Chloroform Cometabolism by Butane-Grown CF8, Pseudomonas butanovora, and Mycobacterium vaccae JOB5 and Methane-Grown Methylosinus trichosporium OB3b

Кометаболизм хлороформа культурами CF8, Pseudomonas butanovora и Mycobacterium vaccae JOB5, выращенными на бутане, и Methylosinus trichosporium OB3b, выращенной на метане
Natsuko Hamamura, Clive Page, Tengfei Long, Lewis Semprini, Daniel J. Arp
1997-09-01

Pseudomonas butanovoraacetylene inactivationbutane monooxygenasechlorinated hydrocarbon transformationchloroform cometabolism
Chloroform (CF) degradation by a butane-grown enrichment culture, CF8, was compared to that by butane-grown Pseudomonas butanovora and Mycobacterium vaccae JOB5 and to that by a known CF degrader, Methylosinus trichosporium OB3b. All three butane-grown bacteria were able to degrade CF at rates comparable to that of M. trichosporium. CF degradation by all four bacteria required O(inf2). Butane inhibited CF degradation by the butane-grown bacteria, suggesting that butane monooxygenase is responsible for CF degradation. P. butanovora required exogenous reductant to degrade CF, while CF8 and M. vaccae utilized endogenous reductants. Prolonged incubation with CF resulted in decreased CF degradation. CF8 and P. butanovora were more sensitive to CF than either M. trichosporium or M. vaccae. CF degradation by all three butane-grown bacteria was inactivated by acetylene, which is a mechanism-based inhibitor for several monooxygenases. Butane protected all three butane-grown bacteria from inactivation by acetylene, which indicates that the same monooxygenase is responsible for both CF and butane oxidation. CF8 and P. butanovora were able to degrade other chlorinated hydrocarbons, including trichloroethylene, 1,2-cis-dichloroethylene, and vinyl chloride. In addition, CF8 degraded 1,1,2-trichloroethane. The results indicate the potential of butane-grown bacteria for chlorinated hydrocarbon transformation.
1
Acetylene inactivated chloroform degradation in all butane-grown bacteria, whereas butane protected against this inactivation, demonstrating that the same monooxygenase oxidizes both substrates.
2
Butane-grown CF8, Pseudomonas butanovora, and Mycobacterium vaccae JOB5 degraded chloroform at rates comparable to the known degrader Methylosinus trichosporium OB3b.
3
CF8 and Pseudomonas butanovora degraded multiple additional chlorinated hydrocarbons, indicating the potential of butane-grown bacteria for broader contaminant transformation.
4
Chloroform degradation by all four bacteria required oxygen, while butane inhibited degradation by butane-grown bacteria, implicating butane monooxygenase.
5
Pseudomonas butanovora required an exogenous reductant for chloroform degradation, while CF8 and Mycobacterium vaccae used endogenous reductants.

Chloroform cometabolism by butane-grown CF8, Pseudomonas butanovora, and Mycobacterium vaccae JOB5, and methane-grown Methylosinus trichosporium OB3b

Chloroform degradation rates, oxygen and reductant requirements, inhibition and inactivation mechanisms, monooxygenase involvement, and transformation of other chlorinated hydrocarbons

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1997-09-01
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Natsuko Hamamura
Clive Page
Tengfei Long
Lewis Semprini
Daniel J. Arp
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