Page last updated: 2024-12-05

ethylmaleimide

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Description

Ethylmaleimide (EMI) is a small, reactive molecule that is widely used in biochemistry and molecular biology. It is a potent inhibitor of sulfhydryl groups, which are found in cysteine residues in proteins. This property makes EMI a valuable tool for studying protein structure, function, and interactions. EMI can be synthesized by reacting maleic anhydride with ethylamine. Its effects include the modification of protein structure and function by reacting with cysteine residues, leading to the inhibition of enzyme activity, protein aggregation, and cell death. It is studied because of its ability to target specific proteins, making it useful in research on various biological processes, including signal transduction, gene expression, and drug discovery. '

Ethylmaleimide: A sulfhydryl reagent that is widely used in experimental biochemical studies. [Medical Subject Headings (MeSH), National Library of Medicine, extracted Dec-2023]

Cross-References

ID SourceID
PubMed CID4362
CHEMBL ID8211
CHEBI ID44485
SCHEMBL ID19666
SCHEMBL ID9359266
MeSH IDM0007908

Synonyms (98)

Synonym
brn 0112448
ai3-50085
einecs 204-892-4
nsc 7638
BRD-K98297262-001-01-1
usaf b-121
nem
nsc-7638
wln: t5vnvj b2
1h-pyrrole-2, 1-ethyl-
nsc7638
1-ethylpyrrole-2,5-dione
EU-0100492
n-ethylmaleimide, crystalline, >=98% (hplc)
HSCI1_000382
lopac-e-3876
BIO1_001417
BIO1_000928
BIO1_000439
NCGC00015415-01
25668-22-8
nsc92547
nsc-92547
LOPAC0_000492
CMAP_000078
1-ethyl-1h-pyrrole-2,5-dione
inchi=1/c6h7no2/c1-2-7-5(8)3-4-6(7)9/h3-4h,2h2,1h
n-em
n-ethylmaleimide ,
1h-pyrrole-2,5-dione, 1-ethyl-
maleic acid n-ethylimide
C02441
128-53-0
ethylmaleimide
maleimide, n-ethyl-
n-ethylmaleimide, bioxtra, >=98% (hplc)
CHEBI:44485 ,
DB02967
KBIO2_007684
KBIO2_002548
KBIOSS_002557
KBIO3_003026
KBIO2_005116
KBIOGR_002548
NCGC00093895-02
NCGC00093895-01
E-8100
NCGC00015415-02
E 3876
4D028806-9A8A-4D25-B355-AEFDEC5AD901
NCGC00015415-04
AKOS000249392
CHEMBL8211 ,
bdbm50220832
E0136
STK802307
HMS3261D05
CCG-204583
S3692
NCGC00015415-03
GEO-01358
unii-o3c74acm9v
5-21-10-00006 (beilstein handbook reference)
o3c74acm9v ,
FT-0631750
LP00492
n-ethylmaleimide [mi]
ethylmaleimide, n-
gtpl5335
PI-149
SCHEMBL19666
AKOS025244114
NCGC00261177-01
tox21_500492
DTXSID1059573
SCHEMBL9359266
1-ethyl-1h-pyrrole-2,5-dione #
mfcd00005509
1-ethyl-3-pyrroline-2,5-quinone
n-ethylmaleimide, bioultra, >=99.0% (hplc)
n-ethylmaleimide, purum p.a., >=99.0% (hplc)
SR-01000075860-1
sr-01000075860
1-ethyl-1h-pyrrole-2,5-dionenem
F0001-0396
Q292393
FS-4064
SDCCGSBI-0050476.P003
NCGC00015415-06
CS-0014814
n-ethyl maleimide
HY-D0843
n-ethylmaleimide (nem)
NCGC00015415-05
1-ethyl-2,5-dihydro-1h-pyrrole-2,5-dione
EN300-25478
Z205012234
AC-37035

Research Excerpts

Overview

N-ethylmaleimide (NEM) impairs the sulphydryl dependent antioxidant system (mainly glutathione) in the body. It is a lipophilic sulfhydryl-alkylating agent that is known to block the in vitro proliferative response of T lymphocytes.

ExcerptReferenceRelevance
"N-ethylmaleimide (NEM) is a sulphydryl blocker which impairs the sulphydryl dependent antioxidant system (mainly glutathione) in the body by alkylating endogenous sulphydryls. "( Anzer honey prevents N-ethylmaleimide-induced liver damage in rats.
Kolankaya, D; Korkmaz, A, 2009
)
1.38
"N-Ethylmaleimide (NEM) is a lipophilic sulfhydryl-alkylating agent that is known to block the in vitro proliferative response of T lymphocytes."( Differential inhibition of human T-lymphocyte activation by maleimide probes.
Freed, BM; Lawrence, DA; Lempert, N; Mozayeni, B; Wallach, FR, 1986
)
0.83
"N-ethylmaleimide (NEM) is a sulfhydryl-reacting agent known to stimulate chloride-dependent K transport in a variety of red cells. "( Effect of N-ethylmaleimide on K transport in density-separated human red blood cells.
Berkowitz, LR; Orringer, EP; Walstad, D, 1987
)
1.37

Effects

N-ethylmaleimide (NEM) has been reported to interact with the GTP-binding Ni-protein. We examined its effect on adenosine receptor binding in feline cortical membranes. N-Ethyl maleimide has a much smaller effect on the rate of polymerization and on network formation than do the other two derivatives.

ExcerptReferenceRelevance
"N-Ethylmaleimide has a much smaller effect on the rate of polymerization and on network formation than do the other two derivatives."( Chemical modification of actin. Acceleration of polymerization and reduction of network formation by reaction with N-ethylmaleimide, (iodoacetamido)tetramethylrhodamine, or 7-chloro-4-nitro-2,1,3-benzoxadiazole.
Frieden, C; Tait, JF, 1982
)
1.03
"N-ethylmaleimide (NEM) has been used as a specific reagent of Cys modification in proteins and thus is toxic for cell growth. "( The uncharacterized transcription factor YdhM is the regulator of the nemA gene, encoding N-ethylmaleimide reductase.
Ishihama, A; Kori, A; Shimada, T; Umezawa, Y; Yamada, K, 2008
)
1.29
"N-ethylmaleimide (NEM) has been used extensively in biochemical assays as an inhibitor of the NEM sensitive fusion protein (NSF). "( The effect of N-ethylmaleimide on transmitter release from the skeletal neuromuscular junction of Bufo marinus.
Bellingham, MC; Knight, D; Lavidis, NA, 2004
)
1.39
"N-Ethylmaleimide has a much smaller effect on the rate of polymerization and on network formation than do the other two derivatives."( Chemical modification of actin. Acceleration of polymerization and reduction of network formation by reaction with N-ethylmaleimide, (iodoacetamido)tetramethylrhodamine, or 7-chloro-4-nitro-2,1,3-benzoxadiazole.
Frieden, C; Tait, JF, 1982
)
1.03
"As N-ethylmaleimide has been reported to inactivate Gi protein and to block the regulation of noradrenaline release by alpha 2-adrenoceptors, the present results suggest that N-ethylmaleimide inactivates inhibitory GTP binding proteins to block the regulation by dopamine autoreceptors of evoked dopamine release."( Effects of N-ethylmaleimide on dopamine release in the rat striatum after repeated treatment with methamphetamine.
Nishi, S; Yamada, S; Yokoo, H, 1994
)
1.11
"N-Ethylmaleimide, however, has no effect on the IC50 values which are 0.5, 2.3, and 8 microM for ADP, ATP, and AMP, respectively."( On the regulation of K+ uniport in intact mitochondria by adenine nucleotides and nucleotide analogs.
Beavis, AD; Garlid, KD; Lu, Y, 1993
)
0.84
"N-ethylmaleimide (NEM) has been claimed to markedly inhibit the transvascular passage of small proteins and albumin by interacting with the docking and fusion of plasmalemmal vesicles with their target membranes. "( Transcytosis inhibitor N-ethylmaleimide increases microvascular permeability in rat muscle.
Carlsson, O; Rippe, B; Rosengren, BI, 2001
)
1.34
"N-Ethylmaleimide has been used to radioactively label the sulfhydryl groups before and after cleavage of the disulfide bonds by dithiothreitol."( Mitochondrial adenosine triphosphatase. Location of sulfhydryl groups and disulfide bonds in soluble enzyme from beef heart.
Senior, AE, 1975
)
0.81
"N-ethylmaleimide (NEM) has been reported to interact with the GTP-binding Ni-protein; we have examined its effect on adenosine receptor binding in feline cortical membranes and on adenosine-receptor mediated effects on cyclic AMP accumulation in rat hippocampal slices. "( Treatment with N-ethylmaleimide selectively reduces adenosine receptor-mediated decreases in cyclic AMP accumulation in rat hippocampal slices.
Fredholm, BB; Lindgren, E; Lindström, K, 1985
)
1.33

Actions

N-ethylmaleimide was found to inhibit phosphate uptake in Chlorella pyrenoidosa. N-Ethyl maleimide did inhibit efflux by 50%, but evidence suggested that the effect was non-specific.

