S. Patent. 5,163, 899; U. S. Patent.

5,088, 977; U. S. Patent No. 5,087, 240; U. S. Patent No. 5,008, 110; and U. S. Patent No.

4,921, 475.

Alternatively, other pharmaceutical delivery systems may be employed. Liposomes and emulsions are well-known examples of delivery vehicles that may be used to deliver active compound (s) or prodrug (s). Certain organic solvents such as dimethylsulfoxide (DMSO) may also be employed, although usually at the cost of greater toxicity.

The pharmaceutical compositions may, if desired, be presented in a pack or dispenser device which may contain one or more unit dosage forms containing the active compound (s). The pack may, for example, comprise metal or plastic foil, such as a blister pack. The pack or dispenser device may be accompanied by instructions for administration.

6.6 Effective Dosages The active compound (s) or prodrug (s) of the invention, or compositions thereof, will generally be used in an amount effective to achieve the intended result, for example in an amount effective to treat or prevent the particular disease being treated. The compound (s) may be administered therapeutically to achieve therapeutic benefit or prophylactically to achieve prophylactic benefit. By therapeutic benefit is meant eradication or amelioration of the underlying disorder being treated and/or eradication or amelioration of one or more of the symptoms associated with the underlying disorder such that the patient reports an improvement in feeling or condition, notwithstanding that the patient may still be afflicted with the underlying disorder. For example, administration of a compound to a patient

suffering from an allergy provides therapeutic benefit not only when the underlying allergic response is eradicated or ameliorated, but also when the patient reports a decrease in the severity or duration of the symptoms associated with the allergy following exposure to the allergen. As another example, therapeutic benefit in the context of asthma includes an improvement in respiration following the onset of an asthmatic attack, or a reduction in the frequency or severity of asthmatic episodes. Therapeutic benefit also includes halting or slowing the progression of the disease, regardless of whether improvement is realized.

For prophylactic administration, the compound may be administered to a patient at risk of developing one of the previously described diseases. For example, if it is unknown whether a patient is allergic to a particular drug, the compound may be administered prior to administration of the drug to avoid or ameliorate an allergic response to the drug.

Alternatively, prophylactic administration may be applied to avoid the onset of symptoms in a patient diagnosed with the underlying disorder. For example, a compound may be administered to an allergy sufferer prior to expected exposure to the allergen. Compounds may also be administered prophylactically to healthy individuals who are repeatedly exposed to agents known to one of the above-described maladies to prevent the onset of the disorder. For example, a compound may be administered to a healthy individual who is repeatedly exposed to an allergen known to induce allergies, such as latex, in an effort to prevent the individual from developing an allergy. Alternatively, a compound may be administered to a patient suffering from asthma prior to partaking in activities which trigger asthma attacks to lessen the severity of, or avoid altogether, an asthmatic episode.

The amount of compound administered will depend upon a variety of factors, including, for example, the particular indication being treated, the mode of administration, whether the desired benefit is prophylactic or therapeutic, the severity of the indication being treated and the age and weight of the patient, the bioavailability of the particular active compound, etc. Determination of an effective dosage is well within the capabilities of those skilled in the art.

Effective dosages may be estimated initially from in vitro assays. For example, an initial dosage for use in animals may be formulated to achieve a circulating blood or serum concentration of active compound that is at or above an ICso of the particular compound as measured in as in vitro assay, such as the ira vitro CHMC or BMMC and other ira vitro assays described in the Examples section. Calculating dosages to achieve such circulating

blood or serum concentrations taking into account the bioavailability of the particular compound is well within the capabilities of skilled artisans. For guidance, the reader is referred to Fingl & Woodbury,"General Principles,"In : Goodman and Gilman's The Pharmaceutical Basis of The7 » apeutics, Chapter 1, pp. 1-46, latest edition, Pagamonon Press, and the references cited therein.' Initial dosages can also be estimated from in vivo data, such as animal models.

Animal models useful for testing the efficacy of compounds to treat or prevent the various diseases described above are well-known in the art. Suitable animal models of hypersensitivity or allergic reactions are described in Foster, 1995, Allergy 50 (21Suppl) : 6- 9, discussion 34-38 and Tumas et al., 2001, J. Allergy Clin. Immunol. 107 (6): 1025-1033.

Suitable animal models of allergic rhinitis are described in Szelenyi et al., 2000, Arzneimittelforschung 50 (11): 1037-42; Kawaguchi et al., 1994, Clin. Exp. Allergy 24 (3): 238-244 and Sugimoto et al., 2000, Immunopharmacology 48 (1) : 1-7. Suitable animal models of allergic conjunctivitis are described in Carreras et al., 1993, Br. J. Ophthalmol.

77 (8): 509-514; Saiga et al., 1992, Ophthalmic Res. 24 (1) : 45-50; and Kunert et al., 2001, Invest. Ophthalmol. Vis. Sci. 42 (11): 2483-2489. Suitable animal models of systemic mastocytosis are described in O'Keefe et al., 1987, J. Vet. Intern. Med. 1 (2): 75-80 and Bean-Knudsen et al., 1989, Vet. Pathol. 26 (1) : 90-92. Suitable animal models of hyper IgE syndrome are described in Claman et al., 1990, Clin. Immunol. Immunopathol. 56 (1) : 46-53.

Suitable animal models of B-cell lymphoma are described in Hough et al., 1998, Proc. Natl.

Acad. Sci. USA 95: 13853-13858 and Hakim et al., 1996, J. Immunol. 157 (12): 5503-5511.

Suitable animal models of atopic disorders such as atopic dermatitis, atopic eczema and atopic asthma are described in Chan et al., 2001, J. Invest. Dermatol. 117 (4): 977-983 and Suto et al., 1999, Int. Arch. Allergy Immunol. 120 (Suppl 1): 70-75. Ordinarily skilled artisans can routinely adapt such information to determine dosages suitable for human administration. Additional suitable animal models are described in the Examples section.

Dosage amounts will typically be in the range of from about 0.0001 or 0.001 or 0.01 mg/kg/day to about 100 mg/kg/day, but may be higher or lower, depending upon, among other factors, the activity of the compound, its bioavailability, the mode of administration and various factors discussed above. Dosage amount and interval may be adjusted individually to provide plasma levels of the compound (s) which are sufficient to maintain therapeutic or prophylactic effect. For example, the compounds may be administered once

per week, several times per week (e. g. , every other day), once per day or multiple times per day, depending upon, among other things, the mode of administration, the specific indication being treated and the judgment of the prescribing physician. In cases of local administration or selective uptake, such as local topical administration, the effective local concentration of active compound (s) may not be related to plasma concentration. Skilled artisans will be able to optimize effective local dosages without undue experimentation.

Preferably, the compound (s) will provide therapeutic or prophylactic benefit without causing substantial toxicity. Toxicity of the compound (s) may be determined using standard pharmaceutical procedures. The dose ratio between toxic and therapeutic (or prophylactic) effect is the therapeutic index. Compounds (s) that exhibit high therapeutic indices are preferred.

The invention having been described, the following examples are offered by way of illustration and not limitation.

7. EXAMPLES 7.1 2,4-Pyrimidinediamine Compounds A variety of N4-substituted-N2-monosubstituted-4-pyrimidinediamines were prepared based on procedures described herein. Such compounds are depicted in Table 1.

7.2 The 2, 4-Pyrimidinediamine Compounds of the Invention Inhibit FcERI Receptor-Mediated Degranulation The ability of the 2,4-pyrimidinediamine compounds of the invention to inhibit IgE- induced degranulation was demonstrated in a variety of cellular assays with cultured human mast cells (CHMC) and/or mouse bone marrow derived cells (BMMC). Inhibition of degranulation was measured at both low and high cell density by quantifying the release of the granule specific factors tryptase, histamine and hexosaminidase. Inhibition of release and/or synthesis of lipid mediators was assessed by measuring the release of leukotriene LTC4 and inhibition of release and/or synthesis of cytokines was monitored by quantifying TNF-oc, IL-6 and IL-13. Tryptase and hexosaminidase were quantified using fluorogenic substrates as described in their respective examples. Histamine, TNFoc, IL-6, IL-13 and LTC4 were quantified using the following commercial ELISA kits: histamine (Immunotech #2015, Beckman Coulter), TNFa (Biosource &num KHC3011), IL-6 (Biosource &num KMC0061),

IL-13 (Biosource &num KHC0132) and LTC4 (Cayman Chemical #520211). The protocols of the various assays are provided below.

7.2. 1 Culturing of Human Mast and Basophil Cells Human mast and basophil cells were cultured from CD34-negative progenitor cells as described below (see also the methods described in copending U. S. application Serial No.

10/053, 355, filed November 8, 2001, the disclosure of which is incorporated herein by reference).

7.2. 1.1 Preparation of STEMPRO-34 Complete Medium To prepare STEMPRO-34 complete medium ("CM"), 250 mL STEMPRO-3TM serum free medium ("SFM" ; GibcoBRL, Catalog No. 10640) was added to a filter flask. To this was added 13 mL STEMPRO-34 Nutrient Supplement ("NS" ; GibcoBRL, Catalog No. 10641) (prepared as described in more detail, below). The NS container was rinsed with approximately 10 mL SFM and the rinse added to the filter flask.

Following addition of 5 mL L-glutamine (200 mM; Mediatech, Catalog No. MT 25-005-CI and 5 mL 100X penicillin/streptomycin ("pen-strep" ; HyClone, Catalog No. SV30010), the volume was brought to 500 mL with SFM and the solution was filtered.

The most variable aspect of preparing the CM is the method by which the NS is thawed and mixed prior to addition to the SFM. The NS should be thawed in a 37° C water bath and swirled, not vortexed or shaken, until it is completely in solution. While swirling, take note whether there are any lipids that are not yet in solution. If lipids are present and the NS is not uniform in appearance, return it to the water bath and repeat the swirling process until it is uniform in appearance. Sometimes this component goes into solution immediately, sometimes after a couple of swirling cycles, and sometimes not at all. If, after a couple of hours, the NS is still not in solution, discard it and thaw a fresh unit. NS that appears non-uniform after thaw should not be used.

7.2. 1.2 Expansion of CD34+ Cells A starting population of CD34-positive (CD34+) cells of relatively small number (1-5 x 106 cells) was expanded to a relatively large number of CD34-negative progenitor cells (about 2-4 x 109 cells) using the culture media and methods described

below. The CD34+ cells (from a single donor) were obtained from Allcells (Berkeley, CA).

Because there is a degree of variation in the quality and number of CD34+ cells that Allcells typically provides, the newly delivered cells were transferred to a 15 mL conical tube and brought up to 10 mL in CM prior to use.

On day 0, a cell count was performed on the viable (phase-bright) cells and the cells were spun at 1200 rpm to pellet. The cells were resuspended to a density of 275,000 cells/mL with CM containing 200 ng/mL recombinant human Stem Cell Factor ("SCF" ; Peprotech, Catalog No. 300-07) and 20 ng/mL human flt-3 ligand (Peprotech, Catalog No.

300-19) ("CM/SCF/flt-3 medium"). On about day 4 or 5, the density of the culture was checked by performing a cell count and the culture was diluted to a density of 275,000 cells/mL with fresh CM/SCF/flt-3 medium. On about day 7, the culture was transferred to a sterile tube and a cell count was performed. The cells were spun at 1200 rpm and resuspended to a density of 275,000 cells/mL with fresh CM/SCF/flt-3 medium.

This cycle was repeated, starting from day 0, a total of 3-5 times over the expansion period.

When the culture is large and being maintained in multiple flasks and is to be resuspended, the contents of all of the flasks are combined into a single container prior to performing a cell count. This ensures that an accurate cell count is achieved and provides for a degree of uniformity of treatment for the entire population. Each flask is checked separately for contamination under the microscope prior to combining to prevent contamination of the entire population.

Between days 17-24, the culture can begin to go into decline (i. e. , approximately 5- 10% of the total number of cells die) and fail to expand as rapidly as before. The cells are then monitored on a daily basis during this time, as complete failure of the culture can take place in as little as 24 hours. Once the decline has begun, the cells are counted, spun down at 850 rpm for 15 minutes, and resuspended at a density of 350,000 cells/mL in CM/SCF/flt-3 medium to induce one or two more divisions out of the culture. The cells are monitored daily to avoid failure of the culture.

When greater than 15% cell death is evident in the progenitor cell culture and some debris is present in the culture, the CD34-negative progenitor cells are ready to be differentiated.

7. 2. 1. 3 Differentiation of CD34-Negative Progenitor Cells into Mucosal Mast Cells A second phase is performed to convert the expanded CD34-negative progenitor cells into differentiated mucosal mast cells. These mucosal cultured human mast cells ("CHMC") are derived from CD34+ cells isolated from umbilical cord blood and treated to form a proliferated population of CD34-negative progenitor cells, as described above. To produce the CD43-negative progenitor cells, the resuspension cycle for the culture was the same as that described above, except that the culture was seeded at a density of 425,000 cells/mL and 15% additional media was added on about day four or five without performing a cell count. Also, the cytokine composition of the medium was modified such that it contained SCF (200 ng/mL) and recombinant human IL-6 (200 ng/mL; Peprotech, Catalog No. 200-06 reconstituted to 100 ug/mL in sterile 10 mM acetic acid) ("CM/SCF/IL-6 medium").

Phases I and II together span approximately 5 weeks. Some death and debris in the culture is evident during weeks 1-3 and there is a period during weeks 2-5 during which a small percentage of the culture is no longer in suspension, but is instead attached to the surface of the culture vessel.

As during Phase I, when the culture is to be resuspended on day seven of each cycle, the contents of all flasks are combined into a single container prior to performing a cell count to ensure uniformity of the entire population. Each flask is checked separately for contamination under the microscope prior to combining to prevent contamination of the entire population.

When the flasks are combined, approximately 75% of the volume is transferred to the communal container, leaving behind about 10 mL or so in the flask. The flask containing the remaining volume was rapped sharply and laterally to dislodge the attached cells. The rapping was repeated at a right angle to the first rap to completely dislodge the cells.

The flask was leaned at a 45 degree angle for a couple of minutes before the remaining volume was transferred to the counting vessel. The cells were spun at 950 rpm for 15 min prior to seeding at 35-50 mL per flask (at a density of 425,000 cells/mL).

7.2. 1.4 Differentiation of CD34-Negative Progenitor Cells into Connective Tissue-Type Mast Cells A proliferated population of CD34-negative progenitor cells is prepared as above and treated to form a tryptase/chymase positive (connective tissue) phenotype. The methods are performed as described above for mucosal mast cells, but with the substitution of IL-4 for IL-6 in the culture medium. The cells obtained are typical of connective tissue mast cells.

7.2. 1.5 Differentiation of CD34-Negative Progenitor Cells into Basophil Cells A proliferated population of CD34-negative progenitor cells is prepared as described in Section 7.2. 1.3, above, and used to form a proliferated population of basophil cells. The CD34-negative cells are treated as described for mucosal mast cells, but with the substitution of IL-3 (at 20-50 ng/mL) for IL-6 in the culture medium.

7.2. 2 CHMC Low Cell Density IgE Activation: Tryptase and LTC4 Assays To duplicate 96-well U-bottom plates (Costar 3799) add 65 ul of compound dilutions or control samples that have been prepared in MT [137 mM NaCl, 2.7 mM KC1, 1.8 mM CaCl2, 1. 0 mM MgCl2, 5.6 mM Glucose, 20 mM Hepes (pH 7.4), 0.1% Bovine Serum Albumin, (Sigma A4503) ] containing 2% MeOH and 1% DMSO. Pellet CHMC cells (980 rpm, 10 min) and resuspend in pre-warmed MT. Add 65 ul of cells to each 96- well plate. Depending on the degranulation activity for each particular CHMC donor, load 1000-1500 cells/well. Mix four times followed by a 1 hr incubation at 37°C. During the 1 hr incubation, prepare 6X anti-IgE solution [rabbit anti-human IgE (1 mg/ml, Bethyl Laboratories A80-109A) diluted 1: 167 in MT buffer]. Stimulate cells by adding 25 ul of 6X anti-IgE solution to the appropriate plates. Add 25 ul MT to un-stimulated control wells.

Mix twice following addition of the anti-IgE. Incubate at 37°C for 30 minutes. During the 30 minute incubation, dilute the 20 mM tryptase substrate stock solution [ (Z-Ala-Lys-Arg- AMC 2TFA ; Enzyme Systems Products, #AMC-246)] 1: 2000 in tryptase assay buffer [0.1 M Hepes (pH 7.5), 10 % w/v Glycerol, 10 uM Heparin (Sigma H-4898) 0.01% NaN3]. Spin plates at 1000 rpm for 10 min to pellet cells. Transfer 25 ul of supernatant to a 96-well black bottom plate and add 100 ul of freshly diluted tryptase substrate solution to each well.

Incubate plates at room temperature for 30 min. Read the optical density of the plates at 355nm/460nm on a spectrophotometric plate reader.

Leukotriene C4 (LTC4) is also quantified using an ELISA kit on appropriately diluted supernatant samples (determined empirically for each donor cell population so that the sample measurement falls within the standard curve) following the supplier's instructions.

7.2. 3 CHMC High Cell Density IgE Activation: Degranulation (Tryptase, Histamine), Leukotriene (LTC4), and Cytokine (TNFalpha, IL-13) Assays Cultured human mast cells (CHMC) are sensitized for 5 days with IL-4 (20 ng/ml), SCF (200 ng/ml), IL-6 (200 ng/ml), and Human IgE (CP 1035K from Cortx Biochem, 100-SOOng/ml depending on generation) in CM medium. After sensitizing, cells are counted, pelleted (1000 rpm, 5-10 minutes), and resuspended at 1-2 X106 cells/ml in MT buffer. Add 100 ul of cell suspension to each well and 100 ul of compound dilutions. The final vehicle concentration is 0.5% DMSO. Incubate at 37°C (5% CO2) for 1 hour. After lhour of compound treatment, stimulate cells with 6X anti-IgE. Mix wells with the cells and allow plates to incubate at 37°C (5% C02) for one hour. After 1 hour incubation, pellet cells (10 minutes, 1000 RPM) and collect 200 ul per well of the supernatant, being careful not to disturb pellet. Place the supernatant plate on ice. During the 7-hour step (see next) perform tryptase assay on supernatant that had been diluted 1: 500. Resuspend cell pellet in 240 ul of CM media containing 0.5% DMSO and corresponding concentration of compound. Incubate CHMC cells for 7 hours at 37°C (5% CO2). After incubation, pellet cells (1000 RPM, 10 minutes) and collect 225 ul per well and place in-80°C until ready to perform ELISAS. ELISAS are performed on appropriately diluted samples (determined empirically for each donor cell population so that the sample measurement falls within the standard curve) following the supplier's instructions.

7.2. 4 Results The results of low density CHMC assays are provided in Table 1. In Table 1, all reported values are ICsos (in 1M). Most compounds tested had ICs0s of less than 1011M, with many exhibiting ICsos in the sub-micromolar range. In Table 1, all reported values are ICs0s (in Vim). A value of"-"indicates an IC$o> 1011M, with no measurable

activity at a lOjuM concentration. Most compounds tested had ICsos of less than 10vim, with many exhibiting ICsos in the sub-micromolar range. A value of"+"indicates an ICso< 10ju. M. Of the compounds tested, BMMC values are comparable to those noted for the CHMC results.

7.3 The 2,4-Pyrimidinediamine Compounds of the Invention Selectively Inhibit the Upstream IgE Receptor Cascade To confirm that many of the 2,4-pyrimidinediamine compounds of the invention exert their inhibitory activity by blocking or inhibiting the early IgE receptor signal transduction cascade, several of the compounds were tested in cellular assays for ionomycin-induced degranulation, as described below.

7.3. 1 CHMC Low Cell Density Ionomycin Activation: Tryptase Assay Assays for ionomycin-induced mast cell degranulation were carried out as described for the CHMC Low Density IgE Activation assays (Section 7.2. 2, supra), with the exception that during the 1 hour incubation, 6X ionomycin solution [5mM ionomycin (Sigma 1-0634) in MeOH (stock) diluted 1: 416.7 in MT buffer (2 pM final)] was prepared and cells were stimulated by adding 25 nl of the 6X ionomycin solution to the appropriate plates.

7.3. 2 Results The results of the ionomycin-induced degranulation assays, reported as ICso values (in uM) are provided in Table 1. Of the active compounds tested (i. e. , those that inhibit IgE-induced degranulation), the vast majority do not inhibit ionomycin-induced degranulation, confirming that these active compounds selectively inhibit the early (or upstream) IgE receptor signal transduction cascade. In Table 1, all reported values are ICsos (in jiM). A value of"-"indicates an ICso> 1011M, with no measurable activity at a 1011M concentration. A value of"+"indicates an IC5o< 10, uM.

7.4 2,4-Pyrimidinediamine Compounds Inhibit Syk Kinase in Biochemical Assays Many of the 2,4-pyrimidinediamine compounds were tested for the ability to inhibit Syk kinase catalyzed phosphorylation of a peptide substrate in a biochemical

fluorescenced polarization assay with isolated Syk kinase. In this experiment, Compounds were diluted to 1% DMSO in kinase buffer (20 mM HEPES, pH 7.4, 5 mM MgCl2, 2 mM MnCl2, 1 mM DTT, 0.1 mg/mL acetylated Bovine Gamma Globulin). Compound in 1% DMSO (0.2% DMSO final) was mixed with ATP/substrate solution at room temperature.

Syk kinase (Upstate, Lake Placid NY) was added to a final reaction volume of 20 uL, and the reaction was incubated for 30 minutes at room temperature. Final enzyme reaction conditions were 20 mM HEPES, pH 7.4, 5 mM MgCl2, 2 mM MnCl2, 1 mM DTT, 0.1 mg/mL acetylated Bovine Gamma Globulin, 0.125 ng Syk, 4 uM ATP, 2.5 uM peptide substrate (biotin-EQEDEPEGDYEEVLE-CONH2, SynPep Corporation). EDTA (10 mM final)/anti-phosphotyrosine antibody (1X final)/fluorescent phosphopeptide tracer (0. 5X final) was added in FP Dilution Buffer to stop the reaction for a total volume of 40 uL according to manufacturer's instructions (PanVera Corporation) The plate was incubated for 30 minutes in the dark at room temperature. Plates were read on a Polarion fluorescence polarization plate reader (Tecan). Data were converted to amount of phosphopeptide present using a calibration curve generated by competition with the phosphopeptide competitor provided in the Tyrosine Kinase Assay Kit, Green (PanVera Corporation).

