Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Hydroxylamines”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 199 records · Page 11Linked to original sources

[A case of occupational contact dermatitis due to hydroxylamine].

A 36-year-old man, working in a chemical industry, had a generalized pruritic eruption. A forty-eight hour patch test revealed positivity for 1% hydroxylamine. Prevention of exposure to this chemical resulted in a dramatic improvement of the symptoms. Based on these findings, we diagnosed this case as occupational contact dermatitis due to hydroxylamine. There has been few case reports of contact dermatitis due to hydroxylamine. Histopathological examination revealed a marked spongiosis and a spongiotic bulla formation in the epidermis and follicular infundibulum, suggesting an allergic reaction.

Adult↗

Equivalence of microbiological and hydroxylamine methods of analysis for ampicillin dosage forms.

Ampicillin formulations were assayed by microbiological and hydroxylamine methods to determine whether thehydroxylamine analytical method is a suitable substitute for the microbiological method. Paired assay results by the 2 analytical methods were obtained on different strengths of tablet, capsule, and suspension, formulations containing ampicillin and ampicillin degradation compounds. Several statistical tests were used to assess the equivalence of the paired assay results. The data analyses indicate that the hydroxylamine method is a suitable substitute for the microbiological method for potency assays and stability studies of ampicillin formulations. The hydroxylamine method yielded slightly higher assay results than the microbiological method for severely degraded formulations.

Ampicillin↗

Enzymatic disappearance of hydroxylamine in the presence of GABA.

This paper presents data on the elimination of hydroxylamine from Lupinus albus seeds when they were germinated in the presence of GABA and hydroxylamine. The possibility of an enzymatic reaction. ATP dependent, between GABA and hydroxylamine is discussed. Some kinetic properties from this reaction are studied.

Adenosine Triphosphate↗

[Mutagenesis of synchronous populations of Escherichia coli with normal and defective reparative enzymes under the influence of hydroxylamine].

Bacterial populations of E. coli K12 uvr+ and E. coli K12 uvr- were preliminary synchronized on membrane nitrocellulose filtres and then treated with 1 M hydroxylamine for different times; the frequency of mutants failing to assimilate glucose was estimated. Kinetics of mutagenesis in the cells of both strains was almost the same and indicated that lesions induced by hydroxylamine were not repaired. It is for the first time that the maximum mutation frequency was registered in experiments with hydroxylamine; this suggests that the repair hypothesis of attaining the maximum mutation frequency is not universal.

Escherichia coli↗

The production of strand breaks in DNA in the presence of the hydroxylamine of SR-2508 (1-[N-(2-hydroxyethyl)acetamido]-2-nitroimidazole) at neutral pH.

The protonated hydroxylamine of SR 2508 has been prepared by radiochemical reduction and then lyophilized, isolated as the hydrochloride salt, and characterized by proton magnetic resonance spectroscopy. Single strand breaks are produced in the plasmid pBR322 when aliquots of a neutralized solution of the hydroxylamine (10-20 mM) are added to air-equilibrated solutions of the plasmid immediately after adjusting the pH. No breaks are observed, if times greater than five min elapse before adding the neutralized hydroxylamine to DNA, or if oxygen is excluded from the reaction mixture. These results suggest that single strand breaks occur because of the existence of a short-lived reactive species, which is produced after pH adjustment. Observations that oxygen is consumed during the pH jump, H2O2 produced and catalase, desferal and radical scavengers inhibit the reaction are consistent with the hydroxyl radical as the active agent.

DNA, Bacterial↗

Reduction of sulfamethoxazole and dapsone hydroxylamines by a microsomal enzyme system purified from pig liver and pig and human liver microsomes.

