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R B Burrows

Publications and source records attributed to R B Burrows.

17 recordsLinked to original sources

A microassay for UDP-glucose dehydrogenase.

An assay for UDP-glucuronic acid [J. Singh, L. R. Schwarz, and F. J. Wiebel, Biochem. J. 189, 369-372 (1980)] has been utilized for determining UDP-glucose dehydrogenase activity. The assay for UDP-glucuronic acid, a product of UDP-glucose dehydrogenase, is based on the fluorometric determination of D-glucuronosyl benzo(a)pyrene. This compound is formed from UDP-glucuronic acid and 3-hydroxybenzo(a)pyrene in a reaction catalyzed by the glycuronosyl transferase of guinea pig microsomes. Unreacted 3-hydroxybenzo(a)pyrene is removed by extraction with chloroform-methanol, and the amount of gluconosylbenzo(a)pyrene formed is determined fluorometrically. Because this assay for UDP-glucose dehydrogenase is about 500 times more sensitive than spectrophotometric assays, it can be used to measure the amount of enzyme extractable from milligram quantities of connective tissue. Some kinetic properties of UDP-glucose dehydrogenase extracted from rabbit tissue have been determined. No evidence of different forms of the enzyme in rabbit liver, cartilage, or corneal stroma was found.

Animals↗

Protein catabolism in cultures of hepatocytes derived from mice of various ages.

The degradation of pulse-labeled protein was measured in cultures of hepatocytes derived from mice of 3--4, 15--16, and 28 months of age. The rates of protein degradation were determined in culture media with varying amino acid, insulin, and glucagon concentrations. No differences with age were seen. Also no difference with age was detected in the lysosomal degradation of 125I-labeled asialofetuin.

Age Factors↗

Comparison of specific activities of enzymes from young and old dogs and mice.

Aldolases A and B (EC 4.1.2.13) and liver cytoplasmic superoxide dismutase (EC 1.15.1.1) have been purified from young and old dogs and mice. The specific activities of these enzymes were measured and show no diminution with age. In addition, dog aldolase B, dog liver superoxide, and mouse liver aldolase were titrated in crude extracts with specific antisera. No accumulation of cross-reacting material with age was detected. The electrophoretic mobilities of these enzymes and the susceptibilities of dog aldolases A and B to trypsin digestion were also unchanged. These results are additional evidence that the accumulation of inactive enzymes is not an invariable concomitant of aging.

Aging↗

Presence of Escherichia coli of a deaminase and a reductase involved in biosynthesis of riboflavin.

Two enzymes have been partially purified from extracts of Escherchia coli B which together catalyze the conversion of the product of the action of GTP cyclohydrolase II, 2,5-diamino-6-oxy-4-(5'-phosphoribosylamine)pyrimidine, to 5-amino-2,6-dioxy-4-(5'-phosphoribitylamine)pyrimidine. These two compounds are currently thought to be intermediates in the biosynthesis of riboflavin. The enzymatic conversion occurs in two steps. The product of the action of GTP cyclohydrolase II first undergoes hydrolytic deamination at carbon 2 of the ring, followed by reduction of the ribosylamino group to a ribitylamino group. The enzyme which catalyzes the first step, herein called the "deaminase," has been purified 200-fold. The activity was assayed by detecting the conversion of the product of the reaction catalyzed by GTP cyclohydrolase II to a compound which reacts with butanedione to form 6,7-dimethyllumazine. The enzyme has a molecular weight of approximately 80,000 and a pH optimum of 9.1. The dephosphorylated form of the substrate is not deaminated in the presence of the enzyme. The assay for the enzyme which catalyzes the second step, referred to here as the "reductase," involves the detection of the conversion of the product of the deaminase-catalyzed reaction to a compound which, after treatment with alkaline phosphatase, reacts with butanedione to form 6,7-dimethyl-8-ribityllumazine. The reductase has a molecular weight of approximately 40,000 and a pH optimum of 7.5. Like the deaminase, the reductase does not act on the dephosphorylated form of its substrate. Reduced nicotinamide adenine dinucleotide phosphate is required as a cofactor; reduced nicotinamide adenine dinucleotide can be used about 30% as well as the phosphate form. The activity of neither enzyme is inhibited by riboflavin, FMN, or flavine adenine dinucleotide.

Escherichia coli↗