TY - JOUR
T1 - Methods for understanding microbial community structures and functions in microbial fuel cells
T2 - A review
AU - Zhi, Wei
AU - Ge, Zheng
AU - He, Zhen
AU - Zhang, Husen
N1 - Publisher Copyright:
© 2014 Elsevier Ltd.
PY - 2014/11/1
Y1 - 2014/11/1
N2 - Microbial fuel cells (MFCs) employ microorganisms to recover electric energy from organic matter. However, fundamental knowledge of electrochemically active bacteria is still required to maximize MFCs power output for practical applications. This review presents microbiological and electrochemical techniques to help researchers choose the appropriate methods for the MFCs study. Pre-genomic and genomic techniques such as 16S rRNA based phylogeny and metagenomics have provided important information in the structure and genetic potential of electrode-colonizing microbial communities. Post-genomic techniques such as metatranscriptomics allow functional characterizations of electrode biofilm communities by quantifying gene expression levels. Isotope-assisted phylogenetic analysis can further link taxonomic information to microbial metabolisms. A combination of electrochemical, phylogenetic, metagenomic, and post-metagenomic techniques offers opportunities to a better understanding of the extracellular electron transfer process, which in turn can lead to process optimization for power output.
AB - Microbial fuel cells (MFCs) employ microorganisms to recover electric energy from organic matter. However, fundamental knowledge of electrochemically active bacteria is still required to maximize MFCs power output for practical applications. This review presents microbiological and electrochemical techniques to help researchers choose the appropriate methods for the MFCs study. Pre-genomic and genomic techniques such as 16S rRNA based phylogeny and metagenomics have provided important information in the structure and genetic potential of electrode-colonizing microbial communities. Post-genomic techniques such as metatranscriptomics allow functional characterizations of electrode biofilm communities by quantifying gene expression levels. Isotope-assisted phylogenetic analysis can further link taxonomic information to microbial metabolisms. A combination of electrochemical, phylogenetic, metagenomic, and post-metagenomic techniques offers opportunities to a better understanding of the extracellular electron transfer process, which in turn can lead to process optimization for power output.
KW - Bioelectrochemical system
KW - Electrochemically active bacteria
KW - Extracellular electron transfer process
KW - Geobacter
KW - Microbial fuel cell
UR - https://www.scopus.com/pages/publications/84908655636
U2 - 10.1016/j.biortech.2014.08.096
DO - 10.1016/j.biortech.2014.08.096
M3 - Review article
C2 - 25223851
AN - SCOPUS:84908655636
SN - 0960-8524
VL - 171
SP - 461
EP - 468
JO - Bioresource Technology
JF - Bioresource Technology
ER -