Page last updated: 2024-11-04

hydroxylamine

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Description

amino alcohol : An alcohol containing an amino functional group in addition to the alcohol-defining hydroxy group. [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]

Cross-References

ID SourceID
PubMed CID787
CHEMBL ID1191361
CHEBI ID15429
MeSH IDM0029404

Synonyms (68)

Synonym
AKOS009031565
CHEMBL1191361
CHEBI:15429 ,
[nh2oh]
hydroxylamin
oxyammonia
dihydridohydroxidonitrogen
h2nho
oxammonium
einecs 232-259-2
hsdb 579
nitroxide
lopac-h-9876
NCGC00015527-01
LOPAC0_000637
hydroxyamine
HYDROXYLAMINE ,
7803-49-8
nh2oh
C00192
NCGC00162208-01
(hydroxyamino)methanol
2FFDCFE4-66E9-4869-8F4D-DC8E410797E7
NCGC00015527-03
bdbm50082140
11129-69-4
oxidoazanium
unii-2fp81o2l9z
2fp81o2l9z ,
ec 232-259-2
CCG-204724
13408-29-2
11104-93-1
NCGC00015527-02
FT-0627150
EPITOPE ID:117722
hydroxylamine [mi]
hydroxylamine [hsdb]
J-502073
hyroxylamine
hydroxyl-amine
hydroxyl amine
h2n-oh
amino alcohol
n-hydroxyamine
h2noh
amino-alcohol
honh2
arninoalcohol
hydroxy amine
DTXSID7041043 ,
azinous acid
mfcd00044522
(1) hydroxylamine
amine n-oxide
hydroxylamine hydrochloride in combination with isoniazid and rifampicin
MRF-0000034
BCP03655
n h2 o h
Q27110261
Q27110260
Q259997
SDCCGSBI-0050617.P002
NCGC00015527-05
A901585
hydroxylamine, 50 wt. % solution in water
(nh2oh)
dtxcid5021043

Research Excerpts

Overview

Hydroxylamine (HA) is an important product of cell metabolism and plays a significant role in many biological processes. Real-time imaging of HA is of great importance for the in-depth study of its physiological and pathological functions.

