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微生物燃料电池中参与硫化物氧化发电的微生物群落。

Microbial communities involved in electricity generation from sulfide oxidation in a microbial fuel cell.

机构信息

Department of Chemistry, University of Science & Technology of China, 96 Jinzhai Road, Hefei 230026, China.

出版信息

Biosens Bioelectron. 2010 Oct 15;26(2):470-6. doi: 10.1016/j.bios.2010.07.074. Epub 2010 Jul 27.

Abstract

Simultaneous electricity generation and sulfide removal can be achieved in a microbial fuel cell (MFC). In electricity harvesting from sulfide oxidation in such an MFC, various microbial communities are involved. It is essential to elucidate the microbial communities and their roles in the sulfide conversion and electricity generation. In this work, an MFC was constructed to enrich a microbial consortium, which could harvest electricity from sulfide oxidation. Electrochemical analysis demonstrated that microbial catalysis was involved in electricity output in the sulfide-fed MFC. The anode-attached and planktonic communities could perform catalysis independently, and synergistic interactions occurred when the two communities worked together. A 16S rRNA clone library analysis was employed to characterize the microbial communities in the MFC. The anode-attached and planktonic communities shared similar richness and diversity, while the LIBSHUFF analysis revealed that the two community structures were significantly different. The exoelectrogenic, sulfur-oxidizing and sulfate-reducing bacteria were found in the MFC anodic chamber. The discovery of these bacteria was consistent with the community characteristics for electricity generation from sulfide oxidation. The exoelectrogenic bacteria were found both on the anode and in the solution. The sulfur-oxidizing bacteria were present in greater abundance on the anode than in the solution, while the sulfate-reducing bacteria preferably lived in the solution.

摘要

在微生物燃料电池(MFC)中可以实现同时发电和去除硫化物。在这种 MFC 中从硫化物氧化中进行电能收集时,涉及到各种微生物群落。阐明微生物群落及其在硫化物转化和发电中的作用至关重要。在这项工作中,构建了一个 MFC 来富集能够从硫化物氧化中获取电能的微生物群落。电化学分析表明,微生物催化参与了在硫化物供料的 MFC 中的电能输出。附着在阳极上的和浮游的群落可以独立进行催化,而当两个群落共同作用时会发生协同相互作用。使用 16S rRNA 克隆文库分析来表征 MFC 中的微生物群落。附着在阳极上的和浮游的群落具有相似的丰富度和多样性,而 LIBSHUFF 分析表明这两个群落结构有显著差异。在 MFC 的阳极室中发现了异化金属还原菌、硫氧化菌和硫酸盐还原菌。这些细菌的发现与从硫化物氧化中发电的群落特征一致。异化金属还原菌既存在于阳极上也存在于溶液中。硫氧化菌在阳极上的丰度高于溶液中,而硫酸盐还原菌更喜欢生活在溶液中。

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