Page last updated: 2024-11-09

bi-78d3

Description Research Excerpts Clinical Trials Roles Classes Pathways Study Profile Bioassays Related Drugs Related Conditions Protein Interactions Research Growth Market Indicators

Cross-References

ID SourceID
PubMed CID2747117
CHEMBL ID508280
CHEBI ID94732
SCHEMBL ID8187066
MeSH IDM0578665

Synonyms (41)

Synonym
bi-78d3
bdbm26057
4-(2,3-dihydro-1,4-benzodioxin-6-yl)-5-[(5-nitro-1,3-thiazol-2-yl)sulfanyl]-4h-1,2,4-triazol-3-ol
4-(2,3-dihydro-1,4-benzodioxin-6-yl)-3-[(5-nitro-1,3-thiazol-2-yl)sulfanyl]-1h-1,2,4-triazol-5-one
SR-01000645315-1
CHEMBL508280 ,
883065-90-5
4-(2,3-dihydro-1,4-benzodioxin-6-yl)-3-(5-nitrothiazol-2-yl)sulfanyl-1h-1,2,4-triazol-5-one;bi-78d3
A842537
4-(2,3-dihydrobenzo[b][1,4]dioxin-6-yl)-3-((5-nitrothiazol-2-yl)thio)-1h-1,2,4-triazol-5(4h)-one ,
AKOS016006596
CCG-56351
bi 78d3
FT-0689696
NCGC00263145-01
S8201
BRD-K73982490-001-01-1
MLS006010634
smr004701639
DTXSID10372629
SCHEMBL8187066
4-(2,3-dihydro-1,4-benzodioxin-6-yl)-2,4-dihydro-5-[(5-nitro-2-thiazolyl)thio]-3h-1,2,4-triazol-3-one
AC-35341
4-(2,3-dihydrobenzo[b][1,4]dioxin-6-yl)-5-((5-nitrothiazol-2-yl)thio)-2,4-dihydro-3h-1,2,4-triazol-3-one
bi-78d3, >=98% (hplc)
CS-5718
HY-10366
EX-A970
4-(2,3-dihydro-1,4-benzodioxin-6-yl)-3-[(5-nitro-1,3-thiazol-2-yl)sulfanyl]-4,5-dihydro-1h-1,2,4-triazol-5-one
CHEBI:94732
mfcd01313575
4-(2,3-dihydrobenzo[b][1,4]dioxin-6-yl)-3-((5-nitro-thiazol-2-yl)thio)-1h-1,2,4-triazol-5(4h)-one
BCP17200
Q27166523
4-(2,3-dihydro-1,4-benzodioxin-6-yl)-3-[(5-nitro-2-thiazolyl)thio]-1h-1,2,4-triazol-5-one
jnk inhibitor x, bi-78d3 - cas 883065-90-5
HMS3677H22
HMS3413H22
CCG-268395
AS-55913
bdbm50526695

Research Excerpts

Bioavailability

ExcerptReferenceRelevance
"Cell membrane permeability is an important determinant for oral absorption and bioavailability of a drug molecule."( Highly predictive and interpretable models for PAMPA permeability.
Jadhav, A; Kerns, E; Nguyen, K; Shah, P; Sun, H; Xu, X; Yan, Z; Yu, KR, 2017
)
0.46
"The ATP-binding cassette transporter P-glycoprotein (P-gp) is known to limit both brain penetration and oral bioavailability of many chemotherapy drugs."( A High-Throughput Screen of a Library of Therapeutics Identifies Cytotoxic Substrates of P-glycoprotein.
Ambudkar, SV; Brimacombe, KR; Chen, L; Gottesman, MM; Guha, R; Hall, MD; Klumpp-Thomas, C; Lee, OW; Lee, TD; Lusvarghi, S; Robey, RW; Shen, M; Tebase, BG, 2019
)
0.51
[information is derived through text-mining from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Drug Classes (1)

ClassDescription
aryl sulfideAny organic sulfide in which the sulfur is attached to at least one aromatic group.
[compound class information is derived from Chemical Entities of Biological Interest (ChEBI), Hastings J, Owen G, Dekker A, Ennis M, Kale N, Muthukrishnan V, Turner S, Swainston N, Mendes P, Steinbeck C. (2016). ChEBI in 2016: Improved services and an expanding collection of metabolites. Nucleic Acids Res]