ExcerptReferenceRelevance
"Hydroxylamine is a highly reactive inorganic nitrogen compound that not only has a toxic effect on microorganisms, but also makes wastewater treatment more difficult, which in turn damages the environment and even endangers human health. "( Efficient transformation of hydroxylamine from wastewater after supplementation with sodium carbonate or calcium bicarbonate.
Chen, M; He, T; Liang, X; Wang, C; Zheng, C, 2023
)
2.65
"Hydroxylamine (HA) is an important product of cell metabolism and plays a significant role in many biological processes, and therefore, real-time imaging of HA is of great importance for the in-depth study of its physiological and pathological functions. "( Förster Resonance Energy Transfer-Based Fluorescent Probe for the Selective Imaging of Hydroxylamine in Living Cells.
Dong, B; Kong, X; Lin, W; Lu, Y; Song, W; Tian, M, 2019
)
2.18
"Hydroxylamine is a key intermediate in several biological reactions of the global nitrogen cycle. "( Hydroxylamine metabolism of Ca. Kuenenia stuttgartiensis.
Laureni, M; Pérez, J; Soler-Jofra, A; van Loosdrecht, MCM; Warmerdam, M, 2020
)
3.44
"Hydroxylamine is a known genotoxic impurity compound that needs to be controlled down to ppm level in pharmaceutical processes. "( A Simple and Direct LC-MS Method for Determination of Genotoxic Impurity Hydroxylamine in Pharmaceutical compounds.
Kumar, T; Ramya, M; Srinivasan, V; Xavier, N, 2017
)
2.13
"Hydroxylamine reacts as an oxygen nucleophile, most likely via its ammonia oxide tautomer, towards both phosphate di- and triesters of 2-hydroxypyridine. "( Major mechanistic differences between the reactions of hydroxylamine with phosphate di- and tri-esters.
Kirby, AJ; Medeiros, M; Mora, JR; Moreira, R; Nome, F; Wanderlind, EH, 2013
)
2.08
"Hydroxylamine is an important intermediate product of anammox. "( [Hydroxylamine conversion by anammox enrichment].
Ding, S; Hu, A; Lu, H; Wang, C; Zheng, P, 2010
)
2.71
"Hydroxylamine (NH(2)OH) is an unstable compound at room temperature, and it has been involved in two tragic industrial incidents. "( Thermal decomposition pathways of hydroxylamine: theoretical investigation on the initial steps.
Hall, MB; Mannan, MS; Pérez, LM; Rogers, WJ; Wang, Q; Wei, C, 2010
)
2.08
"Hydroxylamine is a key raw material used in a synthetic drug process at Pharmacia. "( Ion chromatographic determination of trace hydroxylamine in waste streams generated by a pharmaceutical reaction process.
Egwu, IN; Fernando, PN; Hussain, MS, 2002
)
2.02
"Hydroxylamine (HA) is a putative intermediate in the conversion of l-arginine to nitric oxide (NO). "( The effect of hydroxylamine on KATP channels in vascular smooth muscle and underlying mechanisms.
Tang, G; Wang, R; Wu, L, 2005
)
2.13
"Hydroxylamine nitrate (HAN) is an important member of the hydroxylamine family and it is a liquid propellant when combined with alkylammonium nitrate fuel in an aqueous solution. "( Thermal decomposition hazard evaluation of hydroxylamine nitrate.
Mannan, MS; Rogers, WJ; Wei, C, 2006
)
2.04
"Hydroxylamine is a strong inhibitor of the Mn-catalase of Lactobacillus plantarum in the presence of hydrogen peroxide [Kono, Y., and Fridovich, I. "( CU(II)-dependent inactivation of Mn-catalase by hydroxylamine.
Kono, Y, 1984
)
1.97
"Hydroxylamine is a natural product of cellular metabolism that possesses vasodilating properties similar to those of endothelium-derived relaxing factor (EDRF). "( Vasodilator effects of hydroxylamine in the isolated rodent lung.
Angerio, AD; Kot, PA; Ramwell, PW; Santoian, EC; Thomas, G, 1993
)
2.04
"Hydroxylamine hydrochloride is a mutagenic agent that binds to and chemically modifies DNA."( Application of hydroxylamine hydrochloride for post-PCR sterilization.
Aslanzadeh, J, 1993
)
1.36
"Hydroxylamine (HA), which is a natural product of mammalian cells, has been shown to possess vasodilatory properties in several model systems. "( Nitric oxide formation from hydroxylamine by myoglobin and hydrogen peroxide.
Misík, V; Riesz, P; Taira, J, 1997
)
2.03
"Hydroxylamine is a direct-acting hematotoxic agent leading to hemolytic anemia in animals and man. "( Hydroxylamine treatment increases glutathione-protein and protein-protein binding in human erythrocytes.
Evelo, CT; Spooren, AA, 1997
)
3.18
"Hydroxylamine (HA) is an important reducing agent that is used in several industries. "( Developmental toxicity of hydroxylamine: an example of a maternally mediated effect.
DeSesso, JM; Goeringer, GC, 1990
)
2.02
"Hydroxylamine was shown to be an alternate substrate for the asparagine synthetase reaction, and some of its kinetic properties were examined."( Studies of the ammonia-dependent reaction of beef pancreatic asparagine synthetase.
Luehr, CA; Mehlhaff, PM; Schuster, SM, 1985
)
0.99

Effects

ExcerptReferenceRelevance
"Hydroxylamine stability has been used to classify (ADP-ribose)protein bonds into sensitive and resistant linkages, with the former representing (ADP-ribose)glutamate, and the latter, (ADP-ribose)arginine. "( Amino acid-specific ADP-ribosylation. Sensitivity to hydroxylamine of [cysteine(ADP-ribose)]protein and [arginine(ADP-ribose)]protein linkages.
Adamik, R; Hewlett, EL; Hsia, JA; Moss, J; Tsai, SC; Yost, DA, 1985
)
1.96

Actions

Hydroxylamine failed to inactivate prions even after lengthy exposures to concentrations as high as 1 M. TMV and M13 were both inactivated.

ExcerptReferenceRelevance
"Hydroxylamine did not regenerate the cyclooxygenase activity of indomethacin-inactivated protein."( Inactivation of prostaglandin endoperoxide synthase by acylating derivatives of indomethacin.
Marnett, LJ; Wells, I, 1993
)
1.01
"Hydroxylamine failed to inactivate prions even after lengthy exposures to concentrations as high as 1 M, while TMV and M13 were both inactivated."( Purified scrapie prions resist inactivation by procedures that hydrolyze, modify, or shear nucleic acids.
Bellinger-Kawahara, C; Diener, TO; Groth, DF; McKinley, MP; Prusiner, SB; Smith, DR, 1987
)
0.99

Treatment

Hydroxylamine treatment of the acivicin-inactivated enzymes restores activity and releases threo-beta-hydroxyglutamate moiety. Treatment of NHS-opsonized yeast cells showed that 76% of C3 was bound to yeast cells by ester linkage.

