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Spatiotemporal development of the bacterial community in a tubular longitudinal microbial fuel cell
Author(s) -
Jung Rae Kim,
Nelli J. Beecroft,
John R. Varcoe,
Richard M. Dinsdale,
Alan J. Guwy,
Robert C. T. Slade,
Alfred E. Thumser,
Claudio AvigRossa,
Giuliano C. Premier
Publication year - 2011
Publication title -
applied microbiology and biotechnology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.074
H-Index - 221
eISSN - 1432-0614
pISSN - 0175-7598
DOI - 10.1007/s00253-011-3181-y
Subject(s) - temperature gradient gel electrophoresis , biology , klebsiella oxytoca , bacteroidetes , microbial population biology , species evenness , firmicutes , population , microbial fuel cell , proteobacteria , food science , microbiology and biotechnology , species richness , bacteria , ecology , 16s ribosomal rna , chemistry , escherichia coli , enterobacteriaceae , biochemistry , genetics , demography , electrode , sociology , gene , anode
The spatiotemporal development of a bacterial community in an exoelectrogenic biofilm was investigated in sucrose-fed longitudinal tubular microbial fuel cell reactors, consisting of two serially connected modules. The proportional changes in the microbial community composition were assessed by polymerase chain reaction-denaturing gradient gel electrophoresis (DGGE) and DNA sequencing in order to relate them to the performance and stability of the bioelectrochemical system. The reproducibility of duplicated reactors, evaluated by cluster analysis and Jaccard's coefficient, shows 80-90% similarity in species composition. Biofilm development through fed-batch start-up and subsequent stable continuous operation results in a population shift from γ-Proteobacteria- and Bacteroidetes- to Firmicutes-dominated communities, with other diverse species present at much lower relative proportions. DGGE patterns were analysed by range-weighted richness (Rr) and Pareto-Lorenz evenness distribution curves to investigate the evolution of the bacterial community. The first modules shifted from dominance by species closely related to Bacteroides graminisolvens, Raoultella ornithinolytica and Klebsiella sp. BM21 at the start of continuous-mode operation to a community dominated by Paludibacter propionicigenes-, Lactococcus sp.-, Pantoea agglomerans- and Klebsiella oxytoca-related species with stable power generation (6.0 W/m(3)) at day 97. Operational strategies that consider the dynamics of the population will provide useful parameters for evaluating system performance in the practical application of microbial fuel cells.

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