These data, shown in Table 1, demonstrate that most all of the compounds tested, inhibit Syk kinase phosphorylation with ICsos in the submicromolar range. A vast majority of the compounds tested inhibit Syk kinase phosphorylation with ICsos in the micromolar range. In Tabe 1, all reported values are IC5os (in pom). A value of"-"indicates an IC5o> 10. M, with no measurable activity at a 10pM concenkation. A value of"+"indicates an ICso< 10FM. , . : ,. r :.. __ a v :".' : LU LU LU s i. ka'me : ' . _.... _. u !. . s , 5k . w s' lono, 3pt ..,. e. J 4, 1 1. - ee, i"4... _ u t' ; 2WH'' : : r 3. s. d dl s n i. w_ , T tase T tase T t a ase f s k I rYP YP rYP, P_ Y, IT3, T1-_ i _ _ e,., b. CHMC CHMC CHMC 11 t P k_v E c i IE3tIE t 8 lono 3 t 9 9 ob P P P 9 H tMR (DMSO-d6) : d 8. 08 (d, 1 H), 7. 95 (s, 1 H), 7. 58 (d, 1 H), 7. 40 (m, (S)-5-Fluoro-N2- (indazol-6-yl)-N4- (2-methyl-3 oxo-2H, 4H- 200 1 H), 7. 25 (m, 3H), 6. 94 (m, 1H), 4. 80 (m, 1H), 1. 40 (s, 3H) ; LCMS : + benz [1, 4] oxazln-6-yl)-2, 4-pyrimidinediamine purity : 96% ; MS (m/e) : 406 (MH+). 'H NMR (DMSO-d6) : d 8. 17 (d, 1H), 8. 08 (s, 1H), 7. 80 (s, 1H), 7. 52 (S)-5-Fluoro-N2- (1-methylindazol-6-yl)-N4- (2-methyl-3-oxo- 201 (m, 1 H), 7. 32 (m, 1 H), 7. 17 (m, 2H), 6. 94 (m, 1H), 4. 60 (m, 1H), 3. 77 + 2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine (s, 3H), 1. 45 (s, 3H) ; LCMS : purity : 94% ; MS (m/e) : 420 (MH+). 'H NMR (DMSO-d6) : d 8. 01 (d, 1H), 7. 28 (m, 2H), 7. 20 (s, 2H), 6. 95 (S)-N2- (3, 5-Dimethylphenyl)-5-fluoro-N4- (2-methyl-3-oxo- 202 (m, 1H), 6. 58 (s, 1H), 4. 63 (m, 1H), 3. 77 (s, 3H), 2. 07 (s, 6H), 1. 42 (d, + 2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine 3H) ; LCMS : purity : 92% ; MS (m/e) : 393 (MH+). oh NMR (DMSO-d6) : d 8. 02 (d, 1H), 6. 98 (m, 2H), 6. 90 (m, 2H), 6. 80 N4- (3, 4-Dihydro-3, 3-dimethyl-2H, 4H-benz [1, 4] oxazin-6-yl)-N2-'H NMR (DMSO-d6) : d 8. 02 (d, 1H), 6. 98 (m, 2H), 6. 90 (m, 2H), 6. 80 203 (m, 1 H), 6. 03 (s, 1 H), 3. 72 (s, 2H), 3. 60 (s, 6H), 1. 05 (s, 6H) ; LCMS : + + (3, 5-dimethoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine purity : 96% ; MS (m/e) : 425 (MH+). 'H NMR (DMSO-d6) : d 8. 01 (d, 1H), 7. 28 (m, 2H), 7. 20 (s, 2H), 6. 95 (R)-N2- (3, 5-Dimethylphenyl)-5-fluoro-N4- (2-methyl-3-oxo- 204 (m, 1 H), 6. 58 (s, 1 H), 4. 63 (m, 1 H), 3. 77 (s, 3H), 2. 07 (s, 6H), 1. 42 (d, + 2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine 3H) ; LCMS : purity : 92% ; MS (m/e) : 393 (MH+). 'H NMR (MeOD-d4) : d 7. 75 (d, 1H), 7. 38 (m, 1H), 7. 02 (m, 3H), 6. 78 (R)-5-Fluoro-N2- [6- (2-hydroxyethyl)-2, 3-dihydropyrrolo [1, 2, 3- (m, 2H), 4. 54 (m, 1 H), 4. 4 (m, 2H), 4. 14 (m, 2H), 3. 62 (m, 2H), 3. 62 + 205d, e] benzoxazin-8-yl]-N4- (2-methyl-3-oxo-2H, 4H- (m, 2H), 2. 80 (m, 2H), 1. 41 (d, 3H) ; LCMS : purity : 93% ; MS (m/e) : 491 (MH+). (mu+), 'H NMR (MeOD-d4) : d 7. 62 (d, 1H), 7. 04 (s, 1H), 6. 98 (m, 2H), 6. 75 N4- (3, 4-Dihydro-3, 3-dimethyl-2H, 4H-benz [1, 4] oxazin-6-yl)-5- (m, 1 H), 6. 59 (m, 2H), 4. 47 (m, 1 H), 4. 4 (m, 2H), 4. 14 (m, 2H), 3. 62 206f] uoro-N2- [6- (2-hydroxyethy !)-2, 3-dihydropyrro ! o [1, 2, 3- + (m, 4H), 2. 80 (m, 2H), 1. 07 (s, 6H) ; LCMS : purity : 98% ; MS (m/e) : 491 d, e] benzoxazin-8-yl]-2, 4-pyrimidinediamine (MH+). (R)-N2- (3-Chloro-4-methoxyphenyl)-5-fluoro-N4- (2-methyl-3-'H NMR (MeOD-d4) : d 7. 98 (d, 1H), 7. 82 (m, 2H), 7. 48 (s, 1H), 7. 41 207oxo-2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine (m, 3H), 7. 25 (dd, 1H), 7. 15 (m, 3H), 6. 94 (d, 1H), 4. 62 (q, 1H), 3. 82 + Benzene Sulfonic Acid Salt (s, 3H), 1. 50 (d, 3H) ; LCMS : purity : 97% ; MS (m/e) : 430 (MH+). (R)-N2- (3-Chloro-4-methoxyphenyl)-5-fluoro-N4- (2-methyl-3-'H NMR (MeOD-d4) : d 7. 98 (d, 1H), 7. 48 (s, 1H), 7. 25 (dd, 1H), 7. 15 208 oxo-2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine (m, 3H), 6. 94 (d, 1 H), 4. 62 (q, 1 H), 3. 82 (s, 3H), 2. 68 (s, 3H), 1. 50 (d, + Methanesulfonic Acid Salt 3H) ; LCMS : purity : 98% ; MS (m/e) : 430 (MH+). SSaM BM ! !' ! !'''"f : : ; S Tryptase, Tryptase, Tryptase, fpsyk, lu Lu LU Tryptase, Tryptase, Tryptase, fp__pyk, C6t6 un Nat6 : : d CHMC, CHMC, CHMC, 11 pt """"--""'-'"""""-"-"-*-"'"*'""'"'""'HNMR' (DMSO-d6) : d8. 19"1H),'7. 62'1 [m, (R)-N2- (3-Chbro-4-methoxypheny !)-5-fiuoro-N4- (2-methy !-3- (m, 1H), 7. 12 (m, 2H), 6. 91 (d, 1H), 4. 62 (q, 1H), 3. 82 (s, 3H), 3. 40 (q, 209 oxo-2H, 4H-benz [1, 4] oxaz ! n-6-yh-2, 4-pyrim ! dinediamine (1S)-+ 1H), 2. 91 (m, 1H), 2. 61 (m, 1H), 2. 38 (m, 1H), 2. 22 (m, 1H), 1. 85 (m, +)-Camphorsu [fon ! c Add Salt 2H), 1. 40 (d, 3H), 1. 31 (m, 2H), 1. 03 (s, 'H NMR (DMSO-d6) : d 8. 16 (d, 1H), 8. 08 (s, 1H), 7. 80 (s, 1H), 7. 52 (R)-5-F ! uoro-N2- (1-methy ! indazo !-6-y !)-N4- (2-methy !-3-oxo- 210. (m, 1H), 7. 32 (m, 1H), 7. 17 (m, 2H), 6. 94 (m, 1H), 4. 60 (m, 1H), 3. 77 + 2H, 4H-benz [1, 4] oxamn-6-yl)-2, 4-pyrimidinediamine (s, 3H), 1. 45 (s, 3H) ; LCMS : purity : 97% ; MS (m/e) : 420 (MH+). (R)-N2- (3-Ch ! oro-4-methoxypheny !)-5-uoro-N4- (2-methy !-3- H NMR (DMSO-d6) : d 8. 12 (d, 1H), 7. 41 (dd, 1H), 7. 22 (m, 3H), 6. 97 211 oxo-2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine (m, 1 H), 4. 61 (q, 1 H), 3. 78 (s, 3H), 1. 40 (d, 3H) ; LCMS : purity : 97% ; + + Hydrogen Chloride Salt MS (m/e) : 430 (MH+). 'H NMR (DMSO-d6) : d 8. 19 (d, 1H), 7. 62 (m, 1H), 7. 38 (m, 1H), 7. 21 (R)-N2- (3-Ch ! oro-4-methoxypheny !)-5-f ! uoro-N4- (2-methy !-3- (m, 1H). 7. 12 (m, 2H), 6. 91 (d, 1H), 4. 62 (q, 1H), 3. 82 (s, 3H), 3. 40 (q, 212oxo-2H, 4H-benz [1, 4] oxaz ! n-6-y !)-2, 4-pyr ! midinediam ! ne (1R)- (- + + 1H), 2. 91 (m, 1 H), 2. 61 (m, 1 H), 2. 38 (m, 1 H), 2. 22 (m, 1 H), 1. 85 (m, !-Camphorsu ! fonic Acid Sat 2H), 1. 40 (d, 3H), 1. 31 (m, 2H), 1. 03 (s, 'H NMR (DMSO-d6) : d 8. 17 (s, 1H), 7. 98 (d, 1H), 7. 43 (m, 1H), 7. 32 (R)-N2- (3-Chloro-4-methoxy-6-methylphenyl)-5-fluoro-N4- (2- (m, 1H), 7. 15 (s, 1H), 6. 95 (s, 1H), 6. 72 (d, 1H), 4. 58 (m, 1H), 3. 90 (s, + + 213methy !-3-oxo-2H, 4H-benz [1, 4] oxazin-6-y !)-2, 4- + + 3H), 2. 17 (s, 3H), 1. 38 (d, 3H) ; LCMS : purity : 97% ; MS (m/e) : 444 ) yrimid ! ned ! amine pynmldinediamine (MH+). (S)-N2- (3-Chloro-4-methoxy-6-methylphenyl)-5-fluoro-N4- (2- (m, 1H), 7. 15 (s, 1H), 6. 95 (s, 1H), 6. 72 (d, 1H), 4. 58 (m, 1H), 3. 90 (s, + + 214methy3-oxo-2H, 4H-benz [1, 4] oxazin-6-y !)-2, 4- /. . 3H), 2. 17 (s, 3H), 1. 38 (d, 3H) ; LCMS : purity : 99% ; MS (m/e) : 444 pyr ! m ! dinediam ! ne (MH+). 1H NMR (DMSO-d6) : d 1. 38 (d, 3H), 3. 82 (s, 3H), 3. 90 (s, 3H), 4. 58 (S)- (3-Ch ! oro-4, 6-dimethoxypheny !)-5-f ! uoro-N4- (2-methy !-3- 215 (q, 1H), 6. 85 (m, 2H), 7. 19 (m, 1H), 7. 37 (m, 1H), 7. 43 (m, 1H), 7. 59 + + oxo-2H, 4H-benz [1, 4] oxazin-6-yi)-2, 4-pyrim ! dined ! am ! ne (s, 1H), 8. 17 (m, 2H) purity : 99 % ; MS (m/e) : 460 (MH+). N2- (3-Ch ! oro-4-methoxy-6-methy) pheny)-N4- (3, 4-d ! hydro-3, 3- 1H NMR (DMSO-d6) : d 1. 38 (s, 6H), 2. 17 (s, 3H), 3. 64 (s, 3H), 3. 81 216 dimethyl-2H, 4H-benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4- (s, 3H), 6. 48 (m, 1H), 6. 77 (m, 1H), 6. 93 (m, 1H), 6. 99 (m, 1H), + + pyrimidinediamine 7. 41 (s, 1H), 7. 82 (d, 1H) purity : 99 % ; MS (m/e) : 444 (MH+). 'H NMR (DMSO-d6) : d 8. 19 (m, 1H), 8. 15 (d, 1H), 7. 78 (m, 1H), 7. 39 4- (3, 4-Dihydro-2H, 4H-benz [1, 4] oxaz ! n-6-y !)-5-f ! uoro-N2- [3- 217 (m, 2H), 6. 90 (m, 1H), 6. 47 (m, 1H), 4. 07 (m, 2H), 3. 22 (m, 2H) ; + + bxazo [-2-y !) pheny !]-2, 4-pyrim ! dined ! amine LCMS : purity : 97% ; MS (m/e) : 405 (MH+). no, OV, tst) t 10 ex 3p H. =.- : I Vi), 7 H=--- IH NMI k-II.-2H), 7. 63 (rn b''''''' 6. 99 1 . SJiltu. ,.-. : d,. c i S. , W r.., d, v,, ., r 1 a u., ! ,. ? i r. , w. t a a s ls "" °"' H, , x n. . (m "n, 6. ? ", , r. rt s ;, 4'.'c, e. " 6N, 3. 81 (s, 2) rid ta','a, ° s,,,. a. .-_ : dv'. 1$ (s m, H), . 7 (m, 5-d : inp-d : taTTine-d6-7. 7 (m, .,-. _ t'f F 1H hIMR C, lHl, 7. 3 (m H) : 433 (MH' a. Mg (mle) -a _ q. N-benzL, lxazm--Y)-5' 6. 93 (m, 1H), 6. 99 m. - (O)'azo'-d 1"), 8, 22 (rn, 2H) purity : 99/, 'dinedia 1H). 1H'T. 18 (m, 1H), , _ . z. . _dimethY-2H, rimi. d 4. 50 ts, 2H, 6. 78 (m> >', k v ro-3, 3 q. _ 3, -Dihyd 8 C _ oxazol-2-y) PhenYl-2'-PY, 1H), 8. 22 (m, 1H i°aMR (MS-d6). 1H, 7. 38 (m, 2H), 7. 59 tm H), Z. 77 (m 21 fluoro-N2-L3 ' . g9 °lo ; MS (rr'le : 419 (MH, H 7. 18 (n', 1H) . 3-oxazol-2-Y) PhenYl-Nt3-oxo-2H, 4H' 7. 23 (m. kO- DMSO-d6Y d 4. 54 (s, 2H), 6. 78 (m 1H), 8. 22 m rimdnediamne 3H) purri. 5-Fluoro-N2 L t 1H NMR i 2H, 7. 59 (m, 1H), 7. 78 (m, 219 benz [, oxazm--Y ?-eY- -N4-t3-°xo-2H, H' Z. 23 (m, 1H), 7. A. 1 (m k. _ 6. 78 (m, 1H), ,. e 3H) PriY 9T% ; MS (mle) : 419 tMN - 3_ (oxazol-2-Y) Pneny 1 . d 1. 98 (m, H 8. 22 (mu __y12, p y-1 NMR (MSO-d6). 1H 3. 58 (n' 2H1, _ 5-Fiuoo-2 [. , _ yrimdnediamw 4 oxazin-m, H), 7. 38 (m, 3H), 7. 57 ('', H), Z. 79 (m 220 oxazin benz [1, 4l urity : 99/o 8. 17 (d,'tH) T. 76 (m H, 7. 59 x k 4-rimidinediamine 2H) p °'MS (mle) : 463 (H'" oro--L22-hydroxyethy)-3-oxo-2H, 'benz [1,] 7. 18 ( 5-Flu. Hl, 221 _2_3- (oxazol-2-YDPhenYl 2, PY DMSO-d6) : d 8. 29 (m, 1), 4. oT (m> 2H), 3. 22 H tMR ( 6-Y 1 in-6-YD-5yfluoro-N2-L (m, 3H), 6. 90 (', 1H) > 6. 77 (n', 1H). 6. 62 tm _ m, H) ; LCMS : purity. ° MS (mle) : 405 tMH- s 6H), 3. 80 t 2H), 6. 71 (m, 2H, - 2Hq, H_genzL, 4oxaz 820 (d, 1H), + 'dinediamne t 9010, 4- (g, 4-Dihydro I ! t SO-d6) : d 1. 18 ( 1H NMR (DM, 2H ?, 7. 69 (m, 2N), 222 toxazol-5 yiPhenyl-2. 4'pyrim _ H, 4Hrenz [1, 41xazin-6-Y)'5' 6. 95 tmH), . 51 (s,'H), 7. 69 tm 6. 98 (rn 2H), 7. 22 (m H, dinediamine 8. 38 (s, H Prity : 95 % ; MS tmie) : 433 (MH+ ro-3, 3-dimetl'Y 2 (SO-d6) : d 4. 68 (s, 2H), _ 3, 4-Dihyd -2, 4-PYrim 223 _ 4- (oxaz 1 H IdMR (pM 2H, 8. 28 (d, 1 H), 8. 38 (s, 1 N) N oi-5-YOPhenY l fluoo-N2 [ _ 4- (3-°xo-2H, H' 7. 51 (s,'H), 7. 57 (m, 2H), 7. 78 tm _ le) : 419 (MH' purity_ 7. 57 5 rimd ASO-d6). 8. 2$ (m'1H)'7. 62 (m 2H), inediamine-98 % ; MS tm _ uoro-NZ-L' (oxazol-5-Y) phenyt] N -I NMR ('d 8, 28 (s> lHl,, 1. G2 6. 9 (4. 62 (q, 1 H) 224 nzL 4lxazin-6-Y)'2, HpY b xo-2H, 4HbenzL, 4loxazin-6-Y) tm, 2H), 7. 49 (S, 1H), 7. 25 (m, 2H),. urity : 88°/a ; MS (mle) : 433 tMHk2H ?, m, H), _ A.-2-methY'3 a R pMgO-d6) : d 4. 66 (s, 2M, 6. 98 (m'. 22 ( -2, -PYn'Tidinediarnine (d, 3H ? ; LCMS : P g_5_Fluoro N 1H NM (, 2H), 8. 28 (d, 1H), 8. 38 ts,'1H) k-r _ _ (-heny 1 225 N2__Qxazol 5 Y en l]-N4-l3-oxo-2H, - 7. 51 (s, H), 7. 57 (m, 2N), 7. 76 (m _ MS mle) : 419 tMHk, 4. 62 (m. H, + _y2_t4- (oxazol-5 yDPh Y 2N 7. 76 (m H NMR (QMS-d6) : d'1. 93 (m 2H), 3. 58 (, 2H) 5_luoro _ 1-2, WpYrmidinediamine puty 92/o 1 226 benz [', loxazm-7 y) urity : 95 °lo tS mle) : 463 (MHk - benz [1, 4] oxazin- 6_9$ m, ZH, T. 22 (, s 1N), 7. 57 tm 4H m 8 (s, 1H) p 5-Ftuoro-4v2-2 hYdroxyethy)-3°xo-2H, - 5-Ophenyl-2-pyimidinediamine 2H), $. 28 (d, 1H), 8. 3 rF : 5-'"' LU LU zu __pyk, zona an. : __ . a x , 5 t e 2a. H _ A, J - T f ,. 5,. ... __ ase T tase T tase f s k 2 d-a , rYP , n 2, YP rYP, P_ Y w o r- a= -. j _ i. t_ d_I m __ u n, t I 1 . v l da w >. 4". u u'ler r T ttx. . >.. , U , HMC . C CHMC CHMC 11 t 4 i t ro Sn. c e e i . 3 I E 8 t lono 3 t 9 P 9, P o S* r P ut m H NMR (DMSO-d6). d 8. 29 (s, 1H), 8. 15 (d 1H), 7. 76 (m, 1H), 7. 57 N4- (3, 4-Dihydro-4-methyl-2H-benz [1, 4] oxazin-6-yl)-5-fluoro- 228 (m, 3H), 6. 88 (m, 1H), 6. 77 (m, 1H), 6. 62 (m, 1H), 4. 10 (m, 2H), 3. 20 + + N2- [4- (oxazol-5-yl) phenyl]-2, 4-pyrimidinediamine (m, 2H), 2. 80 (s, 3H) ; LCMS : purity : 94% ; MS (m/e) : 419 (MH+). 'H NMR (DMSO-d6) : d 8. 37 (s, 1H), 8. 19 (d, 1H), 7. 61 (m, 5H), 7. 07 N4- (3, 4-Dihydro-4-methyl-2H-benz [1, 4] oxazin-7-yl)-5-fluoro-'H NMR (DMSO-d6) : d 8. 37 (s, 1H), 8. 19 (d, 1H), 7. 61 (m, 5H), 7. 07 229 (m, 2H), 6. 68 (m, 1 H), 4. 22 (m, 2H), 3. 22 (m, 2H), 2. 81 (s, 3H) ; LCMS : + + N2- [4- (oxazol-5-yl) phenyl]-2, 4-pyrimidinediamine purity : 94% ; MS (m/e) : 419 (MH+). 'H NMR (DMSO-d6) : d 8. 36 (s, 1H), 8. 20 (m, 1H), 8. 19 (d, 1H), 7. 77 5-Fluoro-N4- (4-methyl-3-oxo-2H-benz [1, 4] oxazin-7-yl)-N2- [4- 230 (m, 2H), 7. 54 (m, 2H), 7. 37 (s, 1H), 7. 25 (m, 1H), 6. 97 (m, 1H), 4. 58 oxazo !-5-yDpheny ! 1-2, 4-pyrimidinediamine (s, 2H), 2. 97 (s, 3H) ; LCMS : purity : 98% ; MS (m/e) : 433 (MH+). 'H NMR (DMSO-d6) : d 8. 34 (s, 1H), 8. 20 (m, 1H), 8. 17 (d, 1H), 7. 71 231 5-Fluoro-N4- (4-methyl-3-oxo-2H-benz [1, 4] oxazin-6-yl)-N2- [4- m, 2H 7. 54 m, 2H 7. 33 s 1H 7. 25 m, 1H 6. 92 m, 1H 4. 60--- (oxazol-5-yl) phenyl]-2, 4-pyrimidinediamine oxazo !-5-y !) phenyi]-2, 4-pyr ! mid ! nediam ! ne (s, 2H), 2. 90 (s, 3H) ; LCMS : purity : 95% ; MS (m/e) : 433 (MH+). 'H NMR (DMSO-d6) : d 8. 39 (m, 1H), 8. 22 (d, 1H), 7. 86 (m, 1H), 7. 59 N4- (3, 4-Dihydro-2H, 4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- [3-'H NMR (DMSO-d6) : d 8. 39 (m, 1H), 8. 22 (d, 1H), 7. 86 (m, 1H), 7. 59 232 (m, 4H), 6. 87 (m, 2H), 6. 52 (m, 1H), 4. 09 (m, 2H), 3. 23 (m, 2H) ; + + (oxazol-5-yl) phenyl]-2, 4-pyrimidinediamine LCMS : purity : 90% ; MS (m/e) : 405 (MH+). 'H NMR (DMSO-d6) : d 8. 37 (s, 1H), 8. 19 (d, 1H), 7. 82 (m, 1H), 7. 63 N4- (3, 4-Dihydro-3, 3-dimethyl-2H, 4H-benz [1, 4] oxazin-6-yl)-5- 233 (m, 2H), 7. 50 (s, 1H), 7. 38 (m, 1H), 6. 87 (m, 1H), 6. 65 (m, 2H), 3. 82 + + fluoro-N2- [3- (oxazol-5-yl) phenyl]-2, 4-pyrimidinediamine (s, 2H), 1. 19 (s, 6H) ; LCMS : purity : 95% ; MS (m/e) : 433 (MH+). 1H NMR (DMSO-d6) : d 4. 42 (s, 2H), 6. 61 (m, 2H), 6. 95 (m, 1H), 5-Fluoro-N2- [3- (oxazol-5-yl) phenyl]-N4- (3-oxo-2H, 4H- 234 benz [1, 4] oxazin-7-yl)-2, 4-pyrimidinediamine 7. 51 (s, 1H), 7. 49 (m, 2H), 7. 59 (m, 2H), 8. 20 (d, 1H), 8. 38 (s, 1H) + + benz [1, 4] oxazin-7-yl)-2, 4-pyrimidinediamine purity : 90 % ; MS (m/e) : 419 (MH+). 1H NMR (DMSO-d6) : d 1. 93 (m, 2H), 3. 58 (m, 2H), 4. 62 (m, 1H), 5-Fluoro-N4- [2- (2-hydroxyethyl)-3-oxo-2H, 4H-benz [1, 4] oxazin- 235 6. 61 (m, 2H), 6. 95 (m, 1H), 7. 51 (s, 1H), 7. 49 (m, 2H), 7. 59 (m, + + 6-yn-N2- [3- (oxazol-5-yl) phenyl]-2, 4-pyrimidinediamine 2H), 8. 20 (d, 1 H), 8. 38 (s, 1 H) purity : 90 % ; MS (m/e) : 463 (MH+). 1 H NMR (DMSO-d6) : d 1. 93 (m, 2H), 3. 58 (m, 2H), 4. 62 (m, 1 H), N4- (3, 4-Dihydro-4-methyl-2H-benz [1, 4] oxazin-6-yl)-5-fluoro- 236 6. 61 (m, 2H), 6. 95 (m, 1H), 7. 51 (s, 1H), 7. 49 (m, 2H), 7. 59 (m, + N2- [3- (oxazol-5-yl) phenyl]-2, 4-pyrimidinediamine 2H), 8. 20 (d, 1H), 8. 38 (s, 1H) purity : 95 % ; MS (m/e) : 419 (MH+). 1H NMR (DMSO-d6) : d 1. 93 (m, 2H), 2. 82 (s, 3H), 3. 58 (m, 2H), 237 N4-(3, 4-Dihydro-4-methyl-2H-benz [1, 4] oxazin-7-yl)-5-fluoro-4. 62 (m, 1H), 6. 61 (m, 2H), 6. 95 (m, 1H), 7. 51 (s, 1H), 7. 49 (m, + N2- [3- (oxazol-5-yl) phenyl]-2, 4-pyrimidinediamine 2H), 7. 59 (m, 2H), 8. 20 (d, 1H), 8. 38 (s, 1H) purity : 95 % ; MS (m/e) : 419 (MH+). LU LU LU a,. r __pyr, au LEU 4-., i n 4 i° r Ct35 tt3d'4.. t".. t _. a , .. T tase T tase T tase f s k 1 y, x, YP rY P rYP, P_ Y 2 Mm t "CC3C1'I GJ f3 TT18 --P'11. zI.. U ? 3I' ro CHMC CHMC P r , T 2 vL _ L : r :-, a. , °N. I E 3 t I E 8 t lono 3 t P 9 P 1H AIMR (DMSO-d6) : d 1. 38 (s, 6H), 3. 81 (s, 2H), 6 71 Y (m, 2H), N4- (3, 4-Dihydro-3, 3-dimethyl-2H, 4H-benz [1, 4] oxazin-6-yl)-5-1H NMR (DMSO-d6) : d 1. 38 (s, 6H), 3. 81 (s, 2H), 6. 71 (m, 2H), 238 6. 95 (m, 1H), 7. 51 (s, 1H), 7. 69 (m, 2H), 7. 69 (m, 2H), 8. 20 (d, 1H), + + fluoro-N2- [4- (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine 8. 38 (s, 1H) purity : 99 % ; MS (m/e) : 433 (MH+). 5-Fluoro-N2- [4- (oxazol-2-yl) phenyl]-N4- (3-oxo-2H, 4H-'H NMR (DMSO-d6) : d 8. 15 (d 1H), 8. 10 (s, 1H), 7. 78 (m, 3H), 7. 14 5-F) uoro-N2- [4- (oxazo !-2-y !) pheny !]-N4- (3-oxo-2H, 4H- 239 (m, 3H), 6. 97 (m, 2H), 4. 56 (s, 2H) ; LCMS : purity : 98% ; MS (m/e) : 419 + + 3enz [1, 4] oxazin-6-y !)-2, 4-pyrim ! dinediamine (MH+). 'H NMR (DMSO-d6) : d 8. 25 (m, 1H), 8. 22 (d, 1H), 8. 12 (m, 1H), 7. 77 (S)-5-Fluoro-N4- (2-methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)- 240 (m, 2H), 7. 34 (s, 1H), 7. 23 (m, 2H), 6. 98 (m, 2H), 4. 63 (q, 1H), 1. 42 (d, + + N2- [4- (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine 3H) ; LCMS : purity : 95% ; MS (m/e) : 433 (MH+). 1H NMR (DMSO-d6) : d 4. 45 (s, 2H), 6. 71 (m, 2H), 6. 95 (m, 1H), 5-Fluoro-N2- [4- (oxazol-2-yl) phenyl]-N4- (3-oxo-2H, 4H- 241 7. 51 (s, 1 H), 7. 69 (m, 2H), 7. 69 (m, 2H), 8. 20 (d, 1H), 8. 38 (s, 1H) benz [1, 4] oxazin-7-y !)-2, 4-pyrimidinediam ! ne purity : 95 % ; MS (m/e) : 419 (MH+). H NMR (DMSO-d6) : d 8. 25 (d 1H), 8. 20 (d, 1H), 8. 16 (s, 1H), 7. 82 (m, 5-Fluoro-N4- [2- (2-hydroxyethyl)-3-oxo-2H, 4H-benz [1, 4] oxazin- 242 3H), 7. 35 (s, 1 H), 7. 20 (m, 2H), 6. 95 (m, 1 H), 4. 62 (m, 1 H), 3. 58 (m, + + 6-yl]-N2- [4- (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine 1 H), 1. 95 (m, 2H) ; LCMS : purity : 99% ; MS (m/e) : 463 (MH+). 1 H NMR (DMSO-d6) : d 1. 93 (m, 2H), 2. 80 (s, 3H), 3. 58 (m, 2H), 243 N4- (2, 3-Dihydro-4-methyl-2H-benz [1, 4] oxazin-6-yl)-5-fluoro- 4. 62 (m, 1H), 6. 71 (m, 2H), 6. 95 (m, 1H), 7. 51 (s, 1H), 7. 69 (m, N2- [4- (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine 2H), 7. 69 (m, 2H), 8. 20 (d, 1H), 8. 38 (s, 1H) purity : 99 % ; MS (m/e) : 419 (MH+). 'H NMR (DMSO-d6) : d 8. 18 (d, 1H), 8. 14 (s, 1H), 7. 82 (d, 2H), 7. 56 5-Fluoro-N4- (4-methyl-3-oxo-2H-benz [1, 4] oxazin-7-yl)-N2- [4- 244 (m, 2H), 7. 40 (m, 2H), 7. 30 (s, 1H), 6. 95 (m, 1H), 4. 62 (s, 2H), 2. 78 (s, (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine 3H) ; LCMS : purity : 99% ; MS (m/e) : 433 (MH+). 'H NMR (DMSO-d6) : d 8. 20 (d, 1H), 8. 12 (s, 1H), 7. 82 (d, 2H), 7. 55 5-Fluoro-N4- (4-methyl-3-oxo-2H-benz [1, 4] oxazin-6-yl)-N2- [4- 245 (m, 2H), 7. 40 (m, 2H), 7. 33 (s, 1H), 6. 88 (m, 1 H), 4. 59 (s, 2H), 2. 77 (s,-- (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine 3H) ; LCMS : purity : 98% ; MS (m/e) : 433 (MH+). 1H NMR (DMSO-d6) : d 4. 45 (s, 2H), 6. 78 (m, 1H), 7. 18 (m, 1H), 5-Fluoro-N2- [3- (oxazol-5-yl) phenyl]-N4- [3-oxo-2H, 4H- 246 7. 38 (m, 3H), 7. 57 (m, 1H), 7. 79 (m, 1H), 8. 22 (m, 2H) purity : 93 + + benz [1, 4] oxazin-6-yl]-2, 4-pyrimidinediamine % ; MS (m/e) : 419 (MH+). 1 H NMR (DMSO-d6) : d1. 38 (d, 3H), 4. 58 (q, 1H), 6. 78 (m, 1H), (S)-5-Fluoro-N4-(2-methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)-1H NMR (DMSO-d6) : d 1. 38 (d, 3H), 4. 58 (q, 1H), 6. 78 (m, 1H), 247 7. 18 (m, 1 H), 7. 38 (m, 3H), 7. 57 (m, 1H), 7. 79 (m, 1H), 8. 22 (m, + + N2- [3- (oxazol-5-yl) phenyl]-2, 4-pyrimidinediamine 2H) purity : 90 % ; MS (m/e) : 433 (MH+). .......... LU LU LL) Tryptase, Tryptase, Tryptase, fp CHMC, CHMC, CHMC, I I pt IgE, 3pt IgE, 8pt lono, 3pt 1H NMR (DMSO-d6) : d 1. 93 (m, 2H), 3. 58 (m, 2H), 4. 62 (m, 1H), 5-Fluoro-N4-[2-(2-hydroxyethyl)-3-oxo-2H 4H-benz [1 4] oxazin- 248 6. 88 (m, 2H), 7. 22 (m, 3H), 7. 57 (m, 2H), 7. 79 (m, 2H), 8. 22 (m, + + 7-y)]-N2- [3- (oxazo !-2-y !) pheny !]-2, 4-pyr ! mid ! nediamine 2H) purity : 99 % ; MS (m/e) : 463 (MH+). 1H NMR (DMSO-d6) : d 1. 93 (m, 2H), 3. 58 (m, 2H), 4. 62 (m, 1H), 5-Fluoro-N4- [2- (2-hydroxyethyl)-3-oxo-2H, 4H-benz [1, 4] oxazin- 249 l l 6. 71 (m 2H) 6. 95 (m 1H) 7. 51 (s 1H) 7. 69 (m, 2H), 7. 69 (m, + 249 6. 71 (m, 2H), 6. 95 (m, 1H), 7. 51 (s, 1H), 7. 69 (m, 2H), 7. 69 (m, + 7-y []-N2- [4- (oxazo)-5-y !) pheny !]-2, 4-pyr ! m ! d ! nediam) ne 2H), 8. 20 (d, 1H), 8. 38 (s, 1H) purity : 99 % ; MS (m/e) : 463 (MH+). 1H NMR (DMSO-d6) : d d 1. 38 (d, 3H), 4. 58 (q, 1H), 6. 88 (m, 1H), (R)-5-Fluoro-N4- (2-methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)- 250 7. 22 (m, 4H), 7. 57 (m, 1H), 7. 99 (m, 2H), 8. 12 (m, 2H) purity : 95 + + + N2-[3-(oxazol-4-yl) phenyl]-2, 4-pyrimidinediamine % ; MS (m/e) : 433 (MH+). 1H NMR (DMSO-d6) : d d 1. 38 (d 3H), 4. 58 (q, 1H), 6. 88 (m, 1H), (S)-5-F) uoro-N4- (2-methy !-3-oxo-2H, 4H-benz [1, 4] oxazin-6-y !)- 251 7. 22 (m, 4H), 7. 57 (m, 1H), 7. 99 (m, 2H), 8. 12 (m, 2H) purity : 99 + + N2-[3-(oxazol-4-yl) phenyl]-2 4-pynmldlnedlamlne % ; MS (m/e) : 433 (MH+). (R, S)-N2- (3, 5-D ! methy) phenyt)-5-uoro-N4-1H NMR (DMSO-d6) : d 2. 18 (s, 6H), 2. 25 (m, 2H) 3. 75 (t, 2H) 4. 58 252 (tetrahydrofurano [2, 3]-2H-benz [1, 4] oxazin-6-y !)-2, 4- (q, 1H), 6. 52 (d, 1H), 6. 92 (dd, 2H), 7. 37 (m, 3H), 8. 12 (d, 1H) + pyrimid ! nediamine punty : 90 % ; MS (m/e) : 406 (MH+). 1H NMR (DMSO-d6) : d 1. 88 (m, 2H), 2. 97 (m, 2H), 3. 55 (m, 2H), N4- [3, 4-Dihydro-2- (2-hydroxyethyl)-2H, 4H-benz [1, 4] oxazin-6- 253 3. 61 (s, 6H), 4. 08 (q, 1H), 6. 02 (m, 1H), 6. 58 (d, 1H), 6. 96 (m, 5H), + + yl]-N2-(3 5-dimethoxyphenyl)-5-fluoro-2 4-pyrimidinediamine 8. 02 (d, 1 H) purity : 96 % ; MS (m/e) : 442 (MH+). 5-Fluoro-N2- [3- (N-methylamino) carbonylmethyleneoxyphenyl]- 1H NMR (DMSO-d6) : d 2. 62 (d, 3H), 3. 32 (s, 2H), 4. 37 (s, 2H), 254 N4- (3-oxo-2H, 4H-benzo [1, 4] th ! azin-6-y !)-2, 4- 6. 60 (m, 1 H), 7. 22 (m, 3H), 7. 37 (m, 1 H), 7. 43 (m, 1 H), 8. 02 (m, 1 H), + + py (imidinediamine 8. 22 (d, 1H) purity : 94 % ; MS (m/e) : 455 (MH+). 1H NMR (DMSO-d6) : d 1. 88 (m, 2H), 2. 18 (s, 6H), 2. 97 (m, 2H), N4- [2, 3-Dihydro-2- (2-hydroxyethy !)-2H, 4H-benz [1, 4] oxazin-6- 3. 58 (m, 2H), 4. 09 (q, 1H), 6. 19 (m, 1H), 6. 42 (m, 1H), 6. 58 (m, 1H), + + y-N2- (3, 5-d ! methyiphenyi)-5-f) uoro-2, 4-pyr ! rn ! d ! nediamine 6. 81 (m, 2H), 7. 22 (s, 2H), 8. 02 (d, 1H) purity : 97 % ; MS (m/e) : 410 (MH+). 1H NMR (DMSO-d6) : d 3. 37 (s, 2H), 3. 61 (s 6H), 6. 18 (m, 1H), N2-(3, 5-Dimethoxyphenyl)-5-fluoro-N4-(3-oxo-2H, 4H- 256 j. 6. 75 (m, 2H), 7. 22 (m, 2H), 7. 43 (m, 1 H), 8. 22 (d, 1 H) purity : 98 % ; + + benzo [1, 4] thiamn-6-yl)-2, 4-pyrlmldlnedlamlne MS (m/e) : 428 (MH+). 1 H NMR (DMSO-d6) : d 3. 47 (s 2H) 3. 88 (s 3H) 7. 08 (m 1 H) N2- (3-Chloro-4-methoxyphenyl)-5-fluoro-N4- (3-oxo-2H, 4H- 257 7. 25 (s, 2H), 7. 42 (m, 2H), 7. 78 (m, 1 H), 8. 22 (d, 1 H) purity : 99 % ; + + benzo [1, 4] th ! az ! n-6-y !)-2, 4-pyrirnid ! ned ! arn ! ne benzo (m/e) : 432 (MH+). MS (m/e) : 432 (MH+). {nSnd lá tttt 4 :-3 ; IglE, Bpt ty 6 sg ; : ; : . S s ! ! ! ? CHMC, CHMC, CHMC, 11 pt LLi I-Li LLJ Tryptase, Tryptase, Tryptase, fp N CHMC, CHMC, CHMC, llpt IgE, 3pt [gE, 8pt lono, 3pt N4- (3, 4-Dihydro-2H, 4H-benzo [1, 4] thiazin-6-yi)-5-f) uoro-N2- [3- 1HNMR (DMSO-d6) : d 2. 67 (d, 3H), 3. 32 (m, 2H), 4. 30 (s, 2H), 4. 37 258 (N-methylamino) carbonylmethyleneoxyphenyl]-2, 4- (m, 2H), 6. 45 (m, 1H), 6. 88 (m, 1H), 6. 96 (m, 2H), 7. 13 (m, 1H), 7. 23 + + pyrimidinediamine (m, 2H), 8. 02 (m, 2H) purity : 92 % ; MS (m/e) : 441 (MH+). 5-Foro-N2- [3- (N-methymino) carbony) methy ! eneoxypheny !]-1H NMR (DMSO-d6) : d 2. 62 (d, 3H), 3. 11 (s, 3H), 3. 32 (s, 2H), 4. 37 259N4- (4-methy !-3-oxo-2H-benzo [1, 4] thiazin-6-yl)-2, 4- (s, 2H), 6. 60 (m, 1H), 7. 22 (m, 3H), 7. 37 (m, 1H), 7. 43 (m, 1H), 8. 02 + + pyrimidinediamine (m, 1 H), 8. 22 (d, 1H) purity : 95 % ; MS (m/e) : 469 (MH+). 1H NMR (DMSO-d6) : d 3. 11 (s, 3H), 3. 32 (s, 2H), 3. 58 (s, 6H), N2- (3, 5-Dimethoxyphenyl)-5-fluoro-N4- (4-methyl-3-oxo-2H- 260 JT j7 6. 18 (m, 1H), 6. 75 (m, 2H), 7. 32 (m, 3H), 7. 63 (m, 2H), 8. 22 (d, 1 H) + + benzo [1, 4] thiaz ! n-6-yt)-2, 4-pyr ! midined ! amine purity : 98 % ; MS (m/e) : 442 (MH+). 1H NMR (DMSO-d6) : d 4. 58 (s, 2H), 6. 98 (m, 1H), 7. 19 (m, 2H), N2- (3-Benzoth ! oam ! de)-5-fiuoro-N4- (3-oxo-2H, 4H- 261 7. 39 (m, 3H), 7. 93 (m, 1H), 8. 19 (d, 1H) purity : 90 % ; MS (m/e) : + benz [1, 4] oxazin-6-y !)-2, 4-pyrimidined ! amine 411 (MH+). 1H NMR (DMSO-d6) : 1. 91 (m, 2H), 3. 54 (m, 2H), 4. 63 (m, 1H), 6. 98 N2- (3-Benzothioamide)-5-fluoro-N4- [2- (2-hydroxyethyl)-3-oxo- 262 (m, 1H), 7. 19 (m, 2H), 7. 39 (m, 3H), 7. 93 (m, 1H), 8. 19 (d, 1H) + 2H, 4H-benz [1, 41oxaz ! n-6-yi]-2, 4-pyrim ! d ! ned ! amine purity : 93 % ; MS (m/e) : 455 (MH+). 1H NMR (DMSO-d6) : d 1. 42 (d, 3H), 3. 63 (s, 6H), 4. 69 (q, 1H), 6. 14 N2- (3, 5-D ! methoxypheny !)-N4- (d ! oxide-2-methyM, 1, 3-trioxo- 263 (s, 1H), 6. 92 (m, 2H), 7. 72 (s, 2H), 7. 92 (m, 2H), 8. 27 (d, 1 H) purity : 99 + + + 4H-benzo [1, 4] th ! azin-6-yi)-5-f) uoro-2, 4-pyr ! midinediamine % ; MS (m/e) : 474 (MH+). 1H NMR (DMSO-d6) : d 1. 42 (d, 3H), 2. 18 (s, 6H), 4. 72 (q, 1H), 6. 64 N2- (3, 5-Dimethy ! pheny))-5-fiuoro-N4- (2-methy !-1, 1, 3-tr ! oxo- 264 j/ (m, 1 H), 7. 21 (m, 2H), 7. 72 (s, 2H), 7. 68 (m, 2H), 8. 27 (d, 1 H) purity : + + + 99 % ; MS (m/e) : 442 (MH+). 99 % ; MS (m/e) : 442 (MH+). 1 H NMR (DMSO-d6) : d 1. 42 (d, 3H), 4. 79 (q, 1 H), 7. 23 (m, 1 H), 7. 60 5-Fluoro-N2- ( !indazol-6-yi)-N4- (2-methyl-1, 1, 3-trioxo-2H, 4H- 265 (m, 1H), 7. 77 (m, 1H), 7. 82 (m, 3H), 8. 16 (m, 1H), 8. 27 (d, 1H) purity : + + + benzo [1, 4] th ! azin-6-y !)-2, 4-pyrimid ! ned ! am ! ne 94 % ; MS (m/e) : 454 (MH+). 1H NMR (DMSO-d6) : d 1. 42 (d, 3H), 3. 66 (s, 9H), 4. 70 (q, 1H), 7. 04 5-F ! uoro-N4- (2-methy !-1, 1, 3-trioxo-2H, 4H-benzo [1, 4] thiazin-6- 266 (m, 2H), 7. 72 (s, 2H), 7. 72 (m, 3H), 8. 22 (d, 1 H) purity : 96 % ; MS + + + y !)-N2- (3, 4, 5-tr ! methoxypheny !)-2, 4-pyrimidined ! amine (m/e) : 504 (MH+). N2- (3, 5-Dimethoxypheny !)-N4- (2, 2-d ! methy !-1, 1, 3-tr ! oxo-4H- 267 LCMS : ret time 12. 32 min purity : 100% ; MS (m/e) : 488 (MH") + + benzo [1, 4] thiazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine L-L) L-Li Li Tryptase, Tryptase, Tryptase, fp CHMC, CHMC, CHMC, llpt IgE, 3pt IgE, pt lono, 3pt 26 j LCMS : ret time 13. 35 min purity : 99 % ; MS (m/e) : 456 (MH+) + + benzo [1, 4] thiazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine N4- (2, 2-D ! methy !-1, 1, 3-trioxo-4H-benzo [thiazin-6-yi)-5-fiuoro- 26 I l l l LCMS : ret time 11. 28 min purity : 99 % ; MS (m/e) : 518 (MH+) + 2- (3, 4, 5-trimethoxyphenyl)-2, 4-pyrimidinediamine N2- (3, 5-Dimethoxyphenyi)-5-fiuoro-N4- (2-methyi-3-oxo- 27 I l LCMS : ret time 11. 69 min purity : 95 % ; MS (m/e) : 442 (MH+) + 2H, 4H-benzo [1, 4] thiazin-6-yi)-2, 4-pyr'imidinediamine N2- (3, 5-Dimethy ! pheny !)-5-f ! uoro-N4- (2-methy !-3-oxo-2H, 4H- 271 l l LCMS : rettime 12. 12 min purity : 98 % ; MS (m/e) : 410 (MH+) + benzo [1, 4] thiazin-6-yl)-2, 4-pyrimidinediamine 5-Fluoro-N4- (2-methyl-3-oxo-2H, 4H-benzo [1, 4] thiaz ! n-6-y !)- 27 I l l LCMS : ret time 10. 44 min purity : 99 % ; MS (m/e) : 472 (MH+) + N2- (3, 4, 5-trimethoxyphenyl)-2, 4-pyrimidinediamine N4- (2, 2-DimethyM, 1, 3-trioxo-4H-benzo [1, 4] th ! azin-6-y !)-5- 27 I l l l l LCMS : ret time 10. 49 min purity : 95 % ; MS (m/e) : 468 (MH+) + 1uoro-N2- (indazo !-6-y !)-2, 4-pyrim ! d ! nediam ! ne N4-(2 2-Dimethyl-1 1 3-trioxo-4H-benzo [1, 4] th ! azin-6-y !)-5- 27 I l l l l LCMS : ret time 8. 66 min purity : 96 % ; MS (m/e) : 468 (MH+) + fluoro-N2-(indazol-5-yl)-2, 4-pyrimidinediamine N4-(2, 2-Dimethyl-1, 1, 3-trioxo-4H-benzo [1, 4] thiazin-6-yl)-5- 27 uoro-N2- [3- (N-methylamino) carbony [methyleneoxyphenyl]- LCMS : ret time 10. 16 min purity : 93 % ; MS (m/e) : 515 (MH+) + 2, 4-pyrimidinediamine N2- (3-Ch ! oro-4-methoxypheny !)-N4- (2, 2-dimethyt-1, 1, 3-trioxo- 276 l l l LCMS : ret time 12. 66 min purity : 99 % ; MS (m/e) : 492 (MH+) + 4H-benzo [thiazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine 5-Fluoro-N2-(indazol-6-yl)-N4-(2-methyl-3-oxo-2H 4H- 5-Fiuoro-N2- (indazoi-6-y !)-N4- (2-methyi-3-oxo-2H, 4H- 277 LCMS : ret time 9. 40 min purity : 95 % ; MS (m/e) : 422 (MH+) + benzo [1, 4] thiazin-6-yl)-2, 4-pyrimidinediamine 5-Fluoro-N2- (indazol-5-yl)-N4- (2-methyl-3-oxo-2H, 4H- 278 LCMS : ret time 8. 23 min purity : 98 % ; MS (m/e) : 422 (MH+) + benzo [1, 4] thiazin-6-yl)-2, 4-py (imidinediamine 5-F ! uoro-N2- [3- (N-rnethy) amino) carbonyimethyieneoxyphenyi]- 279N4- (2-methy !-3-oxo-2H, 4H-benzo [1, 4] thiazin-6-yl)-2, 4- LCMS : ret time 9. 51 min purity : 96 % ; MS (m/e) : 469 (MH+) + py (imidinediamine LU LLJ LLJ s LU LU LU __pyr, ayez t A i ;.'Je li, r, r d, J. (t r I k bI _ cr'r ra 4F- : t, a x l s. , .,, . T tase T tas t ra, u eT asef sk rYP P_ Y h V U tsi. _ uY 1 2 : i, 3G. f i H . y, c, CHMC, CHMC, 11pt -..- 8pt lono, 3pt P tr : r a 9 w. f. i m. . w , .. . I E 3 t I E 8 t lon 3 t 0 ">a na. >. g, P 9, P N2- (3-Chloro-4-methoxyphenyl)-5-fluoro-N4- (2-methyl-3-oxo- 280 LCMS : ret time 11. 77 min purity : 97 %, MS (m/e) : 446 (MH+) + 2H, 4H-benzo [1, 4] thiazin-6-yl)-2, 4-pyrimidinediamine 5-Fluoro-N2- (3-hydroxyphenyl)-N4- (3-oxo-2H, 4H- 281 l CMS : ret time 8. 18 min purity : 99% ; MS (m/e) : 384 (MH+) + + benzo [1, 4] thiazin-6-yl)-2, 4-pyrimidinediamine racemic-5-Fluoro-N2- (3-hydroxyphenyl)-N4- (2-methyl-3-oxo- 282 LCMS : ret time 9. 11 min purity : 99 %-MS (m/e) : 398 (MH+) + 2H, 4H-benzo [1, 4] thiazin-6-yl)-2, 4-pyrimidinediamine racemic-N4-(2 2-Dimethyl-1 1 3-trioxo-4H-benzo [1, 4] thiazin-6 283 LCMS : ret time 9. 89 min purity : 99 % ; MS (m/e) : 444 (MH+) + yl)-5-fluoro-N2- [3-hydoxyphenyl]-2, 4-pyrimidinediamine racemic-5-Fluoro-N2- [3-hydoxyphenyl]-N4- (2-methyl-1, 1, 3- 284 LCMS : ret time 9. 33 min purity : 97 %-MS (m/e) : 430 (MH+) + trioxo-2H, 4H-benzo [1, 4] thiazin-6-yl)-2, 4-pyrimidinediamine racemic-5-Fluoro-N2- [3- (N- methylamino) carbonylmethyleneoxyphenyl]-N4-(2-methyl- 285 LCMS : ret time 9. 44 min purity : 93 % ; MS (m/e) : 501 (MH+) + 1, 1, 3-trioxo-2H, 4H-benzo [1, 4] thiazin-6-yl)-2, 4- pyrimidinediamine racemic-N2-(3-Chloro-4-methoxyphenyl)-5-fluoro-N4-(2- 286 methyl-1, 1, 3-trioxo-2H, 4H-benzo [1, 4] thiazin-6-yl)-2, 4- LCMS : ret time 11. 68 min purity : 95 % ; MS (m/e) : 478 (MH+) + pyrimidinediamine 5-Fluoro-N4- (3-oxo-2H, 4H-benzo [1, 4] thiazin-6-yl)-N2- (3, 4, 5- 287 LCMS : ret time 9. 49 min purity : 99 % ; MS (m/e) : 458 (MH+) + trimethoxyphenyl)-2, 4-pyrimidinediamine 5-Fluoro-N2- (indazol-5-yl)-N4- (3-oxo-2H, 4H-benzo [1, 4] thiazin- 288 LCMS : ret time 7. 28 min purity : 98 % ; MS (m/e) : 408 (MH+) + 6-yl)-2, 4-pyrimidinediamine N2- (3-Chloro-4-methoxyphenyl)-N4- (2, 2-dimethyl-3-oxo-4H- 289 l CMS : ret time 12. 45 min purity : 97 % ; MS (m/e) : 460 (MH+) + benzo [thiazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine N2- (3, 5-Dimethoxyphenyl)-N4- (2, 2-dimethyl-3-oxo-4H- LCMS : ret time 12. 81 min purity : 99 % ; MS (m/e) : 456 (MH+) + benzo [1, 4] thiazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine N4-(2, 2-Dimethyl-3-oxo-4H-benzo [1, 4] thiazin-6-yl)-N2- (3, 5- 291 LCMS : ret time 13. 44 min purity : 99% ; MS (m/e) : 424 (MH+) + dimethylphenyl)-5-fluoro-2, 4-pyrimidinediamine 1-11. 11, LU LU LU .......... Tryptase, Tryptase, Tryptase, fp CHMC, CHMC, CHMC, 11 pt IgE, 3pt [gE, 8pt lono, 3pt 292 LCMS : ret time 11. 86 min purity : 99% ; MS (m/e) : 486 (MH+) + (3, 4, 5-trimethoxyphenyl)-2, 4-pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-benzo [1, 4] thiazin-6-y !)-5-f) uoro- 29 I... LCMS : ret time 10. 39 min purity : 99 %-MS (m/e) : 412 (MH+) + N2- (3-hydroxyphenyl)-2, 4-pyrimidinediamine N4- (2, 2-Dimethyi-3-oxo-4H-benzo [1, 4] thiazin-6-yl)-5-fluoro- 294N2- [3- (N-methyfam ! no) carbony ! methy ! eneoxypheny !]-2, 4- LCMS : ret time 10. 04 min purity : 97 % ; MS (m/e) : 483 (MH+) + + pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-benzo [1, 4] thiazin-6-yi)-5-fluoro- 295 LCMS : ret time 10. 54 min punty : 96% ; MS (m/e) : 436 (MH+) + + + 29f (indazo !-6-y !)-2, 4-pyrimid ! nediam ! ne racemic-5-F) uoro-N2- (3-f) uoro-4-methoxypheny !)-N4- (2- 296methY ethyl-1, 1, 3-trioxo-2H, 4H-benzo [1, 4] thiazin-6-y !)-2, 4- LCMS : rettime 11. 91 min purity : 96 % ; MS (m/e) : 462 (MH+) + + pyrimidinediamine N4- (2, 2-Dimethyl-1, 1, 3-trioxo-4H-benzo [1, 4] th ! az ! n-6-y !)-5- 297 LCMS : ret time 12. 11 min punty : 96% ; MS (m/e) : 476 (MH+) + + f) uoro-N2- (3-fluoro-4-methoxyphenyl)-2, 4-pyrimidinediamine racemic-5-F ! uoro-N2- (3-f) uoro-4-methoxyphenyi)-N4- (2- 298 methy !-3-oxo-2H, 4H-benzo [1, 4] thiazin-6-yl)-2, 4- LCMS : ret time 11. 29 min purity : 98 % ; MS (m/e) : 430 (MH+) + + pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-benzo [thiazin-6-yi)-5-fluoro-N2- (3- 299 LCMS : ret time 12. 14 min purity : 99% ; MS (m/e) : 444 (MH+) + + fluoro-4-methoxyphenyl)-2, 4-pyrimid ! nediamine 5-Fiuoro-N2- (3-f ! uoro-4-methoxypheny !)-N4- (3-oxo-2H, 4H- 300 LCMS : ret time 10. 56 min purity : 97% ; MS (m/e) : 415 (MH+) + + benzo [1, 4] thiazin-6-yl)-2, 4-pyrimidinediamine N2- (3, 5-Dimethy ! pheny))-5-fiuoro-N4- (3-oxo-2H, 4H- 301 LCMS : ret time 11. 76 min purity : 98% ; MS (m/e) : 396 (MH+) + + benzo [1, 4] thiazin-6-yl)-2, 4-pyrimidinediamine N2- (3, 5-Dimethylphenyl)-5-fluoro-N4- (1, 1, 3-trioxo-2H, 4H- 302 LCMS : ret time 10. 72 min purity : 96 % ; MS (m/e) : 428 (MH+) + benzo [1, 4] thiazin-6-yl)-2, 4-pyrimidinediamine N2- (3, 5-Dimethoxyiphenyi)-5-foro-N4- (1, 1, 3-trioxo-2H, 4H- 303 LCMS : ret time 10. 06 min purity : 95% ; MS (m/e) : 460 (MH+) + benzo [1, 4] thiazin-6-yl)-2, 4-pyrimidinediamine L. U LLJ Tryptase, Tryptase, Tryptase, fp s CHMC CHMC, CHMC, llpt [gE, 3pt [gE, 8pt lono, 3pt 304 j/LCMS : ret time 10. 13 min purity : 97% ; MS (m/e) : 464 (MH+) + 2H, 4H-benzo [1, 4] thiazin-6-yi)-2, 4-pyrimidinediam ! ne 5-F ! uoro-N2- [3- (N-methyiamino) carbonyimethyieneoxyphenyi]- 305N4- (1, 1, 3-trioxo-2H, 4H-benzo [1, 4] thiazin-6-yl)-2, 4- LCMS : ret time 8. 40 min purity : 97 % ; MS (m/e) : 487 (MH+) + pyrimidinediamine 5-F) uoro-N2- (3, 4, 5-triimethoxyiphenyi)-N4- (1, 1, 3-trioxo-2H, 4H- 306 j LCMS : ret time 9. 19 minpunty : 95% ; MS (m/e) : 490 (MH+) + benzo [1, 4] thiazin-6-yl)-2, 4-pyrimid ! ned ! amine 5-F) uoro-N2- (indazo !-6-y !)-N4- (1, 1, 3-trioxo-2H, 4H- 307 LCMS : ret t ! me 8. 33 min purity : 91 % ; MS (m/e) : 440 (MH+) + benzo [1, 4] thiazin-6-y !)-2, 4-pyr ! m ! d ! nediamine 5-F ! uoro-N2- (3-hydroxypheny [)-N4- (1, 1, 3-tr ! oxo-2H, 4H- 308 LCMS : ret time 8. 07 min purity : 96% ; MS (m/e) : 416 (MH+) + benzo [1, 4] thiazin-6-yl)-2, 4-pyrimidinediamine 5-F ! uoro-N2- (3-f) uoro-4-methoxyphenyi)-N4- (1, 1, 3-trioxo- 309 LCMS : ret time 9. 74 min purity : 95% ; MS (m/e) : 448 (MH+) + 2H, 4H-benzo [1, 4] thiazin-6-yi)-2, 4-pyrimidinediamine 5-Fluoro-N2-(indazol-5-yl)-N4-(1, 1, 3-trioxo-2H, 4H- 5-Fiuoro-N2- (indazoi-5-yi)-N4- (1, 1, 3-trioxo-2H, 4H- 310 LCMS : ret time 7. 40 m ! n purity : 94% ; MS (m/e) : 440 (MH+) + benzyl [1, 4] thiazin-6-yl)-2, 4-pyrimidinediamine N4- (2, 2-Dimethy !-3-oxo-4H-benzo [1, 4] thiazin-6-yi)-5-f) uoro- 311 LCMS : rettime 10. 15 min purity : 99% ; MS (m/e) : 450 (MH+) + + N2- (1-methylindazo !-6-yi)-2, 4-pyrimidinediamine N4- (2, 2-Dimethy !-3-oxo-4H-benzo [1, 4] thiazin-6-yi)-5-fiuoro- 312 LCMS : rettime 10. 54 min purity : 100 % ; MS (m/e) : 436 (MH+) N2- (indazol-6-yi)-2, 4-pydmidinediamine Trifuoro Acetate Salt N2-Chioro-5-fiuoro-N4- (3-oxo-2H, 4H-benzo [1, 4] thiazin-6-yi)-4- 313 LCMS : ret time 5. 58 min purity : 95% ; MS (m/e) : 311 (MH+) + jyrimidineamine pyrimidineamine 314 LCMS : rettime 11. 18 min purity : 95% ; MS (m/e) : 325 (MH+) + benzo [1, 4] thiazin-6-yi)-4-pyrimidineamine N2-Chloro-5-fluoro-N4-(1, 1, 3-trioxo-2H, 4H-benzo [1, 4] thiazin- N2-Ch ! oro-5-fiuoro-N4- (1, 1, 3-trioxo-2H, 4H-benzo [1, 4] thiazin- 315 LCMS : ret time 10. 03 min purity : 95% ; MS (m/e) : 343 (MH+) 6-yi)-4-pyrimidineamine 6-yi)-4-pyrimidineamine u L. Li 'Tryptase, Tryptase, T ptase, fp yk, ry CHMC, CHMC, CHMC, llpt IgE, 3pt IgE, 8pt lono, 3pt 316 LCMS : ret time 12. 29 min purity 95% ; MS (m/e) : 339 (MH+) + 31 I LCMS : ret time 12. 29 min purity : 95 % ; MS (m/e) : 339 (MH+) + 5-fluoro-4-pyrimidineamine racemic-N2-Chloro-5-fluoro-N4- (2-methyl-1, 1, 3-trioxo-2H, 4H- 31 I l LCMS : ret time 10. 16 min purity : 96 %-MS (m/e) : 357 (MH+) benzo [1, 4] thiazin-6-yl)-4-pyrimidineamine N2-Chloro-N4- (2, 2-dimethyl-1, 1, 3-trioxo-4H-benzo [1, 4] thiazin- 31 I LCMS : ret bme 10. 50 min purity : 96 % MS (m/e) : 371 (MH+) + 6-yl)-5-fluoro-4-pyrimidineamine ) 4- [benzoxathiazin-3 (4H)-one-6-yn2-chioro-5-f) uoro-4- 31 X.. LCMS : ret time 6. 40 min purity : 99 % ; MS (m/e) : 296 (MH+) + pyrimidineamine 2-Chioro-N4- (3, 3-dimethyi-1, 4-benzoxazin-6-y !)-5-fiuoro- 32 i.. LCMS : ret time 12. 20 min purity 99 % MS (m/e) : 309 (MH+) + pyrimidineamine 1H NMR (DMSO-d6) : d 9. 57 (bs, 1H), 9. 21 (bs, 1H), 8. 16 (d, J= 3. 6 Hz, 1H), 8. 01 (d, J= 8. 1 Hz, 1H), 7. 75 (s, 1H), 7. 40 (t, J= 8. 1 Hz, I H), N2-(3 5-Dimethoxyphenyl)-5-fluoro-N4-(3- 324 7. 01 (d, J= 8. 4 Hz, 1 H), 6. 91 (d, J= 2. 1 Hz, 2H), 6. 09-6. 06 (m, I H), + trifluoromethoxyphenyl)-2, 4-pyrimidinediamine 3. 65 (s, 6H) ; 19F NMR (282 MHz, DMSO-d6) :-57. 17,-163. 27 ; LCMS : purity : 99% ; MS (m/e) : 425 (MH+) 'H NMR (DMSO-d6) : d 9. 54 (bs, 1H), 9. 12 (bs, 1H), 8. 15 (dd, J= 1. 8 N2- (3, 5-Dimethyipheny !)-5-f ! uoro-N4- (3- and 3. 6 Hz, 1 H), 7. 96 (d, J= 8. 1 Hz, 1 H), 7. 75 (s, 1 H), 7. 41 (t, J= 8. 1 + trifluoromethoxyphenyl)-2, 4-pyrimidinediamine Hz, 1 H), 7. 01 (d, J= 8. 1 Hz, 1 H), 6. 55 (s, 1 H), 2. 18 (s, 6H) ; 19F NMR (282 MHz, DMSO-d6) :-57. 01,-163. 96 ; LCMS : pu H NMR (DMSO-d6) : d 10. 83 (bs, 1H), 9. 49 (s, 1H), 9. 11 (s, 1H), 8. 13 5-Fiuoro-N2- (indo !-6-yi)-N4- (3-trifiuoromethoxypheny !)-2, 4- (dd, J= 1. 2 and 3. 3 Hz, 1 H), 8. 05 (d, J= 8. 1 Hz, 1 H), 7. 80 (d, J= 13. 2 326 + + pyrimidinediamine Hz, 2H), 7. 40-7. 32 (m, 2H), 7. 21-7. 16 (m, 2H), 6. 99-6. 95 (m, I H), 6. 34-6. 28 (m, 1 H) ; 19F NMR (282 MHz, DMSO-d6) :- 'H NMR (DMSO-d6) : d 10. 87 (bs, 1H), 9. 61 (s, 1H), 9. 46-9. 43 (m, 1H), 5-Fiuoro-N4- [1- (N-methyiamino) carbonyiindo !-6-y !]-N2- [3- (N- \./. ./, . . 8. 08 (d, J= 3. 6 Hz, 1 H), 8. 04-7. 98 (m, 1 H), 7. 40-7. 25 (m, 4H), 7. 02 + 327 methy ! amino) carbonyimethyieneoxyphenyi]-2, 4- + (dd, J= 1. 8 and 8. 4 Hz, 1H), 6. 95-6. 90 (m, 1H), 6. 77-6. 70 (m, 2H), pyrimidinediamine 6. 38-6. 35 (m, 1 H), 4. 39 (s, 2H), 2. 62 (d, J= 4. 8 Hz LLJ li LU ,,.-_ r. ,.., :. : g., r, :"'.... zt-. : t, __pyr, C.. O be S- :"_ t \ L, v x L l t .. i. a$zra. T tase T t , a, , xx ase T tase f s k , [rYp rYP t rYP, P_ Y a v.,.. Ade . KS761 31'Lte'j t l., v\y ; : v...'t5. v. S " c v 7 MC CHMC 1 t 1 t. x P al E r IE t 3 I E 8 t lon , x.. 0 3 t 4 ., P 9 P, P H NMR (DMSO-d6) : d 9. 15 (bs,-1H), 9. 11 (s, 1H), 8. 07 (d, HJ 3. 9 Hz, 328 N2- (3, 5-Dimethoxyphenyl)-N4- (3, 5-dimethylphenyl)-5-fluoro- 1 H), 7. 37 (s, 2H), 6. 89 (d, J= 1. 81 Hz, 2H), 6. 68 (s, 1 H), 6. 05 (t, J= 2. 1 328 + 2, 4-pyrimidinediamine Hz, 1 H), 3. 61 (s, 6H), 2. 23 (s, 6H) ; 19F NMR (282 MHz, DMSO-d6) :- 163. 60 ; LCMS : purity : 99% ; MS (m/e) : 369 (MH 'H NMR (DMSO-d6) : d 9. 45 (s, 1 H), 9. 22 (s, 1 H), 8. 12 (d, J= 3. 9 Hz, N4-(3 5-Dimethylphenyl)-5-fluoro-N2-(3-methoxy-5- 329 trifluoromethylphenyl)-2, 4-pyrimidinediamine H), 7. 68-7. 64 (m, 1H), 7. 58-7. 54 (m, 1H), 7. 33 (s, 2H), 6. 71 (s, 2H), + trifluoromethylphenyl)-2, 4-pyrimidinediamine 3. 69 (s, 3H), 2. 23 (s, 6H) ; LCMS : purity : 99% ; MS (m/e) : 407 (MH+). 'H NMR (DMSO-d6) : d 10. 11 (bs, 1H), 9. 94 (bs, 1H), 8. 25 (d, J=4. 8 330 N4-(3, 5-Dimethylphenyl)-5-fluoro-N4-(3-methyl-5-Hz, 1H), 7. 67 (s, 2H), 7. 24 (s, 2H), 7. 14 (s, 1H), 6. 80 (s, 1H), 2. 25 (s, + trifluoromethylphenyl)-2, 4-pyrimidinediamine 3H), 2. 21 (s, 6H) ; 19F NMR (282 MHz, DMSO-d6) :-61. 76,-161. 10 ; LCMS : purity : 99% ; MS (m/e) : 390 (M+). 'H NMR (DMSO-d6) : d 9. 86 (bs, 1H), 9. 42 (bs, 1H), 8. 20 (d, J=4. 2 Hz, 331 N2- (3, 5-Dimethylphenyl)-5-fluoro-N4- (3-methoxy-5- 1 H), 7. 80-7. 76 (m, 1 H), 7. 56-7. 51 (m, 1 H), 7. 18 (s, 2H), 6. 94 (s, 1 H), trifluoromethylphenyl)-2, 4-pyrimidinediamine 6. 59 (s, 1H), 3. 74 (s, 3H), 2. 15 (s, 6H) ; LCMS : purity : 97% ; MS (m/e) : 407 (MH+). 'H NMR (DMSO-d6) : d 9. 59 (bs, 1H), 9. 24 (bs, 1H), 8. 18 (d, J=3. 3 Hz, 332N2- (3, 5-Dimethoxyphenyl)-5-fluoro-N4- (3-methoxy-5- 1H), 7. 84-7. 68 (m, 1H), 7. 61-7. 57 (m, 1H), 6. 89 (d, J= 2. 4 Hz, 3H), + 332 + trifluoromethylphenyl)-2, 4-pyrimidinediamine 6. 06 (t, J= 2. 4 Hz, 1H), 3. 77 (s, 3H), 3. 61 (s, 6H) ; 19F NMR (282 MHz, DMSO-d6) :-61. 85,-163. 20 ; LCMS : purity : 97% ; 'H NMR (DMSO-d6) : d 9. 80 (bs, 1H), 9. 72 (s, 1H), 8. 25 (d, J= 3. 3 Hz, 333 N2, N4-Bis (3-methoxy-5-trifluoromethylphenyl)-5-fluoro-2, 4- 1 H), 7. 77-7. 72 (m, 1 H), 7. 60-7. 52 (m, 3H), 6. 92 (s, 1 H), 6. 75 (s, 1 H), 333 + pyrimidinediamine 3. 77 (s, 3H), 3. 71 (s, 3H) ; 19F NMR (282 MHz, DMSO-d6) :-61. 90,- 161. 82 ; LCMS : purity : 97% ; MS (m/e) : 477 (MH+). 'H NMR (DMSO-d6) : d 9. 83 (bs, 1 H), 9. 72 (bs, 1 H), 8. 25 (d, J= 3. 6 Hz, 334 5-Fluoro-N4- (3-methoxy-5-trifluoromethylphenyl)-N2- (3- 1 H), 7. 81-7. 68 (m, 3H), 7. 57-7. 52 (m, 1 H), 7. 06 (s, 1 H), 6. 96-6. 91 (m, + 334 + methyl-5-trifluoromethylphenyl)-2, 4-pyrimidinediamine 1 H), 3. 75 (s, 3H), 2. 26 (s, 3H) ; 19F NMR (282 MHz, DMSO-d6) :- 61. 82,-162. 02 ; LCMS : purity : 91% ; MS (m/e) : 461 (M 'H NMR (DMSO-d6) : d 9. 67 (bs, 1H), 9. 24 (bs, 1H), 8. 17 (d, J= 3. 6 Hz, 335 5-Fluoro-N4-(3-methoxy-5-trifluoromethylphenyl)-N2-(3, 4, 5- 1 H), 7. 84-7. 78 (m, 1 H), 7. 59 (s, 1 H), 6. 95-6. 87 (m, 3H), 3. 74 (s, 3H), + trimethoxyphenyl)-2, 4-pyrimidinediamine 3. 59 (s, 6H) ; 19F NMR (282 MHz, DMSO-d6) :-61. 86,-163. 40 ; LCMS : purity : 96% ; MS (m/e) : 469 (MH+). LU LU LU t Tryptase, Tryptase, Tryptase, fp Ph, t M. 7oun me CHMC, CHM C, CHMC, llpt "'"''IgE, 3pt IgE, 8pt lono, 3pt H NMR (DMSO-d6) : d 9. 56 (s, 1H) 1 [sH) 61'H),'''8 ! lT N2- (3-Ch) oro-4-hydroxy-5-methy ! pheny)-5-f) uoro-N4- (3- J= 3. 6 Hz, 1H), 7. 82-7. 77 (m, 1H), 7. 57-7. 53 (m, 1H), 7. 52-7. 48 (m, + 336 + methoxy-5-trifluoromethylphenyl)-2, 4-pyri mid inediamine I H), 7. 27-7. 23 (m, 1H), 6. 89 (bs, 1H), 3. 76 (s, 3H), 2. 10 (s, 3H) ; 19F NMR (282 MHz, DMSO-d6) :-61. 80,-164. 13 ; LCM 'H NMR (DMSO-d6) : d 9. 74 (s, 1 H), 9. 70 (s, 1 H), 8. 25 (d, J= 3. 6 Hz, N2- (3, 5-Dich ! oropheny !)-5-fiuoro-N4- (3-methoxy-5- 1H), 7. 77-7. 71 (m, 3H), 7. 55-7. 50 (m, 1H), 7. 03-7. 01 (m, 1 H), 6. 95-+ t (ifluoromethylphenyl)-2, 4-py (imidinediamine 6. 93 (m, 1 H), 3. 79 (s, 3H) ; 19F NMR (282 MHz, DMSO-d6) :-61. 78,- 161. 76 ; LCMS : purity : 96% ; MS (m/e) : 448 (MH+). 'H NMR (DMSO-d6) : d 10. 11 (bs, 1H), 9. 82 (bs, 1H), 8. 26 (d, J= 4. 2 N2- [3, 5-Bis (hydroxymethylene) phenyl!]-5-fluoro-N4- (3- Hz, 1H), 7. 83-7. 79 (m, 1H), 7. 57-7. 51 (m, 1H), 7. 34 (bs, 2H), 6. 99-6. 94 + + 338 + + methoxy-5-trifluoromethylphenyl)-2, 4-pyrimidinediamine (m, 2H), 4. 38 (s, 4H), 3. 74 (s, 3H) ; LCMS : purity : 92% ; MS (m/e) : 439 (MH+). 'H NMR (DMSO-d6) : d 9. 98 (bs, 1 H), 9. 66 (bs, 1 H), 8. 24 (d, J= 4. 2 Hz, N2- (4-Ch ! oro-3, 5-dimethy [phenyi)-5-f) uoro-N4- (3-methoxy-5- 1H), 7. 76-7. 71 (m, 1 H), 7. 56-7. 52 (m, 1 H), 7. 37 (s, 2H), 6. 98-6. 95 (m, tr ! f) uoromethy ! pheny))-2, 4-pyr) midinediamine 1H), 3. 75 (s, 3H), 2. 20 (s, 6H) ; LCMS : purity : 98% ; MS (m/e) : 442 (MH+). 1 H NMR (DMSO-d6) : d 9. 27 (s, 1 H), 9. 18 (s, 1 H), 8. 10 (d, 1 H, J= 3. 9 N2, -Bis (3, 5-dimethoxyphenyl)-5-fluoro-2, 4-Hz), 6. 99 (d, 2H, J= 2. 1 Hz), 6. 92 (d, 2H, J= 2. 4 Hz), 6. 21 (t, 1 H, J= pyrimidinediamine 2. 1 Hz), 6. 05 (t, 1H, J= 2. 4 Hz), 3. 68 (s, 6H), 3. 62 (s, 6H) ; LCMS : purity : 100% ; MS (m/e) : 401 (MH+) 'H NMR (DMSO-d6) : d 9. 11 (s, 1 H), 8. 98 (s, 1 H), 8. 05 (d, 1H, J=3. 9 341 N2, N4-Bis (3, 5-dimethylphenyl)-5-fluoro-2, 4-pyrimidinediamine Hz), 7. 33 (bs, 2H), 7. 24 (bd, 2H), 6. 69 (bs, 1 H), 6. 51 (bs, 1 H), 2. 25 + (bs, 6H), 2. 14 (s, 6H) ; LCMS : purity : 100% ; MS (m/e) : 336 (M+). 'H NMR (DMSO-d6) : d 9. 10 (s, 1H), 9. 09 (s, 1H), 8. 02 (d, 1H, J= 3. 9 N2- [3, 5-Bis (hydroxymethylene) phenyl]-N4-(3, 4-Hz), 7. 44 (s, 2H), 7. 28 (d, 1 H, J= 3. 0 Hz), 7. 24 (d, 1 H, J= 2. 7 Hz), 6. 86 + ethylenedioxyphenyl)-5-fluoro-2, 4-pyrimidinediamine (s, 1 H), 6. 79 (d, 1 H, J= 8. 7 Hz), 5. 05 (t, 2H, J= 6 Hz), 4. 39 (d, 4H, J= 5. 4 Hz), 4. 22 (bs, 4H) ; LCMS : purity : 97 1H NMR (DMSO-d6) : d 9. 19 (s, 1H), 9. 15 (s, 1H), 8. 08 (d, 1 H, J= 3. 6 N2- [3, 5-Bis (hydroxymethylene) phenyl]-N4-(3, 5-Hz), 7. 46 (s, 2H), 7. 01 (d, 2H, J= 2. 1 Hz), 6. 86 (s, 1 H), 6. 21 (t, 1 H, J= 343 + + dimethoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine 1. 8 Hz), 5. 03 (t, 2H, J= 5. 4 Hz), 4. 38 (d, 4H, J= 5. 4 Hz), 3. 68 (s, 6H) ; LCMS : purity : 86% ; MS (m/e) : 401 (MH+ M ! BMS' ! '..'"Segj Tryptase, Tryptase, Tryptase, fi Tryptas __pyk, CHMC, CHMC, IlPt ',,'IgE, 3pt IgE, 8pt lono 3pt H NMR (DMSO-d6) : d 10. 55 (s, I H), 9. 27 (bd, 1 H), 8. 97 (s, 1 H), 8. 04 N2- [3, 5-Bis (hydoxymethylene) phenyl]-N4- (2, 2-dimethyl-3-oxo- (d, 1 H, 3. 6 Hz), 7. 44 (d, 2H, J= 1. 2 Hz), 7. 39 (dd, 1 H, J= 2. 4 and 8. 4 + + 344 + + 4H-benz [1, 4] oxazin-6-yt)-5-ftuoro-2, 4-pynmidinediamine Hz). 7. 24 (d, 1 H, J= 2. 4 Hz), 6. 88 (d, 1 H, J= 8. 7 Hz), 6. 85 (bs, 1 H), 6. 38 (s, 2H), 5. 08 (t, 1H, J= 5. 6 Hz), 4. 93 (t HNMR (DMSO-d6) : d 9. 26 (s, 1H), 9. 15 (s, 1H), 8. 07 (bd, 1H, J= 3. 9 N2-t3, 5-B) s (hydroxymethytene) phenyi]-N4- (3-chtoro-4- Hz), 7. 79 (dd, 1 H, J= 2. 7 and 9 Hz), 7. 74 (d, 1 H, J= 2. 7 Hz), 7. 43 (s, + ex h th m e dr 0 x Y'e B i s N 2 y y 345 methoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine 2H), 7. 11 (d, 1 H, J= 9 Hz), 6. 86 (s, 1 H), 5. 06 (t, 2H, J= 5. 4 Hz), 4. 38 im uo r 2'4 h en tho x m e p y p y (d, 4H, J= 5. 4 Hz), 3. 84 (s, 3H) ; LCMS : pun 'HNMR (DMSO-d6) : d 9. 50 (bs, 1H), 9. 28 (s, 1H), 8. 16 (d, 1H, J= 3. 6 N2- [3, 5-Bis (hydroxymethylene) phenyl]-N4- (3, 4- Hz), 8. 05 (d, 1 H, J= 2. 7 Hz), 7. 93 (dd, 1 H, J= 2. 7 and 9. 0 Hz), 7. 52 (d, + N2-E3, 5_Bis (hydroXymethylene) phen dichlorophenyl)-5-fluoro-2, 4-pyrimidinediamine I H, J= 8. 7 Hz), 7. 44 (s, 2H), 6. 87 (s, 1 H), 5. 09 (t, 2H, J= 5. 7 Hz), 4. 41 346 djchlorophenyl)-5_fluoro_2, 4_pyrimidiT (d, 4H), J= 5. 4 Hz) ; LCMS : purity : 97% ; 'H NMR (DMSO-d6) : d 11. 02 (s, 1H), 10. 49 (s, 1H), 9. 69 (d, 1H, J= _h", rl 4 N4- (2, 2-D ! methy !-3-oxo-4H-benz [1, 4] oxazin-6-y [)-N2- [1- (N- 347 methylaminocarbony) lindol-6-yl)-5-fluoro-2, 4-l l + 347 methy ! aminocarbony) i ! ndo [-6-yi)-5-f] uoro-2, 4- + 7. 38 (t, 1 H, J= 2. 7 Hz), 7. 11 (s, 1 H), 6. 81 (d, 1H, J=2. 4Hz), 6. 72 (dd, pyrimidinediamine 1H, J=1. 8and8. 4Hz), 6. 59 (dd, 1H, J=2 1H NMR (DMSO-d6) : d 11. 01 (s, 1H), 10. 44 (s, 1H), 9. 50 (s, 1H), 8. 16 (d, 1H, J= 3. 6 Hz), 8. 07 (d, 1H, J= 5. 4 Hz), 7. 52 (d, 1H, J= 8. 4 Hz), N2- (1-Am ! nocarbony ! indo !-6-y !)-N4- (2, 2-dimethy !-3-oxo-4H- 48 348 7. 38 (t, 1H, J= 2. 7 Hz), 6. 73 (dd, 1H, J= 1. 5 and 8. 4 Hz), 6. 54 (m, 2H), benz [1 4] oxazin-6-yl)-5-fluoro-2 4-pyrimidinediamine 5. 69 (d, 1H, J= 8. 7 Hz), 2. 93 (s, 2H), 1. 29 (s, 6H) ; LCMS pu purity : 95% ; L MS (m/e) : 462 (MH+) 'H NMR (DMSO-d6) : d 9. 26 (bs, 1H), 9. 20 (s, 1H), 8. 10 (d, 1H, J= 3. 9 N2- (4-Ch ! oro-3, 5-dimethy ! pheny !)-N4- (3, 5-d ! methoxypheny !)- 349 Hz), 7. 48 (s, 2H), 6. 94 (d, 2H, J= 2. 4 Hz), 6. 23 (t, 1 H, J= 2. 4 Hz), 3. 68 + 5-fluoro-2 4-pyrimidinediamine (s, 6H), 2. 20 (s, 6H) ; LCMS : purity : 92% ; MS (m/e) : 403 (MH+). 'H NMR (DMSO-d6) : d 9. 20 (s, 1H), 9. 05 (s, 1 H), 8. 08 (d, 1 H, J= 3. 6 N4- (3, 5-Dimethoxyphenyl)-N2- (3, 5-dimethylphenyl)-5-fluoro- Hz), 7. 27 (s, 2H), 6. 97 (d, 2H, J= 2. 1 Hz), 6. 51 (s, 1H), 6. 21 (t, 1H, J= 2, 4-pyrimidinediamine 1. 8 Hz), 3. 67 (s, 6H), 2. 15 (s, 6H) ; LCMS : purity : 96% ; MS (m/e) : 369 (MH+). y. t. lN : u d,. § v LV LV k i., :. : 1. : ; pop e F ? S,..., Xi xi., vx t 1 m 3 ; Y i x xi I. i lltVDll.. ...-., wr T tas y e T tas p", , . e T tase f s k M .. . t., x YP rYP 9,, YP P_ Y Corf tur r , x tarri' r 4YR. s. R r CHM C CHM i . C CHMC 11 t J ,. a. 4, ud r P ua ar I ,,. yr ak L 5 t I E 3 t I x, < E 8 t I ono 3 t x w 9 P iia. 9, P,. P H NMR (DMSO-d6) : d 9. 16 (s, 1 H), 9. 96 (s, 1 H), 8. 05 (d, 1 H, J= 3. 3 351 N4- (3, 5-Dimethoxyphenyl)-N2- (3, 4-ethylenedioxyphenyl)-5- Hz), 7. 22 (d, 1 H, J= 2. 7 Hz), 7. 06 (dd, 1 H, J= 2. 4 and 8. 7 Hz), 6. 99 (d, + fluoro-2, 4-pyrimidinediamine 2H, J= 2. 1 Hz), 6. 65 (d, 1H, J= 8. 7 Hz), 6. 20 (t, 1H, J= 2. 1 Hz), 4. 17 (s, 4H), 3. 69 (s, 6H) ; LCMS : purity : 91% ; M H NMR (DMSO-d6) : d 9. 82 (bs, 1H), 9. 58 (bs, 1H), 8. 21 (d, 1H, J= 352 N2- (3, 5-Dichlorophenyl)-N4- (3, 5-dimethoxyphenyl)-5-fluoro- 3. 6 Hz), 7. 75 (bs, 2H), 7. 04 (t, 1H, J= 1. 8 Hz), 6. 89 (d, 2H, J= 1. 8 Hz), + 2, 4-pyrimidinediamine 6. 27 (t, 1 H, J= 2. 1 Hz), 3, 67 (s, 6H) ; LCMS : purity : 95% ; MS (m/e) : 410 (MH+). 'H NMR (DMSO-d6) : d 9. 47 (s, 1H), 9. 31 (s, 1H), 8. 15 (d, 1H, J=3. 6 N4-(3, 5-Dimethoxyphenyl)-5-fluoro-N2-(3-methyl-5- Hz), 7. 86 (s, 1 H), 7. 79 (s, 1 H), 6. 98 (m, 3H), 6. 23 (t, 1 H, J= 2. 4 Hz), + trifluoromethylphenyl)-2, 4-pyrimidinediamine 3. 68 (s, 6H), 2. 27 (s, 3H) ; LCMS : putity : 96% ; MS (m/e) : 423 (MH+). 'H NMR (DMSO-d6) : d 9. 56 (s, 1 H), 9. 28 (s, 1 H), 8. 11 (d, 1 H, J= 3. 6 354 N2- (3, 5-Dichlorophenyl)-N4- (3, 4-ethylenedioxyphenyl)-5- Hz), 7. 76 (d, 2H, J=1. 8 Hz), 7. 18 (d, 1H, J=2. 4 Hz), 7. 13 (dd, 1 H, J= 354 + fluoro-2, 4-pyrimidinediamine 3. 6 and 9 Hz), 6. 98 (t, 1 H, J= 1. 8 Hz), 6. 82 (d, 1 H, J= 8. 7 Hz), 4. 21 (bs, 4H) ; LCMS : purity : 81% ; MS (m/e) : 407 (M 'H NMR (DMSO-d6) : d 9. 53 (s, 1H), 9. 33 (d, 1H, J= 1. 5 Hz), 8. 16 (d, 355 N4-(3, 5-Dimethoxyphenyl)-5-fluoro-N2-(3-methoxy-5-1 H, J= 3. 6 Hz), 7. 65 (d, 1 H, J= 2. 1 Hz), 6. 98 (d, 2H, J= 2. 1 Hz), 6. 72 trifluoromethylphenyl)-2, 4-pyrimidinediamine (bs, 1H), 6. 22 (t, 1H, J= 2. 4 Hz), 3. 72 (s, 3H), 3. 69 (s, 6H) ; LCMS : purity : 96% ; MS (m/e) : 439 (MH+). 'H NMR (DMSO-d6) : d 9. 47 (s, 1H), 9. 23 (s, 1H), 8. 09 (d, 1H, J= 3. 9 356 N4-(3, 4-Ethylenedioxyphenyl)-5-fluoro-N2-(3-methoxy-5-Hz), 7. 67 (s, 1 H), 7. 59 (s, 1 H), 7. 27 (d, 1 H, J= 2. 7 Hz), 7. 18 (dd, 1 H, 356 + y phenyl)-2, 4-pyrimidinediamine J= 2. 4 and 8. 4 Hz), 6. 78 (d, 1 H, J= 8. 7 Hz), 6. 78 (s, 1 H), 4. 21, bs, 4H), 3. 72 (s, 3H) ; LCMS : purity : 90% ; MS (m/e) 'H NMR (DMSO-d6) : d 9. 64 (s, 1H), 9. 29 (s, 1H), 8. 15 (m, 2H), 7. 62 357 N2- (3, 5-Dimethoxyphenyl)-5-fluoro-N4- [3, 4- (dd, 1 H, J= 2. 4 and 9 Hz), 7. 39 (d, 1 H, J= 8. 7 Hz), 6. 90 (d, 2H, J= 2. 4 + 357 + + (tetrafluoroethylenedioxy) phenyl]-2, 4-pyrimidinediamine Hz), 6. 09 (t, 1 H, J= 1. 8 Hz), 3. 66 (s, 6H) ; LCMS : purity : 97% ; MS (m/e) : 471 (MH+) 'H NMR (DMSO-d6) : d 9. 90 (bs, 1H), 9. 56 (bs, 1H), 8. 21 (bd, 1H, J= 358 N2-4-Chloro-3, 5-dimethylphenyl)-5-fluoro-N4- [3, 4- 3. 6 Hz), 8. 06 (bs, 1 H), 7. 57 (dd, 1 H, J= 2. 4 and 9. 0 Hz), 7. 43 (d, 1 H, (tetrafluoroethylenedioxy) phenyl]-2, 4-pyrimidinediamine J=9. 3 Hz), 7. 39 (s, 2H), 7. 06 (bs, 1H),. 25 (s, 6H) ; LCMS : purity : 97% ; MS (m/e) : 473 (MH+). LU LU LL) Tryptase, Tryptase, Tryptase, fp yk, E ia Pty CgHE, M3Cp, t'ICgHE, M8cp't'IConHoM, C3, pt'11pt CHMC, CHMC, CHMC, Ilpt IgE, 3pt IgE, 8pt lono, 3pt 'H NMR (DMSO-d6) : d 9. 60 (s, 1 H), 9. 32 (s, 1 H), 8. 16 (d, 2H, J= 3. 6 N2- [3, 5-Bis (hydroxymethy ! ene) pheny !]-5-fiuoro-N4- [3, 4- Hz), 7. 70 (dd, 1 H, J= 2. 7 and 9 Hz), 7. 47 (s, 2H), 7. 40 (d, 1 H, J= 9. 0 + 359 + (tetrafluoroethylenedioxy) phenyl]-2, 4-pyr ! midinediamine Hz), 6. 88 (bs, 1 H), 5. 11 (t, 2H, J= 5. 4 Hz), 4. 42 (d, 4H, J= 5. 4 Hz) ; LCMS : purity : 98% ; MS (mule) : 471 (MH+). 'H NMR (DMSO-d6) : d 9. 76 (s, 1H), 9. 72 (s, 1H), 8. 25 (d, 1H, J= 3. 6 N2- (3, 5-DicMoropheny !)-5-fiuoro-N4- [3, 4- Hz), 8. 00 (d, 1 H, J= 2. 4 Hz), 7. 74 (d, 2H, J= 1. 8 Hz), 7. 58 (dd, 1 H, J= 360 (tetrafluoroethylenedioxy) phenyl]-2, 4-pyrimidinediamine 2. 4 and 9. 0 Hz), 7. 44 (d, 1 H, J~ 9. 0 Hz), 7. 04 (t, 1 H, J= 1. 8 Hz) ; LCMS : purity : 98 % ; MS (m/e) : 480 (MH+). 'H NMR (DMSO-d6) : d 9. 72 (s, 1 H), 9. 64 (s, 1 H), 8. 23 (d, 1 H, J= 3. 6 5-Ffuoro-N2- (3-methoxy-5-tr ! f ! uoromethy ! pheny !)-N4- [3, 4- Hz), 8. 07 (d, 1 H, J= 2. 4 Hz), 7. 67 (bs, 1 H), 7. 60 (dd, 1 H, J= 2. 4 and 361 + (tetraf) uoroethy ! ened ! oxy) pheny !]-2, 4-pyrim ! dinediamine 9. 3 Hz), 7. 54 (bs, 1 H), 7. 39 (d, 1 H, J= 9 Hz), 6. 75 (bs, 1 H), 3. 75 (s, 3H) ; LCMS : purity : 97 % : MS (m/e) : 509 (MH+) 'H NMR (DMSO-d6) : d 9. 60 (s, 1H), 9. 19 (s, 1H), 8. 15 (d, 1H, J= 3. 6 N2- (3, 5-Dimethypheny)-5-f) uoro-N4- [3. 4- Hz), 8. 12 (d, 1 H, J= 2. 4 Hz), 7. 60 (dd, 2. 4 and 8. 7 Hz), 7. 40 (d, 1 H, J= + 362 + (tetrafluoroethylenedioxy) phenyl]-2, 4-pyrimidinediamine 9 Hz), 7. 22 (s, 2H), 6. 56 (s, 1H), 2. 18 (s, 6H) ; LCMS : purity : 100% ; MS (m/e) : 439 (MH+). 'H NMR (DMSO-d6) : d 9. 53 (s, 1 H), 9. 27 (s, 1H), 8. 08 (d, 1 H, J= 3. 6 N4- (3, 4-Ethyned ! oxypheny !)-5-f) uoro-N2- [3, 4- Hz), 7. 93 (d, 1 H, J= 2. 4 Hz), 7. 37 (dd, 1 H, J= 2. 4 and 9. 3 Hz), 7. 26 (d, + 363 + (tetrafluoroethylenedioxy) phenyl]-2, 4-pyrimidinediamine 1 H, J= 9 Hz), 7. 11 (dd, 1 H, J= 2. 4 and 8. 7 Hz), 6. 80 (d, 1 H, J= 8. 4 Hz), 4. 22 (s, 4H) ; LCMS : purity : 96% ; MS (m/e) 'H NMR (DMSO-d6) : d 9. 59 (s, 1H), 9. 37 (d, 1H, J= 0. 9 Hz), 8. 14 (d, N4- (3, 5-D ! methoxypheny !)-5-f ! uoro-N2- [3, 4- 1H, J=2. 4 Hz), 7. 38 (dd, 1 H, J= 2. 7 and 9. 3 Hz), 7. 27 (d, 1 H, J= 9. 0 364 + (tetrafluoroethylenedioxy) phenyl]-2, 4-pyrimidinediamine Hz), 6. 91 (d, 2H, J= 2. 4 Hz), 6. 26 (t, 1 H, J= 2. 4 Hz), 3. 69 (s, 6H) ; LCMS : purity : 96% ; MS (m/e) : 471 (MH+). H NMR (DMSO-d6) : d 11. 59 (s, 1H), 9. 66 (s, 1 H), 9. 34 (s, 1 H), 8. 46 5-F ! uoro-N2- [2- (N-methym ! no) carbony ! ! ndoi-7-y !]-N4- [3, 4- (d, 1H, J=4. 8 Hz), 8. 20 (d, 1H, J=3. 6 Hz), 8. 10 (d, 1H, J=2. 4 Hz), + 365 + (tetrafluoroethylenedioxy) phenyl]-2, 4-pyrimidinediamine 7. 91 (d, 1 H, J= 7. 2 Hz), 7. 60 (dd, 1 H, J= 2. 7 and 9 Hz), 7. 39 (d, 1 H, J= 9. 0 dz), 7. 24 (d, 1 H, J= 7. 5 Hz), 7. 06 (d, 1 LL) LL) LL) Tryptase, Tryptase, Tryptase, fp d aMe'' C H M C, CHMC, CHMC, 11 pt IgE, 3pt IgE, 8pt lono, 3pt 'H NMR (DMSO-d6) : d 9. 70 (s, I H), 9. 60 (s, I H), 8. 22 (d, 1 H, J= 2. 4 H NMR (DMSO-d6) : d 9. 70 (s, 1 H), 9. 60 (s, 1 H), 8. 22 (d, 1 H, J= 2. 4 366 ! uoro-N2- (3-methy !-5-trif) uoromethy !)-N4- [3, 4- Hz), 8. 07 (d, 1H, J=2. 4 Hz), 7. 87 (s, 1 H), 7. 70 (s, 1 H), 7. 60 (dd, 1 H, + 366 + (tetrafluoroethylenedioxy) phenyl]-2, 4-pyrimidinediamine J= 2. 1 and 9 Hz), 7. 41 (d, 1 H, J= 9 Hz), 7. 04 (s, 1 H), 2. 31 (s, 3H) ; LCMS : purity : 100% ; MS (m/e) : 493 (MH+). 'H NMR (DMSO-d6) : d 9. 48 (s, 1H), 9. 12 (s, 1H), 8. 11 (d, 2H, J= 3. 6 N2- (3, 4-Ethy ! enedioxypheny !)-5-ftuoro-N4- [3, 4- Hz), 7. 59 (dd, 1 H, J= 2. 4 and 9 Hz), 7. 39 (d, 1 H, J= 9. 3 Hz), 7. 22 (d, + + 367 + + (tetrafluoroethylenedioxy) phenyl]-2, 4-pyrimidinediamine 1 H, J= 2. 4 Hz), 6. 99 (dd, 1 H, J= 2. 4 and 8. 7 Hz), 6. 70 (d, 1 H, J= 9 Hz) ; LCMS : purity : 96% ; MS (m/e) : 469 (MH+). 'H NMR (DMSO-d6) : d 11. 70 (s, 1H), 9. 31 (s, 1H), 9. 28 (s, 1H), 8. 43 N4- (3, 5-Dimethoxypheny !)-5-f) uoro-N2- [2- (N- (d, 1H, J=4. 8 Hz), 8. 14 (d, 1H, J=4. 8 Hz), 8. 04 (dd, 1H, J= 0. 9 and 368 + + methylamino) carbonylindol-7-y ]-2, 4-pyrimidinediamine 8. 4 Hz), 7. 19 (d, 1H, J=7. 5 Hz), 7. 03 (d, 1 H, J= 2H, J= 2. 4 Hz), 6. 89 (t, 1 H, J= 8. 4 Hz), 6. 24 (t, 1 H, J= 2. 4 Hz), 'H NMR (DMSO-d6) : d 10. 57 (s, 1H), 9. 35 (s, 1H), 9. 27 (s, 1H), 8. 10 N2- (3-Chloro-5-methoxyphenyl)-N4- (2, 2-dimethyl-3-oxo-4H- (d, 1 H, J= 3. 6 Hz), 7. 47 (m, 1 H), 7. 25 (dd, 1 H, J= 2. 7 and 8. 7 Hz), 7. 16 + benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine (d, 2H, J= 2. 1 Hz), 6. 87 (d, 1 H, J= 8. 4 Hz), 6. 49 (t, 1 H, J= 1. 8 Hz), 3. 66 (s, 3H), 1. 40 (s, 6H) ; LCMS : purity : 10 H NMR (DMSO-d6) : d 9. 31 (s, 1 H), 9. 21 (s, 1 H), 8. 08 (d, 1H, J=3. 9 N2- (3-Ch ! oro-5-methoxypheny !)-N4- (3, 4-ethy ! ened) oxypheny !)-Hz), 7. 46 (t, 1H, J= 1. 8 Hz), 7. 20 (m, 3H), 6. 80 (d, 1H, J= 8. 4 Hz), 6. 49 + 5-fluoro-2, 4-pyrimidinediamine (t, 1 H, J= 2. 4 Hz), 4. 21 (s, 4H), 3. 67 (s, 3H) ; LCMS : purity : 95% ; MS (m/e) : 403 (MH+). 'H NMR (DMSO-d6) : d 11. 27 (s, 1H), 9. 25 (s, 2H), 8. 43 (d, 1 H, J= 4. 5 371 5-Fluoro-N4- (3, 4-methylenedioxyphenyl)-N2- [2- (N- Hz), 8. 09 (d, 1 H, J= 3. 9 Hz), 8. 01 (d, 1 H, J= 7. 8 Hz), 7. 51 (d, 1 H, J= + methylamino) carbonylindol-7-y ]-2, 4-pyrimidinediamine 2. 1 Hz), 7. 6 (m, 2H), 7. 04 (d, 1 H, J= 1. 8 Hz), 6. 92 (t, 1 H, J= 7. 8 Hz), 6. 84 (d, 1H, J= 8. 1 Hz), 6. 01 (s, 2H), 2. 81 'H NMR (DMSO-d6) : d 9. 20 (s, 1 H), 9. 10 (s, 1H), 8. 05 (d, 1 H, J= 3. 6 372 (3, 5-Dimethoxypheny !)-5-f) uoro-N4- (3. 4- Hz), 7. 44 (d, 1H, J= 2. 1 Hz), 7. 16 (dd, 1H, J= 2. 1 and 8. 4 Hz), 6. 93 (d, + methylenedioxyphenyl)-2, 4-pyrimidinediamine 2H, J= 2. 4 Hz), 6. 84 (d, 1H, J=8. 4 Hz), 6. 04 (t, 1H, J= 2. 1 Hz), 5. 99 (s, 2H), 3. 64 (s, 6H) ; LCMS : purity : 89% ; M LLJ LLJ NM SsEsssp :/SsS ! M Tryptase, Tryptase, Tryptase, fp syk, ...... Tryptase, Tryptase, Tryptase, fp syk, CHMC, CHMC, CHMC, llpt IgE, 3pt IgE, 8pt lono, 3pt '"""'""'""''"''H NMR (DMSO-d6) : d 9. 30 (s, g'j"' 5-Fuoro-N4- (3, 4-methybnedioxypheny !)-N2- (3-methoxy-5- Hz), 9. 67 (bs, 1H), 7. 58 (bs, 1 H), 7. 40 (d, 1 H, J= 1. 8 Hz), 7. 11 (dd, 1 H, trifluoromethylphenyl)-2, 4-pyrimidinediamine J= 1. 8 and 8. 4 Hz), 6. 84 (d, 1 H, J= 8. 4 Hz), 6. 70 (bs, 1 H), 6. 99 (s, 2H), 3. 73 (s, 3H) ; LCMS : purity : 97% ; MS (m/ 'H NMR (DMSO-d6) : d 9. 46 (s, 1 H), 9. 29 (s, 1H), 8. 10 (d, 1H, J=3. 6 5-Foro-N4- (3, 4-methy ! ened ! oxypheny !)-N2- (3-methy !-5- Hz), 7. 78 (bs, 1 H), 7. 39 (d, 1H, J=2. 1 Hz), 7. 10 (1 H, J= 2. 4 and 8. 4 trifiuoromethy ! pheny !)-2, 4-pyrim ! d ! nediamine Hz), 6. 99 (bs, 1 H), 6. 85 (d, 1 H, J= 8. 4 Hz), 5. 99 (s, 2H), 2. 28 (s, 3H) ; LCMS : purity : 99% ; MS (m/e) : 407 (MH+). 'H NMR (DMSO-d6) : d 9. 59 (s, 1H), 9. 36 (s, 1H), 8. 12 (d, 1H, J= 3. 9 N2- (3, 5-Dich ! orophenyi)-5-fiuoro-N4- (3, 4- Hz), 7. 74 (d, 2H, J= 2. 1 Hz), 7. 30 (d, 1 H, J= 2. 1 Hz), 7. 06 (dd, 1H, J= 375 + methylenedioxyphenyl)-2, 4-pyrimidinediamine 2. 4 and 8. 4 Hz), 6. 97 (t, 1 H, 2. 1 Hz), 6. 88 (d, 1 H, J= 8. 4 Hz) ; 6. 00 (s, 2H) ; LCMS : purity : 94% ; MS (m/e) : 393 (M+ 'H NMR (DMSO-d6) : d 9. 18 (bs, 1H), 9. 03 (s, 1H), 8. 04 (d, 1H, J=3. 9. N2- (3, 5-Dimethy ! phenyi)-5-f) uoro-N4- (3, 4- Hz), 7. 43 (d, 1 H, J= 2. 1 Hz), 7. 24 (s, 2H), 7. 11 (dd, 1 H, J= 2. 1 and 8. 4 methylenedioxyphenyl)-2, 4-pyrimidinediamine Hz), 6. 85 (d, 1H, J= 8. 4 Hz), 6. 50 (bs, 1H), 5. 98 (s, 2H), 2. 16 (s, 6H) ; LCMS : purity : 87% ; MS (m/e) : 353 (MH+). N2-(4-Chloro-2 5-dimethoxyphenyl)-N4-(3-chloro-4- 377 LCMS : purity : 100% ; MS (m/e) : 439 (M+). + methoxypheny !)-5-f) uoro-2, 4-pynm ! d ! ned ! am ! ne l H NMR (DMSO-d6) : d 10. 63 (s 1 H) 10. 05 (s 1 H) 9. 62 (s 1 H), 8. 15 N2-(3-Chloro-4-methoxyphenyl)-N4-(2 2-dimethyl-3-oxo-4H- N2- (3-Ch ! oro-4-methoxypheny !)-N4- (2, 2-d ! methy !-3-oxo-4H- (d, 1H, J=4. 8Hz), 7. 66 (bs, 1H), 7. 44 (dd, 2H, J=1. 8and8. 7Hz), 378 benz [1, 4] oxazin-6-y !)-5-f ! uoro-2, 4-pyrim ! dined ! amine p-+ l l 7. 35 (bd, 1H, J= 9 Hz), 7. 20 (dd, 1H, J= 2. 1 and 8. 7 Hz), 7. 10 (bd, 2H, Toluene Sulfonic Acid Sa ! t J= 7. 5 Hz), 7. 02 (d, 1H, J= 9 Hz), 6. 89 (d, 1 'H NMR (DMSO-d6) : d 9. 24 (s, 1H), 8. 05 (d, 1H, J= 3. 9 Hz), 7. 87 (s, N2- (4-Ch ! oro-2, 5-dimethoxypheny !)-N4- (3, 4- 1H), 7. 70 (s, 1H), 7. 17 (d, 1H, J= 2. 4 Hz), 7. 06 (m, 2H), 6. 74 (d, 1H, J= ethyenedioxypheny !)-5-) 1uoro-2, 4-pyrimid ! nediamine 8. 7 Hz), 4. 21 (s, 4H), 3. 79 (s, 3H), 3. 54 (s, 3H) ; LCMS : purity : 100 % ; MS (m/e) : 433 (MH+). N2-(4-Chloro-2, 5-dimethoxyphenyl)-N4-(3, 5- 380 LCMS : purity : 100% ; MS (m/e) : 435 (MH+). + dimethoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine LLJ LU LLJ Tryptase, Tryptase, Tryptas% fp__p Yak, : HnsR. : : i ,' : :".,'' ! ! Sss CHMC, CHMC, CHMC, 11 pt CHMC, CHMC, CHMC, llpt IgE, 3pt IgE, 8pt lono, 3pt N4- (3, 5-Dimethoxyphenyi)-5-f) uoro-N2- (2- N4-(3 5-Dimethoxyphenyl)-5-fluoro-N2-(2- 381 1H, J= 3. 9 Hz), 7. 57 (m, 3H), 6. 99 (m, 2H), 6. 26 (t, 1 H, J= 2. 1 Hz), + + methoxycarbony ! benzofuran-5-y !)-2, 4-pyrim ! dined ! am ! ne 3. 88 (s, 3H), 3. 69 (s, 6H) ; LCMS : purity : 92% ; MS (m/e) : 439 (MH+). N2- (2-Carboxybenzofuran-5-y !)-N4- (3, 5-d ! methoxypheny !)-5- 38 I l LCMS : purity : 91% ; MS (m/e) : 425 (MH+). _ fluoro-2, 4-pyrimidinediamine 1H NMR (DMSO-d6) : d 11. 85 (s, 1H), 9. 31 (s, 1H), 9. 26 (s, 1H), 8. 16 383 N2- (2-Carboxyindol-7-yi)-N4- (3, 5-dimethoxyphenyl)-5-fluoro- (d, 1H, J= 3. 6 Hz), 8. 12 (d, 1H, J= 8. 1 Hz), 7. 22 (d, 1H, J= 8. 1 Hz), + 383 + 2, 4-pyrimidinediamine 7. 02 (d, 2H, J= 2. 1 Hz), 6. 91 (t, 1 H, J= 7. 8 Hz), 6. 25 (s, 1 H) 3. 70 (bs, 6H) ; LCMS : purity : 80% ; MS : 424 (MH+) 'H NMR (DMSO-d6) : d 11. 52 (s, 1H), 9. 30 (bs, 1H), 9. 27 (s, 1H), 8. 14 N4- (3, 5-Dimethoxyphenyl)-5-fluoro-N2- [2- (N-2-hydroxyethyl-N- (d, 1 H, J= 3. 6 Hz), 8. 04 (m, 1 H), 7. 22 (d, 1 H, J= 8. 4 Hz), 7. 03 (m, 2H), methy carbonylindol-7-y ]-2, 4-pyrimidinediamine 6. 90 9m, 2H), 6. 23 9bs, 1 H), 3. 68 (s, 6H), 3. 64 (bs, 4H), 3. 20 (s, 3H) ; LCMS : purity : 94% ; MS (m/e) : 481 (MH+). N4- (3, 4-Ethy ! enedioxypheny !)-5-f ! uoro-N4-methy !-N2- [3- (N- 1H NMR (CDC13) : d 7. 50 (bs, 1 H), 7. 30 (m, 2H), 6. 91 (bd, 1 H, J= 7. 2 385 methylamino) carbonylmethyleneoxyphenyl]-2, 4-Hz), 6. 73 (m, 5H), 4. 49 (s, 2H), 4. 31 (s, 4H), 3. 60 (s, 3H), 2. 92 (d, 3H, + + pyrimidinediamine J= 4. 5 Hz) ; : CMS : purity : 97%, MS (m/e) : 440 (MH+) 1 H NMR (CDC13) : d 7. 94 (d, 1 H, J= 5. 1 Hz), 7. 50 (bd, 1 H), 6. 90 (d, N4- (3, 4-Ethy ! ened ! oxyphenyi)-N2- (3, 5-dimethoxypheny !)-5- 1H, J= 9 Hz), 6. 83 (s, 1 H), 6. 73 (m, 3H), 6. 62 (d. 1H, 2. 4 Hz), 4. 31 (m, + + 386 + + f ! uoro-N4-methy !-2, 4-pyrimidinediam ! ne 4H), 3. 80 (s, 3H), 3. 79 (s, 3H), 3. 60 (s, 3H) ; LCMS : purity : 90%, MS : 413 (MH+). 1H NMR (CDC ! 3) : d 7. 50 (bd, 1H), 7. 40 (s, 1H), 7. 27 (m, 1H), 6. 90 N2- (3, 5-Dimethy ! pheny !)-N4- (3, 4-ethy ! enedioxypheny !)-5- (bdd, 1 H), 6. 81 (m, 1 H), 6. 77 (d, 2H, J= 2. 4 Hz), 6. 70 (dd, 1 H, J= 2. 7 + 387 + f) uoro-N4-methy !-2, 4-pyrimidinediamine and 8. 7 Hz), 4. 30 (s, 4H), 3. 50 (s, 3H), 2. 32 (s, 6H) ; LCMS : purity : 94%, MS (m/e) : 381 (MH+). 1HNMR (DMSO-d6) : d10. 60 (s 1H) 9. 21 (s 1H) 7. 94 (d 1H J=6. 0 1H NMR (DMSO-d6) : d 10. 60 (s, 1H), 9. 21 (s, 1H), 7. 94 (d, 1H, J=6. 0 N2- (3, 5-Dimethoxypheny !)-N4- (2, 2-d ! methy !-3-oxo-4H- Hz), 7. 01 (d, 2H, J= 1. 2 Hz), 6. 88 (m, 2H), 6. 75 (d, 1H, J= 2. 4 Hz), 388 benz [1, 4] oxazin-6-yl)-5-fluoro-N4-methyl-2, 4-l l 6. 05 (t, 1H, J= 2. 4 Hz), 3. 60 (s, 6H), 3. 41 (s, 3H), 1. 34 (s, 6H) ; LCMS : pynmldlnedlamlne purity : 92%, MS (m/e) : 454 (MH+). '"tr n1', , °' : ! m,-a :'n LV LU LU v -i v v, w 8 anJ,, t tS CHI HMC MC 1pt 'but. CHMC, CHMC, CHMC, 11 pt t a a a r u _. Y T tase T , r. .. _.. tase T ta e f s s k rYP rYP, . YP, P_ Y .. ty5 5 _.. t tt, tt 3rrlc _ _ r , r... y. v h v, : pp a. w,.. . : _."CHMC'CHMC'HM A : C C 11 t r m, u D . , -I E 3 t I E 8 t I t ono 3 P P W N4-(3, 5-Dimethoxyphenyl)-N2-[2-(N-1, 1-dimethyl-2-H NMR (DMSO-d6) : d 11. 63 (s, 1H), 9. 25 (d, 1H, J=7. 8 Hz), 8. 14 (d, N4- (3, 5-Dimethoxyphenyl)-N2- [2- (N-1, 1-dimethyl-2- 1H, J=3. 6 Hz), 8. 02 (d, 1H, J= 8. 1 Hz), 7. 53 (s, 1H), 7. 19 (d, 1H, J= 389 hydroxyethylamino) carbonylindol-7-yl]-5-fluoro-2, 4-1H, J=3. 6 Hz), 8. 02 (d, 1H, J= 8. 1 Hz), 7. 53 (s, 1H), 7. 19 (d, 1H, J= + 7. 5 Hz), 7. 14 (s, 1 H), 7. 04 (s, 2H), 6. 89 (t, 1 H, J= 7. 5 Hz), 6. 23 (s, 1 H), pyrimidinediamine 4. 94 (t, 1 H, J= 6. 3 Hz), 3. 69 (s, 6H), _ 1 H NMR (CDC13) : d 7. 85 (d 1 H J= 4. 8 Hz), 6. 86 (d, 1 H, J= 8. 4 Hz), 2-Chloro-N4- (3, 4-ethylenedioxyphenyl)-5-fluoro-N4-methyl-4- 390 6. 73 (d, 1 H, J= 2. 7 Hz), 6. 60 (dd, 1 H, J= 2. 7 and 8. 1 Hz) ; LCMS : pyrimidineamine purity : 100%, MS (m/e) : 296 (M+). 1 H NMR (CDC13) : d 7. 95 (d, 1 H, J= 6. 4 Hz), 7. 67 (bs, 1 H), 7. 21 (s, 391 N2- (3, 5-Dimethylphenyl)-5-fluoro-N4-methyl-N4- (3-oxo-2, 2, 4- 2H), 6. 96 (s, 1 H), 6. 87 (dd, 1 H, J= 2. 4 and 8. 7 Hz), 6. 78 (d, 1 H, J= 2. 4 trimethylbenz [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine Hz), 6. 72 (s, 1 H), 3. 55 (s, 3H), 3. 32 (s, 3H), 2. 30 (s, 6H), 1. 53 (s, 6H) ; LCMS : purity : 92%, MS (m/e) : 436 (MH+). 1 H NMR (CD30D) : d 7. 77 (d, 1 H, J= 2. 4 Hz), 7. 75 (bd, 1 H), 7. 34 (dd, 392 N2- (3-Chloro-4-methoxyphenyl)-5-fluoro-N4-methyl-N4- (3-oxo-1 H, J= 2. 7 and 9. 3 Hz), 7. 05 (d, 1 H, J= 1. 8 Hz), 6. 95 (m, 3H), 4. 62 (s, 2, 2, 4-trimethylbenz [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine 3H), 3. 83 (s, 3H), 3. 51 (s, 3H), 1. 48 (s, 6H) ; LCMS : purity : 94%, MS (m/e) : 472 (M+). 1 H NMR (CD30D) : d 7. 78 (d, 1 H, J= 8. 4 Hz), 7. 07 (bs, 1 H), 6. 96 (bs, 393 N2- (3, 5-Dimethoxyphenyl)-5-fluoro-N4-methyl-N4- (3-oxo- 2H), 6. 87 (d, 2H, J= 2. 4 Hz), 6. 10 (t, 1 H, J= 2. 4 Hz), 3. 70 (s, 6H), 3. 54 + + 393 + + 2, 2, 4-trimethylbenz [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine (s, 3H), 3. 32 (s, 3H), 1. 48 (s, 6H) ; LCMS : purity : 97%, MS (m/e) : 468 (MH+). N2- (3-Chloro-4-methoxyphenyl)-N4- (2, 2-dimethyl-3-oxo-4H- 394benz [1, 4] oxazin-6-yl)-5-fluoro-N4-methyl-2, 4-LCMS : purity : 93%, MS (m/e) : 351 (MH+). + + pyrimidinediamine N4- (3, 4-Ethylenedioxyphenyl)-5-fluoro-N2- (2- 1 H NMR (DMSO-d6) : d 7. 95 (s, 1H), 7. 76 (bd, 1H), 7. 54 (s, 1H), 7. 49 395 methoxycarbonyl-benzofuran-5-yl)-N4-methyl-2, 4- (bd, 2H), 6. 87 (d, 1 H, J= 8. 4 Hz), 6. 79 (dd, 1 H, J= 2. 4 and 6. 6 Hz), + + + pyrimidinediamine 6. 74 (bd, 1 H) ; LCMS : purity : 94%, MS (m/e) : 452 (MH+). N2- (3, 5-Dimethylphenyl)-N4- (3-oxo-2, 2, 4- 396 LCMS : purity : 90% ; MS (m/e) : 422 (MH+). + + + trimethylbenz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine 397 N- (3, 5-Dimethoxyphenyl)-N4- (3-oxo-2, 2, 4- 397 LCMS : purity : 94% ; MS (m/e) : 454 (MH+). + + + trimethylbenz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine LL) LU LL) Tryptase, Tryptase, Tryptase, fp __pyr, MMNSs ! CHMC, CHMC, 11pt CHMC, CHM C, CHMC, llpt IgE, 3pt IgE, 8pt lono, 3pt N4- (3, 5-Dimethoxypheny !)-5-f ! uoro-N4-methy !-N2- [3- (N- 398 methylamino) carbonylmethyleneoxyphenyl]-2, 4-LCMS : purity : 94%, MS (m/e) : 442 (MH+). + pyrimidinediamine N4- (3, 5-Dimethoxypheny !)-N2- (3, 5-d ! methybheny !)-5-f) uoro- 399, LCMS : purity : 92%, MS (m/e) : 382 (MH+). + + _ + N4-methyl-2, 4-pyrimidinediamine 1 H NMR (DMSO-d6) : d 9. 23 (s, 1 H), 7. 97 (d, 1 H, J= 5. 1 Hz), 7. 01 (d, 400 N2, N4-Bis (3, 5-d ! methoxypheny !)-5-fiuoro-N4-methy !-2, 4- 2H, J= 1. 8 Hz), 6. 45 (d, 2H, J= 1. 2 Hz), 6. 34 (bt, 1 H), 6. 05 (bt, 1H), 400 + pyrimidinediamine 3. 72 (s, 6H), 3. 68 (6H), 3. 45 (s, 3H) ; LCMS : purity : 95%, MS (m/e) : 415 (MH+). 1H NMR (DMSO) : d 9. 70 (s, 1H), 8. 13 (s, 1H), 8. 04 (d, 1H, J= 3. 8 Hz), N4- (3, 5-Dimethoxyphenyl)-5-fluoro-N2- (2-methoxycarbonyl- 7. 69 (s, 1H), 7. 62 (m, 2H), 6. 51 (d, 2H, J= 1. 5 Hz), 6. 44 (bt, 1H) ; 3. 88 + + 401 + + benzofuran-5-yl)-N4-methyl-2, 4-pyrimidinediamine (s, 3H), 3. 72 (s, 6H), 3. 46 (s, 3H) ; LCMS : MS (m/e) : 453 (MH+), purity : 95%. N4- [3-Chloro-4- (methoxycarbonyl-l, l- 402 ! methymethy ! eneoxy) phenyi]-N2- (3, 5-dimethy [pheny !)-5- LCMS : purity : 81% ; MS (m/e) : 459 (MH+) + fluoro-2, 4-pyrimidinediamine N2- (3, 5-Dimethy ! pheny !)-N4- [4- (methoxycarbony !-1, 1- 403 j j L LCMS : purity : 80% ; MS (m/e) : 425 (MH+). + dimethylmethyleneoxy) phenyl]-5-fluoro-2, 4-pyrim ! dined ! amine 1 H NMR (DMSO-d6) : d 10. 00 (s, 1 H), 8. 08 (d, 1 H, J= 6. 00 Hz), 7. 89 N2- (3-Chbro-4-methoxypheny !)-N4- (3, 5-d ! methoxypheny [)-5- (d, 1 H, J= 5. 1 Hz), 7. 47 (dd, 1 H, J= 2. 7 and 9. 3 Hz), 7. 08 (d, 1 H, J= 404 f ! uoro-N4-methyl-2, 4-pyrimidinediamine 9. 0 Hz), 6. 53 (d, 2H, J= 1. 8 Hz), 6. 46 (t, 1H, J= 2. 1 Hz) ; LCMS : purity : 92%, 419 (MH+). 1H NMR (DMSO-d6) : d 9. 30 (s 1H) 9. 03 (s 1H) 8. 07 (d 1 H, J= 4. 2 N2- (4-Chbro-3-rnethoxypheny !)-N4- (3, 5-d ! methoxypheny !)-5- 405 j j/ jr Hz), 7. 48 (d, 1H, J=2. 1Hz), 7. 37 (dd, 1H, J=2. 4and8. 4Hz), 7. 24 (s, + f ! uoro-N4-methyl-2, 4-pyrimidinediamine 2H) ; LCMS : purity : 91%, MS (m/e) : 419 (M+). 1 H NMR (DMSO-d6) : d 11. 71 (s, 1 H), 9. 39 (s, 1 H), 8. 44 (bd, 1 H, J= 40-6- (3, 5-Dimethoxypheny [)-5-fiuoro-N4-methyi-N2- [2- (N- 4. 8 Hz), 8. 02 (m, 2H), 7. 20 (d, 1 H, J= 7. 5 Hz), 7. 04 (d, 1 H, J= 2. 1 Hz), + 406 + methylamino) carbonylindol-7-yU-2, 4-pyrimidinediamine 6. 93 (t, 1 H, J= 7. 8 Hz), 6. 47 (d, 2H, J= 2. 1 Hz), 6. 41 (t, 1 H, J= 2. 1 Hz), 3. 72 (s, 6H), 3. 46 (s, 3H), 2. 81 (d, 3H, L. U LLJ LLJ ofr : :, LV 'v LU LU . ; ;", tm. . _ u 4 W 4 V a a v , e 'i 6 y r _53 U ! 1 , v c W T tase T ta "se T tase f s k ryp, ... , rYP rYP, P_ Y a v otrt und'Iame c :. t F. s D". g x 1. v n J t h iw _ i1- r. Sl" w p . CHMC >. 1 5 CHMC CHMC 11 t n. na . , t i e J w s . k. x irg fi e I E 3 t I E 8t E" lono 3 t P 1H NMR (DMSO-d6) : d 8. 07 (d, 1H, J= 2. 7 Hz), 7. 69 (m, 1H), 7. 45 407 2-Chloro-N4- [3-chloro-4- (ethoxycarbonyl-1, 1- 1 H), 6. 95 (d, 1 H, J= 9 Hz), 6. 92 (bs, 1 H), 4. 28 (q, 2H, J= 6. 9 Hz), 1. 62 407 + dimethylmethyleneoxy) phenyl]-5-fluoro-4-pyrimidineamine (s, 6H), 1. 31 (t, 3H, J= 7. 2 Hz) ; LCMS : purity : 85% ; MS (m/e) : 388 (M+). 1 H NMR (CD30D) : d 7. 91 (d, 1 H, J= 3. 6 Hz), 7. 74 (d, 1 H, J= 2. 7 Hz), N4- [3-Chloro-4- (ethoxycarbonyl-1, 1- 7. 66 (dd, 1H, J=2. 7and8. 7Hz), 6. 91 (d, 1 H, J= 9 Hz), 6. 78 9d, 2H, Y Y Y) P Y l (, YP Y)- J= 2. 1 Hz), 6. 12 (t, 1 H, J= 2. 1 Hz), 4. 26 (q, 2H, J= 6. 9 Hz), 3. 71 (s, fluoro-2, 4-pyrimidinediamine 6H), 1. 59 (s, 6H), 1. 29 (t, 3H, J= 7. 2 Hz) ; LC 1H NMR (DMSO-d6) : d 13. 15 (bs, 1H), 9. 38 (s, 1H), 9. 18 (s, 1H), 8. 10 N4- [3-Chloro-4- (hydroxycarbonyl-1, 1- (d, 1 H, J= 3. 9 Hz), 7. 93 (s, 1H), 7. 84 (dd, 1H, J= 2. 7 and 9. 3 Hz), 7. 77 409 dimethylmethyleneoxy) phenyl]-N2-(3, 5-dimethoxyphenyl)-5- (d, 1 H, J= 3. 9 Hz), 7. 93 (s, 1 H), 7. 84 (dd, 1 H, J= 2. 7 and 9. 3 Hz), 7. 77 + + (d, 1 H, J= 2. 7 Hz), 6. 91 (m, 3H), 6. 07 (t, 1H, J=2. 1 Hz), 3. 65 (s, 6H), fluoro-2, 4-pyrimidinediamine 1. 52 (s, 6H) ; LCMS : purity : 90% ; MS (m 1H NMR (DMSO-d6) : d 9. 36 (s, 1H), 9. 17 (s, 1H), 8. 08 (d, 1H, J= 3. 6 N4- [3-Chloro-4- (ethoxycarbonyl-1, 1- Hz), 7. 78 (d, 1 H, J= 2. 7 Hz), 7. 75 (d, 1H J=2. 1 Hz) 7. 70 (dd, 1H, J= 410 dimethylmethyleneoxy) phenyl]-N2- (3-chloro-4- + + + 3. 0 and 9. 3 Hz), 7. 44 (dd, 1 H, J= 2. 7 and 9. 0 Hz), 6. 99 (d, 1 H, J= 9. 0 methoxyphenyl)-5-fluoro-2, 4-pyrimidinedlamlne Hz), 6. 88 (d, 1 H, J= 9. 0 Hz), 4. 20 (q, 2H, N4-(3 4-Ethylenedioxyphenyl)-5-fluoro-N4-methyl-N2-[3- 411 l LCMS : purity : 91% MS (m/e) : 420 (MH+). + + (oxazol-5-yl) phenyl]-2, 4-pyrimidinediamine 1H NMR (DMSO-d6) : d 9. 61 (s, 1H), 8. 57 (s, 1H), 8. 17 (s, 1H), 9. 97 412 N4- (3, 4-Ethylenedioxyphenyl)-5-fluoro-N4-methyl-N2- [3- (d, 1 H, J= 6. 0 Hz), 7. 70 (bd, 1 H, J= 4. 8 Hz), 7. 52 (bd, 1 H, J= 7. 8 Hz), + 412 + + (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine 7. 38 (d, 1H, J= 8. 1 Hz), 7. 33 (s, 1 H), 6. 79 (m, 3H), 4. 24 (s, 4H), 3. 44 (s, 3H) ; LCMS : purity : 92%, MS (m/e) : 420 ( 1H NMR (DMSO-d6) : d 9. 15 (s, 1H), 8. 97 (s, 1H), 8. 02 (d, 1 H, J= 3. 9 N4- (3, 4-Dimethoxyphenyl)-N2- (3, 5-dimethylphenyl)-5-fluoro- Hz), 7. 24 (m, 4H), 6. 88 (d, 1 H, J= J= 8. 4 Hz), 6. 48 (d, 1 H), 3. 73 (s, 413 + + 2, 4-pyrimidinediamine 3H), 3. 65 (s, 3H), 2. 12 (s, 6H) ; LCMS : purity : 97%, MS (m/e) : 369 (MH+). 1H NMR (DMSO-d6) : d 9. 17 (s, 1H), 9. 05 (s, 1H), 8. 03 (d, 1H, J= 3. 9 414 N2- (3, 5-Dimethoxyphenyl)-N4- (3, 4-dimethoxyphenyl)-5-fluoro- Hz), 7. 32 (dd, 2. 4 and 8. 7 Hz), 7. 24 (d, 1 H, J= 2. 4 Hz), 6. 92 (d, 2H, J= 414 + + 2, 4-pyrimidinediamine 2. 4 Hz), 6. 85 (d, 1H, 8. 4 Hz), 6. 03 (t, 1H, J= 2. 1 Hz), 3. 73 (s, 3H), 3. 66 (s, 3H), 3. 60 (s, 6H) ; LCMS : purity : 96 T t w ts CHMC. V T^-, choc, I5, : : .. T'. . i, u le,.. n. J se ta , tase Y tase yT P < x _, rY ry rYP P - xY i s tt. _ n ,. ep t h o m t.... 9 ? ae t xiaw-a t : s : z ; 1. 4 xW 1 1 C r CHM t CHM P QULIt w , , u r0 t11. s, l,. ls r i tu m . . °, 8 t lon 0 § P , rw _ t P 3 3 t r s ; 4 n. 1 H NMFt (DMSO-d6) : d 11. 89 (s, 1 H), 9. 25 (s, 1 H),. 9. 21 (s, 1 H), 8. 10 N4-(3, 4-DimethOxyphenyl)-N2-[2-(ethoxycarbonyl) indol-7-yl]-5- (d, 1H, J= 3. 9 Hz), 8. 87 (s, 1H), 8. 73 (m, 3H), 7. 11 (d, 1H, J= 2. 1 Hz), 415 + A15 fluoro-2, 4-pyrimidinediamine 6. 88 (m, 2H), 4. 32 (q, 2H, J= 3. 9 Hz), 3. 76 (s, 3H), 3. 66 (s, 3H), 1. 34 (q, t, 3H, J= 3. 9 Hz) ; LCMS : purity : 93%, 1H NMR (DMSO-d6) : d 9. 59 (s, 1H), 8. 05 (s, 1H), 7. 96 (d, 1H), J= 5. 7 416 N4- (3, 4-Ethylenedioxyphenyl)-5-fluoro-N4-methyl-N2- [4- Hz), 7. 80 (bs, 4H), 7. 27 (s, 1 H), 6. 85 (m, 2H), 6. 78 (dd, 1 H), 4. 52 (s, + (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine 4H), 3. 41 (s, 3H), 3. 31 (s, 3H) ; LCMS : purity : 91%, MS (mle) : 420 (MH+). 1H NMR (DMSO-d6) : d 8. 09 (d, 1H, J= 5. 4 Hz), 7. 02 (d, 1H, J= 2. 4 - (3'4_dimet Hz), 6. 93 (d, 1 H, J= 8. 4 Hz), 6. 84 (dd, 1 H, J= 2. 1 and 8. 4 Hz), 3. 75 (s, pyrimidineamine 3H), 3. 71 (s, 3H) ; LCMS : purity : 87%, MS (m/e) : 298 (M+). 2_Chloro-N4- (3, 4_ethyl ( LCMS : purity : 99°fo, MS (m/e) : 354 (M+). (methoxycarbonylmethyl)-4-pyrimidineamine 1 H NMR (DMSO-d6) : d 9. 29 (s, 1H), 9. 21 (s, 1H), 8. 33 (s, 1H), 8. 07 419 N4 t3, 4-Dimethoxyphenyl)-5-fluoro- (J2- [3- (oxazol-5-yl) phenylJ- (d, 1 H, J= 3. 0 Hz), 8. 04 (s, 1 H), 7. 61 (bd, 1 H), 7. 39 (s, 1H), 7. 29 (bdd, + 2, 4-pyrimidinediamine 1 H, J= 2. 7 and 8. 4 Hz), 7. 25 (m, 3H), 6. 76 (d, 1 H, J= 8. 7 Hz), 3. 70 (s, 3H), 3. 64 (s, 3H) ; LCMS : purity : 98%, MS 1H NMR (DMSO-d6) : d 10. 77 (s, 1H), 9. 05 (s, 1H), 7. 94 (d, 1H, J=5. 7 . N4-(3, 4-Ethylenedioxyphenyl)-5-fluoro-N2-(indol-6-yl)-N4-Hz), 7. 70 (s, 1 H), 7. 32 (d, 1 H, J=2. 8 Hz), 7. 19 (d, 1 H, J= 1. 5 Hz), 7. 17+ (methoxycarbonylmethyl)-2, 4-pyrimidinediamine (t, 1 H, J=3 Hz), 6. 82 (m, 3H), 6. 28 (d, 1 H, J= 2. 1 Hz), 4. 60 (s, 2H), 4. 24 (s, 4H), 3. 33 (s, 3H) ; LCMS : purity : 99 1H NMR (DMSO-d6) : d 11. 66 (s, 1 H), 9. 27 (s, 1H), 9. 22 (s, 1H), 8. 41 42 |N4-(3, 4-Dimethoxyphenyl)-5-fluoro-N2-12-(N- (bd, 1H, J= 4. 8 Hz), 8. 09 (d, 1 H, J= 3. 3 Hz), 7. 99 (d, 1 H, J= 7. 8 Hz), + + methylaminocarbonyl) indol-7-yl]-2, 4-pyrimidinediamine 7. 33 (dd, 1H, J= 2. 4 and 8. 4 Hz), 7. 28 (d, 1H, J= 2. 7 Hz), 7. 18 (d, 1H, J= 7. 5 Hz), 7. 03 (d, 1H, J=2. 1 Hz), 6. 89 (m 1 H NMR (DMSO-d6) : d 9. 36 (s, 1 H), 9. 24 (s, 1 H), 8. 33 (s, 1 H), 8. 07 422 N4- (3, 4-Dimethoxyphenyl)-5-fluoro-N2- [4- (oxazol-5-yl) phenyl]- (d, 1 H, J= 3. 9 Hz), 7. 75 (d, 2H, J= 6. 0 Hz), 7. 50 (d, 2H, J= 8. 7 Hz), 2, 4-pyrimidinediamine 7. 75 (d, 2H, J= 8. 7 Hz), 7. 47 (s, 1H), 7. 26 (m, 2H), 6. 92 (d, 1H, J= 9. 6 Hz), 3. 76 (s, 3H), 3. 69 (s, 3H) ; LCMS : purity LU LLJ LU MMNMsS". ''''NSM WMaSS syk, CHMC, CHMC, CHMC, Ilpt 3pt IgE, 8pt lono, 3pt 1 H NMR (DMSO-d6) : d 9. 36 (s, 1H), 9. 22 (s, 1H), 8. 29 (s, 1H), 8. 12 (s, N4- (3, 4-Dimethoxypheny))-5-f) uoro-N2- [3- (oxazo !-2-y !) pheny !]- 1H), 8. 08 (d, 1 H, J= 3Hz), 7. 81 (dd, 1 H, J= 1. 8 and 7. 1 Hz), 7. 49 (d, 2, 4-pyrimidinediamine 1 H, J= 6. 9 Hz), 7. 31 (m, 4H), 6. 79 (d, 1 H, J= 8. 7 Hz), 3. 71 (s, 3H), 3. 67 (s, 3H) ; LCMS : purity : 98%, MS (m/e) : 40 __ 1H NMR (DMSO-d6) : d 9. 50 (s, 1H), 9. 28 (s, 1H), 8. 09 (s and d, 2H, N4- (3, 4-Dimethoxypheny !)-5-ftuoro-N2- [4- (oxazo !-2-yDphenyi]- 424 J= 4. 5 Hz), 7. 76 (m, 4H), 7. 28 (m, 3H), 6. 93 (d, 1 H, J= 8. 4 Hz), 3. 76 + 2, 4-pyrimidinediamine (s, 3H), 3. 70 (s, 3H) ; LCMS : purity : 89%, MS (m/e) : 408 (M+). 1H NMR (DMSO-d6) : d 9. 17 (s, 1H), 9. 08 (s, 1H), 8. 02 (d, 1H, J= 3. 9 N2- (3-Ch ! oro-4-methoxypheny !)-N4- (3, 4-d ! methoxypheny [)-5- Hz), 7. 84 (s, 1 H, J= 2. 7 Hz), 7. 41 (dd, 1 H, J= 3. 0 and 9. 3 Hz), 7. 27 + + fluoro-2, 4-pyrimidinediamine (dd, 1 H, J= 2. 4 and 8. 7 Hz), 7. 21 (d, 1 H, J= 2. 4 Hz), 6. 97 9d, 1 H, J= 8. 7 Hz), 6. 88 (d, 1H, J= 8. 7 Hz), 3. 77 (s, 3H), 1H NMR (DMSO-d6) : d 9. 13 (s, 1H), 8. 99 (s, 1H), 8. 02 (d, 1H, J=4. 2 N2- [3- (4-Acety ! piperazino) pheny !]-N4- (3, 4- Hz), 7. 22 (m, 4H), 7. 03 (m, 1 H), 6. 77 (d, 1 H, J= 8. 7 Hz), 6. 50 (bd, 1H, ethylenedioxyphenyl)-5-fluoro-2, 4-pyrimidinediamine J=7. 2 Hz), 4. 21 (bs, 4H), 3. 02 (bm, 2H), 2. 95 (bm, 2H), 2. 02 (s, 3H) ; LCMS : purity : 97%, MS (m/e) : 465 (MH+). 1 H NMR (DMSO-d6) : d 9. 07 (s, 1 H), 8. 92 (s, 1 H), 7. 98 (d, 1 H, J=3. 9 N2- [4- (4-Acety ! p ! perazino) pheny !]-N4- (3, 4- Hz), 7. 48 (d, J= 8. 7 Hz), 7. 33 (d, 1H, J= 2. 4 Hz), 7. 18 (dd, 1H, J= 2. 1 + + ethylenedioxyphenyl)-5-fluoro-2, 4-pyrimidinediamine and 8. 7 Hz), 6. 83 (d, 1 H, J= 9. 3 Hz), 6. 73 (d, 1 H, J= 1 H, J= 8. 7 Hz), 4. 23 (bs, 4H), 3. 56 (bs, 4H), 3. 03 (t, 2H, J=5 1 H NMR (DMSO-d6) : d 9. 23 (s, 1H), 9. 07 (s, 1H), 8. 09 (d, 1H, J= 3 N2- [3- (4-Acety ! piperaz ! no) pheny !]-N4- (3, 5-d ! methoxypheny !)- Hz), 7. 26 (s, 1H), 7. 15 (d, 1H, J= Hz), 7. 07 (t, 1H, J= 8. 4 Hz), 6. 97 (d, + 5-fluoro-2, 4-pyrimidinediamine 2H, J= 2. 4 Hz), 6. 50 (bd, 1 H, J= 7. 5 Hz), 6. 18 (d, 1H, J=2. 1Hz), 5. 74 (s, 1H), 3. 49 (m, 4H), 3. 32 (s, 6H), 2. 96 ( 1H NMR (DMSO-d6) : d 9. 17 (bs, 1H), 8. 99 (s, 1H), 8. 02 (d, 1H, J= 3. 9 42 [3- (4-Acety) piperazino) pheny !]-N4- (3, 4-dimethoxypheny)- Hz), 7. 27 (m, 2H), 7. 01 (bd, 1 H, J= 8. 4 Hz), 7. 00 (t, 1 H, J= 8. 1 Hz), 429N2- [3 + 5-fluoro-2, 4-pyrimidinediamine 6. 86 (d, 1H, J= 8. 4 Hz), 6. 48 (bd, 1H, J= 9. 9 Hz), 6. 13 (bs, 1H), 3. 72 (s, 3H), 3. 62 (s, 3H), 3. 46 (m, 4H), 2. 96 (m, 1H NMR (DMSO-d6) : d 9. 11 (s, 1H), 8. 88 (s, 1H), 7. 98 (d, 1 H, J= 3. 9 N2- [4- (4-Acety) piperaz ! no) pheny !]-N4- (3, 4-d ! methoxypheny !)- Hz), 7. 46 (d, 2H, J= 9. 3 Hz), 7. 27 (m, 2H), 6. 87 (d, 1 H, J= 8. 4 Hz), + 5-fluoro-2, 4-pyrimidinediamine 6. 80 (d, 2H, J= 9 Hz), 3. 74 (s, 3H), 3. 65 (s, 3H), 3. 56 (m, 4H), 3. 02 (m, 2H), 2. 96 (m, 2H), 2. 03 (s, 3H) ; LCMS : purit SS-Ss ?"'- :. -' Tryptase, Tryptase, Tryptase, fpsyk, ryptase, Tryptase, Try k, T ptase, CHMC, CHMC, CHMC, IgE, 3pt IgE, 8pt lono, 3pt . '"'""""* NMR (DMSO-d6) : d 9. 62 (s, 1H), 9. 19 (s, 1H), 8. 14 (m, 1H), 7. 62 N2- [3- (4-Acety [p ! perazino) pheny !]-5-f) uoro-N4- (3, 4- (dd, 1 H, J= 2. 7 and 9. 6 Hz), 7. 39 (d, 1 H, J= 9 Hz), 7. 23 (d, 1 H, J= 8 + + (tetrafluoroethylenedioxyphenyl)-2, 4-pyrimidinediamine Hz), 7. 16 (s, 1H), 7. 07 (t, 1H, J= 2. 6 Hz), 6. 55 (d, 1H, J= 2. 6 Hz), 6. 12 (s, 1H), 3. 54 (bs, 4H), 2. 02 (s, 3H) ; LCMS : 1H NMR (DMSO-d6) : d 9. 57 (s, 1H), 9. 11 (s, 1H), 8. 15 (bd, 1H), 8. 10 N2- [4- (4-Acety) piperaz ! no) pheny !]-5-f ! uoro-N4- (3, 4- (d, 1 H, J=3. 3 Hz), 7. 57 (bdd, 1 H, J= 9. 6 Hz), 7. 45 (d, 2H, J= 8. 7 Hz), +, (tetrafluoroethylenedioxyphenyl)-2, 4-pyrimidinediamine 7. 37 (d, 1 H, J= 9 Hz), 6. 87 (d, 2H, J= 9. 3 Hz), 6. 69 (d, 1H, J= 8. 7 Hz), 6. 47 (d, 1 H, J= 8. 7 Hz), 3. 52 (m, 4H), 2. 99 1H NMR (DMSO-d6) : d 9. 05 (s, 1H), 7. 89 (d, 1H, J= 6. 0 Hazy, 7. 31 (s, N4- (3, 4-Dimethoxyphenyl)-N2- (3, 5-dimethylphenyl)-5-fluoro- 2H), 6. 93 (d, 1 H, J= 2. 7 Hz), 6. 90 (s, 1 H), 6. 81 (dd, 1 H, J= 2. 4 and 8. 1 + N4-methyl-2, 4-pyrimidinediamine Hz), 6. 50 (s, 1H), 3. 75 (s, 3H), 3. 71 (s, 1H), 3. 42 (s, 3H), 2. 18 (s, 6H) ; LCMS : purity : 95%, MS (mule) : 383 (MH+). N2- (3, 5-DimethoxyDheny))-N4- (3, 4-d ! methoxypheny !)-5-fiuoro- 434 LCMS : punty : 96%, MS (m/e) : 415 (MH+). + N4-methyl-2, 4-pyrimidinediamine 1H NMR (DMSO-d6) : d 11. 94 (s, 1H), 9. 32 (s, 1H), 8. 15 (d, 1H, J= J= N4- (3, 4-D) methoxyphenyi)-N2- [2- (ethoxycarbony !) indo-7-y-5-7. 5 Hz), 7. 97 (d, 1H, J= 6. 0 Hz), 7. 22 (d, 1H, J=7. 8 Hz), 7. 12 (d, 1H, + fluoro-N4-methyl-2, 4-pyrimidinediamine J= 2. 1 Hz), 6. 96 (m, 3H), 6. 82 (m, 1 H), 4. 33 (q, 2H, J= 4. 2 Hz), 3. 76 (s, 3H), 3. 72 (s, 3H), 3. 46 (s, 3H), 1. 35 (t, 1H NMR (DMSO-d6) : d 10. 85 (s, 1H), 9. 07 (s, 1H), 8. 03 (s, 1H), 7. 87. N4- (3, 4-Dimethoxyphenyl)-5-fluoro-N2- (indol-6-yi)-N4-methyl- (d, 1H, J= 8. 4 Hz), 7. 34 (d, 1H, J= 8. 7 Hz), 7. 16 (m, 2H), 6. 93 (m, 2H), + 436 + 2, 4-pyrimidinediamine 6. 90 (s, 1H), 6. 80 (m, 1H), 6. 28 (s, 1H), 3. 75 (s, 3H), 3. 73 (s, 3H), 3. 44 (s, 3H) ; LCMS : purity : 94%, MS (m/e) : 3 N2- [4- (4-Acetyipiperaz ! no) phenyi]-N4- (3, 5-dimethoxypheny !)- 437 LCMS : purity : 80%, MS (m/e) : 467 (MH+). + 5-fluoro-2, 4-pyrimidinediamine 1 H NMR (DMSO-d6) : d 9. 42 (s, 1H), 8. 40 (s, 1H) 1 8. 28 (bs, 1H), 7. 93 N4- (3, 4-Dimethoxyphenyl)-5-fluoro-N4-methyl-N2- [3- (oxazol- (d, 1 H, J= 8. 7 Hz), 7. 58 (bd, 1 Hl J= 6. 8 Hz) l 7. 55 (s, 1 H), 7. 27 (m, 2H), 438 + + 5-yl) phenyl]-2, 4-pyrimidinediamine 6. 96 (d, 1 H, J= 2. 4 Hz), 6. 92 (m, 1 H), 6. 81 (dd, 1 H, J= 2. 1 and 8. 4 Hz), 3. 75 (s, 3H), 3. 75 2 (s, 3H), 3. 47 (s, LU LU LU Tryptase, Tryptase, Tryptase, fp __pyk, LU LU LU ., .. h_,. 1-, ;....,'., a. a., °, a IgE, 3pt IgE, 8pt lono, 3pt k nU- ; e r 5, F i , : __ _. _t, t T tase T tase f s k T ase '. (td ,. : rYP rYP rYP Y te a '1 Is°l Pi f3 CI-ICT'1, t '. tr ; v v 4 r, CHMC'CHMC'CHMC 11 t m °i7a°_ ar e. >a "d N29 N _ ,. t d ,. t E t lono 3 t I E 3 I 8 9 P 9 P P w 1H NMR (DMSO-d6) : d 9. 50 (s, 1H), 8. 62 (d, 1H, J= 3. 6 Hz), 8. 17 (s, 439 N4- (3, 4-Dimethoxyphenyl)-5-fluoro-N4-methyl-N2- [3- (oxazol- 1 H), 7. 94 (d, 1 H, J= 6. 0 Hz), 7. 70 (dd, 1 H, J= 2. 4 Hz), 7. 33 (m, 2H), + + 439-+ + 2-yl) phenyl]-2, 4-pyrimidinediamine 6. 97 (d, 1 H, J= 2. 4 Hz), 6. 92 (d, 1 H, J= 8. 4 Hz), 6. 82 (dd, 1 H, J= 2. 4 and 8. 7 Hz), 3. 76 (s, 3H), 3. 73 (s, 3H), 3. 48 1H NMR (DMSO-d6) : d 9. 59 (s, 1H), 8. 10 (s, 1H), 7. 98 (m, 2H), 7. 62 N4- (3, 4-Dimethoxyphenyl)-5-fluoro-N4-methyl-N2- [4- (oxazoi- (dd, 1 H, J= 2. 1 and 6. 6 Hz), 7. 27 (s, 1 H), 6. 96 (m, 2H), 6. 92 (s, 1 H), 440 + 2-il) phenyl]-2, 4-pyrimidinediamine 6. 81 (dd, 2. 4 and 8. 4 Hz), 6. 61 (dd, 1H, J= 2. 1 and 6. 6 Hz), 5. 67 (bs, 1 H), 3. 77 (s, 3H), 3. 72 (s, 3H), 3. 45 (s, 3H). N2- (3, 5-Dimethylphenyl)-N4- (3, 4-ethylenedioxyphenyl)-5- 441 l LCMS : purity : 91% MS 9m/e) : 439 (MH+). + fluoro-N4-(methoxycarbonylmethyl)-2, 4-pyrimidinediamine 1H NMR (DMSO-d6) : d 9. 14 (s, 1H), 7. 97 (d, 1H, J=5. 7 Hz), 6. 84 (m, N2-(3 5-Dimethoxyphenyl)-N4-(3, 4-ethylenedioxyphenyl)-5- 442 5H), 6. 07 (m, 1 H), 4. 62 (s, 2H), 4. 24 (s, 3H), 3. 68 (bs, 4H), 3. 34 (s, + fluoro-N4- (methoxycarbonylmethyl)-2, 4-pyrimidinediamine 6H) ; LCMS : purity : 94%, MS : 471 (MH+). 1 H NMR (DMSO-d6) : d 9. 40 (s, 1H), 8. 40 (s, 1 H), 8. 00 (d, 1 H, J= J= N4-(3, 4-Ethylenedioxyphenyl)-5-fluoro-N4- 4. 2 Hz), 7. 93 (bs, 1 H), 7. 60 (m, 1 H), 7. 57 (s, 1 H), 7. 27 (m, 2H), 6. 83 443 (methoxycarbonylmethyl)-N2- [3- (oxazol-5-yl) phenyl]-2, 4- + pyrimidinediamine (m, 3H), 4. 63 (s, 2H), 4. 23 (s, 4H), 3. 51 (s, 3H) ; LCMS : purity : 95%, pynmldlnedlamlne MS (m/e) : 478 (MH+). 1H NMR (DMSO-d6) : d 9. 49 (s, 1H), 8. 24 (s, 1H), 8. 17 (s, 1H), 8. 00 N4-(3, 4-Ethylenedioxyphenyl)-5-fluoro-N4- (d 1H J=5. 7Hz) 7. 76 (bd 1H J=9. 6Hz) 7. 51 (bd 1H J=8. 1 Hz) 444 (methoxycarbonylmethyl)-N2- [3- (oxazol-2-yl) phenyl]-2, 4- d, 1 H, J= 5. 7 Hz), 7. 76 (bd, 1 H, J= 9. 6 Hz), 7. 51 (bd, 1 H, J= 8. 1 Hz), + _ 7. 34 (m, 2H), 6. 86 (m, 1H), 6. 83 (m, 1H), 4. 64 (s, 2H), 4. 24 (s, 4H), pyrimidinediamine- 3. 54 (s, 3H) ; LCMS : purity : 91%, MS (m/e) : 478 l 1H NMR (DMSO-d6) : d 9. 61 (s, 1H), 8. 10 (s, 1 H), 8. 05 (d, 1 H, J= 8. 1 N4-(3 4-Ethylenedioxyphenyl)-5-fluoro-N4- Hz), 7. 77 (dd, 2H, J= 8. 4 Hz), 7. 70 (dd, 2H, J= 8. 4 Hz), 7. 29 (s, 1H), 445 (methoxycarbonylmethyl)-N2- [4- (oxazol-2-yl) phenyl]-2, 4- +- 6. 85 (m, 3H), 4. 64 (s, 2H), 4. 25 (s, 4H), 3. 63 (s, 3H) ; LCMS : purity : pyrimidinediamine 92%, MS (m/e) : 478 (MH+). N4- (3, 4-Ethylenedioxyphenyl)-5-fluoro-N4- 1H NMR (DMSO-d6) : d 9. 24 (s, 1H), 7. 97 (d, 1 H, J= 5. 7 Hz), 7. 94 (m, 446 (methoxycarbonylmethyl)-N2- [3- (N- 1 H), 7. 22 (m, 2H), 7. 08 (t, 1 H, J= 7. 8 Hz), 6. 83 (m, 3H), 6. 49 (m, 1 H), + 446 + methylamino) carbonylmethyleneoxyphenyl]-2, 4- 4. 62 (s, 2H), 4. 39 (s, 2H), 4. 24 (s, 4H), 3. 60 (s, 3H), 2. 66 (d, 3H, J= pyrimidinediamine 5. 