ExcerptReferenceRelevance
"Hydroxylamine treatment of [14C]ADP-ribose-agmatine or [32P]ADP-ribose-histone yielded a single radioactive product which was separated by high pressure liquid chromatography and identified as ADP-ribose-hydroxamate by the formation of a ferric chloride complex."( Amino acid-specific ADP-ribosylation.
Moss, J; Stanley, SJ; Yost, DA, 1983
)
0.99
"Hydroxylamine treatment of wt HA (H7) and fatty-acid-free mutant HA present in lysates of insect cells led to the complete inhibition of hemolytic activity."( Assessment of fusogenic properties of influenza virus hemagglutinin deacylated by site-directed mutagenesis and hydroxylamine treatment.
Herrmann, A; Krumbiegel, M; Philipp, HC; Schmidt, MF; Schroth, B; Veit, M, 1995
)
1.22
"Hydroxylamine treatment of the acivicin-inactivated enzymes restores activity and releases the acivicin-derived threo-beta-hydroxyglutamate moiety."( Different sites of acivicin binding and inactivation of gamma-glutamyl transpeptidases.
Fujii, J; Ikeda, Y; Meister, A; Smith, TK; Taniguchi, N, 1995
)
1.01
"The hydroxylamine treatment also resulted in attachment of hydroxamic groups to the membrane, making the microcapsules capable of iron binding."( Polyhydroxamic microcapsules prepared from proteins: a novel type of chelating microcapsules.
Andry, MC; Hettler, D; Levy, MC,
)
0.61
"Hydroxylamine treatment of the 14C-C3frg-Fab and 14C-C3frg-Fc complexes released a 14C-C3frg of similar size (about 3-4 kDa) in which the N-terminal residue was the radiolabeled Cys1010."( C3 binds with similar efficiency to Fab and Fc regions of IgG immune aggregates.
Antón, LC; Barrio, E; Marqués, G; Ruiz, S; Sánchez, A; Vivanco, F, 1994
)
1.01
"Hydroxylamine treatment of NHS-opsonized yeast cells showed that 76% of C3 was bound to yeast cells by ester linkage, supporting a role for hydroxyl groups on cell wall polysaccharides."( Activation, binding, and processing of complement component 3 (C3) by Blastomyces dermatitidis.
Klein, B; Zhang, MX, 1997
)
1.02
"Hydroxylamine treatment eliminated immunoreactivity in the sarcolemma and denser membrane fractions but not the cytosol, suggesting the membranous immunoreactive bands contain ADP-ribosylarginine."( Evidence of endogenous mono-ADP-ribosylation of cardiac proteins via anti-ADP-ribosylarginine immunoreactivity.
Colville, MJ; Fullerton, AT; McMahon, KK; Schwab, CJ, 2000
)
1.03
"Hydroxylamine treatment indicated presence of ester bonds in the 86- and 180-kDa subunits."( Biochemical and ultrastructural studies of the C-type lectin bovine conglutinin.
Andersen, O; Friis, P; Højrup, P; Leslie, G; Nielsen, EH; Storgaard, P; Svehag, SE,
)
0.85
"Hydroxylamine treatment before or after PLD digestion was necessary to achieve the conversion."( Conversion of human erythrocyte acetylcholinesterase from an amphiphilic to a hydrophilic form by phosphatidylinositol-specific phospholipase C and serum phospholipase D.
Murray, NR; Roberts, WL; Rosenberry, TL; Toutant, JP, 1989
)
1
"The hydroxylamine treatment applied has no detectable effects on the virus other than fatty acid release from its spike glycoproteins."( Membrane fusion induced by influenza virus hemagglutinin requires protein bound fatty acids.
Lambrecht, B; Schmidt, MF, 1986
)
0.75
"Pretreatment with hydroxylamine, a CBS inhibitor, failed to affect the cardiovascular functions of intra-NTS NaHS."( The cardiovascular inhibition functions of hydrogen sulfide within the nucleus tractus solitarii are mediated by the activation of KATP channels and glutamate receptors mechanisms.
Cao, N; Chai, C; Li, XY; Lu, Y; Qiao, W; Wang, WZ; Yang, L, 2011
)
0.69
"Treatment with hydroxylamine restored the catalytic properties of the modified MCP 76 to that of the native enzyme."( Modification of a zinc proteinase from Bacillus mesentericus strain 76 by diethylpyrocarbonate.
Stoeva, S, 1991
)
0.62

Toxicity

The differential incidence of adverse drug reactions (ADR) between trimethoprim-sulfamethoxazole and dapsone might be explained, in part, by differences in the inherent toxicity of the hydroxylamine metabolites.