ExcerptReferenceRelevance
"N-Ethylmaleimide was shown to inhibit qacC-mediated ethidium export."( Molecular characterization of the staphylococcal multidrug resistance export protein QacC.
Brown, MH; Dunstan, SJ; Paulsen, IT; Skurray, RA, 1995
)
0.85
"N-Ethylmaleimide did inhibit efflux by 50%, but evidence suggested that the effect was non-specific."( Characterization of betaine efflux from rat liver mitochondria.
Brand, MD; Porter, RK; Scott, JM, 1993
)
0.84
"N-ethylmaleimide was found to inhibit phosphate uptake in Chlorella pyrenoidosa. "( [Mechanisms of phosphate ion absorption in chlorella: the effect of N-ethylmaleimide (NEM) on phosphate transport].
Hourmant, A; Jeanjean, R, 1975
)
1.21

Treatment

N-Ethylmaleimide treatment abolishes multimerization and interaction of FANCA and FANCG in vitro. N-ethyl maleimide (NEM) treatment significantly reduced mucosal SH level, and aggravated the mucosal injury induced by absolute ethanol.

ExcerptReferenceRelevance
"N-Ethylmaleimide treatment abolishes multimerization and interaction of FANCA and FANCG in vitro."( Oxidative stress/damage induces multimerization and interaction of Fanconi anemia proteins.
Beck, BD; Ciccone, SL; Clapp, DW; Freie, B; Hwang, B; Lee, SH; Park, SJ, 2004
)
0.88
"N-Ethylmaleimide treatment of activated thylakoids in the dark prevents the loss of the stimulation of ATP synthesis on storage of the thylakoids."( Role of the gamma subunit of chloroplast coupling factor 1 in the light-dependent activation of photophosphorylation and ATPase activity by dithiothreitol.
Davenport, JW; Ketcham, SR; McCarty, RE; Warncke, K, 1984
)
0.83
"N-Ethylmaleimide treatment of rat liver plasma membranes results in an adenylyl cyclase (EC 4.6.1.1) system that shows no measurable cyclizing activity but retains both an active glucagon receptor and a receptor-sensitive regulatory component N as assessed by reconstitution into cyclase-negative (cyc-) membranes from S49 murine lymphoma. "( Hormone receptor modulates the regulatory component of adenylyl cyclase by reducing its requirement for Mg2+ and enhancing its extent of activation by guanine nucleotides.
Birnbaumer, L; Iyengar, R, 1982
)
0.99
"3. N-ethylmaleimide pretreatment of the membranes prior to their preexposure to 5-HT inhibits the change in affinity."( [Increase in binding affinity of the 5-HT receptor and decrease in 5-HT sensitive adenylate cyclase activity following prolonged exposure to 5-HT (author's transl)].
Fillion, G; Fillion, MP; Rousselle, JC, 1981
)
0.72
"N-ethylmaleimide (NEM) treatment significantly reduced mucosal SH level, and aggravated the mucosal injury induced by absolute ethanol."( The role of non-protein sulfhydryl compounds in gastric adaptive cytoprotection against ethanol-induced mucosal damage in rats.
Cho, CH; Ko, JK, 1995
)
0.85
"N-Ethylmaleimide treatment of permeabilized cells inhibits both the fusion of recycling vesicles with the plasma membrane as well as the formation of functional recycling vesicles from the pericentriolar recycling compartment."( Studies of transferrin recycling reconstituted in streptolysin O permeabilized Chinese hamster ovary cells.
Martys, JL; McGraw, TE; Shevell, T, 1995
)
0.85
"N-ethylmaleimide-treated cytosol, however, remained inhibitory."( Cytosolic factors block antibody binding to the C-terminal cytoplasmic tail of the KDEL receptor.
Hong, W; Low, SH; Subramaniam, VN; Tang, BL; Wong, SH, 1994
)
0.85
"N-ethylmaleimide treatment caused severe diarrhoea with bleeding for the first 7 days."( Sulfhydryl blocker-induced colitis in the rat: immunological changes in thymus gland and colonic mucosa.
Hibi, T; Hosoda, Y; Miura, S; Mori, M; Oda, M; Suzuki, H; Tanaka, S; Tsuchiya, M; Watanabe, M,
)
0.69
"N-Ethylmaleimide treatment of a coatomer-rich fraction did not affect the binding of beta-COP to the Golgi apparatus, whereas the same treatment of an ARF-rich fraction abolished beta-COP binding."( ADP-ribosylation factor-1 is sensitive to N-ethylmaleimide.
Hatsuzawa, K; Himeno, M; Nakayama, K; Tagaya, M; Tani, K; Yamaguchi, T, 1998
)
1.12
"3. N-ethylmaleimide treatment leads to inhibition of K+-stimulated 4-nitrophenylphosphatase activity, Na+-stimulated ATPase activity, and phosphorylation by ATP as well as by inorganic phosphate."( Studies on (Na+ +K+) activated ATPase. XLI. Effects of N-ethylmaleimide on overall and partial reactions.
Bonting, SL; De Pont, JJ; Schoot, BM; Schoots, AF; Schuurmans Stekhoven, FM, 1977
)
0.96
"N-Ethylmaleimide treatment also enhances C-A-C-C-A-Leu binding to the acceptor site of the peptidyl transferase centre."( The involvement of sulphydryl groups in the peptidyl transferase centre of eukaryotic ribosomes.
Carrasco, L; Vazquez, D, 1975
)
0.81
"N-Ethylmaleimide pretreatment did not affect the neurotensin (3 nM)-induced increase in the KD of [3H]NPA binding sites."( Neurotensin decreases the affinity of dopamine D2 agonist binding by a G protein-independent mechanism.
Fredholm, BB; Fuxe, K; van der Ploeg, I; von Euler, G, 1991
)
0.84
"In N-ethylmaleimide-treated bovine brain membranes, rGi alpha-3 was the only rG alpha-subunit capable of reconstituting high-affinity agonist binding."( Interactions of the bovine brain A1-adenosine receptor with recombinant G protein alpha-subunits. Selectivity for rGi alpha-3.
Freissmuth, M; Linder, ME; Schütz, W, 1991
)
0.74
"N-Ethylmaleimide treatment not only prevented inhibition of adenylyl cyclase by epinephrine but also completely reversed the inhibitory effect of NaF on the Na+/H+ exchanger."( Sodium fluoride prevents receptor- and protein kinase C-mediated activation of the human platelet Na+/H+ exchanger without inhibiting its basic pHi-regulating activity.
Akkerman, JW; Jakobs, KH; Siffert, W, 1990
)
0.84
"N-ethylmaleimide pretreatment significantly reduced the prejunctional inhibitory effect of R-PIA on [3H]ACh release in a non-competitive manner."( Evidence that prejunctional adenosine receptors regulating acetylcholine release from rat hippocampal slices are linked to an N-ethylmaleimide-sensitive G-protein, but not to adenylate cyclase or dihydropyridine-sensitive Ca2+-channels.
Dunér-Engström, M; Fredholm, BB, 1988
)
1.04
"N-ethylmaleimide-treated, KCl-extracted membranes were markedly deficient in GTP[S]-stimulated PL C activity; however, activity could be restored by incubation with the desalted extracted PL C."( Reconstitution of a solubilized membrane but not cytosolic phospholipase C with membrane-associated Gp from GH3 cells.
Kowalchyk, JA; Martin, TF, 1989
)
0.84
"N-ethylmaleimide treatment did not inhibit nascent chain targeting or GTP-dependent signal sequence insertion."( Nascent secretory chain binding and translocation are distinct processes: differentiation by chemical alkylation.
Blobel, G; Nicchitta, CV, 1989
)
0.84
"In N-ethylmaleimide-treated red cells, we have found that this binding site inhibits water transport and that the inhibition can be partially reversed by the specific stilbene anion exchange transport inhibitor 4,4'-diisothiocyanostilbene-2,2'-disulfonate (DIDS), thus linking water transport to anion exchange."( Binding of DTNB to band 3 in the human red cell membrane.
Dorogi, PL; Lukacovic, MF; Solomon, AK; Toon, MR, 1985
)
0.72
"N-ethylmaleimide pretreatment of this gradient fraction uncovered a vesicle population with characteristics similar to the gastric H+,K+ATPase: proton transport was abolished by orthovanadate and the experimental anti-ulcer drug SCH 28080, was enhanced by potassium, and was not affected by chloride."( Identification of a vanadate-sensitive potassium-dependent proton pump from rabbit colon.
Kaunitz, JD; Sachs, G, 1986
)
0.83
"N-ethylmaleimide (NEM) treatment has been shown to inactivate regulatory GTP-binding N (G)-proteins in many preparations, including slices of rat hippocampus. "( Effects of N-ethylmaleimide and forskolin on noradrenaline release from rat hippocampal slices. Evidence that prejunctional adenosine and alpha-receptors are linked to N-proteins but not to adenylate cyclase.
Fredholm, BB; Lindgren, E, 1987
)
1.36
"N-ethylmaleimide (NEM) treatment of steady-state Ehrlich cells induces a substantial net loss of cellular KCl and cell shrinkage. "( Activation of Cl-dependent K transport in Ehrlich ascites tumor cells.
Hoffmann, EK; Jørgensen, F; Kramhøft, B; Lambert, IH, 1986
)
0.99
"N-Ethylmaleimide treatment increases the fraction of insoluble receptor molecules on extraction with Triton X-100, sodium cholate, or octylglucoside."( Alkylation of free sulfhydryls fortifies electroplax subsynaptic structures.
Flanagan, SD; Gysin, R, 1987
)
0.83
"N-Ethylmaleimide (NEM) treatment of the native unphosphorylated enzyme results in incorporation of one NEM label per molecule and loss of enzymatic activity [Roossien, F."( Enzyme IIMtl of the Escherichia coli phosphoenolpyruvate-dependent phosphotransferase system: identification of the activity-linked cysteine on the mannitol carrier.
Pas, HH; Robillard, GT, 1988
)
0.83
"N-Ethylmaleimide (NEM) treatment caused the inactivation of the purified inhibitor, which suggested that this protein possesses at least one NEM-sensitive sulfhydryl group essential for its activity."( The inhibitor of liver plasma membrane (Ca2+-Mg2+)-ATPase. Purification and identification as a mediator of glucagon action.
Lotersztajn, S; Mallat, A; Pavoine, C; Pecker, F, 1985
)
0.83
"N-Ethylmaleimide treatment had no effect on methemoglobin formation."( The role of membrane protein sulfhydryl groups in hydrogen peroxide-mediated membrane damage in human erythrocytes.
Fortier, NL; Leb, L; McKenney, J; Mohandas, N; Sheerin, H; Snyder, LM; Trainor, J, 1988
)
0.83
"N-ethylmaleimide pretreatment increased the affinity of carbachol and the proportion of high-affinity sites."( Different binding properties of muscarinic M2-receptor subtypes for agonists and antagonists in porcine gastric smooth muscle and mucosa.
Herawi, M; Lambrecht, G; Moser, U; Mutschler, E; Pfeiffer, A, 1988
)
0.83
"N-Ethylmaleimide treatment of cytosol inhibited fusion."( In vitro fusion of endosomes following receptor-mediated endocytosis.
Diaz, R; Mayorga, L; Stahl, P, 1988
)
0.83
"N-ethylmaleimide pretreatment (10 mg/kg, s.c.) slightly reduced the protective activity of NC-1300, suggesting the partial participation of endogenous sulfhydryl compounds in the NC-1300 protection."( Cytoprotective effects of NC-1300 and omeprazole on Hcl . ethanol-induced gastric lesions in rats.
Awane, Y; Miyake, H; Okabe, S, 1986
)
0.83
"GLTP treated with N-ethylmaleimide (NEM) and Na2S4O6 had a transfer activity of about 70% and 55%, respectively, of the control GLTP."( Formation of an intramolecular disulfide bond of glycolipid transfer protein.
Abe, A; Sasaki, T, 1989
)
0.59