1 Hz) ; LCMS : purity : 97%, MS (498 (MH+). Lj LLJ LLJ ..... Tryptase, Tryptase, Tryptase, fp__pyk, CHMC, CHMC, Ilpt m ;] : . i ? CHMC, CHMC, 11pt gE, 3pt _ HNMR (DMSO-d6) : d 9. 24 (s, 1H), 7. 94 (bs, I H), 7. 90 (d, 1H, J=5. 7 N4-(3 4-Dimethoxyphenyl)-5-fluoro-N4-methyl-N2-[3-(N- Hz), 7. 46 (t, 1 H, J= 2. 1 Hz), 7. 27 (bd, 1 J=9Hz), 7. 10 (t, 1 H, J= 5. 1 447 methylamino) carbonylmethyleneoxyphenyl]-2 4-+ Hz), 6. 93 (m, 1 H), 6. 79 (dd, 1 H, J= 2. 7 and 8. 7 Hz), 6. 45 (dd, 1H, J= pyrimidinediamine' 1. 8and8. 1Hz), 6. 12 (m, 1H), 4. 38 (s, 2 1H NMR (DMSO-d6) : d 9. 37 (s, 1H), 9. 18 (s, 1H), 8. 21 (d, 1H, J=4. 5 448 N2- [4-Chloro-3- (N-methylamino) carbonylphenyl]-N4- (3, 4- Hz), 8. 05 (d, 1 H, J= 3. 6 Hz), 7. 72 (m, 2H), 7. 22 (m, 2H), 7. 20 (m, 3H), + + 448 + + ethy ! enedioxypheny !)-5-f) uoro-2, 4-pyr ! mid ! ned ! am ! ne 6. 80 (bdd, 1 H, J= 2. 1 and 9 Hz), 4. 11 (bs, 4H), 2. 71 (d, 3H, J= 4. 5 Hz) ; LCMS : purity : 95% ; MS (mule) : 430 (MH+). 1 H NMR (DMSO-d6) : d 8. 20 (d, 1 H), 8. 05 (d, 1 H, J= 3. 9 Hz), 7. 75 (d, N2- [4-Ch ! oro-3- (N-methy ! amino) carbonypheny !]-N4- (3, 4- 1 H, J= 2. 7 Hz), 7. 66 (dd, 1 H, J= 3. 0 and 8. 7 Hz), 7. 32 (dd, 1 H, J= 2. 4 + 449 + dimethoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine and 9. 0 Hz), 7. 23 (s, 1H), 7. 18 (m, 1H), 6. 88 (d, 1H, J= 8. 7 Hz), 4. 00 (s, 4H), 3. 76 (s, 3H), 3. 71 (s, 3H), 2. 69 (d, 1 H NMR (DMSO-d6) : d 8. 15 (d, 1H, J==4. 2 Hz), 7. 82 (dd, 1H, J=2. 7 N2- [4-Ch ! oro-3- (N-methy ! am ! no) carbony) pheny !]-N4- (3, 5- and 9. 0 Hz), 7. 61 (d, 1 H, J= 2. 7 Hz), 7. 25 (d, 1 H, J= 9. 0 Hz), 6. 96 (t, 45 I _ + dimethoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine 2H, J= 2. 4 Hz), 6. 26 (t, 1 H, J= 2. 1 Hz), 3. 71 (s, 6H), 2. 71 (d, 3H, 3. 3 Hz) ; LCMS : purity : 87%, MS (m/e) : 432 (M+). 1H NMR (DMSO-d6) : d 8. 16 (d 1H J= 3. 9 Hz) 7. 70 (d 1H J= 2. 7 1H NMR (DMSO-d6) : d 8. 16 (d, 1H, J= 3. 9 Hz), 7. 70 (d, 1H, J= 2. 7 N4- (3-Chbro-4-methoxyphenyi)-N2- [4-ch ! oro-3- (N- 451 j7 L Hz), 7. 64 (m, 2H), 7. 30 (d, 1H, J= 9. 3 Hz), 7. 10 (d, 1H, J= 9 Hz), 3. 87 + + methylamino) carbonylphenyl]-5-fluoro-2, 4-pyrimidinediamine (s, 3H), 2. 69 (s, 3H) ; LCMS : purity : 91%, MS (m/e) : 536 (M+). 1H NMR (DMSO-d6) : d 9. 65 (bs, 2H), 8. 26 (d, 1H J=4. 8 Hz), 8. 17 (s, N4-[3-Chloro-4-(ethoxycarbonyl-1, 1- 1H), 7. 80-7. 58 (m, 4H), 7. 27 (d, 1 H, J= 8. 7 Hz), 6. 89 (d, 1 J=9Hz), 452 dimethy [methyieneoxy) phenyn-N2- [4-ch ! oro-3- (N- + + 4. 20 (q, 2H, J= 6. 9 Hz), 2. 71 (d, 3H, J= 4. 2 Hz), 1. 54 (s, 6H), 1. 21 (t, methy ! am ! no) carbony ! pheny !]-5-fiuoro-2, 4-pyr ! m ! d ! nediamine 3H, J= 7. 2 Hz) ; LCMS : purity : 91%, MS (m/ 1H NMR (DMSO-d6) : d 9. 69 (s, 1H), 8. 28 (d, 1H, J=4. 5 Hz), 7. 98 (d, N2- [4-Chbro-3- (N-methy ! amino) carbony ! pheny !]-N4- (3, 4- 1H, J= 6. 0 Hz), 7. 83 (d, 1H, J= 2. 4 Hz), 7. 66 (dd, 1 H, J= 2. 7 and 8. 7 453 + ethylenedioxyphenyl)-5-fluoro-N4-methyl-4-pyrimidinediamine Hz), 7. 29 (d, 1 H, J= 9 Hz), 6. 84 (m, 2H), 6. 76 (dd, 1 H, 2. 7 and 8. 7 Hz), 4. 24 (s, 4H), 3. 38 (s, 1 H), 2. 72 (d, 3H, J= 1 H NMR (DMSO-d6) : d 9. 50 (s, 1 H), 8. 26 (d, 1 H, J= 4. 5 Hz), 7. 93 (d, N2-[4-Chloro-3-(N-methylamino) carbonylphenyl]-N4-(3, 4-1 H, 6. 0 Hz), 7. 87 (d, 1 H, J= 2. 7 Hz), 7. 68 (dd, 1 H, J= 2. 4 and 5. 7 Hz), 454 + dimethoxyphenyl)-5-fluoro-N4-methyl-4-pyrimidinediamine 7. 26 (d, 1 H, J= 8. 7 Hz), 6. 93 (m, 2H), 6. 80 (dd, 1 H, J= 2. 4 and 8. 4 Hz), 3. 76 (s, 3H), 3. 76 (s, 3H), 3. 72 (s, 3H), LLJ LLJ LLJ "-C"' 'M 0'dNallie "Tj co ,, CHMC CHMC, CHMC, Ilpt IgE, 3pt IgE, 8pt lono, 3pt N2- [4-Ch ! oro-3- (N-methy ! amino) carbony ! pheny !]-N4- (2, 2- Hz), 8. 16 (d, 1H, J=4. 2 Hz), 7. 63 (m, 2H), 7. 25 (m, 2H), 7. 17 (d, 1H, 455d ! methy !-3-oxo-4H-benz [1, 4] oxazin-6-y !)-5-fuoro-2, 4- + +- 455 dimethyl-3-oxo-4H-benz [1 4] oxazin-6-yl)-5-fluoro-2 4-+ + . l l J= 2. 1 Hz), 6. 90 (d, 1H, J= 8. 7 Hz), 2. 71 (d, 3H, J= 4. 5 Hz), 1. 40 (s, pyrimidinediamine 6H) ; LCMS : purity : 97%, MS (m/e) : 471 (M+). _ 1H NMR (DMSO-d6) : d 10. 74 (s, 1H), 10. 34 (s, 1H), 10. 09 (s, 1H), N2-[3-Chloro-4-(N-methylamino) carbonylphenyl]-N4-(2 2- N2- [3-Ch ! oro-4- (N-rnethy ! amino) carbonybheny !]-N4- (2, 2- 8. 24 (d, 1H, J=4. 8 Hz), 8. 15 (d, 1H, J=4. 5 Hz), 7. 83 (d, 1H, J= 1. 5 456 dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-y !)-5-ftuoro-2, 4- + + + l l Hz) 7. 44 (dd 1 H, J= 1. 8 and 8. 4 Hz) 7. 23 (m 2H), 6. 93 (d 1 H, J= 8. 4 pyrimid ! ned ! amine Hz), 2. 71 (d, 3H, J= 4. 2 Hz), 1. 40 (s, 6H) ; LCM 1 H NMR (DMSO-d6) : d 8. 02 (d, 1 H, J= 8. 4 Hz), 7. 87 (d, 1 H, J= 6. 4 N2- (2, 6-D ! methoxypyrid-3-y !)-N4- (3, 5-d ! methoxypheny !)-5- Hz), 7. 76 (s, 1 H), 6. 41 (m, 3H), 6. 32 (d, 1 H, J= J=8. 4 Hz), 3. 89 (s, 3H), fluoro-N4-methyl-2, 4-pyrimidinediamine 3. 82 (s, 3H), 3. 71 (s, 3H), 3. 34 (s, 3H) ; LCMS : purity : 95%, MS (m/e) : 416 (MH+). 1 H NMR (DMSO-d6) ; d 8. 02 (d, 1 H, J= 8. 4 Hz), 7. 82 (d, 1 H, J= 6. 6 45 (2, 6-D ! methoxypyrid-3-y !)-N4- (3, 4-ethyienedioxypheny !)-5- Hz), 7. 68 (s, 1 H), 6. 79 (m, 2H), 6. 72 (dd, 1H, J=2. 1 and 8. 1 Hz), 6. 30 458 fluoro-N4-methyl-2, 4-pyrimidinediamine (d, 1H, J= 8. 1 Hz), 4. 23 (s, 4H), 3. 89 (s, 3H), 3. 81 (s, 3H), 3. 28 (s, 3H) ; LCMS : purity : 97%, MS (m/e) : 414 (MH+). 1 H NMR (DMSO-d6) : d 9. 12 (s, 1H), 7. 97 (d, 1H, J= 5. 1 Hz), 7. 89 (s, N4- (3, 5-D ! methoxypheny !)-N2- (2, 6-d ! methoxypyrid-3-y !)-5- 1H), 7. 82 (d, 1 H, J= 7. 8 Hz), 6. 95 (s, 1 H), 6. 28 (d, 1 H, J= 7. 8 Hz), 6. 15 + 459 + fluoro-2, 4-pyrimidinediamine (s, 1 H), 3. 84 (s, 3H), 3. 83 (s, 3H), 23. 64 (s, 6H) ; LCMS : purity : 85%, MS (m/e) : 402 (MH+). N2-(2 6-Dimethoxypyrid-3-yl)-N4-(3 4-ethylenedioxyphenyl)-5- 460 <. j-H y/LCMS : purity : 93%, MS (m/e) : 400 (MH+). + fluoro-2, 4-pyrimidinediamine 1H NMR (DMSO-d6) : d 7. 72 (d, 1H, J= 5. 1 Hz), 6. 79 (d, 1H, J= 9. 0 N4- (3, 4-Ethy ! enedioxypheny !)-5-f) uoro-N2-methy !-N4-methy !- 461 N4-(3, 4-Ethylenedioxyphenyl)-5-fluoro-N2-methyl-N4-methyl-Hz) 6. 73 (bs 1 H), 6. 66 (bd, 1 H), 2. 74 (d, 3H, J= 4. 5 Hz) ; LCMS : 2, 4-pyrimidinediamine purity : 93%, MS (m/e) : 291 (MH+). H NMR (DMSO-d6) : d 7. 78 (d, 1 H, J= 6. 0 Hz), 6. 80 (d, I H, J= 8. 4 462 N2-Dimethyl-N4- (3, 4-ethylenedioxyphenyl)-5-fluoro-N4- Hz), 6. 75 (d, 1 H, J= 2. 7 Hz), 6. 66 (dd, 1 H, J= 1. 8 and 8. 4 Hz), 4. 22 (s, 462 methyl-2, 4-pyrimidinediamine 4H), 3. 31 (s, 3H), 3. 30 (s, 3H) ; LCMS : purity : 95% ; MS (m/e) : 305 (MH+). syk, LD Na 0- ....... Tryptase, Tryptase, Tryptase, fp__pyk, CHMC, CHMC, CHMC, llpt [gE, 3pt fgE, 8pt lono, 3pt "'""''"""""""""'""""1H NMR (DMSO-d6 d9. 45 (s, 1H), 9. 24 (s, 1H), 8. 11 (m, 2H), 7. 89 N2- [3-Ch ! oro-4- (N-methy ! amino) carbony ! phenyU-N4- (3, 4- (d, 1 H, J= 2. 1 Hz), 7. 54 (dd, 2. 1 and 8. 7 Hz), 7. 20 (m, 3H), 6. 82 (d, 463 + + ethylenedioxyphenyl)-5-fluoro-2, 4-py (imidinediamine I H, J= 8. 4 Hz), 4. 22 (bs, 4H), 2. 71 (d, 3H, J= 4. 5 Hz) ; LCMS : purity : 99%, MS (m/e) : 430 (MH+). I H NMR (DMSO-d6) : d 10. 34 (s, 1H), 10. 10 (s, 1H), 8. 25 (d, 1H, J=.. _ N2- [3-Chbro-4- (N-methy ! amino) carbony) pheny)]-N4- (3, 4- 4. 5 Hz), 8. 18 (d, 1H, J= 4. 8 Hz), 7. 81 (s, 1H), 7. 41 (d, 1H, J= 8. 1 Hz), 464 + dimethoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine 7. 27 (d, I H, J= 8. 4 Hz), 7. 18 (m, 2H), 6. 95 (d, 1H, J= 8. 7 Hz), 3. 75 (s, 3H), 3. 68 (s, 3H), 2. 71 (d, 3H) ; LCMS : purl N2- [3-Ch [oro-4- (N-rnethyarn ! no) carbony ! pheny]-N4- (3, 5- dimethoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine 465 j jj LCMS : purity : 100%, MS (m/e) : 432 (MH+). + 4'513 meth' dimethoxypheny !)-5-uoro-2, 4-pyrim ! d ! ned ! amine - N4- (3-Ch ! oro-4-methoxypheny !)-N2- [3-ch ! oro-4- (N- in tu 467 due N4- [3-Ch ! oro-4- (ethoxycarbony)-1, 1- 467 dimethylmethyleneoxy) phenyl]-N2-13-chloro-4-(N-LCMS : purity : 95%, MS (mule) : 536 (MH+). + + + th, methylamino) carbonylphenyl]-5-fluoro-2, 4-pyrimidinediamine N2- [3-Ch) oro-4- (N-methy ! amino) carbony ! pheny !]-5-fiuoro-N4- 468 jj LCMS : purity : 100%, MS (m/e) : 388 (MH+). + + 3-hydroxypheny !)-2, 4-pynmidinediam ! ne 1 H NMR (DMSO-d6) : d 7. 70 (d, 1H, J= 5. 7 Hz), 6. 79 (d, 1H, J= 8. 7 N4- (3, 4-Ethylenedioxyphenyl)-5-fluoro-N2- (2-hydroxyethyl)- Hz), 6. 74 (d, 1 H, J= 2. 4 Hz), 6. 66 (dd, 1 H, J= 2. 4 and 8. 4 Hz), 6. 50 (t, 469 N4-methy !-2, 4-pyrim ! d ! nediarn ! ne 1H, J=5. 1 Hz), 4. 61 (t, 1 H, J= 5. 4 Hz), 4. 22 (s, 4H), 3. 47 (q, 2H, J= 6. 3 Hz), 3. 29 (t, 2H, J= 5. 4 Hz), 3. 25 (s, 3H) 2-Ch ! oro-N4- [3-ch) oro-4- (ethoxycarbonyi-1, 1-1H NMR (CD03) : d 7. 87 (d, 1H, J= 7. 8 Hz), 7. 25 (m, 1H), 6. 95 (m, 470 dimethylmethyleneoxy) phenyl]-5-fluoro-N4-methyl-4- 2H), 4. 25 (q, 2H, J= 4. 8 Hz), 3. 46 (s, 3H), 1. 65 (s, 6H), 1. 29 (t, 3H, J=-+ i m pyrimidineamine 4. 8 Hz) ; LCMS : purity : 95%, MS (m/e) : 404 (MH+ ; C137). 1H NMR (DMSO-d6) : d 7. 70 (d, 1H, J= 5. 7 Hz), 6. 77 (d, 1H, J= 8. 7 N N4- (3, 4-Ethylenedioxyphenyl)-5-fluoro-N2-isopropyl-N4- Hz), 6. 37 (d, 1H, J= 2. 4 Hz), 6. 68 (dd, 1 H, J=2. 4 and 8. 7 Hz), 6. 44 (d, 471 methyl-2, 4-pyrimidinediamine 1HI J= 8. 1 Hz), 4. 22 (s, 4H), 3. 90 (sept, 1H, J= 7. 5 Hz), 3. 27 (s, 3H), 1. 12 (d, 6H, J= 6. 6 Hz) ; LCMS : purity : 93%, MS = i E, E R iN B S tQ wN tA äS X _ r k .,. g., . Z., .. LU LU LU LU LU LU q. : 2., ? F. y... Nz ,) ; : s, _. 'e=. a a . a., ., i !. e, vJ,. L w, Peaaa'4^. tA4 "uutt c 0 i C 6 i T tase T tase T tase f s k C r rYP rYP YP P_ Y, a b . L. 1£3 ilSJ_3YCCSr T _ t 'v, a,. S_". _. ". _c r t HMC CHMC CHMC 11 w , C 1 r r. F td r r , _.. t I E t t a I E 3 8 lono 3 s9, P 9 p P Yx I H NMR (DMSO-d6) : d 10. 39 (s, I H), 9. 52 (s, 1 H), 8. 20 (d, 1 H, J= 5. 7 N2- (2, 6-Dimethoxypyrid-3-yl)-5-fluoro-N4- (3-hydroxyphenyl)- Hz), 7. 77 (m, 1 H), 7. 08 (m, 1 H), 6. 59 (m, 1 H), 6. 45 (d, 1 H, J= 8. 4 Hz), + 472 + _ 2, 4-pyrimidinediamine 6. 37 (d, 1H, J= 8. 1 Hz), 3. 88 (s, 3H), 3. 86 (s, 3H) ; LCMS : purity : 89%, MS (m/e) : 358 (MH+). 1H NMR (DMSO-d6) : d 9. 71 (s, 1H), 8. 16 (d, 1H, J= 4. 5 Hz), 8. 00 (d, N2- [3-Chloro-4- (N-methylamino) carbonylphenyl]-N4- (3, 4- 1H, J=5. 7Hz), 7. 95 (d, 1H, J=1. 8Hz) 7. 53 (dd, 1 H, J= 2. 1 and 8. 4 473 ethylenedioxyphenyl)-5-fluoro-N4-methyl-2, 4- + Hz), 7. 29 (d, 1 H, J= 8. 4 Hz), 6. 85 (m, 2H), 6. 77 (dd, 1 H, J= 2. 1 and 8. 4 pyrimidinediamine Hz), 4. 24 (s, 4H), 3. 40 (s, 3H), 2. 71 (d, 3H, 1 H NMR (DMSO-d6) : d 9. 86 (bs, 1 H), 8. 18 (d, 1 H, J= 4. 5 Hz), 8. 03 474 N2- [3-Chloro-4- (N-methylamino) carbonylphenyl]-N4- (3, 4- (dd, 1 H, J= 1. 2 and 6. 3 Hz), 7. 94 (d, 1 H, J= 1. 8 Hz), 7. 52 (dd, 1 H, J= + 47 + dimethoxyphenyl)-5-fluoro-N4-methyl-2, 4-pyrimidinediamine 2. 1 and 8. 4 Hz), 7. 30 (d, 1H, J= 8. 4 Hz), 6. 99 (d, 1H, J= 2. 4 Hz), 6. 93 (d, 1 H, J= 8. 4 Hz), 6. 86 (dd, 1 H, J= 2. 4 and 8. 1H NMR (DMSO-d6) : d 10. 11 (s, 1H), 9. 83 (s, 1H), 8. 30 (d, 1H, J=4. 5 N4- [4-Chloro-3- (N-methylamino) carbonylphenyl]-N2- (3, 5- Hz), 8. 24 (d, 1 H, J= 4. 5 Hz), 8. 00 (dd, 1 H, J= 2. 7 and 8. 7 Hz), 7. 63 (d, dimethoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine 1H, J= 2. 4 Hz), 7. 36 (d, 1H, J= 8. 7 Hz), 6. 78 (d, 2H, J= 2. 1 Hz), 6. 20 (t, 1 H, J= 2. 1 Hz), 3. 67 (s, 6H), 2. 73 (d, 1H NMR (DMSO-d6) : d 9. 91 (s, 1H), 9. 52 (s, 1H), 8. 29 (d, 1H, J=4. 8 N4- [4-Chloro-3- (N-methylamino) carbonylphenyl]-N2- (3, 5- Hz), 8. 19 (d, 1H, J=4. 2 Hz), 8. 00 (bdd, 1H, J=8. 7 Hz), 7. 62 (d, 1 H, J= 476 + + dimethylphenyl)-5-fluoro-2, 4-pyrimidinediamine 2. 1 Hz), 7. 38 (d, 1H, J= 9. 0 Hz), 7. 17 (s, 2H), 6. 63 (s, 1H), 2. 72 (d, 3H, J= 4. 8 Hz), 2. 19 (s, 6H) ; LCMS : purity : 1H NMR (DMSO-d6) : d 9. 55 (s, 1H), 9. 32 (s, 1H), 8. 31 (bd, 1H), 8. 15 N4- [4-Chloro-3- (N-methylamino) carbonylphenyl]-5-fluoro-N2- (bs, 1 H), 7. 99 (m, 2H), 7. 79 (m, 1 H), 7. 39 (d, 1 H, J= 9 Hz), 7. 29 (m, 477 [3-(N-methylamino) carbonylmethyleneoxyphenyl]-2 4-l + +- 2H), 7. 14 (m, 1 H), 6. 49 (bd, 1 H, J= 7. 8 Hz), 4. 36 (s, 2H), 2. 72 (s, 3H), pyrimidinediamine 2. 64 (s, 3H) ; LCMS : purity : 99%, MS (m/e) : 4 1 H NMR (DMSO-d6) : d 9. 69 (s, 1H), 8. 34 (d, 1 H, J= 4. 5 Hz), 8. 22 (d, N2- [3-Chloro-4- (N-methylamino) carbonylphenyl]-N4- [4-chloro- 1H, J= 3. 6 Hz), 8. 17 (d, 1 H, J= 4. 5 Hz), 7. 95 (dd, 1 H, J= 2. 7 and 8. 7 478 3- (N-methylamino) carbonylphenyl]-5-fluoro-2, 4- + Hz), 7. 81 (d, 1 H, J= 2. 1 Hz), 7. 71 (d, 1 H, J= 2. 7 Hz), 7. 56 (dd, 1 H, J= pyrimidinediamine 2. 1 and 8. 4 Hz), 7. 43 (d, 1 H, J= 9. 0 Hz), 7. 3 : z. z- d z i r o lu lu s ml . _, . w w t m D <r"-'*<h.. .'-"--i'"''"t2 : ;,-------LjLJ N4-4_C.. s > A,, x J h ait, TrYPtas . : ;, f ' = h n "df e Trypfase, T 479 1 lor4-3- (N_rpeffyfamino) car h'Ptase, fp S .. H NMf"_ Y r". s, * a i, ua CI-MC, _ y. bonytpenyl]-N2_ ; ndo !-6- 8. 3$ ( N CHMC, CH C, .-pt -"--p L - N'n rity.-97%, Ms (mle) : 292 (M,). . 3put Hz), 7. 77 (d, 1H, J (d, 1N, J--4. 8 Hz), 7. g6 (bd, 1N, J= 8. 7 480 4 3°4-EthyfenedioxyPhen I-'met _ «'H g. 7 HZ. 7. 3p z ? 7. S 9H), 7. 47 (a, 1H, J= 8. 4 + Y3 5-fluoro-2-mefFoxy_Nq, _ yl 4'Pin'imidineamine LCMS ; pr. o Hz), 7. 35 H), 7. 05 (dd, fY. 97/, MS (m/e) : 292 (IVIf, 481 43'hloro-4- (_m, amino) carbonylphenyl]-2_g 5- 1H tVMR (DIISO-d6) : d 9. 8 Yphenyl)-5_uro-9. 0 N dimethox 7. 89 (m, 2Hy 7. 33 d, 1H J =- 2, 4-pYrimdinediamine 9H, J= 1. 8 Hz'_ (m, 2N, ) z) 6. 85 (d, 2N, , 1. 5 Hz), 6. 13 (, ). 3. 66 (s, 1H), 2. 74 (d, 3H, J-4. 5 Hz) ; LCMS : purity ; * f Lss ?-... L==- dimethylphen 1-HZ, 7. 85 (bs, 1H). 7. 35 a _ H MR (MSO-d6) : d 10. 01 (s, 1Hj 9. 65 (S, 1H), 8. 24 Y) 5-fluoro-2, ¢_pYrimidinedia . H,, 1= 8. 7 t-Iz (, 1 H, J= 4. 5 mine 6. s), 7. 16 (s, 2H), 6. 94 S N4- [3_Cloro-4 (d, 3H J_ 4. 8 Nzj 2. 29 (S, 3h 'fN-meth Purify : 98°/a, MS (m/e) : 400 (Mt). 2. 20 (s, 3H) : LCMS ; f 483 [3- (N_meth la Yfamino) carbonyfphen). FE--. fSs L--"-=- ---sEE (bs, H), 9. 56 (bs, 1 H), 8. 22 (m, 2H), ), 7. 8Z b (d, H, J=8. 7Iz), 7. 37 N2- [4_Ch (oro-3, (_me 3H, J=4. 5 Hz), 2. 64 (d, 3H,, Nz), 7. 22 (m, 3N), 8. 56 (m, 1N), 4, 38 (s, 2H). 2. 74 'Yraminojr, aon = 4. 8 Hzj ; LCMS : pu (N-methylamino) ro I) d 9. 69 (d,. r YPheny) j_N43 hloro-1N NMR (DIvSO-d6 ; YPhenylj-5_fluoro-2, 4_ (s, 9N). 9. 60 (s, 1H), 8. 25 PYrimidinediarnine), 7. 36 (m, 3H), 2. 75 d. (m, 3H (m, 311 ), 7. 85 ( 3H, J 4. 8 Hz), 2. 70 (d, 3H, J--g. Hzj ; 485 N4 C3-Cforo.. q_ LCMS : purify : 86% , MS (m/e) : 463 (M+. (N-meth I TH NMR (DfvSO-d6) : d 10. 99 (s, 1H), 10. 1 Yamino) carbony (penyl]-5_fluoro-N2- (s, 9H g (indol-g-yp2, , _pYrimidinediarnins =4. 5 Nz), 8. 2 8. 25 (a ; 1H, ).. 8p b Hzj, 7. 83 (bd, 1H, J= 9. 6 (d, 1H, J--4. 2 Hz), 7. 93 (d, 1H, 1H. 486N4- (2_qmino 7. 12 H, J Hz 7'. 58 (S, 1N), 7. 47'"9. 8 PYrid-_y_z_chforo-_fluoro-4-PYrmic (ineamine H MR (CD30D = 8. 9 Hz) 6. 38 (s, 1H) : LClNS : p ) d 8. 96 ( 1H, J=3 487 43. 4-Efylenediox H J= 3. 9 and 5. 1 Hz) : LClig s NZ 7. 46 (m, 2H), 6. 32 (dd, PYnrnidinediamine YPhenyf), fluoro-N4-methyl-2, 4_'t1i NMR (CD30D) : d 7. 43 (d, N : purity : 92%, MS 7. 2 Hz . 6. 7), 6. 83 (d, qN, J, 8. 4 Nz), (d, H, J= 2. 4 Hz) > 6. 72 (dd, 1 N, J, 2. 7 and 8. 4 HZ 3. 40 (s, 3H) ; LCMS) 4. 25 (s, 4H), Purity : 100%, MS (m/) : 278 (MN+,, f L U LU , out ,u. HMC, CHMC, CHMC, llpt wz __ :-2m. i f,. 6u wt 9 1, I 1 i : : I i r. r. r _ T tase T tase T tase f s k 13. r, -, rYP rY rY P_ Y TY1 LVtJt3Is3i'il tx. _ _ I Si x'a'-- n r t, n pil. 1. a CHMC CHMC CHMC 11 t ta. rer i h r u s,. V v. "i'i iiiii N i ;, s i . . a I E 3 t I E 8 t lono 3 t n 9, P 9 P P E 48 oro-N4- (3, 5-dimethoxypheny !) 1 H NMR (CD30D) : d 7. 93 (d, 1 H, J= 5. 4 Hz), 6. 46 (s, 3H,), 4. 62 (s, + 488 + pyrimidineamine 6H), 3. 77 (s, 3H) ; LCMS : purity : 100%, MS (m/e) : 298 (MH+). 1H NMR (CD30D) : d 7. 73 (m, 2H), 7. 34 (dd, 1H, J= 1. 2 and 8. 1 Hz), 489 N2- (2-Ethoxycarbonylindol-7-yl)-5-fluoro-N4- (2-hydroxyethyl)- 7. 17 (s, 1 H), 7. 04 (t, 2H, J= 7. 8 Hz), 4. 38 (q, 2H, J= 6. 9 Hz), 3. 69 (t, 2, 4-pyrimidinediamine 2H, J= 5. 1 Hz), 3. 58 (t, 2H, J= 6. 6 Hz), 1. 42 (t, 3H, J= 7. 2 Hz) ; LCMS : purity : 98%, MS (m/e) : 360 (MH+). 1 H NMR (CD30D) : d 7. 89 (d 1 H J= 5. 7 Hz) 7. 57 (d 1 H J= 8. 1 Hz), 2-Chloro-N4-(2 6-dimethoxypyrid-5-yl)-5-fluoro-N4-methyl-4- 490 6. 37 (d, 1H, J= 8. 7 Hz), 3. 94 (s, 3H), 3. 91 (s, 3H), 3. 37 (s, 3H) ; LCMS : pyrimidineamine purity : 97%, MS (m/e) : 299 (MH+). 491 2-Chloro-N4- (3, 5-dichloro-4-methoxyphenyl-5-fluoro-N4-1H NMR (CD30D) : d 8. 02 (d, 1H, J= 5. 4 Hz), 7. 43 (s, 2H), 3. 91 (s, 491 methyl-4-pyrimidineamine 3H), 3. 47 (s, 3H) ; LCMS : purity : 89%, MS (m/e) : 366 (MH+). 1 H NMR (DMSO-d6) : d 7. 76 (d, 1 H, J= 4. 7 Hz), 6. 79 (d, 1 H, J= 6. 3 492 N2- (Bis-2-hydroxyethyl)-N4- (3, 4-ethylenedioxyphenyl)-5- Hz), 6. 75 (d, 1 H, J= 2. 4 Hz), 6. 67 (dd, 1 H, J= 2. 7 and 9. 3 Hz), 4. 71 fluoro-N4-methyl-2, 4-pyrimidinediamine (bs, 2H), 4. 22 (bs, 4H), 3. 57 (bs, 4H), 3. 31 (bs, 4H), 3. 28 (s, 3H) ; LCMS : purity : 97%, MS (m/e) : 416 (MH+). 1H NMR (DMSO-d6) : d 9. 58 (s, 1H), 9. 29 (s, 1H), 8. 11 (d, 1 H, J= 3. 6 493 N4- (3, 4-Ethylenedioxyphenyl)-5-fluoro-N2- [4- (N- Hz), 7. 47 (m, 2H), 7. 42 (bdd, 1H), 7. 27 (d, 1H, J= 2. 1 Hz), 7. 13 (dd, + + 493 + + methylamino) sulfonyl-3-methoxyphenyl]-2, 4-pyrimidinediamine 1 H, J= 2. 1 and 8. 4 Hz), 6. 79 (d, 1 H, J= 8. 7 Hz), 6. 73 (m, 1H), 4. 22 (s, 4H), 3. 68 (s, 3H), 2. 34 (d, 3H, J= 4. 8 Hz) ; L 1 H NMR (DMSO-d6) : d 9. 57 (s, 1 H), 9. 33 (s, 1 H), 8. 11 (d, 1 H, J= 3. 6 494 N4- (3, 4-Dimethoxyphenyl)-5-fluoro-N2- [3-methoxyphenyl-4- Hz), 7. 51 (d, 1 H, J= 1. 8 Hz), 7. 45 (d, 1 H, J= 8. 4 Hz), 7. 34 (dd, 1H, J= + + 494 + + (N-methylamino) sulfonyl]-2, 4-pyrimidinediamine 1. 8 and 8. 7 Hz), 7. 24 (m, 2H), 6. 90 (d, 1 H, J= 9. 0 Hz), 6. 72 (d, 1 H, J= 4. 8 Hz), 3. 75 (s, 3H), 3. 67 (s, 3H), 3. 63 ( 1H NMR (DMSO-d6) : d 9. 64 (s, 1H), 9. 37 (s, 1H), 8. 16 (bd, 1H), 7. 51 495 N4- (3, 5-Dimethoxyphenyl)-5-fluoro-N2- [3-methoxyphenyl-4- (m, 3H), 6. 97 (bs, 2H), 6. 71 (bd, 1H), 6. 24 (bs, 1H), 3. 69 (s, 6H), 3. 31 + 495 + (methylamino) sulfonyl]-2, 4-pyrimidinediamine (s, 3H), 2. 34 (d, 3H, J= 4. 8 Hz) ; LCMS : purity : 94%, MS (m/e) : 464 (M+). 1H NMR (DMSO-d6) : d 10. 62 (s, 1H), 9. 50 (s, 1H), 9. 43 (s, 1H), 8. 12 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- l (d 1H J=3. 9Hz) 7. 46 (s 1H) 7. 44 (s 1H) 7. 26 (dd 1H J=2. 4and 4961-methoxyphenyl-4-(methylamino) sulfonyl]-2 4-l l l l l l l l l + + + 496 3-methoxypheny)-4- (methy ! am ! no) su ! fony !]-2, 4- + + + 8. 7 Hz), 7. 14 (d, 1 H, J= 2. 4 Hz), 6. 90 (d, 1 H, J= 8. 4 Hz), 6. 70 (d, 1 H, pyrimidinediamine J= 5. 4 Hz), 3. 69 (s, 3H), 2. 32 (d, 3H, J= -Eryptase, Tryptase, Tryptase, fp n-vb __syk, Nanie urliAC, CHMC, llpt IgE, 3pt IgE, 8pt lono, 3pt ......... -----"'""""""""'"'""""""""'"1H NMR (DMSO-d6) : d 9. 88 (s, 1H), 9. 72 (s, 1H) 8. 26 (m, 2H), 818' (d 1H J=4. 5Hz) 7. 65 (d 1H J=8. 7Hz) 7. 51 (d 1H J=8. 7Hz) (d, 1H, J=4. 5Hz), 7. 65 (d, 1H, J=8. 7Hz), 7. 51 (d, 1H, J=8. 7Hz), 497methoxypheny)-4- (methy) amino) sufonyt]-2, 4- + +- 7. 44 (m, 2H), 6. 74 (d, 1H, J=8. 4Hz), 3. 72 (s, 3H), 2. 34 (d, 3H, J=5. 1 pyrimidinediamine Hz) ; LCMS : purity : 97%, MS (m/e) : 506 (M+). 1H NMR (DMSO-d6) : d 9. 78 (s, 1H), 9. 72 (s, 1H), 8. 25 (m, 1H), 8. 15 N4- (3-Chioro-4-trif) uoromethoxyp) ieny !)-5-f) uoro-N2- [4- (3- (d, 1H, J=3. 6Hz), 7. 84 (dd, 1H, J=2. 4and9. 0Hz), 7. 52 (m, 2H), 7. 43 498 methoxyphenyl-N-methylamino) sulfonyl]-2, 4-. + + (m, 2H), 6. 74 (m, 1H), 3. 74 (s, 3H), 2. 33 (d, 3H, J= 2. 1 Hz) ; LCMS : pynmldlnedlamlne purity : 83%, MS (m/e) : 522 (M+). . 1H NMR (DMSO-d6) : d 9. 57 (s, 1H), 9. 38 (s, 1H), 9. 31 (s, 1H), 8. 13 5-Ffuoro-N4- (3-hydroxypheny !)-N2- [3-methoxypheny-4- (N- (d, 1H, J= 3. 9 Hz), 7. 51 (m, 1H), 7. 47 (m, 2H), 7. 21 (d, 1H, J= 1. 5 Hz), + + 499 + + methy ! am ! no) su ! fony)]-2, 4-pyrimidinedjamine 7. 08 (m, 2H), 6. 70 (d, 1 H, J= 5. 4 Hz), 6. 51 (bdd, 1 H, J= 8. 1 Hz), 3. 31 (s, 3H), 2. 30 (d, 3H, J= 2. 4 Hz) ; LCMS : puri 1H NMR (DMSO-d6) : d 7. 66 (d, 1HI J= 5. 4 Hz), 7. 59 (d, 1HI J= 7. 5 N4- (2, 6-Dimethoxypyrid-3-yl)-N2, N4-dimethyl-5-fluoro-2, 4- 500 Hz), 6. 54 (bd, 1 H), 6. 35 (d, 1 H, J= 8. 4 Hz), 3. 85 (s, 3H), 3. 83 (s, 3H), pynmldlnedlamlne 2. 71 (d, 3H, J= 3. 9 Hz) ; LCMS : purity : 92%, MS (m/e) : 294 (M+). 1 H NMR (DMSO-d6) : d 7. 86 (d, 1H, J= 5. 4 Hz), 7. 42 (s, 2H), 3. 80 (ss N4- (3, 5-Dichloro-4-methoxyphenyl)-N2, N4-dimethyl-5-fluoro- 501 jr j 3H), 3. 38 (s, 3H), 2. 73 (d, 3H, J= 4. 8 Hz) ; LCMS : purity : 98%, MS 2 4-pyrimldinedlamlne (mule) : 331 (M+). 1H NMR (DMSO-d6) : d 10. 28 (s, 1H), 8. 42 (d, 1H, J= 3. 0 Hz), 7. 71 (d, 2-Chtoro-5-f) uoro-N4- [4- (N-methy) amino) su) fonyt-3- 1 H, J= 1. 8 Hz), 7. 67 (d, 1 H, J= 8. 4 Hz), 7. 46 (dd, 1 H, J= 1. 5 and 8. 4 502 methoxypheny-2, 4-pyrimidineamine Hz), 6. 95 (d, 1H, J= 5. 4 Hz), 3. 87 (s, 3H), 2. 38 (2. 38 (d, 3H, J= 4. 8 Hz) ; LCMS : purity : 80%, MS (m/e) : 349 (M+2). 1 H NMR (DMSO-d6) : d 9. 34 (s, 1H), 9. 14 (s, 1 H), 8. 57 (d, 1 H, J= 2. 7 N2- (3, 5-Dimethoxyphenyt)-5-ftuoro-N4- [2- (2- Hz), 8. 08 (d, 1 H, J= 3. 0 Hz), 7. 98 (dd, 1H, J= 2. 7 and 8. 7 Hz), 6. 91 (d, hydroxyethyleneoxy) pyrid-5-y-2, 4-pyrimidinediamine 2H, J= 1. 8 Hz), 6. 77 (d, 1 H, J= 8. 7 Hz), 6. 03 (t, 1 H, J= 3. 6 Hz), 4. 23 (t, 2H, J= 4. 5 Hz), 3. 69 (m, 2H), 3. 65 (s, 1H NMR (DMSO-d6) : d 9. 30 (s, 1H), 9. 06 (s, 1H), 8. 54 (d, 1H, J= 2. 4 N2- (3, 5-Dimethylphenyl)-5-fluoro-N4-p- (2- Hz), 8. 06 (d, 1 H, J= 3. 6 Hz), 7. 94 (dd, 1 H, J= 2. 7 and 9. 0 Hz), 7. 20 (d, 504 + + hydroxyethyleneoxy) pyrid-5-yl]-2, 4-pyrimidinediamine 2H, J= 0. 9 Hz), 6. 79 (d, 1 H, J= 9. 0 Hz), 6. 50 (s, 1H), 4. 8 (t, 1H, J= 5. 7 Hz), 4. 23 (t, 2H, J= 5. 7 Hz), 3. 70 (q, 2 LU LL) LU Tryptase, Tryptase, Tryptase, fp __pyk, CHMC, CHMC CHMC, 11 pt [gE, 3pt IgE, 8pt lono, 3pt 1 H NMR (DMSO-d6) : d 9. 35 (s, I H), 9. 17 (s, 1 H), 8. 49 (s, 1 H), 8. 07 N2- (3-Chloro-4-methoxyphenyl)-5-fluoro-N4- [2- (2- (d, 1 H, J= 3. 6 Hz), 7. 98 (dd, 1 H, J= 2. 7 and 9. 0 Hz), 7. 81 (s, 1 H), 7. 40 + + 505 + + hydroxyethyleneoxy) pyrid-5-y ]-2, 4-pyrimidinediamine (bd, 1 H, J= 8. 7 Hz), 6. 98 (d, 1 H, J= 8. 4 Hz), 6. 80 (d, 1 H, J= 8. 7 Hz), 4. 83 (t, 1 H, J=5. 7 Hz), 4. 24 (t, 1H, J= 4. 8 1H NMR (DMSO-d6) : d 7. 70 (d, 1H, J=4. 4 Hz), 7. 68 (m, 2H), 7. 66 (dd, N2-A !) y)-N4- (3, 4-ethy) enedioxypheny !)-5-f ! uoro-N4-methy !-2, 4- 1H, J= 1. 2 and 7. 8 Hz), 5. 85 (m, 1H), 5. 10 (dd, 1H, J= 1. 5 and 16. 8 506 pyrimidinediamine Hz), 5. 00 (dd, 1H, J= 1. 8 and 12. 0 Hz), 4. 22 (s, 4H), 3. 83 (t, 2H, J= 4. 5 Hz), 3. 28 (s, 3H) ; LCMS : purity : 100%, MS (m N2- (3, 5-DimethoxyphenyD-5-f ! uoro-N4- [4- (N- 50 LCMS : purity : 80% MS (m/e) : 464 (MH+). + + methylamino) sulfonyl-3-methoxyphenyl]-2, 4-pyrimidinediamine 1H NMR (DMSO-d6) : d 9. 50 (s, 1H), 9. 22 (s, 1H), 8. 16 (s, 1H), 8. 13 N2- (3, 5-Dimethoxyphenyl)-5-fluoro-N4- (3-methylpyrid-6-yl)- (dd, 1 H, J= 0. 9 and 6. 6 Hz), 8. 06 (d, 1 H, J= 8. 7 Hz), 7. 55 (bdd, 1 H, J= + + , 4-pyrimidinediamine 5. 7 Hz), 6. 94 (d, 2H, J= 1. 2 Hz), 6. 07 (t, 1 H, J= 1. 2 Hz), 3. 68 (s, 3H), 3. 66 (s, 3H), 2. 49 (s, 6H) ; LCMS : purity : 9 1H NMR (DMSO-d6) : d 9. 46 (s, 1H), 9. 14 (s, 1H), 3. 17 (bs, 1H), 8. 13 N2- (3, 5-Dimethylphenyl)-5-fluoro-N4- (3-methylpyrid-6-yl)-2, 4- (d, 1H, J= 3. 3 Hz), 8. 04 (d, 1 H, J= 8. 4 Hz), 7. 55 (dd, 1 H, J= 2. 1 and pyrimidinediamine 8. 4 Hz), 7. 24 (s, 2H), 6. 24 (s, 1H), 3. 33 (s, 3H), 3. 32 (s, 3H), 2. 18 (s, 3H) ; ; LCMS : purity : 93%, MS (m/e) : 324 (MH+ N4- (5-Ch ! oropyrid-2-y !)-N2- (3, 5-dimethoxypheny !)-5-fiuoro- 51 l LCMS : purity : 93%, MS (m/e) : 376 (MH+). + + 2, 4-pyrimidinediamine 1H NMR (DMSO-d6) : d 9. 39 (s, 1H), 9. 30 (s, 1H), 9. 22 (s, 1H), 8. 29 511 ! uoro-N4- (3-hydroxypheny !)-N2- [3- (oxazo !-2-y)) pheny !]-2, 4- (bs, 1H), 8. 14 (s, 1H), 8. 11 (d, I H, J= 3. 9 Hz), 7. 90 (dd, 1H, J= 1. 2 and 511 + pyrimidinediamine 9. 0 Hz), 7. 50 (dd, 1H, J= 1. 5 and 6. 3 Hz), 7. 33 (m, 3H), 7. 09 (t, 1H, J= 2. 1 Hz), 7. 01 (t, 1H, J= 8. 1 Hz), 6. 45 9d 1H NMR (DMSO-d6) : d 9. 54 (s, 1H), 9. 26 (s, 1H), 8. 18 (s, 1H), 8. 10 51 (3, 4-Ethy ! enedioxyphen)-5-fiuoro-N2- [3- (1, 2, 4-oxadiazol- (d, 1H, J=2. 4 Hz), 7. 83 (bd, 1 H, J= 8. 1 Hz), 7. 38 (t, 1 H, J= 7. 8 Hz), + 3-cl) phenyl]-2, 4-pyrimidinediamine 7. 27 (m, 2H), 7. 13 (bd, 1 H, J= 8. 7 Hz), 6. 82 (d, 1H, j=9. 0Hz), 4. 22 (s, 4H) ; LCMS : purity : 91%, MS (m/e) : 406 (M+). tryptase, Tryptase, Tryptase, pyk, Opn'tpoaae : a) T) e :"'-. : K : sag si ; . weataaas CHMC, CHMC, CHMC, Ilpt iIgE, 3pt [gE, 8pt lono, 3pt 1H NMR (DMSO-d6) :"d'93 (s, H), 9. 29 (s, 1H), 8. 21 (s, 1 H), 8. 10 N4- (3, 4-Dimethoxypheny !)-5-f) uoro-N2- [3- (1, 2, 4-oxadiazol-3- (d, 1 H, J= 3. 9 Hz), 7. 79 (dd, 1 H, J= 1. 2 and 8. 4 Hz), 7. 33 (m, 3H), 7. 16 + yl) phenyl]-2, 4-pyrimidinediamine- (s, 1 H), 6. 94 (d, 1 H, J= 8. 7 Hz), 3. 75 (s, 3H), 3. 70 (s, 3H) ; LCMS : purity : 95%, MS (m/e) : 407 (MH-). 1H NMR (DMSO-d6) : d 1. 6 (s, 1H), 9. 49 (s, 1H), 9. 40 (, s, 1H), 8. 15 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- (d, 1H, J=8. 1 Hz), 8. 11 (d, 1H, J=3. 9Hz), 7. 85 (bd, 1H, J=8. 4Hz), [3- (1, 2, 4-oxadiazol-3-yl) phenyl]-2, 4-pyrimidinediamine 7. 29 (m, 3H), 7. 13 (d, 1H, J=2. 4 Hz), 6. 91 (dd, 1H, J=3. 0 and 8. 4 Hz), 5. 73 (d, 1 H, J= 3. 6 Hz), 1. 40 (s, 3H) ; LCMS 1 H NMR (DMSO-d6) : d 9. 61 (s, 1H), 9. 27 (s, 1H), 8. 62 (s, 1 H), 8. 38 (s, N4- (3, 4-D ! methoxypheny !)-5-f ! uoro-N2- [5-methoxycarbony !-3- 1H), 8. 17 (d, 1H, J= 0. 9 Hz), 8. 12 (d, 1H, J= 3. 6 Hz), 8. 04 (d, 1H, J= + (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine 1. 5 Hz), 7. 35 (m, 2H), 7. 27 (m, 1H), 6. 76 (d, 1H, J= 7. 8 Hz), 3. 82 (s, 3H), 3. 70 (s, 3H), 3. 65 (s, 3H) ; LCMS : pur 1H NMR (DMSO-d6) : d 9. 64 (s, 1H), 9. 23 (s, 1H), 8. 61 (s, 1H), 8. 37 (s, N4- (3, 4-Ethy [enedioxypneny !)-5-f) L) oro-N2- [5- 1H), 8. 19 (s, 1H), 8. 12 (d, 1 H, J= 3. 3 Hz), 8. 05 (s, 1H), 7. 38 (m, 2H), 516 methoxycarbonyl-3- (oxazol-2-yl) phenyl]-2, 4-pyr ! mid ! nediam ! ne 7. 22 (dd, 1 H, J= 2. 7 and 8. 7 Hz), 6. 70 (d, 1H, J= 8. 7 Hz), 5. 74 (s, 1 H), 4. 15 (s, 4H), 3. 85 (s, 3H) ; LCMS : purit 4. 15 (s, 4H), 3. 85 (s, 3H) ; LCMS : purit 1 H NMR (DMSO-d6) : d 10. 51 (s 1 H) 9 54 (s 1 H) 9. 40 (s 1 H) 8 63 N4- (2, 2-Dimethy !-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- (s, 1H), 8. 39 (s, 1H), 8. 18 (s, 1H), 8. 14 (d, I H, J= 3. 9 Hz), 8. 04 (s, 1H), 517 [5-methoxycarbony !-3- (oxazo !-2-y !) pheny !]-2, 4- 7. 44 (dd, 1H, J=2. 1 and 8. 7 Hz), 7. 37 (s, 1 H), 6. 77 (d, 1H, J=8. 4 Hz), pyr ! midined ! amine 3. 84 (s, 3H), 1. 38 (s, 6H) ; LCMS : pur ! 1 H NMR (DMSO-d6) : d 9. 64 (s, 1 H), 9. 25 (s, 1 H), 8. 62 (s, 1 H), 8. 43 (s, 5-F ! uoro-N4- (3-hydroxyphenyl)-N2- [5-methoxycarbonyl-3- 1H), 8. 19 (s, 1H), 8. 15 (d, 1H, J= 3. 9 Hz), 8. 05 (s, 1H), 7. 38 (s, 2H), (oxazo !-2-y !) pheny !]-2, 4-pyrimidinediamine 7. 36 (s, 2H), 7. 13 (s, 1H), 6. 98 (t, 1H, J= 8. 7 Hz), 6. 42 (ddj 1H, J= 2. 4 and 6. 6 Hz), 3. 83 (s, 3H) ; LCMS : purit 1H NMR (DMSO-d6) : d 9. 75 (s, 1H), 9. 23 (s, 1H), 8. 59 (s, 1H), 8. 22 (t, N4- (3, 4-Ethylenedioxyphenyl)-5-fluoro-N2- [3- (oxazol-2-yi)-5- 2H, J= 0. 9 Hz), 8. 14 (d, 1 H, J= 3. 9 Hz), 7. 69 (s, 1 H), 7. 40 (s, 1 H), 7. 31 519 + trifluoromethylphenyl]-2, 4-pyrimidinediamine (d, 1 H, J= 2. 4 Hz), 7. 19 (dd, 1 H, J= 2. 7 and 9. 0 Hz), 6. 72 (d, 1H, H, J= 8. 4 Hz), 4. 17 (s, 4H) ; LCMS : purity : 92% i.., va, v LV LV um R v., - i= ii h- ; M h i v' P f s TT3 y, y, _- e tase T t ase f s k 'a , t. , rYP rYP, r ., rYP P_ Y x 9 . QS1 CSUC1C ( : I1 t". ;,. . $ w. viviv I , a-m. r (_ fi , winh. r. i i G.. s C CHMC'CHMC 11 t W r z P r ce ., =I E 3 t I E . z 8 t lono 3 t P 9 P P ns 1H NMR (DMSO-d6) : d 9. 73 (s, 1H), 9. 31 (s, 1H), 8. 57 (s, 1H), 8. 24 (s, 520 N4- (3, 4-Dimethoxyphenyl)-5-fluoro-N2- [3- (oxazol-2-yl)-5- 1 H), 8. 20 (bs, 1H), 8. 14 (d, 1H, J=4. 2 Hz), 7. 68 (s, 1H), 7. 40 (s, 1H), + trifluoromethylphenyl]-2, 4-pyrimidinediamine 7. 33 (bdd, 1 H, J= 9. 0 Hz), 7. 23 (bs, 1 H), 6. 82 (d, 1 H, J= 7. 5 Hz), 3. 71 (s, 3H), 3. 68 (s, 3H) ; LCMS : purity : 97 1H NMR (DMSO-d6) : d 10. 54 (s, 1H), 9. 70 (s, 1H), 9. 42 (s, 1H), 8. 54 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- (s, 1 H), 8. 27 (s, 1 H), 8. 21 (s, 1 H), 8. 16 (d, 1 H, J= 2. 7 Hz), 7. 67 (s, 1 H), + _ [3-(oxazol-2-yl)-5-trifluoromethylphenyl]-2, 4-pyrimidinediamine 7. 40 (d, 1H), 7. 33 (bdd, 1H, J= 8. 4 Hz), 7. 17 (d, 1H, J= 2. 4 Hz), 6. 81 (d, 1 H, J= 8. 4 Hz), 1. 39 (s, 6H) ; LCMS : 1H NMR (DMSO-d6) : d 9. 55 (s, 1H), 9. 36 (s, 1H), 9. 30 (s, 1H), 8. 13 522 5-Fluoro-N4- (3-hydroxyphenyl)-N2- [3- (1, 2, 4-oxadiazol-3- (m, 2H), 7. 88 (bd, 1 H, J= 7. 8 Hz), 7. 38 (t, 1 H, J= 7. 8 Hz), 7. 27 (m, 2H), + 522 + yl) phenyl]-2, 4-pyrimidinediamine 7. 13 (t, 1 H, J= 7. 8 Hz), 7. 02 (s, 1 H), 6. 50 (bdd, 1 H, J= 5. 7 Hz) ; LCMS : purity : 95% ; MS (m/e) : 364 (M+). 1H NMR (DMSO-d6) : d 8. 11 (d 1H J= 5. 4 Hz), 6. 79 (s, 2H), 3. 74 (s 2-Chloro-5-fluoro-N4-methyl-N4- (3, 4, 5-trimethoxyphenyl)-4- 523 3H), 3. 72 (s, 3H), 3. 65 (s, 3H), 3. 38 (s, 3H) ; LCMS : purity : 94%, MS pynmldlneamlne (m/e) : 329 (MH+). 1H NMR (DMSO-d6) : d 10. 45 (s, 1H), 9. 59 (s, 1H), 8. 33 (s, 1H), 8. 21 524 5-Fluoro-N4- (5-methylisoxazol-3-yi)-N2- [3- (oxazol-2- (d, 1H, J=2. 7 Hz), 8. 18 (s, 1H), 7. 83 (bd, 1H, J=7. 2Hz), 7. 55 (bd, 1 H, + + yl) phenyl]-2, 4-pyrimidinediamine J= 8. 1 Hz), 7. 40 (t, 1 H, J= 8. 1 Hz), 7. 35 (s, 1 H, J= 6. 92 (s, 1 H), 2. 29 9s, 3H) ; LCMS : purity : 100%, MS (m/e) : 35 1H NMR (DMSO-d6) : d 9. 33 (s, 1H), 9. 06 (s, 1H), 8. 23 (s, 1H), 8. 14 525 5 Fluoro-N4- (5-methyl-3-phenylisoxazol-4-yl)-N2- [3- (oxazol-2- (bs, 1 H), 8. 09 (d, 1 H, J= 3. 6 Hz), 7. 66 (m, 3H), 7. 43 (m, 4H), 7. 32 (s, + 525 + yl) phenyl]-2, 4-pyrimidinediamine 1 H), 7. 24 (t, 1 H, J= 7. 2 Hz), 2. 36 (s, 3H) ; LCMS : purity : 85%, MS (m/e) : 429 (MH+). 1 H NMR (DMSO-d6) : d 9. 48 (m, 2H), 8. 19 (m, 2H), 8. 11 (m, 2H), 7. 77 5-Fluoro-N4- (1-methyl-3-phenylpyrazol-5-yl)-N2- [3- (oxazol-2- 526 (m, 2H), 7. 35 (m, 6H), 6. 73 (s, 1H), 3. 32 (s, 3H) ; LCMS : purity : 83%, + yl) phenyl]-2, 4-pyrimidinediamine MS (m/e) : 428 (MH+). 1H NMR (DMSO-d6) : d 9. 89 (s, 1H), 9. 83 (s, 1H), 8. 58 (s, 1H), 8. 49 (s, 527 N2, N4-Bis [3-methoxycarbonyl-5- (oxazol-2-yl) phenyl]-5-fluoro- 1H), 8. 46 (s, 1H), 8. 35 (s, 1H), 8. 27 (d, 1H, J= 3. 6 Hz), 8. 08 (m, 3H), + 527 + 2, 4-pyrimidinediamine 7. 30 (s, 1H), 7. 27 (s, 3H), 3. 71 (s, 3H), 3. 68 (s, 3H) ; LCMS : purity : 86%, MS (M/e) : 531 (MH+). s, :. ,-.- LD N2, N4-Bis (3"5 ; = o ß (É t) (s,/+/ Oxazol te.. s N _ s ; > 5.- . ', ; F-.. : : Jazz : ... C'. 9 ° . !, 1 _ <... . ,. 3"x, _. " ;...-^ ;,,, x 4 ; c e ; hv, P ,., y. F, . c :. LPa. n a ..' f td ". LD ' , - " : a : . : :. 3r" W : . h,.. ; J". r N2, fq-Bis 3 5_. 528 (, d : : , ,-', ; "r°-z ;'k' . ; _. rYPtas e TrYptase, r lTletfiYJISOX2Z0-4-. <. x ; t ut'- ''x'"r' ;, v rYPtase, f r (OS) li YI)-5, fluoro-2, 4- 9H 1M p r CHMC, CHMC, CHMC, 11pf (MSO d6 PYmidinediamine Hz), 2. 19 (s, 3N ) dY 8 76 s , s : :, : ; 9 3pt fgE, 8 t ),. 10 (s, 3N 3 (d. 9H, J 3. 9 P lono, 3pt 99 %), 2. 03 (s, 3H), 1. 85 , MS (m/e) : 319 (MH-. (S, 3H) : LGIIAS : purify : N2, N4-Bfs 1H tVMR (pMSO-d6) : d 9. 99 (S 529 I3- (oxazol-2- methyfp (enyl]-5_uoro-2, 4-1 H), 8. 3. , Y)--trifluoro H). 9. 19 S _ pYmidinedamine . 1H) > 8. 60 (S, 1Hj, 8. 54 S (. H, J, 2. 7 Hz), 8. 9 9 d ('f H, J-5, 1 Hz), 8. 05 (s, i N), 7. 79 (s, 9H), 7. 61 (s, N) 7. 31 (s, 1H), 7. 27 (s, N) ; LCMS : purit o + (m/e) : 551 (MH., Y-92/o, MS 530 21 (2-tert-Buty !-t, 3, 4-oxaetiazol-5- H MR (DMSO_d6) : d 9. 43 s YI) Phenylj-f4_3, 4- (, 1H), 9. 23 (s, 1H). 8. 25 (s, 9N), 8. 08 YPheny !)-5_uoro-2, q. 8. 7 Hz dimefhox ( 1H, J= 3. 6 Hz), 7. 93 (, TH - PYimidinediamine), 7. 49 9bd, 1 H, J= 7. 5 7. 35 (rp, 2H), 7. 25 (d, 1H,, 1_, Hz 3H), 3. 66 (s, 3H), . 37 S) 2. 4 Hz), 6. 75 (d, 1H, J=8. 7 Hz), 3. 70 (O + * 531 Nzf (2terf-Buty (_3, 4_axadiazof-5- 1H NMR (pMSO-d6) : d 9. 45 S Y) phenyt]-N4_, 4- (. 1H). 9. 99 (s, 9H). 8. 25 (f, 1H J= ethyfenedio Hz), 8. 07 (d, 1, J 3. 3 Nz, 7. $7 XYPhenyfj-g_uoro-2, 4 (bd, 9N. J=2. 1. 8 - pyrimidinediamine 4 Hz), 7. 51 {bd, 1N, 1= 7. 8 Nz), 7. 40 (rp, 2H), 7. 16 (d, qN, 2. 4 and 8. 7 Hz 9 Nz), 4. 15 (m, 4H). 6. 70 (d, 1H, 532 N2 (2-fert-Buty_3, 4- ), 9. 37 (S, 9H) ; LCMS : oxadiazot-5-ypphenyl]-g_fluoro-N4- (3_ 9H). 8. 19 1H IMR (DIV80-dg) ; d 9. 45 (s, 1N), 9. 28 (s, 1H), 923 s 1 YPhenyl)-24-0 (bd, 1H = hYdrox (d> 1 H, J 3. 9 Hz), 8. 0 PYrmidine (iamine, J 8. 1 Hz 7 7. 8 Hzj, 7. 39 (t, 1H, J-8. 4 Hz), 7. 30 (bd, 9N, J= 8. 4 Hz). 7. 1 = 2. ? Hz), 6. 99 (f, 1 H, Jc 8. 4 Hz). 6, MS (n/1 HZ), 2X67 (5 3H) | + 2 (f, 9 H, r - : r L-- --"' (MH+). 534 N4 3°5-dimefhylisoxazol-4-yp__fluoro_ iH IVMR (pMSO-d6) : d 9. 35 S Y) Phenyl]-2. 4-pYimidinediamine N2- (3_oxazol-2- 1H) 8. ? 0 ( H, J= 3. 6 Hz) > 7. 71 . 1 N), 8. 88 (s, 1 H), 8. 31 (s, ? H). 8. 94 fs, (bd, 1 H, J= 7. 8 Hz), 7. 45 (d, 1 H, _ 6. 6 Hz). 7. 32 (d, 1H, J= 0. 9 Hzj, 7. 29 (t, 1H, J= 8 535 N4 3°5-pimefhylisoxazol-4-y__uoro-N2- [5_ 2. 90 (s, 3H) : LCIIAS : purity : 96°, MS rr/ . 1 Nz), 2. 87 (s, 3N), mefhooycarbony (_3_oxazol-2_ Y) Phenyf]-2>4-PYrimidinediamine LMB : purity : 85%, MS (m/e) : 425 (i, H. r. I L-Li L. U L. Li I ryptase, Trypt ase, Tryptase, fp Pom d NamO C H M C, CHMC, CHMC, 11 pt IgE, 3pt IgE, 8pt lono, 3pt 1H NMR (DMSO-d6) : d 11. 16 (s, 1H), 10. 00 (s, 1H), 9. 52 (s, 1H), 8. 16 N2- (3, 5-D ! methy !-4-methoxypheny)-N4- (2, 2-d ! methy !-3-oxo- (d, 1H, J=4. 2 Hz), 7. 46 (m, 2H), 7. 35 (d, 1H, J= 8. 1 Hz), 7. 13 (s, 2H), 536 4H-5-pyrid [1, 4] oxazin-6-y !)-5-f) uoro-2, 4-pyr ! midined ! amine p- 7. 08 (d. 1H, J= 2. 4 Hz), 3. 60 (s, 3H), 2. 28 (s, 3H), 2. 14 (s, 6H), 1. 43 (s, Toluene Sulfonic Acid Salt 6H) ; LCMS : purity : 99%, MS (m/e) : 439 1H NMR (DMSO-d6) : d 11. 19 (s, 1H), 10. 52 (s, 1H), 9. 65 (s, 1H), 8. 19 N2- (3, 5-Dimethy)-4-methoxypheny !)-N4- (2, 2-d ! methy !-3-oxo- (d, 1H, J=4. 5 Hz), 7. 56 (m, 2H), 7. 44 (d, 1H, J= 8. 4 Hz), 7. 35 (d, 1H, 537 4H-5-pyrid [1, 4] oxazin-6-y [)-5-f] uoro-2, 4-pyrim ! dined ! amine J= 8. 4 Hz), 7. 30 (m, 3H), 7. 10 (s, 2H), 3. 60 (s, 3H), 2. 14 (s, 6H), 1. 43 Benzenesulfonic Acid Salt (s, 6H) ; LCMS : purity : 93%, MS (m/e) : 439 1H NMR (DMSO-d6) : d 11. 80 (s, 1H), 10. 16 (s, 1H), 9. 73 (s, 1H), 8. 21 N2- (3, 5-Dimethy !-4-methoxypheny !)-N4- (2, 2-d ! methy !-3-oxo- (d, 1H, J=4. 2Hz), 7. 44 (d, 1H, J=8. 4Hz), 7. 36 (d, 1H, J=8. 4Hz), 538 4H-5-pyrid [1, 4] oxazin-6-y !)-5-f) uoro-2, 4-pyrimidined ! am ! ne 7. 12 (s, 2H), 3. 60 (s, 3H), 2. 32 (s, 3H), 2. 13 (s, 6H), 1. 43 (s, 6H) ; Methanesufonic Acid Sa ! t LCMS : purity : 97%, MS (m/e) : 439 (MH+, for par 1H NMR (DMSO-d6) : d 10. 67 (s, 1H), 10. 60 (s, 1H), 10. 05 (s, 1H), N4- (2, 2-Dimethy !-3-oxo-4H-benz [1, 4] oxazin-6-y !)-5-fiuoro-N2- 8. 20 (d, 1H, J= 4. 8 Hz), 7. 84 (s, 1H), 7. 62 (d, 1H, J= 9 Hz), 7. 45 (bd, 539 (2-trifluoromethyl-3H-benzimidazol-5-yl)-2, 4-pyrimidinediamine + p-Toluenesulfonic Acid Salt 7. 8 Hz), 7. 23 (d, 1 H, J= 8. 7 Hz), 7. 15 (s, 1H), 7. 09 (d, 1H, J= p-To ! uenesu ! fonic Acid Sa ! t 7. 8 Hz), 6. 85 (d, 1 H, J= 8. 7 Hz), 2. 28 (s, 3H), 1H NMR (DMSO-d6) : d 10. 66 (s, 1H), 10. 20 (s, 1H), 9. 90 (s, 1H), 8. 17 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-y !)-5-f ! uoro-N2- l l (d 1 H J= 4. 5 Hz) 7. 88 (s, 1 H), 7. 57 (m, 3H), 7. 48 (d, 1 H, J= 8. 4 Hz), 540 2-trmuoromethy)-3H-benz ! midazo)-5-y)-2, 4-pyr ! rn ! dinediamine + 7. 29 (m, 4H), 7. 15 (s, 1 H), 6. 85 (d, 1H), J= 8. 4 Hz) ; LCMS : purity : Benzenesulfonic Acid Salt 95%, MS (m/e) : MH+, for parent ion). 1H NMR (DMSO-d6) : d 10. 67 (s, 1H), 10. 45 (s, 1H), 10. 19 (s, 1H), N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yi)-5-fluoro-N2- l l 8. 23 (d 1H J=5. 1 Hz) 7. 80 (s 1H) 7. 62 (d 1H J=8. 7Hz) 7. 45 (d 541 (2-trifluoromethyl-3H-benzimidazol-5-yD-2, 4-pyrimidinediamine + 1H, J=8. 4 Hz), 7. 11 9s, 1H), 6. 85 (d, 1H, J=8. 4 Hz), 2. 38 (s, 3H), 1. 37 Methanesulfonic Acid Salt (s, 6H) ; LCMS : purity : 99%, MS (m/e) : 488 (M 1H NMR (DMSO-d6) : d 10. 64 (s, 1H), 9. 90 (s, 1H), 9. 80 (s, 1H), 8. 15 N4- (2, 2-Dimethy !-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- (d, 1H, J=4. 8 Hz), 7. 96 (s, 1H), 7. 59 (d, 1H, J=8. 7 Hz), 7. 50 (dd, 1H, 542 (2-trifluoromethyl-3H-benzimidazol-5-y )-2, 4-pyrimidinediami!,n, + J= 1. 5 and 9. 3 Hz), 7. 25 (m, 2H), 6. 87 (d, 1 H, J= 8. 4 Hz) ; LCMS : Hydrogen Chloride Salt purity : 99%, MS (m/e) : 488 (MH+, for parent ion). N4- (2, 2-Dimethy !-3-oxo-4H-benz [1, 4] oxazin-6-y !)-5-fiuoro-N2- 543,, LCMS : purity : 98%, MS (m/e) : 470 (MH+) ; + + + (3, 4, 5-trimethoxyphenyl)-2, 4-pyrimidinediam ! ne Tryptase, Tryptase, Tryptase, fp E S &<lgE, 3pt C C 1 N4- (2-Am ! no-3-methoxy-pyrid-6-y !)-N2- (3, 5-dimethoxypheny !)- am __pyk, 5-f) uoro-2, 4-pyrimid ! nediam ! ne CHMC, 11 pt IgE, 3pt IgE, 8pt lono, 3pt N4- (2-Amino-3-methoxypyrid-6-y !)-5-f) uoro-N2- (3, 4, 5- 5-fluoro-2, 4-pyrimidinediamine 545 y LCMS : pur ! ty : 94% ; MS (m/e) : 417 (MH+) + 54 I LCMS : purity : 94% ; MS (m/e) : 417 (MH+) + trimethoxyphenyl)-2, 4-pyrimidinediamine N4- (2-Am ! no-3-methoxypyr ! d-6-y !)-5-f) uoro-N2- (2- 546 LCMS : purity : 82% ; MS (m/e) : 425 (MH+) + methoxycarbonylbenzofuran-5-y )-2, 4-pyrimidinediamine N4- (2-Amino-3-methoxypyrid-6-yl)-5-fluoro-N2 [3- (N- 547 methy ! aminocarbony ! methy) eneoxy) pheny-2, 4- LCMS : purity : 89% ; MS (m/e) : 414 (MH+) + pyrimidinediamine N2- (3, 5-Dich ! oro-4-hydroxypheny !)-N4- (3, 5-dich ! oro-4- 54 I LCMS : purity : 92% MS (m/e) : 465 (MH+) + + methoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine N4- (4-Acety !-2, 2-dimethy !-3-oxo-pyr ! d [1, 4] oxazin-6-yl)-5- 54 I LCMS : purity : 97% MS (m/e) : 513 (M+) fluoro-N2-(3, 4, 5-trimethoxyphenyl)-2, 4-pyrimidinediamine N4-Acety)-N4- (2, 2-d ! methy-3-oxo-4H-pyr ! d [1, 4] oxazin-6-y !)-5- 55 I LCMS : purity : 96%, MS (m/e) : 513 (M+) fluoro-N2-(3, 4, 5-trimethoxypheny !)-2, 4-pyrimid ! ned ! amine N2-Acetyl-N4- (2, 2-dimethyl-3-oxo-4H-pyrid [1, 4] oxaz ! n-6-y !)-5- 551 LCMS : purity : 95% ; 514 (MH+) fluoro-N2-(3, 4, 5-trimethoxyphenyl)-2, 4-pyrimidinediamine 2, N4-Bis [3-methy !-4- (4-methytp ! peraziny)) pheny !)-5-f ! uoro-2, 4- 552... LCMS : purity : 99% ; MS (m/e) : 506 (MH+) py (imidinediamine 1H NMR (DMSO-d6) : d 9. 14 (bs 1H), 9. 04 (s, 1H) 8. 06 (d J= 3. 9 Hz N4- (3, 5-D ! methy ! pheny !)-5-f) uoro-N2- (3, 4, 5-trimethoxyphenyl)- 553... 1H), 7. 40-7. 36 (m, 2H), 6. 95 (s, 2H), 6. 67 (s, 1H), 3. 58-3. 56 (m, 9H), + 2, 4-pynmldlnedlamlne 2. 19 (s, 6H) ; LCMS : purity : 96% ; MS (m/e) : 399 (MH+). IN NMR (DMSO-d6) : d 9. 21 (bs, 1H), 9. 04 (bs, 1H), 8. 63 (bs, 1H), N2- (3-Ch ! oro-4-hydroxy-5-methypheny !)-5-f ! uoro-N4- (3, 5- 8. 05 (d, J= 3. 6 Hz, 1 H), 7. 53-7. 49 (m, 1 H), 7. 34-7. 30 (m, 2H), 7. 24- 554 + dimethylphenyl)-2, 4-pyrimidinediamine 7. 20 (m, 1H), 6. 69 (bs, 1H), 2. 22 (s, 6H), 2. 09 (s, 3H) ; LCMS : purity : 93% ; MS (m/e) : 373 (MH+). .......... . n ; r. N : ; ; : : : : : : r : : :..... : : : : : : . :. r : : : : : : : : : : r. a. ; r. " : :.." y... M. yG :, . =. ° CHMC, CHMC, CHMC, Ilpt ..... x : a...' : i ! .. xx.... v.. Y. _..... n.. a. _ Y'I T T tase tase T tas s x, , r ; . . : :".. : y. f y"CHMC, CHMC, CHMC, 11pt Y. rr. . r. r. ; E t I E 8 t lo I 3 no 3 t N2- [3, 5-Bis (hydroxymethy) ene) phenyt]-N4- (3, 5- 555 2H), 7. 38 (s, 2H), 6. 85 (s, 1H), 6. 68 (s, 1H), 4. 38-4. 34 (m, 4H), 2. 22 (s, + dimethylphenyl)-5-fluoro-2, 4-pyrimidinediamine 6H) ; LCMS : purity : 99% ; MS (m/e) : 369 (MH+). 'H NMR (DMSO-d6) : d 9. 76 (bs, 1H), 9. 51 (bs, 1H), 8. 18 (d, J= 3. 9 N2- (3, 5-Dichlorophenyl)-N4- (3, 5-dimethylphenyl)-5-fluoro-2, 4- 556 Hz, 1 H), 7. 73-7. 69 (m, 2H), 7. 29-7. 25 (m, 2H), 7. 04 (t, J= 1. 8 Hz, 1 H), + + pyrlmldinedlamlne pyrimidinediamine 6. 75 (s, 1 H), 2. 25 (s, 6H) ; LCMS : purity : 92% ; MS (m/e) : 378 (MH+). 'H NMR (DMSO-d6) : d 11. 66 (s, 1H), 9. 37 (s, 1H), 9. 28 (s, 1H), 8. 48- N4- (3, 5-Dimethylphenyl)-5-fluoro-N2- [2- (N- 8. 40 (m, 1H), 8. 13 (d, J= 3. 6 Hz, 1H), 7. 98-7. 88 (m, 1H), 7. 33 (s, 2H), methylamino) carbonylindol-7-yl]-2, 4-pyrimidinediamine 7. 22 (d, J= 7. 8 Hz, 1 H), 7. 04 (d, J= 1. 8 Hz, 1 H), 6. 90 (t, J= 8. 1 Hz. 1 H), 6. 71 (s, 1 H), 2. 80 (d, J= 3. 0 Hz, 3H), 2 'H NMR (DMSO-d6) : d 11. 57 (s, 1H), 9. 65 (s, 1H), 9. 40 (s, 1H), 8. 39- 558 5-Fluoro-N4- (3-methoxy-5-trifluoromethylphenyl)-N2- [2- (N- 8. 35 (m, 1 H), 8. 15 (d, J= 3. 9 Hz, 1H), 7. 78 (d, J= 7. 5 Hz, 1H), 7. 73- 558 + methylamino) carbonylindol-7-yl]-2, 4-pyrimidinediamine 7. 69 (m, 1 H), 7. 57-7. 52 (m, 1 H), 7. 18 (d, J= 7. 8 Hz, 1 H), 9. 98 (d, J= 1. 8 Hz, 1 H), 6. 87-6. 80 (m, 2H), 3. 70 (s, 3H), 2. 'H NMR (DMSO-d6) : d 9. 49 (s, 1H), 9. 21 (s, 1H), 9. 19 (s, 1H). 8. 08 (d. N2- (3, 5-Dichloro-4-hydroxyphenyl)-N4- (3, 5-dimethylphenyl)-5- H NMR (DMSO-d6) : d 9. 49 (s, 1H), 9. 21 (s, 1H), 9. 19 (s, 1H), 8. 08 (d, 559 In= 3. 3 Hz, 1H), 7. 66 (d, J= 1. 5 Hz, 2H), 7. 29 (s, 2H), 6. 70 (s, 1H), 2. 24 + fluoro-2, 4-pyrimidinediamine (s, 6H) ; LCMS : purity : 95% ; MS (m/e) : 394 (MH+). 11H NMR (DMSO-d6) : d 9. 17 (s, 1H), 9. 13 (s, 1H), 8. 07 (d, J= 3. 9 Hz, N2-(4-Chloro-3, 5-dimethylphenyl)-N4-(3, 5-dimethylphenyl)-5-1 1 560 11H), 7. 45 (s, 2H), 7. 30 (s, 2H), 6. 72 (s, 1H), 2. 22 (s, 6H), 2. 18 (s, 6H) ; fluoro-2, 4-pyrimidinediamine LCMS : purity : 93% ; MS (m/e) : 372 (MH+). 'H NMR (DMSO-d6) : d 9. 53 (s, 1H), 9. 13 (s, 1H), 8. 17-8. 12 (m, 1H), 561 N4- [3, 4- (Difluoromethylenedioxy) phenyl]-5-fluoro-N2- (3, 4, 5- 8. 11 (d, J= 3. 9 Hz, 1 H), 7. 42 (dd, J= 2. 4 and 9. 0 Hz, 1 H), 7. 32 (d, J= trimethoxyphenyl)-2, 4-pyrimidinediamine 8. 4 Hz, 1H), 7. 00 (s, 2H), 3. 64 (s, 6H) ; 19F NMR (282 MHz, DMSO- d6) :-49. 77,-164. 19 ; LCMS : purity : 93% ; MS (m/e) : 4 'H NMR (DMSO-d6) : d 9. 54 (s, 1H), 9. 22 (s, 1H), 8. 12 (d, J= 3. 6 Hz, 562 N4- [3, 4- (Difluoromethylenedioxy) phenylj-N2- (3, 5- 1 H), 8. 11-8. 08 (m, 1 H), 7. 42 (dd, J= 2. 1 and 9. 0 Hz, 1 H), 7. 32 (d, J= dimethoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine 8. 7 Hz, 1H), 6. 90 (d, J= 2. 1 Hz, 2H), 6. 07 (t, J= 2. 4 Hz, 1H), 3. 65 (s, 6H) ; 19F NMR (282 MHz, DMSO-d6) :-49. 69,-16 " . ........ Leu __pyk, f ;. ..,., ..,. :. A o, ? 2 5 o-b lv Y r . ! a I, t t t i. h M..'m. o . _T tase T tase T tase f sk v ", 1, , rYP, rYP rYP, P_ Y _H-c. tr N rne r, = n E <N. : y-". ieFm, Y i kk YloS7 W Y rh, , l..'" v.. ir , L ., :. CHMC CH . , . MC CHMC 11 t r t r 3 td t ,. >.. -e.. I E 3 t ti : - 1 f,. I E 8 t lono 3 t 9 P 9 > > tfi..-P P t, n H RIMR (DMSO-d6) : d 9. 51 (s, 1H), 9. 13 (s, 1H), 8. 11 (d, J=3. 6 Hz, 563 N4- [3, 4- (Difluoromethylenedioxy) phenyl]-N2- (3, 5- I H), 8. 09-8. 06 (m, 1H), 7. 39 (dd, J= 2. 1 and 8. 7 Hz, 1H), 7. 34 (d, J= + + 563 + + dimethylphenyl)-5-fluoro-2, 4-pyrimidinediamine 9. 0 Hz, 1H), 7. 22 (s, 2H), 6. 53 (s, 1H), 2. 16 (s, 6H) ; 19F NMR (282 MHz, DMSO-d6) :-49. 67,-164. 51 ; LCMS : purity : 98 N2- NMR (DMSO-d6) : d 9. 59 (s, 1H), 9. 45 (bs, 1H), 9. 31 (s, 1H), 8. 08 N2- (3, 5-Dichloro-4-hydroxyphenyl)-N4- [3, 4- . (d, J= 3. 6 Hz, 1 H), 7. 85-7. 79 (m, 1 H), 7. 55 (s, 1 H), 7. 29 (s, 1 H) ; 19F 56 1 (difluoromethylenedioxy) phenyl]-5-fluoro-2, 4-+ NMR (282 MHz, DMSO-d6) :-49. 50,-163. 68 ; LCMS : purity : 96% ; MS pyrimidinediamine (m/e) : 446 (MH+). 'H NMR (DMSO-d6) : d 9. 62-9. 68 (m, 2H), 8. 19 (d, J= 3. 6 Hz, 1H), N2- (3, 5-Dichlorophenyl)-N4- [3, 4- 7. 92-7. 88 (m, 1 H), 7. 71 (s, 1 H), 7. 70 (s, 1 H), 7. 38-7. 33 (m, 2H), 7. 00 565 (difluoromethylenedioxy) phenyl]-5-fluoro-2, 4- pyrimidinediamine (to J= 1. 8 Hz, 1H) ; 19F NMR (282 MHz, DMSO-d6) :-49. 51,-162. 64 ; pyrimidinediamine LCMS : purity : 99% ; MS (m/e) : 430 (MH+). N2- (4-Chloro-3, 5-dimethylphenyl)-N4- [3, 4-'H NMR (DMSO-d6) : d 9. 84 (s, 1 H), 9. 51 (s, 1 H), 8. 18 (s, J= 2. 7 Hz, 566 (difluoromethylenedioxy) phenyl]-5-fluoro-2, 4- 1 H), 7. 99 (bs, 1 H), 7. 41-7. 35 (m, 4H), 2. 22 (s, 6H) ; LCMS : purity : 94% ; pyrimidinediamine MS (m/e) : 424 (MH+). 'H NMR (DMSO-d6) : d 9. 57 (s, 1H), 9. 14 (s, 1H), 8. 58 (bs, 1H), 8. 05 N2- (3-Chloro-4-hydroxy-5-methylphenyl)-N4- [3, 4- (d, J=3. 9 Hz, 1H), 7. 90 (s, 1 H), 7. 44 (d, J= 1. 8 Hz, 1 H), 7. 31 (dd, J= 567 (difluoromethylenedioxy) phenylj-5-fluoro-2, 4- 1. 8 and 8. 7 Hz, 1H), 7. 26 (d, J= 8. 4 Hz, 1H), 7. 14-7. 09 (m, 1H), 2. 06 pyrimidinediamine (s, 3H) ; 19F NMR (282 MHz, DMSO-d6) :-49. 60, 'H NMR (DMSO-d6) : d 9. 60 (s, 1H), 9. 56 (s, 1H), 8. 17 (d, J= 3. 3 Hz, 568 N4- [3, 4- (Difluoromethylenedioxy) phenyl]-5-fluoro-N2- (3- I H), 8. 00 (s, 1H), 7. 66 (s, 1H), 7. 52 (s, 1H), 7. 41-7. 31 (m, 2H), 6. 72 (s, 56S methoxy-5-trifluoromethylphenyl)-2, 4-pyrimidinediamine 1 H), 3. 74 (s, 3H) ; 19F NMR (282 MHz, DMSO-d6) :-49. 75,-61. 96,- 162. 93 ; LCMS : purity : 93% ; MS (m/e) : 459 (MH+). 'H NMR (DMSO-d6) : d 9. 66 (s, 1H), 9. 59 (s, 1 H), 8. 19 (d, J= 3. 6 Hz, 569N4- |N4-[3, 4-(Difluoromethylenedioxy) phenyl]-5-fluoro-N2-(3-1H), 8. 04-7. 97 (m, 1H), 7. 84 (bs, 1H), 7. 68 (bs, 1H), 7. 36 (bs, 2H), 56S + methyl-5-trifluoromethylphenyl)-2, 4-pyrimidinediamine 7. 03 (s, 1H), 2. 29 (s, 3H) ; 19F NMR (282 MHz, DMSO-d6) :-49. 63,- 61. 86,-163. 10 ; LCMS : purity : 98% ; MS (m/e) : 443 (MH I 'H NMR (DMSO-d6) : d 11. 56 (s, 1H), 9. 63 (s, 1H), 9. 34 (s, 1H), 8. 44- 570 N4- [3, 4- (Difluoromethylenedioxy) phenyl]-5-fluoro-N2- [2- (N- 8. 38 (m, 1H), 8. 12 (d, J= 3. 6 Hz, 1H), 7. 97 (bs, 1H), 7. 84-7. 78 (m, 1H), + methylamino) carbonylindol-7-yl]-2, 4-pyrimidinediamine 7. 38-7. 32 (m, 1H), 7. 26 (d, J= 9. 0 Hz, 1H), 7. 20 (d, J= 8. 1 Hz, 1H), 7. 00 (s, 1H), 6. 87 (t, J= 7. 8 Hz, 1H), 2. 74 ( LL) LU LLJ Upon Leu ¢ ° CHMC, CHMC, CHMC, Ilpt . .,.. a a s i we 4 117a mu. r. lt 6t. >. u, n,, , -r < w. m T tase T ta t se T ase f s k 1, r r rYP rYP . a r n v H r' ; t n H2\ 4t UC' ? A". CHM . a _, _, f, C CHMC CHMC 11 t P v' w v d I E 3 t I E 8 t lono 3 t P G g . P r, i H NMR (DMSO-d6) : d 9. 28 (s, 1H), 9. 03 (s 1H) 8. 15-8. 07 (m, 1H), N4- (3-Chloro-4-methoxyphenyl)-N2- [3, 5-dimethyl-4- (N- 8. 05 (d, J=3. 3Hz 1H) 7. 76-7. 72 (m, 2H), 7. 68-7. 60 (m, 1H), 7. 23 (s, 571 methylamino) carbonylmethyleneoxyphenyl]-5-fluoro-2, 4- + + pyrimidinediamine 2H), 7. 09 (d, J= 9. 0 Hz, 1 H), 4. 10 (s, 2H), 3. 83 (s, 3H), 2. 69 (d, J= 4. 2 pynmldlnedlamlne Hz, 3H), 2. 11 (s, 6H) ; LCMS : purity : 99% ; 'H NMR (DMSO-d6) : d 9. 08 (s, 1H), 8. 95 (s, 1H), 8. 14-8. 06 (m, 1H), N2- [3, 5-dimethyl-4- (N- 8. 00 (d, J=3. 6Hz 1H) 7. 23-7. 25 (m, 3H), 7. 20-7. 14 (m, 1 H), 6. 78 (d, 572 methylamino) carbonylmethyleneoxyphenyl]-N4- (3, 4- + + J= 8. 7 Hz, 1 H), 4. 21 (s, 4H), 4. 11 (s, 2H), 2. 69 (d, J= 4. 5 Hz, 3H), 2. 13 ethylenedioxyphenyl)-5-fluoro-2, 4-pyrimidinediamine (s, 6H) ; LCMS : purity : 99% ; MS (m/e) : 454 1 'H NMR (DMSO-d6) : d 9. 20 (s, 1H), 9. 01 (s, 1H), 8. 14-8. 05 (m, 2H), N4-(3 5-Dimethoxyphenyl)-N2-[3 5-dimethyl-4-(N- 7. 29 (s, 2H), 7. 00-6. 96 (m, 2H), 6. 24-6. 19 (m, 1H), 4. 11 (s, 2H), 3. 67 573 methylamino) carbonylmethyleneoxyphenyl]-5-fluoro-2, 4- + + pyrimidinediamine (s, 6H), 2. 70 (d, J= 4. 8 Hz, 3H), 2. 12 (s, 6H) ; LCMS : purity : 99% ; MS pyrimidinediamine (m/e) : 456 (MH+). 'H NMR (DMSO-d6) : d 10. 59 (s, 1H), 9. 32 (s, 1H), 8. 95 (s, 1H), 8. 11- N2- [3, 5-dimethy)-4- (N- 8. 06 (m 1 H) 8. 04 (d, J= 3. 9 Hz, 1 H), 7. 34-7. 23 (m, 3H), 7. 21-7. 18 (m, 574 methylamino) carbonylmethyleneoxyphenyl]-N4- (2, 2-dimethyl- + + 1H), 6. 87 (d, J=9. 0 Hz, 1H), 4. 10 (s, 2H), 2. 69 (d, J=4. 8 Hz, 3H), 2. 11 3-oxo-4H-benz [1, 4] oxaz 4-pyrimidinediamine (s, 6H), 1. 40 (s, 6H) ; LCMS : purity : 95% ; 'H NMR (DMSO-d6) : d 9. 15 (s, 1H), 8. 96 (s, 1H), 8. 12-8. 05 (m, 1H), N2- [3, 5-dimethyl-4- (N- l 8. 01 (d J= 3. 9 Hz, 1 H), 7. 44-7. 40 (m 1 H) 7. 25 (s 2H) 7. 15-7. 07 (m 575 methylamino) carbonylmethyleneoxyphenyl]-5-fluoro-N4-(3 4-l l l l l l + + l 1 H), 6. 84 (d, J= 8. 1 Hz, 1 H), 5. 98 (s, 2H), 4. 11 (s, 2H), 2. 69 (d, J= 4. 8 methylenedioxyphenyl)-2, 4-pyrimidinediamine Hz, 3H), 2. 13 (s, 6H) ; LCMS : purity : 99% ; 1H NMR (DMSO-d6) : d 8. 17 (d, J= 2. 7 Hz, 1H), 8. 14 (d, J=5. 4 Hz, 576 2-Chloro-5-fluoro-N4-(2-isopropoxypyrid-5-yl)-N4-methyl-4-1 H), 7. 74 (dd, J= 2. 7 and 8. 7 Hz, 1 H), 6. 77 (dd, J= 0. 6 and 8. 7 Hz, 576 pyrimidineamine 1 H), 5. 21 (quintet, J= 6. 3 Hz, 1 H), 3. 38 (s, 3H), 1. 29 (d, J= 6. 3 Hz, 6H) ; LCMS : purity : 95% ; MS (m/e) : 298 (MH+). 1 H NMR (DMSO-d6) : d 7. 95 (d, J= 5. 7 Hz, 1 H), 7. 46 (d, J= 2. 7 Hz, 577 N4-(3-Chloro4-methoxyphenyl)-N2-(3, 5-dimethoxyphenyl)-5-1 H), 7. 28 (dd, J= 2. 4 and 9. 0 Hz, 1 H), 7. 13 (d, J= 9. 0 Hz, 1 H), 6. 98 (s, + fluoro-N4-methyl-2, 4-pyrimidinediamine 1H), 6. 97 (s, 1H), 6. 09-6. 06 (m, 1H), 3. 86 (s, 3H), 3. 69 (s, 6H), 3. 44 (s, 3H) ; LCMS : purity : 96% ; MS (m/e) : 419 (MH+ ;,, _-_- CHMC, CHMC, CHMC, llpt .......... .... .....-. : : : : m. : : : : :.. :. : .. : ». : : : : :, :. : : ;. :,. :.- : : : : : : : :. : : x.. :.. ;."., " ; ;. : :...... ., x.. :.... c......... _v, kx......... _. x, xe.. v :. Y.. ? Ye :.... _. CHMC, CHMC, CHMC 11 t : -, I E 3 t I E 8 t lono 3 t 1 H NMR (DMSO-d6) : d 9. 41 (s, 1H), 7. 99 (d, J= 6. 3 Hz, 1H), 7. 69 (d, 57 |N2-(3-Chloro-4-methoxy-5-methylphenyl)-N4-(3-chloro-4-IJ= 2. 7 Hz, 1 H), 7. 47 (d, J= 2. 4 Hz, 1 H), 7. 36 (d, J= 1. 8 Hz, 1 H), 7. 28 578 + methoxyphenyl)-5-fluoro-N4-methyl-2, 4-pyrimidinediamine (dd, J= 2. 7 and 8. 7 Hz, 1 H), 7. 14 (d, J= 8. 7 Hz, 1 H), 3. 87 (s, 3H), 3. 68 (s, 3H), 3. 42 (s, 3H), 2. 19 (s, 3H) ; LCMS :. "1H NMR (DMSO-d6) : d 9. 24 (s, 1H), 8. 16-8. 04 (m, 1H), 7. 96 (d, J= 11H NMR (DMSO-d6) : d 9. 24 (s, 1H), 8. 16-8. 04 (m, 1H), 7. 96 (d, J= N4- (3-Chloro-4-methoxyphenyl)-N2- [3, 5-dimethyl-4.- (N- 6. 0 Hz, 1 H), 7. 47 (d, J= 2. 4 Hz, 1H), 7. 31-7. 24 (m, 3H), 7. 15 (d, J= 8. 7 579 methyiam ! no) carbony ! methy ! eneoxyphenyt]-5-fuoro-N4- + 579 methylamino) carbonylmethyleneoxyphenyl]-5-fluoro-N4- Hz, 1 H), 4. 12 (s, 2H), 3. 87 (s, 3H), 3. 42 (s, 3H), 2. 69 (d, J= 4. 8 Hz, methyl-2, 4-pyrimidinediamine methyl-2, 4-pyrimidlnedlamlne 3H), 2. 15 (s, 6H) ; LCMS : purity : 92% ; MS (m/e 1H NMR (DMSO-d6) : d 9. 63 (bs, 1H), 8. 02 (d, J= 6. 3 Hz, 1H), 8. 00- N4- (3-Chloro-4-methoxyphenyl)-N2- [3- (N- 7. 97 (m, 1 H), 7. 50 (d, J= 2. 7 Hz, 1H), 7. 36-7. 34 (m, 1H), 7. 33-7. 20 (m, 580 methy) amino) carbony ! methy ! eneoxypheny !]-5-f) uoro-N4- + 580 methylamino) carbonylmethyleneoxyphenyl]-5-fluoro-N4- 3H), 7. 16 (d, J= 9. 0 Hz, 2H), 6. 57-6. 52 (m, 1H), 4. 41 (s, 2H), 3. 87 (s, methyl-2, 4-pyrimidinediamine 3H), 3. 44 (s, 3H), 2. 64 (d, J= 4. 8 Hz, 3H) ; L 1H NMR (DMSO-d6) : d 9. 47 (bs, 1H), 8. 14 (d, J= 2. 7 Hz, 1H), 7. 99 (d, 581 N2- (3, 5-Dimethoxyphenyl)-5-fluoro-N4- (2-isopropoxypyrid-5- J= 6. 0 Hz, 1H), 7. 71 (dd, J= 3. 0 and 8 ; 7 Hz, 1H), 6. 96-6. 93 (m, 2H), 581 + yl)-N4-methyl-2, 4-pyrimidinediamine 6. 77 (dd, J= 0. 6 and 8. 7 Hz, 1H), 6. 12 (t, J= 2. 1 Hz, 1H), 5. 21 (quintet, J= 6. 3 Hz, 1 H), 3. 70 (s, 6H), 3. 45 (s, 3H) 1H NMR (DMSO-d6) : d 9. 53 (s, 1H), 8. 14 (s, 6H), 3. 45 (s, 3H) 5-Fluoro-N4- (2-isopropoxypyrid-5-yl)-N4-methyl-N2- [3- (N-. 7. 93 (m, 2H), 7. 70 (dd, J= 2. 7 and 8. 7 Hz, 1H), 7. 37 (t, J= 2. 1 Hz, 1 H), . 582 methylamino) carbonylmethyleneoxyphenyl]-2, 4- + _ 7. 26-7. 20 (m, 1H), 7. 13 (t, J= 8. 1 Hz, 1H), 6. 78 (d, J= 8. 7 Hz, 1H), pyrimidinediamine 6. 56-6. 50 (m, 1H), 5. 22 (quintet, J= 6. 0 Hz, 1H) 1H NMR (DMSO-d6) : d 9. 42 (s, iH), 8. 14 (d, J= 2. 7 Hz, 1H), 8. 01 (d, 583 N2- (3, 5-Dimethylphenyl)-5-fluoro-N4- (2-isopropoxypyrid-5-yl)- J= 6. 6 Hz, 1H), 3. 45 (s, 3H), 2. 19 (s, 6H), 1. 29 (d, J= 6. 3 Hz, 6H), 7. 70 583 t _, +, | | N4-methyl-2, 4-pyrimidinediamine (dd, J= 2. 7 and 8. 7 Hz, 1 H), 7. 24 (s, 2H), 6. 77 (d, J= 8. 4 Hz, 1 H), 6. 57 (s, 1H), 5. 22 (quintet, J= 6. 3 Hz, 1H) ; 1H NMR (DMSO-d6) : d 9. 09 (s, 1H), 7. 94 (d, J= 6. 0 Hz, 1H), 7. 45 (d, 584 N4- (3-Chloro-4-methoxyphenyl)-N2- (3, 5-dimethylphenyl)-5- J= 2. 1 Hz, 1H), 7. 31-7. 23 (m, 3H), 7. 13 (d, J= 9. 0 Hz, 1H), 6. 51 (s, 584 + fluoro-N4-methyl-2, 4-pyrimidinediamine 1H), 3. 86 (s, 3H), 3. 42 (s, 3H), 2. 18 (s, 6H) ; LCMS : purity : 88% ; MS (m/e) : 387 (MH+). ...... L. U ,. : ; f LU by, i. n , ra fr .. U , , ^ 4 a " (., a, o ; . , d . P', N., :.,... n ; t.., a. u : s . . , w , ; 1lilfri61 T _. nw. = r9li. , J.. T tase T t 2 :, ase T tase f s k Y rYP rYP YP, P_ Y 4UrtdNtliG-9, a. u4. el, i. l CHMC'C HMC'CHMC 11 t i r '. P i i tm J 1 f u IE t ua m, _ 3 I E 8 t 100 3 t 9 P 9 P, P w n 1H NMR (DMSO-d6) : d 9. 45 (s, 1H) 8. 16 (d J= 1. 8 Hz 1H) 8. 05 (d, N4-(3-Chloro-4-methoxyphenyl)-5-fluoro-N2-(2- J= 6. 0 Hz, 1 H), 7. 68 (dd, J= 2. 1 and 9. 0 Hz, 1 H), 7. 65 (d, J= 0. 9 Hz, 585 methoxycarbonylbenzofuran-5-yl)-N4-methyl-2, 4--- 1 H), 7. 63-7. 57 (m, 1 H), 7. 54 (d, J= 2. 7 Hz, 1 H), 7. 35 (dd, J= 2. 7 and pyrimidinediamine 8. 7 Hz, 1 H), 7. 23 (d, J=8. 7 Hz, 1 H), 3. 95 (s, 1H NMR (DMSO-d6) : d ; 9. 39 (s, 1H), 8. 13 (d, J= 2. 4 Hz, 1H), 8. 09 (d, 5-Fluoro-N4-(2-isopropoxypyrid-5-yl)-N2-(2- J=1. 8 Hz, 1 H), 7. 98 (d, J= 6. 3 Hz, 1 H), 7. 70 (dd, J= 3. 0 and 8. 7 Hz, 586 methoxycarbonylbenzofuran-5-yl)-N4-methyl-2, 4- + + 1 H), 7. 64-7. 57 (m, 2H), 7. 54 (d, J= 8. 7 Hz, 1 H), 6. 79 (d, J= 8. 7 Hz, pyrimidinediamine 1 H), 5. 22 (quintet, J= 6. 3 Hz, 1 H), 3. 87 (s, 1 H NMR (DMSO-d6) : d 9. 44 (bs, 1 H), 8. 03 (d, J= 6. 0 Hz, 1 H), 7. 40 (d, 587 N4-(4-Chloro-3-methoxyphenyl)-N2-(3, 5-dimethoxyphenyl)-5-J= 8. 1 Hz, 1 H), 7. 15 (d, J= 2. 1 Hz, 1 H), 6. 95 (d, J= 1. 2 Hz, 2H), 6. 90 + + fluoro-N4-methyl-2, 4-pyrimidinediamine (dd, J= 2. 1 and 8. 4 Hz, 1 H), 6. 12-6. 08 (m, 1 H), 3. 82 (s, 3H), 3. 69 (s, 6H), 3. 49 (s, 3H) ; LCMS : purity : 96% ; MS (m 1 H NMR (DMSO-d6) : d 9. 35 (bs, 1 H), 8. 03 (d, J= 6. 0, 1 H), 7. 41 (d, J= 588 N4- (4-Chloro-3-methoxyphenyl)-N2- (3, 5-dimethylphenyl)-5- 8. 4, 1 H), 7. 26-7. 23 (m, 2H), 7. 16 (d, J= 2. 4 Hz, 1 H), 6. 90 (dd, J= 2. 1 + fluoro-N4-methyl-2, 4-pyrimidinediamine and 8. 7 Hz, 1H), 6. 58-6. 55 (m, 1H), 3. 82 (s, 3H), 3. 49 (s, 3H), 2. 19 (s, 6H) ; LCMS : purity : 91% ; MS (m/e) : 387 (MH+ 1 H NMR (DMSO-d6) : d 9. 34 (s 1 H) 8. 00 (d, J= 5. 4 1 H) 7. 93-8. 00 N4- (4-Chloro-3-methoxyphenyl)-5-fluoro-N4-methyl-N2- [3- (N- (m 1H) 7 44 (t, J= 1. 8 Hz, 1 H), 7. 39 (d, J= 8. 4 Hz, 1 H), 7. 26 (dd, J= 589 methylamino) carbonylmethyleneoxyphenyl]-2, 4- + + _ 1. 2 and 8. 4 Hz, 1 H), 7. 15-7. 12 (m, 1 H), 7. 09 (d, J= 8. 4 Hz, 1 H), 6. 87 pyrimidinediamine (dd, J= 2. 1 and 9. 0 Hz, 1 H), 6. 47 (dd, J= 2. 7 1 H NMR (DMSO-d6) : d 10. 84 (s, 1 H), 9. 010 (s, 1 H), 7. 96 (d, J= 5. 4 590 N4-(4-Chloro-3-methoxyphenyl)-5-fluoro-N2-(indol-5-yl)-N4-Hz , 1H), 7. 87-7. 84 (m, 1H), 7. 39 (d, J= 8. 1 Hz, 1H), 7. 27-7. 19 (m, 3H), methyl-2, 4-pyrimidinediamine 7. 12 (d, J= 2. 1 Hz, 1H), 6. 87 (dd, J= 2. 4 and 8. 7 Hz, 1H), 6. 29-6. 25 (m, 1 H), 3. 82 (s, 3H), 3. 47 (s, 3H) ; LCMS : puri 1H NMR (DMSO-d6) : d 9. 51 (bs, 1H), 8. 03 (d, J= 6. 0 Hz, 1H), 7. 19 (s, N4- (4-Chloro-3, 5-dimethylphenyl)-N2- (3, 5-dimethoxyphenyl)- 591 2H), 6. 93 (d, J= 1. 8 Hz, 2H), 6. 12 (t, J= 2. 4 Hz, 1H), 3. 70 (s, 6H), 3. 46 + + 5-fluoro-N4-methyl-2, 4-pyrimidinediamine (s, 3H), 2. 32 (s, 6H) ; LCMS : purity : 98% ; MS (m/e) : 418 (MH+). 1H NMR (DMSO-d6) : d 9. 49 (bs, 1 H), 8. 04 (d, J= 6. 0 Hz 1H) 7. 24 (s, N4- (4-Chloro-3, 5-dimethylphenyl)-N2- (3, 5-dimethylphenyl)-5- 592 2H), 7. 20 (s, 2H), 6. 60 (s, 1H), 3. 45 (s, 3H), 2. 32 (s, 6H), 2. 19 (s, 6H) ; fluoro-N4-methyl-2, 4-pyrimidinediamine LCMS : purity : 98% ; MS (m/e) : 386 (MH+). r'-ss H'"''.-.- pp==-i--'LU- ....,, . =5. 4Hz, ''" \232 (s, 6t-'),.'- t J,---- ) ----- K. uoro-N2- -, n\ 3 45 (s, 3n).'-" -T 3-7-44 (t, 2-1"Z'2. 4, d 7 7. 92 r, 47 (dd, -2, 4- 7. 10 (t, J= 8. 1 (d 4. 5 Hz, 3H), 2. 32 j= 5. 7 117, N4- (4-Chi0fo-3 i. neoxyphenyll 3. 44 (s 3H), 2-64. 98 (s, 1 17. 9 O) carbonYlmethy 1 1 j= : 2. 1"Z' 3 (N-mettlylamin iH-d d 10. 84 (5, VA. 26 (t , (DMSO 59 Nm, (DMSO d 1. 7 15 (s, 2H ,, ri, Slnedlaftflne 7 84 (s, IH), 7-29-7. 19 (M'3 94,-/- ; MS (M'e)" ,)-,-t, ofo-N2- (Indol-5-yi)-N4- 2. 32 (s, 6H) , L SPu'ty" 3 5-d ! Methy'Ph'ny ivi), 3. 42 (s, 3"), 17 1. 8 Hz, iH), 8. 0' (61 594 t44- (4, Chloro-.'midinediamine. 43 (s, 1"), 8-iH), 7. 17 ks, n, ettlyi-2, 4-p) f' (D So-d6),. d. 3 Viz 97o/o ; MS nyl)-5-'RLIOIO-t42- (2- 5. 4 Vi 3, 45 (s, 3B), 2. 32 (s, 6Vi), LCMS 3 5-dimethylPt'e-2, 4 3. 87 ks, 3B), go Hz, iVi), 8. 04 (d, r''--6 : 5--T'ss=G ! ==U L---. ---r MtC. M M '"'l--6nTS'' AJ4 - rT-' L--- LJ- tlEI --i 6000 H).--- L, thy'p----' N4- (4-C-2, 4-PYr. Imidinediamine 425 (MH+)--d : d 9. 64 (s, lt4), iH), 7-19 597 (Oxazol_5_yl) phenyll iB MR (I) MSO z, 2H), 7. 57 (d, j-8'7 Hz, 2H), 7. 49 (s, . 960/. MS (rnle)' j-8-7 ol I_N2_i4_ 1H), 7. 76 (d, 6H) ;-cms. puftty. -cvloro-3, 5-6, methyll) tlenyt)-5-tluOro-N4-ni (S, 2VA), 3. 46 (S'3VA), 2. 32 (s, 9. 58 (b 8. (30 (d, 3= 6-0 N4- (4 _5_,,),,,,,,,-2, 4-PYr-imidinedlafline 425 (MH+)- So-d6)-. d I 1. 0. 24-7*18 (m,. 3H), 7-1 598 (oxa7Ot iB NMR (D 9 (s I H), 7. 41 (d, j= 8. 4 H7, 3. 47 (s, 3"), 2. 33 (s, _6) fl) 5t44- H7, i H), 7-8, I, B) 6. 35-6. 31 (m, tt, yiphen, yl)-5-tILIOI-N2- (Indol (dd, j= i. B and a. 4 111, AS (rnie)- 397 (MH+)- B. 18 (d =4. 2 . 18 (d 3 5-dime gurity., 951/o ; (_s, IH),. 18 (d 599 N4- (4-ChlOtO-'ne6lafffine 6H)"LCMS'd 9, 94 (bs, ili), 9. 6 Hz, I Vi), 7. 66 (dd, J= 2-7 methYl-214-gyfirnidt iti 14M (D 1B), 7. 74 (d, Jz 2-). 64 (5, Hz, 7. 93-7-84 (m, 2H), 6. 99 d, J= 9. 0 VZ, ,, 4-13-chloro-4- (N- henYll-N2- (3, 5- and 9. Hz, I H), 7. 12 (s, 4. 8 Viz, 3H), 2-18 (S' 6 () o imetVlylarnino) carbcnylme"'y'eneoxYP 4. 55 (s, 2H), 2. 66 (d, J , uo, o-2, 4-PY6ml6lned : lafytne dimettlylphen) fl)-5- 141 hd Tryptase, Tryp tase, Tryptase, fp__pyk, 6MOo'und N me Pt CHMC, CHMC, CHMC, Ilpt IgF, 3pt IgE, 8pt lono, 3pt 1HNMR (DMSO-d6) : d 9. 52 (bs, 1H), 9. 30 (bs, 1H), 8. 11 (d, J= 3. 9 N4-[3-Chloro-4-(N- Hz 1H) 7. 92-7. 85 (m 1H) 7. 79 (d J=2. 4Hz 1H) 7. 74 (dd J=2. 7 Hz, 1 H), 7. 92-7. 85 (m, 1 H), 7. 79 (d, J= 2. 4 Hz, 1 H), 7. 74 (dd, J= 2. 7 601 methy ! amino) carbony ! methy ! eneoxypheny !]-N2- (3, 5- + +- and8. 7Hz, 1H), 6. 96 (d, J=9. 0Hz, 1H), 6. 85 (d, J= 1. 8 Hz, 2H), 6. 10 dlmethoxylphenyl)-5-fluoro-2 4-pynmidinedlamlne (t, J= 2. 4 Hz, 1 H), 4. 54 (s, 2H), 3. 64 (s, 6H) 1H NMR (DMSO-d6) : d 9. 45 (bs, 1 H), 9. 25 (bs, 1H), 8. 03 (d, J= 3. 3 N2-(3-Chloro-4-methoxyphenyl)-N4-[3-chloro-4-(N- Hz, 1 H), 7. 86-7. 78 (m 1 H) 7. 70 (d, J= 2. 4 Hz, 1 H), 7. 64 (d J= 2. 4 Hz 602 1H), 7. 86-7. 78 (m, 1H), 7. 70 (d, J= 2. 4 Hz, 1H), 7. 64 (d, J= 2. 4 Hz, 602methyiamino) carbony ! methy ! eneoxypheny !]-5-f] uoro-2, 4- + +- 1 H), 7. 58 (dd, J= 2. 7 and 9. 3 Hz, 1 H), 6. 96 (d, J= 9. 3 Hz, 1 H), 6. 93 (d, pyr ! m ! dined ! am ! ne J= 9. 3 Hz, 1 H), 4. 48 (s, 2H), 3. 73 (s, 3H) 1 H NMR (DMSO-d6) : d 9. 45 (bs, 1 H), 9. 2=8 (bs, 1 H), 8. 11 (d, J= 3. 9 Hz, 1 H), 7. 92-7. 87 (m 1 H) 7. 75 (d, J= 2. 4, 1 H) 7. 68 (dd J= 2. 7 and Hz, 1 H), 7. 92-7. 87 (m, 1H), 7. 75 (d, J= 2. 4, 1H), 7. 68 (dd, J= 2. 7 and 603 methylamino) carbonylmethyleneoxyphenyl]-5-fluoro-2, 4- +-- 9. 3 Hz, 1H), 7. 40 (s, 2H), 6. 99 (d, J= 8. 7 Hz, 1H), 4. 54 (s, 2H), 2. 67 (d, pyrimidinediamine J= 4. 2 Hz, 3H), 2. 22 (s, 6H), ; LCMS : pur 1H NMR (DMSO-d6) : d 9. 42 (s, 1H), 8. 46-8. 43 (m, 1H), 8. 39-8. 37 (m, N4- (4-Ch ! oro-3, 5-d ! methyipheny !)-5-f] uoro-N4-methy !-N2- [4- 1 H), 8. 00 (d, J= 5. 4 Hz, 1 H), 7. 73 (d, J= 9. 0 Hz, 2H), 7. 62 (d, J= 9. 0 + 604 + (oxazol-4-yl) phenyl]-2, 4-pyrimidinediamine Hz, 2H), 7. 17 (s, 2H), 3. 45 (s, 3H), 2. 32 (s, 6H) ; LCMS : purity : 96% ; MS (m/e) : 424 (MH+). 1H NMR (DMSO-d6) : d 10. 80 (s, 1H), 9. 26 (s, 1H), 9. 07 (s, 1H), 8. 06 (s J=3. 9Hz 1H) 7. 93-7. 75 (m 4H) 7. 36 (d J=8. 4Hz 1H) 7. 22- (s, J= 3. 9 Hz, 1H), 7. 93-7. 75 (m, 4H), 7. 36 (d, J= 8. 4 Hz, 1H), 7. 22- 605 methylamino) carbony ! methyleneoxyphenyl]-5-fluoro-N2- (indol!- + +- 7. 15 (m, 2H), 6. 95 (d, J= 8. 7 Hz, 1H), 6. 33-6. 27 (m, 1H), 4. 54 (s, 2H), 6-yl)-2 4-pynmldlnedlamlne 2. 67 (d, J= 4. 2 Hz, 3H) ; LCMS : purity : 96% ; M 1H NMR (DMSO-d6) : d 9. 44 (s, 1H), 8. 44 (d, J= 0. 90 Hz, 1 H), 8. 38 (dol- N4- (4-Ch ! oro-3-methoxypheny))-5-fiuoro-N4-methy !-N2- [4- J= 0. 90 Hz, 1 H), 8. 02 (d, J= 5. 7 Hz, 1 H), 7. 73 (d, J= 8. 7 Hz, 2H), 7. 63 (oxazol-4-yl) phenyl]-2, 4-pyrimidinediamine (d, J= 8. 7 Hz, 2H), 7. 41 (d, J= 8. 4 Hz, 1H), 7. 14 (d, J= 2. 4 Hz, 1H), 6. 92-6. 86 (m, 1H), 3. 83 (s, 3H), 3. 49 (s, 3 1H NMR (DMSO-d6) : d 9. 70 (bs, 2H), 8. 23-8. 18 (m, 1H), 8. 15 (d, J= N4- (4-Chforo-3-methoxypheny !)-N2- [4-chbro-3- (N- 4. 2 Hz, 1 H), 7. 71 (d, J= 2. 7 Hz, 1 H), 7. 54 (dd, J= 2. 7 and 9. 0 Hz, 1H). methy ! amino) carbonypheny !]-5-f ! uoro-2, 4-pyrirn ! d ! ned ! arn ! ne 7. 45 (dd, J= 2. 4 and 8. 7 Hz, 1 H), 7. 35 (d, J= 2. 4 Hz, 1 H), 7. 28 (d, J= 8. 7 Hz, 1 H), 7. 24 (d, J= 9. 0 Hz, 1 H), 3. 73 (s I t + f-'"=0f""< 0 tVr t t se, ßpbse, T pt s ;, íp_s k, 1H NMR (DMSO-d6) : d 9. 53 (bs, 1H), 9. 49 (bs, 1H) 8. 28-8. 21 (m, . Tryptase, Tryptase, Tryptase, fp __pyr, N4- [3-Ch ! oro-4- (N- '-,''CHMC, CHMC, CHMC, llpt IgE, 3pt IgE, 8pt lono, 3pt 1H), 8. 13 (d, J= 3. 9 Hz, 1H), 7. 93-7. 87 (m, 1H), 7. 77-7. 64 (m, 4H), 608 methy ! amino) carbony ! methy ! eneoxypheny !]-N2- [4-choro-3- (N- + 7. 28 (d, J= 8. 7 Hz, 1 H), 6. 98 (d, J=9. 0Hz, 1H), 4. 59 (s, 2H), 2. 70 (d, methy ! amino) carbony) pheny !]-5-f) uoro-2, 4-pyr ! m ! d ! nediamine J= 4. 8 Hz, 3H), 2. 67 (d, J= 4. 5 Hz, 3H) ; LCMS : pu 1H NMR (DMSO-d6) : d 9. 84 (s, 1H), 9. 59 (s, 1 H), 8. 35-8. 27 (m, 2H), N2- [4-Ch ! oro-3- (N-methyfam ! no) carbony ! pheny)]-N4- (4-ch ! oro- 8. 23 (d, J= 3. 9 Hz, 1 H), 8. 06 (d, J= 2. 7 Hz, 1 H), 7. 75 (d, J= 2. 4 Hz, + + 3-trifluoromethylphenyl)-5-fluoro-2, 4-pyrimidinediamine 1 H), 7. 67-7. 60 (m, 2H), 7. 29 (d, J= 9. 0 Hz, 1 H), 2. 71 (d, J= 4. 5 Hz, 3H) ; LCMS : purity : 92% ; MS (m/e) : 475 (MH+). 1H NMR (DMSO-d6) : d 9. 55 (s 1H) 8. 30-8. 24 (m 1H) 8. 01 (d J= 1H NMR (DMSO-d6) : d 9. 55 (s, 1H), 8. 30-8. 24 (m, 1H), 8. 01 (d, J= N4- (4-Ch ! oro-3, 5-dimethy ! phenyf)-N2- [4-ch ! oro-3- (N- 610 6 Hz, 1H), 7. 86 (d, J= 2. 7 Hz, 1H), 7. 68 (dd, J= 2. 7 and 9. 0 Hz, I H), 610methy ! arn ! no) carbonybheny !]-5-f) uoro-N4-methy !-2, 4- 7. 27 (d, J= 8. 7 Hz, 1 H), 7. 16 (s, 2H), 3. 42 (s, 3H), 2. 72 (d, J= 4. 5 Hz, pyrimidinediamine 3H), 2. 32 (s, 6H) ; LCMS : purity : 98% ; MS (m/ 1H NMR (DMSO-d6) : d 9. 57 (s, 1H), 9. 54 (s, 1H), 8. 19 (d, J= 3. 6 Hz, N4- (4-Ch ! oro-3-methoxyphenyf)-N2- [3-ch ! oro-4- (N- 1H), 8. 15-8. 08 (m, 1H), 7. 93 (d, J=2. 1 Hz, 1H), 7. 51 (dd, J= 2. 4 and 611 + + methylamino) carbony) pheny !]-5-f) uoro-2, 4-pyrimid ! nediamine 8. 7 Hz, 1 H), 7. 47 (dd, J= 2. 45 and 8. 7 Hz, 1 H), 7. 43 (d, J= 2. 1 Hz, 1 H), 7. 34 (d, J= 8. 7 Hz, 1 H), 7. 27 (d, J= 8. 4 Hz 1H NMR (DMSO-d6) : d 9. 83 (s, 1H), 9. 65 (s, 1H), 8. 33-8. 26 (m, 1H), N2- [3-Ch ! oro-4- (N-methym ! no) carbony ! pheny !]-N4- (4-ch ! oro- 8. 25 (d, J= 3. 6 Hz, 1 H), 8. 16-8. 11 (m, 1 H), 8. 06 (d, J= 2. 7 Hz, 1H), 612 + + 3-tr ! f) uoromethy ! pheny !)-5-f ! uoro-2, 4-pyr ! midined ! am ! ne 7. 87 (d, J= 1. 8 Hz, 1 H), 7. 66 (d, J= 8. 7 Hz, 1 H), 7. 52 (dd, J= 1. 8 and 8. 4 Hz, 1H), 7. 28 (d, J= 8. 4 Hz, 1H), 2. 72 (d, 1H NMR (DMSO-d6) : d 9. 66 (s 1H) 8. 17-8. 09 (m 1H) 8. 05 (d J= 1H NMR (DMSO-d6) : d 9. 66 (s, 1H), 8. 17-8. 09 (m, 1H), 8. 05 (d, J= 5. 4 Hz 1 H) 7. 94 (d J= 2. 1 Hz 1 H) 7. 54 (dd J= 2. 1 and 8 4 Hz 1 H) 5. 4 Hz, 1H), 7. 94 (d, J= 2. 1 Hz, 1H), 7. 54 (dd, J= 2. 1 and 8. 4 Hz, 1H), 613methy ! am ! no) carbony ! pheny []-5-f) uoro-N4-methy !-2, 4- + 7. 28 (d, J=8. 1Hz, 1H), 7. 18 (s, 2H), 3. 44 (s, 3H), 2. 71 (d, J= 4. 5 Hz, yrimidinediamlne 3H), 2. 32 (s, 6H) ; LCMS : purity : 99% ; MS (m/ 1H NMR (DMSO-d6) : d 10. 28 (s, 1H), 10. 05 (s, 1H), 8. 26 (d, J=4. 8 N4- [3-Chbro-4- (methoxycarbony !) methy ! eneoxypheny-N2- Hz, 1 H), 7. 74 (d, J= 2. 7 Hz, 1 H), 7. 57 (dd, J= 2. 7 and 8. 7 Hz, 1 H), + + (3, 5-dimethylphenyl)-5-fluoro-2, 4-pyrimidinediamine 7. 10-7. 01 (m, 3H), 6. 69 (s, 1H), 4. 93 (s, 2H), 3. 70 (s, 3H), 2. 17 (s, 6H) ; LCMS : purity : 98% ; MS (m/e) : 431 (MH+). Tryptose, Tryptase, Tryptase, Tryptase, fpsyk, pil . C [ : NaMe CHMC, CHMC, CHMC, 11 pt Ilk" SHtpM ; NaMe,.. :. :""$SW PctS S. ' : S ! ! Ss& ! CHMC, CHMC, 11pt 1H NMR (DMSO-d6) : d 9. 75 (s, 1H), 9. 53 (s1H), 8. 15 (d, J= 4. 5 Hz, N4- [3-Ch ! oro-4- (methoxycarbonyi) methy ! eneoxypheny !]-N2- 1 H), 7. 80 (d, J= 2. 7 Hz, 1 H), 7. 66 (dd, J= 2. 7 and 9. 0 Hz, 1H), 7. 00 (d, 615 ** (3, 5-dimethoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine J= 9. 0 Hz, 1H), 6. 81 (d, J= 2. 4 Hz, 1H), 6. 14 (t, J= 2. 1 Hz, 1H), 4. 90 (s, 2H), 3. 71 (s, 3H), 3. 64 (s, 6H) ; LCMS : _ 1H NMR (DMSO-d6) : d 9. 63 (s, 1H), 9. 41 (s, 1H), 8. 12 (d, J= 4. 2 Hz, N4- [3-Ch ! oro-4- (methoxycarbony !) methy) eneoxypheny !]-N2- (3-1 H), 7. 76 (d, J= 2. 7 Hz, 1 H), 7. 69 (d, J= 2. 4 Hz, 1 H), 7. 60 (dd, J= 2. 4 ch ! oro-4-methoxypheny !)-5-f) uoro-2, 4-pyrimid ! ned) am ! ne and 9. 0 Hz, 1 H), 7. 44 (dd, J= 2. 7 and 8. 7 Hz, 1 H), 7. 04 (d, J= 8. 7 Hz, 1H), 7. 02 (d, J= 9. 0 Hz, 1H), 4. 90 (s, 2H), 1H NMR (DMSO-d6) : d 9. 64 (s, 1H), 9. 45 (s, 1H), 8. 14 (d, J=4. 2 Hz, N2- (4-Chbro-3, 5-dimethy ! pheny !)-N4- [3-chbro-4- l 1 H), 7. 75 (d J= 2. 4 Hz 1 H) 7. 61 (dd J= 2. 4 and 9. 0 Hz 1 H) 7. 38 (s 1 H), 7. 75 (d, J= 2. 4 Hz, 1 H), 7. 61 (dd, J= 2. 4 and 9. 0 Hz, 1 H), 7. 38 (s, 617 (methoxycarbony)) methy [eneoxyphenyi]-5-f1uoro-2, 4- + + + l 2H), 7. 02 (d, J= 9. 0 HZ, 1 H), 4. 91 (s, 2H), 3. 70 (s, 3H), 2. 21 (s, 6H) ; pyrimidinediamine LCMS : purity : 95% ; MS (m/e) : 465 (M+). 1H NMR (DMSO-d6) : d 10. 86 (s, 1H), 9. 23 (s, 1H), 8. 94 (s, 1H), 8. 03 N4- [3-Ch ! oro-4- (methoxycarbony [) rnethy ! eneoxypheny !]-5- (d, J= 3. 9 Hz, 1 H), 7. 83 (d, J= 2. 4 Hz, 1 H), 7. 79 (s, 1 H), 7. 68 (dd, J= + + f) uoro-N2- ( ! ndo)-5-y !)-2, 4-pyr ! m ! d ! nediam ! ne 2. 4 and 9. 0 Hz, 1 H), 7. 25-7. 21 (m, 3H), 6. 93 (d, J= 9. 0 Hz, 1 H), 6. 27 (t, J= 2. 4 Hz, 1 H), 4. 89 (s, 2H), 3. 71 (s, 3 1H NMR (DMSO-d6) : d 9. 63 (bs, 1H), 9. 34 (bs, 1H), 8. 11 (d, J=4. 2 N4- [3-Ch ! oro-4- (2-hydroxyethyeneoxy) phenyt]-N2- (3, 5- Hz, 1 H), 7. 72 (d, J= 2. 7 Hz, 1 H), 7. 64 (dd, J= 2. 7 and 9. 0 Hz, 1 H), dimethylphenyl)-5-fluoro-2, 4-pyrimidinediamine 7. 12 (d, J= 8. 7 Hz, 1 H), 6. 58 (s, 1 H), 4. 05 (t, J= 5. 1 Hz, 2H), 3. 73 (t, J= 5. 1 Hz, 2H), 2. 16 (s, 6H), ; LCMS : purity : 9 1H NMR (DMSO-d6) : d 9. 29 (s, 1H), 9. 13 (s, 1H), 8. 08 (d, J= 3. 6 Hz, N4- [3-Ch ! oro-4- (2-hydroxyethy ! eneoxy) pheny !]-N2- (3, 5- 1H), 7. 75 (d, J= 2. 7 Hz, 1 H), 7. 71 (dd, J= 2. 7 and 8. 7 Hz, 1 H), 7. 08 (d, dimethoxyphenyl)-5-f] uoro-2, 4-pyrimidinediamine J= 9. û Hz, 1H), 6. 90 (d, J=2. 1 Hz, 2H), 6. 05 (t, J=2. 1 Hz, 1H), 4. 89 (t, J= 5. 1 Hz, 1H), 4. 05 (t, J= 5. 1 Hz, 2H 1H NMR (DMSO-d6) : d 9. 29 (s, 1H), 9. 15 (s, 1H), 8. 06 (d, J= 3. 6 Hz, N4- [3-Ch) oro-4- (2-hydroxyethy ! eneoxy) phenyi]-N2- (3-chtoro-4- 1H), 7. 74 (d, J= 2. 1 Hz, 2H), 7. 63 (dd, J= 2. 7 and 9. 0 Hz, 1 H), 7. 46 621 + + methoxypheny !)-5-f ! uoro-2, 4-pyr ! mid ! nediam ! ne (dd, J= 2. 7 and 9. 0 Hz, 1 H), 7. 10 (d, J= 9. 0 Hz, 1 H), 7. 00 (d, J= 9. 0 Hz, 1 H), 4. 87 (t, J= 5. 4 Hz, 1 H), 4. 05 (t, J= 5 \ 2 dg. O . 4 r 4. 114, c., aa ' , ; r- : \. ; : .... ; 'k,., z v,.'., ;, 4n ' e. >,. , 5,. :- . jiu E ;'a'd. ^. r : 1.. ;. x '.. "'. aec :,," : .. i",. : ,, st G, t ; ; ; a . : x °., ;.. 9Hz, _ 0 5, w, .., r 3 , c°' S Yi's. m. " ; x =_- H ry'v, : a. . ,,, 18 (S . 42 ($ k t,., : x. . E", 1-S °H). 9 HZ 1H), 7 : d 9. 3 t dg0 _6) "4 an y °ttd dtt"s y at" "'t . _.. u a. _ dd 5 i z 7. 63 ( z k ;. e. - ; ; 1H NMR C _ 2. 7 Hz M J. 7 Hz, 1N), A. 04 (t . 1 H a y, u . 72t s 4. 87 t J-5 " ; " : :. y '1W, 1HO 1H, $. 0 _ 3-chtoro- t iamine 2H) r'1. 12 (d, J-9. 0 z, r,. henYON4 L c 5. 1 Hz, 2HO84 t,'1H) , 1H), 8. 90 (S * k _35_dimethyP, 4 yrin, idined 3. 73 (q 2, 20 (, 2, 9. 17 t$ d 9 : 3 Hz, k, N2-t4_Chioro s ; henYl-ruoro 2, p 22 th IeneoxY) p-d6 : d 3. 0 an 2H. 7. 67 tdd 1H NMR lDMSO) 7. 827, 76 (m 6. 28-6. 25 (m ), hydroxYe y - 6. 1 Hz, 2H), c 3. 9 Hz, ethyeneoxY) pheny>>5fluoro-N2', H ?, 7. 25 7. 21 (m, 3N) droxy 1H), 4. 04 tt, 3 S 1H), 8. 12 (d 4. 87 (t, J-5. 4 Hz, 9 t5, H), 9. 42 ( N, 3. Chloro-UZ'hY d ; nediamne . 4-PYrim 1H NMR (MSyd6Y d 9 7. 59 (da -2r and 9. 0 a j $7 H o1Hl + 623 tindot-5 y) 2, _N2_t4-chloro-3 1H, 7. 80 (d, Jc 2. 4 Hz, 1H), 1H), 7. 30 tdd '27 and 8. 4 Hz, H), 7. 20 _ h, m 4. 8 Hz, 7. 12 l 9. 20 S, Hl, 8. 91 toro-4-2-hydroxYethYeneoxYlPnenYl idinediamne . 61m, or DMSO-d6) : d 10. 84 ts,'1H), C 1H NMR t, 7. 73 (dd, 2 and 9. 0 Hz, k 624 oxyPhenYl-5'flu = 8. 7 Hz,'H), 6. 28 (t, J= 2. 4 Hz> H), meth d, = 3. 9 Hz, 1H), . 90-7. 82 (m. 2H) _ ndoi-. 9 (m, 3H ?, 6. 93 (a. H, 2. 67 (d, J 4. 5 Hz, 3H) ; LCMS . hloro-- (N' x phenY1-5 fluoro-N2 C qH), 7. 26-7,- 4. 52 ( 2 -5. 1 Hz, HO 7. 23 (s. 2H), 3. 38 S, Il4_L3 C , rethyeneo Y o. g (mlel : 301 (MHk onY 625 methylaminorb _ N4_methY_ 1N 1MR (MS-d6) : d 8. 17 (d 1H), 7. 1T (d, J= 9. 6 x, -- 3H), . 32 (s 6N ; LCMS : purity : 9810, 5. y1)-2, 4-PY- ethYPhenYySuoro . 83 (m, 2"), 3- - ro-N- (-chtoro-3, 5-dim 2_Chto _ 1H, . 17 (d,, l- 9. 6 Hz, 1H), . 05 7 626 4^ _ rimsdneamve . PY : 368 (MH) _N4. rnethY-N'3' p : 92° ! o MS (mte) k y 4. 5 Hz, H, 6. 98 (d, J 8. 4 Hz, . d 7. 82 ( uriY : 100% ; MS ('le) : dioxylPhenyl-"pyimdineamve urity, 1N tdMR (DMSO-d6)- 2-Chioro-5-uoo _5_luoro-N4 H), 6. 90-6. 83 m 2H), 3 40 (S, 3H1 ; CMS : p 627 tetrafiuaroethYn tenedioxY) PhenYS, 9. q4 (s, 1H, 8. 44 A (VAZ iH), B. 12 (d,-* -- LT" 2G H..-- \ ened'arn'ne 629 ine 628 methyl_-pyrmidineamne Hz, 1H), 7. 77 (S, H), 1H), 7. 14 (dd, J=1. 8 a _-trifluoromethYPhenY)-5 uoro-N2-tndol-6 Y) 7. 19 (t, J= 2. 1 Hz, _ 4-Chlor 3 629 2 4_pyrimidinediamine < Nánt, < Ch Spkilkg Tryptase, Tryptase, Tryptase, fp CHMC, CHMC, CHMC, 11 pt IgE, 3pt IgE, 8 lono, 3pt pt 1H NMR (DMSO-d6) : d 10. 85 (s, 1H), 9. 35 (s, 1H), 9. 04 (s, 1H), 8. 10 N4- (4-Ch ! oro-3-methoxypheny !)-5-f) uoro-N2- (indo !-6-y !)-2, 4- (d, J= 3. 6 Hz, 1 H), 7. 79 (s, 1 H), 7. 62-7. 57 (m, 2H), 7. 36 (d, J= 8. 4 Hz, + + 630 * pyrimidinediamine 1H), 7. 24 (d, J= 9. 0 Hz, 1 H), 7. 19 (t, J= 2. 7 Hz, 1 H), 7. 15 (dd, J= 1. 8 and 8. 4 Hz, 1H), 6. 34-6. 30 (m, 1H), 3. 67 1H NMR (DMSO-d6) : d 10. 78 (s, 1H), 9. 23 (s, 1H), 9. 03 (s, 1H), 8. 05 N4- (3-Ch ! oro-4-methoxycarbonymethy ! eneoxypheny [)-5- (d, J= 3. 6 Hz, 1 H), 7. 85 (d, J= 2. 7 Hz, 1 H), 7. 79-7. 73 (m, 2H), 7. 36 (d, f) uoro-N2- ( ! ndo)-6-y !)-2, 4-pyrim ! dined ! amine J= 8. 4 Hz, 1 H), 7. 19 (dd, J= 2. 1 and 8. 7 Hz, 1 H), 7. 16 (t, J=-3. 0 Hz, 1 H), 6. 95 (d, J= 9. 0 Hz, 1 H), 6. 32-6. 28 (m, 1H NMR (DMSO-d6) : d 10. 79 (s, 1H), 9. 19 (d, J= 1. 2 Hz, 1H), 9. 01 (s, N4- [3-Choro-4- (2-hydroxyethy ! eneoxy) pheny-5-f) uoro-N2- 1H), 8. 04 (d, J= 3. 6 Hz, 1 H), 7. 84 (d, J= 2. 7, 1 H), 7. 79-7. 73 (m, 2 H), + + ( !indol-6-yl)-2, 4-pynmidinediamine 7. 36 (d, J= 8. 4 Hz, 1 H), 7. 19 (dd, J= 1. 8 and 8. 4 Hz, 1 H), 7. 16 (t, J= 2. 4 Hz, 1 H), 7. 05 (d, J= 9. 3 Hz, 1 H), 1 H NMR (DMSO-d6) : d 9. 76 (s, 1 H), 9. 63 (s, 1 H), 8. 33-8. 29 (m, 1 H), 5-Huoro-N2- [3- (oxazo !-2-yi) phenyi]-N4- [3, 4- 8. 22 (d, J= 3. 6 Hz, 1H), 8. 16-8. 13 (m, 1H), 7. 78-7. 74 (m, 1H), 7. 62 + 633 + (tetrafluoroethylenedioxy) phenyl]-2, 4-pyrimidinediamine (dd, J= 2. 4 and 9. 0 Hz, 1H), 7. 58-7. 53 (m, 1H), 7. 42-7. 31 (m, 3H), ; LCMS : purity : 92% ; MS (m/e) : 478 (MH+). 1H NMR (DMSO-d6) : d 9. 67 (s, 1H), 8. 57 (t, J= 1. 8 Hz, 1H), 8. 18-8. 16 634 5-Fluoro-N4-methyl-N2- [3- (oxazol-2-yl) phenyl]-N4- [3, 4- (m, 1H), 8. 09 (d, J= 5. 7 Hz, 1H), 7. 72-7. 66 (m, 1H), 7. 60 (d, J= 1. 8 Hz, + (tetraf ! uoroethy ! ened ! oxy) pheny !]-2, 4-pyrim ! d ! nediam ! ne 1 H), 7. 54-7. 47 (m, 2H), 7. 39-7. 32 (m, 3H), 3. 53 (s, 3H) ; LCMS : purity : 96% ; MS (m/e) : 492 (MH+). N2- [3, 5-Dimethyl-4- (N- 1 H NMR (DMSO-d6) : d 9. 02 (s, 1H), 8. 12-8. 06 (m, 1H), 7. 88 (d, J= methy ! amino) carbony ! methy ! eneoxypheny !]-N4- (3, 4- 5. 7 Hz, 1 H), 7. 34 (s, 2H), 6. 83 (d, J= 6. 9 Hz, 1 H), 6. 82 (s, 1 H), 6. 73 ethylenedioxyphenyl)-5-fluoro-N4-methyl-2, 4- (dd, J= 3. 0 and 9. 0 Hz, 1 H), 4. 24 (s, 4H), 4. 11 (s, 2H), 3. 38 (s, 3H), pyrimidinediamine 2. 69 (d, J= 4. 8 Hz, 3H), 2. 16 (s, 6H) ; LCMS : pu N2-p, 5-D ! methy !-4- (N-1H NMR (DMSO-d6) : d 9. 15 (s, 1H), 8. 12-8. 05 (m, 1H), 8. 02 (d, J= methymino) carbony ! methy ! eneoxyphenyi]-5-fiuoro-N4- 5. 7 Hz, 1H), 8. 02 (d, J= 5. 7 Hz, 1H), 7. 55 (dd, J= 0. 9 and 2. 7 Hz, 1 H), methyi-N4- [3, 4- (tetraf) uoroethy ! enedioxy) phenyi]-2, 4- 7. 48 (d, J= 9. 3 Hz, 1H), 7. 31 (s, 2H), 7. 27 (dd, J= 0. 9 and 2. 1 Hz, 1H), pyrimidinediamine 4. 11 (s, 2H), 3. 46 (s, 3H), 2. 69 (d, J= 4. 8 , uP. : oI7y ff. St' n "'r"= : v l9 Na LD LD LD .., . t \ "u <. 9,h W' . __- "i'ai. J 4 F, v. y. t o T a s 2_ya rt5 > : LD t 3 I ta t x. a ul. i s t a A : a se rY , P t a d. e , ry T P t e rY f . r. P s k r I z w 4 ti= MC N2- [3, 5-Dimethyl-4- (N_ i l,.., a.., 4 , ., ^' I9E 3Pt IgE, 8pt lono, 3pt 1H NMR (DMSO-d6) : d 9. 59 (s, 1H) 9. 14 (s, 1H) 8. 16-8. 08 (m, 3H), 637 methylamino) carbonylmethyleneoxyphenyl]-5-fluoro-N4- [3, 4- (m, 3H), (tetrafluoroethylenedioxy) phenylj-2, 4-pyrimidinediamine MS (m/e) : 526 (MH+). 4. 12 (s, 2H), 2, 69 (d, J= 4. 8 Hz, 3H), 2. 15 (s, 6H) ; LCMS : punty : 99% ; _ MS (m/e) : 526 (MH+). N2- [3, 5-Dimethyl-4- (N_ 638methy) amino) carbonyfmethy) eneoxyphenyt]-N4- (3, 5-- (- + 638 methylamino) carbonylmefhyleneoxyphenylj-N4- (3, 5- 2. 4 Nz, 1 H), 7. 35 (s, 2H), 6. 44 (dd, J= 0. 6 and 2. 4 Hz, 2H), 6. 39 (t, J= dimethoxyphenyl)-5-fluoro-N4-methyl-2, 4-pyrimidinediamine 3H), 2. 16 (s, 6H) ; LCMS : purity : 99% ; MS 2. 4 Hz, 1H), 4. 16 (s, 2H), 3. 72 (s, 6H), 3. 43 (s, 3H), 2. 69 (d, J=4. 8 Hz, t 3H), 2. 16 (s, 6H) ; LGIV (S : purity : gg% ; MS N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- (d, J= 3. 6 Hz, 1H), 7. 57 (s, 91-), g, 45 (s, 1H), 9, 09 (s, 1H), 8. 04 639 - (methoxycarbonyfrnethyfene) fndof-6-y (]-2, 4- + +- 639 1-(methoxyearbonylmethylene) indol-6-yl]-2, 4-d, J= 3. 6 Hz, 1H), 7. 57 (s, 1 H), 7. 40-7. 33 (m, 2H), 7. 31-7. 24 (m, 2H) pyrimidinediamine 7, 20 (d, J= 3. 3 Nz, 9 H), 6. 81 (d, J= 8. 7 Hz, 1 H), 3. 35 (d, J= 2. 4 Hz, _ 1H), 4. 91 (s, 2H), 3. 63 (s, 3H), 1. 40 (s, 6H N4-j3-Chforo-4- (N_ 1H tdMR (pMSO-d6) : d 9. 4. 2 (s, 1H), 9. 24 (s, 1N), 8. 07 (d, J=3. 9 Hz, 640 methylamino) carbonylmethyleneoxyphenyl]-5-fluoro-N2- [1- 9H), 7. 92-7. g4 (m, 2N), 7. 29 (dd, J= 1. 5 and 8. 4 Hz, 1H), 7. 20 (d. J= (methoxycarbonylmethylene) indol-6-yl]-2, 4-pyrimidinediamine 3. 3 Hz, 1H), 6. 94 (d, J= 9. 0 Hz, 1H), 6. 36 3, 3 Hz, 1H), 6. 94 (d, J= 9. 0 Hz, 1Hj, 6. 36 1 H NMR (DMSO-d6) : d 9. 34 (s, 1H), 9. 10 (s, 1H), 8. 09 (d, J= 3. 6 Hz, 641 N4- (4-Chloro-3-methoxyphenyl)-5-fluoro-N2- [I- I H), 7. 62-7. 59 (m, 1 H), 7. 54 (d, J=2. 4 Hz, 1H), 7. 49 (dd, J=2. 4 and (methoxycarbonylmethylene) indol-6-yfj-2, 4-pyrimidinediamine 8. 4 Hz, 1H), 7. 38 (d, J= 8. 7 Hz, 1H), 7. 27-7. 22 (m, 2H), 7. 20 (d, J= 3. 3 Hz, 1H), 6. 36 (dd, J= 0. 6 and 3. 0 Hz, 1H), 1H NMR (DMSO-d6) : d 9. 19 (s, 1 H), 9. 14 (s, 1 H), 8. 02 (d, J= 3, 9 Hz, 642 N4- (3, 4-EthyJenedioxyphenyl)-5-fluoro-N2- [I- I H), 7. 63 (s, 1H), 7. 40-7. 31 (m, 2H), 7. 30-7. 17 (m, 3H), 6. 74 (d, J= 9. 0 642 + +- (methoxycarbonylmethylene) indol-6-y)]-2, 4-pyrimidinediamine Hz, 1H), 6. 35 (d, J= 2. 7 Hz, 1H), 4. 90 (s, 2H), 4. 21 (s, 4H), 3. 63 (s, + + O 3H) ; LCMS : purity : 93% ; MS (m/e) : 450 (MH+) 1H NMR (DMSO-d6) : d 10. 56 (s, 1H), 9. 20 (s, 1H), 8. 79 (s, 1H), 8. 00 N4- (2, 2-Dimethyl-3-oxo-4H-benzfl, 4] oxazin-6-yl)-5-fluoro-N2- (d, J= 3. 6 Hz, 1H), 7. 86 (s, 1H), 9. 20 (s, 1Hj, 8, 79 (s, 1Hj, 8. p0 643 [1- (methoxycarbonyfmethytene) fndof-5-y (]-2, 4- + +- pyrimidinediamine pyrimidinediamine 7. 16 (m, 4H), 6. 83 (d, J= 8. 7 Hz, 1 H), 6. 27 (d, J= 3. 0 Hz, 1 H), 5. 05 (s, f + 3H), 1. 40 (s, 6H) ; LCMS : p Try ptose, T N4- [3-Ch ! oro-4- (N- p d i4'a __pyk, CHMC, CHMC, CHMC, llpt IgE, 3pt IgE, 8pt lono, 3pt 1 H), 7. 90-7. 72 (m, 4H), 7. 28-7. 23 (m, 3H), 6. 94 (d, J= 8. 03 Hz, 1 H), N4-[3-Chloro-4-(N- 1H) 7. 90-7. 72 (m 4H) 7. 28-7. 23 (m 3H) 6. 94 (d J=8. 7Hz 1H) 644methy ! am ! no) carbony ! methy ! eneoxypheny !]-5-f) uoro-N2- [1- + +- 6. 32 (d J=3. 0Hz 1H) 5. 07 (s 2H) 4. 53 (s 2H) 3. 67 (s 3H) 2. 67 (methoxycarbonylmethylene) indol-5-yl]-2, 4-pyrimidinediam ! ne _ (d, J= 4. 5 Hz, 3H), ; LCMS : purity : 90% ; MS (m 1H NMR (DMSO-d6) : d 9. 32 (s, 1 H), 8. 96 (s, 1 H), 8. 07 (d, J= 3. 6 Hz, N4- (4-Ch ! oro-3-methoxypheny !)-5-foro-N2- [1- 1H), 7. 84 (s, 1 H), 7. 55-7. 47 (m, 2H), 7. 28-7. 17 (m, 4H), 6. 29 (d, J= 3. 0 (methoxycarbonylmethylene) indol-5-yl]-2, 4-pyrimidinediamine Hz, 1 H), 5. 08 (s, 2H), 3. 67 (s, 3H), 3. 64 (s, 3H) ; LCMS : purity : 96% ; MS (m/e) : 457 (MH+). 1H NMR (DMSO-d6) : d 9. 18 (s, 1H), 8. 94 (s, 1H), 8. 02 (d, J= 3. 0 Hz, N4- (3-Ch ! oro-4-methoxypheny !)-5-foro-N2- [1- 1 H), 7. 82-7. 76 (m, 2H), 7. 70 (dd, J= 2. 1 and 9. 0 Hz, 1 H), 7. 27-7. 21 + + (methoxycarbony ! methy ! ene) ! ndo !-5-y !]-2, 4-pyr ! m ! dined ! amine (m, 3H), 7. 03 (d, J= 9. 0 Hz, 1 H), 6. 30 (d, J= 2. 7 Hz, 1 H), 5. 06 (s, 2H), 3. 83 (s, 3H), 3. 66 (s, 3H) ; LCMS : purity : 98% '1H NMR (DMSO-d6) : d 10. 18 (s, 1H), 9. 99 (s, 1H), 8. 16 (d, J-4. 5 dz, N4- (3, 4-Ethyienedioxyphenyi)-5-f ! uoro-N2- [1- 1H), 7. 74 (s, 1H), 7. 46-7. 18 (m, 3H), 7. 34-7. 18 (m, 3H), 6. 83 (d, J=8. 1 (methoxycarbonymethy [ene) ! ndo !-5-y !]-2, 4-pyr ! midined ! amine Hz, 1 H), 6. 46 (d, J= 3. 0 Hz, 1 H), 5. 20 (s, 2H), 4. 29 (s, 4H), 3. 74 (s, 3H) ; LCMS : purity : 92% ; MS (m/e) : 450 (MH+ N4- [3-Ch ! oro-4- (N-1H NMR (DMSO-d6) : d 9. 25 (s, 1 H), 9. 07 (s, 1 H), 8. 04 (d, J= 3. 6 Hz, methy ! amino) carbony ! methy ! eneoxypheny !]-5-f) uoro-N2- [1- (N- 1H), 7. 90-7. 83 (m, 3H), 7. 77-7. 73 (m, 1 H), 7. 55-7. 52 (m, 1 H), 7. 39 (d, 64 !, + +-+ methymino) carbony ! methy ! eneindo !-6-y !]-2, 4- J= 9. 0 Hz, 1 H), 7. 32-7. 26 (m, 1 H), 7. 16 (d, J= 3. 3 Hz, 1 H), 6. 91 (d, J= pyrimidinediamine 9. 3 Hz, 1 H), 6. 33 (d, J= 3. 0 Hz, 1 H), 4. 62 ( 1 H NMR (DMSO-d6) : d 9. 06 (s 1 H) 9. 02 (s 1 H) 7. 99 (d J= 3. 9 Hz 1H NMR (DMSO-d6) : d 9. 06 (s, 1H), 9. 02 (s, 1H), 7. 99 (d, J= 3. 9 Hz, 1H) 7. 88-7. 82 (m 1H) 7. 58 (s 1H) 7. 39-7. 33 (m 2H) 7. 32-7. 25 (m 1H), 7. 88-7. 82 (m, 1H), 7. 58 (s, 1H), 7. 39-7. 33 (m, 2H), 7. 32-7. 25 (m, 649methy ! amino) carbony ! rnethy ! eneindo !-6-y !]-2, 4- + +- 2H), 7. 16 (d, J= 3. 3 Hz, 1 H), 6. 71 (d, J= 8. 7 Hz, 1 H), 6. 33 (d J= 3. 3 pyrimidinediamine Hz, 1H), 4. 63 (s, 2H), 4. 19 (s, 4H), 2. 58 (d 1H NMR (DMSO-d6) : d 9. 26 (s, 2H), 4. 19 (s, 4H), 2. 58 (d 1 H NMR (DMSO-d6) : d 9. 26 (s, 1 H), 8. 98 (s, 1 H) 8. 51 (s 1 H), 8. 07 5-Fiuoro-N4- [2- (2-hydroxyethyeneoxy) pyr ! d-5-y !]-N2- [1- (N- (dd, J= 2. 4 and 9. 0 Hz 1 H), 8. 03 (d, J= 3. 9 Hz 1 H) 7. 98-7. 92 (m, (dd, J= 2. 4 and 9. 0 Hz, 1 H), 8. 03 (d, J= 3. 9 Hz, 1 H), 7. 98-7. 92 (m, 650 niethyiam ! no) carbony ! methy ! ene ! ndo)-5-y !]-2, 4- + 1H), 7. 87 (s, 1 H), 7. 24-7. 14 (m, 3H), 6. 76 (d, J= 9. 0 Hz, 1 H), 6. 27 (d, I ynmldlnedlamlne J= 3. 0 Hz, 1 H), 4. 84 (t, J= 5. 4 Hz, 1 H), 4. 72 ( ss ! B ! ! BS ;'''SMBSS f'' Tryptase, Tryptase, fpsyk, Tryptase, Tryptase, Tryptase, fp tne. CHMC, CHMC, 11pt IgE, 3pt IgE, 8pt lono, 3pt 1H NMR (DMSO-d6) : d 9. 55 (s, 1H), 9. 09 (s, 1H), 8. 15-7. 99 (m, 2H), N4-(3-Chloro-4-trifluoromethoxyphenyl)-5-fluoro-N2-[1-(N- 8. 02-7. 95 (m, 1 H), 7. 89 (dd, J= 1. 5 and 9. 6 Hz, 1 H), 7. 75 (s, 1 H), 7. 40 651 methylamino) carbonylmethyleneindol-5-yl]-2 4-+ (d, J= 9. 0 Hz, 1H), 7. 27-7. 21 (m, 3H), 6. 30 (d, J= 2. 7 Hz, 1H), 4. 73 (s, pyrimidinediamlne 2H), 2. 61 (d, J= 4. 5 Hz, 3H) ; LCMS : purity N4- [3-Ch ! oro-4- (N-1H NMR (DMSO-d6) : d 9. 88 (s, 1H), 9. 70 (s, 1H), 8. 12-8. 03 (m, 2H), methyiamino) carbonyimethy ! eneoxyphenyi]-5-fiuoro-N2- [1- (N- 7. 94-7. 87 (m, 1 H), 7. 81 (d, J= 2. 4 Hz, 1 H), 7. 69-7. 63 (m, 2H), 7. 35- + 652 + + methylamino) carbonylmethyleneindol-5-yl]-2, 4- 7. 27 (m, 2H), 7. 17 (d, J= 8. 7 Hz, 1H), 6. 94 (d, J= 9. 0 Hz, 1H), 6. 35 (d, pyrimidinediamine J= 3. 0 Hz, 1 H), 4. 77 (s, 2H), 4. 55 (s, 2H), 2. 1H NMR (DMSO-d6) : d 10. 22 (s, 1H), 9. 91 (s, 1H), 8. 16 (d, J=4. 8Hz, N4-(4-Chloro-3-methoxyphenyl)-5-fluoro-N2-[1-(N- 1H), 8. 12-8. 05 (m, 1H), 7. 70-7. 66 (m, 1H), 7. 52-7. 48 (m, 1H), 7. 42 (d, 653 methylamino) carbonylmethyleneindol-5-yl]-2, 4-, + J= 7. 8 Hz, 1H), 7. 37-7. 28 (m, 3H), 7. 16-7. 10 (m, 1H), 6. 35 (d, J=2. 7 pyrimidinediamlne Hz, 1H), 4. 79 (s, 2H), 3. 63 (s, 3H), 2. 62 (d, 1H NMR (DMSO-d6) : d 10. 21 (s, 1H), 9. 94 (s, 1H), 8. 16-8. 03 (m, 2H), N4-(3-Chloro-4-methoxyphenyl)-5-fluoro-N2-[1-(N- 7. 79-7. 74 (m, 1H), 7. 65-7. 58 (m, 2H), 7. 37-7. 30 (m, 2H), 7. 14 (d, J=. 654 methylamino) carbonylmethyleneindol-5-yl-2 4-l l l l l + 8. 4 Hz, 1 H), 7. 05 (d, J= 8. 7 Hz, I H), 6.'37 (d, J= 3. 0 Hz, 1 H), 4. 78 (s, pyrimidinediamine 2H), 3. 84 (s, 3H), 2. 61 (d, J= 4. 5 Hz, 3H) ; LC 1H NMR (DMSO-d6) : d 10. 19 (bs, 1H), 10. 04 (bs, 1H), 8. 12-8. 03 (m, N4-(3 4-Ethylenedioxyphenyl)-5-fluoro-N2-[1-(N- 2H), 7. 66-7. 61 (m, 1 H), 7. 36-7. 30 (m, 2H), 7. 27-7. 09 (m, 3H), 6. 78 (d, 655 methylamino) carbonylmethyleneindol-5-yl]-2 4-l l + J= 8. 4 Hz, 1 H), 6. 38 (d, J= 2. 7 Hz, 1 H), 4. 79 (s, 2H), 4. 23 (s, 4H), 2. 61 pyrimidinediamine (d, J= 4. 2 Hz, 3H) ; LCMS : purity : 99% ; MS ( 1H NMR (DMSO-d6) : d 9. 46 (s 1H) 9. 07 (s, 1H), 8. 24-8. 17 (m 1H) 4- [3-Chioro-4- (N-methyiarnino) carbony ! phenyi]-5-fiuoro-N2- 8. 11 (d, J= 3. 0 Hz, 1H), 8. 00-7. 94 (m, 1H), 7. 94-7. 86 (m, 2H), 7. 77 (s, 656 [1-(N-methylamino) carbonylmethyleneindol-5-yl]-2, 4-+ 1 H), 7. 31-7. 22 (m, 4H), 6. 33 (d, J= 3. 3 Hz, 1 H), 4. 73 (s, 2H), 2. 73 (d, pynmldlnedlamlne J= 4. 8 Hz, 3H), 2. 60 (d, J= 4. 8 Hz, 3H) ; LC 1H NMR (DMSO-d6) : d 8. 21 (d, J= 3. 0 Hz, 1H), 8. 15 (d, J= 5. 7 Hz, 2-Chloro-5-fluoro-N4-(2-methoxypyrid-5-yl)-N4-methyl-4- 2-Chioro-5-fiuoro-N4- (2-methoxypyrid-5-yi)-N4-methy !-4- pynmldlneamlne pyrimidineamine 3H), 3. 38 (s, 3H) ; LCMS : purity : 95% ; MS (m/e) : 269 (MH+). 1 H NMR (DMSO-d6) : d 8. 25 (d J= 5. 4 Hz, 1 H), 7. 97-7. 94 (m, 1 H), 2-Chloro-N4- (4-chloro-3-trifluoromethylphenyl)-5-fluoro-N4- 658 7. 78-7. 72 (m, 2H), 3. 45 (s, 3H) ; LCMS : purity : 96% ; MS (m/e) : methyi-4-pyrimidineamine 341 (MH+). LU LU LU Tryptase, Tryptase, Tryptase, fp ph ! ?"nd Narhe CHMC, CH MC, CHMC, 11 pt IgE, 3pt IgE, 8pt lono, 3pt 2-Chioro-N4- (4-chtoro-3-methoxyphenyn-5-f) uoro-N4-methy !- 2-Chloro-N4-(4-chloro-3-methoxyphenyl)-5-fluoro-N4-methyl- 659 1H), 7. 24 (s, 1 H), 6. 96 (d, J= 8. 7 Hz, 1 H), 3. 82 (s, 1 H), 3. 31 (s, 3H) ; 4-pyrimidineamine LCMS : purity : 99% ; MS (m/e) : 303 (MH+). 1H NMR (DMSO-d6) : d 8. 14 (d, J= 5. 4 Hz, 1H), 7. 56 (d, J= 2. 7 Hz, 2-Ch) oro-N4- (3-ch) oro-4-methoxypheny !)-5-f ! uoro-N4-methy !- 660 1 H), 7. 34 (dd, J= 2. 4 and 8. 7 Hz, 1 H), 7. 15 (d, J= 8. 4 Hz, 1 H), 3. 87 (s, 4-pyrimidineamine 3H), 3. 36 (s, 3H) ; LCMS : purity : 96% ; MS (m/e) : 303 (MH+). 1H NMR (DMSO-d6) : d 8. 15 (d, J= 5. 4 Hz, 1 H), 7. 94-7. 87 (m, 1 H), . 7. 58 (d, J= 2. 4 Hz, 1 H), 7. 32 (dd, J= 2. 4 and 8. 7 Hz, 1 H), 7. 02 (d, J= 7. 58 (d, J= 2. 4 Hz, 1 H), 7. 32 (dd, J= 2. 4 and 8. 7 Hz, 1 H), 7. 02 (d, J= 661 methy ! amino) carbony ! methy ! eneoxypheny-5-f] uoro-N4- 9. 0 Hz, 1 H), 4. 60 (s, 2H), 3. 36 (s, 3H), 2. 66 (d, J= 4. 