ExcerptReferenceRelevance
" Several chemical derivatives of HA are potent developmental toxicants, whereas HA has been reported to cause no developmentally toxic effects."( Developmental toxicity of hydroxylamine: an example of a maternally mediated effect.
DeSesso, JM; Goeringer, GC, 1990
)
0.58
"6 mM sulfadiazine H/A produced 82% cell death, whereas 400 microM sulfamethoxazole H/A produced 62% cell death; the parent sulfonamides were not toxic to cells."( Synthesis and in vitro toxicity of hydroxylamine metabolites of sulfonamides.
Rieder, MJ; Shear, NH; Spielberg, SP; Uetrecht, J, 1988
)
0.55
" HS and PHZ proved to be more toxic to the rabbit than to the rat although both chemicals produced similar hematological effects at equivalent dose levels within the same species."( Toxicity of hydroxylamine sulfate following dermal exposure: variability with exposure method and species.
Babich, PC; Derelanko, MJ; Gad, SC; Gavigan, FA; Rinehart, WE, 1987
)
0.65
" When this oxidation was minimized by rapid manipulations or inhibited by ascorbic acid, cytotoxicity was reduced or eliminated, suggesting that the nitroso-derivative may be the toxic metabolite."( Cytotoxicity of oxidative metabolites of procainamide.
Jones, JE; Rubin, RL; Uetrecht, JP, 1987
)
0.27
" The results indicate toxic effects in both treatment groups at a dose known to induce methaemoglobin concentration to the level of antidotal efficiency in cyanide intoxication."( Toxicity evaluation of two treatment regimens for cyanide poisoning.
Bhattacharya, R; Dube, SN; Kumar, D; Pant, SC,
)
0.13
" These results demonstrate that (a) reduction in the availability of glucose and intracellular glutathione renders the cells more vulnerable to the cytotoxic effects of NO donors, (b) in this model of cytotoxicity, long-lived NO donors were more cytotoxic than short-lived NO donors, (c) the differential effects of N-acetylcysteine on S-nitroso-N-acetylpenicillamine-induced and bacterial lipopolysaccharide-mediated cytotoxicity support the existence of other toxic species different from NO or NO-related compounds with a potent cytotoxic activity in immunostimulated macrophages, and (d) other non-protein thiols like N-acetylcysteine may substitute for glutathione as a major component of the cellular antioxidant defense system."( The protective role of thiols against nitric oxide-mediated cytotoxicity in murine macrophage J774 cells.
Herman, AG; Matthys, KE; Zamora, R, 1997
)
0.3
"The differential incidence of adverse drug reactions (ADR) between trimethoprim-sulfamethoxazole and dapsone might be explained, in part, by differences in the inherent toxicity of the hydroxylamine metabolites of sulfamethoxazole and dapsone."( Comparison of the in vitro cytotoxicity of hydroxylamine metabolites of sulfamethoxazole and dapsone.
Bellevue, FH; Reilly, TP; Svensson, CK; Woster, PM, 1998
)
0.75
" The vaccine proved to be safe when evaluated in experiments of acute and chronic toxicity, made on laboratory animals."( [Experimentally determined safety and immunological activity of vaccine based on antigens isolated from Pseudomonas aeruginosa in medium K-4].
Garib, FIu; Iskhakova, KhI; Ivanova, LE; Nuriddinova, NR; Sheremet'ev, NN,
)
0.13
"In this study, we studied the toxic effect of nitrification substrates and products on photobacterium."( [Toxicity of nitrification substrates and products to photobacterium].
Chen, T; Zheng, P, 2009
)
0.35
"3 mg/ L, respectively, and their toxic order was hydroxylamine > nitrite > ammonium > nitrate."( [Toxicity of nitrification substrates and products to photobacterium].
Chen, T; Zheng, P, 2009
)
0.61

