Proteins > High affinity nerve growth factor receptor
Page last updated: 2024-08-07 15:37:44
High affinity nerve growth factor receptor
A high affinity nerve growth factor receptor that is encoded in the genome of human. [PRO:DNx, UniProtKB:P04629]
Synonyms
EC 2.7.10.1;
Neurotrophic tyrosine kinase receptor type 1;
TRK1-transforming tyrosine kinase protein;
Tropomyosin-related kinase A;
Tyrosine kinase receptor;
Tyrosine kinase receptor A;
Trk-A;
gp140trk;
p140-TrkA
Research
Bioassay Publications (65)
Timeframe | Studies on this Protein(%) | All Drugs % |
pre-1990 | 0 (0.00) | 18.7374 |
1990's | 1 (1.54) | 18.2507 |
2000's | 18 (27.69) | 29.6817 |
2010's | 35 (53.85) | 24.3611 |
2020's | 11 (16.92) | 2.80 |
Compounds (239)
Drugs with Inhibition Measurements
Drugs with Activation Measurements
Drug | Taxonomy | Measurement | Average (mM) | Bioassay(s) | Publication(s) |
amitriptyline | Homo sapiens (human) | EC50 | 86.0000 | 1 | 1 |
amitriptyline | Homo sapiens (human) | Kd | 2,050.0000 | 4 | 4 |
fasudil | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
4-(4'-hydroxyphenyl)-amino-6,7-dimethoxyquinazoline | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
sb 202190 | Homo sapiens (human) | Kd | 10.0000 | 1 | 1 |
imatinib | Homo sapiens (human) | Kd | 10.0000 | 2 | 2 |
triciribine phosphate | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
staurosporine | Homo sapiens (human) | Kd | 0.0033 | 3 | 3 |
picropodophyllin | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
tryptanthrine | Homo sapiens (human) | Kd | 9.2000 | 1 | 1 |
gefitinib | Homo sapiens (human) | Kd | 10.0000 | 2 | 2 |
lestaurtinib | Homo sapiens (human) | Kd | 0.1925 | 3 | 3 |
perifosine | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
vatalanib | Homo sapiens (human) | Kd | 16.6667 | 3 | 3 |
ruboxistaurin | Homo sapiens (human) | Kd | 16.6667 | 3 | 3 |
canertinib | Homo sapiens (human) | Kd | 16.6667 | 3 | 3 |
birb 796 | Homo sapiens (human) | Kd | 0.9233 | 3 | 3 |
cyc 202 | Homo sapiens (human) | Kd | 20.0000 | 2 | 2 |
sb 203580 | Homo sapiens (human) | Kd | 10.0000 | 2 | 2 |
enzastaurin | Homo sapiens (human) | Kd | 23.3333 | 2 | 3 |
erlotinib | Homo sapiens (human) | Kd | 16.6667 | 3 | 3 |
lapatinib | Homo sapiens (human) | Kd | 16.6667 | 3 | 3 |
sorafenib | Homo sapiens (human) | Kd | 10.5000 | 5 | 5 |
pd 173955 | Homo sapiens (human) | Kd | 10.0000 | 1 | 1 |
s 1033 | Homo sapiens (human) | Kd | 20.0000 | 2 | 2 |
xl147 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
bms 387032 | Homo sapiens (human) | Kd | 10.0000 | 2 | 2 |
sf 2370 | Homo sapiens (human) | Kd | 1.7390 | 1 | 1 |
tandutinib | Homo sapiens (human) | Kd | 6.3100 | 5 | 5 |
vx-745 | Homo sapiens (human) | Kd | 10.0000 | 2 | 2 |
dasatinib | Homo sapiens (human) | Kd | 10.0000 | 2 | 2 |
ha 1100 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
7-epi-hydroxystaurosporine | Homo sapiens (human) | Kd | 0.7370 | 1 | 1 |
zd 6474 | Homo sapiens (human) | Kd | 16.6667 | 3 | 3 |
4-(5-benzo(1,3)dioxol-5-yl-4-pyridin-2-yl-1h-imidazol-2-yl)benzamide | Homo sapiens (human) | Kd | 10.0000 | 1 | 1 |
imd 0354 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
sirolimus | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
alvocidib | Homo sapiens (human) | Kd | 16.6667 | 3 | 3 |
bosutinib | Homo sapiens (human) | Kd | 16.5500 | 2 | 2 |
orantinib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
su 11248 | Homo sapiens (human) | Kd | 0.3971 | 7 | 7 |
palbociclib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
jnj-7706621 | Homo sapiens (human) | Kd | 10.0000 | 1 | 1 |
vx680 | Homo sapiens (human) | Kd | 6.0234 | 5 | 5 |
cyc 116 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
everolimus | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
ekb 569 | Homo sapiens (human) | Kd | 20.0000 | 2 | 2 |
axitinib | Homo sapiens (human) | Kd | 15.9000 | 2 | 2 |
temsirolimus | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
pd 184352 | Homo sapiens (human) | Kd | 10.0000 | 1 | 1 |
on 01910 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
av 412 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
telatinib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
y-39983 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
cp 547632 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
bms345541 | Homo sapiens (human) | Kd | 10.0000 | 1 | 1 |
pd 0325901 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
midostaurin | Homo sapiens (human) | Kd | 7.7850 | 4 | 4 |
ripasudil | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
osi 930 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
ki 20227 | Homo sapiens (human) | Kd | 10.0000 | 1 | 1 |
scio-469 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
cp 724714 | Homo sapiens (human) | Kd | 23.3333 | 2 | 3 |
pi103 | Homo sapiens (human) | Kd | 10.0000 | 2 | 2 |
hmn-214 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
tivozanib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
hki 272 | Homo sapiens (human) | Kd | 20.0000 | 2 | 2 |
tofacitinib | Homo sapiens (human) | Kd | 16.6667 | 3 | 3 |
n-(6-chloro-7-methoxy-9h-beta-carbolin-8-yl)-2-methylnicotinamide | Homo sapiens (human) | Kd | 10.0000 | 1 | 1 |
cediranib | Homo sapiens (human) | Kd | 20.0000 | 2 | 2 |
masitinib | Homo sapiens (human) | Kd | 20.0000 | 2 | 2 |
ly-2157299 | Homo sapiens (human) | Kd | 30.0000 | 1 | 2 |
pazopanib | Homo sapiens (human) | Kd | 16.6667 | 3 | 3 |
azd 6244 | Homo sapiens (human) | Kd | 20.0000 | 2 | 2 |
su 14813 | Homo sapiens (human) | Kd | 10.3200 | 3 | 3 |
bibw 2992 | Homo sapiens (human) | Kd | 20.0000 | 2 | 2 |
binimetinib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
sotrastaurin | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
aee 788 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
