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</script>A Slow-Release Substrate Stimulates Groundwater Microbial Communities for Long-Term in Situ Cr(VI) Reduction
pmid: 25835088
Cr(VI) is a widespread environmental contaminant that is highly toxic and soluble. Previous work indicated that a one-time amendment of polylactate hydrogen-release compound (HRC) reduced groundwater Cr(VI) concentrations for >3.5 years at a contaminated aquifer; however, microbial communities responsible for Cr(VI) reduction are poorly understood. In this study, we hypothesized that HRC amendment would significantly change the composition and structure of groundwater microbial communities, and that the abundance of key functional genes involved in HRC degradation and electron acceptor reduction would increase long-term in response to this slowly degrading, complex substrate. To test these hypotheses, groundwater microbial communities were monitored after HRC amendment for >1 year using a comprehensive functional gene microarray. The results showed that the overall functional composition and structure of groundwater microbial communities underwent sequential shifts after HRC amendment. Particularly, the abundance of functional genes involved in acetate oxidation, denitrification, dissimilatory nitrate reduction, metal reduction, and sulfate reduction significantly increased. The overall community dynamics was significantly correlated with changes in groundwater concentrations of microbial biomass, acetate, NO3-, Cr(VI), Fe(II) and SO4(2-). Our results suggest that HRC amendment primarily stimulated key functional processes associated with HRC degradation and reduction of multiple electron acceptors in the aquifer toward long-term Cr(VI) reduction.
- Chinese Academy of Sciences China (People's Republic of)
- Lawrence Berkeley National Laboratory United States
- Oak Ridge National Laboratory United States
- Chinese Academy of Sciences China (People's Republic of)
- University of California System United States
Chromium, 570, Polymers, Polyesters, Microbial Consortia, Chemical, 333, Environmental, Environmental Biotechnology, Genetics, Water Pollutants, Biomass, Lactic Acid, Groundwater, Nitrates, Sulfates, Biodegradation, Environmental, Biodegradation, Oxidation-Reduction, Environmental Sciences, Water Pollutants, Chemical, Hydrogen
Chromium, 570, Polymers, Polyesters, Microbial Consortia, Chemical, 333, Environmental, Environmental Biotechnology, Genetics, Water Pollutants, Biomass, Lactic Acid, Groundwater, Nitrates, Sulfates, Biodegradation, Environmental, Biodegradation, Oxidation-Reduction, Environmental Sciences, Water Pollutants, Chemical, Hydrogen
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