Pharmacokinetics

ExcerptReferenceRelevance
" Because of these pharmacokinetic properties, ACP should be suitable for the imaging of ROS in animals."( Pharmacokinetic study of acyl-protected hydroxylamine probe, 1-acetoxy-3-carbamoyl-2,2,5,5-tetramethylpyrrolidine, for in vivo measurements of reactive oxygen species.
Anzai, K; Ozawa, T; Saito, K; Takeshita, K, 2004
)
0.59

Compound-Compound Interactions

ExcerptReferenceRelevance
" In the present study, we evaluated CMC in combination with capillary electrophoresis (CE) by determining the common T833C and G919A mutations in exon 8 of the cystathionine beta-synthase gene in heterozygous and homozygous samples."( Chemical mismatch cleavage combined with capillary electrophoresis: detection of mutations exon 8 of the cystathionine beta-synthase gene.
Refsum, H; Ren, J; Ueland, PM; Ulvik, A, 1998
)
0.3

Bioavailability

ExcerptReferenceRelevance
" In the normal unintoxicated animal an intramuscular injection of 20 mg kg-1 sodium nitrite will form 20% methemoglobin; however, in acute cyanide intoxication the associated severe bradycardia appears to limit the rate of absorption and thus the rapid formation of methemoglobin."( Effectiveness of intramuscularly administered cyanide antidotes on methemoglobin formation and survival.
Vick, JA; Von Bredow, JD,
)
0.13
" Therefore, a strong need exists to provide accurate data on oral relative bioavailability (RBA) of arsenic (in vivo or in vitro) in field-collected CCA-contaminated soils."( In vitro gastrointestinal bioavailability of arsenic in soils collected near CCA-treated utility poles.
Pouschat, P; Zagury, GJ, 2006
)
0.33
"We aimed at evaluating the impact of short and prolonged mild manipulations of intracellular nitric oxide (NO) bioavailability on the main features of insulin secretion and whether NO promotes mitochondrial biogenesis in isolated β-cells."( Effects of short and prolonged mild intracellular nitric oxide manipulations on various aspects of insulin secretion in INS-1E β-cells.
Baldi, S; Delbarba, A; Ferrannini, E; Natali, A; Nisoli, E; Santini, E; Tulipani, A; Venturi, E, 2012
)
0.38

Dosage Studied

This method overcomes various shortcomings of the reported hydroxylamine removal technologies that require a large material dosage and high cost. When the cells were treated with a lower hydroxyamine dosage (50 microM), total phospholipid synthesis lagged as PS accumulated, but it resumed coincident with a reversal of PS accumulation.