saracatinib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
vx 702 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
crenolanib | Homo sapiens (human) | Kd | 0.0080 | 1 | 1 |
tg100-115 | Homo sapiens (human) | Kd | 23.3333 | 2 | 3 |
cc 401 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
bms 599626 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
exel-7647 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
volasertib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
pha 665752 | Homo sapiens (human) | Kd | 0.3200 | 1 | 1 |
regorafenib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
6-[[5-fluoro-2-(3,4,5-trimethoxyanilino)-4-pyrimidinyl]amino]-2,2-dimethyl-4H-pyrido[3,2-b][1,4]oxazin-3-one | Homo sapiens (human) | Kd | 15.0850 | 2 | 2 |
brivanib | Homo sapiens (human) | Kd | 20.0000 | 2 | 2 |
mp470 | Homo sapiens (human) | Kd | 30.0000 | 1 | 2 |
rgb 286638 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
np 031112 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
at 7519 | Homo sapiens (human) | Kd | 10.0000 | 1 | 1 |
bi 2536 | Homo sapiens (human) | Kd | 20.0000 | 2 | 2 |
inno-406 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
nvp-ast487 | Homo sapiens (human) | Kd | 0.3200 | 2 | 2 |
kw 2449 | Homo sapiens (human) | Kd | 15.1350 | 2 | 2 |
danusertib | Homo sapiens (human) | Kd | 0.7660 | 1 | 1 |
abt 869 | Homo sapiens (human) | Kd | 12.0667 | 3 | 3 |
azd 8931 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
arq 197 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
azd 1152 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
pf 00299804 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
ridaforolimus | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
ch 4987655 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
6-(5-((cyclopropylamino)carbonyl)-3-fluoro-2-methylphenyl)-n-(2,2-dimethylprpyl)-3-pyridinecarboxamide | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
cc-930 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
gw 2580 | Homo sapiens (human) | Kd | 0.4533 | 3 | 2 |
tak 285 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
idelalisib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
crizotinib | Homo sapiens (human) | Kd | 15.0475 | 2 | 2 |
osi 906 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
chir-265 | Homo sapiens (human) | Kd | 16.6667 | 3 | 3 |
motesanib | Homo sapiens (human) | Kd | 16.6667 | 3 | 3 |
fostamatinib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
trametinib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
mln8054 | Homo sapiens (human) | Kd | 16.6667 | 3 | 3 |
pf-562,271 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
GDC-0879 | Homo sapiens (human) | Kd | 10.0000 | 1 | 1 |
jnj-26483327 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
ly2603618 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
tg100801 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
bgt226 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
gsk 461364 | Homo sapiens (human) | Kd | 20.0000 | 2 | 2 |
azd 1152-hqpa | Homo sapiens (human) | Kd | 10.0000 | 2 | 2 |
nvp-tae684 | Homo sapiens (human) | Kd | 0.4600 | 1 | 1 |
enmd 2076 | Homo sapiens (human) | Kd | 0.2060 | 1 | 1 |
e 7050 | Homo sapiens (human) | Kd | 0.6010 | 1 | 1 |
2-amino-8-ethyl-4-methyl-6-(1H-pyrazol-5-yl)-7-pyrido[2,3-d]pyrimidinone | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
tak-901 | Homo sapiens (human) | Kd | 0.8430 | 1 | 1 |
gdc-0973 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
azd 1480 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
azd8330 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
pha 848125 | Homo sapiens (human) | Kd | 2.9620 | 1 | 1 |
fedratinib | Homo sapiens (human) | Kd | 0.8400 | 1 | 1 |
gsk690693 | Homo sapiens (human) | Kd | 10.0000 | 1 | 1 |
azd5438 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
pf 04217903 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
gdc 0941 | Homo sapiens (human) | Kd | 20.0000 | 2 | 2 |
icotinib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
kx-01 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
plx 4720 | Homo sapiens (human) | Kd | 10.0000 | 1 | 1 |
mk 5108 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
cx 4945 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
cudc 101 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
arry-614 | Homo sapiens (human) | Kd | 3.1260 | 1 | 1 |
tak 593 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
mln 8237 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
sgx 523 | Homo sapiens (human) | Kd | 20.0000 | 2 | 2 |
sgi 1776 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
pci 32765 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
amg 900 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
mk-1775 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
quizartinib | Homo sapiens (human) | Kd | 11.5333 | 3 | 3 |
tak 733 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
mk 2206 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
sns 314 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
lucitanib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
pf-04691502 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
n-(cyanomethyl)-4-(2-((4-(4-morpholinyl)phenyl)amino)-4-pyrimidinyl)benzamide | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
dcc-2036 | Homo sapiens (human) | Kd | 0.2800 | 1 | 1 |
cabozantinib | Homo sapiens (human) | Kd | 4.1080 | 1 | 1 |
defactinib | Homo sapiens (human) | Kd | 0.9180 | 1 | 1 |
ly2584702 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
incb-018424 | Homo sapiens (human) | Kd | 15.7500 | 2 | 2 |
poziotinib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
asp3026 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
