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Pathway of oxidation of pyruvic oxime by a heterotrophic nitrifier of the genus Alcaligenes: evidence against hydrolysis to pyruvate and hydroxylamine.

A heterotrophic nitrifier of the genus Alcaligenes, which grows vigorously on pyruvic oxime, was tested by several methods for possible differences or similarities in metabolic performance between pyruvic oxime and its hydrolysis products, pyruvate and hydroxylamine. Major differences were observed between pyruvic oxime and one or both of the other reductants with regard to growth yield, rates of reductant uptake, rates of oxygen uptake, sensitivity of their oxidations to inhibition by thiocyanate, and performance in reductant pulse experiments. Other oximes, some of which are structural analogs of pyruvic oxime and all of which are potential sources of hydroxylamine, were not metabolized by cells or cell-free extract. Collectively the results indicate a pathway of oxidation of pyruvic oxime to nitrite and CO2 that does not involve its initial hydrolysis, but probably involves the oxidation of N and/or C before C-N bond breakage.

Alcaligenes↗

Dismutation of hydroxylamine to ammonia and nitrite by a novel, membrane-bound enzyme from the cyanobacterium Phormidium uncinatum.

Extracts from ammonium-grown phototrophic cultures of Phormidium uncinatum exhibited a catalytic and stoichiometric formation of nitrite and ammonia from hydrogen peroxide and hydroxylamine. This reaction was due to a novel enzyme (referred to as hydroxylamine dismutase), which was bound to the heavier thylakoid membranes. The enzyme was solubilized from the membranes by detergent treatment and further purified by ion-exchange chromatography. On the basis of inhibitor studies, the involvement of metal ions and sulfhydryl groups in the characteristic reaction is suggested.

Ammonia↗

Release of fatty acids from virus glycoproteins by hydroxylamine.

The fatty acids bound to the glycoproteins of Sindbis and vesicular stomatitis viruses can be released by treating the protein with 1 M hydroxylamine at pH 8.0, but the rates of release vary greatly among the three proteins. The most labile fatty acyl bonds were in the Sindbis virus PE2/E2 proteins and the most stable were in the E1 protein. Some of the fatty acids in Sindbis virus glycoproteins were reduced to the alcohol after treatment with sodium borohydride, indicating that protein-bound fatty acids could be in thiolester linkage. Sindbis virus PE2/E2 has several cysteine residues near the carboxy terminus, a region of the protein postulated to be localized on the inside (cytoplasmic face) of the bilayer, and protease digestion of microsomal membranes containing E2 protein removed a small portion of this cytoplasmic tail as well as significant amounts of the fatty acid. For the vesicular stomatitis virus G protein, the sensitivity of fatty acid hydrolysis appeared to depend on the conformation of the protein and a significant fraction of G protein was converted to a disulfide-linked dimer by hydroxylamine. These data implicate cysteinyl groups on these proteins as sites involved in fatty acid acylation.

Animals↗

Nitric oxide formation from hydroxylamine by myoglobin and hydrogen peroxide.

Hydroxylamine (HA), which is a natural product of mammalian cells, has been shown to possess vasodilatory properties in several model systems. In this study, HA and methyl-substituted hydroxylamines, N-methylhydroxylamine (NMHA) and N,N-dimethylhydroxylamine (NDMHA), have been tested for their ability to generate free diffusible nitric oxide (NO) in the presence of myoglobin (Mb) and hydrogen peroxide. A NO-specific conversion of 2-(4-carboxyphenyl)-4,4,5,5-tetramethylimidazoline-1-oxyl-3-oxide (carboxy-PTIO) to 2-(4-carboxyphenyl)-4,4,5,5-tetramethylimidazoline-1-oxyl (carboxy-PTI), measured by electron spin resonance (ESR) spectroscopy, along with nitrite and nitrate production, was observed for HA but not for NMHA and NDMHA. ESR measurements at 77 K showed the formation of the ferrous nitrosyl myoglobin, Mb-NO, in the reaction mixtures containing Mb, H2O2 and HA. Our data also demonstrate that Mb-NO is an end product of the reaction pathway involving Mb, H2O2 and HA, rather than a reaction intermediate in the formation of NO. In summary, our results demonstrate a possible pathway of NO formation from HA, however, the significance of this mechanism for bioactivation of HA in vivo is unknown at the present time.

