Page last updated: 2024-11-11

benzyloxycarbonylvalyl-alanyl-aspartyl fluoromethyl ketone

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

Description

benzyloxycarbonylvalyl-alanyl-aspartyl fluoromethyl ketone: an interleukin-1beta converting enzyme (ICE)-like protease inhibitor [Medical Subject Headings (MeSH), National Library of Medicine, extracted Dec-2023]

Cross-References

ID SourceID
PubMed CID5497171
CHEMBL ID205821
SCHEMBL ID17494194
MeSH IDM0254355
PubMed CID87146076
SCHEMBL ID713780
MeSH IDM0254355

Synonyms (48)

Synonym
l-alaninamide, n-[(phenylmethoxy)carbonyl]-l-valyl-n-[(1s)-1-(carboxymethyl)-3-fluoro-2-oxopropyl]-
l-alaninamide, n-[(phenylmethoxy)carbonyl]-l-valyl-n-[1-(carboxymethyl)-3-fluoro-2-oxopropyl]-, (s)-
z-val-ala-asp fluoromethyl ketone
l-alaninamide, n-[(phenylmethoxy)carbonyl]-l-valyl-n-[(1s)-1-(carboxymethyl)-3-fluoro-2-oxopropyl]- (9ci)
carbobenzyloxy-val-ala-asp-alpha-fluoromethylketone
161401-82-7
caspase inhibitor vi
(3s)-5-fluoro-3-[[(2s)-2-[[(2s)-3-methyl-2-(phenylmethoxycarbonylamino)butanoyl]amino]propanoyl]amino]-4-oxopentanoic acid
z-val-ala-asp-ch2f
n-[(benzyloxy)carbonyl]-l-valyl-n-[(2s)-1-carboxy-4-fluoro-3-oxo-2-butanyl]-l-alaninamide
DB07744
CHEMBL205821
S8102
SCHEMBL17494194
DTXSID20420584
z-val-ala-asp fluoromethyl ketone, powder, >=90% (tlc)
z-vad
z-vad(oh)-fmk
(5s,8s,11s)-11-(2-fluoroacetyl)-5-isopropyl-8-methyl-3,6,9-trioxo-1-phenyl-2-oxa-4,7,10-triazatridecan-13-oic acid
AKOS032945169
z-vad(oh)-fmk (caspase inhibitor vi).cd
benzyloxycarbonyl-val-ala-asp-fluoromethylketone
n-benzyloxycarbonyl-val-ala-asp-fluoromethyl-ketone
n-benzyloxycarbonyl-val-ala-asp fluoromethylketone
n-benzyloxycarbonyl-val-ala-asp fluoromethyl ketone
benzyloxycarbonyl-val-ala-asp-ch2f
benzyloxycarbonyl-val-ala-asp fluoromethyl ketone
benzyloxycarbonyl-val-ala-asp fluoromethylketone
n-benzyloxycarbonyl-val-ala-asp-fluoromethylketone
benzyloxycarbonyl-val-ala-asp-fluoromethyl ketone
z-val-ala-asp-fluoromethyl ketone
benzyloxycarbonyl-val-ala-asp-fluoromethyl-ketone
cbz-val-ala-asp-fluoromethyl ketone
z-val-ala-asp fluoromethylketone
n-benzyloxycarbonyl-val-ala-asp-fluoromethyl ketone
z-val-ala-asp-fluoromethyl-ketone
A16340
CS-0015633
HY-16658B
CCG-269266
AT26054
MS-28244
NCGC00388311-01
mfcd03452883
(5s,8s,11s)-11-(2-fluoroacetyl)-5-isopropyl-8-methyl-3,6,9-trioxo-1-phenyl-2-oxa-4,7,10-triazatridecan-13-oicacid
PD193783
benzyloxycarbonylvalyl-alanyl-aspartyl fluoromethyl ketone
SCHEMBL713780