entrectinib | Homo sapiens (human) | Kd | 0.0020 | 1 | 1 |
pexidartinib | Homo sapiens (human) | Kd | 30.0000 | 1 | 2 |
TAK-580 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
gsk 2126458 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
emd1214063 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
gsk 1838705a | Homo sapiens (human) | Kd | 10.0000 | 1 | 1 |
pf 3758309 | Homo sapiens (human) | Kd | 2.2080 | 1 | 1 |
gdc 0980 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
azd2014 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
(5-(2,4-bis((3s)-3-methylmorpholin-4-yl)pyrido(2,3-d)pyrimidin-7-yl)-2-methoxyphenyl)methanol | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
plx4032 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
gsk 1363089 | Homo sapiens (human) | Kd | 0.0269 | 2 | 2 |
arry-334543 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
kin-193 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
mk 2461 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
bay 869766 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
as 703026 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
dabrafenib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
pki 587 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
n-(3-fluoro-4-((1-methyl-6-(1h-pyrazol-4-yl)-1h-indazol-5 yl)oxy)phenyl)-1-(4-fluorophenyl)-6-methyl-2-oxo-1,2-dihydropyridine-3-carboxamide | Homo sapiens (human) | Kd | 1.0330 | 1 | 1 |
ribociclib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
mk-8033 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
pha 793887 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
sb 1518 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
abemaciclib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
mk-8776 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
afuresertib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
gsk 1070916 | Homo sapiens (human) | Kd | 5.9460 | 1 | 1 |
jnj38877605 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
dinaciclib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
gilteritinib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
alectinib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
glpg0634 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
encorafenib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
gsk2141795 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
azd8186 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
cep-32496 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
rociletinib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
ceritinib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
azd1208 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
cfi-400945 | Homo sapiens (human) | EC50 | 0.0840 | 2 | 2 |
vx-509 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
debio 1347 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
osimertinib | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
at 9283 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
otssp167 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
chir 258 | Homo sapiens (human) | Kd | 0.8130 | 3 | 3 |
osi 027 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
nintedanib | Homo sapiens (human) | Kd | 1.4702 | 2 | 2 |
bay 80-6946 | Homo sapiens (human) | Kd | 30.0000 | 1 | 1 |
pp242 | Homo sapiens (human) | Kd | 8.6000 | 1 | 1 |
Discovery of a benzimidazole-based dual FLT3/TrKA inhibitor targeting acute myeloid leukemia.Bioorganic & medicinal chemistry, , 02-15, Volume: 56, 2022
[no title available]European journal of medicinal chemistry, , Dec-15, Volume: 208, 2020
ASR352, A potent anticancer agent: Synthesis, preliminary SAR, and biological activities against colorectal cancer bulk, 5-fluorouracil/oxaliplatin resistant and stem cells.European journal of medicinal chemistry, , Jan-01, Volume: 161, 2019
Novel quinazoline derivatives bearing various 6-benzamide moieties as highly selective and potent EGFR inhibitors.Bioorganic & medicinal chemistry, , 05-01, Volume: 26, Issue:8, 2018
Novel 5,6-disubstituted pyrrolo[2,3-d]pyrimidine derivatives as broad spectrum antiproliferative agents: Synthesis, cell based assays, kinase profile and molecular docking study.Bioorganic & medicinal chemistry, , 11-15, Volume: 26, Issue:21, 2018
Novel LCK/FMS inhibitors based on phenoxypyrimidine scaffold as potential treatment for inflammatory disorders.European journal of medicinal chemistry, , Dec-01, Volume: 141, 2017
Synthesis and biological evaluation of new [1,2,4]triazolo[4,3-a]pyridine derivatives as potential c-Met inhibitors.Bioorganic & medicinal chemistry, , 08-15, Volume: 24, Issue:16, 2016
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
Synthesis, activity, and pharmacophore development for isatin-beta-thiosemicarbazones with selective activity toward multidrug-resistant cells.Journal of medicinal chemistry, , May-28, Volume: 52, Issue:10, 2009
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
A small molecule-kinase interaction map for clinical kinase inhibitors.Nature biotechnology, , Volume: 23, Issue:3, 2005
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
AC220 is a uniquely potent and selective inhibitor of FLT3 for the treatment of acute myeloid leukemia (AML).Blood, , Oct-01, Volume: 114, Issue:14, 2009
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
A Selective and Brain Penetrant p38αMAPK Inhibitor Candidate for Neurologic and Neuropsychiatric Disorders That Attenuates Neuroinflammation and Cognitive Dysfunction.Journal of medicinal chemistry, , 06-13, Volume: 62, Issue:11, 2019
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
Discovery of a novel class of non-ATP site DFG-out state p38 inhibitors utilizing computationally assisted virtual fragment-based drug design (vFBDD).Bioorganic & medicinal chemistry letters, , Dec-01, Volume: 21, Issue:23, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