8 Hz, 3H), ; methyl-4-pynmldlneamlne LCMS : purity : 90% ; MS (m/e) : 360 (MH+). . 1 H NMR (DMSO-d6) : d 10. 22 (s, 1 H), 9. 88 (s, 1H), 8. 22 (d, J= 3. 9 Hz, N4- (3-Ch ! oro-4-tr ! f) uoromethoxypheny !)-5-fiuoro-N2- [1- (N- 1H) 8. 14 (d J=2. 7Hz 1H) 8. 02-7. 95 (m 1H) 7. 84-7. 78 (m 1H) 1H), 8. 14 (d, J=2. 7 Hz, 1H), 8. 02-7. 95 (m, 1H), 7. 84-7. 78 (m, 1H), 662methy ! amino) carbony ! methyene ! ndo-6-y []-2, 4- + +- 7. 49 (d, J= 8. 1 Hz, 1H), 7. 45-7. 37 (m, 2H), 7. 27 (d, J= 2. 7 Hz, I H), pynmldlnedlamlne 7. 27 (d, J= 2. 7 Hz, 1H), 7. 18 (d, J= 8. 4 Hz, 1H) 1H NMR (DMSO-d6) : d 10. 13 (s 1H) 9. 90 (s 1H) 8. 10 (d J=4. 5 Hz 1H NMR (DMSO-d6) : d 10. 13 (s, 1H), 9. 90 (s, 1H), 8. 10 (d, J=4. 5 Hz, 1H) 7. 91 (d J=3. 9Hz 1H) 7. 49-7. 34 (m 4H) 7. 23 (d J=3. 3Hz 1 H), 7. 91 (d, J= 3. 9 Hz, 1 H), 7. 49-7. 34 (m, 4H), 7. 23 (d, J= 3. 3 Hz, 663 rnethy [am ! no) carbony ! rnethy ! ene ! ndo !-6-y !]-2, 4- + 1H), 7. 17 (d, J= 8. 4 Hz, 1H), 7. 07 (d, J= 8. 4 Hz, I H), 6. 37 (d, J= 3. 0 pynmldlnedlamlne Hz, 1 H), 4. 62 (s, 2H), 3. 52 (s, 3H), 2. 51 (d, 1H NMR (DMSO-d6) : d 10. 21 (s, 1H), 10. 04 (s, 1H), 8. 14 (d, J= 5. 1 N4- (3-Ch ! oro-4-methoxypheny !)-5-f) uoro-N2- [1- (N- Hz, 1H), 7. 98-7. 92 (m, 1 H), 7. 84 (d, J= 2. 7 Hz, 1 H), 7. 60 (dd, J= 2. 4 + + 664methy ! amino) carbony ! methy) eneindo !-6-y !]-2, 4- + +- and 8. 7 Hz, 1 H), 7. 51 (d, J= 8. 7 Hz, 1 H), 7. 39 (s, 1 H), 7. 30 (d, J= 3. 3 pynmldlnedlamlne Hz, 1H), 7. 15 (d, J= 7. 8 Hz, 1H), 7. 01 (d, J= Hz, NMR (DMSO-d6) : d 9. 50 (s, 1H), 9. 19 (s, 1H), 8. 28-8. 20 (m, 1H), N4- [3-Chbro-4- (N-methy ! am ! no) carbony ! pheny !]-5-f] uoro-N2- 8. 12 (d, J= 3. 3 Hz, 1 H), 7. 97-7. 84 (m, 3H), 7. 53 (s, 1 H), 7. 42 (d, J= 8. 7 + 665 1- (N-methy ! amino) carbony ! methy ! eneindo !-6-y !]-2, 4- + Hz, 1H), 7. 32-7. 25 (d, J= 3. 3 Hz, 1 H), 6. 35 (d, J= 3. 0 Hz, 1 H), 4. 63 (s, pynmldlnedlamlne 2H), 2. 74 (d, J= 4. 5 Hz, 3H), 2. 58 (d, J 1HNMR (DMSO-d6) : d 9. 94 (s 1H) 8. 28 (dd J=0. 6and3. 6Hz 1H) 1H NMR (DMSO-d6) : d 9. 94 (s, 1H), 8. 28 (dd, J= 0. 6 and 3. 6 Hz, 1H), 2-Ch ! oro-N4- (3-ch ! oro-4-methoxypheny !)-5-f ! uoro-4- 666 7. 75 (d, J= 2. 1 Hz, 1H), 7. 58 (dd, J= 2. 4 and 8. 7 Hz, 1H), 7. 16 (d, J= pynmldlneamlne 8. 7 Hz, 1H), 3. 84 (s, 3H) ; LCMS : purity : 96% ; MS (m/e) : 288 (M+). 9 : r __pyr, = 4. _.. .......... , inwi ;. r v ill m 4 1 i 7 I i e yfi, a. T t , ase T tase T tas f e sk rYP rY P rYP, s u. 4 g 3 1'IL1 : t'>", 17 Gt.. P s c. o nx. Tct ;"r _ S i, I CHMC'CHMC'CHM P a t f i iil 1h =vI E3t I E 8 t lono 3 t P 9 P P t 1H NMR (DMSO-d6) : d 9. 38 (s, 1H), 9. 28 (s, 1H), 8. 28 (s, 1H), 8. 14- 667 5-Fluoro-N2- [3- (oxazol-2-yl) phenyl]-N4- (3, 4, 5- 8. 10 (m, 2H), 7. 87 (d, J= 7. 2 Hz, 1 H), 7. 50 (d, J= 7. 5 Hz, 1 H), 7. 34- 667 + trimethoxyphenyl)-2, 4-pyrimidinediamine 7. 27 (m, 2H), 7. 06 (s, 2H), 3. 70 (s, 6H), 3. 63 (s, 3H) ; LCMS : purity : 98% ; MS (m/e) : 438 (MH+). 1 H NMR (DMSO-d6) : d 9. 10 (s, 1H), 7. 96 (d, J= 3. 9 Hz, 1H), 7. 75 (s, 668 N4- (3, 4-Ethylenedioxyphenyl)-5-fluoro-N2- (2, 3, 4-1 H), 7. 50 (d, J= 8. 7 Hz, 1 H), 7. 26 (d, J= 2. 4 Hz, 1 H), 7. 10 (dd, J= 2. 4 + 668 + trimethoxyphenyl)-2, 4-pyrimidinediamine Hz, 1H), 6. 74-6. 64 (m, 2H), 4. 25-4. 18 (m, 4H), 3. 77 (s, 3H), 3. 75 (s, 3H), 3. 74 (s, 3H) ; LCMS : purity : 99% ; MS (m/ 1H NMR (DMSO-d6) : d 9. 26 (s, 1H), 8. 01 (d, J=3. 6 Hz, 1H), 7. 86 (s, 669 N4-(3-Chloro-4-methoxyphenyl)-5-fluoro-N2-(2, 3, 4- 1 H), 7. 81 (d, J= 2. 7 Hz, 1 H), 7. 54 (dd, J= 2. 4 and 9. 0 Hz, 1 H), 7. 43 (d, 669 trimethoxyphenyl)-2, 4-pyrimidinediamine J=9. 0 Hz, 1H), 7. 03 (d, J= 9. 0 Hz, 1H), 6. 70 (d, J= 9. 3 Hz, 1H), 3. 81 (s, 3H), 3. 76 (s, 3H), 3. 74 (s, 3H), 3. 73 1H NMR (DMSO-d6) : d 816 (d J=4. 8Hz 1H) 7. 56-7. 51 (m, 1H), N4- (4-Chloro-3-methoxyphenyl)-5-fluoro-N2- (2, 3, 4- 670 7. 36-7. 24 (m, 4H), 6. 74 (d, J= 9. 3 Hz, 1 H), 3. 80 (s, 3H), 3. 74 (s, 3H), trimethoxyphenyl)-2, 4-pyrimidinediamine 3. 73 (s, 3H), 3. 68 (s, 3H), ; LCMS : purity : 95% ; MS (m/e) : 436 (MH+). 1 H NMR (DMSO-d6) : d 8. 20 (d, J= 4. 5 Hz, 1 H), 8. 05 (d, J= 2. 7 Hz, 671 N4- (3-Chloro-4-trifluoromethoxyphenyl)-5-fluoro-N2- (2, 3, 4- 1H), 7. 73-7. 66 (m, 1H), 7. 45 (d, J= 9. 6 Hz, 1H), 7. 24 (d, J= 8. 7 Hz, + 671 + trimethoxyphenyl)-2, 4-pyrimidinediamine 1H), 6. 75 (d, J= 9. 0 Hz, 1H), 3. 78 (s, 3H), 3. 74 (s, 3H), 3. 73 (s, 3H) ; LCMS : purity : 95% ; MS (m/e) : 490 (MH+). 1H NMR (DMSO-d6) : d 10. 73 (s, 1H), 10. 44 (s, 1H), 8. 21 (d, J=4. 8 672 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2-Hz, 1H), 7. 43-7. 32 (m, 1H), 7. 27-7. 13 (m, 2H), 6. 89 (d, J= 8. 4 Hz, 1H), + 672 + (2, 3, 4-trimethoxyphenyl)-2, 4-pyrimidinediamine 6. 65 (d, J= 9. 6 Hz, 1H), 3. 77 (s, 3H), 3. 76 (s, 3H), 3. 74 (s, 3H), 1. 41 (s, 6H) ; LCMS : purity : 98% ; MS (m/e) : 470 (MH N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro-1H NMR (DMSO-d6) : d 11. 14 (s, 1H), 9. 98 (s, 1H), 9. 63 (s, 1H), 8. 17 673 N2- (3, 4, 5-trimethoxyphenyl)-2, 4-pyrimidinediamine (d, J= 3. 9 Hz, 1H), 7. 62-7. 52 (m, 3H), 7. 36-7. 25 (m, 4H), 6. 87 (s, 2H), + + Benzenesulfonic Acid Salt 3. 66 (s, 6H), 3. 61 (s, 3H), 1. 43 (s, 6H). N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro- 1H NMR (DMSO-d6) : d 11. 13 (s, 1H), 9. 95 (s, 1H), 9. 62 (s, 1H), 8. 18 674 N2- (3, 4, 5-trimethoxyphenyl)-2, 4-pyrimidinediamine (d, J= 3. 9 Hz, 1 H), 7. 56 (d, J= 9. 0 Hz, 1 H), 7. 31 (d, J= 8. 4 Hz, 1 H), + + Methanesulfonic Acid Salt 6. 88 (s, 2H), 3. 66 (s, 6H), 3. 61 (s, 3H), 2. 33 (s, 3H), 1. 43 (s, 6H). ! <m- saa Tryptase, Tryptase, Tryptase, fp syk, ..,.,.,,,, CHMC, CHMC, CHMC, I lpt '*"'""""*"''""""""""'"* lHNMR (DMSO-d6) : d11. 12 (s, 1H), 9. 89 (s, 1H), N4- (2, 2-D) methy)-3-oxo-4H-5-pynd [1, 41oxazin-6-y)-5-f) uoro- (d, J= 3. 9 Hz, 1 H), 7. 57 (d, J= 8. 4 Hz, 1 H), 7. 45 (d, J= 7. 8 Hz, 2H), 675 N2- (3, 4, 5-tnmethoxyphenyt)-2, 4-pynm) dined) amine p-Totuene + + 7. 31 (d, J= 8. 4 Hz, 1 H), 7. 09 (d, J= 7. 8 Hz, 2H), 6. 89 (s, 2H), 3. 66 (s, Sutfonic Add Sa) t 6H), 3. 61 (s, 3H), 2. 28 (s, 3H), 1. 43 (s, 6 1H NMR (DMSO-d6) : d 11. 12 (s, 3H), 2. 28 (s, 3H), 1. 43 (s, 6 N4- (2, 2-Dimethyi-3-oxo-4H-5-pyrid [1, 4] oxaz ! n-6-y))-5-uoro- (d, J=4. 2Hz, 1H), 7. 58 (d, J=8. 1Hz, 2H), 7. 37 (d, J=8. 1Hz, 2H), 676 N2- (3, 4, 5-tnmethoxyphenyt)-2, 4-pyr) niidinediam) ne 4-+ + 676 N2-(3 4 5-trimethoxyphenyl)-2 4-pyrimidinediamine 4-+ + 7. 31 (d, J= 8. 7 Hz, 1H), 6. 90 (s, 2H), 6. 64 (d, J= 8. 7 Hz, 2H), 3. 66 (s, Hydroxybenzenesulfonic Acid Salt 6H), 3. 61 (s, 3H), 1. 43 (s, 6H). 1H NMR (DMSO-d6) : d 11. 10 (s, 1H), 9. 72 (s, 1H), 9. 47 (s, 1H), 8. 15 N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1. 4] oxazin-6-yi)-5-fluoro- (d, J=4. 2 Hz, 1H), 7. 62-7. 56 (m, 1H), 7. 31 (d, J= 8. 1 Hz, 1H), 6. 91 (s, 677 N2- (3, 4, 5-trimethoxypheny))-2, 4-pyrimidinediamine 2, 4, 6- + 677 N2-(3 4 5-trimethoxyphenyl)-2 4-pyrimidinediamine 2 4 6-l l + 2H), 6. 72 (s, 2H), 3. 66 (s, 6H), 3. 61 (s, 3H), 2. 48 (s, 6H), 2. 16 (s, 3H), Trimethylbenzenesulfonic Acid Salt 1. 43 (s, 6H). 1 H NMR (DMSO-d6) : d 11. 08 (s, 2H), 9. 46 (s, 2H), 9. 30 (s, 2H), 8. 91 N4- (2, 2-Dimethy)-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yi)-5-fluoro- .. (s 1H) 8. 70 (d, J= 5. 4 Hz, 1H), 8. 37 (dd, J= 1. 5 and 7. 8 Hz, 1H), 8. 13 678 N2-(3 4 5-trimethoxyphenyl)-2 4-pyrimidinediamine 0. 5 l l + + (d, J= 3. 6 Hz, 2H), 7. 80-7. 74 (m, 1H), 7. 62 (d, J= 8. 1 Hz, 2H), 7. 31 (d, Pyridine-3-sutfonic Add Sa ! t J= 8. 1 Hz, 2H), 6. 97 (s, 4H), 3. 66 (s, 1 1H NMR (DMSO-d6) : d 11. 08 (s, 1H). 9. 44 (s, 1H), 9. 26 (s, 1H). 8. 13 1H NMR (DMSO-d6) : d 11. 08 (s, 1H), 9. 44 (s, 1H), 9. 26 (s, 1H), 8. 13 N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-y)-5-f ! uoro- l l (d J=3. 3Hz 1H) 7. 63 (d J=8. 4Hz 1H), 7. 47 (d J=8. 1Hz, 2H), 679N2- (3, 4, 5-trimethoxypheny)-2, 4-pyr ! m ! dinediamine p-+ + 7. 31 (d, J= 8. 1 Hz, 1H), 7. 12 (d, J= 7. 8 Hz, 2H), 6. 97 (s, 2H), 3. 65 (s, Ethy ! benzenesu) fon ! c Acid Sat 6H), 3. 59 (s, 3H), 2. 57 (q, J= 7. 8 Hz, 2H), N4- (2, 2-Dimethyt-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yi)-5-fluoro- 1H NMR (DMSO-d6) : d 11. 08 (s, 2H), 9. 54 (s, 2H), 9. 35 (s, 2H), 8. 14 680 N2- (3, 4, 5-trimethoxyphenyl)-2, 4-pyrimidinediamine 0. 51, 2- (d, J= 3. 9 Hz, 2H), 7. 60 (d, J= 8. 4 Hz, 2H), 7. 31 (d, J= 8. 4 Hz, 2H), + + Ethanedisulfonic Add Salt 6. 95 (s, 4H), 3. 66 (s, 12H), 3. 60 (s, 6H), 2. 62 (s, 4H), 1. 43 (s, 12H). 1H NMR (DMSO-d6) : d 11. 11 (s, 1H), 9. 83 (s, 1H), 9. 54 (s, 1H), 8. 17 N4- (2, 2-Dimethy)-3-oxo-4H-5-pyrid [1, 4] oxazin- !)-5-foro- (d, J=3. 9Hz, 1H), 7. 57 (d, J=8. 7Hz, 1H), 7. 30 (d, J=8. 4Hz, 1H), 681N2- (3, 4, 5-trimethoxypheny !)-2, 4-pyr) midined ! am ! ne (1R)-10- + + 6. 99 (s, 2H), 3. 66 (s, 6H), 3. 61 (s, 3H), 2. 86 (d, J= 14. 7 Hz, 1H), 2. 67 Camphorsulfonic Acid Salt (t, J=9. 9Hz, 1H), 2. 38 (d, J=14. 7Hz, 1H) 1H NMR (DMSO-d6) : d 11. 08 (s, 1H), 9. 55 (s, 1H), 9. 36 (s, 1H), 8. 14 N4- (2, 2-D ! methy (-3-oxo-4H-5-pyrid [1. 4] oxaz ! n-6-y !)-5-f) uoro- l l (d, J= 3. 9 Hz, 1 H), 7. 60 (d, J= 8. 7 Hz, 1 H), 7. 31 (d, J= 8. 4 Hz, 1 H), 682 (3, 4, 5-trimethoxyphenyl)-2 4-pyrim ! dinediam ! ne (1S)-10-+ + 6. 94 (s, 2H), 3. 66 (s, 6H), 3. 60 (s, 3H), 2. 85 (d, J= 14. 7 Hz, 1H), 2. 68 Camphorsulfonic Acid Salt (t, 11. 4 Hz, 1H), 2. 36 (d, J= 14. 7 Hz, 1H), LU LU LU Tryptase, Tryptase, Tryptase, fp Name : CHMC, CHMC, CHMC, Ilpt Ep. Q<N). c ! : :'Nam6. ;, . L. ,''B """""""""""'""'"1 H NMR (DMSO-d6) : d 11. 04 (s, 1 H), 9. 08-8. 90 (m, 2H), 8. 07 (d, J= N4- (2, 2-Dimethy !-3-oxo-4H-5-pyrid [1, 4] oxaz ! n-6-y !)-5-f) uoro- 3. 3 Hz, 1 H), 7. 99-7. 89 (m, 1 H), 7. 81-7. 96 (m, 1 H), 7. 70-7. 64 (m, 1H), 683 N2-[1-(N-methylamino) carbonylmethyleneindol-5-yl]-2, 4-+ + 7. 29-7. 20 (m, 4H), 6. 29 (d, J= 3. 0 Hz, 1 H), 4. 73 (s, 2H), 2. 61 (d, J= 4. 5 pyrimidinediamine Hz, 3H), 1. 42 (s, 6H), ; LCMS : purity : 99% ; N2- (4-Chloro-3, 5-dimethylphenyl)-N4- (2, 2-dimethy-3-oxo-4H- 1H NMR (DMSO-d6) : d 11. 13 (s, 1H), 9. 68 (s, 1H), 9. 46 (s, 1H), 8. 17 684 5-pyrid [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine p- (d, J= 3. 6 Hz, 1 H), 7. 51-7. 35 (m, 6H), 7. 09 (d, J= 8. 4 Hz, 2H), 2. 28 (s, + Toluenesulfonic Acid Salt 3H), 2. 22 (s, 6H), 1. 43 (s, 6H). N4- (2, 2-Dimethy !-3-oxo-4H-5-pyrid [1, 4] oxazin-6-y !)-5-f ! uoro- 1H NMR (DMSO-d6) : d 11. 31 (s, 1H), 9. 89 (s, 1H), 9. 66 (s, 1H), 8. 18 685 N2- (3, 4, 5-t (imethoxyphenyl)-2, 4-pyrimidinediamine Hydrogen (d, J= 4. 5 Hz, 1 H), 7. 55 (d, J= 8. 4 Hz, 1 H), 7. 30 (d, J= 8. 7 Hz, 1 H), + + Chloride Salt 6. 89 (s, 2H), 3. 65 (s, 6H), 3. 61 (s, 3H), 1. 43 (s, 6H) 1H NMR (DMSO-d6) : d 11. 07 (s, 1H), 9. 32 (s, 1H), 9. 27 (s, 1H), 8. 13 N4- (2, 2-Dimethy !-3-oxo-4H-5-pyrid [1, 4] oxazin-6-y !)-N2- (3, 5- 686 L j (d, J= 3. 3 Hz, 1 H), 7. 63 (s, 2H), 7. 45 (d, J= 8. 7 Hz, 1 H), 7. 35 (d, J= 8. 7 + + dichloro-4-hydroxyphenyl)-5-fluoro-2 4-pyrimidinediamine Hz, 1 H), 1. 43 (s, 6H) ; LCMS : purity : 92% ; MS (m/e) : 467 (MH+). 1H NMR (DMSO-d6) : d 9. 49 (bs, 2H), 8. 18 (d, J= 3. 3 Hz, 1H), 7. 93 (d, N2, -Bis (3-oxo-2, 2, 4-trimethyl-5-pyrid [1, 4] oxaz ! n-6-y !)-5- J= 8. 7 Hz, 1 H), 7. 74 (d, J= 8. 4 Hz, 1 H), 7. 37 (d, J= 8. 7 Hz, 1 H), 7. 28 + 687 + fluoro-2, 4-pyrimidinediamine (d, J= 8. 4 Hz, 1H), 3. 34 (s, 3H), 3. 33 (s, 3H), 1. 44 (s, 6H), 1. 41 (s, 6H) ; LCMS : purity : 98% ; MS (m/e) : 509 (MH). 1H NMR (DMSO-d6) : d 9. 55 (s, *lH), 9. 49 (s, 1H), 8. 19 (d, J= 2. 7 Hz, N2, -Bis (2, 2-dimethyl-4-carbomethoxymethyl-3-oxo-5- 1 H), 7. 97 (d, J= 8. 7 Hz, 1 H), 7. 79 (d, J= 8. 7 Hz, 1 H), 7. 45 (d, J= 8. 7 68 pyridyl1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine Hz, 1 H), 7. 38 (d, J= 8. 7 Hz, 1 H), 4. 81 (s, 2H), 4. 80 (s, 2H), 3. 67 (s, 3H), 3. 66 (s, 3H), 1. 48 (s, 6H), 1. 45 (s, 6H 1H NMR (DMSO-d6) : d 9. 42 (s, 1H), 9. 13 (s, 1H), 8. 14 (d, J= 3. 6 Hz, 5-F ! uoro-N4- (3-oxo-2, 2, 4-tr ! methy !-5-pyrid [1, 4] oxaz ! n-6-y !)-N2- 1H), 7. 80 (d, J= 8. 4 Hz, 1 H), 7. 32 (d, J= 8. 4 Hz. 1 H), 7. 03 (s, 2H), 3. 66 68 ! + (3, 4, 5-trimethoxyphenyl)-2, 4-pyrimidinediamine (s, 6H), 3. 60 (s, 3H), 1. 44 (s, 6H) ; LCMS : purity : 97% ; MS (m/e) : 485 (MH+). 1H NMR (DMSO-d6) : d 9. 46 (s, 1H), 9. 15 (s, 1H), 8. 15 (d, J= 3. 6 Hz, N4-(2, 2-Dimethyl-4-carbomethoxymethyl-3-oxo-5- 1 H), 7. 86 (d, J= 8. 7 Hz, 1 H), 7. 37 (d, J= 8. 7 Hz. 1 H), 7. 04 (s, 2H), 4. 80 690 pyrid [1, 4] oxazin-6-yl)-5-fluoro-N2-(3, 4, 5-trimethoxyphenyl)-2, 4- + (s, 2H), 3. 67 (s, 6H), 3. 66 (s, 3H), 3. 60 (s, 3H), 1. 47 (s, 6H) ; LCMS : pyrimidinediamine _ purity : 96% ; MS (m/e) : 543 (MH*). Hz X _ A4 (4 tUOTO 3 \A18 j-iZ), 4-4 (< kas ' x i. Y. 1. ! 4'4^ ' (, a, n a ? i .. t Y k",. \ ; n,,-.,.. v. '' , s s , t. 1 u, x , : ... . n Z, . 42 ( °, t, 'h 1H) . x n. t r,. ; K Y_wx-2 d c 4. 8 H'4. 83 ts. H . ''-.. n ,'d , 7 (s,'tH) $ gand8. 4HziH) H, 'n'tah'i$ r f_. 1H idMR QMSy8 ts, 2H1, 6. 81 (dd,, : 3'3. 59 S, H), . 57 (S 3 t_'ant, n"" kil U r th _3-oxo. 5- S 2H), 3.'i2 ts o. MS tn's, 1H1, $. 11., F°, ,,-. : rboethome Y n, ethY_N2- 2H), A. 6u ( A. 47 ls 6H) ; LGMS : purltY : 904 (s,'1H), 9. 14 ts, H), 9. 09 (H), + Nq. _2, 2_imethY. 4-ca fluoro-NrbomethoxY _ 1 5 mine p_d6) d 1H), Z. 31 (d, J 8 NZ°m'H) > - H NMR lM 7. 65 la, J= 8. 4 Nz, 3. 58 r \t12> thYl\nda 4 rlmldinedlamine < \ 69l\meth°xyphe7y < \ q 5- rimethoxYPhenY _ orphQiino) ethYoxo) P L----- . ' 6. 0 Nz 0. "1 (s, Nl \\-J-S r\-''°t j. --' t LottpM*'-'' 1H NMR tMS'd6) d 1. 07 t 3. 3 Nz, = 9. 0 Hz, 2 2, 2_dimet Y 69 = 8. 4 Hz, H) ; 7. 22 (d, r (S' (s 694 uc) ro-2, 4-PYflfff"S' MS-d6,))--d I A pYrim Ao = 9. Q Hz,'H, 7. 32 la urity : 99° ! 0 ; S g. 2, (, J s, H), d 1, q. f1-5-PYrid [, s, 9HO 1. 39 s, 6H1 ; CMS : P _ imethY-3°xo J _ 1H, J=2. 6Hz1, . 65dH, . r k R M'-d6) d . 36 s,'H), 10. 21 N2, N4's122 d , 1H),, 7. 38t 1H NM'. 83 (s T.'4 (d g. 1 Hz) dd iatnn ( 693 fluoro-2, 4-Pyrimsdinad 4. 9 Hz), 7. 92 ls, H), - . 54 IaPP ad,'iH, J = 2. 3 and 9. 1 Hz), 1H J =9. 1 Hz) 4. 40 yl 2H, J cT. O H2 . LCMS : ret. °time : 9. 30 mm. ; _ 1. 8 and 9. 1 Hz), 7. 09 l, _. ethYindazol-5-Y)-5 1H ; 1. 38 (t. 3H, J ° 7. 0 Hz _n, ethoxyPhenYDN2 ( _ 3, 83 (S, 3H), S 1H), 8. 28 td, H urity : 97% ; MS (mle) : 414 (MH' N_3-Chioro- gp_d6= d 0. 28 ls, H, 10 0 H, y S H), . 0 S, nediamn 69 fluoro2, 'PYrimidi H p. IMR pM, 7. 94 (, 7. 87 ( z, $. 02 (a, H, J = 2. 3 H 52 (d. H, J 8. 8 Hx), 7. 42 dd,'iH, _ 4. 7 E"r) H, J : 9. 1 HZ= -ethYindazol-5-YO'S'fluoro2, 1H, . 66 ld, =7. 0 Hz S'IN, 1-N2t and 8. 8 Hzl, 4. 41 Qt, ZH S'H), 10. 39 ls, H), 10. 2 Z,' . d 10. 77 t. H,, 8. S H N^ (3, q-pichtoropheny) = 2. 3 7. 37 . r H MR pMgp_d6) , 2H), . 61 ld = $. 2 ^ 5. 3 Hzl, 7. 89 (5 6. 81 d, N iamne 695 yrimsdined 78. 22 (, 1H, 2. 3 and 8. 2 Hz), P QXazm-6-y) N2-t'- = 8. 8 Hz), . 20 ldd, 2H, _ 4H-benzL, 1 iH, J, =. 0 Hz), 1. 3 ls 6, 826 (d, H, J = HZ, A.. 39 lqt ZN _ d . 42 ts, Hl, 10. 29 ls'7 4 (d, J = 8. 2 Hz) k , 1H _2, 4. pyrimdinediamne _ 2, 2imethY3'°xo- LIMR OS ! 8. 8 Nz) = g, g and Na c 1H), 7. 19 (dd, N 696 ethYindazol-5 yr5'°ro 4. 9 t-izO, . 89 (s. 2N), 7. 63 (d.'1 H 4-A fluoo-3 7. 23 t', ro N (d 1H, J = 9. 0 Hzl, Z. 31 7. 37 ( = 7. 0 Hz), . 60 11. 8 Hz), 4. 41 (Qt, ZH, zol-5-YO-5 flu Z^_thylinda rimsinedvmn 697 methoxYPhenY,)-2, Wpy W4 LU LU LU Tryptase, Tryptas e, Tryptase, fp le" CHMC, CHMC, 11 pt CHMC, IgE, 8pt lono, 3pt [gE, 3pt , H NMR (DMSO-d6) : d 10. 44 (s, IH), 10. 40 (s, 1H), 8. 32 (d, 1 H, J 698 + +- fluoro-2, 4-pyrimidinediamine Hz), 7. 58-7. 52 (dt, 1 H, J = 2. 6 and 9. 1 Hz), 7. 16 (d, 1 H, J = 8. 8 Hz), 7. 10 (d, 1H, J=9. 1 Hz), 4. 11 (qt, 2H, J 'H NMR (DMSO-d6) : d 9. 92 (s, 1 H), 9. 78 (s, 1 H), 8. 27 (d, 1 H, J = 4. 1 N4- (3, 4-Dich [oropheny !)-N2- (1-ethy ! indazo !-6-y !)-5-f ! uoro-2, 4- HzO, 8. 08 (app d, 1 H, J = 2. 6 Hz), 7. 93 (s, 1 H), 7. 91 (s, 1 H), 7. 76 (dut, 699 + + pyrim ! dinediamine 1 H, J = 2. 6 and 8. 1 Hz), 7. 62 (d, 1H, J = 8. 5 Hz), 7. 54 (d, 1H, J = 8. 8 Hz), 7. 23 (d, 1H, J= 8. 5 Hz), 4. 14 (qt, 2 'H NMR (DMSO-d6) : d 10. 75 (s, 1H), 10. 18 (s, 2H), 8. 25 (d, 1H, J = N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxaz ! n-6-y !)-N2- (1- 4. 7 Hz), 7. 94 (s, 1H), 7. 84 (s, 1H), 7. 63 (d, 1H, J = 8. 5 Hz), 7. 27-7. 17 ethylindazol-6-y )-5-fluoro-2, 4-pyrimidinediamine (m, 3H), 6. 86 (d, 1 H, J = 8. 5 Hz), 4. 14 (qt, 2H, J = 7. 0 Hz), 1. 38 (s, 6H), 1. 28 (t, 3H, J = 7. 0 Hz). LCMS : ret. t 'H NMR (DMSO-d6) : d 10. 18 (s, 2H), 8, 26 (d, 1H, J = 4. 7 Hz), 7. 93 (s, N2- (1-Ethy ! indazo !-6-y)-5-f ! uoro-N4- (4-f) uoro-3- 1 H), 7. 90 (s, 1 H), 7. 62 (d, 1 H, J = 8. 5 Hz), 7. 50-7. 46 (m, 1 H), 7. 30- + + methoxyphenyl)-2, 4-pyrimidinediamine 7. 27 (m, 1 H), 7. 19-7. 13 (m, 2H), 4. 09 (qt, 2H, J = 7. 0 Hz), 3. 60 (s, 3H), 1. 27 (t, 3H, J = 7. 0 Hz). LCMS : ret. time 'H NMR (DMSO-d6) : d 10. 39 (s, 1H), 10. 26 (s, 1H), 8. 26 (d, 1H, J = N4- (3-Ch ! oro-4-methoxyphenyi)-5-fiuoro-N2- (1-n- 4. 7 Hz), 7. 92 (s, 1 H), 7. 82 (s, 1 H), 7. 75 (d, 1 H, J = 2. 7 Hz), 6. 66 (d, + propylindazol-5-yl)-2, 4-pyrimidinediamine 1 H, J = 9. 1 Hz), 7. 54 (dt, 1 H, J = 2. 3 and 9. 1 Hz), 7. 08 (d, 1 H, J = 9. 1 Hz), 4. 33 (t, 2H, J = 7. 0 Hz), 3. 83 (s, 3H) 'H NMR (DMSO-d6) : d 10. 21 (s, 1 H), 9. 93 (s, 1 H), 8. 26 (d, 1 H, J = 4. 4 N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- (1-n-propylindazol-5-yl)-Hz), 8. 01 (d, 1 H, J = 2. 6 Hz), 7. 94 (s, 1 H), 7. 87 (s, 1 H), 7. 69 (dd, 1 H, J + 2, 4-pyrimidinediamine = 1. 8 and 8. 8 Hz), 7. 65 (d, 1H, J = 9. 1 Hz), 7. 49 (d, 1H, J = 8. 8 Hz), 7. 41 (dd, 1 H, J = 9. 1 Hz), 4. 34 (t, 2H, 'H NMR (DMSO-d6) : d 10. 75 (s, 1H), 10. 21 (s, 2H), 8. 26 (d, 1H, J = 7 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2-4. 9 Hz), 7. 94 (s, 1H), 7. 83 (s, 1H), 7. 63 (d, 1H, J =8. 8 Hz), 7. 27-7. 17 + + 704 + + (1-n-propylindazol-5-yl)-2, 4-pyrimidinediamine (m, 3H), 6. 86 (d, 1 H, J = 8. 8 Hz), 4. 06 (t, 2H, J = 7. 0 Hz), 1. 72 (qt, 2H, J = 7. 0 Hz), 1. 38 (s, 6H), 0. 71 (t, 3H, CHMC, CHMC, lipt choc ) Ourt am"-8 pt iono, 3pt IqE lay=. ; 3r) l I H, J 8. 28 (d, 5-Piuoro-N4- (4-f) uoro-3-methoxypheny))-N2- (1-n- 4. 9 Hz), 7. 90 (s, 1 H), 7. 87 (s, 1H), 7. 63 (d, 1H, J = 9. 1 Hz), 7. 43 (dd, prop) indazol-5-yi)-2, 4-pyrimidinediamine 1 H, J = 2. 3 and 8. 8 Hz), 7. 27-7. 22 (m, 1H), 7. 14 (dd, 1 H, J = 1. 8 and 11. 1 Hz), 4. 34 (t, 2H, J = 7. 0 Hz), 3. 60 (s, 'H NMR (DMSO-d6) : d 10. 51 (s, 1H), 10. 44 (s, 1H), 8. 33 (d, 1H, J = N4- (3-Ch) oro-4-methoxyphenyt)-5-fiuoro-N2- (1-n- 4. 9 Hz), 7. 96 (s, 1H), 7. 77 (d, 1H, J = 2. 6 Hz), 7. 67 (d, 1H, J = 8. 8 Hz), + + 706 + + prop) indazol-6-yi)-2, 4-pyrimidinediamine 7. 55 (dd, 1H, J = 2. 6 and 8. 8 Hz), 7. 16 (dd, 1H, J = 2. 6 and 8. 8 Hz), 4. 03 (t, 2H, J = 7. 0 Hz), 3. 83 (s, 3H), 1. 6 'H NMR (DMSO-d6) : d 10. 15 (s, 1H), 10. 02 (s, 1H), 8. 30 (d, 1H, J = -N2 i-6-yl)-8. 06 (d, 1 H, J = 2. 6 Hz), 7. 93 (s, I H), 7. 89 (s, I H), 7. 73 (dd, N4- (3, 4-Dichtoropheny))-5-fiuoro-N2- (1-n-propyndazot-6-y !)- 4. 4 Hz). 8. 06 (d, 1H, J = 2. 6 Hz), 7. 93 (s, 1H), 7. 89 (s, 1H). 7. 73 (dd, 2, 4-pyrimidinediamine 1H, J = 2. 6 and 8. 5 Hz), 7. 65 (d, 1H, J = 8. 5 Hz), 7. 55 (d, 1 H, J = 8. 8 Hz), 7. 21 (d, 1H, J = 8. 8 Hz), 4. 07 (t, 2H, , IH), 10. 37 (s, IH), 10. 16 IH), 'H NMR (DMSO-d6) : d 10. 77 (s, 1H), 10. 37 (s, 1H), 10. 16 (s, 1H), N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yi)-5-tluoro-N2- 8. 21 (d, 1H, J = 5. 3 Hz), 7. 89 (s, 1H), 7. 87 (s, 1H), 7. 61 (d, 1H, J = 8. 8 + 706 + (1-n-propylindazol-6-yi)-2, 4-pyr) midinediamine Hz), 7. 37 (dd, 1H, J = 1. 8 and 8. 8 Hz), 7. 20 (d, 1H, J = 8. 8 Hz), 8. 87 (d, 1H, J=8. 8Hz), 4. 31 (t, 2H, J=7. 0Hz) H NMR (DMSO-d6) : d 10. 40 (s, 1H), 10. 37 (s, 1H), 8. 33 (d, I H, J 5-Fiuoro-N4- (4-fiuoro-3-methoxypheny))-N2- (1-n- 5. 0 Hz), 7. 96 (s, 1H), 7. 84 (s, 1H), 7. 64 (d, 1H, J = 8. 5 Hz), 7. 47 (dut, 709 + propyiinda2ot-6)-2, 4-pynmidinediamine 1H, J = 1. 8 and 8. 5 Hz), 7. 26-7. 22 (m, 2H), 7. 15 (dd, 1H, J = 11. 8 and 8. 8 Hz), 4. 02 (t, 2H, J = 7. 0 Hz), 3. 55 (s, 'H NMR (DMSO-d6) : d 10. 40 (s, 1H), 10. 27 (s, 1H), 7. 92 (s, 1H), 7. 82 N2- (1-n-Butyiindazot-5-y)-N4- (3-choro-4-methoxypheny))-5- (s. 1H), 7. 75 (d, 1H, J = 2. 3 Hz), 7. 65 (d, 1H, J = 9. 1 Hz), 7. 54 (dd, 1H, + {) uoro-2, 4-pyrimidinediamine J = 2. 3 and 9. 1 Hz), 7. 39 (d, 1H, J = 9. 1 Hz), 7. 09 (d, 1H, J = 9. 1 Hz), 4. 36 (t, 2H, J = 7. 3 Hz), 3. 83 (s, 3H) 'H NMR (DMSO-d6) : d 10. 43 (s, 1H), 10. 20 (s, 1H), 8. 32 (d, 1H, J N2- (1-n-Butylindazol-5-yl)-N4- (3, 4-dichlorophenyl)-5-fluoro- 4. 7 Hz), 8. 00 (d, 1H, J = 2. 3 Hz), 7. 95 (s, 1H), 7. 83 (s, 1H), 7. 67 (d, + 711 + 711 2, 4-pyrimidinediamine 2H, J = 8. 8 Hz), 7. 49 (d, 1 H, J = 8. 8 Hz), 7. 41 (dd, 1H, J = 2. 3 and 8. 8 Hz), 4. 38 (t, 2H, J = 7. 3 Hz), 1. 79 (q, 2H, ""*""'"""""---------------""'H NMR (DMSO-d6) : d 10. 75, H) J0. 28, 1H) 10JQ5'' 777 C, lipt GHMCI 'al 3pt lono igE, 3pt IgE, 8pt R H N 8. 19 (d, 1H, J 4. 9 Hz), 7. 89 (s, 2H), 7. 60 (d, 1H, J 9. 1 Hz), 7, 38 (d, + N2- (1-n-Buty)) ndazo)-5-y ()-N4- (2, 2-dimethyi-3-oxo-4H- 8. 19 (d, 1H, J = 4. 9 Hz), 7. 89 (s, 2H), 7. 80 (d, 1H, J = 9. 1 Hz), 7. 38 (d, + benz [1, 41oxazin-6-y))-5-f) uoro-2, 4-pyrim) dinediamine 1H, J = 9. 1 Hz), 7. 20 (dd, 1H, J = 1. 8 and 9. 1 Hz), 7. 16 (s, 1H). 6. 86 g (d, 1H, J=9. 1Hz), 4. 35 (t, 2H, J=7. 3Hz) ----------------'H NMR (DMSO-d6) : d 10. 42 (s, 1H), 10. 29 (s, 1H), 8. 27 (d, 1H, J= N2- (1-n-Buty) indazot-5-y))-5-ftuoro-N4- (4-f) uoro-3- 4. 9 Hz), 7. 89 (s, 1H), 7. 87 (s, 1H), 7. 63 (d, 1H, J= 8. 8 Hz), 7. 43 (dd, methoxyphenyl)-2, 4-pyrimidinediamine I H, J = 2. 3 and 8. 8 Hz), 7. 36 (dd, 1H, J = 1. 8 and 9. 1 Hz), 7. 28-7. 23 (m, (m, 1H), 7. 13 (dd, 1H, J = 11. 3 and 9. 1 HzO, H NMR (DMSO-d6) : d 10. 27 (s, 2H), 8. 30 (d, 1 H, J = 4. 7 Hz), 7. 94 (s, N2- (1-n-Butylindazol-6-yt)-N4- (3-chloro-4-methoxyphenyt)-5- 1H), 7. 82 (s, 1 H), 7. 77 (d, 1 H, J = 2. 6 Hz), 7. 65 (d, 1 H, J = 8. 8 Hz), l + 714 fluoro-2, 4-pyrimidinedi amme 7. 56 (dd, 1H, J = 2. 6 and 8. 8 Hz), 7. 16 (d, 1H, J = 8. 8 HzO, 7. 11 (d, in, J = 8. 8 Hz), 4. 06 (t, 2H, J = 7. 3 Hz), 3 H NMR (-iv io-6). d 10-2 i (s, 0. 0 (s, I H), 8. 32 (d, I H, J N2- (1-n-Buty) indazo)-6-y))-N4- (3, 4-dich (oropheny))-5-fiuoro- 4. 4 Hz), 8. 05 (d, 1 H, J = 2. 3 Hz), 7. 94 (s, 1 H), 7. 86 (s, 1 HO, 7. 72 (d, I 2. 4-pyrinndinediamine 1H, J = 8. 8 Hz), 7. 66 (d, 1H, J = 8. 8 Hz), 7. 55 (d, 1 H, J = 8. 8 Hz), 7. 20 (d, 1H. J=8. 8Hz), 4. 11 (t, 2H. J=7. 3 ----------'H NMR (DMSO-d6) : d 11. 77 (s, 1H). 10. 40 (s, 1H), 10. 36 (s. 1H), v N2- (1-n-ButyHndazot-6-y))-N4- (2, 2-dimethy)-3-oxo-4H- 8. 29 (d, 1H, J =4. 9Hz), 7 94 (s, 1H). 7. 81 (s, 1H), 7. 62 (d, 1H, J = 8. 8 \ + benztl, 4xazin-6-yt)-5-fluoro-2, 4-pyrimidinediamine Hz), 7. 23 (s, 2H), 7. 18 (d, 1H, J = 8. 8 Hz), 6. 85 (d, 1H, J = 8. 8 Hz), 4. 10 (t, 2H, J = 7. 3 Hz), 1. 67 (q, 2H, J = 7 -----'H NMR (DMSO-d6) : d 10. 42 (s, 1H), 10. 37 (s, 1H), 8. 33 (d, 1H, J = H NM-d6) : d-10. 3 N2- (1-n-Butyi) ndazo)-6-)-5-f) uoro-N4- (4-f) uoro-3- 4. 7 Hz), 7. 96 (s, 1H), 7. 84 (s, 1H), 7. 64 (d, 1H, J = 8. 8Hz), 7. 50-7. 46 717 methoxyphenyl)-2, 4-pynmidinediamine (m, 1H), 7. 27-7. 22 (m, 1H), 7. 16 (app t, 1H. J = 11. 8 and 8. 8 Hz). 4. 06 (t, 2H, J = 7. 3 Hz), 3. 54 (s, 3H), 1. 65 (q, H NMR (DMSO-d6) : d 10. 19 s, IH), 10. 03 IH), 8. 22 (d, IH, J N4- (3-Chtoro-4-methoxyphenyN2-t1- 4. 9 Hz), 7. 90 (s, 1H), 7 64 (s, 1H), 7. 76 (d, 1H, J = 2. 6 Hz), 7. 62 (d, (cyctohexy) methy)) indazo)-5-y-5-f) uoro-2, 4-pyrimid) nediamine 1H, J = 9. 1 Hz), 7. 56 (dd, 1H, J = 2. 6 and 9. 1 Hz), 7. 39 (dd, 1H, H, J 1. 8 and 9. 1 Hz), 7. 09 (d, 1H, J =9. 1 Hz), 4. 2 K, ,.. m,r,, h ans r - 3... ., v ;'o, r.,. ,-.... :.,..., n,.". _ i,. r.-. C, CHMC, CHMC, Ilpt chu ....,-u :-.. . 9 herz ft i §a.'r'at m T tase T tase T tase f s k trt a <. o- (_, a m .. ' t _, rYP rYP, P_ Y d 3I YP i : v. t P ! ta s-. e : h s _. i e. k m m u v 0 I . n ; S m. r ht . , ti. ,,,,.... : CHMC CHMC CHMC 11 t G , irle. ; . P 'j. t :"- ;. 1XT Pis «, a, rv t n 0 r _ ; I E 3 t I E 8 t lono 3 t r .. _ 9 9 P P P H NMR (DMSO-d6) : d 9. 69 (s, 1 H), 9. 38 (s, 1 H), 8. 17 (d, 1 H, J = 3. 8 719 N2- [1- (Cyclohexylmethyl) indazol-5-yl]-N4- (3, 4-dichlorophenyl)- Hz), 8. 07 (app d, 1 H, J = 2. 6 Hz), 7. 92 (s, 1 H), 7. 88 (s, 1HO, 7. 78 (d, + 719-+ 5-fluoro-2, 4-pyrimidinediamine 1 H, J = 8. 8 Hz), 7. 58 (d, 1 H, J = 9. 1 HzO, 7. 49-7. 44 (m, 2H), 4. 19 (d, 2H, J=7. 3Hz), 1. 91-1. 84 (m, 1H), 1. 62 (m 'H 7. 90 (s, 1H), 7. 84 (s, 1H), 7. 62 (d, 1H, J=9. 1Hz), 7. 37 (dd, 1H, J= 720 N2-[1-(CycloheXylmethy,) indazol-5-yl]-N4-(2, 2-dimethyl-3-oXo-2. 3 and 8. 8 Hz), 7. 23 (dd, 1H, J = 2. 3 and 9. 1 Hz), 7. 17 (s, 1H), 6. 84 4H-benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine (d, 1H, J = 9. 1 Hz), 4. 19 (d, 2H, J = 7. 3 Hz), 1. 91-1. 84 (m, 1H), 1. 62 (br s, 3H), 1. 47-1. 38 (m, 2H), 1. 36 (s 'H NMR (DMSO-d6) : d 10. 31 (s, 1H), 10. 13 (s, 1H), 8. 25 (d, 1H, J = N2- [1- (Cyclohexylmethyl) indazol-5-yl)-5-fluoro-N4- (4-fluoro-3- 4. 9 Hz), 7. 89 (s, 1H), 7. 87 (s, 1 H), 7. 62 (d, 1 H, J = 8. 8 Hz), 7. 43 (dd, 721 methoxyphenyl)-2, 4-pyrimidinediamine 1 H, J = 2. 6 and 8. 8 Hz), 7. 36 (dd, 1 H, J = 1. 8 and 9. 1 Hz), 7. 29-7. 25 (s, 1H), 7. 12 (dd, 1H, J = 8. 8 and 11. 4 Hz), 'H NMR (DMSO-d6) : d 10. 12 (s, 2H), 8. 26 (d, 1H, J = 4. 7 Hz), 7. 93 (s, N4- (3-Chloro-4-methoxyphenyl)-N2- [1-1 H), 7. 85 (s, 1 H), 7. 78 (d, 1 H, J = 2. 6 Hz), 7. 63 (d, 1 H, J = 8. 8 Hz), 722 + + (cyclohexylmethyl) indazol-6-yl]-5-fluoro-2, 4-pyrimidinediamine 7. 58 (dd, 1 H, J = 2. 6 and 8. 8 Hz), 7. 19 (d, 1 H, J = 8. 8 Hz), 7. 11 (d, 1 H, J = 8. 8 Hz), 3. 90 (d, 2H, J = 7. 3 Hz), 3 'H NMR (DMSO-d6) : d 10. 05 (s, 1H), 9. 91 (s, 1H), 8. 29 (d, 1H, J = 4. 1 N2- [1- (Cyclohexylmethyl) indazol-6-yl]-N4- (3, 4-dichlorophenyl)- HzO, 8. 05 (d, 1 H, J = 2. 3 Hz), 7. 92 (s, 1 H), 7. 90 (s, 1 H), 7. 73 (dd, 1 H, 723- 5-fluoro-2, 4-pyrimidinediamine J = 2. 3 and 8. 8 Hz), 7. 63 (d, 1 H, J = 8. 8 Hz), 7. 54 (d, 1 H, J = 8. 8 Hz), 7. 21 (d, 1 H, J = 8. 8 Hz), 3. 93 (d, 2H, 'H NMR (DMSO-d6) : d 10. 73 (s, 1H), 10. 07 (s, 1H), 10. 01 (s, 1H), N2- [1- (Cyclohexylmethyl) indazol-6-yl]-N4- (2, 2-dimethyl-3-oxo- 8. 22 (d, 1H, J = 4. 7 Hz), 7. 91 (s, 1H), 7. 86 (s, 1H), 7. 60 (d, 1H, J =8. 8 724 4H-benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine HzO, 7. 26 (dd, 1H, J = 2. 3 and 8. 5 Hz), 7. 22-7. 19 (app m, 2H), 6. 85 (d, 1 H, J = 8. 5 Hz), 3. 93 (d, 2H, J=7. 3Hz), 1 'H NMR (DMSO-d6) : d 10. 24 (s, 2H), 8. 29 (d, 1H, J =4. 7 Hz), 7. 95 (s, N2- [1- (Cyclohexylmethyl) indazol-6-yl)-5-fluoro-N4- (4-fluoro-3- 1 H), 7. 86 (s, 1 H), 7. 63 (d, 1 H, J = 8. 8 Hz), 7. 49 (dd, 1 H, J = 2. 3 and 725 + methoxyphenyl)-2, 4-pyrimidinediamine 8. 8 Hz), 7. 28-7. 24 (m, 1H), 7. 19-7. 12 (m, 2H), 3. 91 (d, 2H, J = 7. 3 Hz), 3. 55 (s, 3H), 1. 75-1. 73 (m, 1H), 1. 54 (br Tryptase, Tryptase, Tryptase, fp . amie . :, c. :.... w,... z : : s. , Z xffr.'t.' y, - LD LD Lad v ; ., k fi x i. ds, 2J k t se T tase f s ,, r tase T a YP rYP rY Y Coin o n rv t r Ond llams : u_ ., . CHMC CHMC CHMC 11 t Numier'° t j ; . P rt Z r w y"t . I E 3 t I E 8 t lono 3 t , 9 P H NMR (DMSO-d6) : d 10. 40 (s, 1 H), 10. 26 (s, 1 H), 8. 26 (d, 1 H, J = 726 N4- (3-Chloro-4-methoxyphenyl)-N2- [1- 5. 3 Hz), 7. 91 (s, 1 H), 7. 81 (s, 1 H), 7. 75 (d, 1 H, J = 2. 6 Hz), 7. 68 (d, + + (cyclobutylmethyl) indazol-5-yl]-5-fluoro-2, 4-pyrimidinediamine 1H, J = 9. 1 Hz), 7. 55 (dd, 1H, J = 2. 6 and 2. 6 and 8. 8 Hz), 7. 38 (d, 1H, J = 8. 8 Hz), 7. 09 (d, 1H, J = 9. 1 Hz), 4. 39 'H NMR (DMSO-d6) : d 10. 32 (s, 1H), 10. 06 (s, 1H), 8. 29 (d, 1H, J = 727 N2-[1-(Cyclobutylmethyl) indazol-5-yl]-N4-(3, 4-dichlorophenyl)-4. 7 Hz), 8. 00 (s, 1 H), 7. 93 (s, 1 H), 7. 84 (s, 1 H), 7. 68 (d, 2H, J = 8. 8 + 5-fluoro-2, 4-pyrimidinediamine Hz), 7. 49 (d, 1H, J = 8. 8 Hz), 7. 41 (d, 1H, J = 8. 8 Hz), 4. 40 (d, 2H), 2. 86-2. 76 (m, 1H), 1. 96-1. 75 (m, 6H). LCMS : 'H NMR (DMSO-d6) : d 10. 79 (s, 1H), 10. 40 (s, 1H), 10. 25 (s, 1H), 8. 23 72 |N2-[1-(Cyclobutylmethyl) indazol-5-yl]-N4-(2, 2-dimethyl-3-oXo- (d, 1 H, J = 4. 9 Hz), 7. 88 (s, 1 HO, 7. 86 (s, 1 HO, 7. 64 (d, 1 H, J = 8. 8 Hz), + 728 + 4H-benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine 7. 37 (d, 1H, J = 9. 1 Hz), 7. 21 (s, 1 H), 7. 18 (s, 1H), 6. 86 (d, 1H, J = 9. 1 Hz), 4. 37 (d, 1 H, J = 7. 0 Hz), 2. 83-2 'H NMR (DMSO-d6) : d 10. 48 (s, 1H), 10. 36 (s, 1H), 8. 29 (d, 1H, J = 729 N2- [1- (Cyclobuylmethyl) indazol-5-yl)-5-fluoro-N4- (4-fluoro-3- 5. 3 Hz), 7. 88 (s, 1 H), 7. 86 (s, 1 HO, 7. 67 (d, 1 H, J = 8. 0 Hz), 7. 43 (dd, + methoxyphenyl)-2, 4-pyrimidinediamine 1 H, J = 2. 3 and 8. 0 Hz), 7. 35 (dd, 1 H, J = 1. 8 and 8. 8 Hz), 7. 26-7. 23 (m, 1H), 7. 14 (dd, 1H, J = 9. 1 and 11. 8 Hz), 'H NMR (DMSO-d6) : d 10. 35 (s, 2H), 8. 31 (d, 1 H, J = 4. 7 Hz), 7. 94 (s, N4- (3-Chloro-4-methoxyphenyl)-N2- [1- 1 HO, 7. 86 (s, 1 H), 7. 78 (d, 1 H, J = 2. 3 Hz), 7. 66 (d, 1 H, J = 8. 8 Hz), + 730 (cyclobutylmethyl) indazol-6-yl]-5-fluoro-2, 4-pyrimidinediamine 7. 57 (dd, 1H, J = 2. 3 and 8. 8 HzO, 7. 16 (d, 1H, J = 8. 8 Hz), 7. 12 (d, 1H, J=8. 8Hz), 4. 09 (d, 2H, J = 7. 3 Hz), 3 'H NMR (DMSO-d6) : d 10. 27 (s, 1H), 10. 16 (s, 1H), 8. 30 (d, 1H, J = N2- [1- (Cyclobutylmethyl) indazol-6-yl]-N4- (3, 4-dichlorophenyl)- 4. 4 Hz), 7. 99 (d, 1 H, J = 2. 3 Hz), 7. 88 (s, 1 H), 7. 85 (s, 1 H), 7. 67 (dd, + 5-fluoro-2, 4-pyrimidinediamine 1 H, J = 2. 3 and 8. 8 Hz), 7. 60 (d, 1 H, J = 8. 8 Hz), 7. 51 (d, 1 H, J = 8. 8 Hz), 7. 13 (d, 1H, J=8. 8Hz), 4. 07 (d, 2H, 'H NMR (DMSO-d6) : d 10. 81 (s, 1H), 10. 63 (s, 1H), 10. 55 (s, 1H), N2- [1- (Cyclobutylmethyl) indazol-6-yl]-N4- (2, 2-dimethyl-3-oxo- 8. 33 (d, 1H, J = 5. 3 Hz), 7. 94 (s, 1H), 7. 81 (s, 1H), 7. 64 (d, 1H, J = 8. 8 + 732 4H-benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine Hz), 7. 24-7. 21 (m, 2H), 7. 17 (d, 1 H, J = 8. 5 Hz), 6. 86 (d, 1 H, J = 8. 5 dz), 4. 12 (d, 2H, J = 7. 0 Hz), 2. 71-2. 61 (m, C, Gom, > t 4 CHM t lono 3 , f , t g., ap t , a , . w IgE, 3P , " ; t, t lc7d 7' _, ' : v' . ; , H .. u_ _, '''t . w _ _ >xFK> n. r. : n. 38 td riart, r, bmp. 9. 66 (d, _.. r' ° DMS-d6) d 10. 67 (S, H, J 8. 5 Hz, T. 48 t =m'oarrt aunii Narne Go P. ComP 4 H NMR t 7. 85 (, 1H), 7. 66 td> = 7. 0 Hz), Numer "L-r--T' -5-fluoro- L 1H = 2. 3 and 1H 9. 91 (s, 1H), 8, 31 (d, H, J 5. 2 N2-L- (CY°lobuylmethyt) indazol-6 YO-5-uoro-N4 t idinediamne LCMS : ret. 3. 51 (s, 3H), 2. 6-2. 57 (m, 6N). Z33 thoxYPhenYl)-2, -PYim H NMR lMSO-d6) : d 10. 05 (s 'd, 1H, J S. 8 Hz, + ?. 87 (s 1H), 7. 80 (s,'tH), 7. 72 ( mye 7. 43 (aHJ-9. 1Hz), 7. 14 (a, H, J=8. 8 dz), 7. 96 (S, 1N), 7. 60 (d.' H J'8. 8 Hz), N4_3-Chloro-4-methoxyPhenyl 2 Hz), 4. 31 td, 2H, 7. 0 Nz), 3. 48 (s, SO-d6) : d 10. 39 ls, 1H), 10. 141s, 1H), 8. 39 (d, 1H, J c1o roPYmethY) ndazo-5-Y15'uoro-24_ H NMR (pM 7. 98 (5,'IH), 7. 89 (5, 1H), 9. T3 (d,. r ? 34 (Y idinediamsn 4. 7 Hz), 8. 05 (d. 1H, J =23 HzO pyrim 7. 54 (d, H, J-8. $Hz) T. 45 (dd, 1H, J-2. 3and8. 8 o-, P q. 32 (d, 2N, J-7. o Hzl, 1. 34-1. 2 (m -Yrimidinediamine 1H,. 1 ° 9. 1 Hzl. n.. j r 9. 1 + SO-d6) : d 10. 85 (s 11-t), 10. 46 (S, HO 10. 29 (s, 1H dz), for -p''. " * H NMR (M 735 dichlaroPheny) ethY3_ 8. 23 (d 1 -8. 5 Hz), 7. 25 Hz, Z. A2 tad, H, J-2. 3 and 9, 1 Hz) T. 27 (d, H, _5_ -P ! 4- (22'dim ImethYlndazo Y) S, 1H) 6. 95 ld H, J = 8. 5 Nz), 4. 32 (d oxaz g0-d6) : d 10. 43 (S, 1H, 1°. 27 (S H), 8. 31 (d, 1H, J- in--Y-5'uoro-2, Q-PYrimidinediamine N2-I'CYclopropY H NMR (DM 9. 1 Hz), 7. 48 tdd. r 736 oxo-4H-benzL, l _ -yu 1 Hz), 7. 31-7. 29 oro-3-A. 3 Hz), 7. 95 (S, H), 7. 94 S, Hl T. 71 (d, 1H, 73B (CY t4mp, (D o. d6) 17. 93 (s, I iit44) i, 7. ivi, B." iVi, j = 2. 6. 54 (d , r, 1H), 7. 30 (dd, 1H, J-8. 8 and 11. 1 Hzl s 2H) 8. 31 (d.'1 H J-. 3 Hz, 7. 95 (5, N2-. yyctapropYmethy) indazo , linediamsne H NMR (MSO-a6) d 10. 28 ( 7. 87 ls, 1H), 7. 79 (d, 1H, J-2. 6 Hz), T. 69 (d, H, 737 methoxYPhenY) 2, PYr d, 1H, J 2. 6 and 9. 1 Hz), 7. 19 (da 1H, J '. 8 and 1V4- (3'Chloro-4-methoxYphenY)-N2 [ 8. 8 Hz), T. 11 {d 1H, J-9. 1 Hz), 4. 32 ethyl) indazol-6-Y115'fluoro-2, 8. 8 Hx), 7. 58 (d 10, 21 (s, 1H) 10. 10 ts, 1H), 8. 32 (d, 1H, J- H 11MR (MSO-d61 d H 7. 71 (dd, 1H 7. 91 (s, ' 738 (cYlopropYlm pYr 8. 04 (d,'iH, J 2. 6 Hz), 7. 93 j s, $. 8 Hz), 7. 54 (d,'iH> J 8. 8 ;,, l ; dinediamne TL-- 1 indazol-6-yl-N&'3 4. 3 HZ) Hz), 7. 20 (d, 1H, J-8. 8 Hzl, 4. 32 (d, 21i, u2-f. -GyclopropY ..- b- dix LU LD Tryptase. Tryptase. fpsyk. :. S) gE, 8pt ono, 3pt ., Pound-Name u-mber,, N CHMC, CHMC, CHMC, llpt IgE, 3pt IgE, 8pt lono, 3pt H NMR (DMSO-d6) d10 82 (s, 1H), 10. 22 (s, 1 H), 10. 16 (s, 1H), N2- [1- (Cydopropy ! methy)) indazo !-6-y !]-N4- (2, 2-dimethy !-3- 8. 31 (d, 1 H, J = 4. 7 Hz), 8. 00 (d, 1 H, J = 0. 8 Hz), 7. 97 (s, 1 H), 7. 34 (d, + + 740 + + oxo-4H-benz [1, 4] oxazin-6-y )-5-fluoro-2, 4-pyrimidinediamine 1 H, J = 8. 8 Hz), 7. 35-7. 27 (m, 3H), 6. 92 (d, 1 H, J = 8. 5 Hz), 4. 32 (d, 2H, J = 7. 0 Hz), 1. 36 (s, 6H), 1. 33-1. 17 (m, 'H NMR (DMSO-d6) : d 10. 23 (s, 2H), 8. 31 (d, 1 H, J = 4. 9 Hz), 7. 95 (s, N2- [1- (Cydopropy ! methy !) ! ndazo !-6-y !)-5-f) uoro-N4- (4-f) uoro-3- 1H), 7. 91 (s, 1 H), 7. 65 (d, 1 H, J = 8. 8 Hz), 7. 48 (dd, 1 H, J = 2. 3 and 741 + methoxyphenyl)-2, 4-pyrimidinediamine 8. 8 Hz),, 7. 29-7. 24 (m, 1 H), 7. 20-7. 13 (m, 3H), 4. 09 (d, 2H, J = 6. 7 Hz), 3. 65 (s, 3H), 1. 33-1. 17 (m, 1H), 0. 55-0 'H NMR (DMSO-d6) : d 10. 35 (s, 1H), 10. 20 (s, 1H), 8. 24 (d, 1H, J = N4- (3-Ch ! oro-4-methoxypheny))-N2- (1-cydohexy ! indazo)-5-y !)- 5. 3 Hz), 7. 92 (s, 1 H), 7. 81 (s, 1 H), 7. 74 (d, 1 H, J = 2. 6 Hz), 7. 71 (d, 5-fluoro-2, 4-pyrimidinediamine 1H, J=8. 1 Hz), 7. 55 (dd, 1H, J=2. 6and8. 8Hz), 7. 36 (dd, 1H, J= 1. 8 and 8. 8 Hz), 7. 09 (d, 1 H, J = 8. 1 Hz), 4. 5 'H NMR (DMSO-d6) : d 10. 26 (s, 1H), 9. 99 (s, 1H), 8. 23 (d, 1H, J = 4. 9 743 N2- (l-Cyclohexylindazol-5-yl)-N4- (3, 4-dichlorophenyl)-5- Hz), 7. 96 (s, 1 H), 7. 89 (s, 1 H), 7. 80 (s, 1 H), 7. 66 (d, 1 H, J = 8. 1 Hz), + fluoro-2, 4-pyrimidinediamine 7. 61 (app s, 1H), 7. 45 (d, 1H, J = 9. 1 Hz), 7. 34 (d, 1H, J = 9. 1 Hz), 4. 53-4. 49 (m, 1H), 1. 87-1. 78 (m, 6H), 1. 67 'H NMR (DMSO-d6) : d 10. 80 (s, 1H), 10. 36 (s, 1H), 10. 15 (s, 1H), N2- (1-Cyclohexylindazol-5-yt)-N4- (2, 2-dimethyl-3-oxo-4H- 8. 21 (d, 1 H, J = 4. 9 Hz), 7. 89 (s, 1H), 7. 86 (s, 1 H), 7. 64 (d, 1 H, J = 9. 4 744 + + benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine Hz), 7. 36 (dd, 1 H, J = 2. 3 and 8. 8 Hz), 7. 18 (d, 1 H, J = 2. 3 Hz), 6. 86 (d, 1H, J = 9. 4 Hz), 4. 53-4. 49 (m, 1H), 1. 89 'H NMR (DMSO-d6) : d 10. 26 (s, 1H), 10. 07 (s, 1H), 8. 22 (d, 1H, J = N2- (1-Cydohexy ! indazo !-5-y))-5-foro-N4- (4-f) uoro-3- 5. 0 Hz), 7. 90 (s, 1 H), 7. 89 (s, 1 H), 7. 67 (d, 1 H, J = 8. 8 Hz), 7. 44 (dd, + 745 + methoxyphenyl)-2, 4-pyrimidinediamine 1 H, J = 8. 5 Hz), 7. 34 (dd, 1 H, J = 1. 8 and 8. 8 Hz), 7. 28-7. 24 (m, 1H), 7. 15 (dd, 1H, J = 8. 8 and 11. 1 Hz), 4. 53-4. 4 'H NMR (DMSO-d6) : d 10. 21 (s, 1H), 10. 19 (s, 1H), 8. 28 (d, 1H, J = N4- (3-Ch) oro-4-methoxypheny !)-N2- (1-cydohexy ! indazot-6-y !)- 4. 9 Hz), 7. 95 (s, 1 H), 7. 86 (d, 1 H, J = 2. 6 Hz), 7. 84 (s, 1 H), 7. 66 (d, + 746 + 5-fluoro-2, 4-pyrimidinediamine 1H, J=8. 5 Hz), 7. 59 (dd, 1H, J =2. 6 and 9. 1 Hz), 7. 21 (dd, 1H, J = 1. 8 and 8. 5 Hz), 7. 06 (d, 1H, J=9. 1 Hz), 4. 19 aXm. __, Syk, s.... . . rt s u . LD LD LD w. s e " Y r r. Gorri'o nd Tr ase T ase T ase s k t f P, rY, fP :. P bs __ Y P rYP _ Y Gom ounName Ph _mlt, , , a.. s_na, ; CHMC, CHMC, llpt . p IgE, 8pt lono, 3pt , > a , . HMC CHMC CHMC 1 t Numer 6 C 1 P .. . _ I E 3 t I E 8 t lono 3 t m 9 P 9 P P H NMR (DMSO-d6) : d 10. 05 (s, 1H), 9. 88 (s, 1 H), 8. 29 (d, 1 H, J =4. 9 747 N2-(1-Cyclohexylindazol-6-yl)-N4-(3, 4-dichlorophenyl)-5-Hz), 8. 11 (d, 1 H, J = 2. 6 Hz), 7. 93 (s, 1 H), 7. 92 (s, 1 H), 7. 78 (dd, 1 H, J + 747 + fluoro-2, 4-pyrimidinediamine = 2. 6 and 8. 8 Hz), 7. 64 (d, 1 H, J = 8. 5 Hz), 7. 51 (d, 1 H, J = 8. 8 Hz), 7. 22 (dd, 1 H, J = 1. 7 and 8. 5 Hz), 4. 19 'H NMR (DMSO-d6) : d 10. 76 (s, 1H), 10. 25 (s, 1H), 10. 18 (s, 1H), 748 N2-(1-Cyclohexylindazol-6-yl)-N4-(2, 2-dimethyl-3-oXo-4H-8. 24 (d, 1 H, J = 4. 9 Hz), 7. 94 (s, 1 H), 7. 83 (s, 1 H), 7. 63 (d, 1 H, J = 8. 5 + 748 * benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine Hz), 7. 31-7. 22 (m, 3H), 6. 80 (d, 1H, J = 8. 5 Hz), 4. 23-4. 12 (m, 1H), 1. 85-1. 77 (m, 6H), 1. 65-1. 62 (m, 1 H), 1. 38 (s, 'H NMR (DMSO-d6) : d 10. 02 (s, 1H), 9. 95 (s, 1H), 8. 26 (d, 1H, J =4. 3 749 N2 1-Cyclohexylindazol-6-yi)-5-fluoro-N4- (4-fluoro-3- Hz), 7. 93 (s, 2H), 7. 83 (s, 1 H), 7. 63 (d, 1 H, J = 8. 8 Hz), 7. 55 (dd, 1 H, J 749 + methoxyphenyl)-2, 4-pyrimidinediamine = 2. 6 and 8. 8 HzO, 7. 31-7. 28 (m, 1H), 7, 18 (d, 1H, J = 8. 8 Hz), 7. 12 (dd, 1H, J = 8. 8 and 11. 4 Hz), 4. 11-4. 00 'H NMR (DMSO-d6) : d 12. 23 (s, 1H), 9. 53 (s, 1H), 9. 36 (s, 1H), 8. 14 750 N4-(3, 4-Dichlorophenyì)-5-fluoro-N2-(3-methylindazol-6-yl)- (d, 1 H, J = 3. 5 Hz), 8. 10 (d, 1 H, J = 2. 7 Hz), 7. 88 (s, 1 H), 7. 86 (dd, 1 H, + + 750 + + 2, 4-pyrimidinediamine J = 2. 7 and 8. 8 Hz), 7. 47 (d, 2H, J = 8. 8 Hz), 7. 16 (dd, 1 H, J = 1. 8 and 8. 8 Hz), 2. 36 (s, 3H). LCMS : ret. time 'H NMR (DMSO-d6) : d 10. 62 (s, 1H), 9. 63 (s, 1H), 9. 44 (s, 1H), 8. 13 751 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- (d, 1 H, J = 41. Hz), 7. 84 (s, 1 H), 7. 50 (d, 1 H, J = 8. 8 Hz), 7. 36 (dd, 1 H, + + 751 + + (3-methylindazol-6-yl)-2, 4-pyrimidinediamine J = 2. 3 and 8. 5 Hz), 7. 31 (d, 1 H, J = 2. 3 Hz), 7. 24 (dd, 1 H, J = 1. 8 and 8. 8 Hz), 6. 89 (d, 1 H, J = 8. 5 Hz), 2. 41 'H NMR (DMSO-d6) : d 10. 49 (s, 1H), 10. 43 (s, 1H), 8. 33 (d, 1H, J = 752 N4-(3-Chloro-4-methoxypheny,)-N2-(1, 3-dimethylindazol-6-yl)-5. 3 Hz), 7. 77 (d, 1 H, J = 2. 6 Hz), 7. 67 (d, 1 H, J = 1. 2 Hz), 7. 62 (d, 1 H, + + 752 + + 5-fluoro-2, 4-pyrimidinediamine J = 8. 8 Hz), 7. 55 (dd, 1 H, J = 2. 6 and 8. 8 Hz), 7. 10 (d, 1 H, J = 8. 8 Hz), 7. 09 (d, 1 H, J = 8. 8 Hz), 3. 83 (s, 3H), 1 'H NMR (DMSO-d6) : d 9. 65 (s, 1 H), 9. 50 (s, 1 H), 8. 22 (d, 1 H, J = 3. 5 753 N4- (3, 4-Dichlorophenyl)-N2- (1, 3-dimethylindazol-6-yi)-5- H), 8. 12 (d, 1H, J = 2. 3 Hz), 7. 91 (d, 1H, J = 1. 8 Hz), 7. 79 (dd, 1H, J = fluoro-2, 4-pyrimidinediamine 2. 3 and 8. 8 Hz), 7. 52 (dd, 2H, J = 2. 3 and 8. 8Hz), 7. 18 (dd, 1 H, J = 1. 8 and 8. 8 Hz), 3. 69 (s, 3H), 2. 39 (s, 3H) Lu LD LD compound Tryptase, Tryptase, Tryptase, fp d Name' Uompodn N (itnb "- ; CHMC, CHMC, CHMC, Ilpt IgE, 3pt IgE, 8pt lono, 3pt 'H NMR (DMSO-d6) : d 10. 25 (s, 2H), 8. 26 (d, 1 N2- (1, 3-Dimethy) indazo !-6-y !)-N4- (2, 2-dimethy !-3-oxo-4H- 4. 9 Hz), 7. 72 (s, 1 H), 7. 57 (d, 1 H, J = 8. 5 Hz), 7. 25 (dd, 1 H, J = 2. 3 benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine and 8. 5 Hz), 7. 22 (app s, 1H), 7. 14 (dd, 1H, J = 2. 3 and 8. 5 Hz), 6. 87 (d, 1 H, J = 8. 5 Hz), 3. 37 (s, 3H), 2. 40 (s, 3H 'H NMR (DMSO-d6) : d 10. 14 (s, 2H), 8. 28 (d, 1H, J = 3. 7 Hz), 7. 79 (d, N2- (1, 3-Dimethy) indazo !-6-y !)-5-f) uoro-N4- (4-f ! uoro-3- 1 H, J = 1. 8 Hz), 7. 57 (d, 1 H, J = 8. 5 Hz), 7. 48 (dd, 1 H, J = 2. 3 and 8. 5 + + 755 + + methoxyphenyl)-2, 4-pyrimidinediamine Hz), 7. 31-7. 26 (m, 1H), 7. 17 (dd, 1H, J = 8. 8 and 11. 4 Hz), 7. 10 (dd, 1H, J = 1. 8 and 8. 8 Hz), 3. 66 (s, 3H), 3. 6 'H NMR (DMSO-d6) : d 10. 44 (s, 1H), 9. 89 (s, 1H), 8. 21 (d, 1H, J = 5. 6 N4- (3-Chbro-4-methoxypheny !)-N2- (1, 6-dimethy ! ! ndazo !-5-y !)- Hz), 7. 97 (s, 1 H), 7. 70 (s, 1 H), 7. 62 (s, 1 H), 7. 58 (s, 1 H), 7. 46 (d, 1 H, J + 5-fluoro-2, 4-pyrimidinediamine = 8. 5 Hz), 6. 91 (d, 1 H, J = 8. 5 Hz), 4. 00 (s, 3H), 3. 75 (s, 3H), 2. 32 (s, 3H). LCMS : ret. time : 9. 25 min. ; 'H NMR (DMSO-d6) : d 10. 34 (s, 1 H), 9. 70 (s, 1 H), 8. 24 (d, 1 H, J = 4. 7 N4- (3, 4-Dichlorophenyl)-N2- (1, 6-dimethylindazol-5-yl)-5- Hz), 7. 97 (s, 1H), 7. 87 (s, 1H), 7. 68 (s, 1 H), 7. 58 (s,'1 H). 7. 55 (d, 1 H, J 757 + fluoro-2, 4-pyrimidinediamine = 8. 5 Hz), 7. 37 (d, 1 H, J = 8. 5 Hz), 4. 01 (s, 3H), 2. 32 (s, 3H). LCMS : ret. time : 11. 58 min. ; purity : 91% ; 'H NMR (DMSO-d6) : d 10. 70 (s, 1H), 10. 51 (s, 1H), 8. 16 (d, 1H, J = N2- (1. 6-Dimethy ! ! ndazo)-5-y !)-N4- (2, 2-dimethy !-3-oxo-4H- 4. 9 Hz), 7. 95 (s, 1H), 7. 74 (s, 1H), 7. 55 (s, 1H), 7. 17 (d, 1H, J = 8. 5 758 + + benz [1, 4] oxazin-6-yl)-5-fluoro- 2, 4-pyrimidinediamine Hz), 6. 69 (d, 1 H, J = 8. 5 Hz), 4. 00 (s, 3H), 2. 34 (s, 3H), 1. 31 (s, 6H). LCMS : ret. time : 8. 24 min. ; purity : 96% ; 'H NMR (DMSO-d6) : d 10. 42 (s, 1H), 9. 84 (s, 1H), 8. 18 (d, 1H, J = 3. 9 759 N2- (1, 6-Dimethylindazol-5-y )-5-fluoro-N4- (4-fluoro-3- Hz), 7. 96 (s, 1 H), 7. 74 (s, 1 H), 7. 57 (s, 1 H), 7. 45 (d, 1 H, J = 8. 5 Hz), + methoxyphenyl)-2, 4-pyrimidinediamine 7. 20 (m, 1 H), 6. 97 (m, 1 H), 4. 02 (s, 3H), 3. 55 (s, 3H), 2. 33 (s, 3H). LCMS : ret. time : 9. 33 min. ; purity : 96% ; 'H NMR (DMSO-d6) : d 10. 25 (s, 1H), 10. 06 (s, 1H), 8. 36 (d, 1H, J = N4- (3, 4-Dichbrophenyl)-N2- (2-ethylindazol-6-yl)-5-fluoro-2, 4- 1. 8 Hz), 8. 30 (d, 1 H, J = 4. 4 Hz), 8. 03 (d, 1 H, J = 2. 3 Hz), 7. 86 (s, 1H), 760 + + pyrimidinediamine 7. 82 (dd, 1 H, J = 2. 6 and 8. 8 Hz), 7. 66 (d, 1 H, J = 8. 8 Hz), 7. 53 (d, 1 H, J=8. 8Hz), 7. 14 (dd, 1H, J=1. 8and lono, 3pt - .......... t . ' k. jazz 'sot 3o (s, I r"'''''''-s H..---- n oound Na 0 d6) d dub 071 LJ-- r"S : S H-- iZ (d, 1",'2. t NMR ( (dd, lti, 3-2 3 Hz). 7. 27 tir \ L 3. 1 2_p ; methy-3-oxo-4H-beazl1, 4lxazin-6 Y)-N2-2. onidinediamne 7. 40 (d, H J-2. 3 H ? 9. 82 (S,'1H), 8. 25 d H, J h. 4 &_ yn 1H, J-1. 8 and 9. 1 Hz), 6. 89 (d, Ive, J = 7. 74 (dd> 1N, k N4- (Z, H NMR (MSO-d6) : d 10. 14 (S, N), 761 lindazoi-6-Y)'5 uoro-2, p 8. 06 (d, 1H. J-2. 3 NzO 7. 83 ts,'1H), ethy 9. 1 Hz), 7. 50 (d,'H, J 9. 1 Hz) yazot-5-Y1-Hz), 8. 22 (s, 1H), = 2. 3 and 9. 1 Hz), 7. 57 (d, 1H, 3 1H, J = 2. 3 and 9. 1 Hz), 4. 34 ro henyl5'uoro-2-t2n'propY 7. 27 (dd, 1H), 10. 33 (s, 1N) 10. 07 (s, 1H) Nd_ (3, 4-Dichlo P H MR pMgp-d6 : d 10. 77 (S, J . 3 Hz), 8. 15 (s, 1H), 7. 81 (s, 1N), 7. 54 (d,'H 9. 1 . + 62 2, _Pim ; dinediamm $ m, 3H, 6. 86 td, H, J-9. 1 Hz, . 32 (t, 2H, J = 7. 3 _5_uaro-N2-8. 20 (d, 1H, J = 5 929 (s, H), 9. 08 (s,'H), 8. 1T Nz), 1. 90 (sQt, 2H, 3-. 3 Nz), 1. 36 (s, Nq- (2, 2-pimethyl--oxo-4H-benzL1, °xazn-6-JO , 4-rimidinediamine HZ), 7. 23 7. 1 N NMR (MO-d6) : d 10, 56 (S, H), = 3. 8 Hz), k _ l 2, PY 8. 13 (d, H, J-Q. 8 Hz), 8. 09 ld'H, 763 t2-n-propYindazol-5 Y) . 1 Hz), T. 41 (d, 1H J-2. 3 Hz), 7, 29 (dd, 1H, J-2. 3 _-fluoro-t2 a, 1, J-0. 8 Hz, Nc_t2, 2-pimethy-3-°xo-4H-benZL1 4°xazin-YO 5 rimsdnediamine 7. 8 d 1H, 1= g and 8. 1 Hz), 8. 24 (d _ 1-2, -PY. . 12 (dd, 1H, J-2. 3 and 8 DMSO-dfi) : d 9. 93 (S, 1N), 9. 67 (S H) 8. 28 (s, 1H), 1H), T. 88 (dd, 1H,. 1 . k 64 pdazoi-6 Y) t2_n_proPY S NMR ( 2. 3 Hz), 7. 91 (S> > 8. 8 Hz), 7. 51 (d, 1H, _n_propYindaxol-6-YO-'1H, J c 4. 1 H2, 8. 05 (d H 2. 6 and 8. 8 Hz), T. 61 (d, 1H J-8. S Hz), 1 _5_uoro-N2- (2 7. 15 (dN, J8. 8Nz), A. 28 (t, 2N, _d6) : d 10. 69 (s, 1N), t0. 09 (s, H), 9. 88 (s, H), 8. 21 y_3, 4-Dichloropheny) z, 7. 91 (d, 1H,. 1= 0. 8 tlz, Z. 83 (S N) . 61 (d, 1H, 765 2, 4 pyrrt, ldinediamm 1H NMR lpMSO 2g tdd, 1H,. 1= 2. 3 and 8. 5 Hz ?, 7. 17 (dd 1H, J-2. 3 an d, 1H, J = 4. N) 1 H, J-2. 3 Hz), 6. 85 (d, W'J-8. 5 Nz), 3. 80 (S, + 8. 5 Hz), 7. AB qt J 1.. 6 Nz), 2. 26-2. 18 (m, H) 1. 92 (br , 1H, oxazin-6-Yl) y5'fluoro-N2- dg. 5 Hz) 7. 13 (d, S 6N, 1. 32-1. 21 (, 2H1, 1. 03 s, inediamine D-CamPhor-'-3H) 2. 87 (d, 1H, _ 2 2-DimethY-3'°xo-4H-benz [' 4 > d 1. 8&1. 83 (m 2H), = 4. 7 Hz) 1. 38 ( Y 3. LCMS : tet. time : 9. 53 min. ; purity : 94% ; MS (mle : u l . eth lindazoi-6-YO2, 4-pYim 766 (1 m 3H), 0. T3 (> > Sulfonic Acid Sat 434 (MH+) Compound ; S& : ; X 'M"Tryptase, Tryptase, Tryptase, fp syk, . Compoun&Narna-..,......, NunaA ; ; g ; 'gg ; CHMC, CHMC. 11pt H NMR (DMSO-d6) : d 10. 70 (s, 1H) J N4- (2, 2-D ! methy)-3-oxo-4H-benz [1, 4] oxazin-6-y !)-5-f) uoro-N2- C ame ompoun ( e-""'''"CHMC, CHMC, CHMC, Ilpt Numb '8. 24 (d, 1H, J=4. 9Hz), 7. 92 (d, 1H, J=0. 8Hz), 7. 80 (s, 1H), 7. 63 (d, 767 1-methy) indazo !-6-y))-2, 4-pyrimidinediam ! ne Ethanesufonic + +- 1H, J=8. 8Hz), 7. 28 (dd, 1H, J=2. 3and8. 8Hz), 7. 16 (d, 1H, J=1. 8 Acid ! t and 8. 5 Hz), 7. 11 (d, 1 H, J = 2. 3 Hz), 6. 8 'H NMR (DMSO-d6) : d 10. 69 (s, 1H), 10. 17 (s, 1H), 9. 92 (s, 1H), 8. 21 H NMR (DMSO-d6) : d 10. 69 (s, 1H), 10. 17 (s, 1H), 9. 92 (s, 1H), 8. 21 (d, 1H, J=4. 7Hz), 7. 92 (d, 1H. J=0. 8Hz), 7. 81 (s, 1H), 7. 62 (d, 1H, 768 1-methyi ! ndazo !-6-yi)-2, 4-pyr ! m ! d ! ned ! amine p-+ +- J=8. 5Hz), 7. 38 (td, 2H, J=2. 6and8. 8Hz), J=7. 28 (dd, 1H, J=2. 3 Hydroxybenzenesu ! fon ! c Add Sa ! t and8. 5Hz), 7. 16 (d, 1H, J=1. 8and8 'H NMR (DMSO-d6) : d 10. 70 (s, 1H), 10. 28 (s, 1H), 10. 00 (s, 1H), N4- (2, 2-Dimethy !-3-oxo-4H-benz [1, 4] oxazin-6-y))-5-fiuoro-N2- 8. 22 (d, 1 H, J= 4. 9 Hz), 7. 94 (d, 1H, J= 0. 8 Hz), 7. 78 (s, 1H), 7. 64 (d, 769 1-methy) indazo !-6-y !)-2, 4-pyrimidined ! amine Benzenesu ! fon ! c + +- 1H. J =8. 8 Hz), 7. 60-7. 56 (m, 2H), 7. 33-7. 26 (m, 4H), 7. 15 (d, 1 H, J AcidSat 1. 8 and 8. 5 Hz), 7. 10 (d, 1 H, J = 2. 3 Hz), 'H NMR (DMSO-d6) : d 10. 74 (s, 1H), 10. 21 (s, 2H), 8. 26 (d, 1H, J = N4- (2, 2-Dimethy !-3-oxo-4H-benz [1, 4] oxazin-6-y))-5-f ! uoro-N2- 4. 9Hz), 7. 92 (d, 1H, J=0. 8Hz), 7. 82 (s, 1H), 7. 62 (d, 1H, J=8. 8Hz), 770 1-methy ! ! ndazo !-6-yi)-2, 4-pyrimidinediam ! neHydrochbric Acid + +- 7. 27 (dd, 1H, J=2. 3and8. 5Hz), 7. 21 (d, 1H, J=2. 3Hz), 7. 18 (dd, Sa ! t 1H, J=1. 8and8. 5Hz), 6. 86 (d, 1H, J= 1 'H NMR (DMSO-d6) : d 10. 18 (s, 1H), 9. 91 (s, 1H), 8. 21 (d, 1H, J = 4. 7 N4- (3, 4-D ! ch) oropheny))-5-f) uoro-N2- [1- (2- Hz), 7. 98 (d, 1 H, J = 2. 3 Hz), 7. 90 (s, 1 H), 7. 81 (s, 1 H), 7. 66 (app d, + + methoxyethyl) indazol-5-y ]-2, 4-pyrimidinediamine 1H, J = 8. 8 Hz), 7. 60 (d, 1H, J = 9. 1 Hz), 7. 46 (d, 1H, J = 9. 1 Hz), 7. 37 (dd, 1 H, J = 2. 3 and 8. 8 Hz), 4. 48 (t, 'H NMR (DMSO-d6) : d 10. 45 (s, 1H), 10. 33 (s, 1H), 8. 27 (d, 1H, J = N4- (3-Ch ! oro-4-methoxypheny))-5-ftuoro-N2- [1- (2- 4. 9 Hz), 7. 93 (s, 1 H), 7. 81 (d, 1 H, J = 1. 5 Hz), 7. 74 (d, 1 H, J = 2. 3 Hz), + + methoxyethyl) indazol-5-y ]-2, 4-pyrimidinediamine 7. 65 (d, 1H, J = 8. 8 Hz), 7. 54 (dd, 1H, J = 2. 3 and 9. 1 Hz), 7. 37 (dd, 1H, J=2. 6and9. 1 Hz), 7. 10 (d, 1H, J= 'H NMR (DMSO-d6) : d 10. 78 (s, 1H), 10. 35 (s, 1H), 10. 19 (s, 1H), N4- (2, 2-Dimethy)-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2-8. 21 (d, 1 H, J = 4. 9 Hz), 7. 90 (s, 1 H), 7. 87 (s, 1 H), 7. 60 (d, 1 H, J = 8. 8 + + 1- (2-methoxyethyl) indazol-5-yl]-2, 4-pyrimidined ! amine Hz), 7. 36 (dd, 1 H, J = 1. 8 and 8. 8 Hz), 7. 21 (dd, 1 H, J = 1. 8 and 8. 5 Hz), 7. 17 (s, 1H), 6. 87 (d, 1H, J = 8. 5 Hz), LU LU .. m '.- , - 06nd ., : s. .. 4."v_ . :.. "... number :,. a. s f a r. ^ a 3 w 01'1'1 OLIIIt w Tr tase T tase T tase s k a 'r01T1 OLI dj. c'tTlS f rei"-. r N n _N . I a> -ve W, -k. kHU. mu ieak p Number :-3,., r_ "CHMC, CHMC, CHMC, llpt . > > H, 3pt asm''SS N. r a. r. r W h Cn v : _ i , oNZ ___I E 3 t I E 8 t lono 3 t Y v rv v,-1 1 7 . 9 P 9 P P ne a Y H NMR (DMSO-d6) : d 10. 19 (s, 1H) 8. 20 (d, 1H, J =4. 7 774 5-Fluoro-N4- (4-fluoro-3-methoxyphenyl)- N2- [1- (2- Hz), 7. 90 (s, 2H), 7. 61 (d, 1 H, J = 8. 8 Hz), 7. 44 (dd, 1 H, J = 2. 6 and 774 + + methoxyethyl) indazol-5-yl]-2, 4-pyrimidinediamine 8. 8 Hz), 7. 37 (dd, 1 H, J = 2. 0 and 8. 8 Hz), 7. 29-7. 26 (m, 1 H), 7. 13 (dd, 1 H, J = 8. 8 and 11. 1 Hz), 4. 53 (t, 2H, J 'H NMR (DMSO-d6) : d 10. 08 (s, 1 H), 9. 96 (s, 1 H), 8. 26 (d, 1 H, J = 4. 4 775 N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- [1- (2- Hz), 8. 03 (d, 1 H, J = 2. 3 Hz), 7. 91 (d, 1 H, J = 0. 8 Hz), 7. 82 (s, 1 H), + + methoxyethyl) indazol-6-yl]-2, 4-pyrimidinediamine 7. 70 (dd, 1 H, J = 2. 3 and and 8. 8 Hz), 7. 60 (d, 1 H, J = 8. 8 Hz), 7. 49 (d, 1H, J=8. 8Hz), 7. 19 (dd, 1H, J=1. 8a 'H NMR (DMSO-d6) : d 10. 02 (br s, 2H), 8. 24 (d, 1 H, J = 4. 7 Hz), 7. 95 776 N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- [1- (2- (d, 1 H, J = 0. 8 Hz), 7. 83 (s, 1 H), 7. 79 (d, 1 H, J = 2. 6 Hz), 7. 63 (d, 1 H, + + 776 + + methoxyethyl) indazol-6-yl]-2, 4-pyrimidinediamine J = 8. 8 Hz), 6. 59 (dd, 1 H, J = 2. 6 and 9. 1 Hz), 7. 21 (dd, 1 H, J = 1. 8 and 8. 8 Hz), 7. 09 (d, 1H, J = 9. 1 Hz), 4. 2 1 'H NMR (DMSO-d6) : d 10. 71 (s, 1 H), 10. 18 (brs, 2H), 8. 20 (d, 1H, J = 777 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2-4. 9 Hz), 7. 91 (d, 1 H, J = 0. 8 Hz), 7. 75 (s, 1 H), 7. 57 (d, 1 H, J = 8. 5 Hz), + + [1- (2-methoxyethyl) indazol-6-yl]-2, 4-pyrimidinediamine 7. 23-7. 15 (m, 3H), 6. 81 (d, 1 H, J = 8. 8 Hz), 4. 24 (t, 2H, J = 5. 3 Hz), 3. 61 (t, 3H, J = 5. 3 Hz), 3. 06 (s, 3H), 1 'H NMR (DMSO-d6) : d 9. 92 (br s, 2H), 8. 23 (d, 1H, J = 4. 4 Hz), 7. 94 778 5-Fluoro-N4- (4-fluoro-3-methoxyphenyl)- N2- [1- (2- (d, 1 H, J = 0. 8 Hz), 7. 91 (s, 1 H), 7. 59 (d, 1 H, J = 8. 5 Hz), 7. 48 (dd, 1 H, + 778 + methoxyethyl) indazol-6-yl]-2, 4-pyrimidinediamine J = 2. 6 and 8. 8 Hz), 7. 34-7. 30 (m, 1 H), 7. 21 (dd, 1 H, J = 1. 8 and 8. 8 Hz), 7. 15 (dd, 1 H, J = 8. 8 and 11. 1 Hz), 'H NMR (DMSO-d6) : d 10. 39 (s, 1H), 10. 27 (s, 1H), 8. 26 (d, 1H, J = N4- (3-CMoro-4-methoxypheny !)-5-f) uoro-N2- [1- (1- 4. 9 Hz), 7. 93 (s, 1 H), 7. 81 (d, 1 H, J = 1. 4 Hz), 7. 74 (d, 1 H, J = 2. 3 Hz), + methylethyl) indazol-5-yl]-2, 4-pyrimidinediamine 6. 67 (d, H, J = 9. 1 Hz), 7. 54 (dd, 1H, J = 2. 3 and 9. 1 Hz), 7. 37 (dd, 1H, J = 1. 8 and 8. 8 Hz), 7. 09 (d, 1 H, J = 'H NMR (DMSO-d6) : d 10. 20 (s, 1H), 9. 91 (s, 1H), 8. 26 (d, 1H, J = 780 N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- [1- (1-methylethyl) indazol- 4. 7 Hz), 8. 02 (d, 1 H, J = 2. 3 Hz), 7. 94 (s, 1 H), 7. 86 (s, 1 H), 7. 68 (d, + 780 + 5-yl]-2, 4-pyrimidinediamine 1 H, J = 8. 8 Hz), 7. 66 (d, 1 H, J = 9. 1 Hz), 7. 50 (d, 1 H, J = 8. 8 Hz), 7. 41 (dd, 1H, J=1. 8and9. 1 Hz), 4. 95 (q, 1H, LD LD LD zoom S : 1'"k _. pyr, M" m x.. _.. s. : + : va .,, r... s., _"", a, 5". w. _''n^. :. ;, m.,. : ; r number'. v. .,. N ; , > e, =- _e. m a m r L i i > C c, Com ou d =E n ;, . E " . Tr tase Tr tase T tase s k .. YP YP rYP fP_ Y "u . x r w Gom ound Name ii vil. Caf'' v*3 Number ? , : _ n, v : r CHMC, CHMC CHMC 11 t u T ? ae : 2 a k , .... I E 3 t I E 8 t lono 3 t .. 5 ! 3 !'rt7 ; 3 : sT'^ n n n 9 P 9 P P h. N H NMR (DMSO-d6) : d 10. 76 (s, 1 H), 10. 32 (s, 1H), 10. 11 (s, 1H), 781 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- 8. 19 (d, 1H, J = 5. 3 Hz), 7. 90 (s, 1H), 7. 89 (s, 1H), 7. 62 (d, 1H, J = 8. 8 + [1- (1-methylethyl) indazol-5-yl]-2, 4-pyrimidinediamine Hz), 7. 36 (dd, 1H, J = 1. 8 and 8. 8 Hz), 7. 19 (d, 2H, J = 8. 9 Hz), 6. 87 (d, 1H, J=8. 8Hz), 4. 91 (q, 1H, J=6. 4H 'H NMR (DMSO-d6) : d 10. 35 (s, 1H), 10. 21 (s, 1H), 8. 25 (d, 1H, J = 782 5-Fluoro-N4- (4-fluoro-3-methoxyphenyl)- N2- [l- (I- 4. 9 Hz), 7. 90 (s, 1H), 7. 88 (s, 1H), 7. 65 (d, 1H, J = 8. 1 Hz), 7. 43 (dd, + 782 + methylethyl) indazol-5-yl]-2, 4-pyrimidinediamine 1 H, j = 2. 3 and 8. 8 Hz), 7. 35 (dd, 1 H, J = 1. 8 and 8. 8 Hz), 7. 26-7. 22 (m, 1 H), 7. 14 (dd, 1 H, J = 8. 8 and 11. 1 Hz), 'H NMR (DMSO-d6) : d 10. 10 (s, 2H), 8. 25 (d, 1H, J =4. 7 Hz), 7. 93 (s, 783 N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- [1- (1- 1 H), 7. 86 (s, 1 H), 7. 78 (d, 1 H, J = 2. 3 Hz), 7. 64 (d, 1H, J = 8. 8 Hz), + methylethyl) indazol-6-yl]-2, 4-pyrimidinediamine 7. 56 (dd, 1 H, J = 2. 3 and 8. 8 Hz), 7. 18 (d, 1 H, J = 8. 8 Hz), 7. 10 (d, 1 H, J = 8. 9 Hz), 4. 45 (q, 1 H, J = 6. 4 Hz), 'H NMR (DMSO-d6) : d 10. 06 (s, 1H), 9. 93 (s, 1H), 8. 30 (d, 1H, J = 784 N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- [l- (l-methylethyl) indazol- 4. 3 Hz), 8. 06 (d, 1 H, J = 2. 3 Hz), 7. 93 (s, 2H), 7. 76 (dd, 1 H, J = 2. 3 and 6-yl]-2, 4-pyrimidinediamine 8. 8 Hz), 7. 64 (d, 1 H, J = 8. 8 Hz), 7. 54 (d, 1 H, J = 8. 8 Hz), 7. 21 (dd, 1H, J=1. 8and8. 8Hz), 4. 55 (q, 1H, J=6 1 'H NMR (DMSO-d6) : d 10. 76 (s, 1H), 10. 14 (s, 2H), 8. 24 (d, 1H, J = 78 |N4-(2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2-4. 9 Hz), 7. 93 (s, 1H), 7. 88 (s, 1H), 7. 61 (d, 1H, J = 8. 8 Hz), 7. 27-7. 16 + 785 + [1- (1-methylethyl) indazol-6-yl]-2, 4-pyrimidinediamine (m, 3H), 6. 88 (d, 1 H, J = 8. 8 Hz), 4. 50 (q, 1 H, J = 6. 4 Hz), 1. 37 (d, 6H, J = 6. 4 Hz), 1. 35 (s, 6H). LCMS : ret. t 'H NMR (DMSO-d6) : d 10. 77 (s, 1H), 10. 14 (s, 1H), 9. 93 (s, 1HO, 8. 22 786 (S)-N4- [2-Methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl]-5-fluoro- (d, 1 H, J = 4. 7 hz), 7. 93 (s, 1 H), 7. 92 (s, 1 H), 7. 60 (d, 1 H, J = 8. 5 Hz), + 786 + N2- [1- (1-methylethyl) indazol-6-yl]-2, 4-pyrimidinediamine 7. 27 (dd, 1H, J = 2. 3 and 8. 5 HzO, 7. 21-7. 16 (m, 2H), 6. 90 (d, 1H, J = 8. 5 Hz), 4. 65 (qt, 1H, J = 6. 7 Hz), 4. 4 1H NMR (DMSO-d6) : d 10. 17 (s, 1H), 9. 90 (s, 1H), 8. 21 (d, 1H, J = 787 N2- [1- (3-Acetyloxypropyl) indazol-5-yl]-N4- (3, 4- 4. 7 Hz), 7. 97 (d, 1 H, J = 2. 3 Hz), 7. 90 (dd, 1 H, J = 2. 3 and 8. 8 Hz), + + 787 + + dichlorophenyl)-5-fluoro-2, 4-pyrimidinediamine 7. 59 (d, 1 H, J = 8. 8 Hz), 7. 47 (d, 1 H, J = 8. 8 Hz), 7. 38 (dd, 1 H, J = 2. 0 and 8. 8 Hz), 4. 41 (d, 2H, J=6. 7Hz), 3. 88 , = X w AC, §CHMC t1Pt j LD LD ,. C. ,... lYw1". . t ., n rf CHMC, CHMC, CHMC, Ilpt :. =, ?-_.''. ez n . LD LD LD nez . r : : s... ,. :..,... . :. :., : ,. y.. r . , : :. . .... _.. i P W v Y,, . c t.. e v-6 rs j d S w av^ w t t t f k om-ou d z r. = T ase T ase T ase s P. _ o G. _ : rYP, rY L _ o.. oan Narne = .,. -1. h 1 c d r= C MC CHMC CHMC 11 t Number-, W e a. a H i I E 3 t I E 8 t lono 3 t 9 P 9 P P e 1H NMR (DMSO d6) : d 10. 32n (s, 1H), 10. 19 (s, 1H), 8. 24 (d, 1H, J= 788 N2- [1- (3-Acetyloxypropyl) indazol-5-yl]-N4- (3-chloro-4- 5. 3 Hz), 7. 93 (s, 1 H), 7. 85 (s, 1 H), 7. 74 (d, 1 H, J = 2. 3 Hz), 7. 63 (d, + + 788 + + methoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine 1 H, J = 8. 8 Hz), 7. 54 (dd, 1 H, J = 2. 3 and 9. 1 Hz), 7. 40 (dd, 1 H, J = 2. 3 and 8. 8 Hz), 7. 09 (d, 1 H, J = 9. 1 Hz), 4. 1H NMR (DMSO-d6) : d 10. 31 (s, 1 H), 10. 15 (s, 1H), 8. 24 (d, 1H, J = 789 N2- [l- (3-Acetyloxypropyl) indazol-5-yi]-5-fluoro-N4- (4-fluoro-3- 4. 7 Hz), 7. 91 (s, 2H), 7. 61 (d, 1 H, J = 8. 8 Hz), 7. 44 (dd, 1 H, J = 2. 3 + + 789 + + methoxyphenyl)-2, 4-pyrimidinediamine and 8. 8 Hz), 7. 38 (dd, 1 H, J = 1. 8 and 9. 1 Hz), 7. 27-7. 25 (m, 1H), 7. 15 (dd, 1H, J = 8. 8 and 11. 1 Hz), 4. 45 (t, 2H, J 1 H NMR (DMSO-d6) : d 9. 96 (s, 1 H), 9. 83 (s, 1 H), 8. 27 (d, 1 H, J = 4. 1 790 N2-[1-(3-Acetyloxypropyl) indazol-6-yl]-N4-(3, 4-Hz), 8. 09 (d, 1 H, J = 2. 3 Hz), 7. 94 (s, 1 H), 7. 92 (s, 1 H), 7. 75 (dd, 1 H, J + + dichlorophenyl)-5-fluoro-2, 4-pyrimidinediamine = 2. 3 and 8. 8 Hz), 7. 63 (d, 1 H, J = 8. 8 Hz), 7. 53 (d, 1 H, J = 8. 8 Hz), 7. 23 (dd, 1 H, J = 1. 8 and 8. 8 Hz), 4. 20 1H NMR (DMSO-d6) : d 10. 68 (s, 1H), 9. 84 (s, 1H), 9. 74 (s, 1H), 8. 18 791 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yi)-5-fluoro-N2- (d, 1 H, J = 4. 4 Hz), 7. 90 (s, 1 H), 7. 56 (s, 1 H), 7. 58 (d, 1 H, J = 8. 8 Hz), + + [1- (3-hydroxypropyi) indazol-6-yl]-2, 4-pyrimidinediamine 7. 32-7. 24 (m, 3H), 6. 85 (d, 1 H, J = 8. 8 Hz), 4. 20 (t, 2H, J = 6. 7 Hz), 3. 29 (t, 2H, J = 6. 4 Hz), 1. 87 (app q, 2H 1H NMR (DMSO-d6) : d 10. 42 (s, 1 H), 10. 30 (s, 1H), 8. 26 (d, 1 H, J = 792 N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- [1- (3- 5. 2 Hz), 7. 93 (s, 1 H), 7. 82 (d, 1 H, J = 1. 8 Hz), 7. 74 (d, 1 H, J = 2. 3 Hz), methoxypropyl) indazol-5-yl]-2, 4-pyrimidinediamine 7. 60 (d, 1 H, J = 9. 1 Hz), 7. 53 (dd, 1 H, J = 2. 3 and 9. 1 Hz), 7. 38 (dd, 1H, J=1. 8and9. 1 Hz), 7. 09 (d, 1H, J=9 1 H NMR (DMSO-d6) : d 10. 36 (s, 1 H), 10. 13 (s, 1 H), 8. 30 (d, 1 H, J = 793 N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- [1- (3- 5. 0 Hz), 8. 01 (d, 1H, J = 2. 3 Hz), 7. 95 (s, 1H), 7. 86 (s, 1H), 7. 68 (dd, methoxypropyl) indazol-5-yl]-2, 4-pyrimidinediamine 1 H, J = 2. 3 and 8. 8 Hz), 7. 61 (d, 1 H, J = 9. 1 Hz), 7. 51 (d, 1 H, J = 8. 8 Hz), 7. 41 (dd, 1 H, J = 1. 8 and 9. 1 Hz), 4. 4 1H NMR (DMSO-d6) : d 10. 77 (s, 1H), 10. 42 (s, 1H), 10. 27 (s, 1H), 794 N4-(2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- 8. 23 (d, 1H, J = 4. 3 Hz), 7. 90 (s, 1H), 7. 88 (s, 1H), 7. 56 (d, 1H, J = 8. 8 + + [1- (3-methoxypropyl) indazol-5-yl]-2, 4-pyrimidinediamine Hz), 7. 37 (dd, 1 H, J = 1. 8 and 8. 8 Hz), 7. 21 (app d, 2H, J = 9. 1 Hz), 6. 87 (d, 1H, J=9. 1 Hz), 4. 39 (t, 2H, J=6. LD LD LD n sx. . r, . . o-,. ri .., , . al-. _ compound , CHMC, CHMC, CHMC, llpt LD LD LD .. r. v ... h t° t"e : 2 i. a :. y : J. y5 t i. m u 1 y< t T tase T tase f s k T ase r C m ul__ rYP YP rYP, P_ Y am unr3 Na e % Ph icaC ! t," ; -N, a^ . H o m P__ 36 Y, t san c m w M CHMC CHMC 11 t CH C Number ° x P , ro 1, yt" s 5 T I E 3 t I E 8 t lono 3 t a nx-.,. 9 P 9 P P e E a 1 H NMR (DMSO-d6) : d 10. 73 (s, 1 H), 10. 32 (s, 1 H), 10. 15 (s, 1 H), (S)-5-Fluoro-N2- [1- (3-methoxypropyl) indazol-5-yl]-N4- (2- 8. 17 (d, 1 H, J = 4. 9 Hz), 7. 85 (s, 1H), 7. 83 (s, 1H), 7. 51 (d, 1H, J=8. 8 795methyl-3-oxo-2H, 4H-benz [1, 4] oxaz ! n-6-y !)-2, 4- + +- Hz), 7. 33 (dd, 1 H, J = 2. 1 and 9. 1 Hz), 7. 16 (dd, 2H, J = 2. 3 and 9. 1 pyrimidinediamine Hz), 6. 84 (d, 1 H, J = 8. 8 Hz), 4. 60 (qt, 1 H, 1H NMR (DMSO-d6) : d 10. 16 (s, 2H), 8. 27 (d, 1H, J = 4. 7 Hz), 7. 95 (d, 796 N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- [1- (3- 1 H, J = 0. 8 Hz), 7. 80 (s, 1 H), 7. 78 (d, 1 H, J = 8. 8 Hz), 7. 65 (d, 1 H, J + + methoxypropyl) indazol-6-yl]-2, 4-pyrimidinediamine 2. 3 and 9. 1 Hz), 7. 58 (dd, 1 H, J = 2. 3 and 9. 1 Hz), 7. 20 (dd, 1 H, J = 1. 8 an 8. 8 Hz), 7. 09 (d, 1 H, J = 9. 1 Hz), 1H NMR (DMSO-d6) : d 10. 13 (s, 1H), 10. 02 (s, 1H), 8. 31 (d, 1H, J = 797 N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- [1- (3- 4. 1 Hz), 8. 06 (d, 1H, J = 2. 3 Hz), 7. 95 (s, 1H), 7. 87 (s, 1H), 7. 74 (dd, + + methoxypropyl) indazol-6-yl]-2, 4-pyrimidinediamine 1 H, J = 2. 3 and 8. 8 Hz), 7. 65 (d, 1 H, J = 8. 5 Hz), 7. 54 (d, 1 H, J = 8. 8 Hz), 7. 22 (d, 1H, J=8. 5Hz), 4. 17 (t, 2H, 1 H NMR (DMSO-d6) : d 10. 73 (s, 1 H), 9. 92 (s, 2H), 8. 21 (d, 1 H, J = 4. 7 79 N4-(2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2-Hz), 7. 92 (s, 1 H), 7. 89 (s, 1 H), 7. 58 (d, 1 H, J = 8. 8 Hz), 7. 29-7. 24 (m, + + + [1- (3-methoxypropyl) indazol-6-yl]-2, 4-pyrimidinediamine 3H), 6. 85 (d, 1 H, J = 8. 5 Hz), 4. 17 (t, 2H, J = 6. 7 Hz), 3. 14 (app qt, 2H, J = 6. 4 Hz), 3. 13 (s, 3H), 1. 92 (app 1H NMR (DMSO-d6) : d 10. 76 (s, 1H), 10. 11 (s, 2H), 8. 23 (d, 1H, J = (S)-5-Fluoro-N2- [1- (3-methoxypropyl) indazol-6-yl]-N4- (2- 4. 7 hz), 7. 94 (s, 1 H), 7. 86 (s, 1 H), 7. 62 (d, 1 H, J = 8. 5 Hz), 7. 28-7. 19 799methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-y))-2. 4- + +- (m, 3H), 6. 88 (d, 1H, J= 8. 5 Hz), 4. 64 (qt, 1 H, J = 6. 7 Hz), 4. 17 (t, 2H, pyrimidinediamine J = 6. 7 Hz), 3. 16 (app qt, 2H, J = 6. 7 Hz 1H NMR (DMSO-d6) : d 10. 17 (s, 1H), 8. 20 (d, 1H, J =4. 9 Hz), 7. 85 (s, 800 N4-(3-ChloroXmethoxyphenyl)-5-fluoro-N2-(2-trifluoromethyl-1 H), 7. 69 (d, 1 H, J = 2. 3 Hz), 7. 61 (d, 1 H, J = 8. 8 Hz), 7. 59 (dd, 1 H, J + + + + 1 H-benzimidazol-5-yl)-2, 4-pyrimidinediamine = 2. 3 and 8. 8 Hz), 7. 39 (dd, 1 H, J = 2. 0 and 8. 8 Hz), 7. 04 (d, 1 H, J = 9. 1 Hz), 3. 76 (s, 3H). 1H NMR (DMSO-d6) : d 9. 84 (s 1H) 9. 70 (s 1H) 8. 19 (d 1H, J = 4. 1 N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- (2-trifluoromethyl-1 H- 801 Hz), 8. 05 (d, 1 H, J = 2. 3 Hz), 7. 96 (s, 1 H), 7. 75 (dd, 1 H, J = 2. 3 and + + + + benzimidazol-5-yl)-2, 4-pyrimidinediamine 8. 8 Hz), 7. 60 (d, 1 H, J = 9. 1 Hz), 7. 47-7. 43 (m, 2H). 1H NMR (DMSO-d6) : d 10. 71 (s, 1H), 10. 26 (s, 1H), 10. 21 (s, 1H), 802 N4-(2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2-8. 22 (d, 1 H, J = 4. 9 Hz), 7. 88 (s, 1 H), 7. 61 (d, 1 H, J = 8. 8 Hz), 7. 49 + + + (2-trifluoromethyl-1H-benzimidazol-5-yl)-2, 4-pyrimidinediamine (dd, 1H, J = 2. 3 and 8. 8 Hz), 7. 24 (s, 1H), 7. 22 (s, 1H), 6. 86 (d, 1H, J = 8. 8 Hz), 1. 36 (s, 6H). 4 , a lu ,. a . -T : LD LD LD ,.. c.. x _ ; ., u 't L.. r.... . ° _=x : _ r :,. S.. s. . CHMC, CHMC, CHMC, Ilpt zu Numb a.'4,"" : . ; ; .'a t t k , c a = T tase T ase T ase s om o d , C an > e."P fP_ rYP, rYP rY Y h t t5 _. r N t ri< P HM CHM 19 t ab, _CHMC C C C Niimber , : _ > a" , > > P e c fw t I E t I E 8 t lono 3 P P P ur,. t 1 H NMR (DMSO-d6) : d 10. 71 (s, 1 H), 10. 27 (s, 1 H), 10. 22 (s, 1 H), (S)-5-Fluoro-N4- (2-methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)- 8. 22 (d 1 H J = 4. 9 Hz) 7. 93 (s 1 H) 7. 62 (d 1 H J = 8. 8 Hz), 7. 46 803N2- (2-trifluoromethyl-1H-benzimidazol-5-yl)-2, 4- + +- (dd, 1 H, J = 2. 3 and 8. 8 Hz), 7. 24 (s, 1 H), 7. 21 (s, 1 H), 6. 89 (d, 1 H, J = pyrimidinediamine 8. 8 Hz), 4. 66 (qt, 1 H, J = 6. 7 Hz), 1. 40 (d, 1H NMR (DMSO-d6) : d 10. 13 (s, 1H), 9. 94 (s, 1H), 8. 17 (d, 1H, J =4. 9 804 N2-(3-Amino-1-methylindazol-5-yl)-N4-(3-chloro-4-Hz), 7. 76 (s, 1 H), 7. 75 (d, 1 H, J = 2. 3 Hz), 7. 61 (dd, 1 H, J = 2. 3 and 804 + + methoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine 9. 1 Hz), 7. 44 (s, 2H), 7. 05 (d, 1H, J = 9. 1 Hz), 3. 80 (s, 3H), 3. 79 (s, 3H). 1H NMR (DMSO-d6) : d 10. 17 (s, 1H), 9. 90 (s, 1H), 8. 21 (d, 1H, J = 805 N2- (3-Amino-1-methylindazol-5-yl)-N4- (3, 4-dichlorophenyl)-5- 4. 7 Hz), 7. 97 (d, 1 H, J = 2. 3 Hz), 7. 90 (dd, 1 H, J = 2. 3 and 8. 8 Hz), 805 + fluoro-2, 4-pyrimidinediamine 7. 59 (d, 1 H, J = 8. 8 Hz), 7. 47 (d, 1 H, J = 8. 8 Hz), 7. 38 (dd, 1 H, J = 2. 0 and 8. 8 Hz), 4. 41 (d, 2H, J = 6. 7 Hz), 3. 88 1 H NMR (DMSO-d6) : d 10. 75 (s, 1Hj,-0. 46 (s, 1H), 10. 40 (s, 1H), N2-(3-Amino-1-methylindazol-5-yl)-N4-(2, 2-dimethyl-3-oXo-4H-8. 22 (d, 1 H, J= 4. 9 Hz), 7. 79 (s, 1 H), 7. 54 (dd, 1 H, J = 2. 3 an d8. 8 Hz), benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine 7. 48 (d, 1 H, J = 9. 1 Hz), 7. 28 (app br s, 1 H), 7. 22 (dd, 1 H, J = 2. 3 and 9. 1 Hz), 6. 54 (d, 1H, J = 8. 8 Hz), 3. 84 (s, 1H NMR (DMSO-d6) : d 10. 76 (s, 1H), 10. 38 (s, 1H), 10. 28 (s, 1H), 807 (S)-N2- (3-Amino-1-methylindazol-5-yl)-5-fluoro-N4- (2-methyl- 8. 20 (d, 1 H, J = 5. 3 Hz), 7. 80 (s, 1 H), 7. 53 (d, 1 H, J = 9. 1 Hz), 7. 48 (d, + + 3-oxo-4H-benz [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine 1 H, J = 9. 1 Hz), 7. 27 (s, 1 H), 7. 25 (s, 1 H), 6. 87 (d, 1 H, J = 9. 1 Hz), 4. 63 (qt, 1 H, J = 6. 7 Hz), 3. 83 (s, 3H), 1. 3 1H NMR (DMSO-d6) : d 9. 53 (s, 1H), 9. 40 (s, 1H), 8. 14 (d, 1H, J = 3. 8 N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- (2-methyl-3H- 808 Hz) 8. 13 (s, 1 H), 7. 86 (d, 1 H, J = 2. 6 Hz), 7. 72-7. 67 (m, 2H), 7. 59 (d, + + + benzimidazol-5-yl)-2, 4-pyrimidinediamine 1 H, J = 8. 8 Hz), 7. 11 (d, 1 H, J = 9. 1 Hz), 3. 83 (s, 3H), 2. 72 (s, 3H). I I 1H NMR (DMSO-d6) : d 9. 93 (s, 2H), 8. 28 (d, 1H, J=4. 8Hz), 8. 12 (d, N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- (2-methyl-3H- 809 1 H, J = 2. 6 Hz), 8. 07 (s, 1 H), 7. 81 (dd, 1 H, J = 2. 3 and 9. 1 Hz), 7. 66 + + + benåmidazol-5-yl)-2, 4-pyrimidinediamine (s, 2H), 7. 56 (d, 1 H, J = 8. 8 Hz), 2. 75 (s, 3H). 1H NMR (DMSO-d6) : d 10. 70 (s, 1H), 9. 56 (s, 1H), 9. 40 (s, 1H), 8. 21 810 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- (s, 1H), 8. 12 (d, 1H, J = 3. 8 Hz), 7. 79 (dd, 1H, J = 2. 3 and 9. 1 Hz), (2-methyl-3H-benzimidazol-5-yl)-2, 4-pyrimidinediamine 7. 55 (d, 1 H, J = 8. 8 Hz), 7. 52 (s, 1 H), 7. 31 (dd, 1 H, J = 2. 3 and 8. 8 Hz), 6. 88 (d, 1 H, J = 8. 8 Hz), 2. 72 (s, 3H), 1. , pou lu C' f = u. ! b t Nu x :... . » vc. :,, s- v_ro w r"n r ! "s. r : m Qm au f _ . u. r niNa w. r,. wa, : 9 fi w Nu 1"c s. 1 D°t-4. T Y f i-ase T 5. . , Y tas 4 s a.. P p e f s m u f w h : H u M C , no C x L,'. a. v o-4. 1 J ,.. . r o. -, _ -o. g pt f9E, 8pt lono, 3pt 1H NMR (DMSO-d6) : d 10. 69 (s, 1H), 9. 58 (s, 1H), 9. 42 (s, 1H), 8. 23 811 methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4- '' (s, 1H), 8. 12 (d, 1H, J=3. 5Hz), 7. 74 (dd, 1H, J=2. 3and8. 8H2). 811methy)-3-oxo-2H, 4H-benz [1, 4Joxazin-6-y !)-2, 4- + +-+ pyrimidinediamine 7. 57 (d, 1H, J = 9. 1 Hz), 7. 53 (d, 1H, J = 2. 3 Hz), 7. 29 (dd, 1H, J = 2. 3 + + + pyrimidinediamine and 8. 8 Hz), 6. 91 (d, 1H, J-8. 8Hz), 4. 64 1H NMR (DMSO-d6) : d 11. 06 (s, 1H), 9. 53 (s, 1H), 9. 44 (s, 1H), 8. 16 812 N2- (1, 3-Dimethylindazol-6-yl)-N4- (2, 2-dimethyl-3-oxo-4H-5- (d, 1H, J = 3. 5 Hz), 7. 83 (s, 1H), 7. 53 (d, 1H, J = 8. 5 Hz), 7. 45 (d, 1H, 812 pyrid [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine J = 8. 8 Hz), 7. 30 (d, 1H, J = 8. 5 Hz), 7. 15 (dd, 1H, J = 2. 3 and 8. 8 Hz), 3. 67 (s, 3H), 2. 33 (s, 3H), 1. 36 (s, 6H 1H NMR (DMSO-d6) : d 12. 21 (s, 1H), 11. 02 (s, 1 H), 9. 30 (s, 1 N), 9. 12 813 N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro- (s, 1H), 8. 11 (d, 1H, J = 3. 5 Hz), 7. 90 (s, 1 H), 7. 69 (d, 1 H, J-8. 5 Hz) 813 " N2- (3-methyl-1 H-indazol-6-yl)-2, 4-pyrimidinediamine 7. 43 (d, 1H, J = 8. 5 Hz), 7. 33 (d, 1 H, J = 8. 8 Hz), 7. 19 (d, 1 H, J = 8. 8 Hz), 2. 34 (s, 3H), 1. 36 (s, 6H). 9H NMR (DMSO-d6) : d 11. 10 (s, 1H), 9. 22 (s, 1H), 9. 19 (s, 1H), 812 12 814 N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro- (d, 1 H, J = 3. 5 Hz), 8. 05 (s, 1 H), 7. 84 (s, 1 H), 7. 57 (d, 1 H, J = 8. 5 Hz), 814 + N2-11- (3-methoxypropyl) indazol-5-yil-2, 4-pyrimidinediamine 7. 50 (d, 1 H, J = 8. 8 Hz), 7. 46 (d, 1H, J = 8. 8 Hz), 7. 35 (d, 1 H, J = 8. 8 Hz), 4. 37 (t, 2H, J = 6. 4 Hz), 3. 22 (t, 1H NMR (DMSO-d6) : d 10. 36 (s, 1H), 10. 25 (s, 1H), 8. 21 (d, 1H, J = N4- (3-Chtoro-4-methoxypheny))-5-f) uoro-N2- [1- [3- (N- 4. 9 Hz), 7. 85 (s, 1H), 7. 79-7. 75 (m, 5H), 7. 67 (d, 1H, J = 2. 3 Hz), 7. 63 phthafimidopropyl)] indazol-5-yl]-2, 4-pyrimidinediamine 1. 8and9. 1 Hz), 7. 03 (d, 1H, J=8. 8Hz) 1. 8 and 9. 1 Hz), 7. 03 (d, 1H, J = 8. 8 Hz) _ _ IH NMR (DMSO-d6) : d 10. 24 (s, 1H), 9. 99 (s, 1H), 8. 23 (d, 1H, J = 4. 7 816 N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- [1- [3- (N- Hz), 7. 95 (d, 1 H, J = 2. 0 Hz), 7. 87 (s, 1H), 7. 80 (s, 1 H), 7. 78-7. 73 (m, 816 phthalimidopropyl)] indazol-5-yl]-2, 4-pyrimidinediamine 4H), 7. 64 (d, 1 H, J = 9. 1 Hz), 7. 45 (d, 1 H, J = 8. 8 Hz), 7. 36 (dd, 1 H, J = 1. 8 and 9. 1 Hz), 4. 41 (t, 2H, J = 6. 7 1H NMR (DMSO-d6) : d 10. 78 (s, 1H), 10. 45 (s, 1H), 10. 32 (s, 1H), 817 N4-(2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2-8. 24 (d, 1H, J = 4. 9 Hz), 7. 88 (s, 1H), 7. 87 (s, 1H), 7. 84-7. 77 (m, 4H), 817 + [1--[3- (N-phthalimidopropyl)] indazol-5-yl]-2, 4-pyrimidinediamine 7. 65 (d, 1H, J = 8. 8 Hz), 7. 37 (dd, 1H, J = 1. 8 and 9. 1 Hz), 7. 20 (d, 8. 8 H), 6. 86 (d, 1H, J=9. 1 Hz), 4. 4 F p,,,, 1H LD LD .. R ry, Fnw.-"'a. _. xtv.... __pyr, .. ='_ E"Y.. ... K'^.... i, 7. '. ? r. %.. a. :. :, z'f".-... . LD LD LD aT Com oa . ;, a>- rrd p t,. ase T tase T tase s k , , fl.. . rYP, rYP, a. _ 4, 1-., , t g rYP _ Y 3 Com oand r , = e., P_ : N tne . Ph c1 Ct., x. . , U b8'' m r : $ C MC CHMC CHMC 11 t T s : t r d 4' 1 s ° 4... V s- : F I E 3 t I E 8 t I ono 3 t 9 P 9 : jrv° , k,, p p 1 H NMR (DMSO-d6) : d 10. 80 (s, 1 H), 10. 44 (s, a1 H), 10. 30 (s 1 H), (S)-5-Fluoro-N4- (2-methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yi)- 8. 24 (d, 1 H, J = 5. 3 Hz), 7. 89 (s, 1 H), 7. 87 (s, 1 H), 7. 82-7. 77 (m, 4H), + 818 N2- [1- [3- (N-phthalimidopropyl)] indazol-5-yl]-2, 4- + 7. 67 (d, 1 H, J = 8. 8 Hz), 7. 37 (dd, 1 H, J = 1. 8 and 9. 1 Hz), 7. 22 (dd, pyrimidinediamine 1 H, J = 1. 8 and 8. 8 Hz), 7. 18 (s, 1 H), 6. 89 (d 1 H NMR (DMSO-d6) : d 10. 22 (s, 1H), 10. 05 (s, 1H), 8. 21 (d, 1H, J = 819 N2- [1- [3- (N-Acetylamino) propyl] indazol-5-yl]-N4- (3-chloro-4- 4. 9 Hz), 7. 92 (s, 1 H), 7. 90 (m, 1 H), 7. 86 (s, 1 H), 7. 75 (d, 1 H, J = 2. 3 + + methoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine Hz), 7. 64 (d, 1 H, J = 9. 1 Hz), 7. 57 (dd, 1 H, J = 2. 3 and 8. 8 Hz), 7. 39 (dd, 1H, J=1. 8and8. 8Hz), 7. 09 (d, 1H, J 1H NMR (DMSO-d6) : d 9. 51 (s, 1H), 9. 23 (s, 1), 8. 10 (d, 1H, J = 3. 8 820 N2- [l- [3- (N-Acetylamino) propyl] indazol-5-yi]-N4- (3, 4- Hz), 8. 04 (d, 1 H, J = 2. 3 Hz), 7. 95 (s, 1 H), 7. 82 (m, 2H), 7. 74 (dd, 1 H, + dichlorophenyl)-5-fluoro-2, 4-pyrimidinediamine J = 2. 0 and 9. 1 Hz), 7. 51 (d, 1H, J = 9. 1 Hz), 7. 44 (d, 1H, J = 9. 1 Hz), 7. 43 (dd, 1 H, J = 1. 8 and 9. 1 Hz), 4. 30 ( 1H NMR (DMSO-d6) : d 10. 77 (s, 1H), 10. 38 (s, 1H), 10. 18 (s, 1H), 821 N2- [1- [3- (N-Acetylamino) propyl] indazol-5-yl]-N4- (2, 2-dimethyl- 8. 21 (d, 1 H, J = 4. 9 Hz), 7. 90 (s, 3H), 7. 61 (d, 1 H, J = 8. 8 Hz), 7. 36 + 821 + 3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine (dd, 1 H, J = 2. 0 and 9. 1 Hz), 7. 21 (d, 1 H, J = 8. 5 Hz), 7. 18 (s, 1 H), 6. 89 (d, 1H, J=8. 5Hz), 4. 36 (t, 2H, J=7. 0Hz 1H NMR (DMSO-d6)-d 11 05 (s 1H) 9. 18 (s 1H) 915 (s 1H) 8 07 N2- [1- [3- (N-Acetylamino) propyl] indazol-5-yl]-N4- (2, 2-dimethyl- H NMR (DMSO-d6) : d 11. 05 (s, 1H), 9. 18 (s, 1H), 9. 15 (s, 1H), 8. 07 l (d, 1H) 3. 5Hz) 8. 01 (s 1H), 7. 80 (d 1H J=6. 3Hz) 7. 79 (s, 1H), 82 13-oxo-4H-5-pyrid [1 4] oxazin-6-yi)-5-fluoro-24-...... + + 8223-oxo-4H-5-pyrid [1, 4] oxaz ! n-6-y))-5-f) uoro-2, 4- + + 7. 52 (d, 1H, J = 8. 5 Hz), 7. 48-7. 40 (m, 2H), 7. 31 (d, 1H, J = 8. 5 Hz), pyrimidinediamine 4. 29 (t, 2H, J=7. 0Hz), 2. 94 (qt, 2H, J= 1H NMR (DMSO-d6) : d 10. 25 (s, 1H), 10. 21 (s, 1H), 8. 21 (d, 1H, J = 823 N2-[1-(3-Aminopropyi) indazol-5-yl]-N4-(3-chioro-4-4. 8 Hz), 7. 97 (br s, 2H), 7. 88 (s, 1H), 7. 84-7. 78 (m, 2H), 7. 70 (d, 1 H, J + 823 + methoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine = 2. 6 Hz), 9. 08 (d, 1 H, J = 9. 1 Hz), 7. 49 (dd, 1 H, J = 2. 6 and 8. 8 Hz), 7. 36 (dd, 1 H, J = 1. 8 and 8. 8 Hz), 7. 06 (d 1H NMR (DMSO-d6) : d 10. 01 (s, 1H), 9. 77 (s, 1H), 8. 24 (d, 1H, J = 3. 1 824 N2- [1- (3-Aminopropyl) indazol-5-yl]-N4- (3, 4-dichlorophenyl)-5- Hz), 8. 06 (d, 1 H, J = 2. 6 Hz), 7. 96 (s, 1 H), 7. 95 (s, 1 H), 7. 90-7. 85 (m, + fluoro-2, 4-pyrimidinediamine 2H), 7. 75 (d, 1 H, J = 8. 5 Hz), 7. 67 (d, 1 H, J = 8. 8 Hz), 7. 53 (d, 1 H, J = 8. 8 Hz), 7. 47 (dd, 1 H, J = 2. 0 and 9. 1 , y asz u °Y"a.. , LD LD LD t... s_ r,. m t a,.. a 3 ou d m n, : r t -. e s k Tr ase T tase T tas f YP rYP rYP. P_ Y rc fTl 1'1 s .. .. A O dhi B am, Eh TscLLf . aY CHMC, CHMC, CHMC, llpt k _ P zu k r_ I E 3 t I E 8 t lono 3 t a 9 , u.. P 9 p P 1HNMR (DMSO-d6) : d 10. 77 (s, 1H), 10. 35 (s, 2H), 8. 20 (d, 1H, J = 825 N2-[1-(3-Aminopropyi) indazol-5-yl]-N4-(2, 2-dimethyl-3-oXo-4H-5. 0 Hz), 7. 94 (br s, 2H), 7. 94 (s, 1 H), 7. 86 (s, 1 H), 7. 82-7. 79 (m, 1H), + 825 benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine 7. 62 (d, 1 H, J = 9. 1 Hz), 7. 34 (dd, 1 H, J = 1. 8 and 9. 1 Hz), 7. 21 (br s, 1 H), 7. 15 (dd, 1 H, J = 1. 8 and 8. 8 Hz), 1H NMR (DMSO-d6) : d 10. 78 (s, 1H), 10. 30 (s, 2H), 8. 18 (d, 1H, J = $26 (S)-N2- [1- (3-Aminopropyl) indazol-5-yl]-5-fluoro-N4- (2-methyl- 4. 9 Hz), 7. 93 (br s, 2H), 7. 91 (s, 1 H), 7. 87 (s, 1 H), 7. 83-7. 80 (m, 1 H), + 826 + 3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine 7. 63 (d, 1 H, J = 8. 8 Hz), 7. 36 (dd, 1 H, J = 1. 8 and 8. 8 Hz), 7. 21 (br s, 1H), 7. 17 (dd, 1H, J = 2. 3 and 8. 5 Hz), 1 H NMR (DMSO-d6) : d 10. 39 (s, 1 H), 10. 03 (s, 1 H), 8. 20 (d, 1H, J = N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- [1- (3- 5. 3 Hz), 7. 95 (s, 1 H), 7. 80 (d, 1 H, J= 1. 8 Hz), 7. 74 (d, 1H, J= 2. 6 827 hydroxypropyl) indazol-5-ylj-2, 4-pyrimidinediamine p-+ _ Hz), 7. 64 (d, 1 H, J = 8. 8 Hz), 7. 54 (dd, 1 H, J = 2. 6 and 9. 1 Hz), 7. 46 To) uenesu) fonic Acid Salut (d, 2H, J = 8. 1 Hz), 7. 38 (dd, 1 H, J = 2. 1 and 1H NMR (DMSO-d6) : d 10. 63 (s, 1H), 10. 23 (s, 1H), 8. 24 (d, 1H, J = N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- [1- (3- 5. 5Hz), 7. 97 (s, 1H), 7. 76 (d, 1H, J=1. 8Hz), 7. 72 (d, 1H, J=2. 4Hz), 828 hydroxypropyl) indazol-5-yl]-2, 4-pyrimidinediamine Bis p-+ +- 7. 66 (d, 1 H, J = 9. 1 Hz), 7. 52 (dd, 1 H, J = 2. 6 and 8. 8 Hz), 7. 47 (d, 4H, Toluenesulfonic Acid Salt J = 8. 1 Hz), 7. 35 (dd, 1 H, J = 1. 8 and 1H NMR (DMSO-d6) : d 10. 38 (s, 1H). 10. 02 (s, 1H), 8. 19 (d, 1H, J = N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- [1- (3- 4. 7 Hz), 7. 95 (s, 1 H), 7. 80 (s, 1 H), 7. 74 (s, 1 H), 7. 65-7. 58 (m, 4H), + + + 829 hydroxypropyl) indazol-5-yl]-2, 4-pyrimidinediamine + + + 7. 38 (d, 1 H, J = 9. 1 Hz), 7. 29 (s, 3H), 7. 07 (d, 1 H, J = 8. 8 Hz), 4. 42 (t, Benzenesulfonic Acid Salt 2H, J = 6. 7 Hz), 3. 82 (s, 3H), 3. 37 (t, 2H, N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- [1- (3- 1 H NMR (DMSO-d6) : d 10. 29 (s, 1H), 9. 95 (s, 1H), 8. 19 (d, 1H, J = 5. 1 N4- (3-Chbro-4-methoxypheny !)-5-f ! uoro-N2- [1- (3- 830 hydroxypropyi) indazoi-5-yi]-2, 4-pyrimidinediamine Bis Hz), 7. 94 (s, 1 H), 7. 81 (d, 1 H, J = 1. 8 Hz), 7. 75 (d, 1H, J=2. 6Hz), 830 iydroxypropy !)) ndazoi-5-y !]-2, 4-pynm ! d ! ned ! a ! THne Bs + +- 7. 65-7. 53 (m, 7H), 7. 39 (dd, 1 H, J = 2. 0 and 8. 8 Hz), 7. 31-7. 26 (m, Benzenesulfonic Acid Salut 5H), 7. 07 (d, 1 H, J = 8. 8 Hz), 4. 42 (t, 2H, J N4-(3-Chloro-4-methoxyphenyl)-5-fluoro-N2-[1-(3-1H NMR (DMSO-d6) : d 10. 36 (s, 1H), 10. 25 (s, 1H), 8. 21 (d, 1H, J = N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- [1- (3- 5. 3 Hz), 7. 87 (s, 1 H), 7. 77 (d, 1 H, J = 1. 5 Hz), 7. 69 (d. 1 H, J = 2. 1 Hz), 831 hydroxypropyl) indazol-5-yl]-2, 4-pyrimidinediamine Hydrogen 5. + _ Chloride Salt 7. 57 (d, 1 H, J = 9. 1 Hz), 7. 49 (dd, 1 H, J = 2. 3 and 8. 8 Hz), 7. 33 (dd, Chloride Salt 1 H, J = 2. 0 and 9. 1 Hz), 7. 03 (d, 1H, J= ........ f... _ . r., ri : x_ ; 4 i : : < ;. : r.. _. ru''. , __pyk, muer. ........ choc, choc, Ilpt m,. s'6 s. OfT1 OIICId t ., P -. . Tr ase Tr tase T tase f s k , 7. . r, r YP, rYP P_ YP _ z b. 4 om o nd ams th E y,. a... x, : F : ut u e ; = : CHMC CHMC C M a , .,, H C, 11pt n P a,. I E t 3 I E 8 t lono 3 t P P h 1H NMR (DMSO-d6) : d 10. 60 (s, 1 H), 10. 52 (s, 1H), 8. 30 (d, 1H, J = N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- [1- [3- (N- 5. 6 Hz) 7. 95 (s, 1 H), 7. 81 (d, 1 H, J = 1. 8 Hz), 7. 73 (d, 1 H J = 2. 3 Hz) 832 methylsulfonylamino) propyljindazol-5-yl]-2, 4- + +- 7. 69 (d, 1 H, J = 9. 1 Hz), 7. 52 (dd, 1H, J = 2. 3 and 8. 8 Hz), 7. 37 (dd, pyrimidinediamine 1H, J= 2. 0 and 8. 8 Hz), 7. 10 (br s, 1 H), 7 1H NMR (DMSO-d6) : d 9. 53 (s, 1H), 9. 25 (s, 1H), 8. 11 (d, 1 H, J = 3. 8 N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- [1- [3- (N- Hz), 8. 04 (d, 1 H J = 2. 3 Hz), 7. 97 (br s, 1 H), 7. 83 (s, 1 H), 7. 73 (d, 1H, 833 methylsulfonylamino) propyl] indazol-5-yl]-2, 4- + +- , J = 2. 3 and 8. 8 Hz) 7. 53 (d, 1 H, J = 8. 8 Hz), 7. 44 (d, 1 H, J = 8. 8 Hz), pyrimidinediamine 7. 43 (dd, 1 H, J = 2. 3 and 8. 8 Hz), 7. 0 1H NMR (DMSO-d6) : d 10. 74 (s 1H) 10. 24 (s 1H) 9. 98 (s, 1H), N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2-,.. 8. 21 (d, 1 H, J = 4. 3 Hz), 7. 93 (s, 1 H), 7. 90 (s, 1 H), 7. 61 (d, 1 H, J = 8. 8 834 [1- [3- (N-methylsulfonylamino) propyl] indazol-5-yl]-2, 4--+- Hz), 7. 38 (dd, 1 H, J = 1. 8 and 9. 1 Hz), 7. 22 (dd, 1 H, J = 1. 8 and 8. 8 pyrimidinediamine Hz), 7. 17 (s, 1 H), 7. 09 (app t, 1 H, J = 5. 3 1H NMR (DMSO-d6) : d 10. 80 (s, 1H), 10. 42 (s, 1H), 10. 25 (s, 1H) (S)-5-Fluoro-N4- (2-methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)- 9. 98 (s, 1H), 8. 22 (d 1 H J = 4. 9 Hz), 7. 92 (s, 1 H), 7. 90 (d 1 H J = 1. 5 835 N2- [1- (3- (N-methylsulfonylamino) propyl) indazol-5-yl]-2, 4- + +- Hz), 7. 64 (d, 1 H, J = 8. 8 Hz), 7. 38 (dd, 1 H, J = 2. 0 and 9. 1 Hz), 7. 24- pyrimidinediamine 7. 19 (m, 3H), 7. 09 (t, 1 H, J = 5. 3 Hz), 6. 91 1H NMR (DMSO-d6) : d 11. 11 (s 1H) 9. 25 (s 1H) 9. 24 (s 1H) 8 11 N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro- , I d 1H J=30Hz) 807 (s 1H) 7. 85 (s 1H) 7. 58 (d 1H J=85Hz) 836 N2-[1-[3-(N-methylsulfonylamino) propyl] indazoi-5-yl]-2, 4-,,., ,,,,,,., + + 7. 54 (d. 1H, J=9. 1Hz), 7. 48 (d, 1H, J=9. 1 Hz), 7. 36 (d, 1H, J=8. 5 pyrimidinediamine Hz), 7. 06 (t, 1H, J = 6. 7 Hz), 4. 39 (t, 1H NMR (DMSO-d6) : d 11. 17 (s, 1H), 10. 22 (s, 1H), 10. 13 (s, 1H), N2- (3-Amino-1-methylindazol-5-yl)-N4- (2, 2-dimethyl-3-oxo-4H- 837 8. 25 (d, 1H, J =4. 4 Hz), 7. 92 (s, 1H), 7. 58 (d, 1 H, J = 9. 1 Hz), 7. 50 (d, + + 5-pyrid [1, 4] oxazin-6-yi)-5-fluoro-2, 4-pyrimidinediamine 1 H, J = 9. 1 Hz), 7. 34 (d, 1 H, J = 8. 5 Hz), 3. 86 (s, 3H), 1. 39 (s, 3H). 1 H NMR (DMSO-d6) : d 11. 22 (s, 1H), 10. 22 (s, 1H), 10. 09 (s, 1H), 838 N4-(2, 2-Dimethyi-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yj)-5-fluoro- 8. 25 (d, 1 H, J = 4. 4 Hz), 7. 90 (s, 2H), 7. 57 (d, 1 H, J = 9. 3 Hz), 7. 41-+ + 838 + + N2- [1- (3-hydroxypropyl) indazol-5-yi]-2, 4-pyrimidinediamine 7. 35 (m, 3H), 4. 40 (t, 2H, J = 6. 7 Hz), 3. 35 (t, 2H, J = 6. 4 Hz), 1. 93 (app q, 2H, J = 6. 7 Hz), 1. 40 (s, 6H). 1H NMR (DMSO-d6) : d 11. 10 (s, 1H), 9. 46 (s, 1H), 9. 27 (s, 1H), 8. 19 83 N4-(2, 2-Dimethyi-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro- (d, 1 H, J = 3. 5 Hz), 8. 01 (s, 1 H), 7. 87 (s, 1 H), 7. 65 (d, 1 H, J = 8. 5 Hz), + + N2-1-3-metho + + N2- (xypropyi) indazol-6-yl]-2, 4-pyrimidinediamine 7. 54 (d, 1 H, J = 8. 8 Hz), 7. 35 (d, 1 H, J = 8. 5 Hz), 7. 29 (d, 1 H, J = 8. 8 Hz), 4. 19 (t, 2H, J = 6. 7 Hz), 3. 16 (t, "f'Y :, C, t . ?. yi,. ^ ,'' e. a v 1 t N HMG NM nd i, a me 06filpouno, I t" . r. "s"., ss, x-' :. s =, -' r py 0170, p 0 d6)-d v'41 IH) 7. 7 (d, IVi, 1 2. 6 8. 04 (s, 7. 84 (s, Hz), 7. 49 , SP. " f.. ". it. -. ,, a2.,. < : L V f N - A3 ... jL7 , (fi' s%. 3. >'>n : E P t, s_.. , rI , , m 4 , 9 a P., nr g x 't 5 r CdinP ComPund N' 1H NMR (nMSO-d6) : d 9, 47 (br s, 1H), g. 28 (s, 1H), lVumber.. T L. , 7 = 3. 8 Hz), 8. 04 (s 1H), 7. 84 (s, 1 H), 7. 79 (d, 1 N,. 1 ° 2. 6 + qHJ=8. 8Hz), T. 49 q_methoxYPhenyl)-5-fluoro-N2-L-LtN'S. aT (d, 1H, oro _ 4-4 dd, 1 H, J = 2. 3 and 9. 1 Hz), 7. 52 (d, N4- (3-ht 840 trifluoromethytsulfonylamin°) P°y>>ndazol-5-yi12 Hz), 7. 6 t iamine = 9. 1 Hz), T. 07 (d, 1H, J = 8. 8 H 1H NMR (MSO-d6) : d 10. 48 (s, 1H), 10. 28 (s, 1h11, 9. 55 (t, 1H ° - 2. 0 Hz, 7. 98 (s, 1H), + pyrimidined i = 4. 9 Hz), 8. 8 HHz), 7. 42 1H NMR (DMSO-d6) : d-iQ. 48 (s, 1H). 10. 28 (s, 1H). 9. 55 (t. 1H, J = N4- (3, 4-Dichlorophenyl ?-SrUOro-Id2-L1,E ( 841 trifluoromethyisulfonylamino) P°py>> t I uor (dd, 9. 4r. (b r S, I H), \ <~ Hrss1H) s9 » 29 (s>1H) ^ + pyrimidine 1H NMR (DMSO-d6) : d 10. 63 (s, 1H), 9. 46 (br s, 1H), 9. 28 (s, 1H), _ z1, 4] dd, 1H>. 1 ro Qindazol-5-yl]-2, - d, 2H, J-9. 1 Hz), 7. 29 (= 2. 0 and 8. 8 Hz), 7. 20 (d, 1 H, N4- (2, 2-Qimethyi-3-oxo-4H ben I 842 (1-I3't-trifluoromethytsulfonylamino) p PY diamine =2. 0 Hz), 6. 89 (d, H, J = 8. 8 Nz), 4. 37 1H NR (DMSO-d6) : d 10. 74 (s, 1 H), 9. 88 (s, 1 H), 9. 68 (s, 1 N), 9. 9 pyrimidine 4N-benz [1, 4] oxazin-6-yi)- t, H =6. 7 Hz), 8. 13 (d, 1H, J-4. 7 Hz), 8. 01 (s. H) Z. 87 (s, M + ino ropYlndazol-5-yl]-7. 56 (d, 1H, J-9. 1 Hz), 7. 43 (d 1H, J = 9. 1 Hz), T. 26 (d, 1H, J = 8. 5 S_5_Fluoro-N4- (2-methyl-3-oxo-2H, 3 N2_ [-g' (N'trifluoromethylsulfonylam) P 1H 9. 46 (br s, 1H), 9. 23 (s,'IH), imidinediamine Hz), 7. 21 ( 1H) 6. 90 (d lti, J = 8. 5 i _ Ws, H). ,, Z,,-6-yl)-5-iluOro- 9. 19 (s, I H), 8. 11 (dd, I Vi, J = 0. 9 an, I H, j = 9. 1 Hz), 7. 49 (d, I H, J 944lN2-(1 proPYlsndazol-5-Y1- 1H}, 7. 59 (d, 1N, J-8. 5 Hz), 7. 53 (d, 1H, J =9. 1 Hz) 7, 49 (d, 1N J 2, 4-pyrimidmediamine 8. 8 Hz), 7. 35 (d, 1H, J = 8. 5 Nz), 4. 39 (t, z N4 NMR (DMSO-d6) : d 11. 11 (s, 1H), 9. 68 (s, 1H), g'2 $ H ?' $2° 845 4-pyrmdnediamine N - (5 Hz), 8. 13 (s, 1N), 7. 73 (dd, 1H° = . 8 Hnd 9. 1 H,) 7. 63 (d, lht, J ° 8. 5 Hz), 7. 57 (d, 1 H J = 9. 1 Hz), 7. 39 (d, 1H, J = 8. 5 _g-oxo-4H-5-pyr d [1, 4] o azin 6-Y ?-s-fluo. - (d, 1H,. 1 N4- (2, 2'imethy Hz, 2. 73 (s, 3H), 1. 42 (s, 6H). 5 N2_2-methyl-3H-benzmidazol-5-Yly2-Pmidinediamm 1H NMR (DMSO-d6) : d 13. 56 (br s 1H). 7 S IH'9'3 t5'Hy, 8. 13 (s, 1H), 733 (dd, N r 920 (s, 1H), 8. 16 (d, 1H, J = 3. 5 Hz), = 8. 5 Hz) 7. 55 (d, 1H, J = 9. 1 hlz),'1. 36 -(2 2-Dimethyl-3-oxo-4H-5-pyridL1 >4oxaztn-6-y1)-5-fluoro- N4 (, _5_ t)-2, 4- 1. 8 and 9. 1 Hz), 7. 61 (d, 1 H, 846 N2- (2-trifluoromethyl-1H-benzimidazo Y (d, 1H, J = 8. 5 Hz), 1. 42 (s, 6H) pyrimidinediamine " (d. 1H, J=8. 5Hz), 1. 42 (s. 6H). LD LD LD expound SMMtg/, :-S % g' Tryptase, Tryptase, Tryptase, fpsyk, =MmCmpoMr) dNam Nr CHMC. CHMC, 11pt 1H NMR (DMSO-d6) : d 9. 27 (s, 1H), 9. 16 (s, 1H), 8. 07 (d, 1H, J = 3. 5 GbrnpQbnd P umber.'. N CHMC, CHMC, CHMC, llpt Igue, mew IgE, 8pt lono, 3pt Hz), 8. 03 (s, 1 H), 7. 82 (s, 1H), 7. 79 (d, 1H, J= 2. 3 Hz), 7. 65 (dd, 1H, J N4-(3-Chioro-4-methoxyphenyl)-N2-[1-(3- 847 (diethylphosphonamido) propyi] indazo !-5-yl]-5-fluoro-2, 4, J + ... = 2. 3 and 8. 5 Hz), 7. 53 (d, 1H, J = 8. 5 Hz), 7. 47 (d, 1H, J = 9. 1 Hz), pynmldlnedlamlne 7. 08 (d, 1 H, J = 9. 1 Hz), 4. 91 (dt, 1 H, H NMR (DMSO-d6) : d 10. 42 (s, 1 H), 10. 29 (s, 1 H), 8. 26 (d, 1 H, J = N4- (3-Ch) oro-4-methoxypheny !)-5-fiuoro-N2- [1- (3- 4. 9 Hz), 7. 93 (s, 1 H), 7. 83 (s, 1 H), 7. 74 (s, 1 H), 7. 62 (d, 1 H, J = 8. 8 + pivalamidopropyl) indazol-5-y ]-2, 4-pyrimidinediamine Hz), 7. 55-7. 47 (m, 2H), 7. 39 (d, 1H, J = 9. 1 Hz), 7. 09 (d, 1H, J = 8. 8 Hz), 4. 35 (t, 2H, J = 7. 0 Hz), 3. 82 (s, 3H), 1H NMR (DMSO-d6) : d 9. 55 (s, 1H), 9. 28 (s, 1H), 8. 15 (dd, 1H, J = 1. 2 N4- (3, 4-Dichbropheny !)-5-f) uoro-N2- [1- (3- and 3. 7 Hz), 8. 09 (d, 1H, J = 1. 5 Hz), 8. 00 (s, 1H), 7. 87 (s, 1H), 7. 79 + piva ! amidopropy)) indazo)-5-yi]-2, 4-pyrimidinediamine (dd, 1 H, J = 1. 8 and 9. 1 Hz), 7. 54-7. 44 (m, 4H), 4. 33 (t, 2H, J = 6. 7 Hz), 3. 04 (qt, 2H, J = 6. 4 Hz), 1. 94 (app q 1H NMR (DMSO-d6) : d 10. 74 (s, 1H), 10. 21 (s, 1H), 9. 89 (s, 1H), 8. 18 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-y !)-5-f ! uoro-N2- (d, 1H, J = 4. 4 Hz), 7. 93 (s, 1 H), 7. 88 (s, 1 H), 7. 56 (d, 1 H, J = 8. 5 Hz), + [1- (3-p ! va) amidopropy !) indazo !-5-y)]-2, 4-pyrim ! d ! nediamine 7. 46 (t, 1 H, J = 5. 6 Hz), 7. 37 (d, 1 H, J = 9. 1 Hz), 7. 23 (d, 1 H, J = 9. 1 Hz), 7. 17 (s, 1H), 6. 88 (d, 1H, J=8. 1H NMR (DMSO-d6) : d 10. 80 (s, 1H), 10. 42 (s, 1H), 10. 28 (s, 1H), 5-F ! uoro- (S)-N4- (2-methy)-3-oxo-4H-benz [1. 4] oxazin-6-yl)-N2- 8. 22 (d, 1 H, J = 4. 4 Hz), 7. 90 (s, 2H), 7. 59 (d, 1 H, J = 8. 8 Hz), 7. 47 (m, 851 + [1- (3-piva) amidopropyi) ! ndazo)-5-y !]-2, 4-pyrim ! d ! nediam ! ne 1H), 7. 38 (d, 1H, J = 8. 8 Hz), 7. 22 (app d, 2H, J = 8. 8 Hz), 6. 91 (d, 1H, + J = 8. 8 Hz), 4. 64 (qt, 1 H, J = 6. 7 Hz), 4 1H NMR (DMSO-d6) : d 11. 10 (s, 1H), 9. 22 (s, 1H), 9. 18 (s, 1H), 8. 12 N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrido [1, 4] oxazin-6-yi)-5-fluoro- (d, I H, J = 3. 5 Hz), 7. 84 (s, 1 H), 7. 82 (s, 1 H), 7. 59 (d, 1 H, J = 8. 8 Hz), + 852 + N2- [1- (3-piva ! amidopropy !) indazo !-5-y)]-2, 4-pyrim ! dined ! amine 7. 48-7. 43 (m, 3H), 7. 36 (d, 1 H, J = 8. 5 Hz), 4. 32 (t, 2H, J = 6. 7 Hz), 3. 02 (qt, 2H, J = 6. 7 Hz), 1. 92 (app q, 2 1H NMR (DMSO-d6) : d 9. 28 (s, 1H), 9. 17 (s, 1H), 8. 07 (d, 1H, J = 3. 5 N4- (3-Ch) oro-4-methoxypheny !)-5-f ! uoro-N2- [1- [3- (N- Hz), 7. 82 (s, 1 H), 7. 78 (d, 1 H, J = 2. 0 Hz), 7. 66 (dd, 1 H, J = 2. 0 and 853 + + succinimidopropyl)] indazoi-5-yll-2, 4-pyrimidinediamine. 5 Hz), 7. 52 (d, 1 H, J = 9. 1 Hz), 7. 46 (d, 1 H, J = 9. 1 Hz), 7. 09 (d, 1 H, J=8. 5Hz), 4. 33 (t, 2H, J=6. 