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At least 19 recordsLinked to original sources

Distribution of amine oxidases and amine dehydrogenases in bacteria grown on primary amines and characterization of the amine oxidase from Klebsiella oxytoca.

The bacteria Klebsiella oxytoca LMD 72.65 (ATCC 8724), Arthrobacter P1 LMD 81.60 (NCIB 11625), Paracoccus versutus LMD 80.62 (ATCC 25364), Escherichia coli W LMD 50.28 (ATCC 9637), E. coli K12 LMD 93.68, Pseudomonas aeruginosa PAO1 LMD 89.1 (ATCC 17933) and Pseudomonas putida LMD 68.20 (ATCC 12633) utilized primary amines as a carbon and energy source, although the range of amines accepted varied from organism to organism. The Gram-negative bacteria K. oxytoca and E. coli as well as the Gram-positive methylotroph Arthrobacter P1 used an oxidase whereas the pseudomonads and the Gram-negative methylotroph Paracoccus versutus used a dehydrogenase for amine oxidation. K. oxytoca utilized several primary amines but showed a preference for those containing a phenyl group moiety. Only a single oxidase was used for oxidation of the amines. After purification, the following characteristics of the enzyme indicated that it belonged to the group of copper-quinoprotein amine oxidase (EC 1.4.3.6): the molecular mass (172,000 Da) of the homodimeric protein; the UV/visible and EPR spectra of isolated and p-nitrophenylhydrazine-inhibited enzyme; the presence and the content of copper and topaquinone (TPQ). The amine oxidase appeared to be soluble and localized in the periplasm, but catalase and NAD-dependent aromatic aldehyde dehydrogenase, enzymes catalysing the conversion of its reaction products, were found in the cytoplasm. From the amino acid sequence of the N-terminal part as well as that of a purified peptide, it appears that K. oxytoca produces a copper-quinoprotein oxidase which is very similar to that found in other Enterobacteriaceae.

Amines↗

Comparison of the carcinogenic effectiveness of N-nitrosobis(2-hydroxypropyl)amine, N-nitrosobis(2-oxopropyl)amine, N-nitroso(2-hydroxypropyl)(2-oxopropyl)amine, and N-nitroso-2,6-dimethylmorpholine in Syrian hamsters.

For examination of metabolic interrelationships in carcinogenesis between N-nitroso-2,6-dimethylmorpholine, N-nitrosobis(2-oxopropyl)amine (CAS: 60599-38-4), N-nitrosobis(2-hydroxypropyl)amine (CAS: 53609-64-6), and N-nitroso(2-hydroxypropyl) (2-oxopropyl)amine, each was given to a separate group of 20 female Syrian golden hamsters by gavage. All four compounds induced tumors of the pancreatic duct and lung tumors, but the incidences varied from one compound to another. In addition, N-nitrosobis(2-oxopropyl)amine and N-nitroso(2-hydroxypropyl)(2-oxopropyl)amine induced many hepatocellular and cholangiocellular neoplasms, which the other two compounds did not. On the basis of short time to death with tumors and the relatively low total dose administered, N-nitrosobis(2-oxopropyl) amine appeared to be the most potent carcinogen in the hamster among the four. N-nitroso(2-hydroxypropyl)(2-oxopropyl)amine was next in potency but was considerably weaker than N-nitrosobis(2-oxopropyl)amine. N-Nitroso-2,6-dimethylmorpholine, which was similar in potency to N-nitroso(2-hydroxypropyl) (2-oxopropyl)amine, however, did not induce a significant incidence of liver tumors of any type; and N-nitrosobis(2-hydroxypropyl) amine was considerably less potent than the other three compounds. These results did not support the opinion of N-nitroso(2-hydroxypropyl) (2-oxopropyl)amine as the proximate carcinogenic metabolite of all three compounds in the Syrian hamster but instead suggested that these compounds might have acted through formation of different and yet unknown carcinogenic intermediates.

Animals↗

Microbial oxidation of amines. Distribution, purification and properties of two primary-amine oxidases from the yeast Candida boidinii grown on amines as sole nitrogen source.