A small molecule-kinase interaction map for clinical kinase inhibitors.Nature biotechnology, , Volume: 23, Issue:3, 2005
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
AC220 is a uniquely potent and selective inhibitor of FLT3 for the treatment of acute myeloid leukemia (AML).Blood, , Oct-01, Volume: 114, Issue:14, 2009
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
A small molecule-kinase interaction map for clinical kinase inhibitors.Nature biotechnology, , Volume: 23, Issue:3, 2005
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
Targeting the Nerve Growth Factor (NGF) Pathway in Drug Discovery. Potential Applications to New Therapies for Chronic Pain.Journal of medicinal chemistry, , 01-12, Volume: 60, Issue:1, 2017
Inhibition of protein-protein association by small molecules: approaches and progress.Journal of medicinal chemistry, , Apr-11, Volume: 45, Issue:8, 2002
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Synthesis, modeling, and in vitro activity of (3'S)-epi-K-252a analogues. Elucidating the stereochemical requirements of the 3'-sugar alcohol on trkA tyrosine kinase activity.Journal of medicinal chemistry, , Jun-02, Volume: 48, Issue:11, 2005
Synthesis and kinase inhibitory activity of 3'-(S)-epi-K-252a.Bioorganic & medicinal chemistry letters, , Oct-21, Volume: 12, Issue:20, 2002
Neurotrophic 3,9-bis[(alkylthio)methyl]-and-bis(alkoxymethyl)-K-252a derivatives.Journal of medicinal chemistry, , Jun-06, Volume: 40, Issue:12, 1997
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
AC220 is a uniquely potent and selective inhibitor of FLT3 for the treatment of acute myeloid leukemia (AML).Blood, , Oct-01, Volume: 114, Issue:14, 2009
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
A small molecule-kinase interaction map for clinical kinase inhibitors.Nature biotechnology, , Volume: 23, Issue:3, 2005
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
Global target profile of the kinase inhibitor bosutinib in primary chronic myeloid leukemia cells.Leukemia, , Volume: 23, Issue:3, 2009
A multi-scale systems pharmacology approach uncovers the anti-cancer molecular mechanism of Ixabepilone.European journal of medicinal chemistry, , Aug-01, Volume: 199, 2020
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
AC220 is a uniquely potent and selective inhibitor of FLT3 for the treatment of acute myeloid leukemia (AML).Blood, , Oct-01, Volume: 114, Issue:14, 2009
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
Identification of genotype-correlated sensitivity to selective kinase inhibitors by using high-throughput tumor cell line profiling.Proceedings of the National Academy of Sciences of the United States of America, , Dec-11, Volume: 104, Issue:50, 2007
A small molecule-kinase interaction map for clinical kinase inhibitors.Nature biotechnology, , Volume: 23, Issue:3, 2005
From Cancer to Pain Target by Automated Selectivity Inversion of a Clinical Candidate.Journal of medicinal chemistry, , 06-14, Volume: 61, Issue:11, 2018
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
Discovery and development of aurora kinase inhibitors as anticancer agents.Journal of medicinal chemistry, , May-14, Volume: 52, Issue:9, 2009
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
AC220 is a uniquely potent and selective inhibitor of FLT3 for the treatment of acute myeloid leukemia (AML).Blood, , Oct-01, Volume: 114, Issue:14, 2009
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
1,4,5,6-tetrahydropyrrolo[3,4-c]pyrazoles: identification of a potent Aurora kinase inhibitor with a favorable antitumor kinase inhibition profile.Journal of medicinal chemistry, , Nov-30, Volume: 49, Issue:24, 2006
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
Insights into Current Tropomyosin Receptor Kinase (TRK) Inhibitors: Development and Clinical Application.Journal of medicinal chemistry, , 02-28, Volume: 62, Issue:4, 2019
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
[no title available],
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
Structure based drug design of crizotinib (PF-02341066), a potent and selective dual inhibitor of mesenchymal-epithelial transition factor (c-MET) kinase and anaplastic lymphoma kinase (ALK).Journal of medicinal chemistry, , Sep-22, Volume: 54, Issue:18, 2011
Identification of genotype-correlated sensitivity to selective kinase inhibitors by using high-throughput tumor cell line profiling.Proceedings of the National Academy of Sciences of the United States of America, , Dec-11, Volume: 104, Issue:50, 2007
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Discovery of 5-chloro-N2-[(1S)-1-(5-fluoropyrimidin-2-yl)ethyl]-N4-(5-methyl-1H-pyrazol-3-yl)pyrimidine-2,4-diamine (AZD1480) as a novel inhibitor of the Jak/Stat pathway.Journal of medicinal chemistry, , Jan-13, Volume: 54, Issue:1, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Identification of N,1,4,4-tetramethyl-8-{[4-(4-methylpiperazin-1-yl)phenyl]amino}-4,5-dihydro-1H-pyrazolo[4,3-h]quinazoline-3-carboxamide (PHA-848125), a potent, orally available cyclin dependent kinase inhibitor.Journal of medicinal chemistry, , Aug-27, Volume: 52, Issue:16, 2009
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
The identification of 2-(1H-indazol-4-yl)-6-(4-methanesulfonyl-piperazin-1-ylmethyl)-4-morpholin-4-yl-thieno[3,2-d]pyrimidine (GDC-0941) as a potent, selective, orally bioavailable inhibitor of class I PI3 kinase for the treatment of cancer .Journal of medicinal chemistry, , Sep-25, Volume: 51, Issue:18, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
AC220 is a uniquely potent and selective inhibitor of FLT3 for the treatment of acute myeloid leukemia (AML).Blood, , Oct-01, Volume: 114, Issue:14, 2009