Animals↗

Spectroscopic and rapid kinetic studies of reduction of cytochrome c554 by hydroxylamine oxidoreductase from Nitrosomonas europaea.

During oxidation of hydroxylamine, hydroxylamine oxidoreductase (HAO) transfers two electrons to tetraheme cytochrome c554 at rates sufficient to account for physiological rates of oxidation of ammonia to nitrite in Nitrosomonas europaea. Spectroscopic changes indicate that the two electrons are taken up by a high-potential pair of hemes (E degrees' = +47 mV) (one apparently high spin and one low spin). During single-turnover experiments, in which the reduction of oxidized cytochrome c554 by NH2OH-reduced HAO is monitored, one electron is taken up by the high-spin heme at a rate too fast to monitor directly (greater than 100 s-1) but which is inferred either by a loss of amplitude (relative to that observed under multiple-turnover conditions) or is slowed down by increasing ionic strength (greater than or equal to 300 mM KCl). The second electron is taken up by the low-spin heme at a 10-30-fold slower rate. The latter kinetics appear multiphasic and may be complicated by a transient oxidation of HAO due to the rapid transfer of the first electron into the high-spin heme of cytochrome c554. Under multiple-turnover conditions, a "slower" rate of reduction is observed for the high-spin heme of cytochrome c554 with a maximum rate constant of approximately 30 s-1, a value also obtained for the reduction, by NH2OH, of the cytochrome c554 high-spin heme within an oxidized HAO/c554 complex. Under these conditions, the maximum rate of reduction of the low-spin heme was approximately 11.0 s-1. Both rates decreased as the concentration of cytochrome c554 was increased above the concentration of HAO.(ABSTRACT TRUNCATED AT 250 WORDS)

Ammonium Hydroxide↗

Chemical heterogeneity as a result of hydroxylamine cleavage of a fusion protein of human insulin-like growth factor I.

Recombinant DNA techniques were used to biosynthesize human insulin-like growth factor I (hIGF-I) as a fusion protein wherein the fusion polypeptide is an IgG-binding moiety derived from staphylococcal protein A. This fusion protein is produced in Escherichia coli and secreted into the fermentation broth. In order to release mature recombinant-derived hIGF-I (rhIGF-I), the fusion protein is treated with hydroxylamine, which cleaves a susceptible Asn-Gly bond that has been engineered into the fusion protein gene. Reversed-phase h.p.l.c. was used to estimate the purity of the rhIGF-I preparations, especially for the quantification of the methionine sulphoxide-containing variant. It was determined that hydroxylamine cleavage of the fusion protein produced, as a side reaction, hydroxamates of the asparagine and glutamine residues in rhIGF-I. Although isoelectric focusing was effective in detecting, and reversed-phase h.p.l.c. for producing enriched fractions of the hydroxamate variants, ion-exchange chromatography was a more definitive procedure, as it allowed quantification and facile removal of these variants. The identity of the variants as hydroxamates was established by Staphylococcus aureus V8 proteinase digestion, followed by m.s., as the modification was transparent to amino acid and N-terminal sequence analyses. The biological activity of rhIGF-I was established by its ability to incorporate [3H]thymidine into the DNA of BALB/c373 cells and by a radioreceptor assay utilizing human placental membranes. Both assays demonstrate that the native, recombinant and methionine sulphoxide and hydroxamate IGF-I variants are essentially equipotent.

3T3 Cells↗

Developmental toxicity of hydroxylamine: an example of a maternally mediated effect.

