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The study overexpressed genes encoding nanowire proteins in Geobacter sulfurreducens, resulting in increased electrical outputs and power density in microbial fuel cells. The voltage outputs of the constructed strains were 0.470-0.578V, a 31-63% increase from the control strain, and the power density increased by 2.62-2.97-fold. Overexpression of nanowire proteins also improved biofilm formation on electrodes.

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What they did

System
MFC

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Abstract

Abstract Protein nanowires are critical electroactive components for electron transfer of Geobacter sulfurreducens biofilm. To determine the applicability of the nanowire proteins in improving bioelectricity production, their genes including pilA , omcZ , omcS and omcT were overexpressed in G. sulfurreducens . The voltage outputs of the constructed strains were higher than that of the control strain with the empty vector (0.470–0.578 vs. 0.355 V) in microbial fuel cells (MFCs). As a result, the power density of the constructed strains (i.e. 1.39–1.58 W m −2 ) also increased by 2.62‐ to 2.97‐fold as compared to that of the control strain. Overexpression of nanowire proteins also improved biofilm formation on electrodes with increased protein amount and thickness of biofilms. The normalized power outputs of the constructed strains were 0.18–0.20 W g −1 that increased by 74% to 93% from that of the control strain. Bioelectrochemical analyses further revealed that the biofilms and MFCs with the constructed strains had stronger electroactivity and smaller internal resistance, respectively. Collectively, these results demonstrate for the first time that overexpression of nanowire proteins increases the biomass and electroactivity of anode‐attached microbial biofilms. Moreover, this study provides a new way for enhancing the electrical outputs of MFCs.

Keywords

Geobacter sulfurreducensMicrobial fuel cellGeobacterBiofilmStrain (injury)Anode

Identifiers

Journal
Microbial Biotechnology
Year
2022