Discovery of a benzimidazole-based dual FLT3/TrKA inhibitor targeting acute myeloid leukemia.Bioorganic & medicinal chemistry, , 02-15, Volume: 56, 2022
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Design and synthesis of novel orally selective and type II pan-TRK inhibitors to overcome mutations by property-driven optimization.European journal of medicinal chemistry, , Nov-15, Volume: 224, 2021
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Design, synthesis, and biological evaluation of 2,4-diamino pyrimidine derivatives as potent FAK inhibitors with anti-cancer and anti-angiogenesis activities.European journal of medicinal chemistry, , Oct-15, Volume: 222, 2021
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
[no title available],
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
Rational drug design to explore the structure-activity relationship (SAR) of TRK inhibitors with 2,4-diaminopyrimidine scaffold.European journal of medicinal chemistry, , Feb-15, Volume: 230, 2022
Discovery of a benzimidazole-based dual FLT3/TrKA inhibitor targeting acute myeloid leukemia.Bioorganic & medicinal chemistry, , 02-15, Volume: 56, 2022
[no title available]Journal of medicinal chemistry, , 07-22, Volume: 64, Issue:14, 2021
[no title available]Bioorganic & medicinal chemistry letters, , 12-01, Volume: 53, 2021
Discovery of novel 2-phenylamino-4-prolylpyrimidine derivatives as TRK/ALK dual inhibitors with promising antitumor effects.Bioorganic & medicinal chemistry, , 10-01, Volume: 47, 2021
Discovery of pyrazolo-thieno[3,2-d]pyrimidinylamino-phenyl acetamides as type-II pan-tropomyosin receptor kinase (TRK) inhibitors: Design, synthesis, and biological evaluation.European journal of medicinal chemistry, , Apr-15, Volume: 216, 2021
Targeting tropomyosin receptor kinase for cancer therapy.European journal of medicinal chemistry, , Aug-01, Volume: 175, 2019
Type 2 inhibitor leads of human tropomyosin receptor kinase (hTrkA).Bioorganic & medicinal chemistry letters, , 10-01, Volume: 29, Issue:19, 2019
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Discovery of Entrectinib: A New 3-Aminoindazole As a Potent Anaplastic Lymphoma Kinase (ALK), c-ros Oncogene 1 Kinase (ROS1), and Pan-Tropomyosin Receptor Kinases (Pan-TRKs) inhibitor.Journal of medicinal chemistry, , Apr-14, Volume: 59, Issue:7, 2016
Design and synthesis of novel orally selective and type II pan-TRK inhibitors to overcome mutations by property-driven optimization.European journal of medicinal chemistry, , Nov-15, Volume: 224, 2021
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Discovery of a 5H-benzo[4,5]cyclohepta[1,2-b]pyridin-5-one (MK-2461) inhibitor of c-Met kinase for the treatment of cancer.Journal of medicinal chemistry, , Jun-23, Volume: 54, Issue:12, 2011
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Optimization of 6,6-dimethyl pyrrolo[3,4-c]pyrazoles: Identification of PHA-793887, a potent CDK inhibitor suitable for intravenous dosing.Bioorganic & medicinal chemistry, , Mar-01, Volume: 18, Issue:5, 2010
Insights into Current Tropomyosin Receptor Kinase (TRK) Inhibitors: Development and Clinical Application.Journal of medicinal chemistry, , 02-28, Volume: 62, Issue:4, 2019
The "Cyclopropyl Fragment" is a Versatile Player that Frequently Appears in Preclinical/Clinical Drug Molecules.Journal of medicinal chemistry, , 10-13, Volume: 59, Issue:19, 2016
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Synthesis, structure-activity relationships, and in vivo efficacy of the novel potent and selective anaplastic lymphoma kinase (ALK) inhibitor 5-chloro-N2-(2-isopropoxy-5-methyl-4-(piperidin-4-yl)phenyl)-N4-(2-(isopropylsulfonyl)phenyl)pyrimidine-2,4-diamJournal of medicinal chemistry, , Jul-25, Volume: 56, Issue:14, 2013
The discovery of Polo-like kinase 4 inhibitors: identification of (1R,2S).2-(3-((E).4-(((cis).2,6-dimethylmorpholino)methyl)styryl). 1H.indazol-6-yl)-5'-methoxyspiro[cyclopropane-1,3'-indolin]-2'-one (CFI-400945) as a potent, orally active antitumor agJournal of medicinal chemistry, , Jan-08, Volume: 58, Issue:1, 2015
Drug discovery using spirooxindole cores: Success and Challenges [corrected].European journal of medicinal chemistry, , 05-05, Volume: 95, 2015
Discovery of (10R)-7-amino-12-fluoro-2,10,16-trimethyl-15-oxo-10,15,16,17-tetrahydro-2H-8,4-(metheno)pyrazolo[4,3-h][2,5,11]-benzoxadiazacyclotetradecine-3-carbonitrile (PF-06463922), a macrocyclic inhibitor of anaplastic lymphoma kinase (ALK) and c-ros oJournal of medicinal chemistry, , Jun-12, Volume: 57, Issue:11, 2014
[no title available],
Highly Selective MERTK Inhibitors Achieved by a Single Methyl Group.Journal of medicinal chemistry, , 11-21, Volume: 61, Issue:22, 2018
UNC2025, a potent and orally bioavailable MER/FLT3 dual inhibitor.Journal of medicinal chemistry, , Aug-28, Volume: 57, Issue:16, 2014
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
A quantitative analysis of kinase inhibitor selectivity.Nature biotechnology, , Volume: 26, Issue:1, 2008
The target landscape of clinical kinase drugs.Science (New York, N.Y.), , 12-01, Volume: 358, Issue:6367, 2017
Comprehensive analysis of kinase inhibitor selectivity.Nature biotechnology, , Oct-30, Volume: 29, Issue:11, 2011
Enables
This protein enables 13 target(s):
Target | Category | Definition |
protein tyrosine kinase activity | molecular function | Catalysis of the reaction: ATP + a protein tyrosine = ADP + protein tyrosine phosphate. [RHEA:10596] |
transmembrane receptor protein tyrosine kinase activity | molecular function | Combining with a signal and transmitting the signal from one side of the membrane to the other to initiate a change in cell activity by catalysis of the reaction: ATP + a protein-L-tyrosine = ADP + a protein-L-tyrosine phosphate. [EC:2.7.10.1, GOC:mah] |