Protein Targets (11)

Potency Measurements

ProteinTaxonomyMeasurementAverage (µ)Min (ref.)Avg (ref.)Max (ref.)Bioassay(s)
Fumarate hydrataseHomo sapiens (human)Potency9.34950.00308.794948.0869AID1347053
PPM1D proteinHomo sapiens (human)Potency6.58420.00529.466132.9993AID1347411
EWS/FLI fusion proteinHomo sapiens (human)Potency4.98970.001310.157742.8575AID1259252; AID1259253; AID1259255; AID1259256
polyproteinZika virusPotency9.34950.00308.794948.0869AID1347053
Interferon betaHomo sapiens (human)Potency6.58420.00339.158239.8107AID1347411
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Inhibition Measurements

ProteinTaxonomyMeasurementAverageMin (ref.)Avg (ref.)Max (ref.)Bioassay(s)
Replicase polyprotein 1abBetacoronavirus England 1IC50 (µMol)3.80000.00403.43889.5100AID1640022
Replicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2IC50 (µMol)0.30000.00022.45859.9600AID1640021
Mitogen-activated protein kinase 8Homo sapiens (human)IC50 (µMol)0.36800.00201.01735.4200AID1603712; AID1798627; AID1798628; AID461678; AID473195
Mitogen-activated protein kinase 9Homo sapiens (human)IC50 (µMol)0.50000.00500.74755.2000AID461680
Mitogen-activated protein kinase 10Homo sapiens (human)IC50 (µMol)0.26950.00201.703510.0000AID1889891; AID1889892
Mitogen-activated protein kinase 1Rattus norvegicus (Norway rat)Ki2.30002.30002.30002.3000AID1896220
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Activation Measurements

ProteinTaxonomyMeasurementAverageMin (ref.)Avg (ref.)Max (ref.)Bioassay(s)
Mitogen-activated protein kinase 8Homo sapiens (human)EC50 (µMol)12.40000.01000.37381.2400AID473208
Mitogen-activated protein kinase 9Homo sapiens (human)EC50 (µMol)12.40000.01000.37381.2400AID473208
Mitogen-activated protein kinase 9Homo sapiens (human)Kd29.60000.00201.45968.1000AID461691; AID461692
Mitogen-activated protein kinase 10Homo sapiens (human)EC50 (µMol)12.40000.08700.49501.2400AID473208
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Biological Processes (72)

