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PMID: 2681159 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Physically associated enzymes produce and metabolize 2-hydroxy-2,4-dienoate, a chemically unstable intermediate formed in catechol metabolism via meta cleavage in Pseudomonas putida.

Journal of bacteriology ·Vol. 171 ·No. 11 ·1989-11-00 ·Pages 6251-8

Harayama S, Rekik M, Ngai KL, Ornston LN

Abstract

The meta-cleavage pathway of catechol is a major mechanism for degradation of aromatic compounds. In this pathway, the aromatic ring of catechol is cleaved by catechol 2,3-dioxygenase and its product, 2-hydroxymuconic semialdehyde, is further metabolized by either a hydrolytic or dehydrogenative route. In the dehydrogenative route, 2-hydroxymuconic semialdehyde is oxidized to the enol form of 4-oxalocrotonate by a dehydrogenase and then further metabolized to acetaldehyde and pyruvate by the actions of 4-oxalocrotonate isomerase, 4-oxalocrotonate decarboxylase, 2-oxopent-4-enoate hydratase, and 4-hydroxy-2-oxovalerate aldolase. In this study, the isomerase, decarboxylase, and hydratase encoded in the TOL plasmid pWW0 of Pseudomonas putida mt-2 were purified and characterized. The 28-kilodalton isomerase was formed by association of extremely small identical protein subunits with an apparent molecular weight of 3,500. The decarboxylase and the hydratase were 27- and 28-kilodalton polypeptides, respectively, and were copurified by high-performance-liquid chromatography with anion-exchange, hydrophobic interaction, and gel filtration columns. The structural genes for the decarboxylase (xylI) and the hydratase (xylJ) were cloned into Escherichia coli. The elution profile in anion-exchange chromatography of the decarboxylase and the hydratase isolated from E. coli XylI+XylJ- and XylI-XylJ+ clones, respectively, were different from those isolated from XylI+ XylJ+ bacteria. This suggests that the carboxylase and the hydratase form a complex in vivo. The keto but not the enol form of 4-oxalocrotonate was a substrate for the decarboxylase. The product of decarboxylation was 2-hydroxypent-2,4-dienoate rather than its keto form, 2-oxopent-4-enoate. The hydratase acts on the former but not the latter isomer. Because 2-hydroxypent-2,4-dienoate is chemically unstable, formation of a complex between the decarboxylase and the hydratase may assure efficient transformation of this unstable intermediate in vivo.

MeSH Terms
Carboxy-Lyases/metabolism Catechols/metabolism Cloning, Molecular Escherichia coli/genetics Fatty Acids, Unsaturated/metabolism Genes, Bacterial Hydro-Lyases/metabolism Isomerases/metabolism Kinetics Molecular Weight Oxo-Acid-Lyases/metabolism Pseudomonas/enzymology,genetics Substrate Specificity
Chemicals
Catechols Fatty Acids, Unsaturated 2-hydroxy-2,4-pentadienoic acid 4-oxalocrotonate decarboxylase Carboxy-Lyases 4-hydroxy-2-oxovalerate aldolase Oxo-Acid-Lyases Hydro-Lyases 2-oxopent-4-enoate hydratase 4-oxalocrotonate tautomerase Isomerases catechol
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Harayama S
Department of Medical Biochemistry, University of Geneva, Switzerland.
Rekik M
Ngai K L
Ornston L N
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14 references, click to expand
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Article Info
Journal
Journal of bacteriology
Abbr.
J Bacteriol
ISSN
0021-9193
Published
1989-11-00
Pages
6251-8
Language
English
Region
United States
NLM ID
2985120R
PMCID
PMC210496
Subset
IM
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