Bioelectrochemical systems (BES) are attractive and versatile options for the bioremediation of organic or inorganic pollutants, including trichloroethylene (TCE) and Cr(VI), often found as co-contaminants in the environment. The elucidation of the microbial players' role in the bioelectroremediation processes for treating multicontaminated groundwater is still a research need that attracts scientific interest. In this study, 16S rRNA gene amplicon sequencing and whole shotgun metagenomics revealed the leading microbial players and the primary metabolic interactions occurring in the biofilm growing at the biocathode where TCE reductive dechlorination (RD), hydrogenotrophic methanogenesis, and Cr(VI) reduction occurred. The presence of Cr(VI) did not negatively affect the TCE degradation, as evidenced by the RD rates estimated during the reactor operation with TCE (111±2 μeq/Ld) and TCE/Cr(VI) (146±2 μeq/Ld). Accordingly, , the primary biomarker of the RD process, was found on the biocathode treating both TCE (7.82E+04±2.9E+04 16S rRNA gene copies g graphite) and TCE/Cr(VI) (3.2E+07±2.37E+0716S rRNA gene copies g graphite) contamination. The metagenomic analysis revealed a selected microbial consortium on the TCE/Cr(VI) biocathode. was the sole dechlorinating microbe with H uptake as the only electron supply mechanism, suggesting that electroactivity is not a property of this microorganism. and also colonized the biocathode as H consumers for the CH production and cofactor suppliers for cobalamin biosynthesis. Interestingly, also harbors gene complexes involved in the Cr(VI) reduction through extracellular and intracellular mechanisms.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8516407PMC
http://dx.doi.org/10.3389/fmicb.2021.747670DOI Listing

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