Hydroxylamine (HA) is an important reducing agent that is used in several industries. HA is a moderate irritant and a powerful inducer of methemoglobinemia. HA has been shown to react readily with DNA in vitro. Several chemical derivatives of HA are potent developmental toxicants, whereas HA has been reported to cause no developmentally toxic effects. Since HA and its developmentally toxic derivatives share the presence of a terminal hydroxylamine functional group (-NHOH), and since that functional group has been proposed to be the biologically active portion of the molecule, it was deemed appropriate to re-examine the possible developmental toxicity of HA. Subcutaneous or intravenous injection of pregnant rabbits with 50-650 mg HA.HCl/kg on gestational day 12 caused the death or sacrifice of all rabbits within 30 hours. All maternally injected rabbits exhibited severe cyanosis, presumably due to methemoglobinemia. Histological examination of embryos revealed alterations of the cardiovascular system at 5 hours, but an absence of cell death in limb buds. At 8 hours, all embryos were dead. These effects appear to be secondary to the observed cyanosis in the maternal animals. In order to circumvent the powerful methemoglobinemia-inducing properties of HA, intracoelomic injections of 25-200 micrograms HA.HCl in 5-40 microliters of saline were made directly into the chorionic cavity of developing rabbit embryos, thereby bypassing the maternal system. Controls received similar volumes of saline. At doses of greater than or equal to 75 micrograms, HA.HCl killed 91 percent of injected embryos; among survivors, all exhibited reduced birth weights and 2/5 exhibited malformations in the craniofacial region and sternum. At doses of 25-50 micrograms, HA.HCl caused increased resorptions compared with controls; however, surviving fetuses displayed neither malformations nor reduced birth weights. Histological analysis at 4 hours after injection revealed cellular debris in the limb buds; when the antioxidant propyl gallate was co-administered with HA, cellular debris was absent at 4 hours. It is concluded that although HA is a directly acting developmental toxicant if it reaches the embryo, the observed embryolethality seen after subcutaneous injection of pregnant animals is a consequence of the powerful maternal toxicity of HA.

Animals↗

Histidine decarboxylase of Lactobacillus 30a. Hydroxylamine cleavage of the -seryl-seryl- bond at the activation site of prohistidine decarboxylase.

Conversion of the pi subunit of prohistidine decarboxylase to the alpha beta subunits of the active enzyme proceeds by a nonhydrolytic, monovalent cation-dependent, serinolysis reaction in which the hydroxyl oxygen of serine 82 of the pi chain is incorporated into the carboxyl group at the COOH terminus (serine 81) of the beta chain. Serine-82 becomes the pyruvate residue at the NH2 terminus of the alpha chain (Recsei, P.A., Huynh, Q. K., and Snell, E.E. (1983) Proc. Natl. Acad. Sci. U.S.A. 80, 973-977). The unusual reactivity of this particular -Ser-Ser- bond is demonstrated by its sensitivity to 1 M hydroxylamine, which cleaves the native proenzyme under mild conditions (pH 8.0, 37 degrees C) to yield a modified beta chain with serine hydroxamate at the COOH terminus (Ser-81) and a modified alpha chain containing serine (Ser-82 of the proenzyme) rather than pyruvate at the NH2 terminus. Neither an -Asn-Gly- bond nor other -Ser-Ser- bonds in the proenzyme were cleaved under these conditions. The reaction also did not occur with the denatured enzyme or with model peptides, indicating that the enhanced reactivity is a result of the particular conformation at this position in the native protein. The reaction with the native proenzyme proceeded optimally at pH 7.5-8.0 with a half-time (30 min) substantially less than that (3.5-4.5 h) required for the activation reaction and was not increased in rate by addition of K+. Correspondingly, preincubation of the proenzyme at pH 8.0 in the absence of both hydroxylamine and K+ modestly increased the rate of activation when K+ was subsequently added. Although these findings do not exclude other mechanisms, they are all consistent with and most easily explained by rearrangement of the pi chain to form an internal ester intermediate prior to the beta-elimination that occurs during activation to yield the alpha and beta chains of the mature enzyme.

Bacterial Proteins↗

[Determination of moxalactam, aztreonam and imipenem by the perchloric hydroxylamine method].

The reaction of perchloric hydroxylamine was adopted for determination of new beta-lactam antibiotics within monobactam, carbapenem and oxazepam groups. Complexes formed in colour reaction are stable over 2 hours in the case of aztreonam and imipenem, and over 1 hour for moxalactam, statistical analysis proved that both hydroxylamine-perchloric and spectrophotometric methods can be used alternatively.