3Hz), 3. L ; Omp, ounct LD lu Lu um 6 a "n , rcw, nid- R a ,, lono, 3pt , _ ' r,. si-aw x"u iS,. e... I x h 5 KL ze D und LD INa i xw 2 , Tr as e T YP f T f_ ,, rYp ta sef k n a t n L, 7. 3 lp ; HM 11 ,, ° ; . . , , " f h LEx. .', a gE 3pt fgE, Spt lono, 3pt 1 H NMR (DMSO d6) : d 8 55 (s, 1 Hj, 9. 28 (s, 1 H), 8. 16 (d, 1 H, rcJ = 3. 5 854 N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- [1- [3, (N- Hz), 8. 08 (d, 1 H, J = 2. 3 Hz), 8. 01 (s, 1 H), 7. 88 (s, 1 H), 7. 80 (dd, 1 H, J 854 succinimidopropyl) indazoi-5-yi';-2, 4-pyrimidinediamine ~ 2. 3 and 8. 8 Hz), 7. 56 (d, 1H, J = 8. 8 Hz), 7. 51-7. 46 (m, 2H), 4. 35 (t, + 2H, J = 6. 7 Hz), 3. 40 (t, 2H, J = 7. 0 1H NMR (DMSO-d6) : d 10. 73 (s, 1N), 10. 38 (s, 1H), 10. 25 (s, 9H), 855 N4-(2, 2-Dimethyi¢3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2-8. 18 (d, 1fui, J = 3. 9 Hz), 7. 85 (s, 1H), 7. 83 (s, 1 H), 7. 56 (d, 1H, J = 9. 1 855' * [1- [3- (N-succinimidopropyi)] indazol-5yl]-2, 4-pyrimidinediamine Hz), 7. 32 (d, 1 H, J = 8. 8 Hz), 7. 14 (d, 2H, J = 9. 1 Hz), 6. 84 (d, 1 H, J = 8. 8 Hz), 4. 30 (t, 2H, J = 7. 0 Hz), 3. 34 (t 1H NMR (DMSO-d6) : d 10. 82 (s, 1H), 10. 52 (s, 1H), 10. 42 (s, 1H), 856 N2- [1- [3- (N-succinimidopropyl) Jindazol-5-yl]-2, 4- 8. 24 (d, 1 H, J = 4. 9 Hz), 7, g2 S ? 7, g7 (s, 1H), 7. 63 (d, 1 H, J = 8. g 856 N2- [1- [3- (N-succinimidopropyi)] indazo)-5-y)]-2, 4- +-<- pyrimidinediamine Hz), 7. 37 (dd, 1 H, J = 1. 0 and 8. 8 Hz), 7. 20 (d, 2H, J = 8. 8 Hz), 6. 91 pyrimidinediamine (d, 1 H, J = 9. 1 Hz), 4. 65 (qt, 1 H, J = 6. 7 Hz 1H NMR (DMSO-d6) : d 11. 10 (s, 1H), 9. 23 (s, 1H), 9. 19 (s, 1H), 8. 12 N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro- 1N NMR (DMSO-d6) : d 11. 90 (s, 1H), 9. 23 (s, 1Nj, 9. 19 (s, 1H), g, 2 857N2- [1- [3- (N-sucdnimidopropyf)] indazo !-5-y)]-2, 4- +-'- pyrimidinediamine (m, 2H), 7. 36 (d, 1 H, J = 8. 8 Hz), 4. 33 (t, 2H, J = 7. 0 Hz), 3. 39 (t, 2H, J + + = 6. 7 Hz), 2. 54 (s, 2H), 2. 48 (s, 2H), 2 = 6. 7 Hzj, 2. 64 (s, 2H), 2. 48 (s, 2H), 2 N4- (3-Chioro-4-fnethoxyphenyf)-N2- [1-f3- (2, 6- 1 H NMR (DMSO-d6) : d 10. 26 (s, 1H), 10. 08 (s, 9 H), 8. 22 (d, 1 H, J = 858 dioxopiperidinojpropy)) indazol-b-ylj-5-fluoro-2, 4- 858 3 Hz), 7. g2 S H 7, g5 (s, 1 H), 7. 74 (d, 1 H, J = 2. 0 Hz), 7. 62 (d, 1 H, pyrimidinediamine and 8. 3 Hz), 7. 57 (dd, 1 H, J = 2. 3 and 8. 8 Hz), 7. 39 (dd, 1 N, J = 2. 0 . lnd 8. 3 Hz), 7. 09 (d, 1H, J = 8. 8 Hz), 4. 35 N4- (3, 4-Dich) orophenyi)-N2- [l- [3- (2, 6- 1 H NMR (DMSO-d6) : d 10. 05 (s, 1H), 9. 77 (s, 1h), 8. 23 (d, 1 H, J = 5. 1 859 ! peridino) propy)] indazof-5-y) J-5-f) uoro-2. 4- +-f- pyrimidinediamine 7. 61 (d, 1 H, J = 8. 8 Hz), 7. 51 (d, 1 H, J = 8. 8 Hz), 7. 44 (d, 1 H, J = 8. 8 + f Hz), 4. 35 (t, 2H, J = 6. 7 Hz), 3. 67 (t, 2 1H NMR (DMSO-d6) : d 10. 76 (s, 1H), 10. 34 (s, 1H), 10. 16 (s, 1H), N4- (2, 2-Dlmethyl-3-oxo-4H-benz [9, 4joxazin-6-yl)-N2-j1-j3- 1 H NMR (DMSO-d6j : d 10. 76 (s, 1 H), 10. 34 (s, 9 H), 10. 16 (s, 1 H), 860 (2, 6-dioxopiperidino] propyl) inda2ot-5-yi)-5-fiuoro-2, 4- + + (dd. 1H, J=1. 5and8. 5Hz), 7. 21 (d, 1H, J=8. 8Hz), 7. 19 (s, 1H), pyrimidinediamine pyrimidinediamine (dd, 1H, J = 1. 5 and 8. 5 Hz), 4. 35 (t, 2H, J = 7. 0 Hz 6. 88 (d, 9 H, J = 8. g Hz), 4. 35 (t, 2H, J = 7. 0 Hz LD LD LD Compou S-"-" LD LD 1H NMR (DMSO-d6) : d 10. 78 (s, 1H), 10. 49 (s. 1H), 10. 44 (s, 1H), ompoun Name : CHMC, CHMC, CHMC, llpt IgE, 3pt IgE, 8pt fono, 3pt (S)-N2- [l- [3- (2, 6-Dioxopiperidino] propyl) indazol-5-yi]-5-fluoro- I H MR (DMSO-d6) : d 10. 78 (s, 1 H), 10. 49 (s, I H), 10. 44 (s, I H), 8. 21 (d, 1 H, J = 4. 9 Hz), 7. 85 (s, 1 H), 7. 82 (s, 1H), 7. 56 (d, 1H, J= 8. 8 861N4- (2-methy !-3-oxo-2H, 4H-benz [1, 4] oxazin-6-y !)-2, 4- + + l Hz), 7. 31 (d, 1H, J=8. 8Hz), 7. 17 (s, 1H), 7. 16 (d, 1H, J=8. 8Hz), pyrimidinediamine 6. 86 (d, 1H, J=8. 8Hz), 4. 59 (qt, 1H, J= 1H NMR (DMSO-d6) : d 11. 10 (s. 1H), 9. 22 (s, 1H), 9. 18 (s, 1H), 8. 12 N4-(22-Dimethyi-3-oxo-4H-5-pyrid [1 4] oxaån-6-yi)-N2-[1-[3- ,, (d H, J = 3. 2 Hz), 8. 05 (s, 1 H). 7. 84 (s, 1H), 7. 58 (d, 1H, J= 8. 2 Hz), 862 (2, 6-dioxopiperidino] propyl) !) ! ndazo !-5-y-5-f) uoro-2, 4- + + ... 7. 48 (s, 2H), 7. 36 (d, 1 H, J = 8. 2 Hz), 4. 32 (t, 2H, J= 7. 3 Hz), 3. 66 (t, pyrim ! dinediamine 2H, J = 7. 3 Hz), 2. 45 (t, 2H, J = 7. 3 1H NMR (DMSO-d6) : d 10. 33 (a, 1H), 10. 23 (s, 1H). 8. 32 (d, 1H, J = N4-(3 4-Dichlorophenyl)-5-fluoro-N2-(2-trifluoromethyl-1 H- , 4. Hz), 8. 03 (d, 1 H, J = 2. 0 Hz), 7. 90 (s. 1 H), 7. 74 (d, 1 H J = 2. 0 Hz), 863 benzimidazo)-5-y !)-2, 4-pyrimidinediam ! ne Hydrogen Ch ! or ! de + + Salt 7. 69 (d, 1 H, J = 8. 8 Hz), 7. 51 (d, 1 H, J = 8. 8 Hz), 7. 45 (dd, 1 H, J = 2. 0 SaK and 8. 8 Hz). and 8. 8 Hz). N4-(3, 4-Dichlorophenyl)-5-fluoro-N2-(2-trifluoromethyi-1 H- Hz), 8. 06 (d, 1H, J=2. 0Hz), 7. 94 (s, 1H), 7. 76 (d. 1H, J=2. 0Hz), 864 benzimidazol-5-yl)-2, 4-pyrimidinediamine Ethanesulfonic Acid-+ Salt 7. 67 (d, 1H, J=8. 8Hz), 7. 51 (d, 1H, J=8. 8Hz), 7. 41 (dd, 1H, J=2. 0 Sat and 8. 8 Hz), 2. 42 (qt, 2H, J = 7. 3 Hz), 1 N4- (3, 4-Dich ! oropheny !)-5-f) uoro-N2- (2-trmuoromethyMH-1H NMR (DMSO-d6) : d 10. 25 (s. 1H), 10. 04 (s, 1H), 8. 29 (d, 1H, J = 86 benzimidazo)-5-yl)-2, 4-pyrim ! dinediamine Benzenesulfonic 4. 4 Hz), 8. 03 (s, 1H), 7. 91 (s, 1H), 7. 73-7. 26 (m, 2H), 7. 58-7. 43 (m, + Acid Salt 4H), 7. 29-7. 27 (m, 3H). Acid Salt 4H), 7. 29-7. 27 (m, 3H). N4-(3 4-Dichiorophenyi)-5-fluoro-N2-(2-trifluoromethyl-1 H- , 4. Hz), 8. 03 (d, 1 H, J = 2. 0 Hz), 7. 90 (s, 1 H), 7. 71 (d, 2H, J = 8. 8 Hz), 866 benzim ! dazo)-5-y !)-2, 4-pyrimidined ! am ! ne p-To ! uenesu ! fon ! c-+ . 7. 51 (d, 1H, J = 8. 8 Hz), 7. 47-7. 43 (m, 3H), 7. 10 (d, 2H, J = 8. 8 Hz), AodSait 2. 26 (s, 3H). H NMR (DMSO-d6) : d 9. 77 (s 1H), 9. 74 (s, 1 H) 8. 25 (d 1 H J= 3. 8 N4- (3, 4-Dichbropheny !)-5-f) uoro-N2- (2-methy)-3H-'' Hz). 8. 14 (d, 1H, J = 2. 3 Hz), 8. 12 (s, 1H), 7. 81 (dd, 1H, J =2. 3 and 867 benzimidazot-5-yl)-2, 4-pyrimidinediamine Benzenesulfoni!,c + + 8. 8 Hz), 7. 66 (d, 2H, J = 9. 1 Hz), 7. 59-7. 52 (m, 3H), 7. 33-7. 27 (m, 3H), IH NMR (DMSO-d6) : d 9. 78 (s 1H) 9. 74 (s 1H) 8. 25 (d 1H J= 3. 8 2. 74 (s, 3H). 1H NMR (DMSO-d6) : d 9. 78 (s, 1H), 9. 74 (s, 1H), 8. 25 (d, 1H, J= 3. 8 N4- (3, 4-Dichbropheny)-5-f) uoro-N2- (2-methy)-3H- -."/. \.. Hz), 8. 14 (d, 1H, J = 2. 3 Hz), 8. 12 (s, 1H), 7. 81 (dd, 1H, J = 2. 3 and 868 benzimidazol-5-yi)-2, 4-pyrimidinediamine p-Toluenesu ! fonic + + 8. 8 Hz), 7. 66 (d, 2H, J = 9. 1 Hz), 7. 54 (d, 1 H, J = 8. 8 Hz), 7. 46 (d, 2H, Acld Sait J = 8. 2 Hz), 7. 10 (d, 2H, J = 8. 2 Hz), 2. 7 LU Lu lu fi __§yk, 'je 's. :.. 7 vzw.- b9 : zu t.... wu. 'r.. ; :". , p a.. C.. ruz - J. . _ .. Y. ! , . r 5. : f &. rH k f se tase tase T fP m Tr P rYP x a. , P . xr 5 r W d t oan . 1 om 1 MC C-a . CH 1 Lt "ic'srr, >, C HM - P- m C P S ; P. r. CH MC, d iame' _ om oun .. , r, z Num. tri. 0 3 t ber. t x lon a t 8 E , p g _ I P N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- (2-methyl-3H- 1 H NMR (DMSO-d6) : d 9. 93 (s, 2H), 8. 28 (d, 1 H, d= 3. 8 Hz), 8. 12 (d, 869 benzimidazol-5-yi)-2, 4-pyrimidinediamine Hydrogen Chloride 1 H, J = 2. 3 Hz), 8. 07 (s, 1 H), 7. 81 (dd, 1H, J =1. 8 and 8. 8 Hz), 7. 66 + + Salt (d, 2H, J = 8. 8 Hz), 7. 56 (d, 1 H, J = 8. 8 Hz), 2. 75 (s, 3H). -----' 1H NMR (DMSO-d6) : d 9. 75 (s, 2H), 9. 72 (s, 1H), 8. 24 (d, 1H, J= 3. 8 N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- (2-methyl-3H- Hz), 8. 14 (d, 1 H, J = 2. 0 Hz), 8. 12 (s, 1 H), 7. 82 (d, 1 H,, l = 8. 8 Hz), 870benzimidazol-5-yl)-2, 4-pyrimidinediamine EthanesulfonicAcid 7. 66 (d,+ 2H, J=7. 3Hz), 1. 05 (t, 3H, J=7. 3H Salt 2H, J = 7. 3 Hz), 1. 05 (t, 3H, J = 7. 3 H 1H NMR (DMSO-d6) : d 10. 37 (s, 1H), 10. 23 (s, 1H), 8. 25 (d, 1H, J = N4- (3-Chbro-4-methoxypheny !)-N2- [1- (3- 5. 3 Hz), 7. 92 (s, 1H), 7. 83 (s, 1 H), 7. 74 (d, 1H, J = 2. 6 Hz), 7. 59 (d, H, + + + + ethoxypropyl) indazol-5-yl]-5-fluoro-2, 4-pyrimidinediamine J = 8. 8 Hz), 7. 53 (dd, 1 H, J = 2. 3 and 8. 5 Hz), 7. 38 (dd, 1 H, J = 1. 8 and 8. 8 Hz), 7. 09 (d, 1H, J = 9. 1 Hz), 4. 40 1H NMR (DMSO-d6) : d 10. 27 (s, 1H), 10. 02 (s, 1H), 8. 28 (d, 1H, J = $72 N4- (3, 4-Dichlorophenyl)-N2- [1- (3-ethoxypropyl) indazol-5-yl]-5- 4. 7 Hz), 8. 02 (d, 1H, J = 2. 3 Hz), 7. 95 (s, 1H), 7. 87 (s, 1 H), 7. 68 (d, + fluoro-2, 4-pyrimidinediamine 1H, J = 8. 8 Hz), 7. 60 (d, 1H, J = 8. 8 Hz), 7. 51 (d, 1H, J = 8. 8 Hz), 7. 42 (dd, 1H, J = 2. 3 and 8. 8 Hz), 4. 41 (t, 2H, 1H NMR (DMSO-d6) : d 10. 76 (s, 1H), 10. 36 (s, 1H), 10. 19 (s, 1H), 873 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxamn-6-yl)-N2-11-(3-8. 22 (d, 1H, J =5. 3 Hz), 7. 90 (s, 2H), 7. 55 (d, 1 H, J = 9. 1 Hz), 7. 37 + + ethoxypropyl) indazol-5-yl]-5-fluoro-2, 4-pyrimidinediamine (dd, 1H, J = 1. 8 and 8. 8 Hz), 7. 20 (d, 1 H, J = 8. 8 Hz), 7. 18 (s, 1H), 6. 87 (d, 1H, J=8. 8Hz), 4. 39 (t, 2H, J=6. 7Hz 1H NMR (DMSO-d6) : d 10. 79 (s, 1 H), 10. 40 (s, 1H), 10. 24 (s, 1H), (S)-N2- [1- (3-Ethoxypropy)) indazo)-5-yi]-5-f) uoro-N4- (2-methyt- 8. 22 (d, 1 H, J = 5. 3 Hz), 7. 90 (d, 1 H, J = 1. 8 Hz), 7. 88 (s, 1 H), 7. 57 (d, + + 874 3-oxo-2H, 4H-benzl1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine 1H, J = 9. 1 Hz), 7. 37 (dd, 1 H, J = 1. 8 and 9. 1 Hz), 7. 22 (dd, 2H, J = 1. 8 and 8. 5 Hz), 6. 89 (d, 1H, J=8. 5Hz), 4. 1H NMR (DMSO-d6) : d 11. 10 (s, 1H), 9. 22 (s, 1H), 9. 19 (s, 1H), 8. 11 87 N4-(2, 2-Dimethyl-3-oxo-4H-5-pyridl1, 4] oxazin-6-yl)-N2- [1- (3- (d, 1 H, J = 3. 5 Hz), 8. 05 (s, 1 H), 7. 84 (s, 1 H), 7. 58 (d, 1 H, J = 8. 5 Hz), + + _ + k ethoxypropyl) indazol-5-yV]-5-fluoro-2, 4-pyrimidinediamine 7. 42 (d, 2H, J = 8. 8 Hz), 7. 35 (d, 1H, J = 8. 5 Hz), 4. 37 (t, 2H, J = 6. 7 Hz), 3. 32 (qt, 2H, J = 7. 0 Hz), 3. 28 (t 1H NMR (DMSO-d6) : d 10. 32 (s, 1H), 9. 63 (s, 1H), 8. 19 (d, 1H, J = 4. 1 N4- (2-Chloro-3-methoxypyrid-6-yl)-5-fluoro-N2- (3, 4, 5- Hz), 8. 06 (d, 1 H, J = 8. 5 Hz), 7. 52 (d, 1 H, J = 8. 5 Hz), 6. 91 (s, 2H), + + trimethoxyphenyl)-2, 4-pyrimidinediamine 3. 88 (s, 3H), 3. 64 (s, 6H), 3. 61 (s, 3H). LD LD LD poun -d Tryptase, Tryptase, Tryptase, fo com'pq nci Name u vnysicai Liat r Nuhbb CHMC, CHMC, CHMC, llpt [gE, 3pt IgE, 8pt lono, 3pt N4- (2-Ch) oro-3-methoxypyrid-6-y))-N2- (3, 4-dimethoxyphenyl!)- 877 ypy y yp y Hz), 8. 14 (d, 1H. J=3. 5Hz), 7. 55 (d, 1H, J=9. 1Hz), 6. 90 (d, 1 H, J + 5-f) uoro-2, 4-pyrimidinediamine 2. 3 Hz), 6. 08 (d, 2H, J = 2. 3 Hz), 3. 88 (s, 3H), 3. 65 (s, 3H). 1H NMR (DMSO-d6) : d 9. 83 (s, 1H), 9. 26 (s, 1H), 8. 14 (d, 1H, J = 3. 5 N2- (3-Ch ! oro-4-methoxypheny-N4- (2-ch ! oro-3-methoxypyr ! d- Hz), 8. 01 (d, 1 H, J = 9. 1 Hz), 7. 80 (d, 1 H, J = 2. 6 Hz), 7. 59 (d, 1 H, J = 878 6-yl)-5-fluoro-2, 4-pyrimidinediamine 9. 1 Hz), 7. 43 (dd, 1H, J = 2. 6 and 9. 1 Hz), 7. 03 (d, 1H, J = 9. 1 Hz), 3. 88 (s, 3H), 3. 78 (s, 3H). 1H NMR (DMSO-d6) : d 9. 79 (s, 1H), 9. 15 (s, 1H), 8. 13 (d, 1H, J = 3. 5 N4- (2-Ch) oro-3-methoxypyr ! d-6-y))-N2- (3, 5-dimethyheny !)-5- 879 jrj j7 j j./Hz), 8. 08 (dd, 1H, J=2. 3and8. 8Hz), 7. 57 (d, 1H, J=8. 8Hz), 7. 22 + + ! uoro-2, 4-pyrimid ! nediam ! ne (s, 2H), 6. 53 (s, 1H), 3. 82 (s, 3H), 2. 19 (s, 6H). H+). 1H NMR (DMSO-d6) : d 9. 84 (s, 1H), 9. 32 (s, 1H), 8. 14 (d, 1H, J = 3. 5 N4- (2-Ch ! oro-3-methoxypyr ! d-6-y !)-5-f ! uoro-N2- [3- (N- Hz), 8. 12 (d, 1 H, J = 8. 8 Hz), 7. 96 (qt, 1 H, J = 4. 7 Hz), 7. 60 (d, 1H, J= 880 methy ! amino) carbony ! methy ! eneoxypheny !]-2, 4- + + 8. 8. 8 Hz), 7. 37 (app s, 1H), 7. 23 (d, 1H, J=8. 2Hz), 7. 13 (t, 1H, J=8. 2 pyrimid ! nediamine Hz), 6. 48 (dd, 1H, J=2. 3and8. 2Hz 2-Chbro-N4- (2-chtoro-3-methoxypyrid-6-y))-5-f ! uoro-4-1 H NMR (DMSO-d6) : d 8. 33 (d, 1 H, J = 8. 8 Hz), 8. 12 (d, 1 H, J = 2. 3 881 pyrimidineamine Hz), 7. 65 (br s, 1 H), 7. 38 (d, 1 H, J = 8. 8 Hz), 3. 94 (s, 3H). N4- (2-Chloro-3-methoxypyrid-6-yn-5-fluoro-N2- ( ! ndazo !-6-yt)-' ... LCMS : ret. time : 10. 99 min. ; purity : 93% ; MS (m/e) : 386 (MH+). + 2, 4-pynmldlnedlamlne 2, 4-pyrimidinediamine N4- (2-Ch ! oro-3-methoxypyr ! d-6-yi)-5-f] uoro-N2- (2- 883 j 7 LCMS : ret. time : 11. 74 min. ; purity : 97% ; MS (mule) : 454 (MH). + trif) uoromethy !-1H-benzimidazo !-5-y !)-2, 4-pyr ! midined ! am) ne N4- (2-Chbro-3-methoxypyr ! d-6-yn-5-f) uoro-N2- (2-methy)-3H- 884 LCMS : ret. time : 7. 71 min. ; purity : 93% ; MS (m/e) : 400 (MH+). + benzimidazoi-5-yi)-2, 4-pyrimidinediamine N4-(2-Chioro-3-methoxypyrid-6-yi)-5-fluoro-N2-(1- 885 LCMS : ret. time : 12. 20 min. ; purity : 93% ; MS (m/e) : 400 (MH+). + methylindazol-6-yl)-2, 4-pyrimidinediamine N4- (2-Ch) oro-3-methoxypyrid-6-y !)-5-f ! uoro-N2- (1- 886 LCMS : ret. t ! me : 10. 79 min. ; purity : 94% ; MS (m/e) : 400 (MH+). methyllndazol-5-yl)-2, 4-pyrimidinediamine methy ! indazo !-5-y !)-2, 4-pyr ! midinediamine N4- (2-Ch) oro-3-methoxypyrid-6-y))-5-f) uoro-N2- (1-ethy ! indazo !- 887 LCMS : ret. time : 12. 97 min. ; purity : 95% ; MS (m/e) : 414 (MH). + 6-y))-2, 4-pyrimidinediamine P ".-Tryptase, Tryptase,, ryptase, fp CoMpNnd __syk, Compoutd, Nam' lCC CHMC, CHMC, CHMC, Ilpt T IgE, 3pt IgE, Bpt lono, 3pt 888 y LCMS : ret. time : 13. 86 min. ; purity : 92% ; MS (m/e) : 428 (MH). + isopropyiindazoi-6-yi)-2, 4-pyrimidinediamine N4-(2-Chloro-3-methoxypyrid-6-yi)-N2-(2 2-dimethyi-3-oxo-4H- 889, LCMS-ret. time : 11. 84 min. ; purity : 94% ; MS (m/e) : 445 (MH). + benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine N2-[1-[3-(N-Acetyiamino) propyl] indazoi-5-yl]-N4-(2-chloro-3- 890 LCMS : ret. time : 9. 42 min. ; purity : 95% ; MS (m/e) : 485 (MH+). + methoxypy (id-6-yl)-5-fluoro-2, 4-pyrimidinediamine N4- (2-Ch ! oro-3-methoxypyr ! d-6-y !)-N2- [1- [3- (N- 891 cyclopropanecarbonylamino) propyl] indazol-5-y ]-5-fluoro-2, 4- LCMS : ret. time : 10. 30 min. ; purity : 95% ; MS (m/e) : 511 (MH+). + pyrimidinediamine pyrimidinediamine N4- (2-Ch ! oro-3-methoxypyrid-6-y !)-5-f) uoro-N2- [1- (3- 892 LCMS : ret. time : 11. 73 min. ; purity : 99% ; MS (m/e) : 527 (MH). + piva ! amidopropyi) indazo)-5-y !]-2, 4-pyrimidinediamine N4- (2-Chbro-3-methoxypyrid-6-yn-5-f) uoro-N2- [1- [3- (N- 893 LCMS : ret. time : 10. 71 min. ; purity : 97% ; MS (m/e) : 514 (MH). + 893 LCMS : ret. time : 10. 71 min., purity : 97% MS (m/e) : 514 (MH+). + isobutyrylamino) propyl] indazol-5-yl]-2, 4-pyrimidinediamine isobutyrylamino) propyl] indazol-5-yi]-2, 4-pyrimidinediamine 894 j< LCMS : ret. time : 9. 44 min. ; purity : 100% ; MS (m/e) : 418 (MH+). + fluoro-2, 4-pyrimidinediamine N4- (3-Ch ! oro-4-methoxypheny !)-N2- (1, 2- 895 LCMS : ret. time : 7. 66 min. ; purity : 96% ; MS (m/e) : 413 (MH+). + dimethyibenzimidazol-5-yl)-5-fluoro-2, 4-pyrimidinediamine N2- (1, 2-Dimethy ! benz ! midazo !-5-y))-N4- (2, 2-d ! methy !-3-oxo- 896 LCMS : ret. time : 7. 09 min. ; purity : 99% ; MS (m/e) : 448 (MH+). + + 4H-benz [1, 4] oxazin-6-y !)-5-f) uoro-2, 4-pyrimidinediamine (S)-N2-(1, 2-Dimethyibenzimidazol-5-yl)-5-fluoro-N4-(2-methyl- 897 LCMS : ret. time : 6. 52 min. ; purity : 97% ; MS (m/e) : 434 (MH+). + + + 3-oxo-2H, 4H-benz [1, 4] oxazin-6-yi)-2, 4-pyrimidinediamine N2-(1, 2-Dimethylbenzimidazoi-5-yl)-N4-(2, 2-dimethyi-3-oXo- 898 LCMS : ret. time : 7. 85 min. ; purity : 91% ; MS (m/e) : 449 (MH+). + + + 4H-5-pyrid [1, 4] oxazin-6-yi)-5-Fluoro-2, 4-pyrimidinediamine N4- (3, 4-Dich ! orophenyi)-5-fiuoro-N2- [1- (2-hydroxyethyi)-2- 899 r j. LCMS : ret. time : 8. 77 min. ; purity : 97% ; MS (m/e) : 448 (MH*). + + 899. LCMS : ret. time : 8. 77 min.-purity : 97%-MS (m/e) : 448 (MH+). + + methylbenzimidazol-5-y )-2, 4-pyrimidinediamine LD LD ,, pound Tryptase, Tryptase, Tryptase, fp __2syk, Cdrpound Nahe l., , ,,,, .......... Nunb m CH C, CHMC, CHMC, llpt IgE, 3pt IgE, 8pt Iona, 3pt N4- (3-Ch ! oro-4-methoxyphenyi)-5-fiuoro-N2- [1- (2- 900 hydroxyethyl)-2-methyibenzimidazol-5-yl)-2, 4-LCMS : ret. time : 7. 06 min. ; purity : 93% ; MS (m/e) : 443 (MH). + pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- 901 [1- (2-hydroxyethyi)-2-methy ! benzimidazol-5-yl)-2, 4- LCMS : ret. time : 6. 50 min. ; purity : 97% ; MS (m/e) : 478 (MH). + + pyrimidinediamine S)-5-Fiuoro-N2- [1- (2-hydroxyethy !)-2-methy ! benzimidazoi-5- 902 y !)-N4- (2-methyi-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4- LCMS : ret. time : 5. 99 min. ; purity : 94% ; MS (m/e) : 464 (MH+). + + pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro- 903 N2- [1- (2-hydroxyethy))-2-methy ! benzimidazo !-5-y))-2, 4- LCMS : ret. time : 6. 89 min. ; purity : 97% ; MS (m/e) : 479 (MH+). + + pyrimidinediamine N4-(3, 4-Dichiorophenyi)-N2-(2 3-dihydro-1-methyl-2-oxo- 904 j7 LCMS : ret. time : 10. 32 min. ; purity : 100% ; MS (m/e) : 420 (MH+). IbenZimidazol-5-yl)-5-fluoro-2, 4-pyrimidinediamine N4- (3-Ch ! oro-4-methoxyphenyi)-N2- (2, 3-dihydro-1-methyi-2- 905 LCMS : ret. time : 8. 24 min. ; purity : 96%-MS (m/e) : 415 (MH+). + + oxo-benzimidazol-5-yi)-5-fluoro-2, 4-pyrimidinediamine N4- (2, 2-Dimethyi-3-oxo-4H-benz [1, 4] oxazin-6-yi)-N2- (2, 3- 906 dihydro-l-methyl-2-oxo-benZimidazol-5-yl)-5-fluoro-2, 4- LCMS : ret. time : 7. 53 min. ; purity : 97% ; MS (m/e) : 450 (MH+). + + pyrimidinediamine (S)-N2- (2, 3-Dihydro-1-methy !-2-oxo-benzimidazol-5-yi)-5- 907 fluoro-N4- (2-methyi-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yi)-2, 4- LCMS : ret. time : 7. 00 min. ; purity : 98% ; MS (m/e) : 436 (MH+). + + pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxaZin-6-yl)-N2- (2, 3- 908dihydro-1-methyi-2-oxo-benzimidazo)-5-y !)-5-fiuoro-2, 4- LCMS : ret. time : 8. 19 min. ; purity : 94% ; MS (m/e) : 451 (MH+). + + pyrimidinediamine 5-F) uoro-N2- (2-methyi-3H-benzimidazo)-5-y))-N4- (2-methyi- 909 1, 1, 3-trioxo-2H, 4H-benzo [1, 4] thiazin-6-yi)-2, 4- LCMS : ret. time : 7. 11 min. ; purity : 94% ; MS (m/e) : 468 (Mt-T). + + pyrimidinediamine . arn, k, _. » : ; l." ; ; C W ; lu lu LU m a. s,-., ro'v,.'. W. ^ rm. pue Nimber. : CHMC, CHMC, CHMC, 11 pt bzw , , , v ; s=. v x r, r h. n"Tr tase T tase T tase s k Go ound _,. nJ 1 YP rYP, rYP fP_ Y an t .. . w =. rH r. " w a G OU d Nal'1'1', -fd m_ sac. _., e : orn n Num6er. ; . HMC CHMC CHMC 11 t ca. N k, z , _..., I E 3 t I E 8 t lono 3 t 9 9 P P P Y 4 . 5-Fluoro-N4- (2-methyl-1, 1, 3-trioxo-2H, 4H-benzo [1, 4] thiazin-6- 910 yl)-N2- (2-trifluoromethyl-1 H-benzimidazol-5-yl)-2, 4- LCMS : ret. time : 10. 29 min. ; purity : 98% ; MS (m/e) : 521 (MH). + + pyrimidinediamine N4-(3 4-Dichlorophenyl)-5-fluoro-N2-(1-methyl-2- 911 LCMS : ret. time : 14. 28 min. ; purity : 97% ; MS (m/e) : 472 (MH+). + trifluoromethylbenzimidazol-5-yl)-2, 4-pyrimidinediamine N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- (1-methyl-2- 912 LCMS : ret. time : 11. 38 min. ; purity : 91% ; MS (m/e) : 467 (MH+). + trifluoromethylbenzimidazol-5-yl)-2, 4-pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-N2- (1- 913 methyl-2-trifluoromethylbenzimidazol-5-yl)-2, 4- LCMS : ret. time : 10. 21 min. ; purity : 94% ; MS (m/e) : 502 (MH'). + pyrimidinediamine (S)-5-Fluoro-N4- (2-methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)- 914 N2- (1-methyl-2-trifluoromethylbenzimidazol-5-yl)-2, 4- LCMS : ret. time : 9. 66 min. ; purity : 93% ; MS (m/e) : 488 (MH+) + pyrimidinediamine N4-(2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yi)-N2- (I- 915 methyl-2-trifluoromethylbenzimidazol-5-yi)-2, 4-LCMS : ret. time : 11. 48 min. ; purity : 91% ; MS (m/e) : 503 (MH+). + pyrimidinediamine N4- (3, 4-Dichlorophenyl)-5-fluoro- [1- (2-hydroxyethyl)-2- 916 LCM : ret. time : 12. 15 min. ; purity : 96% ; MS (m/e) : 502 (MHz + trifluoromethylbenzimidazol-5-yl]-2, 4-pyrimidinediamine N4- (3-Chloro-4-methoxyphenyl)-5-fluoro- [1- (2-hydroxyethyl)-2- 917 LCMS : ret. time : 9. 90 min. ; purity : 94% ; MS (m/e) : 497 (MH'). + trifiuoromethyibenzimidazo)-5-yi]-2, 4-pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yf)-5-fluoro- [I- 918 (2-hydroxyethyl)-2-trifluoromethylbenzimidazol-5-yl]-2, 4- LCMS : ret. time : 9. 08 min. ; purity : 96% ; MS (m/e) : 532 (MH+). + + pyrimidinediamine (S)-5-Fluoro- [1- (2-hydroxyethyl)-2-trifluoromethylbenzimidazol- 9195-yl]-N4- (2-methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yi)-2, 4- LCMS : ret. time : 8. 67 min. ; purity : 92% ; MS (m/e) : 518 (MH+). + + pyrimidinediamine MC, -f't E. 8pt tcnoJ '- MS 486-L4-- ret. . e. P- 4-Tt t d Name i LJ H=-=s2S= b MS (Mle) : 486 ryfln. ; puelty,. 9701,, yi)-2-LCMS.. rpt. time', 14. 96 , O_ [I- (2-hydroyyrneth torophenyl)-', u mine + 920 N4- (314-Dich lbenjiffidaZOI-5-yll-2, 4-pyfirridine6ls + trifluoromethy (mle)-481 (MV4+)- , 4_ (, _,,,,, 0_4_methoxyphenyl)-5-fluoro-ti- (2-hydroYYmethyl)- LCMS,. rpt. ime-. 12. 21 mln' ; Purity : 98./. ; ms idazli-5-yll, 2, 4-PYrit""dinediarnine + 921 2-tritiuoro,, ethylbenitrff- [I- LCMS.. ret. fme : lo. 93 min. ; PL'rlt) f ms (mle),-11 6 (mw). oyo-4-benzli, 41ox3z : ln-rl-yl)-5-fluoro N4- (2,. rnethYl-3-idazol- . 22 (2-hydro% Ymetlly,) _2_tIfluoromethylbenzlm 502 (MW)-+ pyr, rifidinediamine. 92"/. ; ms (s) 5-tuoro-ii- (2 hydro-ymetVIYI)-2-methyl-3-oy, 0-2H, 4B- Lcms : ret. time, 10. 43 min. ; Purity 923 telfluoromethylbenilffidazol-5-yll-N4- (2- + benzti 41oxaZin-6-yi)-2, 4-p) flmid7inedlafffille MS (mle), 517 (MW). -4H-5-PYeldtl, 41.. Zn-6-yl)-5-iluoro LCMS. ret, time'. 12. 25 min. ; Puflty. * 98./ N4- (2, 2-1) irnethyl-3-OY-''luorornethylberi2 : tmldazol-5-yll-2 14- 924 (2-hYdro% Ymethyl)-*2-''i 386 + , Yelmi6inediarKin,- yphenyl)-5-LCMS : ret. time., 9. 63 Min. ; PL' (lty. ms (M . 2-, 2-B,,, Z,, Oyazol-5-yl)-N4- (3-chloro _Methoy MS (mle) : 421 + 925 _pyrinldinediarnine. 848min. ; Puelty*loo"/ ; fluoro-214-5-y,)-N4- (2, 2-dirmn yl,. 3-oxo-4t4- Lcus-. ret. time.-+ 926 N2- (i, 2-Ben7 : lsO) (a7"-5-tiuoro-214-pYfifTfidinediamine'Ity.. 100% ; MS (mle)-. 407 (MH+)- berizii, 410y-az : lrl-r'-Y') l,,. M4- (2-methYl-3-oxo- LCMS : ret. time-. 8-11 min. ; Pu + . ZOI-5-yi)-5-flul , Z. «"<"'*"" --.. =, 5') : (MM1. J U""'"'----'t.,... M 49 .'. P''" J------Tt N2- (1, 2-183enZisO t-5-yl)-N4- (2 lamine + 92-podoti, 41oya ; eln_6_yl) _5_Aluoro_2, 4_py"M'd"ed' 13 ret. time : 9. 69 min. ; Purity. 950/o ; MS (mle) : 455 (mw) cemic_N. 2- (1, 2-Benzisoxazol-5-yi)-5- oo- (2-mettlyi-i, Lrms-. < g w = (MH L, rS-i-E r r r CHMC, I pt S-- L"'=.. 4-= r=----" L--1-=-" L4----'"' L-oxo-4H-benzn. i. --". Number%" rJS,',---."'-*''"L---.----".. -fss.-ss :-' 936e-eten-5y') L---------..,.,. N2- (1, 2-Benz7lsOxazui- ;'-Yl"'_2, 4. pyrimidinedism-ine-de) 423 (M 930 _6_yl). 5_uoro S (n Py"'' 33m. n.-. pu97%-. MS-. 516 (MH).'L---- race cimidinediamine 931l 41thlaZ, n_6-yl)-2, 4-py MS (mle) : 432 I < 4H-ben lienYl)-N2- ; thyl-2-methylbenZmidazOl-5- Lcms : ret. time : puriy min. ; purity : 99011), 932 ) 5 4-Dichlorop MS (m/e)-. 427 + Y,)-,-fluoro-2, 4 (Cirnidinediamine \ (I-ethyl- LCMS,. ret. time : 8, 64 min.-, Purity : 92"" ; . 4- (3-ChlOfO-methOxYPhenyl)-N 4-plelmidinediamine MS (rnie),, 462 + 933 mettlylbenz : lmidalol-5-Yl)-5-tuoro-2-"' ; -Dirnettlyt-3-OXO-4H-b nztl, 41OXaZ"-6-yl)-N2. (i-ethyl- LCMS.. ret. time : 7. 91 min- ; Purity 99/+ 934 N4- (2, 2 idazOl-5-Yi)-'-"uo'0-2, 4-pylmidinediarnine ; MS (mie) : 448 + 2-methylbenZ, m b nZnilda7ol-5-Yi)-5-fluo'o-N4- (2- Lcms : ret. flrne : 7. 72 m'in. ; Pu'tY : 95% (S)-N ! Z- I-tblyl-2-e i, 410-AgZln-6-yl)-2, 4- ) N4- (3. 4-Dichtoropheny') 5 ---') pyrimidined, laaine-Oxo-4VHi--pyrdotl, 410Y, 8fn-6-Yi)-N2- (,- Ms-. ret. time* 8. 48 rnin. ; purity.. 960/o 7L, ----,,. 1<MH.' H : : ==EEE--4 === pynned-ne----.. ... ounty-. 95%-, MS (m. 532 (MH). J- : L..... -L J-'-T" N4- (3- loro-4-methO) XcYP ethylbl-"Z'Tnidazol-5-yll-2 4- \ hydroyYPropyl)-2-t (tfluoOM 46 + + pyeirn-idinediamine _6_yl)-6-fluoro-N2-96% ; MS (mle) * 5 \ imethyl-3-oxo-4-benz [1, 410xaz'-azoi-5-yil-2, 4- LCMS : ret'flme. 9. 04 rnin. ; Purity - (2, 2 roy _Vfluoromethylbeniimtd 185 pyrim-idinediam-ine- (3-hydro PrOPyl)-2-ftme : 8. 49 min. ; Purity : 95% ; MS (M/e) : (S)-5 Fluoro-N2-11 ethyl_3_oxo-2H, 4H- LCMS : ret 940 t (ifluOrornethylbenjiMidazOl-'-yl-N4- (2-M ben7ti, 41oxaZ'n-G-yl)--2, 4-pyrirnidinediamire 195 pro. : C6 CHMC. CHMC, 11pt 8 __pyr, un ame,..,,. ..... t, 't-. . : t.. a N6 moo CHMC, CHMC, CHMC, Ilpt , LD LD D L t t f T tase Tr tase t T ase s k P YP rYP fP_ Y ^ ss 0lY1 OIIri TIA m c a 4lLc,- ; ° wo w : e CHMC CHMC CHMC 11 t r t_ m-1a u. d : i., I E 3 t I E 8 t lon 3 t , r o t"". ° -, c, z a 9 P 9 P P w N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrido [1, 4] oxazin-6-yl)-5-fluoro- 941 N2- [1- (3-hydroxypropyl)-2-trifluoromethylbenzimidazol-5-yl]- LCMS : ret. time : 9. 85 min. ; purity : 93% ; MS (m/e) : 547 (MH+). + + 2, 4-pyrimidinediamine N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- [1-methyl-2- (4- 942 LCMS : ret. time : 9. 49 min. ; purity : 97% ; MS (m/e) : 489 (MH+). + + + morpholino) benzimidazol-5-yl]-2, 4-pyrimidinediamine N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- [1-methyl-2- (4- 943 CMS : ret. time : 7. 79 min. ; purity : 93% ; MS (m/e) : 484 (MH+). + + morpholino) benzimidazol-5-yl]-2, 4-pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- 944 [1-methyl-2- (4-morpholino) benzimidazol-5-yl]-2, 4- LCMS : ret. time : 7. 20 min. ; purity : 99% ; MS (m/e) : 519 (MH+). + + + pyrimidinediamine (S)-5-Fluoro-N2- [1-methyl-2- (4-morpholino) benzimidazol-5- 945 yl]-N4-(2-methyi-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4- LCMS : ret. time : 6. 78 min. ; purity : 90% ; MS (m/e) : 505 (MH+). + + pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrido [1, 4] oxazin-6-yl)-5-fluoro- 946 N2- [1-methyl-2- (4-morpholino) benzimidazol-5-yl]-2, 4- LCMS : ret. time : 7. 86 min. ; purity : 96% ; MS (m/e) : 520 (MH+). + + pyrimidinediamine N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- [1- (3-hydroxypropyl)-2- 947 CMS : ret. time : 9. 65 min. ; purity : 95% ; MS (m/e) : 462 (MH). + methylbenzimidazol-5-yl]-2, 4-pyrimidinediamine N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- [1- (3- 948 hydroxypropyl)-2-methylbenzimidazol-5-yl]-2, 4- LCMS : ret. time : 8. 28 min. ; purity : 90% ; MS (m/e) : 457 (MH+). + pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yi)-5-fluoro-N2 949 [1- (3-hydroxypropyl)-2-methylbenzimidazol-5-yl]-2, 4- LCMS : ret. time : 7. 70 min. ; purity : 96% ; MS (m/e) : 492 (MH+). + pyrimidinediamine (S)-5-Fluoro-N2- [1- (3-hydroxypropyl)-2-methyibenzimidazol-5- 950 yl]-N4- (2-methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yi)-2, 4- LCMS : ret. time : 7. 22 min. ; purity : 90% ; MS (m/e) : 478 (MH+). + pyrimidinediamine LD LD n.. , : __ , * _, Syk, . cons _,. _ , ri r r sa, i s S, 5 u s S Y s 1' ^ G t. h. . .,. . T tase T ase T ase s k rYP, rYP, YP, P Y T S ah h 1 _ - : Grri unL Ne, ° ; F_. _ n ,. CHMC CHMC CHMC 11 t " r P s a : r. z L t r t I E 3 t I E 8 t lono 3 R n n Y : 5 y f s u ° W r tR . F _ 9 P 9 P P S ». keuS. i7. _ L. n. . t N4 b.. N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrido [1, 4] oxazin-6-yi)-5-fluoro- 951 N2- [1- (3-hydroxypropyl)-2-methylbenzimidazol-5-yl]-2, 4- LCMS : ret. time : 7. 97 min. ; purity : 94% ; MS (m/e) : 493 (MH+). + + pyrimidinediamine N2- [1- [3- (N-Acetylamino) propyl]-2-methylbenzimidazol-5-yl]- 952 N4- (2, 2-dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yi)-5-fluoro-2, 4-LCMS : ret. time : 7. 89 min. ; purity : 97% ; MS (m/e) : 533 (MH+). + + pyrimidinediamine N2- [1- [3- (N-Acetylamino) propyl]-2-methylbenzimidazol-5-yl]- 953 N4-(2, 2-Dimethyi-3-oxo-4H-5-pyrido [1, 4] oxazin-6-yl)-5-fluoro- LCMS : ret. time : 8. 09 min. ; purity : 97% ; MS (m/e) : 534 (MH+). + + 2, 4-pyrimidinediamine N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- [1-methyl-2- (4- 954 l LCMS : ret. time : 10. 04 min. ; purity : 96% ; MS (m/e) : 503 (MH+). + + morpholinomethyl) benZimidazol-5-yi]-2, 4-pyrimidinediamine N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- [1-methyl-2- (4- 955 LCMS : ret. time : 9. 29 min. ; purity : 93% ; MS (m/e) : 498 (MH+). + morpholinomethyl) benzimidazol-5-yl]-2, 4-pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- 956 [1-methyl-2- (4-morpholinomethyl) benzimidazol-5-yl]-2, 4- LCMS : ret. time : 8. 09 min. ; purity : 94% ; MS (m/e) : 533 (MH+). + pyrimidinediamine (S)-5-Fluoro-N2- [1-methyl-2- (4- 957 morpholinomethyl) benzimidazol-5-yl]-N4- (2-methyl-3-oxo- LCMS : ret. time : 7. 55 min. ; purity : 98% ; MS (m/e) : 519 (MH+). + + 2H, 4H-benz [1, 4] oxazin-6-yl)--2, 4-pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrido [1, 4] oxazin-6-yl)-5-fluoro- 958 N2- [1-methyl-2- (4-morpholinomethyl) benzimidazol-5-yl]-2, 4- LCMS : ret. time : 8. 34 min. ; purity : 98% ; MS (m/e) : 534 (MH+). + pyrimidinediamine N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- [2- (4-morpholinomethyl)- 959 LCMS : ret. time : 9. 12 min. ; purity : 95% ; MS (m/e) : 489 (MH+). + H-benamldazoi-5-yl]-2, 4-pyrlmldinediamine N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- [2- (4- 960 morpholinomethyl)-1 H-benzimidazol-5-yl]-2, 4- LCMS : ret. time : 8. 10 min. ; purity : 97% ; MS (m/e) : 484 (MH+). + pyrimidinediamine a t a, sf ; 0 LD LD LD - ." : _ _ r n. . 2' , y ;, .. , _ _ '. t xi . r °a < w- t - . .. m > LD LD LD , iYbi c x t t t k Go d' T ase T ase T ase s P.. rYP, rYP rYP, fP_ Y Cln ouid Narie=.. ('h.. tt. l Dk-r, __ _ Nuber...- : CHMC CHMC CHMC 11 t a x m Y P, x W I E 3 t I E 8 t lono 3 t nb. . r r . 9 P 9 P P '. ,-cs o s., ur, a t,, x v° ta N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yi)-5-fluoro-N2- 961 [2- (4-morpholinomethyl)-1 H-benzimidazol-5-yi]-2, 4- LCMS : ret. time : 7. 70 min. ; purity : 93% ; MS (m/e) : 519 (MH+). + + pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrido [1, 4] oxazin-6-yi)-5-fluoro- 962 N2- [2- (4-morpholinomethyl)-1 H-benzimidazol-5-yl]-2, 4- LCMS : ret. time : 7. 93 min. ; purity : 95% ; MS (m/e) : 520 (MH+). + + pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- 963 [2-methyl-1-[3-(N-methylsulfonylamino) propyi] benzimidazol-5-LCMS : ret. time : 8. 01 min. ; purity : 95% ; MS (m/e) : 569 (MH+). + yl]-2, 4-pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrido [1, 4] oxazin-6-yl)-5-fluoro- N2- [2-methyi-1- [3- (/V- 964 LCMS : ret. time : 8. 36 min. ; purity : 95% ; MS (m/e) : 570 (MH+). + + methyisulfonylamino) propyi] benzimidazol-5-yi]-2, 4- pyrimidinediamine N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- {1-methyl-2- 965 [(methyisulfonyl) methyl] benzimidazoi-5-yl}-2, 4-LCMS : ret. time : 10. 63 min. ; purity : 94% ; MS (m/e) : 496 (MH*). + pyrimidinediamine N4- (3-Chloro-4-methoxyphenyl)-5-fluoro- N2- {1-methyl-2- 966 [ (methylsulfonyl) methyl] benzimidazol-5-yl}-2, 4- LCMS : ret. time : 9. 10 min. ; purity : 95% ; MS (m/e) : 491 (MH*). + pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yi)-5-fluoro-N2- 967 {1-methyl-2- [ (methylsulfonyl) methyl] benzimidazol-5-yl}-2, 4- LCMS : ret. time : 9. 22 min. ; purity : 91% ; MS (m/e) : 525 (MH+). + + pyrimidinediamine (S)-5-Fluoro-N2 {1-methyl-2- 968 [ (methylsulfonyl) methyl] benzimidazol-5-yl}-N4- (2-methyl-3- LCMS : ret. time : 8. 62 min. ; purity : 91 % ; MS (m/e) : 512 (MH). + + oxo-2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrido [1, 4] oxazin-6-yl)-5-fluoro- 969 N2-{1-methyi-2-[(methylsulfonyl) methyl] benzimidazol-5-yl}-2, 4-LCMS : ret. time : 9. 14 min. ; purity : 94% ; MS (m/e) : 527 (MH+). + + pyrimidinediamine . h, ; . Compoun ..-_ __pyr, _ -,. _ i r. 3". : LD LD LD rv m und = ,, a T tase Tr tas t p eT asef sk s rYP YP 'YP _ P Y M C'rOfTl aUtl ! ll, n . .. ", N N S Number r., _ t , vCHMC, CHMC, CHMC, 11 t i x3. Jk r o Y c r r r u, . .. I E 3 t I E 8 t lono t a. . z : s. P 9 N4-(3, 4-Dichlorophenyl)-N2-[2-(N, N-diethyiaminomethyi)-1- 970 LCMS : ret. time : 9. 42 min. ; purity : 91 % ; MS (m/e) : 489 (MH+). + methylbenzimidazol-5-yi]-5-fluoro-2, 4-pyrimidinediamine N4- (3-Chloro-4-methoxyphenyl)-N2- [2- (N, N- 971 diethylaminomethyl)-1-methylbenzimidazol-5-yl]-5-fluoro-2, 4- LCMS : ret. time : 7. 76 min. ; purity : 94% ; MS (m/e) : 485 (MH+). + pyrimidinediamine N2- [2- (N, N-Diethylaminomethyl)-1-methylbenzimidazol-5-yl]- 972 N4- (2, 2-dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-LCMS : ret. time : 7. 56 min. ; purity : 94% ; MS (m/e) : 519 (MH+). + + pyrimidinediamine (S)-N2-[2-(N, N-Diethylaminomethyl)-1-methylbenzimidazol-5- 973 yl]-5-fluoro-N4- (2-methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)- LCMS : ret. time : 7. 21 min. ; purity : 97% ; MS (m/e) : 505 (MH+). + + 2, 4-pyrimidinediamine N2-[2-(N, N-Diethylaminomethyl)-1-methylbenzimidazol-5-yl]- 974 N4- (2, 2-dimethyl-3-oxo-4H-5-pyrido [1, 4] oxazin-6-yl)-5-fluoro- LCMS : ret. time : 7. 51 min. ; purity : 97% ; MS (m/e) : 520 (MH+). + + 2, 4-pyrimidinediamine N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- [2- (4-morpholino)-1 H- 975 LCMS : ret. time : 8. 89 min. ; purity : 90% ; MS (m/e) : 475 (MH). + + benamldazoi-5-yi]-2, 4-pyrimidinediamine N4-(2, 2-Dimethyi-3-oxo-4H-benz [1, 4] oxazin-6-yi)-5-fluoro-N2- 976 LCMS : ret. time : 7. 76 min. ; purity : 96% ; MS (m/e) : 505 (Mt-T). + + [2- (4-morpholino)-1 H-benzimidazol-5-yl]-2, 4-pyrimidinediamine N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrido [1, 4] oxazin-6-yi)-5-fluoro- 977 N2- [2- (4-morpholino)-1 H-benzimidazol-5-yl]-2, 4- LCMS : ret. time : 8. 05 min. ; purity : 926% ; MS (m/e) : 506 (MH+). + + pyrimidinediamine N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- [2- (4-morpholino)- 978.. LCMS : ret. time : 8. 03 min. ; purity : 92% ; MS (m/e) : 470 (MH+). + 1 H-benzimidazol-5-yl]-2, 4-pyrimidinediamine N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- [1-methyl-2- (4-methyl-1- LCMS : ret. time : 8. 12 min. ; purity : 98% ; MS (m/e) : 502 (MH+). piperazino)-1 H-benzimidazol-5-yi]-2, 4-pyrimidinediamine N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- [1-methyl-2- (4- 980 methyl-1-piperazino)-1H-benzimidazol-5-yl]-2, 4- LCMS : ret. time : 7. 34 min. ; purity : 96% ; MS (m/e) : 497 (MH+). pyrimidinediamine fp t w <3pt fE, apt tt ; CHMC, CHMC, CHMC, IlPt Cornpoun ige, Bpt lono, 3pt 4- (2. 2-Dimethy)-3-oxo-4H-benz [1, 4] oxazin-6-y))-5-f) uoro-N2- 981 [1-methy)-2- (4-methy)-1-piperazino)-1H-benzimidazoi-5-yi]-2, 4- LCMS : ret. time : 6. 99 min. ; pyrimidinediamine S)-5-Ftuoro-N2- ['t-methy !-2- (4-methyi-1-piperszino)-1 H- 982 benfimidazol-6-yl]-N4- (2-methyl-3-oxo-2H, 4H- benz [1, 4] oxazin-6-yi)-2, 4-pyrimidinediamine 4- (2, 2-Dimethy)-3-oxo-4H-5-pyrido [1, 4oxazin-6-yl)-5-fluoro- 983 N2-11-methyl-2- (4-methyl-I-piperaftno)-l H-benzimidazol-5-yll-LCMS : ret. time : 7. 05 m 2, 4-pyrimidinediamine .'H NMR (DMSO-d6) : d 11. 22 (1H, s), 9. 79 (1H, s), 9. 62 (1H, s), 8. 27 N4- (2. 2-Dimethy,-3-oxc-4H-5-pyrid [1. 4] oxazin-6-yucrc- , , , 984 N2-p- (N-methylamino) carbonylmethyleneoxyphenyq-2, 4- , g , pyrimidinediamine Benzensulfonic Acid Sait ' (1H. dd, J = 8. 1 Hz, J = 2. 4 Hz), 4. 47 (2H, HNMR (DMSO-d6) : d 11. 23 (1H, s), 9. 91 (1H, s), 9. 70 (-tH, s). 8. 29 N4- (2, 2-Dimethy !-3-oxo-4H-5-pyrid [1, 4] oxazin-6-y))-5-ftuoro- 985 L. j (1 H, d, J = 3. 9 Hz), 8. 06 (1H, m), 7. 65-7. 61 (IH. m), 7. 55 (1H, d, J= 985 2-r3- (N-methyiamino) carbonyimethyieneoxyphenyn-2, 4- + + + yp yj. 8. 1 Hz), 7. 48 (1H, d, J = 8. 1 Hz), 7. 33-7. 18 (5H, m), 6. 66 (1H, d, J = pyrimidinediamine p-To) uenesu) fonic Acid Sa) t 7. 5 Hz). 4. 48 (2H, s). 2. 75 (3H, d, J = 3. 6 7. 5 Hz), 4. 48 (2H, s), 2. 75 (3H, broads), J = 3. 6 N4- (2. 2-Dimethyi-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yt)-5-f) uoro- '' L. j s), 8. 05 (1H, broads), 7. 70-7. 66 (1 H, m), 7. 47 (1H, d, J = 8A Hz), 7. 40 986 N2- [3- (N-methy) amino) carbonyimethy) eneoxyphenyn-2, 4- + + (1H. s), 7. 34 (1H, d, J=9Hz), 7. 20 (1H, t, J=7. 9Hz), 6. 61 (1H, d, J= pyrimidinediamine Hydrogen Chloride Salt 7. 5 Hz), 4. 47 (2H, s), 2. 75 (3H, d, J HNMR (DMSO-d6) : d 11. 18 (1H, s), 9. 50 (2H, broads), 8. 25 (1H, N4- (2. 2-Dimethyi-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yi)-5-f) uoro- d, J = 3. 3 Hz), 8. 06 (1H, m), 7. 74-7. 67 (1H, m), 7. 47 (1H, d, J= 8. 4 987 N2- [3- (N-metr) yiamino) carbony) methy) eneoxypr) enyn-2, 4- + + y y yp yj-Hz), 7. 41 (1H, s), 7. 37 (1H, d, J = 8. 1 Hz), 7. 20 (1H, t, J = 7. 9 Hz), pyrimidinediamine Bis-Hydrogen Chtoride Sait 6. 59 (1 H, d, J = 8. 1 Hz), 4. 47 (2H, s), 2. 74 ( 'H NMR (DMSO-d6) : d 11. 19 (1H, s), 9. 58 (1H. broad s), 9. 52 (1H, N4- (2, 2-Dimethy)-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yi)-5-f) uoro- s), 8. 25 (1H, d, J= 3. 6 Hz), 8. 06 (IH. m), 7. 70-7. 66 (1H, m), 7. 47 (1H. 988 N2- [3- (N-methy) amino) carbony) methyteneoxyphenyn-2, 4- + + ........,..,,,. ,, d. J= 8. 7 Hz), 7. 40 (1H, s), 7. 34 (1H, d, J = 8. 1 Hz), 7. 21 (1H, t, J= pynm) d ! ned) am) ne Nttrc Acid Satt 8. 1 Hz), 6. 61 (1 H, d, J = 7. 5 Hz), 4. 47 ( HTpouNMMsNMs 'S'. CNemPbegfn, dG mEta2't 3 we TCrHYMtaCse'TCrHYMtCse'TCrHYiPMtCse'1p1pstyks LD LD Tryptase, Tryptase, Tryptase, fp_yk, Compound,, Name :, Number :.- ... MC, CHMC, CHMC, llpt '""""""""''""'"""""""""""""''H NMR (DMS06) : d 11. 21 (1H,'s). . 64' (1Hbraads) r9" H NMR (DMSO-d6) : d 11. 21 (1H, s), 9. 64 (1H, broad s), 9. 54 (1H, s) 8. 26 (1 H, d, J = 3. 6 Hz), 8. 07 (1H, m), 7. 67 (1H. d, J= 8. 4 Hz), 7. 47 ,, 8. 26 (1 H, d, J = 3. 6 Hz), 8. 07 (1 H, m), 7. 67 (1 H, d, J = 8. 4 Hz), 7. 47 989 N2- [3- (N-methyiamino) carbonymethy ! eneoxypheny !]-2, 4- + + l (1H, d, J=8. 7Hz), 7. 39 (1H, s), 7. 34 (1H, d, J=7. 8Hz), 7. 21 (1H, t, pyrimidinediamine Bis-Nitric Acid Salt =8. 2Hz), 6. 62 (1H, d, J=8. 4Hz), 4 = NMR (DMSO-d6) : d 11. 24 (1H, s), 9. 79 (1H, broad s), 9. 63 (1H, N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-y !)-5-f) uoro- ,, s) 8. 27 (1 H d J = 3. 9 Hz) 8. 07 (1 H, m), 7. 64 (1 H, d J = 8. 4 Hz) 7. 4 990 N2-[3-(N-methylamino) carbonyimethyleneoxyphenyl]-2 4-,,,,,, + + 990 N2- [3- (N-methy ! amino) carbonyimethy ! eneoxyphenyn-2, 4- + + (1H, d, J=8. 4Hz), 7. 36 (1H, s), 7. 32 (1H, d. J=7. 5Hz), 7. 22 (1H, t, J ) yr ! midinediamine Methanesu ! fon ! c Acid Sa) t =7. 9Hz), 6. 64 (1H, d, J=8. 7Hz), HNMR NMR : d 11. 25 (1H, s), 9. 72 (IH. brads), 9. 59 (1H, s), N4-(2 2-Dimethyi-3-oxo-4H-5-pyrid [1 4] oxazin-6-yl)-5-fluoro- 8. 27 (1 H, d, J = 3. 6 Hz), 8. 07 (1H, m), 7. 65 (1H, d, J= 8. 4 Hz), 7. 47 991 N2- [3- (N-methy ! amino) carbony ! methy) eneoxyphenyn-2, 4- + + , (1H d J = 8. 7 Hz) 7. 37 (1H s) 7. 33 (1H d J = 8. 7 Hz) 7. 21 (1H t (1H, d, J=8. 7Hz), 7. 37 (1H, s), 7. 33 (1H, d, J=8. 7Hz), 7. 21 (1H, t, J 3yr ! midined ! amine (1S)- (-<-)-CamphorsufonicAcid Sa ! t =8. 1 Hz), 6. 62 (1H, dd, J=8. 1 Hz, J = NMR (DMSO-d6) : d 11. 21 (1 H, s), 9. 63 (1 H. brad s), 9. 54 (1 H, s), N4-(2, 2-Dimethyl-3-oxo-4H-5-pyrid [1 4] oxazin-6-yl)-5-fluoro- , 8. (1 H, d, J = 3. 6 Hz), 8. 07 (1H, m), 7. 67 (1H, d, J= 8. 4 Hz), 7. 47 992N2- [3- (N-methy) amino) carbony ! methy) eneoxypheny !]-2, 4- + +- l (1H d J = 8. 7 Hz) 7. 39 (1H s) 7. 34 (1H, d, J = 8. 1 Hz), 7. 21 (1H, t, pyrimidinediamine (+)-Camphorsulfonic Acid Salt =8. 1 Hz), 6. 61 (1H, dd, J = 8. 1 Hz, J 'H NMR (DMSO-d6) : d 10. 78 (1H, s), 10. 11 (1H, broad s), 9. 89 (1H, 'H NMR (DMSO-d6) d 10 78 (1H s) 10. 11 (1H broad s) 9. 89 (1H N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yi)-5-fiuoro-N2- ,, broads) 829 (1H d J=48Hz) 8. 01 (1H s) 7. 95 (1H s) 7. 70 (1H broad s), 8. 29 (1 H, d, J = 4. 8 Hz), 8. 01 (1 H. s), 7. 95 (1 H, s), 7. 70 (1 H, 993 1-methytindazo !-6-y !)-2, 4-pyrimid ! nediam ! ne p-+ + + , d, J = 8. 7 Hz), 7. 55 (2H, d, J = 8. 1 Hz), 7. 40 (1H, d, J = 8. 4 Hz), 7. 29- Toiuenesuifonic Acid Salt 7. 18 (4H, m), 6. 95 (1H, d, J= 8. 7 Hz), 'H NMR (DMSO-d6) : d 10. 73 (1H, s), 9. 65 (1H, s), 9. 41 (1H, s), 8. 20 N2-(3-Chloro-4-methoxy-5-methylphenyl)-N4-(2, 2-dimethyi-3- (1H, d, J= 4. 2 Hz), 7. 71 (1H, s), 7. 54 (2H, d, J= 8. 1 Hz), 7. 43 (1H, s), 994oxo-4H-benz [1, 4] oxazin-6-yi)-5-fluoro-2, 4-pyrimidinediamine + + + + 7. 35 (1H, dd, J = 8. 4 Hz J = 2. 4 Hz), 7. 23-7. 17 (3H, m), 7. 00 (1H, d, p-To Acid Salt = 8. 4 Hz), 3. 76 (3H, s), 2. 38 (3H, s) 1 'H NMR (DMSO-d6) : d 9. 19 (1 H, d, J= 1. 5 Hz), 9. 05 (1 H, s), 8. 64 (1 H, N2- (3-Chbro-4-hydroxy-5-methy) phenyt)-N4- (3, 4- s), 8. 10 (1 H, d, J= 3. 9 Hz), 7. 62 (1 H, d, J= 2. 7 Hz), 7. 36 (1 H, d, J= 1. 8 ethylenedioxyphenyl)-5-fluoro-2, 4-pyrimidined ! amine Hz), 7. 31 (1 H, m), 7. 27 (1 H, d, J= 2. 7 Hz), 6. 87 (1 H, d, J= 8. 4 Hz), 4. 31 (4H, s), 2. 22 (3H, s) ; LCMS : purity : ........ = r Compound __pyk, - zu : : LD LD LD P ° _, _w +. r Tr ta t ", aef sk , se T ase T t s YP, rYP rYP P_ ar _ 4, e 3S \, =a iin. Com ound Name'. : : ,. l'Til t. v r Num6er CHMC, CHMC, CHMC, Ilpt ........,., 4. 4r ) gE, 8pt fono. Spt SSSiBss. H a. . r zu " :,. I E 3 t I E 8 t lon 0 3 t 9 P 9 P P 'H NMR (DMSO-d6) : d 11. 16 (1H, s), 9. 27 (1H, s), 9. 15 (1H, s), 8. 67 996 N2- (3-Chloro-4-hydroxy-5-methylphenyl)-N4- (2, 2-dimethyl-3- (1 H, s), 8. 19 (1 H, d, J= 3. 6 Hz), 7. 64 (2H, m), 7. 42 (1 H, d, J= 8. 4 Hz), + + oxo-4H-5-pyrid [1, 4] oxazin-6-yi)-5-fluoro-2, 4-pyrimidinediamine 7. 29 (1 H, d, J= 2. 7 Hz), 2. 22 (3H, s), 1. 53 (6H, s) ; LCMS : purity : 97. 69% ; MS (m/e) : 444 (M+). 'H NMR (DMSO-d6) : d 11. 16 (1H, s), 9. 23 (1H, s), 9. 11 (1H, s), 8. 19 997 N2- (3, 5-Dimethyl-4-methoxyphenyl)-N4- (2, 2-dimethyl-3-oxo- (1 H, d, J= 3. 6 Hz), 7. 69 (1 H, d, J= 8. 1 Hz), 7. 44 (1 H, d, J= 8. 4 Hz), + + + 4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine 7. 33 (2H, s), 3. 68 (3H, s), 2. 23 (6H, s), 1. 53 (6H, s) ; LCMS : purity : 99% ; MS (m/e) : 439 (MH+). 1 'H NMR (DMSO-d6) : d 10. 06 (1 H, s), 9. 85 (1 H, s), 8. 25 (1 H, d, J= 4. 8 998 N2-(3, 5-Dimethyi-4-methoxyphenyi)-N4-(3, 4-Hz), 7. 33 (1 H, d, J= 2. 4 Hz), 7. 24 (2H, s), 7. 20 (1 H, d, J= 2. 7 Hz), 6. 91 + + eth lenediox hen I-5-fluoro-2, 4 + +- ethylenedioxyphenyl)-5-fluoro-2, 4-pyrimidinediamine (1 H, d, J= 8. 4 Hz), 4. 32 (4H, s), 3. 71 (3H, s), 2. 25 (6H, s) ; LCMS : purity : 96. 69% ; MS (m/e) : 397 (MH+). 'H NMR (DMSO-d6) : d 9. 88 (2H, broad s), 8. 26 (1H, d, J= 4. 2 Hz), 999 N2- (3-Chloro-4-methoxy-5-methylphenyl)-N4- (3, 4- 7. 64 (1 H, s), 7. 41 (1 H, s), 7. 30-7. 28 (1 H, m), 7. 25-7. 20 (1 H, m), 6. 92 + + + 999 + + + ethylenedioxyphenyl)-5-fluoro-2, 4-pyrimidinediamine (1 H, d, J= 10. 2 Hz), 4. 32 (4H, s), 3. 79 (3H, s), 2. 29 (3H, s) ; LCMS : purity : 94. 81% ; MS (m/e) : 417 (MH+). 'H NMR (DMSO-d6) : d 9. 15 (1 H, s), 9. 08 (1 H, s), 8. 09 (1 H, d, J = 3. 6 N4- (3, 4-Dihydro-2, 2-dimethyl-4H-benz [1, 4] oxazin-6-y))-5- Hz), 8. 04 (1 H, d, J = 4. 5 Hz), 7. 45-7. 42 (2H, m), 7. 17 (1H, t, J= 8. 4 1000 fluoro-N2- [3- (N-methylamino) carbonylmethyleneoxyphenylj- 2, 4-pyrimidinediamine Hz), 7. 01 (1 H, d, J = 2. 4 Hz), 6. 95 (1 H, d, J = 8. 4 Hz), 6. 65 (1 H, d, J = 2, 4-pyrimidinediamine 8. 7 Hz), 6. 53 (1H, d, J = 9. 3 Hz), 5. 88 'H NMR (DMSO-d6) : d 9. 59 (1H broad s) 8. 17 (1H d J = 4. 2 Hz) N2- (3-Chloro-4-methoxy-5-methylphenyl)-N4- (3, 4-dihydro-2, 2- 7. 65 (1 H, s), 7. 46 (1 H, s), 6. 94-6. 86 (2H, m), 6. 68 (1 H, d, J = 8. 7 Hz), + 1001 dimethyl-4H-benz [1, 4] oxazin-6-y !)-5-fiuoro-2, 4- + 3. 77 (3H, s), 3. 08 (2H, s), 2. 27 (3H, s), 1. 34 (6H, s) ; purity : 94. 5% ; pyrimidinediamine MS (m/e) : 444 (M). 'H NMR (DMSO-d6) : d 9. 06 (2H, s), 8. 09 (1 H, d, J = 3. 6 Hz), 7. 03 N4- (3, 4-Dihydro-2, 2-dimethyl-4H-benz [1, 4] oxazin-6-yl)-N2- (1 H, dd, J = 6. 9 Hz, J = 1. 8 Hz), 6. 95 (1H, dd, J = 8. 1 Hz, J = 2. 7 Hz), + 1002 (3, 5-dimethoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine 6. 63 (1 H, d, J = 8. 7 Hz), 6. 11 (1 H, s), 5. 82 (1 H, s), 3. 71 (6H, s), 3. 07 (2H, s), 1. 34 (6H, s) ; purity 95. 9% ; MS ( lono, 3pt gE, 8pt ig 3pt I < 193 r%-'°'% -'""'l \ -. '' --- \-\ \ d 17 52 ('"'S)' 17 Vi, d 9 nd : ncLtlrne,' ;.-d6, J 9 Hy, 7 L 161 (1 68 (1", d, i 1H, mO 1H, t, J =T. A d, to-7-ig (IV" Z. A4 t'H, d, J-8. 7 Nz), 7. 19 ( y 1, 4loxaz : n'6 Y 1. 53 6H, Sl 125 1H, Sl, 9. 39 ON, SO _3_pxa-4H-5-Pyrv [ Hz, 2. 82 (°H, m) , 0. 121 = 8. 7 7. 43 (lN, d _2, pmdinediamine N 2 2_pimethy NMR lM'-d61 d'1. 23 lN, s) heny) 1003 opY P J = 4. 8 HZI, Z, 52 lH, d'. 50 (6HS ; PUrity 97. 9% ; MS N2-3'soP HZ, 7. 3q. _7. 16 (4H, ml, 2. 30 (3H, sO ridf. l lXazn-6 yD5'fluoro-8. 27 tH, ' . r. 1 Hxl 7. 57 (H, d, J 8. 4 th I-3-oxo. 4H-5-PY (mie) : 395 tMH _d ; d 8. 43 ('H, d J _ 5. 3H s) 3. 39 (3H. SO 'amide N- (22-ime Y heny)-2PYrimdined 1004 ethY p pMSO = 0. 9 Hz), 3. 59 _ t12-t2 m H NMR ( 7. 15 t°H, dd, J = 8. 1 Nx . 352 (MHk' 3_oxo-2, 2 imethY'Nzl, 97. 2°l0 ; MS (mie d = 3. 3 Hx, 7. 62 3. 45 t3N, Sl, 1. 55 (6H, 51 idineamsne 1. 55 (6H, 51 ; PuritJ NMFt (DMS d6Y d . 35 lH, S), 8. 47 ( ' _ hloro-5-fluoro-N4"methY-t 7. 58 (H, d, J-8. 4 HZI 2C 1005 yrd, 4] oxaan-6 l>>'-ytm 1H MH-) S 9. 19 (H, s), 821 k p . xo-22, 4'trimethY-5 PYridL. °xazn- tH, d, J c 8. 7 Hz) : 338 ( puribl 96Q/o MS Wtel S 9. 24 (N, >> DMSd6 a 11. 14 (H, 7, 41 lH, d, J 8. 5. r + ro-5-fluoro-N4-t3 0 1H uMR l, = 8. 7 HxO Z. Chlo 6N s 3. 69 tH, Sl, 1. 52 (6H, S) ; purity 961 1006 6 y_, _pynmdneame 2 dimethyl-VA-4), 7. 4 -t44- (2, e. 46 (iVi, d,, 153 (614, S), 42 ( . 12 (92 lH, 5 a. 16 mle) : 471 tMHk 1H, S), 9. 40 tH, SO t2 2_pimethY3-oxo-H-SPY thoxYP. d 10. 67 d J 2. 7 H>> k henYl-2, 4pYrmsdinediamine 100Z 2 t3 4, 5 trime NMR OMS-d6O 1H, d, J 3 Hzl, 7. 45 (H,, g 1N, d, Jo3. 9Hz, 7. 7A1 1H, d,, 1-2. 4Hz) 7. 36 (H, dd, JB. ZHz, J2. 4Hx1,'T. 25 ( _ ! 4-t2, 2dimethY'3_ =8. 7Hz, 3. 94 (2H, q,. 1=T. 2NZ s, g. 41 ('H. S), 8. 27 (H, S, 7. 8 ro--ethoxY5methyPheny) ro-2, 4pYr'mldinediamsne (1H, d . d 9. 62 H, d 8, 7 NZI, 7. h3 (H, S>> + 2- (3'Chlo 4 oxazv--Y15'uo 1H NMi (MS-d6. 8. 7 Hzl, 7. 48 ('H, d 2. 4 Hzl PmiY 1008 oxo-H. benzL1, 2. 4 Hz), 2. 92 (3H, s, 1. 55 (6H, . 5-fluoro-N4- (3'oxo- (1H, sl, 7. 73 (H, a _ ro--methoxY-5'methyPheny 3. 78 (3H, d °, T3 (MHk's g. 38 (H, S), 8. 23 N2-l3'hto qyoxazm 6-YO'24 PYimdinediamse 97°l0 ; MS (m ! e) 1H, Sl, 9. 41 ('1N, l 1H R S'd6) d 1. 18 ( 9 eth l-5-PYrC, DM 2. T Hz, d, J = 8. 2 + 3. 6 Hz), 7. T4 (1H, d, 7 6 (H, = 2. 1 Hx), 3. 95 (2, 100 2 2 q_trim Y = 8. 1 Hzl, T. 41 (H, d 1 henYO-N't2, -dimethY'3_ (1H, a Hz, 2. 27 (3H, 51, 1. 5316H, S), 1. 42 ( _5_uoro-24-PYimidinediame 7. 46 tH, d'' - Chtora'-ethoxy-5'methy P 1010 oxo-4H''PYrid [1 >4loxazfn-6'Y) 193 LD LD ... s S N i. s C 5'EeomP Compound Name a :-a M. a'r, ., x :,..... .... , e %..,. H.'Nt. e r...... asas.. ; ', . r » -, _, a LD LD LD S k"i t t f k v w . , m T tase Tr ase T ase s h m du4'A i'i. ASar I.. . n r rYP YP rYP P_ Y Uttd N it'1B". : F F C= CQI11 4 t. i.. 'CHMC CHMC 11 t CHMC Number. _ r N, , , P k _ v vt'°., AK" cw s itt. 9 E 3 t I E 8 t lono 3 w 9 P 9, P, P r 1HNMR (DMSO-d6) : d 10. 74 (1 H, s), 9. 56 (1H, s), 9. 49 (1H, s), N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- 8. 21-8. 19 (2H, m), 7. 89 (2H, d, J = 9 Hz), 7. 84 (2H, d, J = 9 Hz), 7. 37 + + + 1011 + +-+ [4- (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine (I H, d, J = 0. 6 Hz), 7. 33 (1H, dd, J = 8. 1 Hz, J = 2. 4 Hz), 7. 26 (1H, d, J = 2. 7 Hz), 7. 02 (1 H, d, J = 8. 7 Hz), 1. 53 ( 1 H NMR (DMSO-d6) : d 9. 76 (1 H, s), 9. 74 (1 H, s), 8. 41 (1 H, s), 8. 32 1012 5-Fluoro-N2- [3- (oxazol-2-yl) phenyl]-N4- [3-oxo-2, 2, 4-trimethyl- (1 H, d, J = 3. 6 Hz), 8. 25 (1H, s), 7. 89-7. 83 (2H, m), 7. 64 (1H, d, J = + + 5-pyrid [1, 4] oxazin-6-yl]-2, 4-pyrimidinediamine 7. 8 Hz), 7. 48 (1 H, d, J = 7. 8 Hz), 7. 44 (1 H, s), 7. 36 (1 H, d, J = 7. 2 Hz), 3. 42 (3H, s), 1. 54 (6H, s) ; purity 96%. 1 H NMR (DMSO-d6) : d 9. 76 (1 H, s), 9. 73 (1 H, s), 8. 31 (1 H, d, J = 3. 6 5-Fluoro-N2- [4- (oxazol-2-yl) phenyl]-N4- [3-oxo-2, 2, 4-trimethyl- Hz), 8. 21 (1H, d, J = 0. 9 Hz), 7. 92 (2H, d, J = 9. 3 Hz), 7. 88 (2H, d, J = + 1013 +- 5-pyrid [1, 4] oxazin-6-yl]-2, 4-pyrimidinediamine 9. 6 Hz), 7. 76 (1H, d, J = 8. 4 Hz), 7. 54 (1H, d, J = 8. 4 Hz), 7. 38 (1H, d, J = 0. 9 Hz), 3. 44 (3H, s), 1. 57 (6H, 1H NMR (DMSO-d6) : d 10. 69 (1H, s), 9. 43 (1H, s), 9. 27 (1H, s), 8. 17 N2- [3-Chloro-4-ethoxycarbonylmethyleneoxy-5-methylphenyl]- (1H. d, J=3. 6Hz), 7. 76 (1H, d, J=2. 7Hz), 7. 46 (1H, d, J=2. 4Hz), 1014 N4-(2, 2-dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4- + + + pyrimidinediamine pyrimidinediamine d, J = 8. 4 Hz), 4. 58 (2H, s), 4. 28 (2H, 1 H NMR (DMSO-d6) : d 9. 58 (1 H, s), 9. 42 (1 H, s), 8. 25 (1 H, d, J = 3. 3 5-Fluoro-N2- [3- (N-methylamino) carbonylmethyleneoxyphenyl]- Hz), 8. 06 (1 H broad s) 7. 88 (1 H d J = 8. 4 Hz), 7. 49 (2H, m), 7. 36 1015 N4- [3-oxo-2, 2, 4-trimethyl-5-pyrid [1, 4] oxazin-6-yl]-2, 4- + +- (1H, d, J=7. 5Hz), 7. 20 (1 H, t, J = 8. 1 Hz), 6. 56 (1H, dd, J=8. 4Hz, J pyrimidinediamine = 2. 4 Hz), 4. 46 (2H, s), 3. 44 (3H, s), 1HNMR (DMSO-d6) : d 10. 67 (1 H, s), 9. 53 (1H, s), 9. 38 (1 H, s), 8. 47 1016 N4-(2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- (1 H, s), 8. 20 (1 H, d, J = 3. 6 Hz), 8. 04 (1 H, s), 7. 78 (1 H, m), 7. 58 (1 H, + + + [3- (oxazol-5-yl) phenyl]-2, 4-pyrimidinediamine s), 7. 41 (1 H, dd, J = 8. 7 Hz, J = 2. 4 Hz), 7. 35 (2H, d, J = 4. 8 Hz), 7. 29 (1H, d, J = 2. 4 Hz), 6. 89 (1H, d, J = 1H NMR (DMSO-d6) : d 9. 65 (1 H, s), 9. 57 (1H, s), 8. 47 (1H, s), 8. 29 1017 5-Fluoro-N2- [3- (oxazol-5-yl) phenyl]-N4- [3-oxo-2, 2, 4-trimethyl- (1 H, d, J = 3. 6 Hz), 8. 12 (1H, s), 8. 84 (1H, d, J = 8. 1 Hz), 7. 74 (1H, m), 1017 + + 5-pyrid [1, 4] oxazin-6-yi]-2, 4-pyrimidinediamine 7. 62 (1 H, s), 7. 43-7. 32 (3H, m), 3. 42 (3H, s), 1. 54 (6H, s) ; purity 96. 4% ; MS (m/e) : 462 (MH+). , kl. LD LD LD cul S u §-". CHMC, CHMC, CHMC, llpt W. z- 7LD LD LD a i t t s T tase f s k T ase T a e nd Coir Qu, rYP P rYP, P_ Y , ry y, v n ; y om ound Nai e 'P. s 1 ! . m 1 P M. e fi"', h kr H C CHMC CHMC 11 t Number ; w,. x< ,,,, P T as o-z h .. T I E 3 t I E 8 t lono 3 t 9 P 9 P P a H NMR (DMSO-d6) : d 10. 68 (1H, s), 9. 41 (1H, s), 9. 20 (1H, s), 8. 16 N2- [3-Ch) oro-4-cydopenty ! oxy-5-methy) pheny)]-N4- (2, 2- (1H, d, J=3. 6Hz), 7. 73 (1H, d, J=2. 7Hz), 7. 45 (1H, d, J=2. 4Hz), 1018dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-y !)-5-fiuoro-2, 4-'+ +- 7. 36 (1H, dd, J=9Hz, J=2. 7Hz), 7. 24 (1H, d, J=2. 4Hz), 6. 98 (1H, pyrimidinediamine d, J = 8. 7 Hz), 4. 65 (1 H, m), 2. 23 (3H, 1 H NMR (DMSO-d6) : d 10. 72 (1 H, s), 9. 65 (1 H, s), 8. 71 (1 H, s), 8. 27 1019 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N4- (1 H, t, J = 1. 2 Hz), 8. 09 (1 H, dd, J = 5. 4 Hz, J = 0. 9 Hz), 7. 82 (1 H, dd, + + methyl-N2- [3- (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine J = 8. 1 Hz, J = 0. 9 Hz), 7. 60 (1 H, d, J = 8. 4 Hz), 7. 48-7. 43 (2H, m), 7. 05-6. 97 (2H, m), 6. 87 (1 H, d, J = 2. 1 H 1H NMR (DMSO-d6) : d 10. 75 (1H, s), 9. 56 (1H, s), 9. 49 (1H, s), 8. 43 1020 N4-(2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2-1H, s), 8. 20 (1H, d, J = 3. 9 Hz), 7. 83 (2H, d, J = 8. 7 Hz), 7. 59 (2H, d, + + [4- (oxazol-5-yl) phenyl]-2, 4-pyrimidinediamine J = 8. 7 Hz), 7. 53 (1 H, s), 7. 33-7. 28 (2H, m), 7. 02 (1 H, d, J = 8. 4 Hz), 1. 52 (6H, s) ; purity 97. 4% ; MS (m/e) : 1HNMR (DMSO-d6) : d 10. 72 (1H, s), 9. 72 (1H, s), 8. 20 (1H, d, J = 1021 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N4- 0. 9 Hz), 8. 11 (1 H, d, J = 5. 7 Hz), 7. 89 (4H, s), 7. 38 (1 H, d, J = 0. 9 Hz), + + + methyl-N2- [4- (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine 7. 07-6. 97 (2H, m), 6. 87 (1 H, d, J = 2. 7 Hz), 3. 54 (3H, s), 1. 52 (6H, s) ; purity 97. 1% ; MS (m/e) : 461 (MH+). 1H NMR (DMSO-d6) : d 10. 70 (1H, s), 9. 38 (1H, s), 8. 05 (2H, d, J = N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N4- 5. 4Hz), 7. 55 (1H, m), 7. 37 (1H, d, J=8. 4Hz), 7. 20 (1H, t, J=7. 8Hz), 1022 methyl-N2- [3- (N-methylamino) carbonylmethyleneoxyphenyl]- + +- 7. 03 (1 H, d, J = 8. 4 Hz), 6. 97 (1 H, dd, J = 8. 4 Hz, J = 2. 1 Hz), 6. 85 2, 4-pyrimidinediamine (1H, d, J=2. 1Hz), 6. 57 (1H, dd, J=7. 8 1 H NMR (DMSO-d6) : d 10. 71 (1 H, s), 9. 55 (1H, s), 8. 50 (1H, s), 8. 37 2 N4-(2, 2-Dimethyi-3-oxo-4H-benz [1, 4] oxazin-6-yi)-5-fluoro-N4-H, s), 8. 08 (1 H, d, J = 5. 7 Hz), 7. 68 (1 H, d, J = 8. 1 Hz), 7. 66 (1 H, s), + + methyl-N2- [3- (oxazol-5-yl) phenyl]-2, 4-pyrimidinediamine 7. 43-7. 34 (2H, m), 7. 05-6. 97 (2H, m), 6. 87 (1 H, d, J = 2. 4 Hz), 3. 55 (3H, s), 1. 51 (6H, s) ; purity 95. 6% ; MS 1 H NMR (DMSO-d6) : d 9. 71 (1H, s), 8. 20 (1H, d, J = 0. 9 Hz), 8. 10 1024 5-Fluoro-N4-methyl-N2- [4- (oxazol-2-yl) phenyl]-N4- (3-oxo- (1 H, d, J = 6 Hz), 7. 90 (4H, s), 7. 38 (1H, d, J = 0. 6 Hz), 7. 27 (1 H, s), + + 2, 2, 4-trimethylbenz [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine 7. 09 (2H, s), 3. 59 (3H, s), 3. 34 (3H, s), 1. 52 (6H, s) ; purity 97. 4% ; MS (m/e) : 475 (MH+). LD LD LD '' ! a=g'Comp6undName'Ks-'y.'S'MM Tryptase, Tryptase, Tryptase, fp "Como0und N ; jme p er. Numb CHMC, CHMC, CHMC, Ilpt ""SS ssEHs ;, 3, g , 3 fgE, 3pt IgE, 8pt lono, 3pt 1H NMR (DMSO-d6) : d 9. 65 (1 H, s), 8. 72 (1 H, d, J=1. 8Hz), 8. 27 1025 ! uoro-N4-methy !-N2- [3- (oxazo !-2-yi) pheny)]-N4- (3-oxo- (1H, d, J = 0. 6 Hz), 8. 08 (1H, d, J = 6Hz), 7. 83-7. 79 (1H, m), 7. 60 (1 H, + 1025 + + (1H, s), 7. 07 (2H, s), 3. 62 (3H, s), 3. 35 1 H NMR (DMSO-d6) : d 9. 60 (1 H, s), 8. 44 (1 H, s), 8. 07 (1 H, d, J = 6 5-Huoro-N4-methy)-N2- [4- (oxazo !-5-y)) pheny !]-N4- (2, 2, 4- Hz), 7. 88 (2H, d, J = 8. 4 Hz), 7. 65 (2H, d, J = 8. 7 Hz), 7. 57 (1 H, s), 1026 + tr ! methy !-3-oxo-benz [1, 4] oxazin-6-yi)-2, 4-pyrimidinediamine 7. 27 (1 H, s), 7. 08 (2H, s), 3. 58 (3H, s), 3. 34 (3H, s), 1. 52 (6H, s) ; purity 98. 61 % ; MS (mule) : 475 (MH+). 1HNMR (DMSO-d6) : d 11. 18 (1H s) 9. 38 (1H s) 9. 35 (1H s) 8. 22 1HNMR (DMSO-d6) : d 11. 18 (1 H, s), 9. 38 (1H, s), 9. 35 (1H. s), 8. 22 , (1H d J=36Hz) 7. 74 (1H d J=2. 4Hz) 7. 61 (1H d J=8. 7Hz) (1H, d, J=3. 6Hz), 7. 74 (1H, d, J=2. 4Hz), 7. 61 (1H, d, J=8. 7Hz), 1027dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-y !)-5-f) uoro-2, 4- + 7. 46 (1 H, d, J = 8. 4 Hz), 7. 41 (1 H, d, J = 2. 7 Hz), 4. 67 (1 H, m), 2. 26 pyrimidinediamine (3H, s), 2. 00-1. 60 (8H, m), 1. 53 (6H, s) 1 H NMR (DMSO-d6) : d 11. 18 (1 H, s), 9. 60 (1 H, s), 9. 37 (1 H, s), 8. 38 N4- (2, 2-Dimethy !-3-oxo-4H-5-pyrid [1, 4] oxazin-6-y !)-5-f) uoro- (1 H, s), 8. 27 (2H, m), 7. 93 (1 H, d, J = 8. 4 Hz), 7. 71 (1 H, d, J = 8. 7 Hz), + + 1028 + + N2- [3- (oxazo)-2-y !) pheny !]-2, 4-pyr ! m ! dinediam ! ne 7. 60 (1 H, d, J = 8. 1 Hz), 7. 44-7. 34 (3H, m), 1. 53 (6H, s) ; purity 95% ; MS (m/e) : 448 (MH+). 1H NMR (DMSO-d6) : d 11. 17 (1H, s), 9. 45 (1H, s), 9. 31 (1H, s), 8. 54 N4- (2, 2-Dimethy)-3-oxo-4H-5-pyr ! d [1, 4] oxazin-6-y))-5-fluoro- (2H, dd, J = 9. 9 Hz, J = 0. 9 Hz), 8. 24 (1 H, d, J = 3. 6 Hz), 8. 10 (1 H, s), N2- [3- (oxazol-4-yl) phenyl]-2, 4-pyrimidinediamine 7. 78-7. 72 (2H, m), 7. 42-7. 29 (3H, m), 1. 52 (6H, s) ; purity 96. 4% ; MS (m/e) : 448 (MH+). 1HNMR (DMSO-d6) : d 9. 47 (1 H, s), 8. 59 (1H, s), 8. 51 (1H, s), 8. 41 1030 ! uoro-N4-methy !-N2- [3- (oxazo !-4-y !) pheny)]-N4- (3-oxo- (1 H, s). 8. 05 (1 H, d, J = 5. 4 Hz), 7. 66 (1 H, d, J = 7. 5 Hz), 7. 41-7. 32 + + 2, 2, 4-trimethylbenz [1, 4] oxazin-6-yi)-2, 4-pyrimidinediamine (2H, m), 7. 27 (1 H, s), 7. 07 (2H, s), 3. 60 (3H, s), 3. 35 (3H, s), 1. 51 (6H, s) ; purity 97. 4% ; MS (m/e) : 475 (MH+). N2- (3. 5-Dimethy)-4-methoxypheny !)-5-f ! uoro-N4-methy !-N4- (3- 1H NMR (DMSO-d6) : d 9. 11 (1 H, s), 8. 00 (1 H, J = 5. 7 Hz), 7. 42 (2H, 1031 oxo-2, 2, 4-trimethyl-benz [1, 4] oxazin-6-yi)-2, 4- s), 7. 24 (1 H, s), 7. 05 (2H, s), 3. 68 (3H, s), 3. 55 (3H, s), 3. 33 (3H, s), + pyrimidinediamine 2. 25 (6H, s), 1. 51 (6H, s) ; purity 97. 84% ; MS (m/e) : 466 (M). 1H NMR (DMSO-d6) : d 9. 49 (1H, s), 8. 07 (1H, dd, J = 6 Hz, J = 1. 5 N2- (3-Ch ! oro-4-cyc) openty ! oxy-5-methy) pheny !)-5-f) uoro-N4- Hz), 7. 81 (1 H, d. J = 2. 7 Hz). 7. 47 (1 H, d, J = 2. 4 Hz), 7. 27 (1 H, s), 1032 !-N4- (3-oxo-2, 2, 4-trimethy)-benz [1, 4] oxazin-6-yl)-2, 4- ...... 7. 07 (2H, s), 4. 69 (1 H, m), 3. 61 (3H, s), 3. 33 (3H, s), 2. 29 (3H, s), 2. 0- pyrimidinediamine 1. 6 (8H, m), 1. 51 (6H, s) ; purity 96. 15% ; LD LD a 5_ °. r i. w- vi_. #.... d, i o '. __pyr, . x r'L Number ., w r ss , qbs. y c. n T tas T tase T tase f s k e . r . rYp, rYP rYP, P_ Y a' r. a : _Cpm ound Nrrie=. w. ,' Ph 1-C P Y . ra _n s- » 5 w ,. . CHMC CHMC CHMC 11 t 3 s a ra v a. E t t I E 3 f I 8 lono 3 1 i r ; 9 P 9 p P i . fi. . 1H NMR (DMSO-d6) : d 9. 49 (1H, d, J = 0. 9 Hz), 9. 15 (1H, s), 8. 21 N2- (3, 5-Dimethyl-4-methoxyphenyl)-5-fluoro-N4- (3-oxo-2, 2, 4- (1H, d, J = 3. 6 Hz), 7. 81 (1H, d, J = 8. 7 Hz), 7. 45 (1H, d, J = 8. 4 Hz), + + + 1033 + + + trimethyl-benz [1, 4] oxazin-6-yi)-2, 4-pyrimidinediamine 7. 35 (2H, s), 3. 69 (3H, s), 3. 43 (3H, s), 2. 23 (6H, s), 1. 54 (6H, s) ; purity 98. 82% ; MS (m/e) : 453 (M). 1H NMR (DMSO-d6) : d 9. 63 (1H, s), 9. 40 (1H, s), 8. 26 (1H, d, J =3. 6 N2- (3-Chloro-4-cyclopentyloxy-5-methylphenyl)-5-fluoro-N4- Hz), 7. 78 (1 H, d, J = 2. 4 Hz), 7. 72 (1 H, d, J = 8. 4 Hz), 7. 48 (1 H, d, J= 1034 3-oxo-2, 2, 4-trimethyl-benz [1, 4] oxazin-6-y !)-2, 4- + 8. 4 Hz), 7. 41 (1 H, d, J = 2. 4 Hz), 4. 68 (1 H, m), 3. 41 (3H, s), 2. 26 (3H, pyrimidinediamine s), 1. 95-1. 60 (8H, m), 1. 54 (6H, s) ; 1H NMR (DMSO-d6) : d 11. 23 (1H, s), 9. 70 (1H, s), 9. 53 (1H, s), 8. 27 N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro- (1 H, d, J = 3. 6 Hz), 8. 20 (1 H, d, J = 0. 9 Hz), 7. 90 (2H, d, J = 9. 3 Hz), 1035- N2- [4- (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine 8. 86 (2H, d, J = 9. 5 Hz), 7. 55 (1 H, d, J = 8. 4 Hz), 7. 51 (1 H, d, J = 8. 4 Hz), 7. 37 (1H, J = 0. 9 Hz), 1. 56 (6H, s 1H NMR (DMSO-d6) : d 10. 65 (1 H, s), 9. 41 (1H, d, J = 1. 2 Hz), 9. 32 1036 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- (1 H, s), 8. 50 (1 H, d, J = 0. 6 Hz), 8. 47 (1 H, s), 8. 17 (1 H, d, J = 3. 9 Hz), + + + 1036 + + + [3- (oxazol-4-yl) phenyl]-2, 4-pyrimidinediamine 8. 08 (1 H, s), 7. 78 (1 H, d, J = 8. 7 Hz), 7. 43 (1 H, dd, J = 8. 7 Hz, J = 2. 4 Hz), 7. 39-7. 27 (3H, m), 6. 88 (1 H, d, J N2- [3-Chloro-5-methyl-4- (N-1H NMR (DMSO-d6) : d 11. 19 (1H, s), 9. 43 (2H, s), 8. 24 (1H, d, J = methy methylamino) carbonylmethyleneoxyphenyl]-N4- (2, 2-dimethyl- 7. 8 Hz), 8. 18 (1 H, d, J = 4. 5 Hz), 7. 78 (1 H, d, J = 2. 4 Hz), 7. 60 (1 H, d, + 1037 + 3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro-2, 4- J = 8. 4 Hz), 7. 47 (1 H, d, J = 8. 4 Hz), 7. 43 (1 H, d, J = 2. 4 Hz), 4. 32 pyrimidinediamine (2H, s), 2. 79 (3H, d, J = 4. 8 Hz), 2. 29 (3H 1H NMR (DMSO-d6) : d 11. 18 (1H, s), 9. 26 (1H, s), 9. 16 (1H, s), 8. 19 N2- (3, 5-Dimethyl-4-ethoxycarbonylmethyleneoxyphenyl)-N4- (1H, d, J=3. 3Hz), 7. 68 (1H, d, J=8. 4Hz), 7. 46 (1H, d, J=8. 4Hz), 1038 (2, 2-dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro-2, 4- +- pyrimidinediamine pyrimidinediamine (6H, s), 1. 33 (3H, t, J = 7. 2 Hz) ; pur 1H NMR (DMSO-d6) : d 10. 72 (1H, s), 9. 68 (1H, s), 9. 44 (1H, s), 8. 20 1039 N2-(3-Chioro-4-isopropoxy-5-methyiphenyi)-N4-(2, 2-dimethyi- (1H, d, J = 3. 6 Hz), 7. 70 (1H, d, J = 2. 1 Hz), 7. 42 (1H, d, J = 2. 4 Hz), + + 1039 + + 3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine 7. 35 (1 H, dd, J = 8. 7 Hz, J = 2. 4 Hz), 7. 24 (1H, d, J = 2. 4 Hz), 6. 98 (1H, d, J = 8. 4 Hz), 4. 36 (1 H, quint, J = LD LD LD y s. : mpa"u'nd 1HNMR ;.. _. . N6ffi = 7 ,. n LD LD L D a _4 ns w w i, gi v, y Cotn aund , x Tr tas Tr t t e ase T tase f s k o _ YP YP rYP, P_ Y Nuinb , : __ xfi, CHMC'CHMC'CH C t M 11 . r" I E 3 t I E 8 t lono 3 t 1H NMR (DMSO-d6) : d 11. 17 (1H, s), 9. 37 (1H, s), 9. 35 (1H, s), 8. 22 N2- (3-Chloro-4-isopropoxy-5-methylphenyl)-N4- (2, 2-dimethyl- , 1H, d, J=3. 0Hz), 7. 74 (1 H, d, J = 2. 7 Hz), 7. 61 (1H, d, J=8. 7Hz), 1040 3-oxo-4H-5-pyrid [1, 4] oxazin-6-yi)-5-fluoro-2, 4-, + 7. 45 (1 H, d, J = 8. 7 Hz), 7. 41 (1 H, d, J = 2. 7 Hz), 4. 36 (1 H, quint, J = pyrimidinediamine 6. 0 Hz), 2. 25 (3H, s), 1. 52 (6H, s), 1. N2- [3, 5-Dimethyl-4- (N- 1H NMR (DMSO-d6) : d 11. 18 (1H, s), 9. 28 (1H, s), 9. 18 (1H, s), 8. 19 1041 methylamino) carbonylmethyleneoxyphenyl]-N4- (2, 2-dimethyl- (2H, d, J = 3. 6 Hz), 7. 68 (1 H, d, J = 8. 4 Hz), 7. 45 (1 H, d, J = 8. 7 Hz), + + + 1041 + + + 3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro-2, 4-. 34 (2H, s), 4. 22 (2H, s), 2. 79 (3H, d, J = 4. 5 Hz), 2. 23 (6H, s), 1. 52 pyrimidinediamine (6H, s) ; purity 98% ; MS (m/e) : 496 (MH H NMR (DMSO-d6) : d 11. 19 (1H s) 9. 42 (2H, s), 8. 23 (1H d J = N2- (3-Chloro-4-ethoxycarbonylmethyleneoxy-5-methylphenyl)- 3. 6Hz), 7. 76 (1 H d J = 2. 4 Hz) 7. 60 (1 H, d, J = 8. 4 Hz) 7. 47 (1 H d 1042 N4- (2, 2-dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro--- J = 8. 4 Hz), 7. 42 (1 H, d, J = 2. 1 Hz), 4. 60 (2H, s), 4. 27 (2H, q, J = 7. 2 2 4-pyrimidinediamine Hz), 2. 29 (3H, s), 1. 52 (6H, s), 1. 33 ( N2- [3-Chloro-4- [N- (2, 3- 1H NMR (DMSO-d6) : d 11. 17 (1H, s), 9. 42 (1H, s), 9. 40 (1H, s), 8. 23 1043 dihydroxypropyl) amino] carbonylmethyleneoxy-5-1H, d, J = 3. 6 Hz), 7. 98 (1 H, t, J = 5. 7 Hz), 7. 78 (1 H, d, J = 2. 7 Hz), + + 1043 + + methylphenyl]-N4- (2, 2-dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-7. 61 (1H, d, J = 8. 7 Hz), 7. 47 (1H, d, J = 8. 4 Hz), 7. 34 (1H, d, J = 1. 8 yl)-5-fluoro-2, 4-pyrimidinediamine Hz), 4. 94 (1 H, broad s), 4. 67 (1 H, broa N2- [3, 5-Dimethyl-4- (N- 1HNMR (DMSO-d6) : d 11. 18 (1H, s), 9. 27 (1H, s), 9. 17 (1H, s), 8. 19 cyclopentylamino) carbonylmethyleneoxyphenyl]-N4- (2, 2- (1 H, d, J = 3. 6 Hz), 8. 03 (1 H, d, J = 7. 8 Hz), 7. 67 (1 H, d, J = 8. 7 Hz), 1044 dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro-2, 4- 7. 45 (1 H, d, J = 8. 7 Hz), 7. 34 (2H, s), 4. 23 (1 H, m), 4. 21 (2H, s), 2. 23 pyrimidinediamine (6H, s), 1. 91 (2H, m), 1. 76 (2H, m), 1. 1H NMR (DMSO-d6) : d 12. 12 (1H s) 9. 95 (1H, s), 9. 58 (1H, s), 8. 26 N4- (2, 2-Difluoro-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- . 1 H d J = 3. 6 Hz) 8. 06 (1 H d J = 4. 2 Hz) 7. 65 (1 H d J = 2. 1 Hz) 1045 [3- (N-methylamino) carbonylmethyleneoxyphenyl]-2, 4 8. 06 (1 H, d, J = 4. 2 Hz), 7. 65 (1 H, d, J = 2. 1 Hz), + +- 7. 61 (1 H, d, J = 2. 4 Hz), 7. 41 (1 H, s), 7. 35 (1 H, d, J = 8. 7 Hz), 7. 30 pyrimidinediamine Hydrogen Chloride Salt 1H, d, J = 9. 0 Hz), 7. 21 (1H, t, J = 7. 8 1H NMR (DMSO-d6) : d 12. 05 (1H, s), 9. 81 (1H, s), 9. 38 (1H, s), 8. 24 N4- (2, 2-Difluoro-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- (1 H, d, J = 3. 6 Hz), 8. 04 (1 H, d, J = 4. 2 Hz), 7. 66 (1 H, dd, J = 10. 5 Hz, 1046 [3- (N-methylamino) carbonylmethyleneoxyphenyl]-2, 4- + +- J=1. 5Hz), 7. 51 (1H d J=1. 8Hz) 7. 43 (1 H, s), 7. 36-7. 29 (2H, m), pyrimidinediamine Methanesuifonic Acid Salt 7. 19 (1H, t, J=7. 8Hz), 6. 59 (1H, d, . 4,,. ; , +" ! Com"p'ound yptase, Tryptase, Tryptase, fp_. 5yk, -i. vT,.-a5Y ins6 choc, 4_n _ 2 LD LD L Wa P k n t t s T tase k Tr ase T a e s Com ound :" ,, $"< z _ _'. YP rYP rYP fP_ Y i7 1., fi s : Gom ound Nama : ph it fi. a Nuirober b ."* t 5 'CHMC, CHMC, CHMC, 11 t 2- 7 a. d E. s 1 , I E 3 t I E 8 t lono 3 t n n W' ri. d ; r 1H NMR (DMSO-d6) : d 10. 74 (1H, s), 10. 11 (1H, s), 9. 82 (1H, s), 1047 N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- 8. 26 (1 H, d, J = 4. 5 Hz), 8. 05 (1 H, s), 7. 88 (1 H, s), 7. 71 (1 H, d, J = 8. 4 + 1047-+ (indazol-6-yl)-2, 4-pyrimidinediamine Methanesulfonic Acid Salt Hz), 7. 45 (1 H, dd, J = 9. 0 Hz, J = 2. 7 Hz), 7. 31 (1 H, dd, J = 8. 7 Hz, J = 1. 5 Hz), 7. 24 (1H, d, J=2. 4Hz), 6. 97 1H NMR (DMSO-d6) : d 10. 73 (1H, s), 9. 282 (1H, s), 9. 60 (1H, s), 1048 N4-(2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yi)-5-fluoro-N2- 8. 24 (1 H, d, J = 4. 2 Hz), 8. 02 (2H, s), 7. 67 (1 H, d, J = 8. 4 Hz), 7. 47 + + (indazol-6-yi)-2, 4-pyrimidinediamine Hydrogen Chloride Salt (1 H, d, J = 8. 7 Hz), 7. 36-7. 33 (2H, m), 6. 98 (1 H, d, J = 8. 7 Hz), 1. 49 (6H, s) ; purity 99. 3% ; MS (m/e) : 420 (MH+). 1H NMR (DMSO-d6) : d 11. 21 (1H, s), 9. 56 (1H, s), 9. 40 (1H, s), 8. 29 1049 N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yi)-N2- (1- (1 H, d, J = 3. 6 Hz), 8. 11 (1 H, s), 7. 96 (1 H, s), 7. 71 (1 H, d, J = 7. 2 Hz), + + 1049 + + ethylindazol-6-yl)-5-fluoro-2, 4-pyrimidinediamine 7. 64 (1 H, d, J = 9. 0 Hz), 7. 46 (1 H, d, J = 8. 4 Hz), 7. 36 (1 H, dd, J = 8. 7 Hz, J=1. 5Hz), 4. 25 (2H, q, J = 7. 1H NMR (DMSO-d6) : d 11. 22 (1H, s), 9. 56 (1H, s), 9. 41 (1H, s), 8. 29 1050 N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yi)-N2- (1- (1H, d, J = 3. 3 Hz), 8. 15 (1 H, s), 7. 96 (1H, s), 7. 70 (1 H, d, J = 8. 4 Hz), + + 1050 + + isopropylindazol-6-yl)-5-fluoro-2, 4-pyrimidinediamine 7. 63 (1 H, d, J = 8. 4 Hz), 7. 46 (1 H, d, J = 8. 7 Hz), 7. 35 (1 H, dd, J = 8. 7 Hz, J=1. 2Hz), 4. 63 (1H, quint, J 1 H NMR (DMSO-d6) : d 9. 84 (1 H, s), 8. 35 (1 H, d, J = 3. 3 Hz), 7. 09 2-Chloro-N4- (3, 4-dihydro-2, 2-dimethyl-4H-5-pyrid [1, 4] oxazin- 1051 (1H d J = 8. 1 Hz), 7. 06 (1H, d, J = 8. 1 Hz), 6. 79 (1H, s), 3. 23 (2H, s), 6-yl)-5-fluoro-4-pyrimidineamine 1. 36 (6H, s) ; purity 96. 73% ; MS (m/e) : 310 (MH+). 1 H NMR (DMSO-d6) : d 9. 50 (1 H, s), 8. 94 (1 H, s), 8. 21 (1 H, d, J = 3. 6 1052 N4-(3, 4-Dihydro-2, 2-dimethyi-4H-5-pyrid [1, 4] oxazin-6-yl)-5-Hz), 8. 17 (1H, s), 7. 93 (1H, s), 7. 63 (1 H, d, J = 8. 7 Hz), 7. 35 (1H, d, J + + + fluoro-N2-(1-methylindazol-6-yi)-2, 4-pyrimidinediamine = 1. 5 Hz), 7. 30 (1H, d, J = 7. 8 Hz), 7. 01 (1 H, d, J = 8. 4 Hz), 6. 72 (1H, s), 3. 92 (3H, s), 3. 24 (2H, d, J = 2. 1H NMR (DMSO-d6) : d 9. 29 (1H, s), 8. 83 (1H, s), 8. 15 (1H, d, J = 3. 6 N4- (3, 4-Dihydro-2, 2-dimethyl-4H-5-pyrid [1, 4] oxazin-6-yl)-5- Hz), 8. 03 (1 H, m), 7. 47 (1 H, t, J =2. 1 Hz), 7. 40 (1H, d, J= 7. 5 Hz), 1053 fluoro-N2- [3- (N-methylamino) carbonylmethyleneoxyphenyl]- + +- 2 4-pyrimidinediamine 2, 4-pyrimidinediamine Hz), 6. 67 (1 H, s), 6. 56 (1 H, dd, J = 7. 8 1H NMR (DMSO-d6) : d 11. 19 (1H, s), 9. 70 (1H, s), 9. 52 (1H, s), 8. 28 N2- [3-Chloro-4- (N-methylamino) carbonylphenyl]-N4- (2, 2- . (1H d J = 2. 4 Hz), 8. 21 (1H, d, J = 5. 1 Hz), 7. 97 (1H, s), 7. 62-7. 57 1054 dimethyi-3-oxo-4H-5-pyrid [1, 4] oxamn-6-yl)-5-fluoro-2, 4-,, + + 1054dimethy !-3-oxo-4H-5-pyr ! d [1, 4] oxazin-6-y !)-5-f) uoro-2, 4- + +- pyrimidinediamine (2H, m), 7. 50 (1 H, d, J = 9. 0 Hz), 7. 34 (1 H, d, J = 8. 4 Hz), 2. 81 (3H, d, pyrimidinediamine J = 3. 6 Hz), 1. 53 (6H, s) ; purity 99. 5% LD LD LD Compound _T r 4 : : R<<, _ Compound Name .,., t.. i :. 3 : _t =LD LD LD il."N. _. J-u Y u wu. h s4 u i i p,. =y ve i w n _, 4 s u T ta e T tase T tase s k s » t . 4,. w , . » . r.. rY rY rYP fP_ Y a, v w aw. - CQM Ot1lld-N81T12-rs : n i,'^II3, ?",. , __t.. c ber. ., , , , . < CHMC CHMC MC 1 t a i a b. C m y , r_ts , Li. u, = I E 3 t I E 8 t lono 3 t z 9 9 °s P P P 1HNMR (DMSO-d6) : d 11. 12 (1H, s), 9. 25 (1H, s), 9. 12 (1H, s), 8. 17 1055 N4-(2, 2-Dimethyi-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-N2- (3, 4- (1H, d, J = 3. 3 Hz), 7. 64 (1 H, d, J = 8. 4 Hz), 7. 43 (1 H, d, J = 8. 4 Hz), + + ethyienedioxyphenyi)-5-fluoro-2, 4-pyrimidinediamine 7. 35 (1 H, d, J = 2. 4 Hz), 7. 10 (1 H, dd, J= 9. 0 Hz, J= 2. 4 Hz), 6. 76 (1 H, d, J = 9. 0 Hz), 4. 26 (4H, m), 1. 53 (6H, 1 H NMR (DMSO-d6) : d 11. 23 (1 H, s), 9. 88 (1 H, s), 9. 28 (1 H, s), 8. 33 N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yi)-5-fluoro- (1H, d, J = 3. 6 Hz), 8. 02 (1H s) 7. 98 (1H, s), 7. 66 (2H, t, J = 8. 4 Hz). 1056 N2- [1-methylindazol-6-yl]-2, 4-pyrimidinediamine Hydrogen + +,_ 7. 45 (1H, d, J=8. 4Hz), 7. 31 (1H, dd, J=8. 4Hz, J=1. 5Hz), 3. 93 Chloride Salt (3H, s), 1. 53 (6H, s) ; purity 100% ; MS 1H NMR (DMSO-d6) : d 11. 23 (1H s) 9. 81 (2H, s), 8. 32 (1H d J = N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro- 3. 9 Hz), 8. 02 (1 H, s), 7. 98 (1 H, s), 7. 67 (2H, t, J = 8. 7 Hz), 7. 55 (2H, d, 1057 N2- [1-methylindazol-6-yl]-2, 4-pyrimidinediamine p-+ +- J = 7. 8 Hz), 7. 44 (1 H, d, J = 8. 4 Hz), 7. 31 (1 H, dd, J = 8. 4 Hz, J = 0. 9 Toluenesulfonic Acid Salt Hz), 7. 19 (2H, d, J = 8. 4 Hz), 3. 94 (3 1H NMR (DMSO-d6) : d 11. 22 (1H, s), 9. 76 (1H, s), 9. 72 (1H, s), 8. 31 N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro- (1H, d, J=3. 3Hz), 8. 04 (1 H, s), 7. 97 (1 H, s), 7. 67 (2H, d, J=8. 4Hz) 1058 N2- [1-methylindazol-6-yi]-2, 4-pyrimidinediamine + +- 7. 45 (1 H, d, J = 8. 1 Hz), 3. 32 (1 H, d, J = 8. 4 Hz), 3. 93 (3H, s), 2. 41 Methanesu ! fonic Acid Salt (3H, s), 1. 53 (6H, s) ; purity 99% ; MS 1H NMR (DMSO-d6) : d 2. 13 (s, 6H), 3. 58 (s, 3H), 4. 62 (s, 2H), 7. 22 (s, 2H), 7. 33 (d, J= 9. 0 Hz, 1 H), 7. 57 (d, J= 8. 4 Hz, 1 H), 8. 08 (d, J= 3. 6 N2- (3, 5-Dimethyl-4-methoxyphenyl)-5-fluoro-N4- (3-oxo- 1059 Hz, 1H) 9. 01 (s, 1 H), 9. 15 (s, 1H), 11. 13 (s, 1H) ; 19FNMR (282MHz, + 2H, 4H-5-pyrid [1, 4] oxazin-6-yi)-2, 4-pyrimidinediamine DMSO-d6) : d-163. 82 ; LCMS : ret. time : 10. 29 min. ; purity : 97. 75% ; MS (m/e) : 411. 18 (MH+) 1 'H NMR (CDC3) : d 1. 45 (s, 6H), 2. 13 (s, 3H), 6. 78 (m, 3H), 6. 90 (d, 1060 N4-(2, 2-Dimethyi-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- J= 7. 5 Hz, 1H), 7. 04 (t, J= 8. 1 Hz, 1H), 7. 27 (s, 1H), 7. 74 (d, J= 5. 1 Hz, + 1060 + (3-hydroxy-2-methylphenyl)-2, 4-pyrimidinediamine 1 H), 7. 91 (s, 1 H), 9. 09 (s, 1 H), 10. 86 (s, 1 H) ; 19F NMR (282 MHz, CDC13) : d-162. 90 ; LCMS : ret. time : 8. 06 min 'H NMR (DMSO-d6) : d 1. 99 (s, 3H), 3. 79 (s, 3H), 4. 60 (s, 2H), 6. 54 (d, 1061 5-Fluoro-N2- (3-methoxy-2-methylphenyl)-N4- (3-oxo-2H, 4H-5- J= 7. 8 Hz, 1 H), 6. 78 (d, J= 8. 1 Hz, 1 H), 6. 98 (dd, J= 2. 4 and 8. 1 Hz, + 1061 + pyrid [1, 4] oxazin-6-yi)-2, 4-pyrimidinediamine 1 H), 7. 12 (t, J= 8. 4 Hz, 1 H), 7. 44 (d, J= 8. 7 Hz, 1 H), 8. 03 (d, J= 3. 9 Hz, 1 H), 8. 73 (s, 1 H), 9. 23 (s, 1 H), 11. 08 LD LD LD Compound Name s. . Mss, . : $K'M : Rttcaf ..,. yptase, Tryptase, fp uompourid ph" N Nmnber y. ;.-...,. ; : . &M$B ; $ ; . "''SNBS CHMC, CHMC. CHMC, 11 pt IgE, 3pt IgE, 8pt lono, 3pt 'H NMR (CDC13) : d 1. 49 (s, 6H), 2. 12 3. 95 (s, 3H), 76. 71 N4- (2, 2-D ! methy !-3-oxo-4H-benz [1, 4] oxazin-6-y !)-5-f) uoro-N2- J= 2. 1 and 8. 4 Hz, 1 H), 6. 79 (d, J= 8. 4 Hz, 1 H), 6. 89 (d, J= 7. 8 Hz, 1062 X + (3-methoxy-2-methy ! pheny !)-2, 4-pyrim ! dinediamine 1 H), 6. 98 (d, J= 8. 4 Hz, 1 H), 7. 26 (m, 3H), 7. 66 (d, J= 4. 2 Hz, 1 H), 7. 93 (s, 1H), 11. 04 (s, 1H) ; 19F NMR (282 MHz, 7. 93 (s, 1 H), 11. 04 (s, 1 H) ; 19F NMR (282 MHz, 'H NMR (CD03) : d 2. 02 (s, 3H), 4. 48 (s, 2H), 6. 72 (m, 2H), 6. 82 (m, 5-Huoro-N2- (3-hydroxy-2-methy ! pheny !)-N4- (3-oxo-2H, 4H-5- 1063 1 H), 6. 96 (t, J= 8. 1 Hz, 1 H), 7. 25 (m, 1 H), 7. 79 (d, J= 4. 8 Hz, 1 H) ; + pyrid [1 4] oxazin-6-yl)-2 4-pyrimidinediamine LCMS : ret. time : 7. 10 min. ; purity : 77. 55% ; MS (m/e) : 383. 14 (MH+). 'H NMR (CDC ! 3) : d 1. 41 (s, 6H), 2. 04 (s, 3H), 6. 61 (t, J= 4. 5 Hz, 1 H), N4- (2, 2-D ! methy !-3-oxo-4H-5-pyrid [1, 4] oxazin-6-y !)-5-f) uoro- 6. 94 (m, 3H), 7. 58 (d, J= 8. 7 Hz, 1 H), 7. 77 (d, J= 3. 9 Hz, 1 H) ; 19F 1064 + N2- (3-hydroxy-2-methy ! pheny !)-2, 4-pyrimidinediamine NMR (282 MHz, CDC13) : d-165. 40 ; LCMS : ret. time : 7. 83 min. ; purity : 99. 01 % ; MS (m/e) : 411. 19 (MH+). 'H NMR (CDC ! 3) : d 1. 57 (s, 6H), 2. 19 (s, 3H), 3. 88 (s, 3H), 6. 79 (dd, N4- (2, 2-D ! methy)-3-oxo-4H-5-pyrid [1, 4] oxazin-6-y !)-5-f) uoro- J=2. 1 and7. 2Hz, 1H), 7. 05 (d, J=8. 7 Hz, 1H), 7. 17 (m, 2H), 7. 70 (d, + N2- (3-methoxy-2-methy ! pheny !)-2, 4-pyrim ! dinediamine J= 8. 7 Hz, 1 H), 7. 85 (d, J= 3. 6 Hz, 1 H) ; 19F NMR (282 MHz, CDC13) : d-161. 49 ; LCMS : ret. time : 10. 92 min. ; purit l H NMR (CDC13) : d 1. 49 (s, 6H), 2. 26 (s, 3H), 3. 80 (s, 3H), 4. 84 (s, N4- (2, 2-Dimethy)-3-oxo-4H-benz [1, 4] oxazin-6-y !)-5-f) uoro-N2- 2H), 6. 69 (dd, J= 2. 4 and 8. 4 Hz, 1 H), 6. 82 (d, J= 8. 7 Hz, 1 H), 6. 86 (d, 1066 [3-methoxycarbonylmethyieneoxy-2-methyiphenyl]-2 4-+ J 8. 1Hz, 1H), 6. 98 (d, J=8. 1Hz, 1H), 7. 19 (t, J=8. 1Hz, 1H), 7. 26 (s, pyrimidinediamine 1H), 7. 46 (s, 1H), 7. 72 (s, 1H), 7. 79 'H NMR (CDC ! 3) : d 1. 50 (s, 6H), 2. 25 (s, 3H), 2. 93 (d, J= 4. 8 Hz, 3H), IH NMR (CDC13) : d 1. 50 (s 6H) 2. 25 (s 3H) 2. 93 (d J= 4. 8 Hz 3H) N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxaz ! n-6-y))-5-f) uoro-N2- '." ,, I. 57 (s 2H) 6. 82 (m 4H) 6. 97 (t J=8. 1 Hz 1H) 7. 19 (m 2H) 7. 40 4. 57 (s, 2H), 6. 82 (m, 4H), 6. 97 (t, J= 8. 1 Hz, 1H), 7. 19 (m, 2H), 7. 40 1067 2-methy !-3- (N-metr) y ! amino) carbony ! methy ! eneoxyDhenyi]- + (s, 1H), 7. 54 (s, 1H), 7. 81 (d, J=4. 2 Hz, 1H) ; LCMS : ret. time : 8. 08 2 4-pyrimidinediamine min. ; purity : 99. 78% ; MS (m/e) : 481. 21 (MH 'H NMR (DMSO-d6) : d 2. 08 (s, 3H), 2. 66 (d, J= 4. 5 Hz, 3H), 4. 46 (s, 5-Fiuoro-N2-[2-methyl-3-(N- I H) 4. 58 (s 2H) 6. 65 (dd J= 1. 8 and 7. 2 Hz 1H) 7 04 (m 2H) 7. 15 1068 methy ! amino) carbony ! methy ! eneoxyphenyn-N4- (3-oxo-2H, 4H- + .,,..,.. (d, J=8. 7Hz, 1H), 7. 47 (d, J= 8. 7 Hz, 1 H), 7. 84 (d, J= 4. 2 Hz, 1 H), 5-pyrid [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine 8. 01 (d, J= 3. 6 Hz, 1H), 8. 54 (s, 1H), 8. 96 ( 1 'H NMR (DMSO-d6) : d 2. 09 (s, 6H), 4. 62 (s, 2H), 7. 05 (s, 2H), 7. 28 (d, N2- (3, 5-Dimethy)-4-hydroxyphenyi)-5-fiuoro-N4- (3-oxo-2H, 4H- J= 8. 4 Hz, 1H), 7. 55 (d, J= 8. 1 Hz, 1H), 7. 89 (br, 1H), 8. 07 (d, J= 3. 6 + 5-pyrid [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine Hz, 1H), 9. 03 (s, 1H), 9. 36 (s, 1 H), 11. 15 (s, 1 H) ; 19F NMR (282 MHz, DMSO-d6) : d-163. 98 ; LCMS : ret. time : 7. 9 nyNu" HM 11pt CHM Y '°e : Y°e-. ¢ #T i und 10730 '¢.., ' :, . m : + ,. r. :" t,". < .. ', ss, m r r : rt : t lgE, SPt tono P 2Vi), 6 2H), 4. 47 H nor buzz W a,. ... l. 7... .. : ;"'V.". 7. 8 ho, ."i :. n.."e., ie. r-. >. s"..-. : =,.'i71',,..., :' :...-, xm . _ I I-.., 3m, _.,.,., ^.. :. z. "..", 4h.. . ,...., , ses-_ _ _ . t.. r , . ,. c., : r , .... , :.. :". , 4.... :..., : '. n.. . "" r'. w.'' : s-''p-s : ze't#, :. ; . , .... , y . Y pra. _. _ HZ 4H) N2-13- (4-AcetYl) iper ne j) 6. 98 (d, J Hz, 4H), '3H), 3. 00 (t, J 5. 1 7. 2 Hz, romp Nu . '-N NMR (CDC13Y d 1. 14 t, 4. 47 (S, 2H) 6. 55 (dd, + mber v _ g_ 3. 46 (t, J-5. 1 Nz, N), . 0 (q, J= 7. 2 Hz, 2) . 4 Hz,'1H), 6, 9 (dd, J= 1. 2 and 7. 8 Nz, 1H), 6. 98 (t, J= n l _5_fuoro-N4 ( N2- [g- (4'EthoxycarbonylpPerazin°) pne yl 2. 1 Hz 1H), 7. 04 (d, J 8. 7 Hz, 1H), 7. 08 10T _ qH_5_pyrid [1, loxazin-6-y)-Z'pyrimidinediamine J= . $ and S MR (DCl3) : d 2. 01 (s, 3H ? 3. 02 (t> J-5. 1 Hz 2H), 3. 08 (t J= 5. 1 + xi 2nez han z 2H), 3. 50 (t, J= 5. 1 Hz, 2H) 3. 68 (t, J= 5. 4 Hz, 2H1, 45 (s 2N ? 66 dd, J-2. and 8. 4 Hz, 1 H), 6. 87 (t, J= 2. 4 Hz> 1 H), 6. 92 (ddd, J= hen 1]-5-fuoro-N4- (3-oxo-2H, 4H-5-H, N2-L3W'Ajpperazino) p Y 0. 9, 2. 1 and 7. 8 Hz, 1H), 6. 98 (d,. 1 NMR (flMO-d6) : d 1. 20 (t J= 7. 2 Hz 3H), 2. 99 (t, J= 5. 1 Hz, 4H), 1071 ; d 1, 41oxazin--Yl-24'pYimidiediamine PYr H 3. 49 (t, J= 5. 1 Hz, 4H ? 4. 05 (q, J'7. 2 Hz, 2H), 4. &3 (S 2HO 683 (d, - , yrimldined*tarn j 51 Hz, 2vi), 3. 54 (t, J" 5, 1 1 H), 7. 01 (ddd, J= erazino) phenyl]-5-fluoro-N4 (3' q_ e-Ethoxyrbonylpp d _ 8. 4 Hx, 1H), 8. 06 (d,. 1- 3. 6 Hz, N2-L ( 1072 4H-pyrid [1 4] oxazn-6 y)-2, 'PYrimidinediamine H NMR (MSOd6) : d 2. 98 (t, J= 5. 1 Hz, 41-4), 3. 69 (t 3-5. 1 Hz, H>> oxo-2H, 4. 62 (s, 2H1, 6. 50 (d,. 1- 7. 2 Hz, 1H), 7. 04 (t, J= 7. 5 Hz, 1H ? .'7 (d * henyl)-N3'°xo-2H, 'S s, 1 H), 7. 33 (d,. 1= $. h HZ, N), 7. 58 (d, 1= $. T 5-Flor'N2-3-morphoin p 3 _g_ -2, 4-PYimidinediamine J=7. 2Hz, 1H), . 18 ( Hz, 1 H), 8. 11 (d, J-3. 6 Hz, 1 H), 9. 09 (s H NMR (pSQ-d6 ? : d 2. 85 (s, 3N, 2. 90 (m, 2H ?, 3. 23 tm. 4H7 3. 67 107 rd. 4oxazin Y PY 2H), 4. 63 (s. 2H) 6. 57 (dd,. 1 2. 1 and 8. 4 Hz, 1H1, 7. 08 (t, J= 8. 1 1H 7. 59 (d,. 1° fz, 1Hy, 7. 20 (s, 1H), 7. 28 (m H) 7. 35 (d, J= 8. 4 Hz, _ 4-methypPerazino) phenyl-Na"'3'oxo-2V-1, 4H- (m, 1H), 8. 11 (d, J° 3. 3 Hz, 1H), 9. 1, 3. 00 (t 5-Fiuoro-N2-L3 ( g, 4 Hz, 10T 5_ yrid [1, 4] oxazin-6-Y)'2'pY « mdnediamine H NMR (MSO-d6) : d 1. 19 (t J= 7. 2 Nz, 3H), 1. 2 S 6H) P n-g-y1-12-L3O4-4H, 3. 45 (t,. ! = 4. 8 Nz, 4H), 4. 04 (ct, J= 7 2 Hz 2H), 6. 51 (d, J= 9. 3 + _ 4-z 1N), 7. 03 (t J-8. 1 Hz, 1H), 7. 18 (s, 1H), 7. 2Q {d, J= 6. 6 Hz, 1H), - Dimethyl-3-oxo-4H-5-PYridL' >lxa N4- (22 7. 34 (t, J 8. 4 Hz, 1 H), 7. 59 ld,. 1= $. 7 Hz 1075 ethorbonylpiperazinopheny'S'fluoro 2. N H NMR (CDCI3) : d 1. k6 (s, 6H), 2. 06 (s, 3H), 3. 08 {t, J= 5. 1 Hz, 2H) idinediamine pyrim _ 3. 13 (t J= 5. 1 Hz, 2H), 3. 54 (t, J= 5. 1 Hz 2N), 3. 65 (t J= 5. 1 Hz, 2H), + . 67 (dd, J-2. 4 and 8. 4 Hz, 1N) 6. 94 (t, J= 2. 1 Hz, 1H, 7. 01 (ddd, ° henYl4' (2°2dimethyl-3-axo-H N2- [3- (4-AcetYPiperazino) p 0. 9, 1. 8 and 7. 8 Hz, H ? 7. 05 (d, J \ 5'pd141oxazin-6-Y'''fluoro-2. -PYrimidinediamine ions, 3put e, 8put in 3p su d,' , i ; t"s , , af ^ x'1 3 y, r :"," !, , y, ' . w t ", ' r Pt4 ' t, fi, n . _i _,.. 3. 037t- "4. F o,". 3N1, 1. 43 ($ H'3$ k. mit coma myound am aund Same. , : , DMSWd6) : d 1. 20 , 2N, 6. 88 (d, J= 9 1H), Co-C P 4H 4. 05 tq '7 7. 51 (d, J= 8. 7 Z 24 iVA)'9'444 3 9 (t, 1H , 45 td, Jc 9. 9 Hz rid L °xazn--Yl-N2't l4Hl, . 50 t> >', 2H, 4. 8 Hz, H), 3. 69 (t, J- d, J= . 9 Hx, 1H), 9. 24 (S. lHl, 9. 44 io7. e d 3= 7. 5"Z,'Z, 1"), 7. 59 (d, yDimethy'3"°xo4H-5-PY N4- (2, 2 g. 09 ( DMSOd6) d . 42 ls, $N), 3. 00 t 1H), 7. 16 , t J=7. 8HZ 8. 4 bonyPprain°) PhenY 1 N NMR ( 10'7 etholr n 8. 4 HZ,'HO T. 59 (d 4. 8 Hz, &H), 6. 51 ld, J-7. 5 Hz,'H), 7. 04 ( rimidinediaine. pY . d 4] oxazin-Y-5fluoro-, 1N, 7. 3h ld c 4. 8 z diamne 1H1, . 1'7 (d, J 8. 4 Nx 2. 08 ls 3H, 2. 65 (a, 7, 15 idine 8. 2 (d, J'3. 6 Hz,', 9. 17 ( _3-oxo-H-5-PYr _-methy . 64 tdd, d-2. 7 and 6. 6 Hz, 1H), . 04 l 2H 10784 122 orpholinoPhenYl-2, -pYrim H2, H), s, 6H), m), oro-H NMR tpM'Qd6) : d 1. 39 t d = 3. 9 Hz, 1 H), N2- (3 m rid L'3M, 4. A5 (, 2H), 6 g, 4 Nz, 1H) 7. 84 ( r- L4. F ---r""- j"'"'"'p -- N2-L'ethY'3'N IeneoxYPhenyll-2, - 8. 01 td . d 1. 421s, 6Hl, 1H), 7. 04 (d 1079 amno°arbonymethy pCl3. ^ 2. 4 NZ , rethy iamine H tR l _6_y_5_uoo-&H), 7. 811 z, 1Hl> 7. 13 (m 2), 7. 70 {d, J-8. 7 Hx, 1H). pyrimdined 3H 3. T7 (s 3H) 4. 3 lq 4 oxazn NMR (2 MHz CDG13) : d-162. $1 ; LCMS . g_oxo-4H-5-PYrid L, l rimsdnediamn H . d 1. 45 (d J= 6. 6 Nx '. 4 Hz, 1H1, 7. 48, r k Nq_2, ZW imethy ; perazmoPhenyllZ4py 19 t080 NZ_t3_4-methY P pMSO-d61, H), 7. 38 (d, J 8 N yMR t 6. 99 (d, J°9. OHz 9. 21 ( 1N. = 2. 1 Nz 1H1, 8. 11 (d, J-3. 6 Hz, 1H), . 2-methY-3 J= 6. 6 Hz, °IH), henYp_5 fluoro-t4 (m, 2H), 7. 80 td Hl ; 19F NMR 282 M 3. 59 (s, 3N), 3. 65 (S, 9. 26 S, H, 11. 09 S, d 1. 5 ta, J-6. 9 HZ, 3H, S-N2 (3. Ghioro-methoxYP' DMS'd6) 7. 32 (d, J-8. 7 Nz>'Hl, ?. 65 _ 80 k6, 3 : 2, 1'I'L,'Ap . '- 1081 H- -Py oxo-2H, -N2- M ? d.-wN 7. _5-rid [1, 4loxazin d = 3. 3 Hz, H), 9. 10 ( 1H), 8. 11 ( Sp. a6 _-oxo-2H, H PY (d, J^ 8. 4 HZ, MHZ, DM = 9. 3 Nz, luoro-N'2 methyi 3, 1H1 ; 19F NMR 1282 2H, 6. 76 td x henyll-Ze'pyrimidinediamne q1. 01 ls. 46 (s, 2H), 4. 52 ts DMSWd6 : d 7. 23 (d, J-2. 4 Hz> 1H1,. r N NMR t T. 18 lm 2H) 1082 3s, 5_imeoxyp 1H, 6. 86 (d, J-8. 7 Hx 1H1 = 3. 6 HZ, 1H), 8. 94 (s, H), y)-N2 t 7. 33 (d, J° 2. and 8. 7 Hz, 1H). 8. 00 ( azin--YO'5-fluoro-24- g. 29 ls, 1H), 19. 581s, 1H), 10. 63 $, 1N) ; 1 3. oxo-2H, Hbenz, 3Qx N2, N4'Bist 1 () 83 Mdinediamine nid N mCompoupdNaMe,..,--,,-, u ase H N *"HNMRDMSO-d6) : d 1. 44 (d, J= 6. 9 Hzr3H), 2. 17 (s, 6) 4. 7 (S)-N2- (3, 5-Dimethy ! pheny))-5-f] uoro-N4- (2-methy)-3-oxo- J= 6. 9 Hz, 1H), 6. 52 (s, 1H), 7. 22 (s, 2H), 7. 35 (d, J= 8. 7 Hz, 1 H), 7. 89 1084-+ 2H, 4H-5-pyrid [1, 4] oxazin-6-yi)-2, 4-pyrimidinediamine (d, J= 8. 4 Hz, 1H), 8. 11 (d, J= 3. 6 Hz, 1H), 9. 09 (s, 1H), 9. 16 (s, 1H), + 11. 08 (s, 1H) ; 19F NMR (282 MHz, DMSO-d6 H NMR (CD03) : d 1. 82 (m, 2H), 2. 03 (m, 2H), 2. 15 (s, 3H), 2. 46 (m, N2- [3- (4-Acety) piperaz ! no) phenyi]-N4-cyc) obuty)-5-Huoro-2, 4- 2H), 3. 20 (m, 4H), 3. 63 (t, J= 5. 1 Hz, 2H), 3. 78 (t, J= 5. 1 Hz, 2H), 4. 58 pyrimidinediamine (m, J= 8. 1 Hz, 1H), 5. 26 (d, J= 6. 6 Hz, 1H), 6. 58 (dd, J= 1. 8 and 8*1 1 Hz, 1H), 7. 01 (dd, J= 1. 5 and 7. 8 Hz, 1H), 'H NMR (DMSO-d6) : d 1. 29 (s, 9H), 4. 64 (s, 2H), 5. 59 (s, 1H), 7. 10 (d, N2- (5-tert-Butypyrazo !-3-y))-5-f ! uoro-N4- (3-oxo-2H, 4H-5- 1H), 7. 47 (d, J= 6. 6 Hz, 1H), 8. 24 (d, 1H), 10. 02 (s, 1H), 10. 40 (s, 1H) ; 1086 + pyrid [1, 4] oxazin-6-y )-2, 4-pyrimidinediamine 19F NMR (282 MHz, DMSO-d6) : d-162. 59 ; LCMS : ret. time : 10. 51 min. ; purity : 78. 44% ; MS (mule) : 399. 24 (MH+). 1H NMR (CDC) 3) : d 1. 78-1. 87 (m, 2H), 1. 96-2. 03 (m, 2H), 2. 32 (s, 1087 N4-Cyclobutyl-N2- (3, 5-dimethylpheny )-5-fluoro-2, 4- 6H), 2. 44-2. 53 (m, 2H), 4. 56 (m, J= 7. 8 Hz, 1H), 5. 26 (d, J= 7. 8 Hz, pyrim ! dined iamine I H), 6. 67 (s, 1 H), 7. 23 (s, 2H), 7. 34 (br, NH, 1 H), 7. 72 (d, J= 2. 7 Hz, 1H) ; 19F NMR (282 MHz, CD03) : d-168. 35 ; LCMS : H NMR 1H NMR (CD03) : d 1. 71-1. 86 (m, 2H), 1. 93-2. 06 (m, 2H), 2. 4-25-3 7 108 ! obuty)-N2- (3, 5-d ! methoxypheny !)-5-f) uoro-2, 4- (m, 2H), 3. 81 (s, 6H), 4. 60 (m, J= 7. 8 Hz, 1H), 5. 31 (d, 1H), 6. 16 (t, J= 1088 + + pyrimidinediamine 2. 1 Hz, 1 H), 6. 84 (d, J= 2. 1 Hz, 2H), 7. 57 (br, NH, 1 H), 7. 72 (d, J= 3. 6 12. 1 Hz, 1 Hz, 1 H) ; 19F NMR (282 MHz, CD03) : d-167 1H NMR (CDC13) : d 1. 75-2. 04 (m, 4H), 2. 43-2. 53 (m, 2H), 3. 85 (s, 1089 obuty)-5-uoro-N2- (3-methoxy-5- 3H), 4. 58 (m, J= 7. 8 Hz, 1H), 5. 32 (d, J= 6. 6 Hz, 1H), 6. 76 (s, 1H), 'uor 0 m t e h he Y'p trifluoromethy) pheny))-2, 4-pyrimidinediamine 7. 18 (t, J= 2. 1 Hz, 1H), 7. 52 (br, NH, 1H), 7. 76 (s, 2H) ; 19F NMR (282 MHz, CD03) : d-167. 20,-63. 67 ; LCMS : ret. time : N4-5 ert_ N4- (5-tert-Buty)-1H-pyrazo !-3-y !)-5-f) uoro-N2- (3- 1090 r LCMS : ret. time : 11. 58 m ! n. ; purity : 90. 45% ; MS (m/e) : 412. 33 (MH+). + +- morpho ! inopheny !)-2, 4-pyrimidinediam ! ne morpholinophenyl)-2, 4-pyrimidinediamine p 0 p YI Butyl_lH 4q : p 1H NMR (CDC13) : d 1. 20 (s, 9H), 2. 04 (s, 3H), 3. 06 (t, J= 5. 4 Hz, 2H), c lpip N2- [3- (4-Acety) p) perazino) p) ieny)]-N4- (5-tert-butyf-1H-pyrazof- 3. 11 (t, J= 5. 1 Hz, 2H), 3. 53 (t, J= 5. 1 Hz, 2H), 3. 63 (t, J= 5. 1 Hz, 2H), _ _5_fluoro_ _P 3-y )-5-fluoro-2, 4-pyrimidinediamine 6. 10 (s, 1H), 6. 57 (m, 1H), 6. 96 (s, 1H), 7. 13 (m, 2H), 7. 82 (d, J= 3. 9 Hz, 1H) ; LCMS : ret. time : 8. 84 min. ; t - 2 4 : - =ebrnpound'NameM.' a . ......... : : : LD LD LD x r o- . . nimber choc, , ir -. s r n c nd-= . > r L T tase T tase T tase f s k o u , rYP rY, P_, p., : t,, . rYP P Y r Com o ridName F ? h. ir. C3t u I " P Y Nuinber a,,. 4 > CHMC CHMC CHMC 11 t r z f IE I t ,-3 t E 8 t lono 3 , g P 9 P P 1 1 H NMR (DMSO-d6) : d 1. 30 (s, 9H), 1. 47 (d, J= 6. 6 Hz, 3H), 4. 74 (q, 1092 (S)-N2-(5-tert-Butyi-1H-pyrazol-3-yi)-5-fluoro-N4-(2-methyl- 3-J= 6. 3 Hz, 1H), 5. 60 (s, 1H), 7. 09 (d, J= 9. 0 Hz, 1H), 7. 49 (d, J= 8. 4 + + oxo-2H, 4H-5-pyrid [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine Hz, 1H), 8. 23 (d, J= 3. 9 Hz, 1 H), 10. 02 (s, 1 H), 10. 39 (s, 1 H) ; 19F NMR (282 MHz, DMSO-d6) : d-162. 62 ; LCMS : ret. t 1H NMR (DMSO-d6) : d 2. 16 (s, 6H), 3. 61 (s, 4H), 3. 64 (s, 3H), 6. 98 1093 N2- (3, 5-Dimethyl-4-methoxyphenyl)-5-fluoro- [3- (N-2- (d, J= 11 Hz, 1 H), 7. 00 (s, 1 H), 7. 23 (s, 1 H), 7. 35 (t, J= 8. 1 Hz, 1 H), imidazolin-2-yl) aminophenyl]-2, 4-pyrimidinediamine 7. 75 (d, J= 6. 6 Hz, 1H), 8. 19 (d, J= 4. 5 Hz, 1H), 8. 29 (s, 2H), 9. 57 (s, 1H), 9. 89 (s, 1H), 10. 82 (s, 1H) ; 19F NMR ( 1 H NMR (DMSO-d6) : d 3. 63 (s, 4H), 3. 79 (s, 3H), 6. 