Toxicity

ExcerptReferenceRelevance
"Dehydroascorbate, an electron affinic metabolite of vitamin C, sensitized Ehrlich ascites tumor cells, in vivo, to radiation and was selectively toxic to V79 Chinese hamster lung cells under hypoxic conditions (without radiation)."( Toxicity, radiation sensitivity modification, and metabolic effects of dehydroascorbate and ascorbate in mammalian cells.
Biaglow, JE; Koch, CJ, 1978
)
0.26
" Agents which protect the reduced thiols of the target cell inhibit their lysis by the cytotoxic T cells; thiol reactive reagents may be directly toxic to the target cell."( Role of sulphydryl groups in T lymphocyte-mediated cytotoxicity.
Franks, D; Free, J; Thorne, KJ, 1982
)
0.26
" Of all tested reagents, organic mercury compounds arose as the most toxic reagents."( Hepatotoxic effects of SH-reagents in human and rat hepatocyte cultures and in situ perfused rat livers.
Boot, JH, 1996
)
0.29
"Primaquine-induced hemolytic anemia is a toxic side effect that is due to premature splenic sequestration of intact erythrocytes."( Primaquine-induced hemolytic anemia: role of membrane lipid peroxidation and cytoskeletal protein alterations in the hemotoxicity of 5-hydroxyprimaquine.
Bowman, ZS; Jollow, DJ; McMillan, DC; Morrow, JD, 2005
)
0.33
"The objective of this study was to characterize the toxic effects of three well known thiol-reactive electrophilic compounds, N-ethylmaleimide (NEM), pentachlorophenol (PCP) and 1-chloro-2,4-dinitrobenzene (CDNB) on anaerobic biotransformation process."( Toxic effects of thiol-reactive compounds on anaerobic biomass.
Duran, M; Shimko, LA; Tepe, N, 2006
)
0.54

Compound-Compound Interactions

ExcerptReferenceRelevance
" The observation that the binding of some, but not all, ligands requires reduced sulfhydryl groups, suggests that differential mechanisms and/or different binding domains do exist for agents which interact at the neuronal 5-HT transporter."( Role of essential sulfhydryl groups in drug interactions at the neuronal 5-HT transporter. Differences between amphetamines and 5-HT uptake inhibitors.
Kuhn, DM; Wolf, WA, 1992
)
0.28

Bioavailability

ExcerptReferenceRelevance
" The oral absorption of 1 was almost complete and the oral bioavailability of 2 averaged approximately 70%."( Disposition of zofenopril calcium in healthy subjects.
Foley, JE; Morrison, RA; Singhvi, SM; Willard, DA, 1990
)
0.28
" The evidence following routes of administration shows the good bioavailability of this peptide fraction of low molecular weight and confirms the efficacy after oral administration at very low doses."( Absorption and excretion in the experimental animal of a 14C-ethylmaleimide labelled peptide fraction of bovine factor VIII with antihaemorrhagic activity.
Conte, A; Palmieri, L; Ronca, G, 1989
)
0.52
" Citrate alone is poorly absorbed by symbiosomes; this uptake is greatly enhanced by addition of iron."( Uptake of iron by symbiosomes and bacteroids from soybean nodules.
Meyer, JM; Moreau, S; Puppo, A, 1995
)
0.29
" The noncompetable, noninhibitable component of all-trans-retinol absorption corresponded to the total absorption rate for 13-cis- and 9-cis-retinol and retinal."( Specificity of the retinol transporter of the rat small intestine brush border.
Dew, SE; Ong, DE, 1994
)
0.29
" Higher L-citruline production and NO bioavailability (4-fold), and endothelial nitric oxide synthase expression (both mRNA and protein) were observed in hEPC-14d compared with hEPC-3d."( L-arginine transport and nitric oxide synthesis in human endothelial progenitor cells.
Aguayo, C; Aguilera, V; Díaz-Pérez, F; Escudero, C; González, M; Lamperti, L; Radojkovic, C; Veas, C, 2012
)
0.38

Dosage Studied

N-ethylmaleimide (NEM) is known to react irreversibly with free -SH groups of protein. NEM markedly depressed the dose-response curves of norepinephrine isomers in the aorta but not in atria.