ExcerptRelevanceReference
" In addition, we have demonstrated that increased gene dosage of either SIR1 or SIR4, two other factors required for silencing, suppresses the silencing defect of the rap1 mutants."( Separation of transcriptional activation and silencing functions of the RAP1-encoded repressor/activator protein 1: isolation of viable mutants affecting both silencing and telomere length.
Shore, D; Sussel, L, 1991
)
0.28
" With increasing extracellular K+ concentrations, IQ was increased in accordance with a simple first-order dose-response relationship."( Ion permeation through hyperpolarization-activated membrane channels (Q-channels) in the lobster stretch receptor neurone.
Edman, A; Grampp, W, 1989
)
0.28
" When the cells were treated with a lower hydroxylamine dosage (50 microM), total phospholipid synthesis lagged as PS accumulated, however, phospholipid synthesis resumed coincident with a reversal of PS accumulation."( In vivo metabolic intermediates of phospholipid biosynthesis in Rhodopseudomonas sphaeroides.
Cain, BD; Donohue, TJ; Kaplan, S; Singer, M, 1983
)
0.53
" Moreover, the soluble guanylate cyclase inhibitor LY-83583 inhibited in a dose-response manner the effects of the NO donors."( The nitric oxide donors, azide and hydroxylamine, inhibit the programmed cell death of cytokine-deprived human eosinophils.
Beauvais, F; Dubertret, L; Michel, L, 1995
)
0.57
" The kinetics of ASGP-R activity loss and the dose-response for this inactivation were both biphasic, indicating the presence of two equal populations of ASGP-Rs with different sensitivities to NH2OH."( Hydroxylamine treatment differentially inactivates purified rat hepatic asialoglycoprotein receptors and distinguishes two receptor populations.
Weigel, PH; Zeng, FY, 1995
)
1.73
" Membrane-associated wild-type and C3S G(o)1 alpha appeared to interact with guanine nucleotides with similar affinity, as no alteration in the dose-response curves for guanine-nucleotide-induced maintenance of a stable 37 kDa tryptic fragment was noted for the two forms of G(o)1 alpha."( The palmitoylation status of the G-protein G(o)1 alpha regulates its activity of interaction with the plasma membrane.
Grassie, MA; Guzzi, F; Magee, AI; McCallum, JF; Milligan, G; Parenti, M, 1994
)
0.29
" Increasing the wild-type mutS gene dosage resulted in a reversal of the mutator phenotype in about 60% of the mutant strains, indicating that the mutant and wild-type proteins compete."( Dominant negative mutator mutations in the mutS gene of Escherichia coli.
Marinus, MG; Wu, TH, 1994
)
0.29
"Cyanide toxicity can be reduced by the use of methemoglobin (MetHb) formers, and antidotal dosage is based on the extent of MetHb formation."( Analysis of hemoglobin derivatives by capillary isoelectric focusing and its application in the antidotal research of cyanide poisoning.
Korte, WD; Shih, ML, 1996
)
0.29
" In the presence of 5 mM L-NAME (a concentration that did not influence basal insulin release) the insulin response was markedly increased along the whole dose-response curve and the threshold for carbachol stimulation was significantly lowered."( Influence of nitric oxide modulators on cholinergically stimulated hormone release from mouse islets.
Aring;kesson, B; Lundquist, I, 1999
)
0.3
" Both short and prolonged cell exposure to L-NAME potentiated GIIS though with a flat dose-response curve while HA inhibited GIIS only at the highest concentration."( Effects of short and prolonged mild intracellular nitric oxide manipulations on various aspects of insulin secretion in INS-1E β-cells.
Baldi, S; Delbarba, A; Ferrannini, E; Natali, A; Nisoli, E; Santini, E; Tulipani, A; Venturi, E, 2012
)
0.38
" To the best of our knowledge, this is the first report of 2-ACB determination by LC-MS/MS and the first analytical method allowing confident identification of irradiated food at dosage of down to 10 Gy."( Liquid chromatography-electrospray ionization tandem mass spectrometric analysis of 2-alkylcyclobutanones in irradiated chicken by precolumn derivatization with hydroxylamine.
Chan, W; Horvatovich, P; Liu, H; Ye, Y, 2013
)
0.59
" MO degradation was enhanced with increased dosage of PDS."( Activation of persulfate/copper by hydroxylamine via accelerating the cupric/cuprous redox couple.
Liang, J; Liu, B; Liu, Y; Zhang, J; Zhang, Y; Zhou, P, 2016
)
0.71
" This method overcomes various shortcomings of the reported hydroxylamine removal technologies that require a large material dosage and high cost."( Efficient transformation of hydroxylamine from wastewater after supplementation with sodium carbonate or calcium bicarbonate.
Chen, M; He, T; Liang, X; Wang, C; Zheng, C, 2023
)
1.45
[information is derived through text-mining from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Roles (7)

RoleDescription
nitric oxide donorAn agent, with unique chemical structure and biochemical requirements, which generates nitric oxide.
EC 1.1.3.13 (alcohol oxidase) inhibitorAn EC 1.1.3.* (oxidoreductase acting on donor CH-OH group, oxygen as acceptor) inhibitor that interferes with the action of alcohol oxidase (EC 1.1.3.13).
nucleophilic reagentA reagent that forms a bond to its reaction partner (the electrophile) by donating both bonding electrons.
EC 4.2.1.22 (cystathionine beta-synthase) inhibitorAn EC 4.2.1.* (hydro-lyases) inhibitor that interferes with the action of cystathionine beta-synthase (EC 4.2.1.22).
EC 4.3.1.10 (serine-sulfate ammonia-lyase) inhibitorAn EC 4.3.1.* (ammonia-lyase) inhibitor that interferes with the action of serine-sulfate ammonia-lyase (EC 4.3.1.10).
bacterial xenobiotic metaboliteAny bacterial metabolite produced by metabolism of a xenobiotic compound in bacteria.
algal metaboliteAny eukaryotic metabolite produced during a metabolic reaction in algae including unicellular organisms like chlorella and diatoms to multicellular organisms like giant kelps and brown algae.
[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
hydroxylaminesHydroxylamine, H2N-OH, and its hydrocarbyl derivatives.
[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 (95)