GPI-linked ephrin receptor activity | molecular function | Combining with a GPI-anchored ephrin to initiate a change in cell activity. [GOC:mah, PMID:9530499] |
neurotrophin p75 receptor binding | molecular function | Binding to a neurotrophin p75 receptor. [GOC:ai] |
protein binding | molecular function | Binding to a protein. [GOC:go_curators] |
ATP binding | molecular function | Binding to ATP, adenosine 5'-triphosphate, a universally important coenzyme and enzyme regulator. [ISBN:0198506732] |
nerve growth factor receptor activity | molecular function | Combining with nerve growth factor (NGF), to prevent apoptosis in neurons and promote nerve growth, or to initiate a change in cell activity. [GOC:dph, GOC:tb] |
kinase binding | molecular function | Binding to a kinase, any enzyme that catalyzes the transfer of a phosphate group. [GOC:jl] |
identical protein binding | molecular function | Binding to an identical protein or proteins. [GOC:jl] |
protein homodimerization activity | molecular function | Binding to an identical protein to form a homodimer. [GOC:jl] |
nerve growth factor binding | molecular function | Binding to nerve growth factor (NGF). [GOC:dgh] |
neurotrophin binding | molecular function | Binding to a neurotrophin, any of a family of growth factors that prevent apoptosis in neurons and promote nerve growth. [GOC:jl] |
neurotrophin receptor activity | molecular function | Combining with a neurotrophin, any of a family of growth factors that prevent apoptosis in neurons and promote nerve growth, and transmitting the signal to initiate a change in cell activity. [GOC:jl, GOC:signaling] |
Located In
This protein is located in 10 target(s):
Target | Category | Definition |
early endosome | cellular component | A membrane-bounded organelle that receives incoming material from primary endocytic vesicles that have been generated by clathrin-dependent and clathrin-independent endocytosis; vesicles fuse with the early endosome to deliver cargo for sorting into recycling or degradation pathways. [GOC:mah, NIF_Subcellular:nlx_subcell_20090701, PMID:19696797] |
late endosome | cellular component | A prelysosomal endocytic organelle differentiated from early endosomes by lower lumenal pH and different protein composition. Late endosomes are more spherical than early endosomes and are mostly juxtanuclear, being concentrated near the microtubule organizing center. [NIF_Subcellular:nlx_subcell_20090702, PMID:11964142, PMID:2557062] |
plasma membrane | cellular component | The membrane surrounding a cell that separates the cell from its external environment. It consists of a phospholipid bilayer and associated proteins. [ISBN:0716731363] |
cell surface | cellular component | The external part of the cell wall and/or plasma membrane. [GOC:jl, GOC:mtg_sensu, GOC:sm] |
endosome membrane | cellular component | The lipid bilayer surrounding an endosome. [GOC:mah] |
dendrite | cellular component | A neuron projection that has a short, tapering, morphology. Dendrites receive and integrate signals from other neurons or from sensory stimuli, and conduct nerve impulses towards the axon or the cell body. In most neurons, the impulse is conveyed from dendrites to axon via the cell body, but in some types of unipolar neuron, the impulse does not travel via the cell body. [GOC:aruk, GOC:bc, GOC:dos, GOC:mah, GOC:nln, ISBN:0198506732] |
early endosome membrane | cellular component | The lipid bilayer surrounding an early endosome. [GOC:pz] |
late endosome membrane | cellular component | The lipid bilayer surrounding a late endosome. [GOC:pz] |
neuronal cell body | cellular component | The portion of a neuron that includes the nucleus, but excludes cell projections such as axons and dendrites. [GOC:go_curators] |
recycling endosome membrane | cellular component | The lipid bilayer surrounding a recycling endosome. [GOC:jid, GOC:rph, PMID:10930469, PMID:15601896, PMID:16246101] |
Active In
This protein is active in 2 target(s):
Target | Category | Definition |
axon | cellular component | The long process of a neuron that conducts nerve impulses, usually away from the cell body to the terminals and varicosities, which are sites of storage and release of neurotransmitter. [GOC:nln, ISBN:0198506732] |
plasma membrane | cellular component | The membrane surrounding a cell that separates the cell from its external environment. It consists of a phospholipid bilayer and associated proteins. [ISBN:0716731363] |
Part Of
This protein is part of 2 target(s):
Target | Category | Definition |
protein-containing complex | cellular component | A stable assembly of two or more macromolecules, i.e. proteins, nucleic acids, carbohydrates or lipids, in which at least one component is a protein and the constituent parts function together. [GOC:dos, GOC:mah] |
receptor complex | cellular component | Any protein complex that undergoes combination with a hormone, neurotransmitter, drug or intracellular messenger to initiate a change in cell function. [GOC:go_curators] |
Involved In
This protein is involved in 44 target(s):
Target | Category | Definition |
positive regulation of protein phosphorylation | biological process | Any process that activates or increases the frequency, rate or extent of addition of phosphate groups to amino acids within a protein. [GOC:hjd] |
protein phosphorylation | biological process | The process of introducing a phosphate group on to a protein. [GOC:hb] |
axon guidance | biological process | The chemotaxis process that directs the migration of an axon growth cone to a specific target site in response to a combination of attractive and repulsive cues. [ISBN:0878932437] |