ExcerptRelevanceReference
"N-ethylmaleimide which is known to react irreversibly with free -SH groups of protein when incubated with rabbit aorta (alpha-adrenoreceptor) or atria (beta-adrenoreceptor) markedly depressed the dose-response curves of norepinephrine isomers in the aorta but not in atria."( Influence of group selective reagents in tissues containing alpha- and beta-adrenoceptors.
Chai, HS; Miller, DD; Patil, PN; Salman, KN, 1976
)
0.98
"299 and [3H]progesterone showed specific binding in the myometrial cytosol and the binding of each radiolabelled ligand could be displaced with the respective ligand in a dose-response manner."( Antiprogestin ZK-98.299 and progesterone display differential binding characteristics in the human myometrial cytosol.
D'souza, A; Hinduja, IN; Puri, CP, 1992
)
0.28
" In addition no difference was observed between single or repeated dosing in the pharmacokinetic parameters."( Absorption and excretion in the experimental animal of a 14C-ethylmaleimide labelled peptide fraction of bovine factor VIII with antihaemorrhagic activity.
Conte, A; Palmieri, L; Ronca, G, 1989
)
0.52
" The stimulatory effect of adenosine 5'-[beta,gamma-imido]triphosphate is the result of increasing the binding of insulin to the alpha subunit, and this reflects itself in a shift to the left of the insulin dose-response curve for autophosphorylation."( ATP sensitizes the insulin receptor to insulin.
Finn, FM; Hofmann, K; Ridge, KD, 1988
)
0.27
" When insulin binding was examined under the same conditions as phosphorylation, the dose-response curves for receptor occupancy and the kinase activation were nearly superimposable, indicating few or no spare receptors for this response to insulin."( Characterization of the insulin receptor kinase from human erythrocytes.
Goto, Y; Suzuki, S; Toyota, T, 1987
)
0.27
" While the dose-response curves for [3H]dexamethasone binding versus thiol reagent are normally sigmoidal, an unusual bimodal curve is obtained with MMTS in which dexamethasone binding is eliminated at low, but maintained at intermediate, MMTS concentrations."( Steroid binding to hepatoma tissue culture cell glucocorticoid receptors involves at least two sulfhydryl groups.
Miller, NR; Simons, SS, 1988
)
0.27
" Erythrocytes from rabbits orally dosed with parathion also exhibited marked depression of oxygen consumption."( Effect of paraoxon on erythrocyte metabolism as measured by oxygen uptake in vitro.
Santolucito, JA; Whitcomb, E, 1971
)
0.25
" Type I, parallel shift of the dose-response curve towards higher concentration by modification of COO- groups by N-ethoxycarbonyl-2-ethoxy-1,2-dihydroquinoline (EEDQ)."( Three types of chemical modification-effects induced by various chemical reagents on the glutamate receptors in molluscan neurons.
Kato, M; Kusano, K; Maruhashi, J; Oomura, Y, 1984
)
0.27
"The addition of 1 X 10(-3) M or 1 X 10(-2) M 2-mercaptoethanol (2-MEt), a sulfhydryl reagent, produced a leftward displacement (potentiation) of the dose-response curves of mesenteric arterial strips for histamine, norepinephrine, serotonin, angiotensin II, prostaglandin F2 alpha and KCl."( Alterations in pharmacological receptor activities of rabbit arteries by sulfhydryl reagents.
Asano, M; Hidaka, H, 1983
)
0.27
" Acetylcholine dose-response curves were shifted to the right while Ba2+ curves were unaffected."( Influence of N-ethylmaleimide on cholinoceptors and responses in longitudinal muscles from guinea-pig ileum.
Aronstam, RS; Carrier, GO, 1982
)
0.62
"Chemical modification of membrane-bound Torpedo californica acetylcholine receptor by the disulfide reducing agent dithiothreitol has two major effects on receptor function: (1) it shifts the dose-response curve for agonist-induced increases in 22Na+ permeability to 10-fold higher concentrations, and (2) it decreases the binding affinity of the receptor for the same agonist about 6-fold."( Effects of thio-group modifications on the ion permeability control and ligand binding properties of Torpedo californica acetylcholine receptor.
Lukas, RJ; McNamee, MG; Walker, JW, 1981
)
0.26
" Dose-response curve for the inhibition of equilibrative uridine transport by N-ethylmaleimide (NEM), a sulfhydryl reagent, in these cells was biphasic."( Sensitivity to inhibition by N-ethylmaleimide: a property of nitrobenzylthioinosine-sensitive equilibrative nucleoside transporter of murine myeloma cells.
Goh, LB; Lee, CW; Tu, Y, 1995
)
0.8
" After MTSET treatment, the dose-response relation for cGMP was shifted by over two orders of magnitude to lower concentrations."( Movement of gating machinery during the activation of rod cyclic nucleotide-gated channels.
Brown, RL; Haley, TL; Snow, SD, 1998
)
0.3
" Apparent rate constants for methoxamine binding and unbinding gave Kd values in agreement with EC50 values measured from dose-response relations."( Non-specific action of methoxamine on Ito, and the cloned channels hKv 1.5 and Kv 4.2.
Fedida, D; Li, Q; Parker, C, 1999
)
0.3
" Importantly, 5a can be prepared as a pharmaceutically acceptable salt and is observed in the brain 12 h after oral administration, suggesting potential for daily dosing and excellent metabolic stability."( Furoxans (Oxadiazole-4 N-oxides) with Attenuated Reactivity are Neuroprotective, Cross the Blood Brain Barrier, and Improve Passive Avoidance Memory.
Alhadidi, Q; Ducharme, M; Hagood, K; Horton, A; Kostrevski, A; Langenderfer, B; Nash, K; Novak, A; Post, M; Raghavan, A; Royster, K; Schiefer, IT; Shah, ZA; Tackie-Yarboi, E; Tulsulkar, J; Wamer, N, 2018
)
0.48
[information is derived through text-mining from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Roles (4)

RoleDescription
EC 2.1.1.122 [(S)-tetrahydroprotoberberine N-methyltransferase] inhibitorAn EC 2.1.1.* (methyltransferases) inhibitor that interferes with the action of (S)-tetrahydroprotoberberine N-methyltransferase (EC 2.1.1.122).
EC 2.7.1.1 (hexokinase) inhibitorAn EC 2.7.1.* (phosphotransferases with an alcohol group as acceptor) inhibitor that interferes with the action of hexokinase, EC 2.7.1.1, an enzyme that phosphorylates hexoses forming hexose phosphate.
EC 1.3.1.8 [acyl-CoA dehydrogenase (NADP(+))] inhibitorAn EC 1.3.1.* (oxidoreductase acting on donor CH-CH group, NAD(+) or NADP(+) as acceptor) inhibitor that interferes with the action of acyl-CoA dehydrogenase (NADP(+)), EC 1.3.1.8.
anticoronaviral agentAny antiviral agent which inhibits the activity of coronaviruses.
[role 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]

Drug Classes (1)

ClassDescription
maleimidesCompounds containing a cyclic dicarboximide skeleton in which the two carboacyl groups on nitrogen together with the nitrogen itself form a 1H-pyrrole-2,5-dione structure.
[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]

Pathways (160)