PathwayProteinsCompounds
superpathway of proto- and siroheme biosynthesis1638
superpathway of hydrolyzable tannin biosynthesis023
canavanine degradation012
u03B2-pyrazole-1-ylalanine biosynthesis012
ethiin metabolism212
willardiine and isowillardiine biosynthesis010
nitrite reduction (hemoglobin)16
cornusiin E biosynthesis013
mimosine biosynthesis08
cyanide detoxification I012
lysine degradation I (saccharopine pathway)431
u03B2-alanine biosynthesis III210
L-homocysteine biosynthesis725
nitrite reduction (hemoglobin)26
pyruvate fermentation to propanoate II (acrylate pathway)720
protein S-nitrosylation and denitrosylation213
superpathay of heme b biosynthesis from glutamate2047
succinate to cytochrome bo oxidase electron transfer831
2-aminoethylphosphonate degradation I229
L-lysine biosynthesis I1663
CMP-N-acetylneuraminate biosynthesis II (bacteria)521
methanol and methylamine oxidation to formaldehyde1315
L-tryptophan degradation V (side chain pathway)020
NADH to cytochrome bd oxidase electron transfer II418
NADH to cytochrome bo oxidase electron transfer II526
D-lactate to cytochrome bo oxidase electron transfer527
glycerol-3-phosphate to cytochrome bo oxidase electron transfer529
proline to cytochrome bo oxidase electron transfer531
succinate to cytochrome bd oxidase electron transfer723
NADH to cytochrome bo oxidase electron transfer I1734
NADH to cytochrome bd oxidase electron transfer I1627
pyruvate to cytochrome bo oxidase electron transfer535
superpathway of C1 compounds oxidation to CO22232
phenylethylamine degradation I220
superpathway of trimethylamine degradation1224
superpathway of L-lysine degradation33112
L-lysine degradation V133
L-lysine degradation XI (mammalian)531
L-lysine degradation IX015
superpathway of adenosine nucleotides de novo biosynthesis I2424
superpathway of purine nucleotides de novo biosynthesis I3649
L-alanine degradation II (to D-lactate)017
L-alanine degradation III29
L-alanine fermentation to propanoate and acetate731
L-lysine fermentation to acetate and butanoate857
superpathway of anaerobic energy metabolism (invertebrates)1660
anaerobic energy metabolism (invertebrates, cytosol)329
phosphatidylethanolamine biosynthesis I59
superpathway of coenzyme A biosynthesis I (bacteria)942
ammonia oxidation III016
methanofuran biosynthesis624
ammonia oxidation IV (autotrophic ammonia oxidizers)724
ammonia oxidation I (aerobic)924
indole-3-acetate biosynthesis III (bacteria)411
L-methionine biosynthesis III928
superpathway of L-methionine biosynthesis (by sulfhydrylation)1955
formaldehyde assimilation I (serine pathway)944
superpathway of penicillin, cephalosporin and cephamycin biosynthesis1169
L-histidine degradation II522
L-histidine degradation III213
L-histidine degradation VI120
deacetylcephalosporin C biosynthesis444
4-aminobutanoate degradation II318
superpathway of 4-aminobutanoate degradation520
superpathway of L-cysteine biosynthesis (fungi)628
L-cysteine biosynthesis III (from L-homocysteine)322
superpathway of L-cysteine biosynthesis (mammalian)928
superpathway of sulfur amino acid biosynthesis (Saccharomyces cerevisiae)1043
superpathway of L-lysine, L-threonine and L-methionine biosynthesis I1994
superpathway of phenylethylamine degradation939
methylamine degradation II917
methylamine degradation I812
cyanide detoxification I413
superpathway of CMP-sialic acids biosynthesis1460
ethiin metabolism216
L-ornithine degradation II (Stickland reaction)1043
superpathway of Allium flavor precursors540
putrescine degradation IV419
L-arginine degradation (Stickland reaction)1254
superpathway of L-arginine, putrescine, and 4-aminobutanoate degradation1242
L-arginine degradation X (arginine monooxygenase pathway)119
superpathway of L-arginine and L-ornithine degradation1347
L-glutamate degradation I333
cornusiin E biosynthesis014
superpathway of hydrolyzable tannin biosynthesis030
superpathway of taurine degradation637
aspartate superpathway25122
willardiine and isowillardiine biosynthesis011
u03B2-pyrazole-1-ylalanine biosynthesis013
trans-4-hydroxy-L-proline degradation I425
trans-4-hydroxy-L-proline degradation II643
tetrapyrrole biosynthesis I (from glutamate)1237
superpathway of L-methionine salvage and degradation2869
L-methionine degradation II213
L-isoleucine biosynthesis III019
nitrifier denitrification1425
ammonia oxidation II (anaerobic)89
taurine degradation III18
L-methionine biosynthesis323
adenosine nucleotides de novo biosynthesis417
cysteine biosynthesis IV (fungi)628
superpathway of proto- and siroheme biosynthesis1640
AtMetExpress overview0109