96 (d, J= 9. 3 Hz, 1094 5-Fluoro-N2- (3-fluoro-4-methoxyphenyl)-N4- [3- (N-2- 1 H), 7. 04 (t, J= 9. 3 Hz, 1 H), 7. 28 (m, 1 H), 7. 36 (t, J= 8. 1 Hz, 1 H), 7. 63 + 1094 + imidazolin-2-yl) aminophenyl]-2, 4-pyrimidinediamine (dd, J= 2. 1, 13. 8 Hz, 1H), 7. 68 (d, J= 9. 6 Hz, 1H), 7. 80 (s, 1H), 8. 18 (d, J= 4. 2 Hz, 1 H), 8. 27 (s, 1 H), 9. 56 (s, 1 H NMR (DMSO-d6) : d 2. 20 (s, 6H), 3. 60 (s, 4H), 6. 92 (s, 1 H), 6. 98 N2- (3, 5-Dimethylphenyl)-5-fluoro-N4- [3- (N-2-imidazolin-2- (m, 1 H), 7. 22 (s, 1 H), 7. 35 (t, J= 8. 1 Hz, 1 H), 7. 73 (d, J= 7. 8 Hz, 1 H), yl) aminophenyl]-2, 4-pyrimidinediamine 7. 80 (s, 1 H), 8. 21 (d, J= 4. 2 Hz, 1H), 8. 26 (s, 2H), 9. 60 (s, 1H), 9. 86 (s, 1H), 10. 80 (s, 1H) ; 19F NMR (282 MHz, D 1 H NMR (DMSO-d6) : d 3. 62 (s, 4H), 3. 66 (s, 6H), 6. 13 (t, J= 2. 1 Hz, 1096 N2- (3, 5-Dimethoxyphenyl)-5-fluoro-N4- [3- (N-2-imidazolin-2- 1 H), 6. 92 (d, J= 2. 1 Hz, 1 H), 6. 95 (dd, J= 1. 5, 8. 4 Hz, 1 H), 7. 34 (t, J= + yl) aminophenyl]-2, 4-pyrimidinediamine 8. 4 Hz, 1 H), 7. 71 (d, J= 8. 1 Hz, 1 H), 7. 93 (s, 1 H), 8. 20 (d, J= 3. 9 Hz, 1H), 8. 26 (s, 2H), 9. 61 (s, 1H), 9. 81 (s, 1H NMR (DMSO-d6) : d 3. 01 (t, J= 4. 5 Hz, 4H), 3. 60 (s, 4H), 3. 70 (t, J= 5-Fluoro-N4- [3- (N-2-imidazolin-2-yl) aminophenyl]-N2- (3- 4. 5 Hz, 4H), 6. 51 (dd, J= 2. 1, 8. 4 Hz, 1 H), 6. 90 (dd, J= 1. 5, 7. 8 Hz, 1097-- morpholinophenyl)-2, 4-pyrimidinediamine 1 H), 7. 05 (t, J= 8. 1 Hz, 1 H), 7. 29 (m, 3H), 7. 64 (d, J= 7. 8 Hz, 1 H), 8. 01 (s, 1 H), 8. 12 (d, J= 3. 6 Hz, 1 H), 9. 20 ( 1 H NMR (DMSO-d6) : d 1. 20 (t, J= 7. 2 Hz, 3H), 3. 02 (t, J= 5. 4 Hz, 4H), N2- [3- (4-Ethoxycarbonylpiperazino) phenyl]-5-fluoro-N4- [3- (N- 3. 47 (t, J= 5. 4 Hz, 4H), 3. 60 (s, 4H), 4. 05 (q, J= 7. 2 Hz, 2H), 6. 53 (dd, 1098 _ _ 2-imidazolin-2-yl) aminophenyl]-2, 4-pyrimidinediamine J= 1. 5, 8. 4 Hz, 1 H), 6. 90 (d, J= 8. 1 Hz, 1 H), 7. 06 (t, J= 8. 1 Hz, 1 H), 7. 30 (m, 3H), 7. 66 (d, J= 8. 7 Hz, 1H), 7 LD LD LD _ : : Y : : t" a ."--. it F"p' CHMC. CHMC. 11pt =. i s"4 ;. e-f- t-r z &s r. °E"", : .. =LD LD LD r :' s _ c . phi number : CHMC, CHMC, CHMC, Ilpt az rs r Cain ound e . w. t4 w ° f, k T tase T tase T tase f s k P rYP, rYP YP P_ Y Cm ound Narrie : P., °, L... M. F vw L aa Number = :.-CHMC CHMC'CHMC 11 t xciafs... r w i w I E 3 t I E 8 t lon 3 t 0 4 . d T. z 1H NMR (DMSO-d6) : d 3. 30 (m, 4H), 3. 62 (s, 4H), 6. 84 (d, J= 9. 0 Hz, 1099 5-Fluoro-N4- [3- (N-2-imidazolin-2-yl) aminophenyl]-N2- [4- (4- 2H), 6. 91 (d, J= 8. 1 Hz, 1 H), 7. 35 (t, J= 8. 1 Hz, 1 H), 7. 49 (d, J= 8. 4 1099-- methylpiperazino) phenyl]-2, 4-pyrimidinediamine Hz, 2H), 7. 73 (d, J= 8. 4 Hz, 1 H), 7. 80 (s, 1 H), 8. 09 (d, J= 3. 3 Hz, 1 H), 8. 27 (s, 1 H), 9. 06 (s, 1 H), 9. 44 (s, 1 H) ; 1 1H NMR (DMSO-d6) : d 3. 00 (t, J= 5. 1 Hz, 4H), 3. 50 (t, J= 4. 5 Hz, 4H), 1100 5-Fluoro-N4- [3- (N-2-imidazolin-2-yl) aminophenyl]-N2- [4- (4- 3. 61 (s, 7H), 6. 84 (d, J= 9. 0 Hz, 2H), 6. 91 (dd, J= 1. 5, 7. 5 Hz, 1H), 1100 _ _ methoxycarbonylpiperazino) phenyl]-2, 4-pyrimidinediamine 7. 34 (t, J= 7. 8 Hz, 1 H), 7. 52 (d, J= 8. 7 Hz, 2H), 7. 66 (d, J= 8. 1 Hz, 1 H), 7. 94 (s, 1 H), 8. 08 (d, J= 3. 6 Hz, 1 H), 9 1 H NMR (CDC ! 3) : d 1. 28 (t, J= 7. 2 Hz, 3H), 1. 31 (s, 9H), 3. 13 (t, J= N4- (5-tert-Butyl-1 H-pyrazol-3-yl)-N2- [3- (4- 5. 1 Hz, 4H), 3. 60 (t, J= 5. 4 Hz, 4H), 4. 15 (q, J= 7. 2 Hz, 2H), 6. 35 (s, 1101 ethoxycarbonylpiperazino) phenyl]-5-fluoro-2, 4- + 1 H), 6. 61 (m, 1 H), 7. 03 (s, 1 H), 7. 18 (m, 2H), 7. 73 (br, 1 H), 7. 90 (d, J= pyrimidinediamine 3. 3 Hz, 1 H), 8. 20 (br, 1 H) ; 19F NMR (282 N2- [4- (4-Acetylpiperazino) phenyl]-N4- (5-tert-butyl-1 H-pyrazol- 1102 LCMS : ret. time : 8. 02 min. ; purity : 94. 49% ; MS (m/e) : 453. 29 (MH+). + + 3-yl)-5-fluoro-2, 4-pyrimidinediamine N4- (5-tert-Butyl-1 H-pyrazol-3-yl)-5-fluoro-N2- [4- (4- 1103 LCMS : ret. time : 10. 38 min. ; purity : 97. 48% ; MS (m/e) : 469. 35 (MH+). + + methoxycarbonylpiperazino) phenyl]-2, 4-pyrimidinediamine 1H NMR (DMSO-d6) : d 1. 26 (s, 9H), 2. 61 (m, 7H), 3. 00 (m, 4H), 6. 30 1104 N4- (5-tert-Butyl-1 H-pyrazol-3-yl)-5-fluoro-N2- [4- (4- (br, 1 H), 6. 86 (d, J= 8. 4 Hz, 2H), 7. 48 (d, J= 9. 3 Hz, 2H), 7. 97 (s, 1 H) ; + +- 1104 + + methylpiperazino) phenyl]-2, 4-pyrimidinediamine 19F NMR (282 MHz, DMSO-d6) : d-165. 34 ; LCMS : ret. time : 6. 04 min. ; purity : 90. 75% ; MS (m/e) : 425 (MH+). 1H NMR (DMSO-d6) : d 2. 04 (s, 3H), 2. 97 (t, J=4. 8 Hz, 2H), 3. 04 (t, J= N2- (4- (4-Acetylpiperazino) phenyl]-5-fluoro-N4- [3- (N-2- 4. 8 Hz, 2H), 3. 57 (m, 4H), 3. 61 (s, 4H), 6. 84 (d, J= 9. 0 Hz, 2H), 6. 90 1105 _ _ imidazolin-2-yl) aminophenyl]-2, 4-pyrimidinediamine (d, J= 9. 3 Hz, 1 H), 7. 33 (t, J= 7. 8 Hz, 1 H), 7. 50 (d, J= 8. 7 Hz, 2H), 7. 69 (d, J= 8. 7 Hz, 1 H), 7. 79 (s, 1 H), 8. 08 N2- [3- (4-Acetylpiperazino) phenyl]-5-fluoro-N4- [3- (N-2- 1106 LCMS : ret. time : 7. 31 min. ; purity : 84. 11% ; MS (m/e) : 490. 34 (MH+). imidazolin-2-yl) aminophenyl]-2, 4-pyrimidinediamine 1 H NMR (CDC13) : d 1. 42 (t, J= 7. 2 Hz, 3H), 1. 63-2. 06 (m, 4H), 2. 27- 1107 N4-Cyclobutyl-N2-[2-(ethoxycarbonyi) indoi-7-yl]-5-fluoro-2, 4-2. 36 (m, 2H), 4. 41 (q, J= 7. 2 Hz, 2H), 5. 17 (d, J= 6. 0 Hz, 1 H), 7. 06 (t, + + 1107 + + pyrimidinediamine J= 7. 8 Hz, 1 H), 7. 14 (d, 1 H), 7. 22 (m, 2H), 7. 28 (br, 1 H), 7. 44 (d, J= 7. 8 Hz, 1H), 7. 76 (d, J= 3. 6 Hz, 1H), 10. 68 (X3 X LD L Lu Compound . m, , - _ n, r,. F . _ - sa, e. .. Rum i qm und s . _, : wT t t ase T ase T tase f s k r - x."w, , YP, rYP rYP P_ Y c : .'rCt CSCtd NamE. mn, I. L T r Number. : :. s 9 CHMC CHMC'CHMC 11 t P aax r. ' a. x. m 3 e F I E 3 t I E 8 t lono 3 f . =9 P 9 P 1 H NMR (CDC13) : d 1. 73-2. 05 (m, 4H), 2. 40-2. 50 (m, 2H), 3. 20 (t, J= 1108 N4-Cyclobutyl-5-fluoro-N2- (3-morpholinophenyl)-2, 4- 4. 8 Hz, 4H), 3. 88 (t, J= 4. 8 Hz, 4H), 4. 60 (m, J= 7. 8 Hz, 1 H), 5. 14 (d, + + 1108 + + pyrimidinediamine J= 6. 3 Hz, 1 H), 6. 57 (dd, J= 2. 4, 8. 1 Hz, 1 H), 6. 97 (dd, J= 1. 8, 7. 5 Hz, 1H), 7. 06 (br, NH, 1H), 7. 19 (t, J= 8. 1 Hz 1 H NMR (CDC13) : d 1. 29 (t, J= 6. 9 Hz, 3H), 1. 71-2. 02 (m, 4H), 2. 41- N4-Cyclobutyl-N2- [3- (4-ethoxyGarbonylpiperazino) pheny]-5- 2. 51 (m, 2H), 3. 18 (t, J= 5. 1 Hz, 4H), 3. 64 (t, J= 5. 1 Hz, 4H), 4. 17 (q, + 1109 +- fluoro-2, 4-pyrimidinediamine J= 6. 9 Hz, 2H), 4. 59 (m, J= 8. 1 Hz, 1H), 5. 16 (d, J= 7. 8 Hz, 1H), 6. 58 (dd, J= 2. 4, 8. 1 Hz, 1H), 6. 97 (dd, J= 1. 8, 1H NMR (CDC ! 3) : d 1. 65-1. 74 (m, 2H), 1. 85-1. 95 (m, 2H), 2. 19-2. 33 1110 N4-Cyclobutyl-5-fluoro-N2- [4- (4-methylpiperazino) phenyl]-2, 4- (m, 2H), 2. 71 (s, 3H), 3. 15 (t, 4H), 3. 32 (t, J= 4. 8 Hz, 4H), 4. 36 (m, J= + 1110 + pyrimidinediamine 8. 1 Hz, 1 H), 6. 80 (d, J= 9. 0 Hz, 2H), 7. 36 (d, J= 9. 3 Hz, 2H), 7. 55 (d, J= 4. 2 Hz, 1 H) ; 19F NMR (282 MHz, CDC13) : d 1 H NMR (CDC13) : d 1. 31 (t, 3H), 1. 50-2. 04 (m, 4H), 2. 41-2. 50 (m, 2H), N4-Cyclobutyl-N2- [4- (4-ethoxycarbonylpiperazino) phenyl]-5- 3. 08 (t, J= 4. 8 Hz, 4H), 3. 64 (t, J= 5. 1 Hz, 4H), 4. 17 (q, 2H), 4. 52 (m, + 1111 + fluoro-2, 4-pyrimidinediamine J= 7. 8 Hz, 1 H), 5. 18 (d, J= 6. 6 Hz, 1 H), 6. 90 (d, J= 9. 0 Hz, 2H), 7. 07 (br, 1 H), 7. 45 (d, J= 9. 0 Hz, 2H), 7. 70 ( N2- [3- (4-Acetylpiperazino) phenyl]-N4- (3-cyclopropyl-1 H- 1112 LCMS : ret. time : 9. 04 min. ; purity : 87. 21% ; MS (m/e) : 437. 32 (MH+). + + + pyrazol-5-yl)-5-fluoro-2, 4-pyrimidinediamine 1H NMR (CDC13) : d 0. 54-0. 64 (m, 2H), 0. 76-0. 86 (m, 2H), 1. 74 (m, 1 3 N4- (3-Cyclopropyl-1 H-pyrazol-5-yl)-5-fluoro-N2- [4- (4- 1 H), 2. 42 (s, 3H), 2. 76 (br, 4H), 3. 17 (t, J= 4. 8 Hz, 4H), 5. 90 (br, 1H), + + methylpiperazino) phenyl]-2, 4-pyrimidinediamine 6. 82 (d, J= 8. 7 Hz, 2H), 7. 29 (d, J= 8. 7 Hz, 2H), 7. 71 (d, J= 3. 6 Hz, 1H) ; 19F NMR (282 MHz, CDC3) : d-167. 69 ; LCM - N4-(3-Cyclopropyl-1 H-pyrazoi-5-yl)-5-fluoro-N2-(3- 1114 LCMS : ret. time : 8. 57 min. ; purity : 88. 76% ; MS (m/e) : 396. 24 (MH+). + + morpholinophenyl)-2, 4-pyrimidinediamine 1 H NMR (DMSO-d6) : d 0. 67 (m, 2H), 0. 88 (m, 2H), 1. 19 (t, J= 7. 1 Hz, N4- (3-Cyclopropyl-1 H-pyrazol-5-yl)-N2- [3- (4- .. 3H), 1. 85 (m, 1 H), 3. 06 (m, 4H), 3. 48 (m, 4H), 4. 05 (q, J= 7. 1 Hz, 2H), 1115 ethoxycarbonylpiperazino) phenyij-5-fluoro-2, 4- + + 6. 52 (d, J= 8. 1 Hz, 1H), 7. 07 (m, 1H), 7. 20 (m, 2H) ; LCMS : ret. time : pyrimidinediamine 11. 80 min. ; purity : 79. 43% ; MS (m/e) : 467. 30 y (, llNive lono, 3pt igue, 39t . u k ;, w i '., . gE' 3t tgE, P- y"f1'. ki.'Ca'., y', i ; . s'F ... ;, F. , u r', ; ;.-, k ; 3i ; _,, r s'. a :.. :. '7''c : , . -'. . x',.' ; . ... " , H, _ - s Mz t , y. sii ; y_, s,. °-. 120 (t 3... r .......... H, Q. 90 (m 2H), A u. ., ,.-. : m, 2) zon ound uyif Narn : Hz, 1H), 3. 08 (br GH), 3. 44 (br 4H1 4. 05 lq CotnP GomP ?. _ HNMR (aMSO-d6) : d 0. 62 ( 6. 93 (d, J-8.'t Hz, 2H), 7. 40 (d, J-8. 4 Nz, Nimber 3H), 1. 84 (m, J= 3. 9 = ---- H....- '--'"' u- 1118 ethoxYrbonylPp 4 Hz,'1H), 7. 04 (d, J-8. 1 Hz, 1H 8. 2T (d '-. 6 Hz' 1H idined.amine pyrim . L 'T o MS (mle) : 2 ine DC13). d , (Cr ; DC13). d mu ruz 1N tIMR (cDCt3) : d . 45 ls, 9N) ihr 1117 y__pYrimidineamine = 3. 6 Hz, 1H ; 19 NMR t2a2 MHz, _ ro-N2- (- 3. 96 (m. 2H> td -9. 3 hlz, 2H, 7. 66 (d 9. 28 mn P _ utorbonylazetidin-3-Y)- uo _ DCl3) d-163. 92 ; LCMS : ret. time. : d 1. A6 (s, H), 2. 16 (s, 3N, 3. 15 (P = 5. 1 Hz 4H, Hzl gt4) 12. _ 4-ynmdinediamine 1118 morpholinapheny) 2 p 1H NMR (DGI3) = 5. 1 Hz, 2HO 3. 91 (dd, J_ 5. 4, 9g + A. 70 (m, 1H), 6. 91 (d, J-9. 3 3. 6 (t, J 5. 1 Hz, 2H. 3. 78 (t. vediamine Hx, 2H5, . 30 (dd.. 1° 7. 8, 9. 6 Nz, 2N), razino ? phny N4-t-terf- Nz, 2H) T. 38 (d, J= 9. 3 Nz, 2H, 7. 72 (d, . a 1. 45 (S, 9H), 2. 16 (S, 3M, 3. 21 (m, 4H), 3. 64 tm, N2-t''4'AetyPPe _ .. n-3_yp_5_fluoro-2, 4-PYrimd 1H NMR (CDC13) _-T. B, 9. 3 1119 butoxYarbonylazetdv 78 (m 2H), 3. 99 (dd '4. 8, 9. 0 Hz, 2H, 4. 30 (ad, lHl 6. 75 (d, J= 5. 1 Hz 1N), 6. 90 (d. J= 8. 7 Hz, 1H), _ 2H), 3 y-3 Y) 1 H), 7. 26 (m' Hl, 7. 69 (d, J= 4 N2-3'tq'AcetylPPerazino) PhenYl-N-O-tert _ 1-5 iuoro-2, 4-PYrimidinediamine Hx, 2H), 4. 74 (m 7. 19 (m, : 96. 17% ; MS (me) : 396. 22 (H' lazetvdi 112 butoxyrbony _ ol-5-Yl'5 uoro-t2- (4' LMS : ret. time ; 7. 80 min. ; Purn' - urity : 82. 19°l0 ; S mle) : 516. 26 (N'Hk'k N_t3_CyclopropY'H'PYaz - 2 4-PYrimdinediamine 1121 morpholinophenyt)' : 10. 4 m"p n _5_uoro-24 LCMS : ret, tim t -m'cv'P - N (_ 208 carboYPperazino) Phe Y 1 1122 etho- Pyr ;, r ; dinediamlne idin-3-YD-5vuoro-N2- (-morpholinophenyll2- LCMB : ret. tim _ Azet e : 2. 33 min. > purity : 92. 29°l0 ; MS (mte) : 386. 25 (MH+ 11234 heny11N4'tazetidin-3-YO'5 fluoro-LCMS : ret. tim pYrimidinediamine N2-L4WAehIpPeraxino) P 1124 4 ; midinediamne 2, PYr 208 LD LD r.. . *2E4, r5. _, h. .., p, _ : :"p sn. nagez t i a, r. u,.. e m Number CHMC, CHMC, CHMC, Ilpt ....... . _ " 77 . v, z4 r . ,,. Tr tase T tase T tase s k Cartt ound a , P rYP, rYP fP_ Y P Y fi om ound Name'W ___. _ 3.." ;. z d s HMC HM 1 t Nuinber = _ : v., . =CHMC C C C 1 a frr,. , P 8a m. r 4 re. x= r T _.,, s= : _ I E 3 t I E 8 t lono 3 t 9 9 P P P .'3. 3fmP_K. N4- (Azetidin-3-yl)-N2- [4- (4-ethoxycarbonylpiperazino) phenyl]- 1125 LCMS : ret. time : 7. 44 min. ; purity : 85. 69% ; MS (m/e) : 416 (MH+). 5-fluoro-2, 4-pyrimidinediamine N4- (Azetidin-3-yl)-5-fluoro-N2- (3-morpholinophenyl)-2, 4- 1126 LCMS : ret. time : 2. 85 min. ; purity : 100% ; MS (m/e) : 345. 24 (MH+).-+ pyrimidinediamine N2- [3- (4-Acetylpiperazino) phenyl]-N4- (azetidin-3-yi)-5-fluoro- 1127 LCMS : ret. time : 3. 10 min. ; purity : 88. 30% ; MS (m/e) : 386. 28 (MH+). + 2, 4-pyrimidinediamine 1H NMR (DMSO-d6) : d 3. 00 (t, J=4. 8 Hz, 4H), 3. 38 (t, 2H), 3. 72 (t, J= 1128 N4- (3, 4-Dihydro-2H, 4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro-N2- (4- 4. 8 Hz, 4H), 4. 08 (t, J= 4. 2 Hz, 2H), 6. 50 (br, 1 H), 6. 82 (d, J= 9. 0 Hz, + 1128 + morpholinophenyl)-2, 4-pyrimidinediamine 2H), 6. 93 (d, J= 8. 1 Hz, 1 H), 7. 20 (d, J= 8. 1 Hz, 1 H), 7. 48 (d, J= 9. 3 Hz, 2H), 7. 99 (d, J= 3. 6 Hz, 1H), 8. 65 ( N4- (1-tert-Butoxycarbonyiazetidin-3-yi)-N2- [3- (4- 1129 ethoxycarbonylpiperazino) phenyl]-5-fluoro-2, 4- LCMS : ret. time : 11. 35 min. ; purity : 86. 05% ; MS (m/e) : 516. 32 (MH+). pyrimidinediamine N4- (Azetidin-3-yl)-N2- [3- (4-ethoxycarbonylpiperazino) phenyl]- 1130... LCMS : ret. time : 8. 39 min. ; purity : 96. 94% ; MS (m/e) : 416 (MH+). 5-fluoro-2, 4-pyrimidinediamine N4- (Azetidin-3-yl)-5-fluoro-N2- [4- (4-methylpiperazino) phenyi]- 1131 LCMS : ret. time : 1. 20 min. ; purity : 96. 44% ; MS (m/e) : 358. 24 (MH+). 2, 4-pyrimidinediamine 1 H NMR (DMSO-d6) : d 3. 38 (t, 2H), 4. 08 (t, J= 4. 5 Hz, 2H), 6. 52 (br, 1132 N4-(3, 4-Dihydro-2H, 4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro-N2- [3- 1 H), 6. 78 (d, J= 8. 1 Hz, 1 H), 7. 27 (m, 3H), 7. 50 (s, 1 H), 7. 67 (d, J= 8. 1 + (oxazol-5-yl) phenyl]-2, 4-pyrimidinediamine Hz, 1 H), 8. 01 (s, 1 H), 8. 08 (d, J= 3. 6 Hz, 1 H), 8. 38 (s, 1 H), 8. 82 (s, 1H), 9. 35 (s, 1H) ; 19F NMR (282 MHz, DMSO 1H NMR (CDC13) : d 1. 68-1. 76 (m, 2H), 2. 17-2. 25 (m, 4H), 3. 14 (d, J= 3. 0 Hz, 3H), 4. 79 (m, J= 8. 4 Hz, 1 H), 7. 85 (d, J= 6. 0 Hz, 1 H) ; 19F 1133 2-Chloro-N4-cyclobutyi-5-fluoro-N4-methyi-4-pyrimidineamine 3. 0 Hz, 3H), 4. 79 (m, J= 8. 4 Hz, 1H), 7. 85 (d, J= 6. 0 Hz, 1H) ; 19F NMR (282 MHz, CDC3) : d-150. 50 ; LCMS : ret. time : 13. 83 min. ; purity : 96. 47% ; MS (m/e) : 216. 10 (MH+). 1 H NMR (DMSO-d6) : d 2. 03 (s, 3H), 2. 97 (t, J= 5. 1 Hz, 2H), 3. 03 (t, J= 1134 N2-[4-(4-Acetyipiperazino) phenyi]-N4-(3, 4-dihydro-2H, 4H-5- 5. 1 Hz, 2H), 3. 39 (t, 2H), 3. 56 (t, 4H), 4. 08 (t, J= 4. 2 Hz, 2H), 6. 51 (s, + + pyrid [1, 4] oxazin-6-yi)-5-fluoro-2, 4-pyrimidinediamine 1H), 6. 84 (d, J= 9. 0 Hz, 2H), 6. 93 (d, J= 8. 4 Hz, 1H), 7. 19 (d, J= 8. 1 Hz, 1H), 7. 49 (d, J= 9. 0 Hz, 2H), 7. 99 LD LD LD Cgmpoånd'= =='m ~'X j eT yptase T yptase T ptase 11 pt :- ; mmCompound-Name--...- Number gS CHMC, CHMC, 11pt """'"""'----- (DMSOd6) : d 1. 19 (t, J= 7. 2 Hz,'3H), 2. 99 (t. J="4'Hz, 4H), Co'm"pound-, Name NO r CHMC, CHMC, CHMC, llpt IgE, 3pt IgE, 8pt lono, 3pt N4- (3, 4-Dihydro-2H, 4H-5-pyrid [1, 4] oxaz ! n-6-y))-N2- [4- (4- 3. 39 (t, 2H), 3. 49 (t, 4H), 4. 04 (q, J= 7. 2 Hz, 2H), 4. 08 (t, J= 4. 8 Hz, 1135ethoxycarbony) piperazino) phenyn-5-f) uoro-2, 4- + + 1135 ethoxycarbonyipiperazino) phenyi]-5-fluoro-2, 4-2H), 6. 51 (s, 1H), 6. 84 (d, J= 9. 3 Hz, 2H), 6. 93 (d, J= 8. 4 Hz, 1H), 7. 19 + + pyr ! m ! dinediamine (d, J= 8. 4 Hz, 1 H), 7. 49 (d, J= 9. 0 Hz 1H NMR (DMSO-d6) : d 2. 99 (t, J= 5. 1 Hz, 4H), 3. 39 (t, 2H), 3. 69 (t, J= N4- (3, 4-Dihydro-2H, 4H-5-pyrid [1, 4] oxazin-6-yi)-5-fluoro-N2-(3-4. 8 Hz, 4H), 4. 08 (t, J= 4. 2 Hz, 2H), 6. 50 (m, 2H), 6. 91 (d, J= 8. 4 Hz, + + 1136 + + morpho ! ! nopheny !)-2, 4-pyrim ! dined ! amine 1 H), 7. 04 (t, J= 8. 1 Hz, 1 H), 7. 19 (m, 3H), 8. 04 (d, J= 3. 6 Hz, 1 H), 8. 74 (s, 1 H), 9. 02 (s, 1 H) ; 19F NMR (282 MH 1H NMR (DMSO-d6) : d 2. 03 (s, 3H), 2. 98 (t, J= 4. 8 Hz, 2H), 3. 05 (t, J= N2- [3- (4-Acety ! piperazino) pheny !]-N4- (3, 4-d ! hydro-2H. 4H-5- 4. 8 Hz, 2H), 3. 39 (t, 2H), 3. 53 (t, J= 5. 4 Hz, 4H), 4. 08 (t, 2H), 6. 50 (m, + + pyrid [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine 2H), 6. 91 (d, J= 8. 4 Hz, 1 H), 7. 04 (t, J= 8. 4 Hz, 1 H), 7. 21 (m, 3H), 8. 04 (d, J= 3. 6 Hz, 1H). 8. 75 (s, 1H), 9 1H NMR (DMSO-d6) : d 1. 20 (t, J= 7. 2 Hz, 3H), 3. 01 (t, J= 4. 8 Hz, 4H), 1 H NMR (DMSO-d6) d 1 20 (t J= 7 2 Hz 3H) 3 01 (t J= 4 8 Hz 4H) N4- (3, 4-D ! hydro-2H, 4H-5-pyrid [1, 4] oxaz ! n-6-yi)-N2- [3- (4- 3. 41 (t, 2H), 3. 46 (t, J= 4. 8 Hz, 4H), 4. 08 (t, 2H), 6. 50 (m, 2H), 6. 91 (d, + + 1138 ethoxycarbony) piperazino) pheny !]-5-f) uoro-2, 4- + + , J= 8. 4 Hz, 1 H), 7. 04 (t, J= 8. 4 Hz, 1 H), 7. 19 (d, J= 8. 1 Hz, 2H), 7. 25 (t, pyrimidinediamine 1H), 8. 04 (d, J= 3. 6 Hz, 1H), 8. 73 1H NMR (DMSO-d6) : d 1. 56-1. 69 (m, 2H), 2. 07-2. 27 (m, 4H), 3. 07 (t, 1139 uoro-N4-methy !-N2- (4-morpho ! inopheny !)- J= 4. 5 Hz, 4H), 3. 12 (d, J= 3. 0 Hz, 3H), 3. 73 (t, J= 4. 5 Hz, 4H), 4. 76 + 1139 + 2, 4-pyrimidinediamine (m, J= 8. 4 Hz, 1 H), 6. 92 (d, J= 9. 0 Hz, 2H), 7. 42 (d, J= 8. 7 Hz, 2H), 7. 97 (d, J= 7. 2 Hz, 1H), 9. 36 (br, 1H) ; 19F NMR 1H NMR (DMSO-d6) : d 1. 59-1. 69 (m, 2H), 2. 03 (s, 3H), 2. 10-2. 27 (m, N2- [4- (4-Acety) p ! perazino) pheny !]-N4-cyc ! obuty)-5-f) uoro-N4- 4H), 3. 03 (t, J= 4. 5 Hz, 2H), 3. 11 (d, J= 3. 0 Hz, 5H), 3. 56 (t, 4H), 4. 76 + methyl-2, 4-pyrimidinediamine (m, J= 7. 5 Hz, 1 H), 6. 93 (d, J= 9. 0 Hz, 2H), 7. 45 (d, J= 9. 0 Hz, 2H), 7. 96 (d, J= 7. 2 Hz, 1 H), 9. 26 (br, 1 H) ; LCMS 1H NMR (DMSO-d6) : d 2. 23 (s, 3H), 3. 03 (t, 4H), 3. 29 (m 4H), 3. 38 (t, N4- (3, 4-D ! hydro-2H, 4H-5-pyrid [1, 4] oxaz ! n-6-y)-5-f) uoro-N2- [4- 2H), 4. 08 (t, J= 4. 5 Hz, 2H), 6. 50 (br, 1 H), 6. 81 (d, J= 8. 7 Hz, 2H), 6. 92 + + (4-methy ! peraz ! no) pheny)]-2, 4-pyrimidinediamine (d, J= 8. 4 Hz, 1 H), 7. 20 (d, J= 8. 1 Hz, 1 H), 7. 46 (d, J= 9. 0 Hz, 2H), 7. 98 (d, J= 3. 6 Hz, 1H), 8. 64 (br, 1H), LD LD LD Compound Tryptase, Tryptase, Tryptase, fp __pyk, Number : : 9CHMC, CHMC CHMC, llpt lono, 3pt IgE, 3pt IgE, 8pt H NMR (DMSO-d6) : d 2. 20 (s, 3H), 2. 41 (t, 4H), 3. 03 (t, 4H), 3. 38 (t, N4- (3, 4-Dihydro-2H, 4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro-N2- [3- 2H), 4. 08 (t, J= 4. 8 Hz, 2H), 6. 50 (m, 2H), 6. 91 (d, J= 7. 8 Hz, 1 H), 7. 02 + + (4-methylpiperazino) phenyi]-2, 4-pyrimidinediamine (t, J= 7. 8 Hz, 1 H), 7. 20 (m, 3H), 8. 03 (d, J= 3. 6 Hz, 1 H), 8. 72 (s, 1 H), 8. 99 (s, 1H) ; 19F NMR (282 MHz, DMSO- 1H NMR (DMSO-d6) : d 3. 53 (t, J= 4. 2 Hz, 2H), 4. 16 (t, J= 4. 2 Hz, 2H), N4- (3, 4-Dihydro-2H, 4H-5-pyrid [1, 4] oxazin-6-y !)-5-fiuoro-N2- [3- 6. 84 (d, J= 8. 7 Hz, 1 H), 7. 24 (d, J= 8. 7 Hz, 1 H), 7. 35 (s, 1 H), 7. 40 (t, + + (oxazo)-2-yl) phenyl]-2, 4-pyrimidinediamine J= 7. 8 Hz, 1 H), 7. 56 (dt, J= 1. 2, 8. 1 Hz, 1 H), 7. 89 (d, J= 8. 4 Hz, 1 H), 8. 18 (s, 1 H), 8. 32 (d, J= 3. 3 Hz, 1 H), 8 1H NMR (DMSO-d6) : d 0. 61-0. 66 (m, 2H), 0. 86 (m, 2H), 1. 81 (m, 1H), N4- (3-Cydopropyt-1 H-pyrazo !-5-y)-5-f) uoro-N2- [3- (oxazo !-2- 6. 41 (br, 1H), 7. 35 (m, 2H), 7. 52 (d, J= 7. 5 Hz, 1H), 7. 86 (s, 1H), 8. 04 yi) phenyl]-2, 4-pyrimidinediamine (s, 1H), 8. 19 (m, 2H), 9. 34 (s, 1H), 9. 60 (s, 1H) ; 19F NMR (282 MHz, DMSO-d6) : d-163. 42 ; LCMS : ret. time : 9. 50 mi 1H NMR (DMSO-d6) : d 3. 49 (t, 2H), 3. 61 (s, 3H), 3. 69 (s, 6H), 4. 14 (t, N4- (3, 4-Dihydro-2H, 4H-5-pyrid [1, 4] oxazin-6-y !)-5-fiuoro-N2- J= 4. 5 Hz, 2H), 6. 94 (d, J= 7. 8 Hz, 1 H), 7. 07 (s, 2H), 7. 14 (d, 1 H), 8. 20 (3, 4, 5-trimethoxyphenyl)-2, 4-pyrimidinediamine (d, J= 3. 6 Hz, 1H), 9. 75 (s, 1H) ; LCMS : ret. time : 8. 80 min. ; purity : 100% ; MS (m/e) : 429. 45 (MH+). 1 H NMR (DMSO-d6) : d 3. 39 (s, 2H), 3. 78 (s, 3H), 4. 08 (t, J= 3. 9 Hz, N2- (3-Chioro-4-methoxyphenyi)-N4- (3, 4-dihydro-2H, 4H-5- 2H), 6. 54 (br, 1 H), 6. 95 (d, J= 8. 4 Hz, 1 H), 7. 00 (d, J= 8. 7 Hz, 1 H), 1146 + pyrid [1, 4] oxazin-6-y))-5-fluoro-2, 4-pyrimidinediamine 7. 13 (d, J= 8. 4 Hz, 1 H), 7. 46 (dd, J= 2. 4, 9. 0 Hz, 1 H), 7. 84 (d, J= 2. 4 Hz, 1 H), 8. 04 (d, J= 3. 3 Hz, 1 H), 8. 80 (s, 1 H 1H NMR (DMSO-d6) : d 1. 56-1. 68 (m, 2H), 2. 10-2. 26 (m, 4H), 2. 21 (s, N4-Cyclobutyl-5-fluoro-N4-methyl-N2- [4- (4- 3H), 2. 44 (t, 4H), 3. 02 (t, J= 4. 8 Hz, 4H), 3. 05 (d, J= 2. 7 Hz, 3H), 4. 74 methylpiperazino) phenyl]-2, 4-pyrimidinediamine (m, J= 7. 8 Hz, 1 H), 6. 82 (d, J= 9. 0 Hz, 2H), 7. 49 (d, J= 8. 7 Hz, 2H), 7. 88 (d, J= 6. 6 Hz, 1 H), 8. 79 (br, 1 H) ; 19F 1 H NMR (DMSO-d6) : d 1. 19 (t, J= 7. 2 Hz, 3H), 1. 56-1. 69 (m, 2H), N4-Cycbbuty !-N2- [4- (4-ethoxycarbonyipiperaz ! no) pheny !]-5- 2. 07-2. 27 (m, 4H), 3. 06 (t, J= 4. 8 Hz, 4H), 3. 11 (d, J= 3. 0 Hz, 3H), + + 1148-t-+- f) uoro-N4-methyl-2, 4-pyrimidinediamine 3. 50 (t, 4H), 4. 05 (q, J= 7. 2 Hz, 2H), 4. 76 (m, J= 8. 4 Hz, 1 H), 6. 93 (d, J= 9. 0 Hz, 2H), 7. 43 (d, J= 8. 7 Hz, 2H), 7. 97 (d, LD LD LD Co'nd T, PO Tryptase, Tryptase, Tryptase, fp syk, __pyk, P h yv, i Comi) ound-, N ame CHMC, CHMC, CHMC, llpt Number IgE, 3pt IgE, 8pt lono, 3pt 1H NMR (DMSO-d6) : d 1. 57-1. 70 (m, 2H), 2. 13-2. 24 (m, 4H), 3. 07 (t, N4-Cydobuty)-5-fiuoro-N4-methy !-N2- (3-morpho ! inopheny !)- J= 4. 8 Hz, 4H), 3. 11 (d, J= 3. 3 Hz, 3H), 3. 73 (t, J= 4. 5 Hz, 4H), 4. 78 + 1149 + 2, 4-pyrimidinediamine (m, J= 8. 7 Hz, 1 H), 6. 57 (m, 1 H), 7. 08 (m, 2H), 7. 24 (m, 1 H), 7. 98 (d, J= 6. 9 Hz, 1H), 9. 19 (br, 1H) ; LCMS : ret. time 1 H NMR (CDa3) : d 1. 66-1. 78 (m, 2H), 2. 15 (s, 3H), 2. 22 (m, 4H), N2- [3- (4-Acetylpiperazino) phenyl]-N4-cyclobutyl-5-fluoro-N4- 3. 17 (d, J= 2. 7 Hz, 3H), 3. 22 (m, 4H), 3. 62 (t, J= 4. 8 Hz, 2H), 3. 77 (t, + 1150 * methy !-2, 4-pyrimidinediamine J= 5. 1 Hz, 2H), 4. 85 (m, J= 8. 4 Hz, 1 H), 6. 58 (dd, J= 2. 4, 8. 1 Hz, 1 H), 7. 04 (d, J= 8. 4 Hz, 1H), 7. 19 (t, J= 8. 1 Hz, 1H NMR (CDC13) : d 1. 63-1. 77 (m, 2H), 2. 21 (m, 4H), 2. 45 (s, 3H), 1151 !-5-f) uoro-N4-methy)-N2- [3- (4- 2. 72 (t, J= 4. 8 Hz, 4H), 3. 13 (d, J= 3. 9 Hz, 3H), 3. 32 (t, J= 4. 8 Hz, 4H), 1151 + +- methylpiperazino) phenyl]-2, 4-pyrimidinediamine 4. 84 (m, J= 8. 7 Hz, 1 H), 6. 56 (dd, J= 2. 4, 8. 1 Hz, 1 H), 6. 82 (br, 1 H), 7. 00 (d, J= 8. 1 Hz, 1H), 7. 17 (t, J= 7. 8 Hz, 1 H NMR (DMSO-d6) : d 1. 19 (t, J= 7. 2 Hz, 3H), 1. 60-1. 70 (m, 2H), N4-Cydobuty)-N2- [3- (4-ethoxycarbony ! p ! perazino) phenyi]-5- 2. 13-2. 28 (m, 4H), 3. 08 (t, J= 5. 1 Hz, 4H), 3. 12 (d, J= 3. 3 Hz, 3H), + fluoro-N4-methy !-2, 4-pyrimidinediamine 3. 50 (t, 4H), 4. 05 (q, J= 7. 2 Hz, 2H), 4. 79 (m, J= 9. 0 Hz, 1 H), 6. 59 (d, J= 6. 9 Hz, 1 H), 7. 09 (m, 2H), 7. 27 (s, 1 H), 7. 99 1 H NMR (DMSO-d6) : d 1. 69-1. 78 (m, 2H), 2. 28 (m, 4H), 3. 36 (d, J= N2- (2-Aminocarbony !-5-benzoxy-4-methoxypheny !)-N4- 3. 3 Hz, 3H), 3. 90 (s, 3H), 4. 94 (m, 1H), 5. 30 (s, 2H), 7. 12 (s, 1H), cydobuty)-5-f) uoro-N4-methy !-2, 4-pyrim ! dined ! amine 7. 35-7. 48 (m, 6H), 9. 04 (d, J= 9. 0 Hz, 1 H) ; LCMS : ret. time : 11. 25 min. ; purity : 98. 01% ; MS (mule) : 435. 22 (M-16). 1H NMR (DMSO-d6) : d 1. 62-1. 74 (m, 2H), 2. 02-2. 15 (m, 2H), 2. 23- N2- (4-Benzam ! dopheny !)-N4-cydobutyj-5-f) uoro-2, 4- 2. 31 (m, 2H), 4. 50 (m, J= 8. 1 Hz, 1 H), 7. 46-7. 68 (m, 8H), 7. 84 (d, J= + 1154 + pyrimidinediamine 3. 6 Hz, 1H), 7. 92 (td, J= 1. 2, 6. 6 Hz, 2H), 8. 99 (s, 1 H), 10. 07 (s, 1 H) ; 19F NMR (282 MHz, DMSO-d6) : d-167. 01 ; LCMS : ret 1 H NMR (DMSO-d6) : d 1. 54 (m, 4H), 1. 70 (m, 2H), 1. 94 (m, 2H), 2. 98 N4-Cydopenty)-5-f) uoro-N2- (4-morpho ! inopheny))-2, 4- (t, J= 4. 8 Hz, 4H), 3. 70 (t, J= 4. 8 Hz, 4H), 4. 30 (q, J= 6. 9 Hz, 1H), 6. 80 + pyrimidinediamine (d, J= 9. 0 Hz, 2H), 7. 22 (d, J= 6. 9 Hz, 1 H), 7. 55 (d, J= 9. 3 Hz, 2H), 7. 76 (d, J= 3. 6 Hz, 1 H), 8. 74 (br, 1 H) ; 19F t lot 2va) 3 L". h '\ J r-- . g u '"-- """L- % s 4- , » 2. 94 (t, J=4. 8 8. 7HZ,, 7 g. 83 (d Number.. P, r 1 6). d 154 Im'6. 3 7, 1"), = 6. 9 HZ, 1H), 7 76 t -39 m, 2H), 2. 21 A. 30 (q 4H1, 1. 0 (m'2H)'1. 93 l .-, erazino) P'enYlN4'yCioPenY tH), . 56 (d, J-9. 0 Hz, 2H1,, _ tn, 1H, 6. 79 (d il2 L'4 Ac pMgp-d61 d . 54 l 4. 30 (q,. 1= 6. 3 Nz, 7 _76 la, 1H NMR l 3. 01 t H) 9. 01-1z, 21-1 1156 PYimsdinediamine 3H) r 2. 44 (t, M, 1H1, . 53 d 8. 7 Hz, 2H1, . ? 2 ld '6. 3 Hz _ -t'ethYp'Perazmo) PhenY' _ . 0 Hz, Hl, 8."t2 lbr, 1H) ; 19F NMR (2$, 3. 03 1. 71 (m, 2ri1, 1. 93 (m 2a y 9. 6. ro-N2 L SO-d6) d . 52 m Nl, 1H1, 6. 45 J q,. CytoPenty 5'uo R tM t J= 4. 8 Hz, H), 4. 36 tm, , 31 (d, J= , 1N) diamne-3 2, 1 4. 8 Hz. 4H1, 3. 72 t 7. 13 (d, J-8. 1 Hx 1157 -PYimidin (t. t, = z. 8 Hz, 1H, holinophenY)-2, ' HZ, 1H7, . 02 l = 3. 6, 2. 03 . fluoro-N2- (3'mprp, T. 42 l$ H1, 7. 80 (a 1. 94 m 2Hl . C cloPentyl 5, 4H), 1. 71 tm 2H), t 4), + 7. 2 Hz Hl rnine 1H NM S'd61 d . 52H) 1H) Z7 03, (3. 55 l R lDM 3. Oa tt 3 t J= $. 1 Hz, 1158 PYm'dineda _ 1H1, 6. 47 (d, 7. 8 H', 2 1-5. AUOTO. VA2-k4 J : z 3. 02 lt, J 5. 1 Hz k 4. 36 ll, . 6 HZ 1H1, 7. 14 (d, J-7. 8 Hz, 1H), T. 30 (d ; eraimolphenylNq"°ycioPe . 79. 17° ! 0 ; MS lmle) : 371. 23 (N*' 1.- _ cety p P y2 3_ (4 A 1159 Pyrimldinediamsne ; 6. 49 min. ; purl M-ret. fime erazm) Phenyl- S 50 (MN'. r . 0. 76 min. ; PuritY : 77. 0't° ! o ; MS tmle : 429- nt . 5 iuoro-N2 L'tA-methyPp N, . yclope Y 1160 5 LCM ret, tme m, Hl, 1. 64 (a M, 1. 75 2, -PYrimdinediamsne eraznlPhenyl S. g. 71 (t, J 4. 8 Hz 4M,. r DMWd6l d . 1 (m, 1H), 1. 3 1-N2-L3't'etho'CarbonyPP 1H NMR (4H, T. 14 (d, J-8. 41-tz, 1H1, 7. 55 l H, . 90 (m 2H), 2. 98 (t, J_ 4. 8 Hz, Nq-CY°loPenY idinediamine 1161 fluoro-2,'-Pm _ nolinoP 1M, 6. 80 (d. J-g. 3 Hz, 2O nenYl2, 4 (m, 2) d 1H1, 1. 75 tm 2) 1. 90 = 9. 0 Hz, 2M, Z 76 (d, J= 3. 9 Hx. 1N), 8 ro-N2- ('m°p 3. 86 tmi J. d 1, 31 tm. 5M, 1. 64 l t, = 5. 1 Hz, 2H1,. r _GyclohexY. 5-fluo R pMSO-d6) = 4. 8 Hz, 2H1, 3. 01 ( PYr 1H N2Nl, 2. 02 (S, 3M, 2. 94 (t a2 d, J= 9. 0 Hz, 2H1, 7. 12 (d, J 7. 5 Nz, 1162 ; m ; dinediamine 4H), 3, 86 lm H1, _yclohexY'Suoro-2, 4' lm 'IH, . 55 (d, J= 8. 7 Hz, 2H), 7. 76 (d, Jc ; perazno) phenyl N 3. 55 lm, N2-'t'AcetY P 163 pyrimdinediamne z3 LD LD LD Compound NSs'''.. S. SjSs Tryptase, Tryptase, Tryptase, fp ssasm CmpoundamesaA' ., "'lamMM : .., NumeBrs'&ss CHMC, CHMC, 11pt u'om'pound N'am .. CHMC, CHMC, CHMC, llpt [gE, 3pt IgE, 8pt lono, 3pt 1 H NMR (DMSO-d6) : d 1. 31 (m, 5H), 1. 64 (d, 1 H), 1. 75 (m, 2H), 1. 90 N4-Cydohexyi-5-fiuoro-N2- [4- (4-methyipiperazino) phenyi]-2, 4- (m, 2H), 2. 21 (s, 3H), 2. 46 (t, J= 4. 8 Hz, 4H), 3. 01 (t, J= 4. 8 Hz, 4H), + + 1164 +-+ pyrimidinediamine 3. 85 (m, 1H), 6. 79 (d, J= 9. 0 Hz, 2H), 7. 12 (d, J= 8. 4 Hz, 1H), 7. 52 (d, J= 9. 0 Hz, 2H), 7. 76 (d, J= 3. 9 Hz, 1 H), 8 1 H NMR (DMSO-d6) : d 1. 19 (t, J= 7. 2 Hz, 3H), 1. 31 (m, 5H), 1. 64 (d, N4-Cyciohexyi-N2- [4- (4-ethoxycarbonyipiperazino) phenyi]-5- 1 H), 1. 76 (m, 2H), 1. 90 (m, 2H), 2. 97 (t, J= 4. 8 Hz, 4H), 3. 48 (t, 4H), + + 1165 + + f) uoro-2, 4-pyrimidinediamine 3. 86 (m, 1H), 4. 04 (q, J= 7. 2 Hz, 2H), 6. 82 (d, J= 9. 0 Hz, 2H), 7. 12 (d, J= 6. 9 Hz, 1 H), 7. 55 (d, J= 9. 3 Hz, 2H), 7 1H NMR (DMSO-d6) : d 1. 27 (m, 5H), 1. 63 (d, 1H), 1. 76 (m, 2H), 1. 87 N4-Cydohexy)-5-f) uoro-N2- (3-morpho) ! nopheny !)-2, 4- (m, 2H), 3. 04 (t, J= 4. 8 Hz, 4H), 3. 72 (t, J= 4. 8 Hz, 4H), 3. 90 (m, 1 H), + 1166 + pyrimidinediamine 6. 46 (dd, J= 2. 1, 7. 8 Hz, 1 H), 7. 03 (t, J= 8. 4 Hz, 1 H), 7. 16 (d, J= 7. 8 Hz, 1H), 7. 24 (m, 2H), 7. 80 (d, J= 3. 9 Hz, 1H NMR (DMSO-d6) : d 1. 31 (m, 5H), 1. 61 (m, 1H), 1. 76 (m, 2H), 1. 87 N2- [3- (4-Acety) piperazino) pheny !]-N4-cyciohexy)-5-fiuoro-2, 4- (m, 2H), 2. 03 (s, 3H), 3. 04 (t, 2H), 3. 09 (t, 2H), 3. 56 (t, 4H), 3. 90 (m, + 1167 + pyrimidinediamine 1 H), 6. 48 (d, J= 9. 0 Hz, 1 H), 7. 04 (t, J= 8. 4 Hz, 1H), 7. 17 (d, J= 8. 4 Hz, 1 H), 7. 25 (m, 2H), 7. 80 (d, J= 3. 6 Hz, 1H NMR (DMSO-d6) : d 1. 14 (m, 1H), 1. 31 (m, 4H), 1. 63 (d, 1H), 1. 76 N4-Cyciohexyi-5-fiuoro-N2- [3- (4-methyipiperazino) phenyi]-2, 4- (m, 2H), 1. 86 (m, 2H), 2. 26 (s, 3H), 3. 09 (t, 4H), 3. 32 (t, 4H), 3. 88 (m, + 1168 +- pyrimidinediamine 1H), 6. 45 (d, J= 6. 9 Hz, 1H), 7. 01 (t, J= 8. 1 Hz, 1H), 7. 16 (d, J= 7. 2 Hz, 1 H), 7. 24 (m, 2H), 7. 80 (d, J= 3. 9 Hz, 1H NMR (DMSO-d6) : d 1. 19 (t, J= 6. 9 Hz, 3H), 1. 31 (m, 5H), 1. 62 (d, N4-Cyciohexyi-N2- [3- (4-ethoxycarbonyipiperazino) phenyi]-5- 1 H), 1. 76 (m, 2H), 1. 87 (m, 2H), 3. 05 (t, J= 4. 8 Hz, 4H), 3. 49 (t, 4H), + uoro-2, 4-pyrimidinediamine 3. 90 (m, 1 H), 4. 05 (q, J= 7. 2 Hz, 2H), 6. 48 (d, J= 4. 5 Hz, 1 H), 7. 03 (t, J= 8. 1 Hz, 1 H), 7. 16 (d, J= 6. 6 Hz, 1 H), 7 1 H NMR (DMSO-d6) : d 1. 57 (m, 4H), 1. 72 (m, 2H), 1. 96 (m, 2H), 4. 32 N2- (4-Benzamidophenyi)-N4-cyclopentyl-5-fluoro-2, 4- (q, J= 7. 5 Hz, 1H), 7. 29 (d, J= 6. 3 Hz, 1 H), 7. 46-7. 69 (m, 7H), 7. 81 (d, + pyrimidinediamine J= 3. 9 Hz, 1 H), 7. 92 (d, J= 9. 6 Hz, 2H), 8. 97 (s, 1 H), 10. 05 (s, 1 H) ; 19F NMR (282 MHz, DMSO-d6) : d-166. 85 ; LCMS : x , a v a ° LD LD Lad ,..'.. i yy, :. x.,, r N'tmie w.. s s,. : ... w : r-, . x : : : _ :, aMN W. u , rcW. , _a . . z., : t tase f s k ..- T tase Tr ase T y Gorn ound = . s ° r... . rYP YP rYP P_ Y ff r w u'iN e Pt m, r_. < o. x z HMC CHMC 11 t CHMC C Number. H P., M'h F a'A r, y, r tu ° , I E 3 t 8 0 1 H NMR (DMSO-d6) : d 1. 60 (m, 4H), 1. 74 (m, 2H), 1. 96 (m, 2H), 3. 85 N2- (2-Aminocarbonyl-5-benzoxy-4-methoxyphenyl)-N4- (s, 3H), 4. 43 (q, J= 6. 9 Hz, 1 H), 5. 24 (s, 2H), 7. 06 (s, 1 H), 7. 31-7. 50 + 1171 + _ cyclopentyl-5-fluoro-2, 4-pyrimidinediamine (m, 6H), 8. 53 (d, J= 7. 2 Hz, 1 H), 8. 70 (d, J= 6. 9 Hz, 1 H) ; 19F NMR (282 MHz, DMSO-d6) : d-155. 92 ; LCMS : ret. time : 1H NMR (DMSO-d6) : d 1. 55 (m, 4H), 1. 71 (m, 2H), 1. 94 (m, 2H), 3. 09 N2- [4- (N-Acetyl-N-methylamino) phenyl]-N4-cyclopentyl-5- (s, 3H), 3. 31 (s, 3H), 4. 32 (q, J= 7. 2 Hz, 1H), 7. 13 (d, J= 9. 0 Hz, 2H), 1172 +- fluoro-2, 4-pyrimidinediamine 7. 34 (d, J= 7. 2 Hz, 1 H), 7. 77 (d, J= 8. 7 Hz, 2H), 7. 83 (d, J= 3. 9 Hz, 1H), 9. 14 (s, 1H) ; 19F NMR (282 MHz, DMSO-d6) 1H NMR (DMSO-d6) : d 1. 55 (m, 4H), 1. 71 (m, 2H), 1. 93 (m, 2H), 3. 62 1173 N4-Cyclopentyl-5-fluoro-N2- [3- (N-2-imidazolin-2- (s, 4H), 4. 31 (q, J= 6. 6 Hz, 1 H), 6. 71 (d, J= 7. 8 Hz, 1 H), 7. 25 (t, J= 7. 8 1173-- yl) aminophenyq-2, 4-pyrimidinediamine Hz, 1 H), 7. 40 (d, J= 7. 2 Hz, 1 H), 7. 53 (d, J= 7. 5 Hz, 1 H), 7. 84 (s, 2H), 8. 22 (s, 1H), 9. 23 (s, 1H), 10. 54 (br, 1 1H NMR (DMSO-d6) : d 1. 33 (m, 5H), 1. 65 (d, 1H), 1. 78 (m, 2H), 1. 92 N2- (4-Benzamidophenyl)-N4-cyclohexyl-5-fluoro-2, 4- (m, 2H), 3. 88 (m, 1 H), 7. 22 (d, J= 8. 1 Hz, 1 H), 7. 46-7. 69 (m, 7H), 7. 81 + + 1174-- pyrimidinediamine (d, J= 3. 9 Hz, 1 H), 7. 92 (d, J= 6. 6 Hz, 2H), 8. 99 (s, 1 H), 10. 05 (s, 1 H) ; 19F NMR (282 MHz, DMSO-d6) : d-166. 98 ; LC 1H NMR (DMSO-d6) : d 1. 36 (m, 5H), 1. 65 (d, 1H), 1. 79 (m, 2H), 1. 88 N2- (2-Aminocarbonyl-5-benzoxy-4-methoxyphenyl)-N4- (m, 2H), 3. 85 (s, 3H), 4. 05 (m, 1H), 5. 24 (s, 2H), 7. 06 (s, 1H), 7. 31-+ 1175 + cyclohexyl-5-fluoro-2, 4-pyrimidinediamine 7. 50 (m, 6H), 8. 44 (d, J= 7. 5 Hz, 1H), 8. 70 (d, J= 6. 9 Hz, 1H) ; 19F NMR (282 MHz, DMSO-d6) : d-156. 00 ; LCMS : ret. tim 1 H NMR (DMSO-d6) : d 1. 32 (m, 5H), 1. 64 (d, 1 H), 1. 74 (m, 2H), 1. 90 1176 N2- [4- (N-Acetyl-N-methylamino) phenyt]-N4-cyclohexyl-5- (m, 2H), 3. 09 (s, 3H), 3. 32 (s, 3H), 3. 88 (m, 1H), 7. 13 (d, J= 8. 4 Hz, + 1176 + fluoro-2, 4-pyrimidinediamine 2H), 7. 26 (d, J= 7. 5 Hz, 1 H), 7. 75 (d, J= 8. 7 Hz, 2H), 7. 83 (d, J= 3. 9 Hz, 1H), 9. 15 (s, 1H) ; 19F NMR (282 MHz, DMSO- N4-Cyclohexyl-5-fluoro-N2- [3- (N-2-imidazolin-2- 1177 LCMS : ret. time : 6. 42 min. ; purity : 86. 49% ; MS (m/e) : 370. 47 (MH+). yl) aminophenyl]-2, 4-pyrimidinediamine 1H NMR (DMSO-d6) : d 7. 22 (t, J= 7. 8 Hz, 1 H), 7. 31 (d, J= 9. 3 Hz, N2, N4-Bis [3- (oxazol-2-yl) phenyl]-5-fluoro-2, 4- 2H), 7. 40 (t, J= 8. 1 Hz, 1 H), 7. 46 (d, J= 7. 5 Hz, 1 H), 7. 64 (d, J= 7. 5 1178 pyrimidinediamine Hz, 1H), 7. 81 (d, J=7. 8 Hz, 1H), 8. 08 (d, J= 7. 5 Hz, 1 H), 8. 11 (d, 2H), 8. 18 (d, J= 3. 6 Hz, 1H), 8. 24 (t, J= 1. 8 Hz, 1 . ;. -j"--''. -\% -T'- :- :'-'""-' :.'--. S'S'WiS n ! n) D '-'-KaB'' '.. :'.''. ss - " Tryptase, Tryptase, Tryptase, fp _. syk, Ndtber.-I CHMC, CHMC, CHMC, llpt 'IgE, 3pt [gE, 8pt lono, 3pt 1H NMR (DMSO-d6) : d 1. 53-1. 71 (m, 2H), 2. 11-2. 32 (m, 4H), 3. 16 (d, N4-Cydobuty)-5-fiuoro-N4-methy !-N2- [3- (oxazo !-2-y !) phenyi]- J= 3. 6 Hz, 3H), 4. 89 (m, J= 8. 4 Hz, 1H), 7. 36 (d, J= 0. 9 Hz, 1H), 7. 40 + 2, 4-pyrimidinediamine (t, J= 7. 8 Hz, 1 H), 7. 57 (m, 2H), 8. 06 (d, J= 7. 2 Hz, 1 H), 8. 20 (d, J= 0. 9 Hz, 1 H), 8. 57 (t, J= 1. 8 Hz, 1 H), 9. 68 (s, 1H NMR (DMSO-d6) : d 1. 83 (m, 1H), 2. 16 (m, 1H), 2. 40 (dd, J= 5. 1, (S)-N4- (1-Benzy ! pyrroMin-3-y))-5-Huoro-N2- (4- 9. 3 Hz, 1H), 2. 58 (m, 2H), 2. 89 (dd, J= 7. 2, 9. 3 Hz, 1 H), 2. 99 (t, J= 4. 8 + 1180 + morpholinophenyl)-2, 4-pyrimidinediamine l z, 4H), 3. 58 (d, J= 1. 8 Hz, 2H), 3. 72 (t, J= 4. 8 Hz, 4H), 4. 41 (m, 1 H), 6. 78 (d, J= 9. 0 Hz, 2H), 7. 22 (m, 1H), 7. 2 1H NMR (DMSO-d6) : d 1. 81-1. 87 (m, 1H), 2. 03 (s, 3H), 2. 14-2. 23 (m, (S)-N2- [4- (4-Acety ! p ! perazino) pheny !]-N4- (1-benzy) pyrro ! ! din- 1 H), 2. 40 (dd, J= 5. 7, 9. 6 Hz, 1 H), 2. 56 (m, 2H), 2. 89 (dd, J= 7. 2, 9. 3 + 1181 + 3-yl)-5-fluoro-2, 4-pyrimidinediamine Hz, 1H), 2. 95 (t, J= 5. 1 Hz, 2H), 3. 02 (t, J= 5. 1 Hz, 2H), 3. 55 (m, 4H), 3. 58 (s, 2H), 4. 41 (m, 1 H), 6. 81 (d, J= 9. 0 _ (S)-N4- (1-Benzy ! pyrro ! ! din-3-y !)-5-f) uoro-N2- [4- (4- 1182 LCMS : ret. time : 1. 17 min. ; purity : 95. 41% ; MS (m/e) : 462. 15 (MH+). methylpiperazino) phenyl]-2, 4-pyrimidinediamine 1H NMR (DMSO-d6) : d 1. 19 (t J= 7. 2 Hz 3H) 1. 83 (m 1H) 2. 17 (m, (S)-N4- (1-Benzy) pyrro) idin-3-y !)-N2- [4- (4-/./. . 1H) 2. 40 (dd J=5. 1 9. 0Hz 1H) 2. 56 (m 2H) 2. 89 (dd J=7. 2, 9. 0 1 H), 2. 40 (dd, J= 5. 1, 9. 0 Hz, 1H), 2. 56 (m, 2H), 2. 89 (dd. J= 7. 2, 9. 0 1183 ethoxycarbony ! piperazino) phenyn-5-f) uoro-2, 4- + Hz, Hz, 1H), 2. 98 (t, J= 5. 1 Hz, 4H), 3. 49 (t, J= 5. 1 Hz, 4H), 3. 58 (d, J= 1. 8 jyrimidinediamine Hz, 2H), 4. 05 (q, J= 7. 2 Hz, 2H), 4. 44 ( Hz, 2H), 4. 05 (q, J= 7. 2 Hz, 2H), 4. 44 ( 1184 LCMS : ret. time : 6. 81 min. ; purity : 100% ; MS (m/e) : 449 (MH+). + morphoiinopheny !)-2, 4-pyrimidinediamine 1H NMR (DMSO-d6) : d 1. 82-1. 88 (m, 1H), 2. 02 (s, 3H), 2. 16-2. 26 (m, (S)-N2- [3- (4-Acetytpiperazino) pheny !]-N4- (benzy ! pyrroMin-3- 1H), 2. 37 (dd, J= 5. 7, 9. 0 Hz, 1 H), 2. 56 (m, 2H), 2. 92 (dd, J= 6. 9, 9. 0 + 1185 + yl)-5-fluoro-2, 4-pyrimidinediamine Hz, 1H), 3. 03 (t, J= 5. 1 Hz, 2H), 3. 10 (t, J= 5. 1 Hz, 2H), 3. 56 (m, 4H), 3. 58 (s, 2H), 4. 53 (m, 1 H), 6. 47 (d, J= 8. 4 (S)-N4- (1-Benzy) pyrro ! ! din-3-y !)-5-f ! uoro-N2- [3- (4- 1186 LCMS : ret. time : 2. 79 min. ; purity : 97. 87%-MS (m/e) : 462 (MH+). + methy) piperazino) phenyl]-2, 4-pyrimidinediamine 1H NMR (DMSO-d6) : d 1. 18 (t J= 7. 2 Hz 3H) 1. 82 (m J= 6. 5 Hz (S)-N4- (1-Benzyipyrro ! idin-3-yi)-N2- [3- (4- 1 H), 2. 19 (m, 1 H), 2. 37 (dd, J= 5. 7, 9. 0 Hz 1 H) 2. 56 m 2H 2. 91 1H), 2. 19 (m. 1H), 2. 37 (dd, J=5. 7, 9. 0Hz, 1H), 2. 56 (m, 2H), 2. 91 1187ethoxycarbony ! piperazino) phenyi]-5-f) uoro-2, 4- + ... (dd, J= 7. 2, 9. 0 Hz, 1 H), 3. 06 (t, J= 5. 1 Hz, 4H), 3. 51 (t, J= 5. 1 Hz, pyrimid ! nediamine 4H), 3. 58 (s, 2H), 4. 04 (q, J= 7. 2 Hz, 2H), 4. 55 ( LD LD :"-Fv"v,. s :.. Y_.., : t o. >'.. :'y ;, : : _., a.. ; ... :... aw r x = te s _ p LD x > LD LD ra.. HS.. s f 3 °s 4 C c s : . Th 3. a a. t e T tase T tase T ase s k Gom ourid. P, fP_ Y rYP. rYP, rY mt. S rvi u HM 4t 1, C ? ft n w , ,, Com u d Nare = a, s n , x 1 I ".., v."...."" :. n r : ; CHMC CHMC CHMC 11 t Number " ; r. <. s P , 4, a b4H. u nM,- : 4E : rH e tvua N. 4 t ar ° 't I E t lono 3 t IE3 8 9 9 P P P 1H NMR (DMSO-d6) : d 1. 61-1. 73 (m, 2H), 2. 01-2. 14 (m, 2H), 2. 25- 1188 N4-Cyclobutyl-5-fluoro-N2- [3-chloro-4- (4- 2. 33 (m, 2H), 2. 29 (s, 3H), 2. 55 (m, 4H), 2. 91 (t, 4H), 4. 47 (m, J= 8. 1 + zu 1188 methylpiperazino) phenyl]-2, 4-pyrimidinediamine Hz, 1 H), 7. 03 (d, J= 8. 7 Hz, 1 H), 7. 43 (dd, J= 2. 7, 9. 0 Hz, 1 H), 7. 69 (d, J= 7. 2 Hz, 1 H), 7. 84 (d, J= 3. 6 Hz, 1 H), 8. 07 1 H NMR (DMSO-d6) : d 2. 28 (s, 6H), 2. 86 (d, J= 4. 8 Hz, 3H), 2. 92 (m, N4- (3, 4-Dihydro-2H, 4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro-N2- [3- 2H), 3. 13 (q, J= 10. 8 Ho, 2H), 3. 49 (m, 4H), 3. 74 (d, J= 13. 2 dz, 2H), 1189 (4-methylpiperazino) phenyl]-2, 4-pyrimidinediamine Bis p-2H), 3. 13 (q, J= 10. 8 Hz, 2H), 3. 49 (m, 4H), 3. 74 (d, J= 13. 2 Hz, 2H), + + 4. 15 (t, J= 4. 2 Hz, 2H), 6. 66 (d, J= 7. 8 Hz, 1H), 6. 96 (d, J= 8. 7 Hz, Toluenesulfonic Acid Salt 1H), 7. 08 (d, J= 8. 4 Hz, 4H), 7. 17 (m, 4H), 7. 1H NMR (DMSO-d6) : d 2. 81 (d, J= 4. 5 Hz, 3H), 3. 08 (m, 4H), 3. 48 (d, N4- (3, 4-Dihydro-2H, 4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro-N2- [3- J= 11. 7 Hz, 2H), 3. 55 (t, 2H), 3. 72 (d, J= 11. 7 Hz, 2H), 4. 18 (t, J=4. 2 1190 (4-methylpiperazino) phenyl-2, 4-pyrimidinediamine Bis + + Hz, 2H), 6. 65 (d, J= 9. 0 Hz, 1H), 6. 74 (d, J= 8. 1 Hz, 1H), 7. 15 (t, J= Hydrogen Chloride Salut 8. 1 Hz, 1 H), 7. 36 (d, J= 8. 1 Hz, 1 H), 7. 41 1H NMR (DMSO-d6) : d 1. 14 (m, 1H), 1. 33 (m, 4H), 1. 63 (d, 1 H), 1. 74 1191 N2- [3-Chloro-4- (4-methylpiperazino) phenyl]-N4-cyclohexyl-5- (m, 2H), 1. 90 (m, 2H), 2. 21 (s, 3H), 2. 45 (m, 4H), 2. 88 (t, 4H), 3. 89 (m, + + 1191 + + fluoro-2, 4-pyrimidinediamine 1 H), 7. 01 (d, J= 8. 7 Hz, 1 H), 7. 24 (d, J= 7. 8 Hz, 1 H), 7. 39 (dd, J= 2. 4, 8. 4 Hz, 1H), 7. 81 (d, J= 3. 9 Hz, 1 H), 8. 0 1 H NMR (DMSO-d6) : d 1. 65-1. 76 (m, 2H), 2. 04 (s, 3H), 2. 08-2. 26 (m, 1192 N2- [4- (4-Acetylpiperazino) phenyl]-N4-cyclobutyl-5-fluoro-2, 4- 4H), 3. 10 (t, 2H), 3. 17 (t, 2H), 3. 58 (t, 4H), 4. 43 (m, J= 7. 8 Hz, 1H), + pyrimidinediamine Bis Hydrogen Chloride Salt 7. 02 (d, J= 8. 1 Hz, 2H), 7. 37 (d, J= 8. 4 Hz, 2H), 8. 00 (d, J= 5. 1 Hz, 1 H), 9. 10 (br, 1 H), 10. 02 (br, 1 H) ; 19F NMR (2 1 H NMR (DMSO-d6) : d 1. 24 (m, 4H), 1. 37 (q, 1 H), 1. 62 (d, 1 H), 1. 76 1193 N4-Cyclohexyl-5-fluoro-N2- [4- (4-methylpiperazino) phenyl]-2, 4- (d, 2H), 1. 85 (d, 2H), 2. 28 (s, 6H), 2. 86 (d, J= 3. 9 Hz, 3H), 2. 92 (d, + pyrimidinediamine Bis p-Toluenesulfonic Acid Salt 2H), 3. 15 (m, 2H), 3. 52 (d, 2H), 3. 80 (d, 3H), 7. 00 (d, J= 9. 3 Hz, 2H), 7. 09 (d, J= 7. 8 Hz, 4H), 7. 36 (d, J= 9. 3 Hz, 1H NMR (DMSO-d6) : d 1. 33 (m, 5H), 1. 61 (d, 1H), 1. 77 (d, 2H), 1. 87 1194 N4-Cyclohexyl-5-fluoro-N2- [4- (4-methylpiperazino) phenyl]-2, 4- (d, 2H), 2. 79 (d, J= 4. 8 Hz, 3H), 3. 09 (m, 4H), 3. 47 (d, 2H), 3. 78 (d, + pyrimidinediamine Bis Hydrogen Chloride Salt 2H), 3. 83 (m, 1 H), 7. 01 (d, J= 9. 0 Hz, 2H), 7. 39 (d, J= 9. 0 Hz, 2H), 8. 10 (d, J= 5. 4 Hz, 1 H), 9. 08 (d, J= 8. 1 Hz, 1H) long, 8put 3put 19 . --- : t .''s'. ''. ; ; ;, :, . :, , " 5 j, , '', =o-r" ; ^x : r 3 pp" d-1 . 7 \ (j k -. <' J r'''''°"'' r-'ij- . 1 R ( (m, AVA) dd, N mer-. bye 9 > ; erazuolPh 8. T Hz, 1H1, 7. 36 ld 2. 4 Hz, . ethY p p 8. 07 (d , 1. 87 (m 1H, 2. 22 2-L3yChtoro-- (4 m 1. 82 ld, J= 3. 9 Hz, IHI,, 0. 91 lm. 2H) d 0. 69 (tn 2H), 7. OA (d, J= 9. 0 Hz + 1N hIMR DMd6) 4H, 6. 31 tr 1H, 9. 52 (br 1195 uoro-2, 4-Pnmanediamne 8. 02 ts Hl, 9. 14 (br, 1Hl 195 uoto-I-Plflim*'d"'4") 2. 90 (t, ; perazino) PhenYfl-N4'3-YloproPY 1H, Z. 79 (s,'1H1 . 19F NMR 282 MNz, DMSa _ 4-methY P 1H1, Z. 51 (bt 12. 07 (br 1H), t 4Hl ro-4 l inedv lHl, 2. 21 (s, 3H),'$ 8C H, th) Tt + 2 g. Chlo DMSO-d6) d 6. 94 ld, . g fluoro-2, 4-PJrmd 6 I-5-YO 1H NMR t 2N), 6. 53 t. H5 ('dd, J 2. 7, 8. 7 Hx 119 H_pYrazo = 4. 2 Hz, 7. 12 (d, di 8. 4 Hz, 1H, 7. 46 ( ^4_g, _dihYdro- 2H), A. 09 lt g. 04 td. 18 (m, ZH), 2. 25- oro-2, WPYrimidinediamne (, J $. z, Hl, , 414 2. 82"', j-7 5 Viz, 8 ( h ox 1HO MR ( d 1. 67-Hz N)'2N, 2. 11-2'4H), 3. 35 lm 2N ? k azin-6-YS u d J= 2. 7 Hz, 1H), N2-L3'Ghio 8. 7 HZ, 1) 7. 40 1197 ZH, H'5'PYid [1, 1 pMSO-d6). 1H N m, 2H), 2. 82 td, J A. 5 3. 02-32° (m 2. 3 (=7. 5HZ, 1N), 7. 18 (d 7. 97 (d, J : 2. 1 Hz, 1H) Hl, . 63 (d'H), 1. 78 n Chioride Salt 3. 48 (m. 2H), 4. 44 (m° _ 4-methyPperazino) PhenYl-N4yCY°lobuY"'_ 8. 7 Hz, H)'1H), 1. 36 (m, 3. 34 (dd, J=2. 4, _ d 1. 17 (m p0-3. 20 (m H + 2_3-Chioro- l dinediamine Bi5 HYdroge 1H NMR lDMSdd6y 2, 83 (d, J 4. 8 Hz, 3H) 3. 8. 7 Hz,'1H), 7. 36 ldd, 1198 uoro-2, -p'm -5 tm, 2H1, 1. 861my2H), 3. 87 (m,'lN1, 7. 16 td = 2. 4, 9. 0 Hz, 1H1, . 96 (d, J= 2. 4 Nz, H) _4-l'methYPperazino) PhenY>>-yclohexy ro drogen hloride Satt (m, 2H, 3, 8 (m 2 3. Chlo 0 min. ; PUrity : 89. 34°l0 ; NiS (mle) : 385 IMNk'-r amine Bis HY rimidined 1199 uQro-2, -PY 399. 24 (MHk' - N2_3_, rethY''4_ LCMS : ret. time : 9 . et. time-1. 3 mn. ; Purity : 9. 3°0 ; tnS (tnle. y4_yclopenty-5-fluoro n ]-2, -PYrimidinediamne 1200 ethylPiperaznoPhe Y p, Mg mtel : 423 lMN'' _-fituor-N2r3methy-t4 LGMS. . amine henyp-2-PYrimdined ; 10. 35 min. ; Purity : 96. 7210> NCycloheXl 5 1201 mehypPerazn°) p g_methY''t4 LGM : ret. time -1H-PYazol-5-Yl-5'fluoro-NZ'Z 'amine 4_g_CyclopropY _Z _pYrimdined o N1S (mle : 451 (MH'' 3 M. time : 10. 77 min. ; P 122 methYPperzino) Pheny 1 _N2 L'S : ret urity : 93.' l, 4-Dihydro-2H, 4H'5-pYidL1 °xazn--YO5 uoo Hra P f w 1203methy-4' 218 u kan r _ -.. ry MY lu =lad LD LD _ :". w. "", w'.., NY IgE, 3pt IgE, 8pt lono, 3pt zm t . cr c t. T tase T tase T tase f s k Gotri cund-, m P, rYP. YP, P_ Y o a s . .- «,,-, , s. . : HMC CHMC CHMC 11 t C Nureber. P s m 9, 9 P P , r P t a a^fia -. K'k. 5-Fluoro-N4-isopropyl-N2- [4- (4-methylpiperazino) phenyl]-2, 4- pyrimidinediamine pyrimidinediamine N2- [3-Chloro-4- (4-methylpiperazino) phenyl]-5-fluoro-N4- 1205 LCMS : ret. time : 5. 14 min. ; purity : 92. 47% ; MS (m/e) : 379 (MH+). + isopropyl-2, 4-pyrimidinediamine 5-Fluoro-N4-isopropyl-N2- [3-methyl-4- (4- 1206 LCMS : ret. time : 1. 99 min. ; purity : 93. 17% ; MS (m/e) : 359 (MH+). + methylpiperazino) phenyl]-2, 4-pyrimidinediamine N4-Cyclobutyl-5-fluoro-N2- [4- (4-methylpiperazino)-3- 1207 LCMS : ret. time : 15. 09 min. ; purity : 94. 19% ; MS (m/e) : 425 (MH+). + trifluoromethylphenyl]-2, 4-pyrimidinediamine N4-Cyclopentyl-5-fluoro-N2- [4- (4-methylpiperazino)-3- 1208 LCMS : ret. time : 15. 32 min. ; purity : 92. 83% ; MS (m/e) : 439. 30 (MH+). + trifluoromethylphenyl]-2, 4-pyrimidinediamine N4-Cyclohexyl-5-fluoro-N2- [4- (4-methylpiperazino)-3- 1209 LCMS : ret. time : 15. 74 min. ; purity : 95. 26% ; MS (m/e) : 453 (MH+). + trifluoromethylphenylj-2, 4-pyrimidinediamine 5-Fluoro-N4-isopropyl-N2- [4- (4-methylpiperazino)-3- 1210 LCMS : ret. time : 7. 29 min. ; purity : 88. 24% ; MS (m/e) : 413. 05 (MH+). + trifluoromethylphenyl]-2, 4-pyrimidinediamine N4-(3-CyCopropyi-1 H-pyrazoi-5-yl)-5-fluoro-N2-[(4- 1211 methylpiperazino)-3-trifluoromethylphenyl]-2, 4- LCMS : ret. time : 8. 27 min. ; purity : 94. 19% ; MS (m/e) : 477 (MH+). + pyrimidinediamine 2-chloro-5-fluoro-N4- (1, 2, 2, 6, 6-pentamethylpiperidin-4-yl)-4- 1212 LCMS : ret. time : 9. 57 min. ; purity : 90. 78% ; MS (m/e) : 301. 19 (MH+). pyrimidineamine 2-chioro-N4-(1-ethoxywarbonylpiperidin-4-yl)-5-fluoro-4-I 1213 LCMS : ret. time : 10. 29 min. ; purity : 94% ; MS (m/e) : 303. 04 (MH+). pyrimidineamine 5-Fluoro-N4-isopropyl-N2- [3- (4-methylpiperazino) phenyl]-2, 4- 1214 LCMS : ret. time : 4. 63 min. ; purity : 97. 16% ; MS (m/e) : 345. 41 (MH+). pyrimidinediamine N4-tert-Butyl-5-fluoro-N2- [4- (4-methylpiperazino) phenyl]-2, 4- 1215 LCMS : ret. time : 2. 80 min. ; purity : 97. 03% ; MS (m/e) : 359 (MH+). pyrimidinediamine N4-tert-Butyi-5-fluoro-N2- [3- (4-methyipiperazino) phenyl]-2, 4- 1216 LCMS : ret. time : 7. 81 min. ; purity : 94. 56% ; MS (m/e) : 359. 23 (MH+). pyrimidinediamine r,. s. N ; 4me, h ;, N, er _ D D D . fr r.,,,.. ., i rv'r".. CE3HI. 44u u f :., I roF..,. i t o °n ; ; C m t e Tr tase T tas s k Gom ountl = ; y s . < : T as, e,, rYP YP rYP fP_ Y C udNa e. -P. - D : ka,-, m o n m _ C. "_N a YA s CHMC CHMC CHMC 11 t Ntirnber °"_, , N > >, P 3 i .. as < s., t k I E 3 t I E 8 t lono 3 t n, 9, P 9 P, P N4-tert-Butyl-N2- [3-chloro-4- (4-methylpiperazino) phenyl]-5- 1217 LCMS : ret. time : 10. 53 min. ; purity : 93. 25% ; MS (m/e) : 393 (MH+). + fluoro-2, 4-pyrimidinediamine N4-tert-Butyl-5-fluoro-N2- [3-methyl-4- (4- 1218 LCMS : ret. time : 4. 35 min. ; purity : 87. 23% ; MS (m/e) : 373. 26 (MH+). + methylpiperazino) phenyl]-2, 4-pyrimidinediamine 5-Fluoro-N2- [4- (4-methylpiperazino) phenylj-N4- (1, 2, 2, 6, 6- 1219 LCMS : ret. time : 1. 30 min. ; purity : 95. 14% ; MS (m/e) : 456. 63 (MH+). pentamethylpiperidin-4-yl)-2, 4-pyrimidinediamine N4-Cyciobutyi-5-fluoro-N2-[3-methyl-4-(4- 1220 LCMS : ret. time : 9. 16 min. ; purity : 93. 00% ; MS (m/e) : 371. 26 (MH+). + methylpiperazino) phenyl]-2, 4-pyrimidinediamine 5-Fluoro-N2- [3- (4-methylpiperazino) phenyl]-N4- (1, 2, 2, 6, 6- 1221 LCMS : ret. time : 1. 40, 1. 71 min. ; purity : 95% ; MS (m/e) : 456. 30 (MH+). pentamethylpiperidin-4-yl)-2, 4-pyrimidinediamine N2- [3-Chloro-4- (4-methylpiperazino) phenyl]-5-fluoro-N4- 1222 LCMS : ret. time : 1. 44, 1. 74 min. ; purity : 97% ; MS (m/e) : 490. 11 (MH+). (1, 2, 2, 6, 6-pentamethylpiperidin-4-yl)-2, 4-pyrimidinediamine 1223 5-Fluoro-N2- [3-methyl-4- (4-methylpiperazino) phenyl]-N4- LCMS : ret. time : 1. 46, 2. 03 min. ; purity : 100% ; MS (m/e) : 470. 29 (1, 2, 2, 6, 6-pentamethylpiperidin-4-yl)-2, 4-pyrimidinediamine (MH+). 5-Fluoro-N4- (1, 2, 2, 6, 6-pentamethylpiperidin-4-yi)-N2- [3- 1224trifluoromethyl-4- (4-methylpiperazino) phenyl]-2, 4- LCMS : ret. time : 1. 46, 2. 70 min. ; purity : 97% ; MS (m/e) : 524. 23 (MH+). pyrimidinediamine N4- (1-Ethoxycarbonylpiperidin-4-yl)-5-fluoro-N2- [4- (4- 1225 LCMS : ret. time : 6. 13 min. ; purity : 95. 45% ; MS (m/e) : 458 (MH+). + methyipiperazino) phenyi]-2, 4-pyrimidinediamine N4- (1-Ethoxycarbonylpiperidin-4-yl)-5-fluoro-N2- [3- (4- 1226 LCMS : ret. time : 9. 94 min. ; purity : 97% ; MS (m/e) : 458. 27 (MH+). + methyipiperazino) phenyl]-2, 4-pyrimidinediamine N2- [3-Chloro-4- (4-methylpiperazino) phenylj-N4- (1- 1227 LCMS : ret. time : 14. 71 min. ; purity : 98. 79% ; MS (m/e) : 492 (MH+). + ethoxycarbonylpiperidin-4-yl)-5-fluoro-2, 4-pyrimidinediamine N4- (1-Ethoxycarbonylpiperidin-4-yl)-5-fluoro-N2- [3-methyl-4- 1228 LCMS : ret. time : 9. 26 min. ; purity : 97. 16% ; MS (m/e) : 472 (MH+). + (4-methylpiperazino) phenyl]-2, 4-pyrimidinediamine , <"4 X w w ; m < a m LD LD LD LD LD tase, Tryptase, fp Tryptase, Tryp __pyk, Compound Compoun 1 lpt CHMC, CHMC, CHMC, Number IgE, 3pt IgE, 8pt lono, 3pt N4- (1-Ethoxycarbony ! piperidin-4-yi)-5-fluoro-N2- [4- (4- 1229 methyipiperazino)-3-trifluoromethylphenyl]-2, 4-LCMS : ret. time : 15. 48 min. ; purity : 97. 96% ; MS (m/e) : 526 (MH+). + pyrimidinediamine N4-Cyclobutyl-N2-[2-(4-ethyipiperazino) pyrid-5-yl]-5-fluoro-2 4 1230 LCMS : ret. t ! me : ret. 52 m ! n. ; purity : 94. 98% ; MS (m/e) : 372 (MH+). + pyrimidinediamine pyrimid ! nediamine 4-Cydopentyi-N2- [2- (4-ethyipiperazino) pyrid-5-y)]-5-fiuoro- 1231 LCMS : ret. time : 6. 27 min. ; purity : 90. 61% ; MS (mule) : 386. 36 (MH+). + 2, 4-pyrimidinediamine N4-Cydohexy !-N2- [2- (4-ethy ! piperazino) pyr ! d-5-yi]-5-f ! uoro- 1232 LCMS : ret. t ! me : 6. 83 min. ; purity : 97. 62% ; MS (m/e) : 400 (MH+). + 2, 4-pyrimidinediamine 2, 4-pyrimidinediamine 4-tert-Butyi-5-f) uoro-N2- [4- (4-methy ! piperazino)-3- 1233 LCMS : ret. time : 15. 37 min. ; purity : 96. 00% ; MS (m/e) : 427 (MH+). + trifluoromethyiphenyl]-2, 4-pyrimidinediamine trifluoromethylphenyl]-2, 4-pyrimidinediamine 1234 LCMS : ret. time : 1. 44, 1. 80 min. ; purity : 96% ; MS (m/e) : 360. 28 (MH+). + pyrimidinediamine pyrimidinediamine N4-Cydobutyi-5-f) uoro-N2- [3-hydroxymethy !-4- (4- I 1 1 1235 LCMS : ret. time : 1. 82 min. ; purity : 90% ; MS (m/e) : 387. 14 (MH+). methyipiperazino) phenyl]-2, 4-pyrimidinediamine N4-tert-Butyi-N2-[2-(4-ethyipiperazino) pyrid-5-yi]-5-fluoro-2 4- 1236 LCMS : ret. time : 4. 27 min. ; purity : 100% ; MS (m/e) : 374. 18 (MH+). pyrimldinediamine l pyrimidinediamine 1237 LCMS : ret. time : 1. 27 min. ; purity : 99. 58% ; MS (m/e) : 471. 73 (MH+). pentamethyipiperidin-4-yl)-2, 4-pyrimidinediamine N4- (1-Ethoxycarbony) piperidin-4-yi)-N2- [2- (4- 1238 LCMS : ret. time : 7. 03 min. ; purity : 94. 74% ; MS (m/e) : 473 (MH+). ethylpiperamno) pyrid-5-yl]-5-fluoro-2, 4-pyrimidinediamine N4-Cyciobuty !-5-fiuoro-N2- [2- (4-methyipiperazino)-3- 1239 LCMS : ret. time : 9. 65 min. ; purity : 97. 08% ; MS (mule) : 372. 11 (MH+). methylpyrid-5-yi]-2, 4-pyrimidinediamine methylpyrid-5-yl]-2, 4-pyrimidinediamine 1240 LCMS : ret. time : 10. 50 min. ; purity : 91. 36% ; MS (m/e) : 385. 85 (MH+). + nethyipyrid-5-yl]-2, 4-pyrimidinediamine methylpyrid-5-yl]-2, 4-pyrimidinediamine 1241 LCMS : ret. time : 9. 22 min. ; purity : 93. 96% ; MS (m/e) : 400. 11 (MH+). + methyipyrid-5-yl!]-2, 4-pyrimidinediamine ......... a.,.. r fi : t. choc, llpt a LD LD N'lad . _.. 4 4,. rk4 O,'. .. iY x,., : :-i.., 4.. h. , a7ra S bd _ sk _ , , Tr tase T tase T tase wa=u fP_ Y a. . = YP, rYP rYP Coin ound : a, z n nI - C ? ITf a CId a f : HMC CHMC 11 t , at CHMC, C,, Number . P 5. a w _ I E 3 t I E 8 t lono 3 aP n m P t 5-Fluoro-N4-isopropyl-N2- [2- (4-methylpiperazino)-3- 1242 LCMS : ret. time : 4. 21 min. ; purity : 91. 67% ; MS (m/e) : 360. 15 (MH+). + methylpyrid-5-yl]-2, 4-pyrimidinediamine N4-Cyclobutyl-5-fluoro-N2- [3-hydroxymethyl-4- (4- 1243 methylpiperazino) phenyl]-2, 4-pyrimidinediamine Bishydrogen LCMS : ret. time : 1. 43, 1. 85 min. ; purity : 94% ; MS (m/e) : 387. 05 (MH+). + chloride salut chloride salt 1244 LCMS : ret. time : 7. 05 min. ; purity : 95. 56% ; MS (m/e) : 471. 26 (MH+). (1, 2, 2, 6, 6-pentamethylpiperidin-4-yl)-2, 4-pyrimidinediamine N4-Cydobutyt-5-f) uoro-N2-f2- (4-methyipiperazino)-4- 1245 LCMS : ret. time : 9. 37 min. ; purity : 92. 45% ; MS (m/e) : 371. 99 (MH+). methyipyrid-5-yi]-2, 4-pyrimidinediamine N4-Cyciopentyi-5-f) uoro-N2- [2- (4-methy ! piperazino)-4- 1246 LCMS : ret. time : 10. 12 min. ; purity : 95. 69% ; MS (m/e) : 386. 09 (MH+). methyipyrid-5-yl]-2, 4-pyrimidinediamine N4-CyCohexyl-5-fluoro-N2-[2-(4-methyipiperazino)-4- 124 I LCMS : ret. time : 10. 35 min. ; purity : 92. 30% ; MS (m/e) : 400. 13 (MH+). + methylpyrid-5-yl]-2, 4-pyrimidinediamine 5-Fluoro-N4-isopropyi-N2- [2- (4-methyipiperazino)-4- 1248 LCMS : ret. time : 6. 77 min. ; purity : 84. 20% ; MS (m/e) : 359. 97 (MH+). methylpyrid-5-ylj-2, 4-pyrimidinediamine methylpyrid-5-yi]-2, 4-pyrimidinediamine 1249 LCMS : ret. time : 1. 48, 2. 77 min. ; purity : 98% ; MS (m/e) : 471. 22 (MH+). (1, 2, 2, 6, 6-pentamethylpiperidin-4-yi)-2, 4-pyrimidinediamine 5-Fluoro-N4- (1-hydroxymethylcyclopent-1-yl)-N2- [3-methyl-4- 1250 LCMS : ret. time : 11. 16 min. ; purity : 99. 47% ; MS (m/e) : 415. 57 (MH+). + (4-methylpiperazino) phenyl-2, 4-pyrimidinediamine N4- (5-Amino-1, 2, 4-triazol-3-yl)-5-fluoro-N2- [3- (N- 1251 methylamino) carbonyimethyieneoxyphenyi]-2, 4- LCMS : purity : 93. 2% ; MS (m/e) : 374. 52 (MH+, 100). + pyrimidinediamine 'H NMR (DMSO) : d 8. 71 (d, 1 H, J = 4. 5 Hz), 7. 75 (s, 1 H), 7. 53 (s, 2H), N4-(3-Amino-1 2 4-triazol-5-yi)-N2-(3 5-dimethylphenyl)-5- 1252 7. 21 (s, 1 H), 6. 61-6. 74 (m, 2H), 5. 83 (bs, 2H), 2. 43 (s, 6H) ; LCMS : fluoro-2, 4-pyrimidinediamine purity : 88. 8% ; MS (m/e) : 315. 24 (MH+, 100). » , t. r : _ Compound ,: riw Trop k"' _ yak, w. 4 lono, 3pt , LD LD t W . o .. <. n r Com ound u P P Tr w. _ tase T tase T tas f e sk Y , rYP rYP P_ Y - C m u. a o. nd Neme "r b r-w _, 3 Num er CHMC CHMC CHMC r y x r ia, x.. a t 3 t I E 8 t lono 3 t y w P 9 P us. s 9 P aw u. N4- (5-Amino-1, 2, 4-triazol-3-yl)-N2- (3-chloro-4- 1253 LCMS : purity : 92. 8% ; MS (m/e) : 351. 09 (MH+ 100). methoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine N4- (5-Amino-1, 2, 4-triazol-3-yl)-N2- (3, 4-dichlorophenyl)-5- 125 I.., LCMS purity 93 2% MS (m/e)-355. 23 (MH+ 100). fluoro-2, 4-pyrimidinediamine N4- (5-Amino-1, 2, 4-triazoi-3-yi)-5-fluoro-N2-(indazol-6-yl)-2 4- 125 I..., LCMS : purity : 94. 3% ; MS (m/e) : 327. 14 (MH+, 100). + + pyrimidinediamine 'H NMR (DMSO) : d 10. 09 (bs, 1H), 9. 12 (bs, 1H), 8. 13 (d, 1H, J = 5. 1 N4- [ (2, 3-Dihydro-1, 4-benzodioxan-2-yl) methyl]-N2- (3, 5- Hz), 7. 17 (s, 2H), 6. 74-6. 87 (m, 5H), 4. 29-4. 50 (m, 2H), 3. 98 (dd, 1H, 1256 dimethylphenyl)-5-fluoro-2, 4-pyrimidinediamine 6. 3, 11. 4 Hz), 3. 59-3. 80 (m, 2H), 2. 23 (s, 6H) ; LCMS : purity : 97. 8% ; MS (m/e) : 379. 14 (M-, 100). N4-[(2, 3-Dihydro-1, 4-benzodioxan-2-yl) methyl]-5-fluoro-N2- [3- 1257 (N-methylamino) carbonylmethyleneoxyphenyl]-2, 4- LCMS : purity : 97. 4% ; MS (m/e) : 438. 13 (M-, 100). + pyrimidinediamine 'H NMR (DMSO) : d 10. 13 (s, 1H), 9. 05 (bs, 1H), 8. 19 (d, 1H, J = 4. 8 125 |N4-[(2, 3-Dihydro-1, 4-benzodioxan-2-yl) methyl]-N2-(3, 5-Hz), 6. 79-6. 86 (m, 6H), 6. 24 (m, 1 H), 4. 29-4. 49 (m, 2H), 4. 00 (dd, 1 H, + 1258 + dimethoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine 6. 9, 11. 4 Hz), 3. 62-3. 79 (m, 8H) ; LCMS : purity : 96. 7% ; MS (m/e) : 411. 10 (M-, 100). 'H NMR (DMSO) : d 10. 22 (s, 1 H), 9. 11 (bs, 1 H), 8. 12 (d, 1 H, J = 5. 1 N2- (3-Chloro-4-methoxyphenyl)-N4- [ (2, 3-dihydro-1, 4- Hz), 7. 70 (d, 1 H, J = 2. 4 Hz), 7. 35 (dd, 1 H, J = 2. 7, 9. 0 Hz), 7. 08 (d, 1259 + benzodioxan-2-yl) methyl]-5-fluoro-2, 4-pyrimidinediamine 1 H, J = 9. 0 Hz), 6. 78-6. 87 (m, 4H), 4. 28-4. 49 (m, 2H), 3. 99 (dd, 1 H, 6. 9, 11. 7 Hz), 3. 59-3. 84 (m, 5H) ; LCMS : purity N4- [ (2, 3-Dihydro-1, 4-benzodioxan-2-yl) methyl]-5-fluoro-N2- 1260 LCMS : purity : 95. 0% ; MS (m/e) : 391. 10 (M-, 100).-)- (Indazol-6-yi)-2, 4-pyrlmldinediamine, N4-(3, 4-Dichiorophenyl)-5-fluoro-N2-(4- 1261 LCMS : purity : 100% ; MS (m/e) : 405. 09 (M-, 100). methoxycarbonylphenyl)-2, 4-pyrimidinediamine N2- [4- (N-Carboxymethyleneamino) carbonylphenyl]-N4- (3, 4- 1262 LCMS : purity : 100% ; MS (m/e) : 450. 11 (M-) dichlorophenyl)-5-fluoro-2, 4-pyrimidinediamine LD Lu lu . cl .. d spun u : . , L - _, r.. ., Numi ! ar .......... v ,. I : 32Yfi'.-. . n. FS'ymr, ... ; qm 1. bect v. a .'r °'1du. hslo-L t Tr tase t se f s k y ; ; , t, T ase T a C4'ou = w m n , , ryP YP ryP, P_ Y, Com ound Nam v ' a ts. ri .. .. 45, HMC CHMC 11 t Nutit6C "CHMC, C,, p N W 4 I E 3 t I E 8 t lono 3 _ t,. 9 P 9 P P 'H NMR (DMSO) : d 10. 74 (s, 1H), 9. 95 (s, 1H), 9. 80 (s, 1H), 8. 18 (d, (S)-5-Fluoro-N2- (4-methoxycarbonylphenyl)-N4- (2-methyl-3- 1 H, J = 4. 2 Hz), 7. 20-7. 79 (m, 6H), 6. 96 (d, 1 H, J = 9. 3Hz), 4. 66 (q, 1263 + oxo-2H, 4H-benz [1, 4] oxazin-6-yi)-2, 4-pyrimidinediamine 1 H, J = 6. 6 Hz), 3. 78 (s, 3H), 1. 45 (d, 3H, J = 6. 6 Hz) ; LCMS : purity : 96. 8% ; MS (m/e) : 422. 12 (M-, 100). 'H NMR (DMSO) : d 10. 75 (s, 1H), 9. 88 (s, 1H), 9. 63 (m, 1H), 8. 19 (d, (S)-N2- [4- (N-Carboxymethylenemino) carbonylphenyl]-5- 1H, J= 4. b Hz), 7. 19-7. 75 (m, 6H), 6. 98 (d 1H J = 8. 7Hz), 4. 67 (q, 1264 fluoro-N4- (2-methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4-,,,,,, pyrimidinediamine 1H, J = 6. 9 Hz), 3. 89 (d, 1H, 5. 7 Hz), 1. 44 (d, 3H, J = 6. 9 Hz) ; LCMS : pyrim ! dinediamine purity : 91. 2% ; MS (m/e) : 465. 21 (M-, 100). (R)-N2- (4-Aminocarbonylphenyl)-5-fluoro-N4- (2-methyl-3-oxo- 1265 LCMS : purity : 95. 5% ; MS (m/e) : 407. 17 (M-, 100). + 2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4-pyrimidinediamine 'H NMR (DMSO) : d 10. 74 (s, 1H), 9. 95 (s, 1H), 9. 80 (s, 1H), 8. 18 (d, 1266 (R)-5-Fluoro-N2-(4-methoxycarbonylphenyl)-N4-(2-methyi-3-1 H, J = 4. 2 Hz), 7. 20-7. 79 (m, 6H), 6. 96 (d, 1 H, J = 9. 3Hz), 4. 66 (q, + 1266 + oxo-2H, 4H-benz [1, 4] oxazin-6-yi)-2, 4-pyrimidinediamine 1 H, J = 6. 6 Hz), 3. 78 (s, 3H), 1. 45 (d, 3H, J = 6. 6 Hz) ; LCMS : purity : 98. 5% ; MS (m/e) : 422. 17 (M-, 100). 'H NMR (DMSO) : d 10. 75 (s, 1H), 9. 88 (s, 1H), 9. 63 (m, 1H), 8. 19 (d, (R)-N2- [4- (N-Carboxymethyleneamino) carbonylphenyl]-5- 1 H J = 4. 5 Hz), 7. 19-7. 75 (m, 6Hj, 6. 98 (d 1 H J = 8. 7Hz) 4. 67 (q, 1267 fluoro-N4- (2-methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yi)-2, 4-- pyrimidinediamine 1H, J = 6. 9 Hz), 3. 89 (d, 1H, 5. 7 Hz), 1. 44 (d, 3H, J = 6. 9 Hz) ; LCMS : pyrimidinediamine purity : 87. 5% ; MS (m/e) : 465. 21 (M-, 100). N2, N4-Bis [4-(N-tert-butoxycarbonylamino) methylenephenyl]-5- 1268 LCMS : purity : 100% ; MS (m/e) : 537. 34 (M-, 100). + fluoro-2, 4-pyrimidinediamine 1 H NMR (DMSO) : d 9. 25 (bs, 1 H), 9. 09 (bs, 1 H), 8. 05 (d, 1 H, J = 2. 4 1269 N2, N4-Bis (4-aminomethylenephenyl)-5-fluoro-2, 4- Hz), 7. 69 (d, 2H, J = 8. 7Hz), 7. 56 (d, 2H, J = 8. 7 Hz), 7. 04-7. 40 (m, + + + + pyrimidinediamine 4H), 3. 67 (s, 3H), 3. 61 (s, 3H), 3. 35 (bs, 4H) ; LCMS : purity : 95. 5% ; MS (m/e) : 337. 18 (M-, 100) N4- (3, 4-Dichlorophenyl)-5-fluoro-N2- [4- (N-'H NMR (DMSO) : d 10. 21 (s, 2H), 8. 33 (m, 1H), 8. 33 (d, 1H, J = 4. 5 ethoxycarbonylmethyleneamino) carbonylphenyl]-2, 4- Hz), 8. 10 (d, 1 H, J = 2. 4 Hz), 7. 59-7. 83 (m, 6H), 3. 99 (m, 2H), 3. 65 (s, + pyrimidinediamine 3H) ; LCMS : purity : 100% ; MS (m/e) : 462. 11 (M-, 100). , lu lu Compound , , ( ; ompound Na'me,,, A N"'i. a. 4_i, .. ...'a ; J.. . . _T. 3., va. q4... tu h. W v r p : z u. a Com ound, : .. y ; a h t t ' : _ .. T ase T ase T tase f s k rY rYP rYP, P_ Y d'W A. w r R - om uni Nari7e. F a : r. , pt-. , la (ri , p Y M _ . x. r /VLI'1'1681' - , b CHMC CHMC CHMC 11 t r. rr « a, '3K, vz , > > > m f >h 3 l Y. r : _. i, 4, I E 3 t I E 8 t lono 3 t . 9 P 9 P P 5 s _ < u x k (S)-5-Fluoro-N2-[4-(N-H NMR (DMSO) : d 10. 77 (s, 1 H), 9. 93 (bs, 1 H), 8. 77 (m, 1H), 8. 20 (d, 1271 methoxycarbonylmethyleneamino) carbonylphenyl]-N4- (2- 1 H, J = 4. 5 Hz), 7. 21-7. 75 (m, 6H), 6. 97 (d, 1 H, J = 8. 4 Hz), 4. 66 (q, + 1271 + methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4-1 H, J = 6. 6 Hz), 3. 97 (m, 2H), 3. 64 (s, 3H), 1. 44 (d, 3H, J = 6. 6 Hz) ; pyrimidinediamine LCMS : purity : 96. 7% ; MS (m/e) : 481. 16 (MH+, (R)-5-Fluoro-N2- [4- (N-'H NMR (DMSO) : d 10. 77 (s, 1H), 9. 93 (bs, 1H), 8. 77 (m, 1H), 8. 20 (d, 1272 methoxycarbonylmethyleneamino) carbonylphenyl]-N4- (2- 1 H, J = 4. 5 Hz), 7. 21-7. 75 (m, 6H), 6. 97 (d, 1 H, J = 8. 4 Hz), 4. 66 (q, + methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4- 1 H, J = 6. 6 Hz), 3. 97 (m, 2H), 3. 64 (s, 3H), 1. 44 (d, 3H, J = 6. 6 Hz) ; pyrimidinediamine LCMS : purity : 100% ; MS (m/e) : 481. 39 (MH+, 'H NMR (DMSO) : d 9. 43 (s, 1 H), 9. 22 (s, 1 H), 9. 08 (d, 1 H, J = 3. 6 Hz), 1273 N2, N4-Bis [3- (N-tert-butoxycarbonylamino) methylenephenyl]-5- 7. 24-7. 72 (m, 7H), 7. 15 (t, 1 H, J = 7. 8 Hz), 6. 94 (d, 1 H, J = 7. 5 Hz), + fluoro-2, 4-pyrimidinediamine 6. 78 (d, 1 H, J = 7. 5 Hz), 4. 08 (m, 4H), 1. 39 (s, 18H) ; LCMS : purity : 95. 8% ; MS (m/e) : 537. 16 (M-, 100). 'H NMR (DMSO) : d 9. 24 (s, 1 H), 8. 35 (s, 1 H), 8. 01-8. 07 (m, 2H), 6. 73- N2, N4-Bis (3-aminomethyienephenyl)-5-fluoro-2, 4- 1274 7. 71 (m, 7H), 3. 69 (s, 2H), 3. 61 (s, 2H) ; LCMS : purity : 100% ; MS + + pynmldlnedlamlne (m/e) : 337. 21 (M-, 100). N2- [3- (N-tert-Butoxycarbonylamino) methylenephenyl]-N4- (3, 4- 1275, LCMS : purity : 93. 5% ; MS (m/e) : 476. 19 (M-, 100). + + dichlorophenyl)-5-fluoro-2, 4-pyrimidinediamine 'H NMR (DMSO) : d 10. 61 (s, 1H), 9. 30 (s, 1H), 9. 04 (s, 1H), 8. 03 (d, (S)-N2- [3- (N-tert-Butoxycarbonylamino) methylenephenyl]-5- 1H J=39Hz) 722-754 (m 5H) 710 (t 1H J=75Hz) 692 (d 1276 uoro-N4- (2-methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4- + + 1 H, J = 7. 5 Hz), 4. 64 (q, 1 H, J = 6. 6 Hz), 4. 01 (m, 2H), 1. 44 (d, 3H, J = pyrimidinediamine 6. 6 Hz), 1. 39 (s, 9H) ; LCMS : purity : 95. 1 'H NMR (DMSO) : d 10. 61 (s, 1H), 9. 30 (s, 1H), 9. 04 (s, 1H), 8. 03 (d, (R)-N2- [3- (N-tert-Butoxycarbonylamino) methylenephenyl]-5- 1 H, J = 3. 9 Hz), 7. 22-7. 54 (m, 5H), 7. 10 (t, 1 H, J = 7. 5 Hz), 6. 92 (d, + + fluoro-N4- (2-methyl-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yi) 1H, J = 7. 5 Hz), 4. 64 (q, 1H, J = 6. 6 Hz), 4. 01 (m, 2H), 1. 44 (d, 3H, J = 6. 6 Hz), 1. 39 (s, 9H) ; LCMS : purity : 92. 2 'H NMR (DMSO) : d 9. 60 (bs, 1 N), 9. 31 (s 1H) 816 (d 1H J = 3. 6 N2- (3-Aminomethylenephenyl)-N4- (3, 4-dichlorophenyl)-5- 1278 Hz), 8. 12 (d, 1 H, J = 2. 7 Hz), 6. 81-7. 88 (m, 6H), 3. 70 (s, 2H) ; LCMS : + + fluoro-2, 4-pyrimidinediamine purity : 96. 4% ; MS (m/e) : 376. 11 (M-, 100). LD LD LD CHMC. CHMC. 11pt wN r, __pyk, '. ° <, r.. k LD LD LD r-3 ....... x s3 _a_ Y Tr tase T tase T tase f s k Com ound : r P rYP P, P_ Y t w C ?'e. k d 1 3F. : WF- y.. m ;-m outid Nrie= z Ft . ( ,., * _. a. i r. , _.. = CHMC CHMC CHMC 11 t er Nuntb r. y ', _. _ a , m P n rs a r sf-e w. g t . I E t I E 8 t lono 3 t 3 » T w 3 sy H NMR (DMSO) : d 9. 30 (s, 1 H), 9. 08 (s, 1 H), 8. 05 (m, 1 H), 6. 76 7. 60 0. (S)-N2- (3-Aminomethylenephenyl)-5-fluoro-N4- (2-methyl-3- 1279 (m, 8H), 4. 63 (q, 1 H, J = 6. 9 Hz), 3. 64 (s, 2H), 1. 43 (d, 3H, J = 6. 9 Hz) ; + + oxo-2H, 4H-benz [1, 4] oxazin-6-yi)-2, 4-pyrimidinediamine LCMS : purity : 100% ; MS (m/e) : 393. 20 (M-, 100). 'H NMR (DMSO) : d 9. 30 (s, 1H), 9. 08 (s, 1H), 8. 05 (m, 1H), 6. 76-7. 60 (R)-N2- (3-Aminomethylenephenyl)-5-fluoro-N4- (2-methyl-3- 1280 (m, 8H), 4. 63 (q, 1 H, J = 6. 9 Hz), 3. 64 (s, 2H), 1. 43 (d, 3H, J = 6. 9 Hz) ; + + oxo-2H, 4H-benz [1, 4] oxazin-6-yi-2 4-pyrimidinediamine LCMS : purity : 98. 5% ; MS (m/e) : 393. 20 (M-, 100). 'H NMR (DMSO) : d 10. 69 (s, 1H), 10. 18 (bs, 1H), 8. 25 (d, 1H, J = 4. 5 1281 N4-(2, 2-Dimethyi-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- Hz), 8. 12-8. 17 (m, 2H), 7. 73 (d, 1H, J = 8. 1 Hz), 7. 62 (d, 1H, J = 7. 5 + + 1281 + + [3- (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine Hz), 7. 21-7. 39 (m, m, 4H), 6. 76 (d, 1 H, J = 8. 4 Hz), 1. 38 (s, 6H) ; LCMS : purity : 100% ; MS (m/e) : 445. 14 (M-, 100). 'H NMR (DMSO) : d 10. 69 (s, 1 H), 9. 98 (bs, 2H), 8. 22 (d, 1 H, J = 2. 4 1282 (S)-5-Fluoro-N4-(2-methyi-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)- Hz), 8. 16 (m, 1H), 7. 21-7. 75 (m, 6H), 6. 78 (d, 1H, J = 8. 4 Hz), 4. 62 (q, + + 1282 + + N2- [3- (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine 1 H, J = 6. 9 Hz), 1. 42 (d, 3H, J = 6. 9 Hz) ; LCMS : purity : 97. 3% ; MS (m/e) : 431. 15 (M-, 100). 'H NMR (DMSO) : d 10. 69 (s, 1 H), 9. 98 (bs, 2H), 8. 22 (d, 1 H, J = 2. 4 1283 (R)-5-Fluoro-N4-(2-methyl-3-oxo-2H, 4H-benzjP1, 4] oxazin-6-yl)-Hz), 8. 16 (m, 1 H), 7. 21-7. 75 (m, 6H), 6. 78 (d, 1 H, J = 8. 4 Hz), 4. 62 (q, + + 1283 + + N2- [3- (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine 1 H, J = 6. 9 Hz), 1. 42 (d, 3H, J = 6. 9 Hz) ; LCMS : purity : 94. 9% ; MS (m/e) : 431. 15 (M-, 100). HNMR (DMSO) : d 12. 05 (s 1H) 10. 05 (s 1H) 9. 95 (s 1H) 8. 27 N4- (2, 2-Difluoro-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- 1284 (m, 1H), 8. 25 (d, 1H, J =4. 5 Hz), 8. 14 (s, 1H), 7. 32-7. 75 (m, 6H), 7. 13 + + [3-(oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine (d, 1H, J = 9. 0 Hz) ; LCMS : purity : 98. 0% ; MS (m/e) : 453. 12 (M-, 100). N4- (4-Amino-3, 4-dihydro-2H-1-benzopyran-6-yl)-5-fluoro-N2- 1285 LCMS : purity : 87. 8% ; MS (m/e) : 417. 18 (M-, 100). + + [3- (oxazol-2-yl) phenyl]-2, 4-pyrimidinediamine 'H NMR (DMSO) : d 10. 71 (s 1H) 9. 91 (bs 1H) 8. 73 (m 1H) 1. 19 (d, N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N2- 1 H, J =4. 5 Hz), 7. 19-7. 74 (m, 6H), 6. 94 (d 1 H J = 8. 4 Hz), 3. 97 (m, 1286 [4- (N-methoxycarbonylmethyleneamino) carbonylphenyl]-2, 4- + +-+ 2H), 3. 64 (s, 3H), 1. 38 (s, 6H) ; LCMS : purity : 97. 5% ; MS (m/e) : 493. 22 pyrimidinediamine (M-, 100). N4- (4-N-tert-Butoxycarbonylamino-3, 4-dihydro-2H-1- 1287 benzopyran-6-yl)-5-fluoro-N2- [3- (oxazol-5-yl) phenyl]-2, 4- LCMS : purity : 89. 3% ; MS (m/e) : 517. 26 (M-, 100). + pyrimidinediamine \ \ 8put §^-. , ' ;., y''r. : '' , -, t4a,, t ; mtkc r, "W : y. a. : e p"s' , s, -t ; * hU. a. ti 'zd. "" ; , , ''x _l- 'p. . , . ,, s,. e.., k k u, , # ' _ , s t sa,. P1'Ct s p aiipond GcimP°nd ., : 96. °/ S tmie) : 5IC. 90 (M k k yubeC ino-3, -dihyBrQ-2H-" _ rbonyam LCMS : puritl' _', _gutoxt heny'2, . oxazo-5'y » I14_l4_N te. . 7. 2° ! 0 ; M8 lmle) : 5'17. 54 M' 100). ran-6-y>>'S UOro-N2 L k 12$$ benzaPy 1 ---'' 3 \ . t',. --"' \ --" 1H), 8, 26 la H, J'4. 8 289benzopY ran LCM : 100/o - 6 Yl'S : purity 1N1, 1°. 25 lS 2, 71-Izl, 7. 40 (dd, .. r PYtmdinediamne _3 4-dihYdro-2H--bnzopY H NMR p, (, SO) a 0. 40 ls, _ AH), 7. 50 ld H, q. 59 t'H, 1H, J-8. 7 t1z) - I IlldrO ne 5. A vi S, A"), . luoro-N'4 hydr°xy 5 nenyl 1290 _ oxazoi-5 y 1P 7. 65 7. 3 tm'' N2-L4 HZ, 8. 15 l H'1 Z. 32 (S'M, 6. 81 ld, 1H,. 12. 7, S. G 1-I21 2N), 1. 70-2. 1 g. 35 ls, SHI $. 05 2". A, benzOPyfan-6 1 86- 4. 20-4. 24 m s> 1H1 9. 19 (S ; 8. 7 k = 5. 1 Hzy _d6) : d 925 t 5tt), 6. 62 (d 2 4_pyrimsdinediarnne 2H S : purity : 91. 8° ! 0 ; uoro-N''hlaroxY 1H Nf'R lMSO, 1H), 7. 20 7. 63 (m, fizz 1291 2 Lq °xazot-2 y) PhenYl = 3. 6 HZ, 1H, Z. 99 _. 0 (m LCM . 1-benzopY 3. 8-4. 20 (m 3H) ° 1. 75 2 fimi IVi 14 1H1 _ 4-dihY Nx, + Mg (rnle) : A1. 3 (MH' 'S, _N4-^ ; no 3, dro-2H . 1 heny'2, -pyrimidinediamn _ oxaZO'5 y P o. MS t'lel : 419. 2 MH-' R urity 192 fluoro-N2'3 t : 98. 0 lo 2N_-benzopYran-'Y5 R, S)-N Wno-3-d phenytl-2, &-pYimidinediamsne ; 419. 3 tMH'_ g_8T l 1H ol 5 Y S, p : 93. 5°l0 ; MS mte3 s, 9. 97 ls'lHl 7, 24 7''$2H), k 1293 ora-2-LO°x ran-WYI-5'LCM urity q0. 7 t 1H),. 2 ? (m . benzopY flu DMS'd6 d Z. 66 . 83 (m. 5H1. 4. 5 Hz, -dihydro-2H 1 rnidinedamne IR, SI_N4 LA-Amino m, 1H), a. (d, J 4. 2 Hz,'1H). 1H1, 3. 78 d. -5.'l Hz, 2N1, 2. 58 joxazin-6Y1-5fluoro-NZ_ 1N NMR t 1294 N2_h- (oxazol-2-Y) PhenY>>'2, -DY « fluoro- ethy. 3-oxo_4H-ben2l = 8. 4 Hz, o o ; MS tm s, 1N1, 8. 58 inocarb°nyPhenY-2, - 3N1, 1. 41 (s, 6H1 ; PuriY 9a2/S' 0. 2 ls, M, 9. 98 t 1N) > 7, 23 k k Nr_ (2, 2-im 6. 94 td _ 4. 5 Hz,'H), 7. 88 7. 9 (m> 6N), 7. 43 (m 1H t'MR MS d61 d -85 l 1N 6. 3 Hz, 1H) > 3. 79 tm carbanYmethyenem 1295 mthYamin°l t2_ (m, 1H), $. 22 (a' 9. 0 Nz, 1H1, 4. 65 (a pYrimdinediamne m, 1H), . 95 _ 4. 5 HZ, 3H> 1. 43 (d, J = bonymethYenaminoronYphenY 1 s_5-Fluoro-N2 4N-tNy 4H benzl 4°% zn-6 y)-2, 4 2H1, 2. 58 (d methYamnar 1296 methY'3oxo2H, PYrimsdinediamve 22 LD Lu lu CHMC, CHMC, 11pt Cbmpbund Compoun'Nam- CHMC, CHMC, CHMC, llpt Nurnbbr [gE, 3pt IgE, 8pt lono, 3pt N4- (2, 2-Dif) uoro-3-oxo-4H-benz [1, 4] oxazin-6-yi)-5-f) uoro-N2- 1H NMR (DMSO-d6) : d 12. 11 (s, 1H), 9. 87 (s, 1H), 9. 81 (s, 1H), 8. 53 1297 [N- (N- (m, 1H), 8. 20 (d, J = 3. 9 Hz, 1 H), 7. 67-7. 78 (m, 6H), 7. 54 (dd, J = 2. 4, + 1297 + methylamino) carbonylmethylene] aminocarbonyiphenyi]-2, 4- 8. 7 Hz, 1 H), 7. 29 (d, J = 9. 0 Hz, 1 H), 3. 79 (d, J = 6. 0 Hz, 2H), 2. 58 (d, pyrimidinediamine J = 4. 2 Hz, 1 H) ; LCMS : purity : 97. 8% ; MS (R, S)-N4- [4- (N-tert-Butoxycarbonyl) amino-3, 4-dihydro-2H-1- benzopyran-6-yq-5-fluoro-N2-[4-[N-(N- 1298 LCMS : purity 97% ; MS (m/e) : 566. 4 (MH+). + methylamino) carbonyimethyiene] aminocarbonylphenyl]-2, 4- pyrimidinediamine R, S)-N4- [4-Amino-3, 4-dihydro-2H-1-benzopyran-6-yi]-5- fluoro-N2-[4-[N-(N- 1299 LCMS : purity : 93. 5% ; MS (m/e) : 466. 3 (MH+). + + + methylamino) carbonyimethyiene] aminocarbony ! phenyl]-2, 4- pyrimidinediamine 1H NMR (DMSO-d6) : d 9. 84 (s, 1H), 9. 81 (s, 1H), 8. 54 (m, 1H), 8. 24 N4-(3 4-Dichlorophenyl)-5-fluoro-N2-[4-[N-(N- , (d, J = 3. 9 Hz, 1 H), 8. 10 (d, J = 2. 4 Hz, 1 H), 7. 68-7. 81 (m, 6H), 7. 56 1300methyiamino) carbonyimethyiene] aminocarbonyiphenyi]-2, 4- + +- (d, J = 9. 0 Hz, 1H), 3. 79 (d, J = 6. 0 Hz, 2H), 2. 58 (d, J = 3. 9 Hz, 3H) ; pyrimidinediamine LCMS : purity : 100% ; MS (m/e) : 463. 2 (MH+). 1H NMR (DMSO-d6) : d 9. 75 (s, 1H), 8. 50 (m, 1H), 8. 12 (d, J = 4. 8 Hz, 1H NMR (DMSO-d6) : d 9. 75 (s, 1H), 8. 50 (m, 1H), 8. 12 (d, J = 4. 8 Hz, N4- (3, 4-Dich ! oropheny !)-5-fiuoro-N4-methyi-N2- [4- [N- (N- 1 H), 7. 63-7. 79 (m, 7H), 7. 34 (dd, J= 2. 4, 9. 6 Hz, 1H), 3. 78 (d, J= 4. 8 1301 methy ! amino) carbonyimethyiene] aminocarbony) phenyi]-2, 4- + +- 1301 methylamino) carbonyimethyiene] aminocarbonyiphenyq-2 4-+ + Hz, 2H), 3. 09 (s, 3H), 2. 58 (d, J = 4. 5 Hz, 3H) ; LCMS : purity : 94. 1 % ; pyrimidinediamine MS (mule) : 477. 2 (MH+). 1H NMR (DMSO-d6) : d 10. 71 (s, 1H), 9. 93 (bs, 2H), 8. 32 (m, 1H), N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yi)-5-fiuoro-N2- 8. 19 (d, J = 4. 8 Hz, 1H), 7. 61-7. 69 (m, 4H), 7. 22-7. 25 (m, 2H), 6. 94 (d, 1302 4- [N- (2-methoxycarbony) ethyi) arninocarbonynphenyi]-2, 4- + + + , J = 6. 93 Hz, 1 H), 3. 60 (s, 3H), 3. 44 (q, J = 6. 9 Hz, 2H), 2. 57 (t, J = 6. 9 pyrimidinediamine Hz, 2H), 1. 41 (s, 6H) ; LCMS : purity : 97. 5% ; 1H NMR (DMSO-d6) : d 10. 83 (s, 1H), 10. 32 (s, 1H), 10. 13 (s, 1H), (S)-5-Fluoro-N2-[4-[N-(2- 8. 39 (m, 1 H), 8. 25 (d, J = 4. 8 Hz, 1 H), 7. 62-7. 72 (m, 4H), 7. 35 (s, 1 H), 1303methoxycarbonylethyl) aminocarbonyl] phenyn-N4- (2-methyi-3- + + 7. 21 (dd, J = 2. 4, 8. 7 Hz, 1 H), 6. 96 (d, J=8. 7Hz, 1H), 4. 66 (q, J = 6. 9 oxo-2H, 4H-benz [1, 4] oxazin-6-yi)-2, 4-pyrimidined ! amine Hz, 1H), 3. 59 (s, 3H), 3. 43 (m, 2H), 2. 57 LD LD LD Tryptase, Tryptase, Tryptase, fp CHMC. CHMC. 11pt 1 H NMR (DMSO-d6) : d 12. 15 (s, 1 H), 9. 85 (m, 2H), 8. 31 (m, 1 H), 8. 20 Cbriio6bfid Nahie Vnysical N4- (2, 2-Difiuoro-3-oxo-4H-benz [1, 4] oxazin-6-y))-5-fiuoro-N2- [gE, 3pt IgE, 8pt lono, 3pt (d, J = 4. 2 Hz, 1 H), 7. 70-7. 78 (m, 5H), 7. 50 (d, J= 9. 6 Hz, 1H), 7. 27 1304 4- [N- (2-methoxycarbonyiethyi) aminocarbonyi] phenyi]-2, 4- + +- (d. J = 9. 90 Hz, 1H), 3. 59 (s, 3H), 3. 42 (m, 2H), 2. 56 (t, J = 6. 9 Hz, pyrimidinediamine 2H) ; LCMS : purity : 88. 5% ; MS (m/e) : 517. 3 (MH 1H NMR (DMSO-d6) : d 9. 82 (s, 1H), 9. 77 (s, 1H), 8. 36 (m, 1H), 8. 24 N4- (3, 4-Dich) oropheny !)-5-ftuoro-N2- [4- [N- (2- (d, J =3. 9 Hz, 1H). 8. 11 (d, J = 2. 4 Hz, 1H), 7. 65-7. 79 (m, 5H), 7. 56 1305methoxycarbony ! ethy !) aminocarbony !] phenyt]-2, 4- + + + (d, J = 8. 7 Hz, 1 H), 3. 60 (s, 3H), 3. 47 (q, J = 6, 6 Hz, 2H), 2. 57 (t, J pyrimid ! nediamine pyrimidinediamine 6. 6 Hz, 1 H) ; purity 90. 9% ; MS (m/e) : 478 1H NMR (DMSO-d6) : H) ; purity 90. 9% ; MS (m/e) : 478 N4- (3, 4-Dichioropheny))-5-f) uoro-N2- [4- [N- (2- 1 H), 7. 64-7. 75 (m, 6H), 7. 36 (dd, J= 2. 4, 8. 7 Hz, 1H), 3. 59 (s, 3H). 1306methoxycarbony ! ethyi) aminocarbonyi] pheny)]-N4-methyi-2, 4- + +- 3. 50 (s, 3H), 3. 45 (m, 2H), 2. 57 (t, J = 7. 6 Hz, 2H) ; LCMS : purity : pyrimidinediamine 88. 5% ; MS (m/e) : 492. 2 (MH+). N2- [4- [1- (tert-1H NMR (DMSO-d6) : d 10. 59 (s, 1H), 9. 29 (s, 1H), 9. 01 (s, 1H), 8. 12 Butoxycarbonylamino) methylenecarbonylamino] methylphenyl]- (m, 1 H), 8. 03 (d, J = 3. 6 Hz, 1 H), 7. 56 (d, J = 9. 0 Hz, 2H), 7. 27 (dd, J + + + N4- (2, 2-dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-y !)-5-f) uoro-2, 4- 2. 1, 8. 4 Hz, 1 H), 7. 21 (d, J = 2. 4 Hz, 1 H), 7. 05 (d, J = 8. 7 Hz, 2H), pyrimidinediamine 6. 90 (d, J = 9. 0 Hz, 2H), 4. 16 (d, J = 5. 4 (S)-N2- [4- [1- (tert-1H NMR (DMSO-d6) : d 10. 63 (s, 1H), 9. 29 (s, 1H), 9. 00 (s, 1H), 8. 13 Butoxycarbonylamino) methyienecarbonylamino] methylphenyi]- (m, 1H), 8. 03 (d, J = 3. 6 Hz, 1H), 7. 29-7. 57 (m, 3H), 7. 21 (d, J =2. 1 1308 + + + 5-f) uoro-N4- (2-methyi-3-oxo-2H, 4H-benz [1, 4] oxazin-6-yl)-2, 4- Hz, 1H), 7. 05 (d, J = 9. 0 Hz, 2H), 6. 90 (d, J = 8. 4 Hz, 2H), 4. 65 (q, J = pyrimidinediamine 7. 5 Hz, 1H), 4. 16 (d, J = 5. 7 Hz, 2H), 3 N2- [4- [1- (tert-1H NMR (DMSO-d6) : d 9. 52 (s, 1H), 9. 08 (s, 1H), 8. 13 (m, 1H), 8. 09 Butoxycarbony) amino) methyienecarbonyiamino] methyiphenyi]- (d, J = 3. 3 Hz, 1H), 7. 46-7. 62 (m, 4H), 7. 23 (d, J = 8. 7 Hz, 2H), 7. 07 + + N4- (2. 2-difiuoro-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4- (d, J = 8. 4 Hz, 2H), 6. 92 (m, 1H), 4. 18 (d, J = 5. 7 Hz, 2H), 3. 54 (d, J = pyrimidinediamine 5. 7 Hz, 2H), 1. 37 (s, 9H) ; LCMS : purity : 93 1H NMR (DMSO-d6) : d 9. 56 (s, 1H), 9. 28 (s, 1H), 8. 12-8. 17 (m, 3H), 2- [4- [1- (tert- I. 51-7. 81 (m 4H) 7. 14 (d J = 8. 7 Hz, 2H), 6. 93 (m, 1H), 4. 20 (d, J = 1310Butoxycarbonyiam) no) methyienecarbony ! amtno] methy ! phenyi]- + + + l. 3 Hz 2H) 3. 54 (d J = 6. 6 Hz, 2H), 1. 38 (s, 9H) ; LCMS : purity : N4-(3 (3, 4-dch ! orophenyi)-5-fiuoro-2, 4-pynm) d) ned0m) ne 94. 1% ; MS (m/e) : 535. 3 (MH+). LD LD LD ........ ,, : t y r... 'r", P r.,., o.. .-. _ :- :- x x '4u.. s- : , ysT.. , v'p m _1'i, LAD rfib. 6.. ........ ' M tL r ii x , t t T tase f s k r, f. k r u Tr ase T ase Coin ound YP rYP rYP P_ Y P =om oandNarev . _lt. rE . bc E r"".". ,-, CHMC CHMC'CHMC 11 t uinber N z , P u s z Uf- ., a. r : l E 3 t I E 8 t lono 3 t 9 P N2- [4- [1- (tert- 1 H NMR (DMSO-d6) : d 9. 31 (s, 1H), 8. 15 (m, 1H), 8. 04 (d, J = 5. 4 Hz, 1311 Butoxycarbonylamino) methylenecarbonylamino] methyiphenyl]-1 H), 7. 55-7. 66 (m, 4H), 7. 30 (m, 1H), 7. 08 (d, J = 8. 7 Hz, 2H), 6. 94 (m, + N4- (3, 4-dichlorophenyl)-5-fluoro-N4-methyl-2, 4- 1 H), 4. 18 (d, J = 6. 3 Hz, 2H), 3. 54 (d, J = 6. 3 Hz, 2H), 3. 46 (s, 3H), pyrimidinediamine 1. 38 (s, 9H) ; LCMS : purity : 90. 1% ; MS (m/e N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yi)-5-fluoro- LCMS : ret. time : 3. 67 min. (9 min. method) ; purity : 95. 3% ; MS (m/e) : 1312 N2- [4- [N- (2-methoxycarbonylethyl) aminocarbonyl] phenyl]-2, 4- + + 496. 3 (MH+). pyrimidinediamine 4-(2, 2-Dimethyi-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro- LCMS : ret. time : 4. 45 min. (9 min. method) ; purity : 97. 3% ; MS (m/e) : + 1313 + N2- (4-methoxycarbonylphenyl)-2, 4-pyrimidinediamine 439. 3 (MH+). N4- (2, 2-Dimethyl-3-oxo-4H-5-pyrid [1, 4] oxazin-6-yl)-5-fluoro- LCMS : ret. time : 4. 00 min. (9 min. method) ; purity : 95. 1% ; MS (m/e) : + 1314 + N2- (3-methoxycarbonylppyrid-2yl)-2, 4-pyrimidinediamine 440. 4 (MH+). 131'N2-(4-Aminocarbonyiphenyi)-N4-(2, 2-dimethyi-3-oXo-4H-5-LCMS : ret. time : 3. 28 min. (9 min. method) ; purity : 98. 1% ; MS (m/e) : 1315 + pyrid [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine 424. 3 (MH+). 1316 N2- (2-Aminocarbonylphenyl)-N4- (2, 2-dimethyl-3-oxo-4H-5- LCMS : ret. time : 3. 98 min. (9 min. method) ; purity : 90. 1% ; MS (m/e) : + 1316 + pyrid [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine 424. 5 (MH+). N4- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yi)-5-fluoro-N2-LCMS : ret. time : 8. 50 min. (20 min. method) ; purity : 98. 8% ; MS (m/e) : 1317 (indazol-6-yl)-2, 4-pyrimidinediamine MethanesulfonicAcid Salt 420. 1 (MH+). N4- (2, 2-Difluoro-3-oxo-4H-benz [1, 4] oxazin-6-yi)-5-fluoro-N2- LCMS : ret. time : 9. 69 min. (20 min. method) ; purity : 98. 4% ; MS (m/e) : 1318 3-(N-methyiamino) carbonylmethyleneoxyphenyl]-2, 4-475. 3 (MH+) 475. 3 (MH+). pyrimidinediamine Methanesulfonic Acid Salt N4-(3-Chloro-4-methoxyphenyl)-5-fluoro-N2-(4-[N- LCMS : ret. time : 3. 17 min. (7 min. method) ; purity : 97. 5% ; MS (m/e) : 1319 [methoxycarbonylmethylene] aminocarbonyl] phenyl)-2, 4- + 460. 3 (MH+). pyrimidinediamine (s' 9 LD LD LD Compound 1 Sr-.. ax. '. x... __. D.' h, cor oued r M. Number rc, LD LD LD rob. 2 I. 9 Tr tase T tase T tase f s k 0 oun C m d P.. _. - . w : p YP > rYP rYP P_ Y r c, m ound Nam-+ ; J PIi A i C-, HM Nu be'CHMC CHMC'C C 11 t 4 W t n kimr. _., TSmrtO kad fi , I E 3 t I E 8 t lono 3 t r m, 9 9 , P P P . a r N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- (4- [2- [N, N- LCMS : ret. time : 2. 64 min. (7 min. method) ; purity : 100% ; MS (m/e) : 1320 diethylamino] ethyleneaminocarbonyl] phenyl)-2, 4- + + 487. 3 (MH+). pyrimidinediamine 1321 N2- (4-Aminocarbonylphenyl)-N4- (3-chloro-4-methoxyphenyl)- LCMS : ret. time : 2. 86 min. (7 min. method) ; purity : 100% ; MS (m/e) : + + 5-fluoro-2, 4-pyrimidinediamine 488. 3 (MH+). 1322 N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- (4- LCMS : ret. time : 4. 02 min. (7 min. method) ; purity : 98. 4% ; MS (m/e) : + methoxycarbonylphenyl)-2, 4-pyrimidinediamine 403. 3 (MH+). 1323 N4- (3-Chloro-4-methoxyphenyl)-5-fluoro-N2- (4- [N-tert- LCMS : ret. time : 3. 83 min. (7 min. method) ; purity : 92. 3% ; MS (m/e) : + 1323 + butoxycarbonylaminomethylene] phenyl)-2, 4-pyrimidinediamine 474. 3 (MH+). 1324 N2- (4-Aminomethylenephenyl)-N4- (3-chloro-4- LCMS : ret. time : 2. 53 min. (7 min. method) ; purity : 96. 6% ; MS (m/e) : + methoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine 374. 2 (MH+). N4- (3-Chlaro-4-methoxyphenyl)-5-fluoro-N2- (4- [N- [N- LCMS : ret. time : 2. 81 min. (7 min. method) ; purity : 100% ; MS (m/e) : 1325 methyl] aminocarbonylmethylene] aminocarbonyl] phenyl)-2, 4- + 459. 3 (MH+). pyrimidinediamine 2-Chloro-5-fluoro-N4- (4- [N- LCMS : ret. time : 2. 79 min. (7 min. method) ; purity : 100% ; MS (m/e) : 1326 [methoxycarbonylmethylene] aminocarbonyl] phenyl)-4-- 339. 2 (MH+). pyrimidineamine N4- [4-Aminocarbonylphenyl]-2-chloro-5-fluoro-4- LCMS : ret. time : 2. 40 min. (7 min. method) ; purity : 100% ; MS (m/e) : 1327- pyrimidineamine 267. 1 (MH+). 5-Fluoro-N2- (3-hydroxyphenyl)-N4- (4- (N- LCMS : ret. time : 2. 44 min. (7 min. method) ; purity : 94. 9% ; MS (m/e) : 1328 [methoxycarbonylmethylene] aminocarbonyl] phenyl)-2, 4- + pyrimidinediamine N2- (3, 5-Dichloro-4-hydroryphenyl)-5-fluoro-N4- (4- [N- LCMS : ret. time : 9. 92 min. (20 min. method) ; purity : 95. 0% ; MS (m/e) : 1329 methoxycarbonylmethylene] aminocarbonyl] phenyl)-2, 4- + 482. 0 (MH- !-). pyrimidinediamine LD LD . r. °, ^ "§...-, a. : " 06nO6und S, . ^e." S. NutnbEir , . ., r,.-D ss ar ', t ;. <.,. , r v g e '. sxF b a m nd t T ase Tr tase T tase f s k s N rYP YP w rYP P_ Y a r, M3. 9m ounc Nam i, .,. , u ber. CHMC M , , CH C, CHMC, 11 t 5 n tt , d I E 3 t I E 8 t lono 3 t , _ ro.,. 9 P 9 P P N2- (3-Chloro-4-methoxyphenyl)-5-fluoro-N4- (4- [N- P.,. LCMS : ret. time : 3. 13 min. (7 min. method) ; purity : 95% MS (m/e) : 1330 [methoxycarbonylmethylene] aminocarbonyl] phenyl)-2, 4- + + + + 460. 3 (MH+). pyrimidinediamine N2- (2, 2-Dimethyl-3-oxo-4H-benz [1, 4] oxazin-6-yl)-5-fluoro-N4- LCMS : ret. time : 2. 80 min. (7 min. method) ; purity : 92. 2% ; MS (m/e) : 1331 (4- [N- [methoxycarbonylmethylene] aminocarbonyl] phenyl)-2, 4- + + 495. 3 (MH+). pyrimidinediamine 5-Fluoro-N2, N4-bis (4- [N- LCMS : ret. time : 2. 77 min. (7 min. method) ; purity : 100% ; MS (m/e) : 1332 [methoxycarbonylmethylene] aminocarbonyl] phenyl)-2, 4- + + pyrimidinediamine N2-(4-Aminocarbonylphenyi)-5-fluoro-N4-(4-[N- LCMS : ret. time : 2. 48 min. (7 min. method) ; purity : 97. 6% ; MS (m/e) : 1333 [methoxycarbonylmethylene] aminocarbonyl] phenyl)-2, 4--- 439. 3 (MH+). pyrimidinediamine 1334 N4- (4-Aminocarbonylphenyl)-5-fluoro-N2- (3-hydroxyphenyl)- LCMS : ret. time : 2. 10 min. (7 min. method) ; purity : 100% ; MS (m/e) : 2, 4-pyrimidinediamine 340. 2 (MH+). 1335 N4- (4-AminoGarbonylphenyl)-N2- (3, 5-dichloro-4- LCMS : ret. time : 8. 72 min. (20 min. method) ; purity : 93. 0% ; MS (m/e) : + + 1335 + + hydroxyphenyl)-5-fluoro-2, 4-pyrimidinediamine 410. 0 (MH+). 1336 N4- (4-Aminocarbonylphenyl)-N2- (3-chloro-4-methoxyphenyl)- LCMS : ret. time : 2. 79 min. (7 min. method) ; purity : 100% ; MS (m/e) : + + 5-fluoro-2, 4-pyrimidinediamine 388. 3 (MH+). 1337 N4- (4-Aminocarbonylphenyl)-N2- (2, 2-dimethyl-3-oxo-4H- LCMS : ret. time : 2. 50 min. (7 min. method) ; purity : 100% ; MS (m/e) : + + + benz [1, 4] oxazin-6-yl)-5-fluoro-2, 4-pyrimidinediamine 423. 3 (MH+). N4-(Aminocarbonylphenyi)-5-fluoro-N2-(4-[N- LCMS : ret. time : 2. 52 min. (7 min. method) ; purity : 94. 4% ; MS (m/e) : 1338 [methoxycarbonylmethylene] aminocarbonyl] phenyl)-2, 4- + + yjp y. 439. 3 (MH+). pyrimidinediamine 1339 N2, N4-Bis (4-aminocarbonylphenyl)-5-fluoro-2, 4- LCMS : ret. time : 2. 26 min. (7 min. method) ; purity : 100% ; MS (m/e) : 1339 _ _ pyrimidinediamine 367. 3 (MH+). N4- (2, 2-Dimethyl-3-oxo-4H-N4-oxo-5-pyrido [1, 4] oxazin-6-yl)- LCMS : ret. time : 3. 48 min. (7 min. method) ; purity : 97. 4% ; MS (m/e) : 1340 + + 5-fluoro-N2- (3, 4, 5-trimethoxyphenyl)-2, 4-pyrimidinediamine 487. 3 (MH+). LU LL) Lu ryptase, Tryptase, Tryptase, rp Yk' T 1, OTodh,, d NdrhO CHMC, CHMC, llpt CHMC, Igue, 3pt IgE, 8pt lono, 3Pt N2- (4-Aminocarbony) phenyi)-5-fiuoro-N4- (4- [3-methyi-1, 2, 4- LCMS : ret. time : 2. 72 min. (7 min. method) ; purity : 95. 8% ; MS (mule) : 1341 + + + oxadiazo !-5-yi] methy) eneoxyphenyi)-2, 4-pyrimidinediamine 436. 3 (MH+). I I I 5-Fluoro-N2- (4- [N- methoxycarbonytmethy) ene] aminocarbonyi] phenyi)-N4- (4- [3- LCMS : ret. time : 2. 99 min. (7 min. method) ; purity : 95. 1% ; MS (mule) : + + methyl-1, 2, 4-oxadiazol-5-y)] methyieneoxypheny))-2, 4- 508. 4 (MH+). py (imidinediamine N2-(4-[2-[N N-Diethylamino] ethyieneaminocarbonyi] phenyl)-5- N2- (4-r2- [N, N-Diethyiamino] ethy) eneaminocarbonyi] phenyi)-5- LCMS : ret. time : 2. 58 min. (7 min. method) ; purity : 97. 8% ; MS (m/e) : 1343f) uoro-N4' (4- [3-methyi-1, 2, 4-oxadiazoi-5- + + + 535. 4 (MH+). yi] methy) eneoxyphenyi)-2, 4-pyrimidinediamine N2-(3 5-Dichioro4-hydroxyphenyl)-5-fluoro-N4-(4-[3-methyl- N2- (3, 5-Dich) oro-4-hydroxyphenyi)-5-f) uoro-N4- (4- [3-methyi- LCMS : ret. time : 3. 33 min. (7 min. method) ; purity : 95. 0% ; MS (m/e) : 1344 1, 2, 4-oxadiazo)-5-yl] methy) eneoxypheny))-2, 4- +-+ 477. 2 (MH+). pyrimidinediamine N2- (3-Chbro-5-methoxyphenyi)-5-fiuoro-N4- (4-r3-methyi- LCMS : ret. time : 3. 35 min. (7 min. method) ; purity : 96. 4% ; MS (m/e) : 13451, 2, 4-oxadiazo !-5-yi] methy) eneoxyphenyi)-2, 4--+ 457. 3 (MH+). pyrimidinediamine N2- (4-Aminocarbony) phenyi)-N4- (3, 4-dichiorophenyt)-5-f ! uoro- LCMS : ret. time : 3. 86 min. (7 min. method) ; purity : 100% ; MS (m/e) : + N4-methyl-2, 4-pyrimidinediamine 406. 2 (MH+). N2-(4-[2-1N N-Diethylamino] ethyleneaminocarbonyì] phenyi)- LCMS : ret. time : 3. 31 min. (7 min. method) ; purity : 100% ; MS (m/e) : 1347N4- (3, 4-dichiorophenyt)-5-f) uoro-N4-methy !-2, 4- y pyrimidinediamine N4-(3 4-Dichiorophenyl)-5-fluoro-N2-(4-[N- LCMS : ret. time : 4. 16 min. (7 min. method) ; purity : 95. 8% ; MS (m/e) : 1348 methoxycarbony) methy) ene] aminocarbonyi] pheny))-N4- + 480. 2 (MH+). methyl--2, 4-pyrimidinediamine 2- (4-Aminocarbonylphenyl)-N4- (cyclopenty))-5-fluoro-2, 4- LCMS : ret. time : 2. 26 min. (7 min. method) ; purity : 100% ; MS (m/e) : 1349 pyrimidinediamine 316. 3 (MH+). N4-(Cyclopentyl)-N2-(4-12-(N N- LCMS : ret. time : 2. 09 min. (7 min. method) ; purity : 97. 3% ; MS (m/e) : 1350 diethylamino] ethy) eneaminocarbonyl) phenyl)-5-fluoro-2, 4--+ py (imidinediamine sa Lu lu Colmpoun. d wiz N , _. LD LD LD nus CHMC, CHMC, CHMC, llpt {. z 'rOTll ll l'.. T tase Tr tase T t s rYP YP rYP fi_ Y =m und tame Pl rWI k. r, , W i hIUITI52C :.. : h. , HMC H _ < G C MC CHMC 11 t r _ c a rw . ; , P -r I E 3 t I E 8 t lono 3 t w= ^r , r. 9 P 9 P P N4- (Cyclopentyl)-5-fluoro-N2- (4- [Id-,. . r a, . _ > > _ . : LCMS : ret. time : 2. 62 min. (7 min. method) ; purity : 100% ; MS (m/e) : 1351 [methoxycarbonylmethylene] aminocarbonyl] phenyl)-2, 4- + + 388. 3 (MH+). pyrimidinediamine 1352 N2- (4-Aminocarbonylphenyl)-N4- (4-chloro-3-methoxyphenyl)- LCMS : ret. time : 3. 13 min. (7 min. method) ; purity : 96. 4% ; MS (m/e) : 5-fluoro-2, 4-pyrimidinediamine 388. 3 (MH+). 1353 N2- (4-Aminocarbonyl-3-chlorophenyl)-N4- (3-chloro-4- LCMS : ret. time : 2. 91 min. (7 min. method) ; purity : 89. 5% ; MS (m/e) : + + methoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine 422. 2 (MH+). 1354 N2- (4-Aminocarbonyl-3-chlorophenyl)-N4- (4-chloro-3- LCMS : ret. time : 3. 14 min. (7 min. method) ; purity : 95. 0% ; MS (m/e) : + + methoxyphenyl)-5-fluoro-2, 4-pyrimidinediamine 422. 2 (MH+). N4- (4-Chloro-3-methoxyphenyl)-N2- (4- [2- [N, N- LCMS : ret. time : 2. 80 min. (7 min. method) ; purity : 95. 6% ; MS (m/e) : 1355 diethylamino] ethyleneaminocarbonyl] phenyl)-5-fluoro-2, 4- + + yjp 487. 4 (MH+). pyrimidinediamine N4- (4-Chloro-3-methoxyphenyl)-5-fluoro-N2- (4- [N- LCMS : ret. time : 3. 45 min. (7 min. method) ; purity : 94. 6% ; MS (m/e) : 1356 [methoxycarbonylmethylene] aminocarbonyl] phenyl)-2, 4- + + yjn y7. 460. 3 (MH+). pyrimidinediamine 1357 N2- (4-Aminocarbonylphenyl)-5-fluoro-N4-phenyl-2, 4- LCMS : ret. time : 2. 58 min. (7 min. method) ; purity : 100% ; MS (m/e) : pyrimidinediamine 424. 3 (MH+). 5-Fluoro-N2- (3-hydroxyphenyl)-N4- (4- [3-methyl-1, 2, 4- LCMS : ret. time : 2. 72 min. (7 min. method) ; purity : 89. 9% ; MS (m/e) : 1358 oxadiazol-5-yl] methyleneoxyphenyl)-2, 4-pyrimidinediamine 409. 3 (MH+). hydrochloric acid salt