Research Excerpts

Toxicity

ExcerptReferenceRelevance
"Chloramphenicol (CAP), a board spectrum antibiotic widely used in many developing countries, has toxic side effects on bone marrow, the most serious of which is aplastic anemia."( Effects of antioxidants and a caspase inhibitor on chloramphenicol-induced toxicity of human bone marrow and HL-60 cells.
Chan, LC; Holt, DE; Kong, CT; Lie, AK; Ma, SK, 2000
)
0.31
" The specific metal responsible for the toxicity was not determined; the metals common to each of the toxic archwires were nickel, iron, and chromium."( In vitro cytotoxicity of orthodontic archwires in cortical cell cultures.
David, A; Lobner, D, 2004
)
0.32
" Also, this information is vital for the future development of safe biomedical systems."( Cytotoxicity characterization of catanionic vesicles in RAW 264.7 murine macrophage-like cells.
Chang, CH; Chiu, HW; Jan, MS; Kuo, JH; Li, CT, 2005
)
0.33
" Taken together our data reveal that homocysteine is toxic to cerebellar Purkinje neurons in vitro, inhibiting both their survival and the outgrowth of neurites."( Neurotoxic effects of homocysteine on cerebellar Purkinje neurons in vitro.
Doherty, GH; Oldreive, CE, 2007
)
0.34
" The rat amylin 1-37 and 8-37 fibrils are toxic in both human pancreatic islet and neuronal cell culture systems."( Fibril formation and toxicity of the non-amyloidogenic rat amylin peptide.
Harris, JR; Milton, NG, 2013
)
0.39
" Sunscreens containing UV filters are suggested as sun safe practices, but safety of UV filters remains in controversies."( Benzophenone 1 induced photogenotoxicity and apoptosis via release of cytochrome c and Smac/DIABLO at environmental UV radiation.
Amar, SK; Chaturvedi, RK; Chopra, D; Dubey, D; Goyal, S; Ray, RS; Shankar, J; Singh, J; Srivastav, AK, 2015
)
0.42
"Cardiotoxicity is a predominant side-effect of nilotinib during chronic myeloid leukemia treatment."( Caspase-Independent Pathway is Related to Nilotinib Cytotoxicity in Cultured Cardiomyocytes.
Chen, Y; Li, G; Meng, Z; Wei, H; Xu, Y; Yang, Q; Zhang, C, 2017
)
0.46
" Intraperitoneal injection of FMK or Nec-1 could counteract the toxic reactions induced by TP-LPS co-treatment."( A new perspective of triptolide-associated hepatotoxicity: Liver hypersensitivity upon LPS stimulation.
Chen, X; Ding, J; Hasnat, M; Jiang, Z; Liang, P; Sun, L; Yuan, Z; Zhang, H; Zhang, L, 2019
)
0.51

Compound-Compound Interactions

ExcerptReferenceRelevance
" The pan-caspase inhibitor, zVAD-fmk, inhibits apoptosis induced in combination with 5FU and mTOR inhibitor."( Synergistic antiproliferative effect of mTOR inhibitors in combination with 5-fluorouracil in scirrhous gastric cancer.
Doi, Y; Hirakawa, K; Kaizaki, R; Matsuzaki, T; Ohira, M; Sawada, T; Yashiro, M; Yasuda, K, 2009
)
0.35