Processvia Protein(s)Taxonomy
cell surface receptor signaling pathway via JAK-STATInterferon betaHomo sapiens (human)
response to exogenous dsRNAInterferon betaHomo sapiens (human)
B cell activation involved in immune responseInterferon betaHomo sapiens (human)
cell surface receptor signaling pathwayInterferon betaHomo sapiens (human)
cell surface receptor signaling pathway via JAK-STATInterferon betaHomo sapiens (human)
response to virusInterferon betaHomo sapiens (human)
positive regulation of autophagyInterferon betaHomo sapiens (human)
cytokine-mediated signaling pathwayInterferon betaHomo sapiens (human)
natural killer cell activationInterferon betaHomo sapiens (human)
positive regulation of peptidyl-serine phosphorylation of STAT proteinInterferon betaHomo sapiens (human)
cellular response to interferon-betaInterferon betaHomo sapiens (human)
B cell proliferationInterferon betaHomo sapiens (human)
negative regulation of viral genome replicationInterferon betaHomo sapiens (human)
innate immune responseInterferon betaHomo sapiens (human)
positive regulation of innate immune responseInterferon betaHomo sapiens (human)
regulation of MHC class I biosynthetic processInterferon betaHomo sapiens (human)
negative regulation of T cell differentiationInterferon betaHomo sapiens (human)
positive regulation of transcription by RNA polymerase IIInterferon betaHomo sapiens (human)
defense response to virusInterferon betaHomo sapiens (human)
type I interferon-mediated signaling pathwayInterferon betaHomo sapiens (human)
neuron cellular homeostasisInterferon betaHomo sapiens (human)
cellular response to exogenous dsRNAInterferon betaHomo sapiens (human)
cellular response to virusInterferon betaHomo sapiens (human)
negative regulation of Lewy body formationInterferon betaHomo sapiens (human)
negative regulation of T-helper 2 cell cytokine productionInterferon betaHomo sapiens (human)
positive regulation of apoptotic signaling pathwayInterferon betaHomo sapiens (human)
response to exogenous dsRNAInterferon betaHomo sapiens (human)
B cell differentiationInterferon betaHomo sapiens (human)
natural killer cell activation involved in immune responseInterferon betaHomo sapiens (human)
adaptive immune responseInterferon betaHomo sapiens (human)
T cell activation involved in immune responseInterferon betaHomo sapiens (human)
humoral immune responseInterferon betaHomo sapiens (human)
JUN phosphorylationMitogen-activated protein kinase 8Homo sapiens (human)
response to UVMitogen-activated protein kinase 8Homo sapiens (human)
negative regulation of apoptotic processMitogen-activated protein kinase 8Homo sapiens (human)
cellular response to lipopolysaccharideMitogen-activated protein kinase 8Homo sapiens (human)
protein phosphorylationMitogen-activated protein kinase 8Homo sapiens (human)
response to oxidative stressMitogen-activated protein kinase 8Homo sapiens (human)
JNK cascadeMitogen-activated protein kinase 8Homo sapiens (human)
JUN phosphorylationMitogen-activated protein kinase 8Homo sapiens (human)
positive regulation of gene expressionMitogen-activated protein kinase 8Homo sapiens (human)
regulation of macroautophagyMitogen-activated protein kinase 8Homo sapiens (human)
peptidyl-serine phosphorylationMitogen-activated protein kinase 8Homo sapiens (human)
peptidyl-threonine phosphorylationMitogen-activated protein kinase 8Homo sapiens (human)
positive regulation of cyclase activityMitogen-activated protein kinase 8Homo sapiens (human)
positive regulation of cell killingMitogen-activated protein kinase 8Homo sapiens (human)
negative regulation of protein bindingMitogen-activated protein kinase 8Homo sapiens (human)
regulation of protein localizationMitogen-activated protein kinase 8Homo sapiens (human)
cellular response to amino acid starvationMitogen-activated protein kinase 8Homo sapiens (human)
cellular response to oxidative stressMitogen-activated protein kinase 8Homo sapiens (human)
cellular response to reactive oxygen speciesMitogen-activated protein kinase 8Homo sapiens (human)
Fc-epsilon receptor signaling pathwayMitogen-activated protein kinase 8Homo sapiens (human)
regulation of circadian rhythmMitogen-activated protein kinase 8Homo sapiens (human)
positive regulation of apoptotic processMitogen-activated protein kinase 8Homo sapiens (human)
negative regulation of apoptotic processMitogen-activated protein kinase 8Homo sapiens (human)
rhythmic processMitogen-activated protein kinase 8Homo sapiens (human)
positive regulation of protein metabolic processMitogen-activated protein kinase 8Homo sapiens (human)
stress-activated MAPK cascadeMitogen-activated protein kinase 8Homo sapiens (human)
cellular response to mechanical stimulusMitogen-activated protein kinase 8Homo sapiens (human)
cellular response to cadmium ionMitogen-activated protein kinase 8Homo sapiens (human)
cellular senescenceMitogen-activated protein kinase 8Homo sapiens (human)
energy homeostasisMitogen-activated protein kinase 8Homo sapiens (human)
positive regulation of NLRP3 inflammasome complex assemblyMitogen-activated protein kinase 8Homo sapiens (human)
response to mechanical stimulusMitogen-activated protein kinase 8Homo sapiens (human)
positive regulation of establishment of protein localization to mitochondrionMitogen-activated protein kinase 8Homo sapiens (human)
protein phosphorylationMitogen-activated protein kinase 9Homo sapiens (human)
JNK cascadeMitogen-activated protein kinase 9Homo sapiens (human)
positive regulation of gene expressionMitogen-activated protein kinase 9Homo sapiens (human)
positive regulation of macrophage derived foam cell differentiationMitogen-activated protein kinase 9Homo sapiens (human)
positive regulation of protein ubiquitinationMitogen-activated protein kinase 9Homo sapiens (human)
positive regulation of proteasomal ubiquitin-dependent protein catabolic processMitogen-activated protein kinase 9Homo sapiens (human)
cellular response to reactive oxygen speciesMitogen-activated protein kinase 9Homo sapiens (human)
Fc-epsilon receptor signaling pathwayMitogen-activated protein kinase 9Homo sapiens (human)
regulation of circadian rhythmMitogen-activated protein kinase 9Homo sapiens (human)
rhythmic processMitogen-activated protein kinase 9Homo sapiens (human)
modulation of chemical synaptic transmissionMitogen-activated protein kinase 9Homo sapiens (human)
protein localization to tricellular tight junctionMitogen-activated protein kinase 9Homo sapiens (human)
cellular response to cadmium ionMitogen-activated protein kinase 9Homo sapiens (human)
positive regulation of podosome assemblyMitogen-activated protein kinase 9Homo sapiens (human)
cellular senescenceMitogen-activated protein kinase 9Homo sapiens (human)
inflammatory response to woundingMitogen-activated protein kinase 9Homo sapiens (human)
apoptotic signaling pathwayMitogen-activated protein kinase 9Homo sapiens (human)
positive regulation of cytokine production involved in inflammatory responseMitogen-activated protein kinase 9Homo sapiens (human)
positive regulation of apoptotic signaling pathwayMitogen-activated protein kinase 9Homo sapiens (human)
protein phosphorylationMitogen-activated protein kinase 10Homo sapiens (human)
signal transductionMitogen-activated protein kinase 10Homo sapiens (human)
JNK cascadeMitogen-activated protein kinase 10Homo sapiens (human)
response to light stimulusMitogen-activated protein kinase 10Homo sapiens (human)
Fc-epsilon receptor signaling pathwayMitogen-activated protein kinase 10Homo sapiens (human)
regulation of circadian rhythmMitogen-activated protein kinase 10Homo sapiens (human)
rhythmic processMitogen-activated protein kinase 10Homo sapiens (human)
cellular senescenceMitogen-activated protein kinase 10Homo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Molecular Functions (26)

