Catabolism of L-arginine by Pseudomonas aeruginosa.

Details

Serval ID
serval:BIB_59997A050433
Type
Article: article from journal or magazin.
Collection
Publications
Title
Catabolism of L-arginine by Pseudomonas aeruginosa.
Journal
Journal of General Microbiology
Author(s)
Mercenier A., Simon J.P., Haas D., Stalon V.
ISSN
0022-1287 (Print)
ISSN-L
0022-1287
Publication state
Published
Issued date
1980
Volume
116
Number
2
Pages
381-389
Language
english
Abstract
Pseudomonas aeruginosa is known to break down arginine by the arginine deiminase pathway. An additional pathway has now been found whereby arginine is converted to putrescine with agmatine and N-carbamoylputrescine as intermediates. The following enzyme activities belonging to this pathway were detected in crude extracts: arginine decarboxylase (EC 4.1.1.19), which catalyses the release of CO2 from arginine to give agmatine; agmatine deiminase (EC 3.5.3.12), which degrades agmatine to N-carbamoylputrescine; and N-carbamoylputrescine amidinohydrolase (EC 3.5.3.-), which then removes the ureido group of carbamoylputrescine. In crude extracts, arginine decarboxylase activity was stimulated by pyridoxal phosphate, Mg2+ and by the products of the catabolic pathway, putrescine and spermidine. Growth of P. aeruginosa on arginine as the sole carbon and nitrogen source markedly increased the activity of arginine decarboxylase. Agmatine and N-carbamoylputrescine induced the synthesis of agmatine deiminase and N-carbamoylputrescine hydrolase. Addition of succinate or citrate to medium containing arginine or agmatine led to repression of the enzymes involved in the arginine decarboxylase pathway. Moreover, the repression of agmatine deiminase and N-carbamoylputrescine hydrolase was further increased when P. aeruginosa was grown in media with agmatine plus glutamine or agmatine plus succinate and ammonia. This suggests that the expression of the agmatine pathway may be regulated by carbon catabolite repression as well as nitrogen catabolite repression.
Keywords
Agmatine/metabolism, Arginine/metabolism, Carboxy-Lyases/metabolism, Enzyme Induction, Enzyme Repression, Ornithine/metabolism, Pseudomonas aeruginosa/metabolism, Putrescine/analogs & derivatives, Putrescine/biosynthesis
Pubmed
Web of science
Create date
25/01/2008 18:01
Last modification date
20/08/2019 15:13
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