Dosage Studied

ExcerptRelevanceReference
" Our data show that combining caspase inhibitors and bFGF lengthens the treatment window for the second treatment, plus lowers the dosage requirements for neuroprotection."( Synergistic protective effect of caspase inhibitors and bFGF against brain injury induced by transient focal ischaemia.
Dalkara, T; Hirt, L; Ma, J; Moskowitz, MA; Qiu, J, 2001
)
0.31
" Induction of apoptosis increased with the dosage and binding of anti-HLA mAbs."( Induction of apoptosis in human lymphocytes by human anti-HLA class I antibodies.
Daniel, D; Mulder, A; Opelz, G; Süsal, C, 2003
)
0.32
" We show that at therapeutic dosage (or at micromolar range), flavopiridol almost completely prevents colchicine-induced apoptosis in cerebellar granule neurones."( Neuroprotective action of flavopiridol, a cyclin-dependent kinase inhibitor, in colchicine-induced apoptosis.
Bravo, R; Bruna, A; Caelles, C; Camarasa, J; Camins, A; Canudas, AM; Escubedo, E; Jiménez, A; Jorda, EG; Pallàs, M; Pubill, D; Verdaguer, E, 2003
)
0.32
" In vivo, there were significant tumor reductions (62 to >99% reduction) for all dosage regimens compared with untreated controls (P <0."( The effects of taurolidine, a novel antineoplastic agent, on human malignant mesothelioma.
Calabresi, P; Monfils, B; Nici, L, 2004
)
0.32
"In a preliminary study, we found that benzyloxycarbonyl-Val-Ala-Asp(OMe)-fluoromethylketone (zVAD- fmk), unlike Boc-aspartyl(OMe)-fluoromethylketone (BocD-fmk), at usual dosage could not prevent genistein-induced apoptosis of p815 mastocytoma cells."( zVAD-fmk, unlike BocD-fmk, does not inhibit caspase-6 acting on 14-3-3/Bad pathway in apoptosis of p815 mastocytoma cells.
Baek, SJ; Jeong, BK; Jeong, JH; Jeong, SH; Kim, JM; Kim, TH; Kwon, TK; Park, BS; Park, HT; Yee, SB; Yoo, YH; Yoon, I, 2006
)
0.33
" Dose-response studies showed that lower concentrations of z-FA-CMK induced apoptosis in Jurkat T cells whereas higher concentrations induced necrosis."( The cathepsin B inhibitor, z-FA-CMK is toxic and readily induced cell death in human T lymphocytes.
Chow, SC; Liow, KY, 2013
)
0.39
"3 µM) dosage increased lysosomal activity and induced autophagy and higher (1."( Realgar (As4S4) nanoparticles and arsenic trioxide (As2O3) induced autophagy and apoptosis in human melanoma cells in vitro.
Balaz, P; Bujnakova, Z; Cholujova, D; Duraj, J; Gronesova, P; Hunakova, L; Lee, TC; Pastorek, M; Sedlak, J, 2014
)
0.4
" A dose-response relationship was observed for all effects."( Ammonium accumulation is a primary effect of 2-methylcitrate exposure in an in vitro model for brain damage in methylmalonic aciduria.
Ballhausen, D; Braissant, O; Cudré-Cung, HP; do Vale-Pereira, S; Henry, H; Ivanisevic, J; Remacle, N; Tavel, D; Zavadakova, P, 2016
)
0.43
[information is derived through text-mining from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Protein Targets (4)

Inhibition Measurements

ProteinTaxonomyMeasurementAverageMin (ref.)Avg (ref.)Max (ref.)Bioassay(s)
Caspase-1Mus musculus (house mouse)Ki0.01500.00900.01200.0150AID1340789
Caspase-3Homo sapiens (human)Ki0.82000.00020.27940.8200AID1340791
Caspase-6Homo sapiens (human)Ki0.59400.59400.59400.5940AID1340793
Caspase-8Homo sapiens (human)Ki0.01800.01800.01800.0180AID1340795
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Biological Processes (90)