Processvia Protein(s)Taxonomy
cytokine activityInterferon betaHomo sapiens (human)
cytokine receptor bindingInterferon betaHomo sapiens (human)
type I interferon receptor bindingInterferon betaHomo sapiens (human)
protein bindingInterferon betaHomo sapiens (human)
chloramphenicol O-acetyltransferase activityInterferon betaHomo sapiens (human)
3'-5'-RNA exonuclease activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
RNA-dependent RNA polymerase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
cysteine-type endopeptidase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
mRNA 5'-cap (guanine-N7-)-methyltransferase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
mRNA (nucleoside-2'-O-)-methyltransferase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
mRNA guanylyltransferase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
RNA endonuclease activity, producing 3'-phosphomonoestersReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
ISG15-specific peptidase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
5'-3' RNA helicase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
protein guanylyltransferase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
protein serine/threonine kinase activityMitogen-activated protein kinase 8Homo sapiens (human)
JUN kinase activityMitogen-activated protein kinase 8Homo sapiens (human)
protein bindingMitogen-activated protein kinase 8Homo sapiens (human)
ATP bindingMitogen-activated protein kinase 8Homo sapiens (human)
enzyme bindingMitogen-activated protein kinase 8Homo sapiens (human)
protein phosphatase bindingMitogen-activated protein kinase 8Homo sapiens (human)
histone deacetylase regulator activityMitogen-activated protein kinase 8Homo sapiens (human)
histone deacetylase bindingMitogen-activated protein kinase 8Homo sapiens (human)
protein serine kinase activityMitogen-activated protein kinase 8Homo sapiens (human)
protein serine/threonine kinase bindingMitogen-activated protein kinase 8Homo sapiens (human)
protein serine/threonine kinase activityMitogen-activated protein kinase 9Homo sapiens (human)
JUN kinase activityMitogen-activated protein kinase 9Homo sapiens (human)
protein serine/threonine/tyrosine kinase activityMitogen-activated protein kinase 9Homo sapiens (human)
protein bindingMitogen-activated protein kinase 9Homo sapiens (human)
ATP bindingMitogen-activated protein kinase 9Homo sapiens (human)
protein serine kinase activityMitogen-activated protein kinase 9Homo sapiens (human)
JUN kinase activityMitogen-activated protein kinase 10Homo sapiens (human)
MAP kinase kinase activityMitogen-activated protein kinase 10Homo sapiens (human)
protein bindingMitogen-activated protein kinase 10Homo sapiens (human)
ATP bindingMitogen-activated protein kinase 10Homo sapiens (human)
protein serine kinase activityMitogen-activated protein kinase 10Homo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Ceullar Components (14)

