Biomedical subjects
B A Orsi
Publications and source records attributed to B A Orsi.
Nitroreductase activity of NADH dehydrogenase of the respiratory redox chain.
1. An NADH-dependent nitroreductase from the inner membrane of ox liver mitochondria copurified with Complex I of the respiratory redox chain (NADH:ubiquinone oxidoreductase, EC 1.6.5.3). 2. The corresponding nitroreductase from ox heart mitochondria co-purified with the NADH-cytochrome c reductase of Mahler, Sarkar & Vernon [(1952) J. Biol. Chem. 199, 585-597] [NADH: (acceptor) oxidoreductase, EC 1.6.99.3], a component of Complex I that contains the FMN. 3. The mitochondrial nitroreductase activity is attributed to the flavoprotein component of Complex I.
The slow kinetic transients of arylsulphatase A.
A simple model is described to account for the anomalous time course of arylsulphatase A. In the case of the ox liver and human placental enzymes the enzyme-nitrocatechol sulphate complex can, in addition to forming products, slowly break down to form an inactive species which can turn in slowly regenerate active enzyme. When the inactive form binds sulphate the rate of reactivation is enhanced, 218-fold in the case of the ox enzyme. Rat liver arylsulphatase A is refractory to reactivation by sulphate.
Kinetic mechanism of the aliphatic amidase from Pseudomonas aeruginosa.
The kinetic constants for hydrolysis and transfer (with hydroxylamine as the alternate acceptor) of the aliphatic amidase (acylamide amidohydrolase, EC 3.5.1.4) from Pseudomonas aeruginosa were determined for a variety of acetyl and propionyl derivatives. The results obtained were consistent with a ping-pong or substitution mechanism. Product inhibition, which was pH dependent, implicated an acyl-enzyme compound as a compulsory intermediate and indicated that ammonia combined additionally with the free enzyme in a dead-end manner. The uncompetitive activation of acetamide hydrolysis by hydroxylamine and the observation that the partitioning of products between acetic acid and acetohydroxamate was linearly dependent on the hydroxylamine concentration substantiated these conclusions and indicated that deacylation was at least partially rate limiting. With propionamide as the acyl donor apparently anomalous results, which included inequalities in certain kinetic constants and a hyperbolic dependence of the partition ratio on the hydroxylamine concentration, could be explained by postulating a compulsory isomerisation of the acyl-enzyme intermediate prior to the transfer reaction.
Kinetic analysis of progress curves.
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Assay for the enzymic hydrolysis of penicillin and acylhydroxamates.
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Transition-state analogs of an aliphatic amidase.
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Kinetic analysis of enzyme mechanisms.
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Parameter estimation in hyperbolic kinetics.
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Kinetics and the mechanism of action of adenosine aminohydrolase.
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A simple method for the derivation of the steady-state rate equation for an enzyme mechanism.
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Inhibition and kinetic mechanism of rabbit muscle glyceraldehyde-3-phosphate dehydrogenase.
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Effect of adenosine 3',5'-monophosphate on melanin dispersion in the shore crab Carcinus maenas (L).
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Inhibition kinetics of D-glyceraldehyde 3-phosphate dehydrogenase.
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Kinetic mechanism of cytidine aminohydrolase.
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Regulation of cytidine aminohydrolase.
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The function of the non-specific adenylyl aminohydrolase of Aspergillus oryzae.
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The purification and properties of cytidine aminohydrolase from sheep liver.
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