Processvia Protein(s)Taxonomy
neurotrophin TRK receptor signaling pathwayCaspase-3Homo sapiens (human)
luteolysisCaspase-3Homo sapiens (human)
response to hypoxiaCaspase-3Homo sapiens (human)
B cell homeostasisCaspase-3Homo sapiens (human)
negative regulation of cytokine productionCaspase-3Homo sapiens (human)
proteolysisCaspase-3Homo sapiens (human)
apoptotic processCaspase-3Homo sapiens (human)
DNA damage responseCaspase-3Homo sapiens (human)
axonal fasciculationCaspase-3Homo sapiens (human)
heart developmentCaspase-3Homo sapiens (human)
sensory perception of soundCaspase-3Homo sapiens (human)
learning or memoryCaspase-3Homo sapiens (human)
intrinsic apoptotic signaling pathway in response to osmotic stressCaspase-3Homo sapiens (human)
response to xenobiotic stimulusCaspase-3Homo sapiens (human)
response to UVCaspase-3Homo sapiens (human)
response to woundingCaspase-3Homo sapiens (human)
response to glucoseCaspase-3Homo sapiens (human)
response to X-rayCaspase-3Homo sapiens (human)
regulation of macroautophagyCaspase-3Homo sapiens (human)
protein processingCaspase-3Homo sapiens (human)
hippocampus developmentCaspase-3Homo sapiens (human)
protein catabolic processCaspase-3Homo sapiens (human)
erythrocyte differentiationCaspase-3Homo sapiens (human)
platelet formationCaspase-3Homo sapiens (human)
negative regulation of B cell proliferationCaspase-3Homo sapiens (human)
regulation of protein stabilityCaspase-3Homo sapiens (human)
response to cobalt ionCaspase-3Homo sapiens (human)
response to estradiolCaspase-3Homo sapiens (human)
response to lipopolysaccharideCaspase-3Homo sapiens (human)
glial cell apoptotic processCaspase-3Homo sapiens (human)
response to tumor necrosis factorCaspase-3Homo sapiens (human)
response to nicotineCaspase-3Homo sapiens (human)
response to hydrogen peroxideCaspase-3Homo sapiens (human)
T cell homeostasisCaspase-3Homo sapiens (human)
response to amino acidCaspase-3Homo sapiens (human)
fibroblast apoptotic processCaspase-3Homo sapiens (human)
cell fate commitmentCaspase-3Homo sapiens (human)
negative regulation of cell cycleCaspase-3Homo sapiens (human)
negative regulation of activated T cell proliferationCaspase-3Homo sapiens (human)
striated muscle cell differentiationCaspase-3Homo sapiens (human)
response to glucocorticoidCaspase-3Homo sapiens (human)
neuron apoptotic processCaspase-3Homo sapiens (human)
protein maturationCaspase-3Homo sapiens (human)
anterior neural tube closureCaspase-3Homo sapiens (human)
pyroptosisCaspase-3Homo sapiens (human)
leukocyte apoptotic processCaspase-3Homo sapiens (human)
cellular response to staurosporineCaspase-3Homo sapiens (human)
apoptotic signaling pathwayCaspase-3Homo sapiens (human)
intrinsic apoptotic signaling pathwayCaspase-3Homo sapiens (human)
execution phase of apoptosisCaspase-3Homo sapiens (human)
positive regulation of pyroptosisCaspase-3Homo sapiens (human)
positive regulation of amyloid-beta formationCaspase-3Homo sapiens (human)
epithelial cell apoptotic processCaspase-3Homo sapiens (human)
keratinocyte differentiationCaspase-3Homo sapiens (human)
positive regulation of neuron apoptotic processCaspase-3Homo sapiens (human)
neuron differentiationCaspase-3Homo sapiens (human)
activation of innate immune responseCaspase-6Homo sapiens (human)
proteolysisCaspase-6Homo sapiens (human)
apoptotic processCaspase-6Homo sapiens (human)
protein autoprocessingCaspase-6Homo sapiens (human)
epithelial cell differentiationCaspase-6Homo sapiens (human)
positive regulation of apoptotic processCaspase-6Homo sapiens (human)
regulation of programmed cell deathCaspase-6Homo sapiens (human)
positive regulation of necroptotic processCaspase-6Homo sapiens (human)
pyroptosisCaspase-6Homo sapiens (human)
intrinsic apoptotic signaling pathway by p53 class mediatorCaspase-6Homo sapiens (human)
cellular response to staurosporineCaspase-6Homo sapiens (human)
execution phase of apoptosisCaspase-6Homo sapiens (human)
hepatocyte apoptotic processCaspase-6Homo sapiens (human)
positive regulation of neuron apoptotic processCaspase-6Homo sapiens (human)
angiogenesisCaspase-8Homo sapiens (human)
regulation of cytokine productionCaspase-8Homo sapiens (human)
proteolysisCaspase-8Homo sapiens (human)
apoptotic processCaspase-8Homo sapiens (human)
heart developmentCaspase-8Homo sapiens (human)
regulation of tumor necrosis factor-mediated signaling pathwayCaspase-8Homo sapiens (human)
natural killer cell activationCaspase-8Homo sapiens (human)
macrophage differentiationCaspase-8Homo sapiens (human)
positive regulation of cell migrationCaspase-8Homo sapiens (human)
response to cobalt ionCaspase-8Homo sapiens (human)
response to estradiolCaspase-8Homo sapiens (human)
response to lipopolysaccharideCaspase-8Homo sapiens (human)
positive regulation of interleukin-1 beta productionCaspase-8Homo sapiens (human)
response to tumor necrosis factorCaspase-8Homo sapiens (human)
TRAIL-activated apoptotic signaling pathwayCaspase-8Homo sapiens (human)
T cell activationCaspase-8Homo sapiens (human)
B cell activationCaspase-8Homo sapiens (human)
positive regulation of apoptotic processCaspase-8Homo sapiens (human)
positive regulation of canonical NF-kappaB signal transductionCaspase-8Homo sapiens (human)
negative regulation of canonical NF-kappaB signal transductionCaspase-8Homo sapiens (human)
regulation of innate immune responseCaspase-8Homo sapiens (human)
response to ethanolCaspase-8Homo sapiens (human)
positive regulation of macrophage differentiationCaspase-8Homo sapiens (human)
positive regulation of proteolysisCaspase-8Homo sapiens (human)
proteolysis involved in protein catabolic processCaspase-8Homo sapiens (human)
protein maturationCaspase-8Homo sapiens (human)
negative regulation of necroptotic processCaspase-8Homo sapiens (human)
syncytiotrophoblast cell differentiation involved in labyrinthine layer developmentCaspase-8Homo sapiens (human)
pyroptosisCaspase-8Homo sapiens (human)
cellular response to mechanical stimulusCaspase-8Homo sapiens (human)
cellular response to organic cyclic compoundCaspase-8Homo sapiens (human)
apoptotic signaling pathwayCaspase-8Homo sapiens (human)
extrinsic apoptotic signaling pathwayCaspase-8Homo sapiens (human)
execution phase of apoptosisCaspase-8Homo sapiens (human)
activation of cysteine-type endopeptidase activityCaspase-8Homo sapiens (human)
self proteolysisCaspase-8Homo sapiens (human)
activation of cysteine-type endopeptidase activity involved in apoptotic processCaspase-8Homo sapiens (human)
extrinsic apoptotic signaling pathway via death domain receptorsCaspase-8Homo sapiens (human)
positive regulation of neuron apoptotic processCaspase-8Homo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Molecular Functions (19)