PathwayProteinsCompounds
cyanidin dimalonylglucoside biosynthesis38
choline biosynthesis I221
canavanine degradation012
6'-deoxychalcone metabolism014
eupatolitin 3-O-glucoside biosynthesis030
violdelphin biosynthesis513
S-adenosyl-L-methionine cycle II427
polymethylated quercetin glucoside biosynthesis I - quercetin series (Chrysosplenium)226
superpathway of anthocyanin biosynthesis (from pelargonidin 3-O-glucoside)231
salvianin biosynthesis121
phosphatidylethanolamine biosynthesis II515
shisonin biosynthesis117
pelargonidin conjugates biosynthesis223
lupanine biosynthesis017
polymethylated quercetin glucoside biosynthesis II - quercetagetin series (Chrysosplenium)231
kaempferide triglycoside biosynthesis115
6-methoxymellein biosynthesis022
u03B2-alanine biosynthesis I016
aurone biosynthesis019
superpathway of anthocyanin biosynthesis (from cyanidin and cyanidin 3-O-glucoside)519
superpathway of polymethylated quercetin/quercetagetin glucoside biosynthesis (Chrysosplenium)234
u03B1-tomatine biosynthesis417
triacylglycerol biosynthesis278
polymethylated quercetin glucoside biosynthesis I - quercetin series (Chrysosplenium)231
methylquercetin biosynthesis210
polymethylated quercetin glucoside biosynthesis II - quercetagetin series (Chrysosplenium)238
protein O-mannosylation I (yeast)98
u03B2-alanine biosynthesis I015
L-homoserine biosynthesis627
1,2-dichloroethane degradation115
nitrate reduction V (assimilatory)426
O-antigen building blocks biosynthesis (E. coli)950
lactate biosynthesis (archaea)315
superpathway of b heme biosynthesis from glycine1046
heme b biosynthesis I (aerobic)1428
2-keto-L-gulonate biosynthesis417
anhydromuropeptides recycling I1348
spermidine biosynthesis I635
L-lysine biosynthesis I1663
CMP-N-acetylneuraminate biosynthesis I (eukaryotes)738
thiamine salvage I216
sophorosyloxydocosanoate deacetylation09
mitochondrial L-carnitine shuttle88
superpathway of choline biosynthesis532
protein N-glycosylation initial phase (eukaryotic)2630
chitin derivatives degradation321
pyruvate to cytochrome bo oxidase electron transfer535
formate oxidation to CO2417
superpathway of L-phenylalanine biosynthesis1665
diacylglycerol and triacylglycerol biosynthesis1413
L-phenylalanine biosynthesis I628
superpathway of L-lysine degradation33112
L-lysine degradation VIII113
L-tyrosine degradation I1023
3,8-divinyl-chlorophyllide a biosynthesis II (anaerobic)934
patchoulol biosynthesis113
aflatoxins B1 and G1 biosynthesis218
curcumin degradation117
superpathway of microbial D-galacturonate and D-glucuronate degradation3592
sterigmatocystin biosynthesis210
thyroid hormone biosynthesis524
D-carnitine degradation I016
sulfite oxidation I214
methylgallate degradation1122
chlorophyll a degradation III09
superpathway of nicotinate degradation1254
L-lysine fermentation to acetate and butanoate857
4-hydroxymandelate degradation638
4-amino-3-hydroxybenzoate degradation240
anaerobic energy metabolism (invertebrates, mitochondrial)1342
superpathway of aromatic compound degradation via 2-hydroxypentadienoate5095
methylglyoxal degradation VI113
ferrichrome biosynthesis117
superpathway of anaerobic energy metabolism (invertebrates)1660
superpathway of aromatic compound degradation via 3-oxoadipate3681
phosphatidylethanolamine biosynthesis II116
superpathway of demethylmenaquinol-8 biosynthesis I1133
syringate degradation1224
dehydro-D-arabinono-1,4-lactone biosynthesis39
Spermine Syn413
norspermidine biosynthesis725
superpathway of polyamine biosynthesis I759
superpathway of polyamine biosynthesis III728
superpathway of arginine and polyamine biosynthesis18101
superpathway of polyamine biosynthesis II920
nicotinate degradation III1241
superpathway of geranylgeranyldiphosphate biosynthesis I (via mevalonate)3633
nicotinate degradation I833
superpathway of L-methionine biosynthesis (transsulfuration)959
superpathway of L-homoserine and L-methionine biosynthesis649
fatty acid u03B2-oxidation I2316
fatty acid u03B2-oxidation III (unsaturated, odd number)43
superpathway of penicillin, cephalosporin and cephamycin biosynthesis1169
mevalonate pathway I2431
oleate u03B2-oxidation310
deacetylcephalosporin C biosynthesis444
sulfur disproportionation II (aerobic)112
superpathway of hexitol degradation (bacteria)2960
penicillin G and penicillin V biosynthesis319
D-sorbitol degradation II210
UDP-N-acetyl-D-glucosamine biosynthesis I735
isopenicillin N biosynthesis323
indolmycin biosynthesis830
4-aminobutanoate degradation II318
superpathway of 4-aminobutanoate degradation520
L-cysteine biosynthesis III (from L-homocysteine)322
superpathway of L-cysteine biosynthesis (mammalian)928
superpathway of ergosterol biosynthesis I2156
lupanine biosynthesis019
superpathway of L-lysine, L-threonine and L-methionine biosynthesis I1994
superpathway of aromatic amino acid biosynthesis2184
L-asparagine biosynthesis I226
protocatechuate degradation I (meta-cleavage pathway)1529
choline biosynthesis I021
L-valine degradation I1727
cob(II)yrinate a,c-diamide biosynthesis II (late cobalt incorporation)1444
superpathway of sulfur oxidation (Acidianus ambivalens)322
cyanide detoxification I413
superpathway of CMP-sialic acids biosynthesis1460
queuosine biosynthesis521
formaldehyde oxidation II (glutathione-dependent)615
glutathione-mediated detoxification I1018
alkylnitronates degradation350
nitroethane degradation115
L-ornithine degradation II (Stickland reaction)1043
superpathway of bacteriochlorophyll a biosynthesis2270
bile acids degradation940
glycocholate metabolism (bacteria)424
2-carboxy-1,4-naphthoquinol biosynthesis2129
superpathway of L-threonine biosynthesis741
superpathway of menaquinol-8 biosynthesis I1036
UDP-N-acetyl-D-galactosamine biosynthesis II724
thiamine salvage II928
superpathway of vanillin and vanillate degradation827
toluene degradation to benzoate511
L-arginine degradation V (arginine deiminase pathway)619
L-arginine degradation (Stickland reaction)1254
superpathway of L-arginine, putrescine, and 4-aminobutanoate degradation1242
superpathway of chorismate metabolism56186
gallate degradation I1015
gallate degradation III (anaerobic)130
toluene degradation IV (aerobic) (via catechol)1625
superpathway of L-arginine and L-ornithine degradation1347
superpathway of flavones and derivatives biosynthesis1064
L-ascorbate biosynthesis V127
glycerol degradation V416
glycerol degradation II318
superpathway of glycerol degradation to 1,3-propanediol826
aspartate superpathway25122
D-galacturonate degradation II426
thiamine diphosphate biosynthesis I (E. coli)218
superpathway of S-adenosyl-L-methionine biosynthesis961
superpathway of sulfide oxidation (Acidithiobacillus ferrooxidans)226
cyanidin dimalonylglucoside biosynthesis48
salvianin biosynthesis122
pelargonidin conjugates biosynthesis225
pyruvate fermentation to opines622
superpathway of anthocyanin biosynthesis (from cyanidin and cyanidin 3-O-glucoside)424
violdelphin biosynthesis517
shisonin biosynthesis120
superpathway of anthocyanin biosynthesis (from pelargonidin 3-O-glucoside)233
trans-4-hydroxy-L-proline degradation I425
superpathway of aerobic toluene degradation3847
trans-4-hydroxy-L-proline degradation II643
superpathway of UDP-N-acetylglucosamine-derived O-antigen building blocks biosynthesis2461
cyclopropane fatty acid (CFA) biosynthesis111
tetrapyrrole biosynthesis II (from glycine)730
superpathway of L-methionine salvage and degradation2869
L-methionine degradation II213
superpathway of L-isoleucine biosynthesis I1755
6'-deoxychalcone metabolism016
kaempferide triglycoside biosynthesis118
eupatolitin 3-O-glucoside biosynthesis031
superpathway of polymethylated quercetin/quercetagetin glucoside biosynthesis (Chrysosplenium)246
dolichyl phosphate D-mannose biosynthesis312
superpathway of ergosterol biosynthesis2256
protein N-glycosylation (eukaryotic) initial steps2930

Protein Targets (19)

Potency Measurements

ProteinTaxonomyMeasurementAverage (µ)Min (ref.)Avg (ref.)Max (ref.)Bioassay(s)
Chain A, MAJOR APURINIC/APYRIMIDINIC ENDONUCLEASEHomo sapiens (human)Potency0.19950.003245.467312,589.2998AID2517
thioredoxin reductaseRattus norvegicus (Norway rat)Potency10.62130.100020.879379.4328AID588453
Microtubule-associated protein tauHomo sapiens (human)Potency1.58490.180013.557439.8107AID1468
ThrombopoietinHomo sapiens (human)Potency1.58490.02517.304831.6228AID917; AID918
aldehyde dehydrogenase 1 family, member A1Homo sapiens (human)Potency14.12540.011212.4002100.0000AID1030
regulator of G-protein signaling 4Homo sapiens (human)Potency3.76860.531815.435837.6858AID504845
estrogen-related nuclear receptor alphaHomo sapiens (human)Potency29.84930.001530.607315,848.9004AID1224821
euchromatic histone-lysine N-methyltransferase 2Homo sapiens (human)Potency0.97330.035520.977089.1251AID504332
Bloom syndrome protein isoform 1Homo sapiens (human)Potency177.82800.540617.639296.1227AID2364; AID2528
peripheral myelin protein 22 isoform 1Homo sapiens (human)Potency42.561523.934123.934123.9341AID1967
chromobox protein homolog 1Homo sapiens (human)Potency8.43680.006026.168889.1251AID488953
gemininHomo sapiens (human)Potency19.95260.004611.374133.4983AID463097
M-phase phosphoprotein 8Homo sapiens (human)Potency79.43280.177824.735279.4328AID488949
lamin isoform A-delta10Homo sapiens (human)Potency20.89550.891312.067628.1838AID1459; AID1487
neuropeptide S receptor isoform AHomo sapiens (human)Potency5.01190.015812.3113615.5000AID1461
ATP-dependent phosphofructokinaseTrypanosoma brucei brucei TREU927Potency37.93300.060110.745337.9330AID485368
[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)
Ghrelin O-acyltransferaseHomo sapiens (human)IC50 (µMol)433.00006.00007.50008.0000AID1829014
Monoglyceride lipaseHomo sapiens (human)IC50 (µMol)16.60000.00091.126810.0000AID439744
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Biological Processes (22)