1. The yeast Candida boidinii was grown on glucose as carbon source with a range of amines and amino acids as nitrogen sources. Cells grown on amines contained elevated activities of catalase. If the amines contained N-methyl groups, formaldehyde dehydrogenase, formate dehydrogenase and S-formylglutathione hydrolase were also elevated in activity compared with cells grown on (NH(4))(2)SO(4). 2. Cells grown on all the amines tested, but not those grown on urea or amino acids, contained an oxidase attacking primary amines, which is referred to as methylamine oxidase. In addition, cells grown on some amines contained a second amine oxidase, which is referred to as benzylamine oxidase. 3. Both amine oxidases were purified to near homogeneity. 4. Benzylamine oxidase was considerably more stable at 45 and 50 degrees C than was methylamine oxidase. 5. Both enzymes had a pH optimum in the region of 7.0, and had a considerable number of substrates in common. There were, however, significant differences in the substrate specificity of the two enzymes. The ratio V/K(app.) (m) increased with increasing n-alkyl carbon chain length for benzylamine oxidase, but decreased for methylamine oxidase. 6. Both enzymes showed similar sensitivity to carbonyl-group reagents, copper-chelating agents and other typical ;diamine oxidase inhibitors'. 7. The stoicheiometry for the reaction catalysed by each enzyme was established. 8. The kinetics of methylamine oxidase were examined by varying the methylamine and oxygen concentrations in turn. A non-Ping Pong kinetic pattern with intersecting double-reciprocal plots was obtained, giving K(m) values of 10mum for O(2) and 198mum for methylamine. The significance of this unusual kinetic behaviour is discussed. Similar experiments were not possible with the benzylamine oxidase, because it seemed to have an even lower K(m) for O(2). 9. Both enzymes had similar subunit M(r) values of about 80000, but the benzylamine oxidase behaved as if it were usually a dimer, M(r) 136000, which under certain conditions aggregated to a tetramer, M(r) 288000. Methylamine oxidase was mainly in the form of an octamer, M(r) 510000, which gave rise quite readily to dimers of M(r) 150000, and on gel filtration behaved as if the M(r) was 286000.

Benzylamine Oxidase↗

Supramolecular chemistry of amine--phenol adducts; novel three-dimensional framework structures in adducts of bis(2-aminoethyl)amine with 4,4'-sulfonyldiphenol, 1,1,1-tris(4-hydroxyphenyl)-ethane and 3,5-dihydroxybenzoic acid, and in the methanol-solvated adduct of tris(2-aminoethyl)-amine with 4,4'-biphenol

Bis(2-aminoethyl)amine-4,4'-sulfonyldiphenol (1/3) (1) (orthorhombic Pccn with Z' = 0.5) is a salt, [HN(CH2CH2NH3)2]2+.[O2S(C6H4O)2-.[O2S(C6H4OH)2]2, containing both dianionic and neutral bis-phenol units. The neutral and anionic bis-phenol units are linked by strong O-H...O- hydrogen bonds to form ladders built from R4(4)(48) rings: each ladder is interwoven with its two nearest neighbours to form a continuous two-dimensional sheet. The amine cations play two roles: they link each ladder to its two next-nearest neighbours by means of N-H...O hydrogen bonds and they also link each sheet to the two neighbouring sheets, again via N-H...O hydrogen bonds, thus generating a three-dimensional framework. Bis(2-aminoethyl)amine-1,1,1-tris(4-hydroxyphenyl)ethane-methanol (1/4/1) (2) (triclinic P1 with Z' = 0.5) consists entirely of neutral fragments. The tris-phenol units are linked by O-H...O hydrogen bonds into molecular ladders built from R4(4)(48) rings: these ladders are linked by the amine units, firstly into sheets and thence into a three-dimensional framework. Bis(2-aminoethyl)amine-3,5-dihydroxybenzoic acid (1/2) (3) (monoclinic P2(1)/c with Z' = 1) is a salt [HN(CH2CH2NH3)2]2+.[[(HO)2C6H3COO]-]2. The 3,5-dihydroxybenzoate anions are linked by O-H...O hydrogen bonds into interwoven and cross-connected (001) sheets linked by further O-H...O hydrogen bonds into a three-dimensional framework. The (001) sheets are further linked by ladders formed from both cations and anions. Tris(2-aminoethyl)amine-4,4'-biphenol-methanol (1/3/1), (4) (monoclinic P2(1)), is a salt [((H2NCH2CH2)2.N(CH2CH2NH3)]+]2.[OC6H4C6H4O]2.[HOC6H4C6H4OH]5.[MeOH]2, with Z' = 1. The asymmetric unit, containing ten independent molecular components, can be regarded as a supermolecule held together by a total of 13 independent hydrogen bonds, of O-H...O, O-H...N and N-H...O types. The supermolecules are linked by O-H...O and N-H...O hydrogen bonds into two-dimensional sheets, generated by translation; further N-H...O hydrogen bonds around the 2(1) screw axes link neighbouring sheets together into a three-dimensional framework.