Processvia Protein(s)Taxonomy
extracellular spaceInterferon betaHomo sapiens (human)
extracellular regionInterferon betaHomo sapiens (human)
double membrane vesicle viral factory outer membraneReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
cytoplasmMitogen-activated protein kinase 8Homo sapiens (human)
nucleusMitogen-activated protein kinase 8Homo sapiens (human)
nucleoplasmMitogen-activated protein kinase 8Homo sapiens (human)
cytosolMitogen-activated protein kinase 8Homo sapiens (human)
axonMitogen-activated protein kinase 8Homo sapiens (human)
synapseMitogen-activated protein kinase 8Homo sapiens (human)
basal dendriteMitogen-activated protein kinase 8Homo sapiens (human)
nucleusMitogen-activated protein kinase 8Homo sapiens (human)
nucleoplasmMitogen-activated protein kinase 9Homo sapiens (human)
mitochondrionMitogen-activated protein kinase 9Homo sapiens (human)
cytosolMitogen-activated protein kinase 9Homo sapiens (human)
plasma membraneMitogen-activated protein kinase 9Homo sapiens (human)
nuclear speckMitogen-activated protein kinase 9Homo sapiens (human)
Schaffer collateral - CA1 synapseMitogen-activated protein kinase 9Homo sapiens (human)
cytoplasmMitogen-activated protein kinase 9Homo sapiens (human)
nucleusMitogen-activated protein kinase 9Homo sapiens (human)
nucleoplasmMitogen-activated protein kinase 10Homo sapiens (human)
cytoplasmMitogen-activated protein kinase 10Homo sapiens (human)
mitochondrionMitogen-activated protein kinase 10Homo sapiens (human)
cytosolMitogen-activated protein kinase 10Homo sapiens (human)
plasma membraneMitogen-activated protein kinase 10Homo sapiens (human)
nucleusMitogen-activated protein kinase 10Homo sapiens (human)
cytoplasmMitogen-activated protein kinase 10Homo sapiens (human)
nucleoplasmMitogen-activated protein kinase 1Rattus norvegicus (Norway rat)
cytosolMitogen-activated protein kinase 1Rattus norvegicus (Norway rat)
[Information is prepared from geneontology information from the June-17-2024 release]

Bioassays (77)