Anti-Bacterial Agents↗

New NO donors with antithrombotic and vasodilating activities, part 25. Hydroxylamine derivatives.

Twelve ethoxycarbonyl or phenylsulfonyl derivatives as prodrugs of hydroxylamine or phenylhydroxylamine were prepared and tested for antiplatelet (in vitro, Born test) antithrombotic (in vivo thrombosis model), and antihypertensive (in vivo, SHR rats) effects. In the Born test N,N-bisphenylsulfonylhydroxylamine (10) was most active (IC50 = 11 mumol/L). The N-ethoxycarbonyl-phenylhydroxylamine (7) was the most potent antithrombotic compound. It inhibited the thrombus formation in mesenteric arterioles of rats by 39% after a single p.o. dose of 60 mg/kg. Compound 7 lacked any antihypertensive activity. It, therefore, had been possible to separate completely the antithrombotic activities from antihypertensive properties in suitable hydroxylamine derivatives.

Animals↗

Mutagenesis of plasmid DNA with hydroxylamine: isolation of mutants of multi-copy plasmids.

An investigation of in vitro mutagenesis of plasmid DNA with hydroxylamine is described. The treated plasmid DNA was used to transform Escherichia coli K12. Mutants of the plasmid NTP3, which codes for resistance to ampicillin and sulphonamides, were isolated and characterised. They were classified according to the reduction in level of their beta-lactamase activity. Hydroxylamine-induced mutants of NTP14 were also isolated. This plasmid codes for ampicillin resistance, synthesis of colicin E1, and the EcoRI restriction and modification enzymes. One class of mutants is lethal to the host strain at temperatures above 33 degrees C, but carrier strains grow well at 28 degrees C. There is evidence that these mutants code for a temperature-sensitive EcoRI modification activity: the lethal effect probably results from the cleavage of the host-cell DNA by the restriction enzyme at non-permissive temperatures. The possible genetic uses of the mutant plasmids for the production of hybrid plasmids in the bacterial cell are discussed.

Ampicillin↗

Hydroxylamine cleavage of proteins in polyacrylamide gels.

A modification of the hydroxylamine cleavage of proteins is presented in which proteins were cleaved while immobilized in the matrix of a polyacrylamide gel. The reaction under these conditions retains its high specificity for Asn-Gly bonds and has the advantage that the gel matrix, acting as a carrier, facilitates simultaneous treatment of many samples, and contributes to a high recovery efficiency (60-90%) of the cleavage products. The cleavage is performed with individual protein bands excised from dried slab gels after detection by staining, autoradiography, or fluorography. The procedure can be easily combined with other techniques to further characterize the cleavage fragments. Also a two-dimensional version of the cleavage method was developed, which allows rapid recognition of interrelationships between proteins in a complicated mixture. The versatility of the procedure is demonstrated in a number of applications. Highly related strains of murine leukemia viruses were easily distinguished from one another by the unique cleavage patterns of their gag- and env-precursor polypeptides. Comparing the env-precursor gPr82env synthesized in the presence or absence of tunicamycin with its cell-free synthesized counterpart, revealed the presence of an amino-terminal signal sequence. Cleavage patterns of pro-opiomelanocortin (POMC) from three different species revealed a high degree of homology between rat and mouse POMC, whereas Xenopus POMC was very different. Regions to which carbohydrates are attached could be identified by comparing glycosylated and unglycosylated forms of POMC. Combining the hydroxylamine cleavage procedure with immunological characterization of the fragments showed a small but significant difference between the amino-terminal sequences of the recombinant transforming protein P120 of Abelson murine leukemia virus and of its parent molecule Pr65gag of Moloney murine leukemia virus.

Animals↗

Inhibition of ribulose-1,5-bisphosphate carboxylase-oxygenase activities by hydroxylamine.

Hydroxylamine directly and reversibly inhibits both activities of homogeneous ribulose-1,5-bisphosphate carboxylase-oxygenase (3-phospho-D-glycerate carboxy-lyase (dimerizing), EC 4.1.1.39) isolated from diverse sources. NH2OH is an uncompetitive inhibitor of carboxylase activity with respect to ribulose-bisphosph ate. This reagent also reacts non-enzymically with ribulosebisphosphate to deplete this substrate. Contrary to previous reports, these results indicate that hydroxylamine directly and indirectly inhibits both activities of this bifunctional enzyme.