Processvia Protein(s)Taxonomy
protease bindingCaspase-3Homo sapiens (human)
aspartic-type endopeptidase activityCaspase-3Homo sapiens (human)
cysteine-type endopeptidase activityCaspase-3Homo sapiens (human)
cyclin-dependent protein serine/threonine kinase inhibitor activityCaspase-3Homo sapiens (human)
death receptor bindingCaspase-3Homo sapiens (human)
protein bindingCaspase-3Homo sapiens (human)
peptidase activityCaspase-3Homo sapiens (human)
phospholipase A2 activator activityCaspase-3Homo sapiens (human)
protein-containing complex bindingCaspase-3Homo sapiens (human)
cysteine-type endopeptidase activity involved in apoptotic processCaspase-3Homo sapiens (human)
cysteine-type endopeptidase activity involved in apoptotic signaling pathwayCaspase-3Homo sapiens (human)
cysteine-type endopeptidase activity involved in execution phase of apoptosisCaspase-3Homo sapiens (human)
enzyme activator activityCaspase-3Homo sapiens (human)
cysteine-type endopeptidase activityCaspase-6Homo sapiens (human)
protein bindingCaspase-6Homo sapiens (human)
cysteine-type peptidase activityCaspase-6Homo sapiens (human)
identical protein bindingCaspase-6Homo sapiens (human)
cysteine-type endopeptidase activity involved in apoptotic processCaspase-6Homo sapiens (human)
cysteine-type endopeptidase activity involved in execution phase of apoptosisCaspase-6Homo sapiens (human)
cysteine-type endopeptidase activityCaspase-8Homo sapiens (human)
death receptor bindingCaspase-8Homo sapiens (human)
tumor necrosis factor receptor bindingCaspase-8Homo sapiens (human)
protein bindingCaspase-8Homo sapiens (human)
peptidase activityCaspase-8Homo sapiens (human)
cysteine-type peptidase activityCaspase-8Homo sapiens (human)
ubiquitin protein ligase bindingCaspase-8Homo sapiens (human)
death effector domain bindingCaspase-8Homo sapiens (human)
identical protein bindingCaspase-8Homo sapiens (human)
protein-containing complex bindingCaspase-8Homo sapiens (human)
scaffold protein bindingCaspase-8Homo sapiens (human)
cysteine-type endopeptidase activity involved in apoptotic processCaspase-8Homo sapiens (human)
cysteine-type endopeptidase activity involved in apoptotic signaling pathwayCaspase-8Homo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Ceullar Components (14)