Processvia Protein(s)Taxonomy
peptide hormone processingGhrelin O-acyltransferaseHomo sapiens (human)
peptidyl-serine octanoylationGhrelin O-acyltransferaseHomo sapiens (human)
lipid modificationGhrelin O-acyltransferaseHomo sapiens (human)
lipid metabolic processMonoglyceride lipaseHomo sapiens (human)
fatty acid biosynthetic processMonoglyceride lipaseHomo sapiens (human)
inflammatory responseMonoglyceride lipaseHomo sapiens (human)
regulation of signal transductionMonoglyceride lipaseHomo sapiens (human)
arachidonic acid metabolic processMonoglyceride lipaseHomo sapiens (human)
triglyceride catabolic processMonoglyceride lipaseHomo sapiens (human)
acylglycerol catabolic processMonoglyceride lipaseHomo sapiens (human)
regulation of inflammatory responseMonoglyceride lipaseHomo sapiens (human)
regulation of sensory perception of painMonoglyceride lipaseHomo sapiens (human)
monoacylglycerol catabolic processMonoglyceride lipaseHomo sapiens (human)
regulation of endocannabinoid signaling pathwayMonoglyceride lipaseHomo sapiens (human)
protein dephosphorylation14 kDa phosphohistidine phosphataseHomo sapiens (human)
actin cytoskeleton organization14 kDa phosphohistidine phosphataseHomo sapiens (human)
peptidyl-histidine dephosphorylation14 kDa phosphohistidine phosphataseHomo sapiens (human)
negative regulation of T cell receptor signaling pathway14 kDa phosphohistidine phosphataseHomo sapiens (human)
negative regulation of lyase activity14 kDa phosphohistidine phosphataseHomo sapiens (human)
lamellipodium organization14 kDa phosphohistidine phosphataseHomo sapiens (human)
positive regulation of cell motility14 kDa phosphohistidine phosphataseHomo sapiens (human)
negative regulation of ATP citrate synthase activity14 kDa phosphohistidine phosphataseHomo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Molecular Functions (11)

Processvia Protein(s)Taxonomy
O-acyltransferase activityGhrelin O-acyltransferaseHomo sapiens (human)
acyltransferase activity, transferring groups other than amino-acyl groupsGhrelin O-acyltransferaseHomo sapiens (human)
serine O-acyltransferase activityGhrelin O-acyltransferaseHomo sapiens (human)
lysophospholipase activityMonoglyceride lipaseHomo sapiens (human)
protein bindingMonoglyceride lipaseHomo sapiens (human)
protein homodimerization activityMonoglyceride lipaseHomo sapiens (human)
acylglycerol lipase activityMonoglyceride lipaseHomo sapiens (human)
protein binding14 kDa phosphohistidine phosphataseHomo sapiens (human)
calcium channel inhibitor activity14 kDa phosphohistidine phosphataseHomo sapiens (human)
transmembrane transporter binding14 kDa phosphohistidine phosphataseHomo sapiens (human)
actin filament binding14 kDa phosphohistidine phosphataseHomo sapiens (human)
protein histidine phosphatase activity14 kDa phosphohistidine phosphataseHomo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Ceullar Components (9)

Processvia Protein(s)Taxonomy
endoplasmic reticulumGhrelin O-acyltransferaseHomo sapiens (human)
endoplasmic reticulum membraneGhrelin O-acyltransferaseHomo sapiens (human)
endoplasmic reticulum membraneGhrelin O-acyltransferaseHomo sapiens (human)
endoplasmic reticulum membraneMonoglyceride lipaseHomo sapiens (human)
cytosolMonoglyceride lipaseHomo sapiens (human)
plasma membraneMonoglyceride lipaseHomo sapiens (human)
membraneMonoglyceride lipaseHomo sapiens (human)
membraneMonoglyceride lipaseHomo sapiens (human)
nucleoplasm14 kDa phosphohistidine phosphataseHomo sapiens (human)
cytosol14 kDa phosphohistidine phosphataseHomo sapiens (human)
plasma membrane14 kDa phosphohistidine phosphataseHomo sapiens (human)
nuclear body14 kDa phosphohistidine phosphataseHomo sapiens (human)
leading edge of lamellipodium14 kDa phosphohistidine phosphataseHomo sapiens (human)
extracellular exosome14 kDa phosphohistidine phosphataseHomo sapiens (human)
cytosol14 kDa phosphohistidine phosphataseHomo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Bioassays (76)