Biotransformation involving nitrogen are of pharmacological and toxicological relevance. In principle, nitrogen containing functional groups can undergo all the known biotransformation processes such as oxidation, reduction, hydrolysis and formation of conjugates. For the N-reduction of benzamidoxime an oxygen-insensitive liver microsomal enzyme system that required cytochrome b5, NADH-cytochrome b5 reductase and a cytochrome P450 isoenzyme of the subfamily 2D has been described. In previous studies it was demonstrated that N-hydroxylated derivates of strongly basic functional groups are easily reduced by this enzyme system. The N-hydroxylation of sulfonamides such sulfamethoxazole (SMX) and dapsone (DDS) to sulfamethoxazole-hydroxylamine (SMX-HA) and dapsone-hydroxylamine (DDS-N-OH), respectively is the first step in the formation of reactive metabolites. Therefore it seemed reasonable to study the potential of cytochrome b5, NADH-cytochrome b5 reductase and CYP2D to detoxify these N-hydroxylated metabolites by N-reduction. Metabolites were analysed by HPLC analysis. SMX-HA and DDS-N-OH are reduced by cytochrome b5, NADH-cytochrome b5 reductase and CYP2D but also only by cytochrome b5 and NADH-cytochrome b5 reductase without addition of CYP2D. The reduction rate for SMX-HA by cytochrome b5, NADH-cytochrome b5 reductase and CYP2D was 0,65 +/- 0,1 nmol SMX/min/mg protein. The reduction rate by b5 and b5 reductase was 0,37 +/- 0,15 nmol SMX/min/mg protein. For DDS-N-OH the reduction rate by cytochrome b5, NADH-cytochrome b5 reductase and CYP2D was 1.79 +/- 0.85 nmol DDS/min/mg protein and by cytochrome b5 and NADH-cytochrome b5 reductase 1.25 +/- 0.15 nmol DDS/min/mg protein. Cytochrome b5, NADH-cytochrome b5 reductase are therefore involved in the detoxification of these reactive hydroxylamines and CYP2D increased the N-reduction.

Animals↗

Redox equilibria in hydroxylamine oxidoreductase. Electrostatic control of electron redistribution in multielectron oxidative processes.

We report results of continuum electrostatics calculations of the cofactor redox potentials, and of the titratable group pK(a) values, in hydroxylamine oxidoreductase (HAO). A picture of a sophisticated multicomponent control of electron flow in the protein emerged from the studies. First, we found that neighboring heme cofactors strongly interact electrostatically, with energies of 50-100 mV. Thus, cofactor redox potentials depend on the oxidation state of other cofactors, and cofactor redox potentials in the active (partially oxidized) enzyme differ substantially from the values obtained in electrochemical redox titration experiments. We found that, together, solvent-exposed heme 1 (having a large negative redox potential) and heme 2 (having a large positive redox potential) form a lock for electrons generated during the oxidation reaction The attachment of HAO's physiological electron transfer partner cytochrome c(554) results in a positive shift in the redox potential of heme 1, and "opens the electron gate". Electrons generated as a result of hydroxylamine oxidation travel to heme 3 and heme 8, which have redox potentials close to 0 mV versus NHE (this result is in partial disagreement with an existing experimental redox potential assignment). The closeness of hemes 3 and 8 from different enzyme subunits allows redistribution of the four electrons generated as a result of hydroxylamine oxidation, among the three enzyme subunits. For the multielectron oxidation process to be maximally efficient, the redox potentials of the electron-accepting cofactors should be roughly equal, and electrostatic interactions between extra electrons on these cofactors should be minimal. The redox potential assignments presented in the paper satisfy this general rule.

Bacterial Proteins↗

Reactions of bis(2,4-dinitrophenyl) phosphate with hydroxylamine.

For dephosphorylation of bis(2,4-dinitrophenyl) phosphate (BDNPP) by hydroxylamine in water, pH region 4-12, the observed first-order rate constant, k(obs), initially increases as a function of pH, but is pH-independent between pH 7.2 and pH 10. The initial BDNPP cleavage by nonionic NH(2)OH (<0.2 M) involves attack by the OH group and follows first-order kinetics, but the overall initial reaction of BDNPP liberates ca. 1.7 mol of 2,4-dinitrophenoxide ion (DNP). This initial reaction generates a short-lived O-phosphorylated hydroxylamine, 2, followed by three possible reactions: (1) reaction of 2 with hydroxylamine, generating 2,4-dinitrophenyl phosphate (DNPP, 3), which subsequently forms DNP; (2) intramolecular displacement of the second DNP group and rapid decomposition of the cyclic intermediate to form phosphonohydroxylamine and eventually inorganic phosphate; (3) a novel rearrangement with intramolecular aromatic nucleophilic substitution involving a cyclic intermediate and migration of the 2,4-dinitrophenyl group from O to N. Values of k(obs) increase modestly with pH > 10, the reaction is biphasic, and the yield of DNP increases. An increase in [NH(2)OH] also increases the yield of DNP, due largely to accelerated hydrolysis of DNPP.

