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Taxonomic and functional metagenomic analysis of anodic communities in two pilot-scale microbial fuel cells treating different industrial wastewaters. | LitMetric

AI Article Synopsis

  • Microbial fuel cells (MFCs) use microbial biodegradation and electron transfer to treat wastewater sustainably and cost-effectively, but research on the metagenomics of electrogenic microbial communities is limited.
  • Whole-genome metagenomic analysis of microbial communities in MFCs fed with distillery wastewater showed that Proteobacteria, Bacteroidetes, and Firmicutes were abundant, indicating their key role in wastewater treatment.
  • The study also revealed the potential for simultaneous recovery of electricity and biogas, as well as diversity in species capable of extracellular electron transfer, providing valuable insights into the evolution and function of microbial populations in MFCs.

Article Abstract

The combined processes of microbial biodegradation accompanied by extracellular electron transfer make microbial fuel cells (MFCs) a promising new technology for cost-effective and sustainable wastewater treatment. Although a number of microbial species that build biofilms on the anode surfaces of operating MFCs have been identified, studies on the metagenomics of entire electrogenic communities are limited. Here we present the results of whole-genome metagenomic analysis of electrochemically active robust anodic microbial communities, and their anaerobic digester (AD) sludge inocula, from two pilot-scale MFC bioreactors fed with different distillery wastewaters operated under ambient conditions in distinct climatic zones. Taxonomic analysis showed that Proteobacteria, Bacteroidetes and Firmicutes were abundant in AD sludge from distinct climatic zones, and constituted the dominant core of the MFC microbiomes. Functional analysis revealed species involved in degradation of organic compounds commonly present in food industry wastewaters. Also, accumulation of methanogenic Archaea was observed in the electrogenic biofilms, suggesting a possibility for simultaneous electricity and biogas recovery from one integrated wastewater treatment system. Finally, we found a range of species within the anode communities possessing the capacity for extracellular electron transfer, both via direct contact and electron shuttles, and show differential distribution of bacterial groups on the carbon cloth and activated carbon granules of the anode surface. Overall, this study provides insights into structural shifts that occur in the transition from an AD sludge to an MFC microbial community and the metabolic potential of electrochemically active microbial populations with wastewater-treating MFCs.

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Source
http://dx.doi.org/10.2390/biecoll-jib-2015-273DOI Listing

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