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Bacterial Catabolism of Threonine. Threonine Degradation Initiated by L-threonine Acetaldehyde-lyase (aldolase) in Species of Pseudomonas

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Journal Biochem J
Specialty Biochemistry
Date 1977 Aug 15
PMID 911318
Citations 7
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Abstract

1. The route of l-threonine degradation was studied in four strains of the genus Pseudomonas able to grow on the amino acid and selected because of their high l-threonine aldolase activity. Growth and manometric results were consistent with the cleavage of l-threonine to acetaldehyde+glycine and their metabolism via acetate and serine respectively. 2. l-Threonine aldolases in these bacteria exhibited pH optima in the range 8.0-8.7 and K(m) values for the substrate of 5-10mm. Extracts exhibited comparable allo-l-threonine aldolase activities, K(m) values for this substrate being 14.5-38.5mm depending on the bacterium. Both activities were essentially constitutive. Similar activity ratios in extracts, independent of growth conditions, suggested a single enzyme. The isolate Pseudomonas D2 (N.C.I.B. 11097) represents the best source of the enzyme known. 3. Extracts of all the l-threonine-grown pseudomonads also possessed a CoA-independent aldehyde dehydrogenase, the synthesis of which was induced, and a reversible alcohol dehydrogenase. The high acetaldehyde reductase activity of most extracts possibly resulted in the underestimation of acetaldehyde dehydrogenase. 4. l-Serine dehydratase formation was induced by growth on l-threonine or acetate+glycine. Constitutively synthesized l-serine hydroxymethyltransferase was detected in extracts of Pseudomonas strains D2 and F10. The enzyme could not be detected in strains A1 and N3, probably because of a highly active ;formaldehyde-utilizing' system. 5. Ion-exchange and molecular exclusion chromatography supported other evidence that l-threonine aldolase and allo-l-threonine aldolase activities were catalysed by the same enzyme but that l-serine hydroxymethyltransferase was distinct and different. These results contrast with the specificities of some analogous enzymes of mammalian origin.

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References
1.
Bell S, Turner J . Bacterial catabolism of threonine. Threonine degradation initiated by L-threonine-NAD+ oxidoreductase. Biochem J. 1976; 156(2):449-58. PMC: 1163767. DOI: 10.1042/bj1560449. View

2.
Kumagai T, Omuda T, Nakaoka A, Yoshimura T . [A study on the quantity of amniotic fluid in the air passages and in the stomach]. Kango. 1972; 24(3):164-6. View

3.
HALVORSON H . Utilization of single L-amino acids as sole source of carbon and nitrogen by bacteria. Can J Microbiol. 1972; 18(11):1647-50. DOI: 10.1139/m72-255. View

4.
Jones A, Turner J . Microbial metabolism of amino alcohols. 1-Aminopropan-2-ol and ethanolamine metabolism via propionaldehyde and acetaldehyde in a species of Pseudomonas. Biochem J. 1973; 134(1):167-82. PMC: 1177797. DOI: 10.1042/bj1340167. View

5.
Kumagai H, Nagate T, Yoshida H, Yamada H . Threonine aldolase from Candida humicola. II. Purification, crystallization and properties. Biochim Biophys Acta. 1972; 258(3):779-90. DOI: 10.1016/0005-2744(72)90179-9. View