learning or memory | biological process | The acquisition and processing of information and/or the storage and retrieval of this information over time. [GOC:jid, PMID:8938125] |
circadian rhythm | biological process | Any biological process in an organism that recurs with a regularity of approximately 24 hours. [GOC:bf, GOC:go_curators] |
negative regulation of cell population proliferation | biological process | Any process that stops, prevents or reduces the rate or extent of cell proliferation. [GOC:go_curators] |
response to xenobiotic stimulus | biological process | Any process that results in a change in state or activity of a cell or an organism (in terms of movement, secretion, enzyme production, gene expression, etc.) as a result of a stimulus from a xenobiotic, a compound foreign to the organim exposed to it. It may be synthesized by another organism (like ampicilin) or it can be a synthetic chemical. [GOC:jl, GOC:krc] |
programmed cell death involved in cell development | biological process | The activation of endogenous cellular processes that result in the death of a cell as part of its development. [GOC:dph, GOC:mtg_apoptosis, GOC:tb] |
positive regulation of neuron projection development | biological process | Any process that increases the rate, frequency or extent of neuron projection development. Neuron projection development is the process whose specific outcome is the progression of a neuron projection over time, from its formation to the mature structure. A neuron projection is any process extending from a neural cell, such as axons or dendrites (collectively called neurites). [GOC:dph, GOC:tb] |
peptidyl-tyrosine phosphorylation | biological process | The phosphorylation of peptidyl-tyrosine to form peptidyl-O4'-phospho-L-tyrosine. [RESID:AA0039] |
olfactory nerve development | biological process | The process whose specific outcome is the progression of the olfactory nerve over time, from its formation to the mature structure. The olfactory nerve is a collection of sensory nerve rootlets that extend down from the olfactory bulb to the olfactory mucosa of the upper parts of the nasal cavity. This nerve conducts odor information to the brainstem. [GO_REF:0000021, GOC:cls, GOC:dgh, GOC:dph, GOC:jid, ISBN:0838580343] |
B cell differentiation | biological process | The process in which a precursor cell type acquires the specialized features of a B cell. A B cell is a lymphocyte of B lineage with the phenotype CD19-positive and capable of B cell mediated immunity. [GO_REF:0000022, GOC:mah] |
response to nutrient levels | biological process | Any process that results in a change in state or activity of a cell or an organism (in terms of movement, secretion, enzyme production, gene expression, etc.) as a result of a stimulus reflecting the presence, absence, or concentration of nutrients. [GOC:mah] |
peptidyl-tyrosine autophosphorylation | biological process | The phosphorylation by a protein of one or more of its own tyrosine amino acid residues, or a tyrosine residue on an identical protein. [PMID:10037737, PMID:10068444, PMID:10940390] |
nerve growth factor signaling pathway | biological process | The series of molecular signals initiated by nerve growth factor (NGF) binding to its receptor on the surface of a target cell, and ending with the regulation of a downstream cellular process, e.g. transcription. [GOC:bf, PMID:11520933] |
mechanoreceptor differentiation | biological process | The process in which a relatively unspecialized cell acquires specialized features of a mechanoreceptor, a cell specialized to transduce mechanical stimuli and relay that information centrally in the nervous system. [CL:0000199, GOC:jl] |
negative regulation of apoptotic process | biological process | Any process that stops, prevents, or reduces the frequency, rate or extent of cell death by apoptotic process. [GOC:jl, GOC:mtg_apoptosis] |
positive regulation of programmed cell death | biological process | Any process that activates or increases the frequency, rate or extent of programmed cell death, cell death resulting from activation of endogenous cellular processes. [GOC:jl] |
negative regulation of neuron apoptotic process | biological process | Any process that stops, prevents, or reduces the frequency, rate or extent of cell death by apoptotic process in neurons. [GOC:go_curators, GOC:mtg_apoptosis] |
positive regulation of GTPase activity | biological process | Any process that activates or increases the activity of a GTPase. [GOC:jl, GOC:mah] |
positive regulation of Ras protein signal transduction | biological process | Any process that activates or increases the frequency, rate or extent of Ras protein signal transduction. [GOC:bf] |
protein autophosphorylation | biological process | The phosphorylation by a protein of one or more of its own amino acid residues (cis-autophosphorylation), or residues on an identical protein (trans-autophosphorylation). [ISBN:0198506732] |
neurotrophin TRK receptor signaling pathway | biological process | The series of molecular signals initiated by neurotrophin binding to its receptor on the surface of a target cell where the receptor possesses tyrosine kinase activity, and ending with the regulation of a downstream cellular process, e.g. transcription. [GOC:bf, GOC:ceb, GOC:jc, GOC:signaling, PMID:12065629, Wikipedia:Trk_receptor] |
ephrin receptor signaling pathway | biological process | The series of molecular signals initiated by ephrin binding to its receptor, and ending with the regulation of a downstream cellular process, e.g. transcription. [GOC:ceb] |
