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Metabolism of and Inhibition by Chlorobenzoates in Pseudomonas Putida P111

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Date 1991 Nov 1
PMID 1781694
Citations 18
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Abstract

Pseudomonas putida P111 was isolated by enrichment culture on 2,5-dichlorobenzoate and was also able to grow on 2-chloro-, 3-chloro-, 4-chloro-, 2,3-dichloro-, 2,4-dichloro-, and 2,3,5-trichlorobenzoates. However, 3,5-dichlorobenzoate completely inhibited growth of P111 on all ortho-substituted benzoates that were tested. When 3,5-dichlorobenzoate was added as a cosubstrate with either 3- or 4-chlorobenzoate, cell yields and chloride release were greater than those observed from growth on either monochlorobenzoate alone. Moreover, resting cells of P111 grown on 4-chlorobenzoate released chloride from 3,5-dichlorobenzoate and produced no identifiable intermediate. In contrast, resting cells grown on 2,5-dichlorobenzoate metabolized 3,5-dichlorobenzoate without release of chloride and accumulated a degradation product, which was identified as 1-carboxy-1,2-dihydroxy-3,5-dichlorocyclohexadiene on the basis of gas chromatography-mass spectrometry confirmation of its two acid-hydrolyzed products, 3,5- and 2,4-dichlorophenol. Since 3,5-dichlorocatechol was rapidly metabolized by cells grown on 2,5-dichlorobenzoate, it is apparent that 1-carboxy-1,2-dihydroxy-3,5-dichlorocyclohexadiene is not further metabolized by these cells. Moreover, induction of a functional dihyrodiol dehydrogenase would not be required for growth of P111 on other ortho-chlorobenzoates since the corresponding chlorodihydrodiols produced from a 1,2-dioxygenase attack would spontaneously decompose to the corresponding catechols. In contrast, growth on 3-chloro-, 4-chloro-, or 3,5-dichlorobenzoate requires a functional dihydrodiol dehydrogenase, yet only the two monochlorobenzoates appear to induce for it.

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References
1.
Marks T, Smith A, Quirk A . Degradation of 4-Chlorobenzoic Acid by Arthrobacter sp. Appl Environ Microbiol. 1984; 48(5):1020-5. PMC: 241668. DOI: 10.1128/aem.48.5.1020-1025.1984. View

2.
Horvath R, Alexander M . Cometabolism of m-chlorobenzoate by an Arthrobacter. Appl Microbiol. 1970; 20(2):254-8. PMC: 376911. DOI: 10.1128/am.20.2.254-258.1970. View

3.
Adriaens P, Focht D . Cometabolism of 3,4-dichlorobenzoate by Acinetobacter sp. strain 4-CB1. Appl Environ Microbiol. 1991; 57(1):173-9. PMC: 182680. DOI: 10.1128/aem.57.1.173-179.1991. View

4.
Hickey W, Focht D . Degradation of mono-, di-, and trihalogenated benzoic acids by Pseudomonas aeruginosa JB2. Appl Environ Microbiol. 1990; 56(12):3842-50. PMC: 185077. DOI: 10.1128/aem.56.12.3842-3850.1990. View

5.
Higson F, Focht D . Bacterial metabolism of hydroxylated biphenyls. Appl Environ Microbiol. 1989; 55(4):946-52. PMC: 184229. DOI: 10.1128/aem.55.4.946-952.1989. View