Journal Article↗

Determination of amines, amine metabolites and some amine metabolizing enzymes by high performance liquid chromatography.

Some useful high performance liquid chromatographic methods for the determination of amines, amine metabolites and amine metabolizing enzymes are described. These include the separation of tyramine in wines and beers, determination of tryptamine in urine, assay of monoamine oxidase and catechol-O-methyltransferase and analysis of amine-aldehyde condensation products.

Aldehydes↗

Transformation of monoamine oxidase-B primary amine substrates into time-dependent inhibitors. Tertiary amine homologues of primary amine substrates.

A family of N-methylated and N,N-dimethylated alkyl and arylalkylamines was prepared and more than half of the analogues were shown to be time-dependent pseudo-first-order inhibitors of monoamine oxidase-B. Some of the time-dependent inactivators were reversible and others were irreversible with respect to prolonged dialysis following inactivation. Partition ratios ranged from zero to 11,000. These results are rationalized in terms of a combination of an inductive effect and a stereoelectronic effect as a result of hindered rotation of an active site covalent adduct. A molecular mechanics calculation indicates that there is at least 10 kcal/mol of torsional energy to be overcome in order for the enzyme adduct to be released. These findings show that tertiary amine homologues of primary amine substrates of monoamine oxidase are time-dependent inhibitors, and this should be useful in the design of new inactivators of this enzyme.

Alkylation↗

Carcinogenicity of N-nitroso(2-hydroxypropyl)(2-oxopropyl)amine, N-nitrosobis(2-hydroxypropyl)amine and cis-N-nitroso-2,6-dimethylmorpholine administered continuously in the Syrian hamster, and the effect of dietary protein on N-nitroso(2-hydroxypropyl)(2-oxopropyl)amine carcinogenesis.

The effect of continuous week-long administration of the three pancreatic carcinogens N-nitroso(2-hydroxypropyl)(2-oxopropyl)amine (HPOP), N-nitrosobis(2-hydroxypropyl)amine (BHP), and cis-N-nitroso-2,6-dimethylmorpholine (cis-NNDM), by a s.c. implanted osmotic pump, was examined in Syrian hamsters. HPOP at total doses of 220-250 mg/kg body weight induced ductal adenocarcinomas in the pancreas (41%), and cholangiomas (18%) and cholangiocarcinomas (18%) in the liver, 25 weeks following the initiation of treatment. Higher doses of HPOP resulted in severe hepatic injury and increased mortality (LD50 = 280 mg/kg). Cis-NNDM and BHP were less toxic than HPOP and induced pancreatic lesions at doses of 950 mg/kg. These data document that a week-long schedule of continuous administration of HPOP for the induction of pancreatic cancer compares favorably with those involving weekly injections. Application of this model to study the effect of dietary protein in HPOP-induced carcinogenicity showed that the number of cystic, intermediate and tubular complexes in the pancreas was significantly higher in animals fed a 20% as compared to an 8% protein diet 2 weeks prior to HPOP administration. Furthermore, the incidence of pancreatic adenocarcinomas and in situ carcinomas was only 13% in the hamsters fed the low-protein diet as compared to 46% in those fed the high-protein diet.

Adenocarcinoma↗

Non-amines, drugs without an amine nitrogen, potently block serotonin transport: novel antidepressant candidates?