Journal Article↗

ESR Study of Free Radical Decomposition of N,N-Bis(arylsulfonyl)hydroxylamines in Organic Solution.

Decomposition of N,N-bis(p-tolylsulfonyl)hydroxylamine (BTH) in chloroform and benzene solutions has been studied and was found to involve the formation of several radical intermediates. This process has been found to be accelerated by oxygen, resulting in the formation of p-toluenesulfonic acid and N,N,O-tris(p-tolylsulfonyl)hydroxylamine (TTH) as the main decay products. In addition, a small amount of p-toluenesulfonyl chloride has been isolated from chloroform solution, suggesting the chlorine abstraction from solvent. The formation of nitric oxide (NO) from BTH has been shown by mass spectrometry in gaseous phase and using nitronyl nitroxide as an NO trap in solution. It was proposed that liberation of NO proceeds through the homolytic cleavage of the S-N bond of p-tolylsulfonyl nitrite existing in equilibrium with BTH in solution. The formation of p-tolylsulfonyl radicals has been proved by spin trapping using 2-methyl-2-nitrosopropane (MNP) and 5,5-dimethyl-1-pyrroline N-oxide (DMPO). The rate of NO production in the presence of nitronyl nitroxide and the rate of oxygen consumption revealed linear plots in BTH concentration with the rate constants 0.0044 s(-)(1) and 0.0016 s(-)(1), respectively. It was found also that nitrogen dioxide formed during NO oxidation reacts readily with BTH to produce the organic analog of Fremy's radical. This radical recombines with p-tolylsulfonyl radical yielding N,N,O-trisubstituted hydroxylamine TTH.

Journal Article↗

Nucleophilic addition of hydroxylamine, methoxylamine, and hydrazine to malononitrileoxime

The chemistry of malononitrileoxime, HONC(CN)(2), with respect to nucleophilic addition to ammonia, methylamine, hydroxylamine, methoxylamine, and hydrazine is reported. Whereas the poorly nucleophilic ammonia and methylamine do not react, hydroxylamine, methoxylamine, and hydrazine add to the nitrile groups of the oxime, yielding the corresponding amidoximes and amidrazones. Depending on the stoichiometry of the reactions, hydroxylamine and hydrazine add to one or both of the nitrile groups; methoxylamine adds to only one of the nitrile groups. Three of the products, namely, cyanoacetamidoxime (1), 3-amino-2,3-hydroxyiminopropionitrile monohydrate (2.H(2)O), and 3,5-diaminopyrazolone-4-oxime monohydrochloride monohydrate (6.HCl.H(2)O), are characterized by single-crystal X-ray diffraction data. All of the products exhibit exothermic decomposition properties with heats of decomposition in the range of 500-1500 kJ mol(-)(1).

Journal Article↗

Hydroxylamine reductase enzymes from maize scutellum and their relationship to nitrite reductase.

Three enzymes contribute to the total hydroxylamine reductase activity of corn (Zea mays L.) scutellum extracts. Two of these resemble enzymes previously prepared from leaves, while the third, which accounts for a major part of the activity, appears to have no counterpart in leaf tissue. One of the hydroxylamine reductases found only in small amounts is associated with nitrite reductase and is induced, together with nitrite reductase, by nitrite. The other two enzymes are noninducible by nitrite and can be totally separated from nitrite reductase, which subsequently remains capable of catalyzing the reduction of nitrite to ammonia. Possible causes of the decline of hydroxylamine reductase activity during the induction of nitrite reductase are discussed.

Journal Article↗

Effect of solvent, pressure and temperature on reaction rates of the multiheme hydroxylamine oxidoreductase. Evidence for conformational change.

