Department of Biological Sciences and Technology, School of Environmental Studies, China University of Geosciences, Wuhan, Hubei, China.
Hubei Key Laboratory of Wetland Evolution and Eco-Restoration, Wuhan, Hubei, China.
Microb Biotechnol. 2023 Mar;16(3):534-545. doi: 10.1111/1751-7915.14128. Epub 2022 Aug 3.
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 ) 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 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.
蛋白质纳米线是地杆菌属硫还原菌生物膜电子转移的重要电活性组件。为了确定纳米线蛋白在提高生物电能生产中的适用性,将其基因 pilA、omcZ、omcS 和 omcT 在硫还原地杆菌中过表达。在微生物燃料电池 (MFC) 中,构建的菌株的电压输出高于含有空载体的对照菌株(0.470-0.578 对 0.355V)。结果,与对照菌株相比,构建的菌株的功率密度(即 1.39-1.58 W m )也增加了 2.62-2.97 倍。纳米线蛋白的过表达也提高了电极上生物膜的形成,生物膜的蛋白质含量和厚度增加。构建的菌株的归一化功率输出为 0.18-0.20 W g ,比对照菌株增加了 74%至 93%。生物电化学分析进一步表明,构建的菌株的生物膜和 MFC 具有更强的电化学活性和更小的内阻。总之,这些结果首次表明,过表达纳米线蛋白可以增加附着在阳极的微生物生物膜的生物量和电化学活性。此外,本研究为提高 MFC 的电输出提供了一种新方法。