Assay IDTitleYearJournalArticle
AID1640018Luciferase/luciferin-expressing antifolate-resistant parasites were used to infect a culture of HepG2 cells that were pre-incubated with compounds. Infected hepatocytes emit light due to the luciferase reaction. Assay results are presented as the percent 2018Science (New York, N.Y.), 12-07, Volume: 362, Issue:6419
Open-source discovery of chemical leads for next-generation chemoprotective antimalarials.
AID461691Inhibition of JNK2 C163S mutant by isothermal calorimetry2010Bioorganic & medicinal chemistry, Jan-15, Volume: 18, Issue:2
Synthesis and optimization of thiadiazole derivatives as a novel class of substrate competitive c-Jun N-terminal kinase inhibitors.
AID473208Inhibition of TNF-alpha-stimulated c-Jun phosphorylation in human HeLa cells treated 60 mins before TNFalpha challenge measured after 30 mins TR-FRET analysis2010Journal of medicinal chemistry, Apr-22, Volume: 53, Issue:8
Small molecule JNK (c-Jun N-terminal kinase) inhibitors.
AID461688Metabolic stability in rat plasma assessed as compound remaining after 60 mins by LC/MS-MS2010Bioorganic & medicinal chemistry, Jan-15, Volume: 18, Issue:2
Synthesis and optimization of thiadiazole derivatives as a novel class of substrate competitive c-Jun N-terminal kinase inhibitors.
AID1889891Inhibition of JNK3 (unknown origin) irradiated with 400 nm light2022Journal of medicinal chemistry, 03-10, Volume: 65, Issue:5
Unraveling the Design and Discovery of c-Jun N-Terminal Kinase Inhibitors and Their Therapeutic Potential in Human Diseases.
AID1269013Inhibition of JNK1 (unknown origin) expressed in HEK293 cells assessed as suppression of anisomycin-induced c-Jun phosphorylation incubated for 30 mins by Western blot analysis2016Bioorganic & medicinal chemistry letters, Jan-15, Volume: 26, Issue:2
Novel compounds reducing IRS-1 serine phosphorylation for treatment of diabetes.
AID1269014Inhibition of anisomycin-induced phosphorylation of JNK1 (unknown origin) expressed in HEK293 cells incubated for 30 mins by Western blot analysis2016Bioorganic & medicinal chemistry letters, Jan-15, Volume: 26, Issue:2
Novel compounds reducing IRS-1 serine phosphorylation for treatment of diabetes.
AID461678Inhibition of JNK1 by TR-FRET assay2010Bioorganic & medicinal chemistry, Jan-15, Volume: 18, Issue:2
Synthesis and optimization of thiadiazole derivatives as a novel class of substrate competitive c-Jun N-terminal kinase inhibitors.
AID1889892Inhibition of JNK3 (unknown origin) in dark2022Journal of medicinal chemistry, 03-10, Volume: 65, Issue:5
Unraveling the Design and Discovery of c-Jun N-Terminal Kinase Inhibitors and Their Therapeutic Potential in Human Diseases.
AID473195Inhibition of JNK12010Journal of medicinal chemistry, Apr-22, Volume: 53, Issue:8
Small molecule JNK (c-Jun N-terminal kinase) inhibitors.
AID1269012Inhibition of JNK1 (unknown origin) expressed in HEK293 cells assessed as suppression of anisomycin-induced IRS-1(Ser307) phosphorylation incubated for 30 mins by Western blot analysis2016Bioorganic & medicinal chemistry letters, Jan-15, Volume: 26, Issue:2
Novel compounds reducing IRS-1 serine phosphorylation for treatment of diabetes.
AID461689Permeability assessed as drug flux at pH 7.4 by PAMPA assay2010Bioorganic & medicinal chemistry, Jan-15, Volume: 18, Issue:2
Synthesis and optimization of thiadiazole derivatives as a novel class of substrate competitive c-Jun N-terminal kinase inhibitors.
AID1896220Binding affinity to rat full-length ERK2 using FQRKTLQRRNLKGLNLNL-XXX-TGPLSPGPF peptide as substrate in presence of [gamma33P]ATP by scintillation counter analysis2022Journal of medicinal chemistry, 10-27, Volume: 65, Issue:20
Targeting Extracellular Signal-Regulated Protein Kinase 1/2 (ERK1/2) in Cancer: An Update on Pharmacological Small-Molecule Inhibitors.
AID1640019Luciferase/luciferin-expressing antifolate-resistant parasites were used to infect a culture of HepG2 cells that were pre-incubated with compounds. Infected hepatocytes emit light due to the luciferase reaction. Assay results are presented as the percent 2018Science (New York, N.Y.), 12-07, Volume: 362, Issue:6419
Open-source discovery of chemical leads for next-generation chemoprotective antimalarials.
AID1603712Inhibition of JNK1 (unknown origin) using ATF2 as substrate after 1 hr by Lanthascreen TR-FRET assay2019Journal of medicinal chemistry, 07-25, Volume: 62, Issue:14
Kinase Atlas: Druggability Analysis of Potential Allosteric Sites in Kinases.
AID416985Inhibition of JNK by time-resolved FRET assay2009Journal of medicinal chemistry, Apr-09, Volume: 52, Issue:7
Design, synthesis, and structure-activity relationship of substrate competitive, selective, and in vivo active triazole and thiadiazole inhibitors of the c-Jun N-terminal kinase.
AID461692Inhibition of wild-type JNK2 by isothermal calorimetry2010Bioorganic & medicinal chemistry, Jan-15, Volume: 18, Issue:2
Synthesis and optimization of thiadiazole derivatives as a novel class of substrate competitive c-Jun N-terminal kinase inhibitors.
AID461680Displacement of biotin-labeled pep-JIP1from JNK2 by DELFIA assay2010Bioorganic & medicinal chemistry, Jan-15, Volume: 18, Issue:2
Synthesis and optimization of thiadiazole derivatives as a novel class of substrate competitive c-Jun N-terminal kinase inhibitors.
AID416983Displacement of biotin-labeled pep-JIP11 from JNK by DELFIA assay2009Journal of medicinal chemistry, Apr-09, Volume: 52, Issue:7
Design, synthesis, and structure-activity relationship of substrate competitive, selective, and in vivo active triazole and thiadiazole inhibitors of the c-Jun N-terminal kinase.