Processvia Protein(s)Taxonomy
cytosolCaspase-1Mus musculus (house mouse)
nucleusCaspase-3Homo sapiens (human)
cytoplasmCaspase-3Homo sapiens (human)
nucleusCaspase-3Homo sapiens (human)
nucleoplasmCaspase-3Homo sapiens (human)
cytosolCaspase-3Homo sapiens (human)
neuronal cell bodyCaspase-3Homo sapiens (human)
death-inducing signaling complexCaspase-3Homo sapiens (human)
nucleusCaspase-6Homo sapiens (human)
nucleoplasmCaspase-6Homo sapiens (human)
cytoplasmCaspase-6Homo sapiens (human)
cytosolCaspase-6Homo sapiens (human)
cytoplasmCaspase-6Homo sapiens (human)
cytoplasmCaspase-8Homo sapiens (human)
nucleoplasmCaspase-8Homo sapiens (human)
mitochondrionCaspase-8Homo sapiens (human)
mitochondrial outer membraneCaspase-8Homo sapiens (human)
cytosolCaspase-8Homo sapiens (human)
cytoskeletonCaspase-8Homo sapiens (human)
lamellipodiumCaspase-8Homo sapiens (human)
cell bodyCaspase-8Homo sapiens (human)
death-inducing signaling complexCaspase-8Homo sapiens (human)
CD95 death-inducing signaling complexCaspase-8Homo sapiens (human)
protein-containing complexCaspase-8Homo sapiens (human)
ripoptosomeCaspase-8Homo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Bioassays (15)

