Abstract
Chlorinated ethenes are toxic substances which are widely distributed groundwater contaminants and are persistent in the subsurface environment. Reports on the biodegradation of these compounds under anaerobic conditions which might occur naturally in groundwater show that these substances degrade very slowly, if at all. Previous attempts to degrade chlorinated ethenes aerobically have produced conflicting results. A mixed culture containing methane-utilizing bacteria was obtained by methane enrichment of a sediment sample. Biodegradation experiments carried out in sealed culture bottles with radioactively labeled trichloroethylene (TCE) showed that approximately half of the radioactive carbon had been converted to 14CO2 and bacterial biomass. In addition to TCE, vinyl chloride and vinylidene chloride could be degraded to products which are not volatile chlorinated substances and are therefore likely to be further degraded to CO2. Two other chlorinated ethenes, cis and trans-1,2-dichloroethylene, were shown to degrade to chlorinated products, which appeared to degrade further. A sixth chlorinated ethene, tetrachloroethylene, was not degraded by the methane-utilizing culture under these conditions. The biodegradation of TCE was inhibited by acetylene, a specific inhibitor of methane oxidation by methanotrophs. This observation supported the hypothesis that a methanotroph is responsible for the observed biodegradations.
MeSH Terms
1-Propanol/pharmacology
Acetylene/pharmacology
Aerobiosis
Bacteria/metabolism
Biodegradation, Environmental
Carbon Dioxide/analysis,metabolism
Dichloroethylenes/metabolism
Gas Chromatography-Mass Spectrometry
Methane/metabolism
Methanol/pharmacology
Tetrachloroethylene/metabolism
Trichloroethylene/metabolism
Vinyl Chloride/metabolism
Chemicals
Dichloroethylenes
Carbon Dioxide
vinylidene chloride
Trichloroethylene
1-Propanol
Acetylene
Methane
Tetrachloroethylene
Vinyl Chloride
Methanol
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Fogel M M
Taddeo A R
Fogel S
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