7.5 The Compounds Are Effective for the Treatment of Autoimmunity The in vivo efficacy of certain 2,4-pyrimidinediamine compounds towards autoimmune diseases was evaluated in the reverse passive Arthus reaction, an acute model of antigen-antibody mediated tissue injury, and in several disease models of autoimmunity and inflammation. These models are similar in that antibody to a specific antigen mediates immune complex-triggered (IC-triggered) inflammatory disease and subsequent tissue destruction. IC deposition at specific anatomic sites (central nervous system (CNS) for experimental autoimmune encephalomyelitis (EAE) and synovium for collagen-induced arthritis (CIA) ) leads to activation of cells expressing surface FczR and FceR, notably mast cells, macrophages, and neutrophils, which results in cytokine release, and neutrophil chemotaxis. Activation of the inflammatory response is responsible for downstream effector responses, including edema, hemorrhage, neutrophil infiltration, and release of pro- inflammatory mediators. The consequences of these IC-triggered events are difficult to identify in autoimmune disorders ; nonetheless, many investigators have demonstrated that inhibition of the Fc-yR signaling pathway in these animal models has resulted in a significant reduction in disease onset and severity.

7.5. 1 The Compounds Are Effective In Mouse Arthus Reaction The in vivo efficacy of compounds 810, 944,994 and 1007 to inhibit the IC- triggered inflammatory cascade was demonstrated in a mouse model of Reverse Passive Arthus Reaction (RPA reaction).