Assay IDTitleYearJournalArticle
AID521170Inhibition of caspase3 in icv dosed mouse middle cerebral artery occlusion induced ischemic injury model after 3 hrs by Western blot method drug administered before occlusion2005Nature chemical biology, Jul, Volume: 1, Issue:2
Chemical inhibitor of nonapoptotic cell death with therapeutic potential for ischemic brain injury.
AID521172Inhibition of necroptosis in icv dosed mouse middle cerebral artery occlusion induced ischemic injury model assessed as reduction of infarct volume drug administered 6 hrs postocclusion2005Nature chemical biology, Jul, Volume: 1, Issue:2
Chemical inhibitor of nonapoptotic cell death with therapeutic potential for ischemic brain injury.
AID1525289Inhibition of GSDMD in LPS-induced mouse monocyte/macrophages assessed as inhibition of pyroptosis by fluorogenic liposome leakage assay2019MedChemComm, May-01, Volume: 10, Issue:5
Gasdermin D (GSDMD) as a new target for the treatment of infection.
AID1740734Protection against TRAIL-induced apoptosis in human Jurkat assessed as increase in cell viability at 20 uM measured after 24 hrs by MTS assay2020European journal of medicinal chemistry, Sep-01, Volume: 201Discovery of simplified benzazole fragments derived from the marine benzosceptrin B as necroptosis inhibitors involving the receptor interacting protein Kinase-1.
AID277573Inhibition of TNF-alpha-induced apoptosis in human SF188 cells2007Journal of natural products, Feb, Volume: 70, Issue:2
20S-protopanaxadiol-induced programmed cell death in glioma cells through caspase-dependent and -independent pathways.
AID1331626Cell cycle arrest in human MCF7 cells assessed as M1 quadrant cells at 50 uM pretreated with pan-caspase inhibitor Z-VAD-FMK for 1 hr followed by compound addition measured after 48 hrs by propidium iodide staining-based flow cytometry assay (Rvb = 98.1%)2016European journal of medicinal chemistry, Nov-10, Volume: 123Chalcogen containing heterocyclic scaffolds: New hybrids with antitumoral activity.
AID277574Inhibition of cycloheximide-induced apoptosis in human SF188 cells2007Journal of natural products, Feb, Volume: 70, Issue:2
20S-protopanaxadiol-induced programmed cell death in glioma cells through caspase-dependent and -independent pathways.
AID261401Inhibition of caspase3 activity in camptothecin-induced apoptotic Jurkat T cells at 2 uM2006Journal of medicinal chemistry, Mar-09, Volume: 49, Issue:5
Design, synthesis, and biological evaluation of isoquinoline-1,3,4-trione derivatives as potent caspase-3 inhibitors.
AID277572Inhibition of 20S-protopanaxadiol-induced activation of caspases in human SF188 cells2007Journal of natural products, Feb, Volume: 70, Issue:2
20S-protopanaxadiol-induced programmed cell death in glioma cells through caspase-dependent and -independent pathways.
AID1740735Protection against staurosporine-induced apoptosis in human Jurkat assessed as increase in cell viability at 20 uM measured after 24 hrs by MTS assay2020European journal of medicinal chemistry, Sep-01, Volume: 201Discovery of simplified benzazole fragments derived from the marine benzosceptrin B as necroptosis inhibitors involving the receptor interacting protein Kinase-1.
AID1525288Inhibition of GSDMD in LPS-induced human monocyte/macrophages assessed as inhibition of pyroptosis by fluorogenic liposome leakage assay2019MedChemComm, May-01, Volume: 10, Issue:5
Gasdermin D (GSDMD) as a new target for the treatment of infection.
AID277550Inhibition of 20S-protopanaxadiol-induced apoptosis in human SF188 cells after 8 hrs by MTT assay2007Journal of natural products, Feb, Volume: 70, Issue:2
20S-protopanaxadiol-induced programmed cell death in glioma cells through caspase-dependent and -independent pathways.
AID1331627Cell cycle arrest in human MCF7 cells assessed as sub-diploid cells at 50 uM pretreated with pan-caspase inhibitor Z-VAD-FMK for 1 hr followed by compound addition measured after 48 hrs by propidium iodide staining-based flow cytometry assay (Rvb = 1.9%)2016European journal of medicinal chemistry, Nov-10, Volume: 123Chalcogen containing heterocyclic scaffolds: New hybrids with antitumoral activity.
AID1745854NCATS anti-infectives library activity on HEK293 viability as a counter-qHTS vs the C. elegans viability qHTS2023Disease models & mechanisms, 03-01, Volume: 16, Issue:3
In vivo quantitative high-throughput screening for drug discovery and comparative toxicology.
AID1745855NCATS anti-infectives library activity on the primary C. elegans qHTS viability assay2023Disease models & mechanisms, 03-01, Volume: 16, Issue:3
In vivo quantitative high-throughput screening for drug discovery and comparative toxicology.
[information is prepared from bioassay data collected from National Library of Medicine (NLM), extracted Dec-2023]

Research

Studies (1,868)

TimeframeStudies, This Drug (%)All Drugs %
pre-19900 (0.00)18.7374
1990's267 (14.29)18.2507
2000's1132 (60.60)29.6817
2010's434 (23.23)24.3611
2020's35 (1.87)2.80
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Market Indicators

Research Demand Index: 12.54

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 weak demand-to-supply ratio for research on this compound.

MetricThis Compound (vs All)
Research Demand Index12.54 (24.57)
Research Supply Index2.08 (2.92)
Research Growth Index4.62 (4.65)
Search Engine Demand Index0.00 (26.88)
Search Engine Supply Index0.00 (0.95)

This Compound (12.54)

All Compounds (24.57)

Study Types

Publication TypeThis drug (%)All Drugs (%)
Trials0 (0.00%)5.53%
Trials0 (0.00%)5.53%
Reviews1 (14.29%)6.00%
Reviews6 (0.32%)6.00%
Case Studies0 (0.00%)4.05%
Case Studies0 (0.00%)4.05%
Observational0 (0.00%)0.25%
Observational0 (0.00%)0.25%
Other6 (85.71%)84.16%
Other1,891 (99.68%)84.16%
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]