Protein Targets (11)

Potency Measurements

ProteinTaxonomyMeasurementAverage (µ)Min (ref.)Avg (ref.)Max (ref.)Bioassay(s)
thioredoxin reductaseRattus norvegicus (Norway rat)Potency0.79430.100020.879379.4328AID588453
15-lipoxygenase, partialHomo sapiens (human)Potency12.58930.012610.691788.5700AID887
ATAD5 protein, partialHomo sapiens (human)Potency29.08100.004110.890331.5287AID493107
NFKB1 protein, partialHomo sapiens (human)Potency15.84890.02827.055915.8489AID895; AID928
arylsulfatase AHomo sapiens (human)Potency37.93301.069113.955137.9330AID720538
euchromatic histone-lysine N-methyltransferase 2Homo sapiens (human)Potency11.22020.035520.977089.1251AID504332
cellular tumor antigen p53 isoform aHomo sapiens (human)Potency5.01190.316212.443531.6228AID902
chromobox protein homolog 1Homo sapiens (human)Potency0.00600.006026.168889.1251AID488953
muscarinic acetylcholine receptor M1Rattus norvegicus (Norway rat)Potency0.02820.00106.000935.4813AID943
Single-stranded DNA cytosine deaminaseHomo sapiens (human)Potency49.221528.183860.145389.1251AID1347427; AID1347430
ATP-dependent phosphofructokinaseTrypanosoma brucei brucei TREU927Potency0.01200.060110.745337.9330AID485368
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Biological Processes (15)

Processvia Protein(s)Taxonomy
mRNA processingSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
cytidine deaminationSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
somatic diversification of immunoglobulinsSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
somatic hypermutation of immunoglobulin genesSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
B cell differentiationSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
regulation of nuclear cell cycle DNA replicationSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
defense response to bacteriumSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
positive regulation of gene expression via chromosomal CpG island demethylationSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
isotype switchingSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
cellular response to lipopolysaccharideSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
DNA cytosine deaminationSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
DNA demethylationSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
cytidine to uridine editingSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
negative regulation of single stranded viral RNA replication via double stranded DNA intermediateSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
defense response to virusSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Molecular Functions (6)

Processvia Protein(s)Taxonomy
cytidine deaminase activitySingle-stranded DNA cytosine deaminaseHomo sapiens (human)
protein bindingSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
zinc ion bindingSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
ubiquitin protein ligase bindingSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
identical protein bindingSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
RNA bindingSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Ceullar Components (5)

Processvia Protein(s)Taxonomy
nucleusSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
cytoplasmSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
cytosolSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
protein-containing complexSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
nucleusSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
cytoplasmSingle-stranded DNA cytosine deaminaseHomo sapiens (human)
P-bodySingle-stranded DNA cytosine deaminaseHomo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Bioassays (19)

Assay IDTitleYearJournalArticle
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.
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.
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.
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.
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.
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.
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.
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.
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.
AID588349qHTS for Inhibitors of ATXN expression: Validation of Cytotoxic Assay
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.
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.
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.
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.
AID588378qHTS for Inhibitors of ATXN expression: Validation
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.
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.
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.
[information is prepared from bioassay data collected from National Library of Medicine (NLM), extracted Dec-2023]

Research

Studies (1,656)

TimeframeStudies, This Drug (%)All Drugs %
pre-1990428 (25.85)18.7374
1990's474 (28.62)18.2507
2000's336 (20.29)29.6817
2010's347 (20.95)24.3611
2020's71 (4.29)2.80
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Market Indicators

Research Demand Index: 74.98

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 Index74.98 (24.57)
Research Supply Index7.45 (2.92)
Research Growth Index4.51 (4.65)
Search Engine Demand Index134.52 (26.88)
Search Engine Supply Index2.00 (0.95)

This Compound (74.98)

All Compounds (24.57)

Study Types

Publication TypeThis drug (%)All Drugs (%)
Trials3 (0.18%)5.53%
Reviews35 (2.05%)6.00%
Case Studies8 (0.47%)4.05%
Observational0 (0.00%)0.25%
Other1,665 (97.31%)84.16%
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]