Assay IDTitleYearJournalArticle
AID504812Inverse Agonists of the Thyroid Stimulating Hormone Receptor: HTS campaign2010Endocrinology, Jul, Volume: 151, Issue:7
A small molecule inverse agonist for the human thyroid-stimulating hormone receptor.
AID1347058CD47-SIRPalpha protein protein interaction - HTRF assay qHTS validation2019PloS one, , Volume: 14, Issue:7
Quantitative high-throughput screening assays for the discovery and development of SIRPα-CD47 interaction inhibitors.
AID1347405qHTS to identify inhibitors of the type 1 interferon - major histocompatibility complex class I in skeletal muscle: primary screen against the NCATS LOPAC collection2020ACS 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.
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.
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.
AID504836Inducers of the Endoplasmic Reticulum Stress Response (ERSR) in human glioma: Validation2002The Journal of biological chemistry, Apr-19, Volume: 277, Issue:16
Sustained ER Ca2+ depletion suppresses protein synthesis and induces activation-enhanced cell death in mast cells.
AID504810Antagonists of the Thyroid Stimulating Hormone Receptor: HTS campaign2010Endocrinology, Jul, Volume: 151, Issue:7
A small molecule inverse agonist for the human thyroid-stimulating hormone receptor.
AID1347410qHTS for inhibitors of adenylyl cyclases using a fission yeast platform: a pilot screen against the NCATS LOPAC library2019Cellular signalling, 08, Volume: 60A fission yeast platform for heterologous expression of mammalian adenylyl cyclases and high throughput screening.
AID1347059CD47-SIRPalpha protein protein interaction - Alpha assay qHTS validation2019PloS one, , Volume: 14, Issue:7
Quantitative high-throughput screening assays for the discovery and development of SIRPα-CD47 interaction inhibitors.
AID1347057CD47-SIRPalpha protein protein interaction - LANCE assay qHTS validation2019PloS one, , Volume: 14, Issue:7
Quantitative high-throughput screening assays for the discovery and development of SIRPα-CD47 interaction inhibitors.
AID1347050Natriuretic polypeptide receptor (hNpr2) antagonism - Pilot subtype selectivity assay2019Science translational medicine, 07-10, Volume: 11, Issue:500
Inhibition of natriuretic peptide receptor 1 reduces itch in mice.
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.
AID1347045Natriuretic polypeptide receptor (hNpr1) antagonism - Pilot counterscreen GloSensor control cell line2019Science translational medicine, 07-10, Volume: 11, Issue:500
Inhibition of natriuretic peptide receptor 1 reduces itch in mice.
AID1347151Optimization of GU AMC qHTS for Zika virus inhibitors: Unlinked NS2B-NS3 protease assay2020Proceedings 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.
AID588378qHTS for Inhibitors of ATXN expression: Validation
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.
AID1347049Natriuretic polypeptide receptor (hNpr1) antagonism - Pilot screen2019Science translational medicine, 07-10, Volume: 11, Issue:500
Inhibition of natriuretic peptide receptor 1 reduces itch in mice.
AID588349qHTS for Inhibitors of ATXN expression: Validation of Cytotoxic Assay
AID641474Binding affinity to rat Galpha-fused ORL1 receptor expressed in african green monkey COS7 cells at 100 uM after 90 mins2011Bioorganic & medicinal chemistry, Dec-15, Volume: 19, Issue:24
Capturing of the free cysteine residue in the ligand-binding site by affinity labeling of the ORL1 nociceptin receptor.
AID596526Antifungal activity against Aspergillus niger ATCC 90292011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Antifungal, cytotoxic and SAR studies of a series of N-alkyl, N-aryl and N-alkylphenyl-1,4-pyrrolediones and related compounds.
AID1330865Inhibition of human recombinant GST-tagged Atg4B expressed in Escherichia coli at 5 mM preincubated for 15 mins followed by LC3B-GST substrate addition after 6 mins by SDS-PAGE assay2016European journal of medicinal chemistry, Nov-10, Volume: 123Inhibitor screening and enzymatic activity determination for autophagy target Atg4B using a gel electrophoresis-based assay.
AID1200646Binding affinity to 6His-TEV-SH-HRas(1 to 166) (unknown origin)/6His-TEV-SH-SOS (unknown origin) complex by nuclear magnetic resonance analysis2015Journal of medicinal chemistry, Mar-12, Volume: 58, Issue:5
Small molecule binding sites on the Ras:SOS complex can be exploited for inhibition of Ras activation.
AID1377214Inhibition of recombinant His6-tagged human USP7 expressed in insect expression system at 20 mM using ubiquitin-Rh110 as substrate preincubated for 30 mins followed by substrate addition measured after 180 mins by fluorescence assay2017Journal of natural products, 07-28, Volume: 80, Issue:7
Sulawesins A-C, Furanosesterterpene Tetronic Acids That Inhibit USP7, from a Psammocinia sp. Marine Sponge.
AID596525Antifungal activity against Aspergillus flavus ATCC 91702011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Antifungal, cytotoxic and SAR studies of a series of N-alkyl, N-aryl and N-alkylphenyl-1,4-pyrrolediones and related compounds.
AID439744Displacement of [3H]2-OG from human MGL by liquid scintillation counting2009Journal of medicinal chemistry, Dec-10, Volume: 52, Issue:23
Synthesis and in vitro evaluation of N-substituted maleimide derivatives as selective monoglyceride lipase inhibitors.
AID1852942Inhibition of human PHPT1 expressed in Escherichia coli BL21 (DE3) using pNPP as substrate assessed as Kinact by reciprocal analysis2022ACS medicinal chemistry letters, Dec-08, Volume: 13, Issue:12
Identification of a Target Site for Covalent Inhibition of Protein Phosphohistidine Phosphatase 1.
AID502906Inhibition of annexin 2-mediated liposome aggregation after 15 mins by spectrophotometry2006Nature chemical biology, Jan, Volume: 2, Issue:1
Actin microfilament aggregation induced by withaferin A is mediated by annexin II.
AID596442Cytotoxicity against human erythrocytes assessed as hemolysis by spectrometric analysis2011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Antifungal, cytotoxic and SAR studies of a series of N-alkyl, N-aryl and N-alkylphenyl-1,4-pyrrolediones and related compounds.
AID705160Inhibition of recombinant human SENP2 catalytic domain assessed as release of fluorescent AMC from SUMO-1-AMC preincubated at 10 to 100 uM for 10 mins before substrate addition by fluorescence assay2012Bioorganic & medicinal chemistry letters, Aug-15, Volume: 22, Issue:16
Discovery of 1-[4-(N-benzylamino)phenyl]-3-phenylurea derivatives as non-peptidic selective SUMO-sentrin specific protease (SENP)1 inhibitors.
AID596444Antifungal activity against Candida tropicalis C 131 20002011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Antifungal, cytotoxic and SAR studies of a series of N-alkyl, N-aryl and N-alkylphenyl-1,4-pyrrolediones and related compounds.
AID143748Percent inhibition against AHAT when compound 10 is used as substrate at 1 mM concentration1983Journal of medicinal chemistry, Dec, Volume: 26, Issue:12
N-arylhydroxamic acid N,O-acyltransferase. Positional requirements for the substrate hydroxyl group.
AID415296Inactivation of human MAP-B assessed as half time at 0.8 mM2009Bioorganic & medicinal chemistry, Apr-15, Volume: 17, Issue:8
Inhibition of monoamine oxidase B by N-methyl-2-phenylmaleimides.
AID521220Inhibition of neurosphere proliferation of mouse neural precursor cells by MTT assay2007Nature chemical biology, May, Volume: 3, Issue:5
Chemical genetics reveals a complex functional ground state of neural stem cells.
AID1349243Cysteine reactivity at pH 7.4 after 15 mins by 1H NMR analysis2018European journal of medicinal chemistry, Jan-01, Volume: 143Structure-activity analysis of CJ-15,801 analogues that interact with Plasmodium falciparum pantothenate kinase and inhibit parasite proliferation.
AID1328532Gastroprotective activity in Swiss albino mouse assessed as reduction in HCl/EtOH-induced gastric lesions by measuring lesion index at 10 mg/kg, sc pretreated followed by HCl/EtOH challenge measured after 1 hr (Rvb = 38.8 +/- 1.6 millimeter)2016Bioorganic & medicinal chemistry letters, 12-01, Volume: 26, Issue:23
Gastroprotective activity of synthetic coumarins: Role of endogenous prostaglandins, nitric oxide, non-protein sulfhydryls and vanilloid receptors.
AID439746Inhibition of [3H]ethanolamine binding to human recombinant FAAH at 1 mM by liquid scintillation counting2009Journal of medicinal chemistry, Dec-10, Volume: 52, Issue:23
Synthesis and in vitro evaluation of N-substituted maleimide derivatives as selective monoglyceride lipase inhibitors.
AID596447Antifungal activity against Aspergillus fumigatus ATCC 269342011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Antifungal, cytotoxic and SAR studies of a series of N-alkyl, N-aryl and N-alkylphenyl-1,4-pyrrolediones and related compounds.
AID212998Inactivation of thymidylate synthetase measured as k2 at 7 pH 4 degrees Celsius temp1983Journal of medicinal chemistry, Jul, Volume: 26, Issue:7
5-p-benzoquinonyl-2'-deoxyuridine 5'-phosphate: a possible mechanism-based inhibitor of thymidylate synthetase.
AID1363914Inhibition of rat cerebellar membranes MAGL-like activity preincubated for 30 mins followed by 2-AG substrate addition after 90 mins by HPLC analysis2017Journal of medicinal chemistry, 01-12, Volume: 60, Issue:1
Therapeutic Potential of Fatty Acid Amide Hydrolase, Monoacylglycerol Lipase, and N-Acylethanolamine Acid Amidase Inhibitors.
AID596528Antifungal activity against Trichophyton rubrum C 113 20002011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Antifungal, cytotoxic and SAR studies of a series of N-alkyl, N-aryl and N-alkylphenyl-1,4-pyrrolediones and related compounds.
AID596446Antifungal activity against Cryptococcus neoformans ATCC 322642011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Antifungal, cytotoxic and SAR studies of a series of N-alkyl, N-aryl and N-alkylphenyl-1,4-pyrrolediones and related compounds.
AID143749Percent inhibition against AHAT when compound 8 is used as substrate at 1 mM concentration1983Journal of medicinal chemistry, Dec, Volume: 26, Issue:12
N-arylhydroxamic acid N,O-acyltransferase. Positional requirements for the substrate hydroxyl group.
AID596527Antifungal activity against Microsporum gypseum C 115 20002011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Antifungal, cytotoxic and SAR studies of a series of N-alkyl, N-aryl and N-alkylphenyl-1,4-pyrrolediones and related compounds.