Hydroxylamine oxidoreductase (HAO) of the ammonia-oxidizing bacterium Nitrosomonas catalyzes the oxidation: NH2OH + H2O----HNO2 + 2e- + 2 H+. The heme-like chromophore P460 is part of a site which binds substrate, extracts electrons and then passes them to the many c hemes of the enzyme. Reduction of the c hemes by hydroxylamine is biphasic with apparent first-order rate constants k1 and k2. CO binds to ferrous P460 with apparent first-order rate constants, k1,CO. In this work we have measured the binding of CO to ferrous P460 of hydroxylamine oxidoreductase and the reduction by substrate of some of the 24 c hemes of the ferric enzyme. These reactions have been studied in water and 40% ethylene glycol, at temperatures ranging from -15 degrees C to 20.7 degrees C and at hydrostatic pressures ranging over 0.1-80 MPa. From the measurements, thermodynamic parameters delta V+ (activation volume), delta G+, delta H+, and delta S+ have been calculated. CO binding. Binding of CO to ferrous P460 was similar to the binding of CO to ferrous horseradish peroxidase. The change of solvent had only a limited effect on delta V+ (-30 ml.mol-1), delta G+, delta H+ or delta S+ and did not cause an inflection in the Arrhenius plot or downward displacement of the linear relationship between ln k1,CO and P at a critical temperature. Binding was exothermic at high temperatures. The response of the binding of CO to solvent, temperature and pressure suggested that the CO binding site had little access to solvent and was not susceptible to change in protein conformation. Fast phase of reduction of c hemes. Changing the solvent from water to 40% ethylene glycol resulted in a decrease from 90% to 50% in the relative number of c hemes reduced during the fast phase, an increase in activation volume from -3.6 ml.mol-1 to 57 ml.mol-1 and changes in other thermodynamic parameters. The activation volume increased with decreasing temperature. The Arrhenius plot had a downward inflection at about 0 degrees C and, in water or ethylene glycol, the linear dependence of ln k1 on P was displaced downwards as the temperature changed from 3.5 degrees C to -15 degrees C. Slow phase of reduction of c hemes. Changing the solvent from water to 40% ethylene glycol resulted in an increase in the relative number of c hemes reduced during the slow phase from 10% to 50%. The activation volume, which was not measurable in water because of the low absorbance change, was -30 ml.mol-1 in ethylene glycol. The activation volume increased with increasing temperature.(ABSTRACT TRUNCATED AT 400 WORDS)

Carbon Monoxide↗

Converting the NiFeS carbon monoxide dehydrogenase to a hydrogenase and a hydroxylamine reductase.

Substitution of one amino acid for another at the active site of an enzyme usually diminishes or eliminates the activity of the enzyme. In some cases, however, the specificity of the enzyme is changed. In this study, we report that the changing of a metal ligand at the active site of the NiFeS-containing carbon monoxide dehydrogenase (CODH) converts the enzyme to a hydrogenase or a hydroxylamine reductase. CODH with alanine substituted for Cys(531) exhibits substantial uptake hydrogenase activity, and this activity is enhanced by treatment with CO. CODH with valine substituted for His(265) exhibits hydroxylamine reductase activity. Both Cys(531) and His(265) are ligands to the active-site cluster of CODH. Further, CODH with Fe substituted for Ni at the active site acquires hydroxylamine reductase activity.

Acetylene↗

Electrocatalytic oxidation of hydroxylamine on glassy carbon electrodes modified by hybrid copper-cobalt hexacyanoferrate films.

An electrochemical sensor for amperometric detection of hydroxylamine was developed by electrodeposition of hybrid copper-cobalt hexacyanoferrate films on a glassy carbon electrode. The modified electrode could reduce the overpotential of the hydroxylamine oxidation by about 400 mV. This sensor exhibited a linear relationship between the response current and the hydroxylamine concentration in the range of 1.8 x 10(3) M to 4.6 x 10(-6) M with a detection limit of 2.1 x 10(-7) M. Good agreement was obtained between results from the present method and conventional UV-visible spectrophotometry results. The sensor had good recovery, stability and anti-interference ability.