7.5. 1.1 Model Immune complex (IC)-mediated acute inflammatory tissue injury is implicated in a variety of human autoimmune diseases, including vasculitis syndrome, sick serum syndrome, systemic lupus erythematosus (SLE), rheumatoid arthritis, Goodpasture's syndrome, and glomerulonephritis. The classical experimental model for IC-mediated tissue injury is the reverse passive Arthus reaction. The RPA reaction model is a convenient iii vivo method to study localized inflammation, induced by ICs, without systemic effects.

Intradermal injection of antibodies (Abs) specific to chicken egg albumin (rabbit anti-OVA IgG), followed by intravenous (IV) injection of antigens (Ags), specifically chicken egg albumin (ovalbumin, OVA), causes perivascular deposition of ICs and a rapid inflammatory

response characterized by edema, neutrophil infiltration and hemorrhage at the injection sites. Aspects of the mouse RPA reaction model resemble the inflammatory response of patients with rheumatoid arthritis, SLE and glomerulonephritis.

7.5. 1.2 Study Protocol In this model system, test compounds are administered at several timepoints prior to administration of Abs and Ags. A solution of rabbit anti-OVA IgG (50ßg in 25mouse) is injected intradermally, and immediately following is an intravenous injection of chicken egg albumin (20 mg/kg of body weight) in a solution containing 1% Evans blue dye. The degree of edema and hemorrhage is measured in the dorsal skin of C57BL/6 mice using the Evan's Blue dye as an indicator of local tissue damage. Purified polyclonal rabbit IgG is used as a control.

Pretreatment time, in which the test compounds are administered prior to Ab/Ag challenge, depends on the pharmacokinetic (PK) properties of each individual compound.

Four hours after induction of Arthus reaction, mice are euthanized, and tissues are harvested for assessment of edema. This model system allows us to rapidly screen the in vivo activity of many inhibitors.

7.5. 1.3 Results All compounds tested were administered by the oral route.

Compound 994, when administered at a dose level of 100 mg/kg 90 minutes prior to Ab/Ag challenge in C57B16 mice, showed dose-dependent inhibition of edema formation (75%).

Compounds 1007 and 810 showed the efficacy of edema inhibition by 89. 4% and 81.3%, respectively, when administered at 1.0 mg/kg, 30 minutes prior to challenge.

Compound 1007 showed 64. 3%, 78. 7%, 98. 1% and 99. 8%, inhibition of edema formation when administered at dose levels of 0.1 mg/kg, 0.5 mg/kg, 1.0 mg/kg and 5 mg/kg and a pretreatment time of 30, respectively. Results for the compounds tested are summarized in Table 2. Mouse Cutaneous Reverse Passive Arthus (RPA) Reaction Summary % inhibition to Satellite : At Exposure = in vitro vehicle time of Pretreatment Potency control challenge Time + 4 hours (CHMC Mu Compound Compound Dosage Pretreatment Edema Size Plasma Plasma Concentration Name Number (mg/kg) Time (hrs) SEM Concentration SEM (ng/mi) SEM (ng/mi) 994 100 78 6,', + 44"'2-4. 9 0. 047 1007 1 0. 5 89. 4 2. 2 3 0. 5 86. 3 7. 9 3 0. 5 86. 3 + 7. 9 10 0. 5 97. 8 1. 1 30 0. 5 88. 2 5. 7 10CL597. 811. 1 gg g 1007 0. (L564. 311. 2 24. 4 9. 6 BLQ 0. 5 0. 5 78. 7 6. 3 73. 1 14. 5 BLQ 1 0. 5 98. 1 0. 8 90. 0 + 11. 0 2. 3 + 0. 9 5 0. 5 99. 8 0. 2 398. 0 30. 2 19. 8 + 15. 7 810 0. 1 0. 5 69. 5 19. 6 0. 5 0. 5 60. 9 9. 6 1 0. 5 81. 3 8. 4 gg 5 0. 5 92. 1 3. 1 944 2 1 39. 3 + 13. 8 NA 4. 3 4. 2 5148. 4112. 0NA3. 515. 3 15 56. 1 + 9. 2 NA 29. 7 + 25. 9 944 0. 5 5-16. 0 + 17. 3 22. 1 52. 4 3. 4 9. 1 0. 5158. 3113. 4 1074. 0 + 85. 1 161. 9 492. 3 Table 2 7.5. 2 The Compounds are effective in Mouse Collagen Antibody Induced Arthritis Model The in vivo efficacy of compoundstowards autoimmune diseases can be demonstrated in a mouse model of collagen antibody-induced arthritis (CAIA).

7.5. 2.1 Model Collagen-induced arthritis (CIA) in rodents is frequently used as one of the experimental models for IC-mediated tissue injury. Administration of type II collagen into mice or rats results in an immune reaction that characteristically involves inflammatory destruction of cartilage and bone of the distal joints with concomitant swelling of surrounding tissues. CIA is commonly used to evaluate compounds that might be of potential use as drugs for treatment of rheumatoid arthritis and other chronic inflammatory conditions.

In recent years, a new technique emerged in CIA modeling, in which the anti-type II collagen antibodies are applied to induce an antibody-mediated CIA. The advantages of the method are: Short time for induction of disease (developing within 24-48 hrs after an intravenous (IV) injection of antibodies); arthritis is inducible in both ClA-susceptible and CIA-resistant mouse strains; and the procedure is ideal for rapid screening of anti-inflammatory therapeutic agents.

Arthrogen-CIA@ Arthritis-inducing Monoclonal Antibody Cocktail (Chemicon International Inc.) is administered intravenously to Balb/c mice (2mg/mouse) on Day 0. Forty- eight hours later, 100 111 of LPS (25pg) is injected intraperitoneally. On Day 4, toes may appear swollen. By Day 5, one or two paws (particular the hind legs) begin to appear red and swollen. On Day 6, and thereafter, red and swollen paws will remain for at least 1-2 weeks.

During the study, the clinical signs of inflammation are scored to evaluate the intensity of edema in the paws. The severity of arthritis is recorded as the sum score of both hind paws for each animal (possible maximum score of 8). The degree of inflammation with involved paws is evaluated by measurement of diameter of the paws. Body weight changes are monitored.

Animals can be treated at the time of induction of arthritis, beginning on Day 0. Test compounds and control compounds can be administered once a day (q. d. ) or twice a day (b. i. d. ), via per os (PO), depending on previously established PK profiles.

At the end of the study (1-2 weeks after induction of arthritis), mice are euthanized and the paws are transected at the distal tibia using a guillotine and weighed. The mean standard error of the mean (SEM) for each group is determined each day from individual animal clinical scores, and hind paw weights for each experimental group are calculated and recorded at study termination. Histopathological evaluation of paws are obtained.

7.5. 2.2 Results Reduced inflammation and swelling should be evident in animals treated with compounds of the invention, and the arthritis would progress more slowly. Treatment with compounds should (b. i. d.) significantly reduce clinical arthritis compared with animals treated with vehicle only.

7.5. 3 The Compounds Can Be Effective In Rat Collagen-Induced Arthritis The in vivo efficacy of compounds of the invention towards autoimmune diseases can be demonstrated in a rat model of collagen-induced arthritis (CIA).

7.5. 3.1 Model Description Rheumatoid arthritis (RA) is characterized by chronic joint inflammation eventually leading to irreversible cartilage destruction. IgG-containing IC are abundant in the synovial tissue of patients with RA. While it is still debated what role these complexes play in the etiology and pathology of the disease, IC communicate with the hematopoetic cells via the FcyR.

CIA is a widely accepted animal model of RA that results in chronic inflammatory synovitis characterized by pannus formation and joint degradation. In this model, intradermal immunization with native type II collagen, emulsified with incomplete Freund's adjuvant, results in an inflammatory polyarthritis within 10 or 11 days and subsequent joint destruction in 3 to 4 weeks.

7.5. 3.2 Study Protocol Syngeneic LOU rats were immunized on Day 0 with native chicken CII/IFA (performed at UCLA; E. Brahn, Principal Investigator). Beginning on the day of arthritis onset (Day 10), a total of 59 rats can be treated with either a vehicle control or a compound of the invention at one of four dose levels (1,3, 10, and 30 mg/kg, q. d. by p. o. gavage).

7.5. 3.3 Results Hind limbs would be scored daily for clinical arthritis severity using a standardized method based on the degree of joint inflammation. High resolution digital radiographs of hind limbs can be obtained at the conclusion of the study (Day 28). These limbs can also be analyzed for histopathologic changes. IgG antibodies to native CII can be measured in quadruplicate by ELISA.

Although the foregoing invention has been described in some detail to facilitate understanding, it will be apparent that certain changes and modifications may be practiced within the scope of the appended claims. Accordingly, the described embodiments are to be considered as illustrative and not restrictive, and the invention is not to be limited to the details given herein, but may be modified within the scope and equivalents of the appended claims.

All literature and patent references cited throughout the application are incorporated by reference into the application for all purposes.