AID641475Binding affinity to rat Galpha-fused ORL1 receptor expressed in african green monkey COS7 cells after 90 mins2011Bioorganic & medicinal chemistry, Dec-15, Volume: 19, Issue:24
Capturing of the free cysteine residue in the ligand-binding site by affinity labeling of the ORL1 nociceptin receptor.
AID1852943Inhibition of human PHPT1 expressed in Escherichia coli BL21 (DE3) using pNPP as substrate assessed as inhibition constant by reciprocal analysis2022ACS medicinal chemistry letters, Dec-08, Volume: 13, Issue:12
Identification of a Target Site for Covalent Inhibition of Protein Phosphohistidine Phosphatase 1.
AID298091Inhibition of wild type HIV YU2 gp120 to CD4 binding2007Journal of medicinal chemistry, Oct-04, Volume: 50, Issue:20
Structure-activity relationships in the binding of chemically derivatized CD4 to gp120 from human immunodeficiency virus.
AID1330866Inhibition of human recombinant GST-tagged Atg4B expressed in Escherichia coli at 20 mM using LC3B-GST as substrate measured after 6 mins by SDS-PAGE assay2016European journal of medicinal chemistry, Nov-10, Volume: 123Inhibitor screening and enzymatic activity determination for autophagy target Atg4B using a gel electrophoresis-based assay.
AID502905Binding affinity to annexin 2 assessed as inhibition of protein-lipid interaction after 15 mins by coomassine blue staining2006Nature chemical biology, Jan, Volume: 2, Issue:1
Actin microfilament aggregation induced by withaferin A is mediated by annexin II.
AID596439Cytotoxicity against human MCF7 cells assessed as cell growth after 2 days by sulforhodamine B assay2011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Antifungal, cytotoxic and SAR studies of a series of N-alkyl, N-aryl and N-alkylphenyl-1,4-pyrrolediones and related compounds.
AID695876Cytotoxicity against drug-resistant human KBV1 cells expressing P-gp incubated for 72 hrs by MTT assay2011Journal of medicinal chemistry, Jul-28, Volume: 54, Issue:14
Collateral sensitivity of multidrug-resistant cells to the orphan drug tiopronin.
AID596445Antifungal activity against Saccharomyces cerevisiae ATCC 97632011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Antifungal, cytotoxic and SAR studies of a series of N-alkyl, N-aryl and N-alkylphenyl-1,4-pyrrolediones and related compounds.
AID596441Cytotoxicity against human SF268 cells assessed as cell growth after 2 days by sulforhodamine B assay2011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Antifungal, cytotoxic and SAR studies of a series of N-alkyl, N-aryl and N-alkylphenyl-1,4-pyrrolediones and related compounds.
AID144355In vitro inhibition of N8-Acetylspermidine deacetylase from rat liver cytosol(apparent Ki)1992Journal of medicinal chemistry, Jun-26, Volume: 35, Issue:13
Inhibition of N8-acetylspermidine deacetylase by active-site-directed metal coordinating inhibitors.
AID1852944Inhibition of human PHPT1 expressed in Escherichia coli BL21 (DE3) using pNPP as substrate assessed as Kinact/Ki by reciprocal analysis2022ACS medicinal chemistry letters, Dec-08, Volume: 13, Issue:12
Identification of a Target Site for Covalent Inhibition of Protein Phosphohistidine Phosphatase 1.
AID1233131Induction of intracellular thiol depletion in Staphylococcus aureus after 75 mins by monobromobimane-based fluorescence assay relative to control2015Bioorganic & medicinal chemistry letters, Jul-01, Volume: 25, Issue:13
Thiol activated prodrugs of sulfur dioxide (SO2) as MRSA inhibitors.
AID596529Antifungal activity against Trichophyton mentagrophytes ATCC 99722011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Antifungal, cytotoxic and SAR studies of a series of N-alkyl, N-aryl and N-alkylphenyl-1,4-pyrrolediones and related compounds.
AID596443Antifungal activity against Candida albicans ATCC 102132011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Antifungal, cytotoxic and SAR studies of a series of N-alkyl, N-aryl and N-alkylphenyl-1,4-pyrrolediones and related compounds.
AID695851Resistance index, ratio of IC50 for human KB-3-1 cells to IC50 for drug-resistant human KBV1 cells expressing P-gp2011Journal of medicinal chemistry, Jul-28, Volume: 54, Issue:14
Collateral sensitivity of multidrug-resistant cells to the orphan drug tiopronin.
AID1349242Glutathione reactivity at pH 7.4 after 15 mins by 1H NMR analysis2018European journal of medicinal chemistry, Jan-01, Volume: 143Structure-activity analysis of CJ-15,801 analogues that interact with Plasmodium falciparum pantothenate kinase and inhibit parasite proliferation.
AID596440Cytotoxicity against human H460 cells assessed as cell growth after 2 days by sulforhodamine B assay2011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Antifungal, cytotoxic and SAR studies of a series of N-alkyl, N-aryl and N-alkylphenyl-1,4-pyrrolediones and related compounds.
AID1330868Inhibition of human recombinant GST-tagged Atg4B expressed in Escherichia coli at 20 mM using LC3B-GST as substrate preincubated up to 20 mins followed by substrate addition measured after 6 mins by SDS-PAGE assay2016European journal of medicinal chemistry, Nov-10, Volume: 123Inhibitor screening and enzymatic activity determination for autophagy target Atg4B using a gel electrophoresis-based assay.
AID1736293Alkylation of NAC assessed as thiol depletion at 50 uM preincubated for 2 hrs prior to incubation with DTNB for 1 hr by absorbance based analysis2020European journal of medicinal chemistry, Mar-01, Volume: 189Efficient identification of novel anti-glioma lead compounds by machine learning models.
AID1469831Inhibition of [3H]dopamine uptake at DAT in rat brain striatal synaptosomes by liquid scintillation counting analysis2017Journal of medicinal chemistry, 02-09, Volume: 60, Issue:3
Covalent Modifiers: A Chemical Perspective on the Reactivity of α,β-Unsaturated Carbonyls with Thiols via Hetero-Michael Addition Reactions.
AID1469803Cysteine reactivity of the compound assessed as second order rate constant by 1H NMR analysis2017Journal of medicinal chemistry, 02-09, Volume: 60, Issue:3
Covalent Modifiers: A Chemical Perspective on the Reactivity of α,β-Unsaturated Carbonyls with Thiols via Hetero-Michael Addition Reactions.
AID1392424Thiol reactivity of the compound in pH 7.4 PBS buffer at 250 uM after 2 to 12 hrs by HPLC-PDA analysis2018Journal of medicinal chemistry, 05-24, Volume: 61, Issue:10
Furoxans (Oxadiazole-4 N-oxides) with Attenuated Reactivity are Neuroprotective, Cross the Blood Brain Barrier, and Improve Passive Avoidance Memory.
AID1233393Gastroprotective activity in Swiss albino mouse model of HCl/EtOH-induced lesion assessed as gastric lesion index at 10 mg/kg, po dosed 50 mins before HCl/EtOH challenge and measured 1 hr post HCl/EtOH challenge (Rvb = 42 +/- 1.9 mm)2015Bioorganic & medicinal chemistry letters, Jul-15, Volume: 25, Issue:14
Gastroprotective activity of ent-beyerene derivatives in mice: Effects on gastric secretion, endogenous prostaglandins and non-protein sulfhydryls.
AID1600078Irreversible inhibition of human recombinant IDE expressed in Escherichia coli BL21 (DE3) cells using ATTO 655- Cys-Lys-Leu-Val-Phe-Phe-Ala-Glu-Asp-Trp as substrate preincubated for 30 mins followed by 100 fold compound dilution by spectrophotometric anal2019European journal of medicinal chemistry, Oct-01, Volume: 179Identification of ebselen as a potent inhibitor of insulin degrading enzyme by a drug repurposing screening.
AID1736294Alkylation of bovine serum albumin assessed as thiol depletion at 50 uM preincubated for 2 hrs prior to incubation with DTNB for 1 hr by absorbance based analysis2020European journal of medicinal chemistry, Mar-01, Volume: 189Efficient identification of novel anti-glioma lead compounds by machine learning models.
AID1637032Inhibition of SENP1 in human KU812 cells preincubated for 20 mins followed by addition of HA-SUMO1-VS as substrate measured after 2 hrs by immunoblot analysis2016Bioorganic & medicinal chemistry letters, 09-01, Volume: 26, Issue:17
Vialinin A and thelephantin G, potent inhibitors of tumor necrosis factor-α production, inhibit sentrin/SUMO-specific protease 1 enzymatic activity.
AID695877Cytotoxicity against human KB-3-1 cells incubated for 72 hrs by MTT assay2011Journal of medicinal chemistry, Jul-28, Volume: 54, Issue:14
Collateral sensitivity of multidrug-resistant cells to the orphan drug tiopronin.
AID1800476EMSA from Article 10.1021/cb500512z: \\Ebselen Inhibits Hepatitis C Virus NS3 Helicase Binding to Nucleic Acid and Prevents Viral Replication\\2014ACS chemical biology, Oct-17, Volume: 9, Issue:10
Ebselen inhibits hepatitis C virus NS3 helicase binding to nucleic acid and prevents viral replication.
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.
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.
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.
AID1794808Fluorescence-based screening to identify small molecule inhibitors of Plasmodium falciparum apicoplast DNA polymerase (Pf-apPOL).2014Journal of biomolecular screening, Jul, Volume: 19, Issue:6
A High-Throughput Assay to Identify Inhibitors of the Apicoplast DNA Polymerase from Plasmodium falciparum.
AID1794808Fluorescence-based screening to identify small molecule inhibitors of Plasmodium falciparum apicoplast DNA polymerase (Pf-apPOL).
[information is prepared from bioassay data collected from National Library of Medicine (NLM), extracted Dec-2023]

Research

Studies (5,994)

TimeframeStudies, This Drug (%)All Drugs %
pre-19903619 (60.38)18.7374
1990's1449 (24.17)18.2507
2000's673 (11.23)29.6817
2010's221 (3.69)24.3611
2020's32 (0.53)2.80
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Market Indicators

Research Demand Index: 50.15

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 very strong demand-to-supply ratio for research on this compound.

MetricThis Compound (vs All)
Research Demand Index50.15 (24.57)
Research Supply Index8.72 (2.92)
Research Growth Index4.09 (4.65)
Search Engine Demand Index87.54 (26.88)
Search Engine Supply Index2.00 (0.95)

This Compound (50.15)

All Compounds (24.57)

Study Types

Publication TypeThis drug (%)All Drugs (%)
Trials3 (0.05%)5.53%
Reviews59 (0.96%)6.00%
Case Studies6 (0.10%)4.05%
Observational0 (0.00%)0.25%
Other6,068 (98.89%)84.16%
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]