Journal Article↗

[Transforming activity of phage T4r+ DNA, treated with ultraviolet light, nitrous acid, hydroxylamine and visible light in the presence of methylene blue].

The efficiency of phages T4rIIB-638v+ and T4rIIB-638v- transformation by native and denatured DNA treated with UV, nitrous acid, hydroxylamine and visible light in the presence of methylene blue is studied. A greater transformation efficiency of UV-irradiated T4r+ phage native and denatured DNA was observed in the v+ recipient as compared with v- recipients. Denatured donor DNA treated with nitrous acid has higher transformation activity in spheroplasts infected with T4v+ phage than in those infected with T4v- phage. Native donor DNA, treated with methylene blue and visible light-irradiated, developed a decrease of the transformation activity in T4v- phage-infected spheroplasts as compared with T4v+ phage-infected spheroplasts. Hydroxylamine treatment of native and denatured donor DNA did not reveal any differences in the transforming activity for v+ and v- recipients. Denatured donor DNA was more resistant to the effect of hydroxylamine than native DNA.

Coliphages↗

Nitric oxide production by activated human neutrophils exposed to sodium azide and hydroxylamine: the role of oxygen radicals.

The occurrence of a nitric oxide-generating system in human neutrophils has been controversial and the detection of nitric oxide rendered more difficult due to the capacity of oxygen radicals and other compounds to scavenge this molecule. Our results demonstrate that human neutrophils, when stimulated by adherence or by phorbol myristate acetate generate nitrite upon exposure to NaN3 or hydroxylamine. NaN3-dependent nitrite production was further increased by the addition of superoxide dismutase (SOD). The generation of nitrite was also stimulated by exogenous added H202 in resting neutrophils and could be induced in a cell-free system containing heme-enzymes, H202 and NaN3, suggesting a requirement for H202-mediated oxidation of NaN3 in nitrite formation by the stimulated cells. Treatment of the neutrophils with hydroxylamine led to the production of even larger quantities of nitrite (> 25 nmol/h.10(6) cells), an effect that was prevented by SOD, pointing to superoxide as a metabolite possibly involved in nitrite formation. These results emphasize the importance of oxygen radicals or other intermediates in the generation of nitrite by stimulated neutrophils exposed to the above compounds.

Azides↗

Assessment of fusogenic properties of influenza virus hemagglutinin deacylated by site-directed mutagenesis and hydroxylamine treatment.

Influenza virus hemagglutinin (HA) subtype H7 expressed from a baculovirus vector in insect cells requires cysteine residues for palmitoylation. Mutant HA devoid of fatty acids shows hemagglutinating and hemolytic activities almost identical to those of the acylated wild-type HA (wt). Using a membrane mixing assay (R18), neither the kinetics nor the pH dependence of fusion induced by wt or mutant HA was significantly different from virus-induced fusion. HA-induced fusion of insect cells with human erythrocyte ghosts could also be demonstrated by a cytoplasmic content mixing assay. Both species of recombinant HA induced the flow of lucifer yellow from preloaded ghosts into the cytoplasm of HA-bearing cells. This indicates that membrane fusion mediated by wild-type and fatty-acid-free HA includes both leaflets of the lipid bilayers. 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. Deacylation of spike proteins by NH2OH treatment of virus particles resulted in a block of hemolytic activity in influenza virus subtypes H7 and H10 as well as of that in the togaviruses Semliki Forest and Sindbis virus. However, the same treatment did not affect subtypes H2 and H3 or two vesicular stomatitis virus serotypes. With such a differential effect whether or not fatty acids are present in the spike proteins of the different virus particles, hydroxylamine must have other effects than just deacylation, and therefore seems unsuitable for the study of the biological functions of acylproteins.

Acylation↗

Reevaluation of the reactivity of hydroxylamine with O2-/HO2.

The reactivity of hydroxylamine with HO2/O2- radicals was studied by pulse radiolysis and stopped-flow photolysis over a pH range of 1.1-10.5. Upper limits for the rate of reaction indicate that hydroxylamine, if it reacts at all, reacts at a very slow rate. Its use as an indicator for O-2 and an assay for superoxide dismutase is, therefore, inappropriate.

Chemical Phenomena↗