Carboxy-Lyases↗

Mechanism of hydroxylamine mutagenesis. Crystal structure and conformation of 1,5-dimethyl-N4-hydroxycytosine.

The crystal structure of the title compound, which is a formal analogue of 5-methyl-N4-hydroxycytosine nucleosides, has been determined by X-ray diffraction. The space group is P2(1)/c with a = 7.368 (2), b = 12.096 (3), c = 9.192 (4) A, beta = 113.94 (3) degrees. Three-dimensional intensity data were collected with a four-circle diffractometer, and the structure was refined by block-diagonal least-squares to R = 0.053. The compound is in the imino form, and the exocyclic N4-OH is located essentially in the plane of the pyrimidine ring, and syn to the ring (N(3). There is an intramolecular hydrogen bond involving the N(3)-H as donor and O(4) as acceptor, viz. N(3)-H(31)----O(4)-H. With this conformation, which probably prevails also in solution, the compound would be unable to participate in normal Watson-Crick base pairing. It is shown that a similar situation may prevail for N4-hydroxycytosine nucleosides. The implications with regard to the molecular mechanism of hydroxylamine mutagenesis, with particular reference to the T-even bacteriophages, are discussed. Analogous considerations are applied to an examination of the possible behaviour of hydroxylamine-modified adenine nucleosides.

Cytosine↗

Sulfation of carcinogenic aromatic hydroxylamines and hydroxamic acids by rat and human sulfotransferases: substrate specificity, developmental aspects and sex differences.

Sulfation of the carcinogen N-hydroxy-2-acetylaminofluorene (N-OH-AAF) and structurally related hydroxamic acids by rat and human sulfotransferases was studied. There was a clear sex and age difference in the sulfation of N-OH-AAF and the other hydroxamic acids by rat liver cytosols; adult male rats had the highest sulfation activity. Experiments with purified aryl sulfotransferase IV (AST IV) indicated that the high expression of this enzyme in male rat liver may be responsible for these differences. No such sex or age difference was found for the sulfation of aromatic hydroxylamines. In cytosols of adult human livers, sulfation activity towards aromatic hydroxamic acids and hydroxylamines was clearly present, but activities were much lower than in rat liver cytosols. Sulfation activity towards these compounds was also found in fetal and neonatal liver and adrenals. These compounds probably are sulfated by several different sulfotransferases in humans.

Aging↗

Histamine stimulation of canine colonic epithelium: potentiation by hydroxylamines.

Hydroxylamine derivatives markedly potentiated responses of the canine colonic mucosa to histamine, but not to carbachol or 5HT. Effects noted were produced upon either luminal or serosal addition of the agents, suggesting an intracellular mechanism. Similar potentiations were observed with a phosphodiesterase inhibitor, IBMX, suggesting that hydroxylamines could act by altering cyclic nucleotide levels. Since such derivatives could be produced as intermediates by colonic bacteria, the effects noted could have pathological implications.

1-Methyl-3-isobutylxanthine↗

On inactivation of bacteriophage lambda by hydroxylamine.

Hydroxylamine is a mutagen which is much more active on single-stranded DNA than on double-stranded DNA. It is shown here that the cohesive ends of lambda DNA, with 10 cytidine residues, constitute a hydroxylamine target roughly equal in magnitude to the entire duplex part of the molecule, which contains ca. 25 000 cytidine residues.

Bacteriophage lambda↗

The products of the reduction of doxyl stearates in cells are hydroxylamines as shown by oxidation by 15N-perdeuterated Tempone.

The use of nitroxides in functional biological systems has increased greatly as it has become evident that such studies can provide valuable biophysical and metabolic data. This has led to a need to understand the nature of the metabolism of nitroxides and their products. This paper presents data indicating the value of 15N-perdeuterated Tempone specifically to indicate the amount of hydroxylamines that are present in a cellular system. Using this technique, we found that in the mammalian cells that we studied the principal or only products of reduction of doxyl stearates were the corresponding hydroxylamines.

Animals↗