The serotonin transporter (SERT) is a principal site of action of therapeutic antidepressants in the brain. Without exception, these inhibitors of serotonin transport contain an amine nitrogen in their structure. We previously demonstrated that novel compounds without an amine nitrogen in their structure (non-amines), blocked dopamine transport in cells transfected with the human dopamine transporter. The present study investigated whether, in the absence of an amine nitrogen, certain non-amines bind selectively to the SERT and block the transport of serotonin. At 10 microM concentration, select non-amines displayed no, or little, affinity for 9 serotonin, 5 dopamine, 7 adrenergic, 5 muscarinic cholinergic, 3 opiate and histamine receptors. The affinities of non-amines for [(3)H]citalopram binding sites on the SERT and their potencies for blocking [(3)H]serotonin transport were measured in cloned human SERT stably or transiently expressed in HEK-293. Whether oxa- or carba-based, non-amines bound to [(3)H]citalopram-labeled sites and blocked [(3)H]serotonin transport in the low nanomolar range, at values equal to or higher than those of some conventional antidepressants. A non-amine, O-1809, was 99-fold more selective for the serotonin over the dopamine transporter. As substituents on the aromatic ring of non-amines confer high affinity for the SERT, we investigated the hypothesis that aromatic-aromatic interactions may contribute significantly to non-amine/transporter association. A SERT mutant was produced in which a highly conserved aromatic amino acid, phenylalanine 548, was replaced by an alanine (F548A). Although the affinities of several non-amines were unchanged in the mutant SERT, the affinity of imipramine was decreased, revealing possible differences in amine and non-amine binding domains on the SERT. The similar affinities of non-amines and conventional antidepressant drugs for the SERT support the view that an amine nitrogen is not essential for drugs to block serotonin transport with high affinity. Non-amines open avenues for developing a new generation of antidepressants.

Amines↗

Comparison of kinetic properties of amine oxidases from sainfoin and lentil and immunochemical characterization of copper/quinoprotein amine oxidases.

Kinetic properties of novel amine oxidase isolated from sainfoin (Onobrychis viciifolia) were compared to those of typical plant amine oxidase (EC 1.4.3.6) from lentil (Lens culinaris). The amine oxidase from sainfoin was active toward substrates, such as 1,5-diaminopentane (cadaverine) with K(m) of 0.09 mM and 1,4-diaminobutane (putrescine) with K(m) of 0.24 mM. The maximum rate of oxidation for cadaverine at saturating concentration was 2.7 fold higher than that of putrescine. The amine oxidase from lentil had the maximum rate for putrescine comparable to the rate of sainfoin amine oxidase with the same substrate. Both amine oxidases, like other plant Cu-amine oxidases, were inhibited by substrate analogs (1,5-diamino-3-pentanone, 1,4-diamino-2-butanone and aminoguanidine), Cu2+ chelating agents (diethyltriamine, 1,10-phenanthroline, 8-hydroxyquinoline, 2,2'-bipyridyl, imidazole, sodium cyanide and sodium azide), some alkaloids (L-lobeline and cinchonine), some lathyrogens (beta-aminopropionitrile and aminoacetonitrile) and other inhibitors (benzamide oxime, acetone oxime, hydroxylamine and pargyline). Tested by Ouchterlony's double diffusion in agarose gel, polyclonal antibodies against the amine oxidase from sainfoin, pea and grass pea cross-reacted with amine oxidases from several other Fabaceae and from barley (Hordeum vulgare) of Poaceae, while amine oxidase from the filamentous fungus Aspergillus niger did not cross-react at all. However, using Western blotting after SDS-PAGE with rabbit polyclonal antibodies against the amine oxidase from Aspergillus niger, some degree of similarity of plant amine oxidases from sainfoin, pea, field pea, grass pea, fenugreek, common melilot, white sweetclover and Vicia panonica with the A. niger amine oxidase was confirmed.

Amine Oxidase (Copper-Containing)↗

Effect of amine nature on reaction mechanism: aminolyses of o-4-nitrophenyl thionobenzoate with primary and secondary amines.