sympathetic nervous system development | biological process | The process whose specific outcome is the progression of the sympathetic nervous system over time, from its formation to the mature structure. The sympathetic nervous system is one of the two divisions of the vertebrate autonomic nervous system (the other being the parasympathetic nervous system). The sympathetic preganglionic neurons have their cell bodies in the thoracic and lumbar regions of the spinal cord and connect to the paravertebral chain of sympathetic ganglia. Innervate heart and blood vessels, sweat glands, viscera and the adrenal medulla. Most sympathetic neurons, but not all, use noradrenaline as a post-ganglionic neurotransmitter. [FMA:9906, GOC:jid, GOC:sr] |
response to axon injury | biological process | Any process that results in a change in state or activity of a cell or an organism (in terms of movement, secretion, enzyme production, gene expression, etc.) as a result of an axon injury stimulus. [GOC:dgh, GOC:dph, GOC:jid, GOC:lm] |
detection of temperature stimulus involved in sensory perception of pain | biological process | The series of events involved in the perception of pain in which a temperature stimulus is received and converted into a molecular signal. [GOC:ai, GOC:dos] |
detection of mechanical stimulus involved in sensory perception of pain | biological process | The series of events involved in the perception of pain in which a mechanical stimulus is received and converted into a molecular signal. [GOC:ai, GOC:dos] |
positive regulation of NF-kappaB transcription factor activity | biological process | Any process that activates or increases the frequency, rate or extent of activity of the transcription factor NF-kappaB. [GOC:dph, GOC:tb, PMID:15087454, PMID:15170030] |
neuron apoptotic process | biological process | Any apoptotic process in a neuron, the basic cellular unit of nervous tissue. Each neuron consists of a body, an axon, and dendrites. Their purpose is to receive, conduct, and transmit impulses in the nervous system. [CL:0000540, GOC:mtg_apoptosis] |
response to hydrostatic pressure | biological process | Any process that results in a change in state or activity of a cell or an organism (in terms of movement, secretion, enzyme production, gene expression, etc.) as a result of a hydrostatic pressure stimulus. Hydrostatic pressure is the force acting on an object in a system where the fluid is at rest (as opposed to moving). The weight of the fluid above the object creates pressure on it. [Wikipedia:Hydrostatic_pressure] |
response to electrical stimulus | biological process | Any process that results in a change in state or activity of a cell or an organism (in terms of movement, secretion, enzyme production, gene expression, etc.) as a result of an electrical stimulus. [GOC:ai] |
positive regulation of synapse assembly | biological process | Any process that activates, maintains or increases the frequency, rate or extent of synapse assembly, the aggregation, arrangement and bonding together of a set of components to form a synapse. [GOC:ai, GOC:pr] |
positive regulation of synaptic transmission, glutamatergic | biological process | Any process that activates, maintains or increases the frequency, rate or extent of glutamatergic synaptic transmission, the process of communication from a neuron to another neuron across a synapse using the neurotransmitter glutamate. [GOC:ai] |
Sertoli cell development | biological process | The process whose specific outcome is the progression of a Sertoli cell over time, from its formation to the mature structure. Cell development does not include the steps involved in committing a cell to a Sertoli cell fate. [GOC:dph] |
axonogenesis involved in innervation | biological process | The neurite development process that generates a long process of a neuron, as it invades a target tissue. [GOC:dph, GOC:sart] |
behavioral response to formalin induced pain | biological process | Any process that results in a change in the behaviour of an organism as a result of a formalin pain stimulus. [GOC:dph] |
positive regulation of ERK1 and ERK2 cascade | biological process | Any process that activates or increases the frequency, rate or extent of signal transduction mediated by the ERK1 and ERK2 cascade. [GOC:mah] |
cellular response to nicotine | biological process | Any process that results in a change in state or activity of a cell (in terms of movement, secretion, enzyme production, gene expression, etc.) as a result of a nicotine stimulus. [GOC:mah] |
cellular response to nerve growth factor stimulus | biological process | A process that results in a change in state or activity of a cell (in terms of movement, secretion, enzyme production, gene expression, etc.) as a result of a nerve growth factor stimulus. [PMID:22399805, Wikipedia:Nerve_growth_factor] |
multicellular organism development | biological process | The biological process whose specific outcome is the progression of a multicellular organism over time from an initial condition (e.g. a zygote or a young adult) to a later condition (e.g. a multicellular animal or an aged adult). [GOC:dph, GOC:ems, GOC:isa_complete, GOC:tb] |
positive regulation of kinase activity | biological process | Any process that activates or increases the frequency, rate or extent of kinase activity, the catalysis of the transfer of a phosphate group, usually from ATP, to a substrate molecule. [GOC:mah] |
cell surface receptor protein tyrosine kinase signaling pathway | biological process | The series of molecular signals initiated by an extracellular ligand binding to a receptor on the surface of the target cell where the receptor possesses tyrosine kinase activity, and ending with the regulation of a downstream cellular process, e.g. transcription. [GOC:ceb, GOC:signaling] |
positive regulation of phosphatidylinositol 3-kinase/protein kinase B signal transduction | biological process | Any process that activates or increases the frequency, rate or extent of phosphatidylinositol 3-kinase/protein kinase B signal transduction. [GOC:ai] |