AID1347412qHTS assay to identify inhibitors of the type 1 interferon - major histocompatibility complex class I in skeletal muscle: Counter screen cell viability and HiBit confirmation2020ACS chemical biology, 07-17, Volume: 15, Issue:7
High-Throughput Screening to Identify Inhibitors of the Type I Interferon-Major Histocompatibility Complex Class I Pathway in Skeletal Muscle.
AID1645848NCATS Kinetic Aqueous Solubility Profiling2019Bioorganic & medicinal chemistry, 07-15, Volume: 27, Issue:14
Predictive models of aqueous solubility of organic compounds built on A large dataset of high integrity.
AID1347411qHTS to identify inhibitors of the type 1 interferon - major histocompatibility complex class I in skeletal muscle: primary screen against the NCATS Mechanism Interrogation Plate v5.0 (MIPE) Libary2020ACS chemical biology, 07-17, Volume: 15, Issue:7
High-Throughput Screening to Identify Inhibitors of the Type I Interferon-Major Histocompatibility Complex Class I Pathway in Skeletal Muscle.
AID1508591NCATS Rat Liver Microsome Stability Profiling2020Scientific reports, 11-26, Volume: 10, Issue:1
Retrospective assessment of rat liver microsomal stability at NCATS: data and QSAR models.
AID1347091qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for SJ-GBM2 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347102qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for Rh18 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1296008Cytotoxic Profiling of Annotated Libraries Using Quantitative High-Throughput Screening2020SLAS discovery : advancing life sciences R & D, 01, Volume: 25, Issue:1
Cytotoxic Profiling of Annotated and Diverse Chemical Libraries Using Quantitative High-Throughput Screening.
AID1347095qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for NB-EBc1 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347106qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for control Hh wild type fibroblast cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347116qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for SJ-GBM2 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347101qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for BT-12 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347115qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for NB-EBc1 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347112qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for BT-12 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347103qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for OHS-50 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347122qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for U-2 OS cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347094qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for BT-37 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347125qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for Rh18 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347110qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for A673 cells)2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID686947qHTS for small molecule inhibitors of Yes1 kinase: Primary Screen2013Bioorganic & medicinal chemistry letters, Aug-01, Volume: 23, Issue:15
Identification of potent Yes1 kinase inhibitors using a library screening approach.
AID1347098qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for SK-N-SH cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347127qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for Saos-2 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347090qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for DAOY cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347113qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for LAN-5 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347121qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for control Hh wild type fibroblast cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1346987P-glycoprotein substrates identified in KB-8-5-11 adenocarcinoma cell line, qHTS therapeutic library screen2019Molecular pharmacology, 11, Volume: 96, Issue:5
A High-Throughput Screen of a Library of Therapeutics Identifies Cytotoxic Substrates of P-glycoprotein.
AID1347093qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for SK-N-MC cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347118qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for TC32 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1508612NCATS Parallel Artificial Membrane Permeability Assay (PAMPA) Profiling2017Bioorganic & medicinal chemistry, 02-01, Volume: 25, Issue:3
Highly predictive and interpretable models for PAMPA permeability.
AID1346986P-glycoprotein substrates identified in KB-3-1 adenocarcinoma cell line, qHTS therapeutic library screen2019Molecular pharmacology, 11, Volume: 96, Issue:5
A High-Throughput Screen of a Library of Therapeutics Identifies Cytotoxic Substrates of P-glycoprotein.
AID1347107qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for Rh30 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347086qHTS for Inhibitors of the Functional Ribonucleoprotein Complex (vRNP) of Lymphocytic Choriomeningitis Arenaviruses (LCMV): LCMV Primary Screen - GLuc reporter signal2020Antiviral research, 01, Volume: 173A cell-based, infectious-free, platform to identify inhibitors of lassa virus ribonucleoprotein (vRNP) activity.