Pseudo-first-order rate constants (k(obs)) have been measured spectrophotometrically for reactions of O-4-nitrophenyl thionobenzoate (2) with a series of primary and acyclic secondary amines. The plots of k(obs) vs amine concentration are linear for the reaction of 2 with primary amines. The slope of the Brønsted-type plot for the reaction of 2 with primary amines decreases from 0.77 to 0.17 as the amine basicity increases, indicating that the reaction proceeds through a zwitterionic addition intermediate in which the rate-determining step changes from the breakdown of the intermediate to the reaction products to the formation of the intermediate as the amine basicity increases. On the other hand, for reactions with all the acyclic secondary amines studied, the plot of k(obs) vs amine concentration exhibits an upward curvature, suggesting that the reaction proceeds through two intermediates, e.g., a zwitterionic addition intermediate and an anionic intermediate. The microscopic rate constants (k(1), k(-)(1), k(2), and k(3) where available) have been determined for the reactions of 2 with all the primary and secondary amines studied. The k(1) value is larger for the reaction with the primary amine than for the reaction with the isobasic acyclic secondary amines, while the k(-)(1) value is much larger for the latter reaction than for the former reaction. The k(3) value for the reaction with secondary amine is independent of the amine basicity. The small k(2)/k(-)(1) ratio is proposed to be responsible for the deprotonation process observed in aminolyses of carbonyl or thiocarbonyl derivatives.

Journal Article↗

Contribution of serum and cellular semicarbazide-sensitive amine oxidase to amine metabolism and cardiovascular toxicity.

Semicarbazide-sensitive amine oxidase (SSAO) plays a role in the in vivo and in vitro toxicity of several environmental and endogenous amines. We investigated the role of SSAO as a component of cell culture medium (through addition of fetal calf serum (FCS)) compared to intracellular SSAO in the in vitro cytotoxicity of three amines and metabolites. Smooth muscle cells and beating cardiac myocytes were grown in 96-well plates and exposed to various concentrations and combinations of FCS in medium, amines (allylamine, AA; benzylamine, BZA; and methylamine, MA), and amine metabolites (aldehydes: acrolein, benzaldehyde, and formaldehyde; hydrogen peroxide, H2O2; ammonia, NH3). Amine and amine metabolite cytotoxicity was quantified by monitoring cell viability. SSAO activity was measured in FCS, cardiovascular cells, or rat plasma by a radioenzymatic assay using [14C]BZA. Our data show that AA and its aldehyde metabolite, acrolein, were the most toxic compounds to both cell types. However, AA toxicity was FCS-dependent in both cell types, while BZA, MA, and amine metabolite (i.e., aldehydes, H2O2, and NH3) cytotoxicity showed little FCS dependence. In these experiments, medium containing 10% FCS had a calculated amine metabolic capacity that was 30- to 50-fold that of the cultured smooth muscle cellular content in a single well of a 96-well plate. Our study demonstrates that SSAO in FCS contributes to amine metabolism and cytotoxicity to rat cardiovascular cells in vitro and how critical it is to evaluate serum for its role in mechanisms of amine toxicity in vitro and in vivo.

Acrolein↗

Towards the development of selective amine oxidase inhibitors. Mechanism-based inhibition of six copper containing amine oxidases.

Four substrate analogs, 4-(2-naphthyloxy)-2-butyn-1-amine (1), 1,4-diamino-2-chloro-2-butene (2), 1,6-diamino-2,4-hexadiyne (3), and 2-chloro-5-phthalimidopentylamine (4) have been tested as inhibitors against mammalian, plant, bacterial, and fungal copper-containing amine oxidases: bovine plasma amine oxidase (BPAO), equine plasma amine oxidase (EPAO), pea seedling amine oxidase (PSAO), Arthrobacter globiformis amine oxidase (AGAO), Escherichia coli amine oxidase (ECAO), and Pichia pastoris lysyl oxidase (PPLO). Reactions of 1,4-diamino-2-butyne with selected amine oxidases were also examined. Each substrate analog contains a functional group that chemical precedent suggests could produce mechanism-based inactivation. Striking differences in selectivity and rates of inactivation were observed. For example, between two closely related plasma enzymes, BPAO is more sensitive than EPAO to 1 and 3, while the reverse is true for 2 and 4. In general, inactivation appears to arise in some cases from TPQ cofactor modification and in other cases from alkylation of protein residues in a manner that blocks access of substrate to the active site. Notably, 1 completely inhibits AGAO at stoichiometric concentrations and is not a substrate, but is an excellent substrate of PSAO and inhibition is observed only at very high concentrations. Structural models of 1 in Schiff base linkage to the TPQ cofactor in AGAO and PSAO (for which crystal structures are available) reveal substantial differences in the degree of interaction of bound 1 with side-chain residues, consistent with the widely divergent activities. Collectively, these results suggest that the development of highly selective amine oxidase inhibitors is feasible.

Amine Oxidase (Copper-Containing)↗