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AbstractThe biodegradation of chloroethene compounds under oxic and anoxic conditions is well established. However, the biological reactions that take place under microoxic conditions are unknown. Here, we report the biostimulated (BIOST: addition of lactate) and natural attenuated (NAT) degradation of chloroethene compounds under microoxic conditions by bacterial communities from chloroethene compounds‐contaminated groundwater. The degradation of tetrachloroethene was significantly higher in NAT (15.14% on average) than in BIOST (10.13% on average) conditions at the end of the experiment (90 days). Sporomusa, Paracoccus, Sedimentibacter, Pseudomonas, and Desulfosporosinus were overrepresented in NAT and BIOST compared to the source groundwater. The NAT metagenome contains phenol hydrolase P1 oxygenase (dmpL), catechol‐1,2‐dioxygenase (catA), catechol‐2,3‐dioxygenases (dmpB, todE, and xylE) genes, which could be involved in the cometabolic degradation of chloroethene compounds; and chlorate reductase (clrA), that could be associated with partial reductive dechlorination of chloroethene compounds. Our data provide a better understanding of the bacterial communities, genes, and pathways potentially implicated in the reductive and cometabolic degradation of chloroethene compounds under microoxic conditions.
Tetrachloroethylene, Reductive dechlorination, Bacteria, Catechols, Biostimulation, Biodegradation, Environmental, Chloroethane compounds, Cometabolism, Microoxic, Lactic Acid, Natural attenutation
Tetrachloroethylene, Reductive dechlorination, Bacteria, Catechols, Biostimulation, Biodegradation, Environmental, Chloroethane compounds, Cometabolism, Microoxic, Lactic Acid, Natural attenutation
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