AID1347126qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for Rh30 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347092qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for A673 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347108qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for Rh41 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1508630Primary qHTS for small molecule stabilizers of the endoplasmic reticulum resident proteome: Secreted ER Calcium Modulated Protein (SERCaMP) assay2021Cell reports, 04-27, Volume: 35, Issue:4
A target-agnostic screen identifies approved drugs to stabilize the endoplasmic reticulum-resident proteome.
AID1347105qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for MG 63 (6-TG R) cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1745845Primary qHTS for Inhibitors of ATXN expression
AID1347154Primary screen GU AMC qHTS for Zika virus inhibitors2020Proceedings of the National Academy of Sciences of the United States of America, 12-08, Volume: 117, Issue:49
Therapeutic candidates for the Zika virus identified by a high-throughput screen for Zika protease inhibitors.
AID1347111qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for SK-N-MC cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347119qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for MG 63 (6-TG R) cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347114qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for DAOY cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347109qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for NB1643 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347129qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for SK-N-SH cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347097qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for Saos-2 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347128qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for OHS-50 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347089qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for TC32 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347099qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for NB1643 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347083qHTS for Inhibitors of the Functional Ribonucleoprotein Complex (vRNP) of Lassa (LASV) Arenavirus: Viability assay - alamar blue signal for LASV Primary Screen2020Antiviral research, 01, Volume: 173A cell-based, infectious-free, platform to identify inhibitors of lassa virus ribonucleoprotein (vRNP) activity.
AID1347124qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for RD cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347082qHTS for Inhibitors of the Functional Ribonucleoprotein Complex (vRNP) of Lassa (LASV) Arenavirus: LASV Primary Screen - GLuc reporter signal2020Antiviral research, 01, Volume: 173A cell-based, infectious-free, platform to identify inhibitors of lassa virus ribonucleoprotein (vRNP) activity.
AID1347096qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for U-2 OS cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347117qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for BT-37 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347123qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for Rh41 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347100qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for LAN-5 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347104qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for RD cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1798628In Vitro Kinase Assay (LanthaScreen Kinase Assay) from Article 10.1073/pnas.0805677105: \\Identification of a new JNK inhibitor targeting the JNK-JIP interaction site.\\2008Proceedings of the National Academy of Sciences of the United States of America, Oct-28, Volume: 105, Issue:43
Identification of a new JNK inhibitor targeting the JNK-JIP interaction site.
AID1798627DELFIA Assay (Dissociation Enhanced Lanthanide Fluoro-Immuno Assay) from Article 10.1073/pnas.0805677105: \\Identification of a new JNK inhibitor targeting the JNK-JIP interaction site.\\2008Proceedings of the National Academy of Sciences of the United States of America, Oct-28, Volume: 105, Issue:43
Identification of a new JNK inhibitor targeting the JNK-JIP interaction site.
AID1159607Screen for inhibitors of RMI FANCM (MM2) intereaction2016Journal of biomolecular screening, Jul, Volume: 21, Issue:6
A High-Throughput Screening Strategy to Identify Protein-Protein Interaction Inhibitors That Block the Fanconi Anemia DNA Repair Pathway.
[information is prepared from bioassay data collected from National Library of Medicine (NLM), extracted Dec-2023]

Research

Studies (22)

TimeframeStudies, This Drug (%)All Drugs %
pre-19900 (0.00)18.7374
1990's0 (0.00)18.2507
2000's2 (9.09)29.6817
2010's11 (50.00)24.3611
2020's9 (40.91)2.80
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Market Indicators

Research Demand Index: 17.09

According to the monthly volume, diversity, and competition of internet searches for this compound, as well the volume and growth of publications, there is estimated to be moderate demand-to-supply ratio for research on this compound.

MetricThis Compound (vs All)
Research Demand Index17.09 (24.57)
Research Supply Index3.14 (2.92)
Research Growth Index5.04 (4.65)
Search Engine Demand Index10.37 (26.88)
Search Engine Supply Index2.00 (0.95)

This Compound (17.09)

All Compounds (24.57)

Study Types

Publication TypeThis drug (%)All Drugs (%)
Trials0 (0.00%)5.53%
Reviews2 (9.09%)6.00%
Case Studies0 (0.00%)4.05%
Observational0 (0.00%)0.25%
Other20 (90.91%)84.16%
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]