Mahto Kumari Uma, Das Surajit
Laboratory of Environmental Microbiology and Ecology (LEnME), Department of Life Science, National Institute of Technology, Rourkela, Odisha, India.
Crit Rev Biotechnol. 2025 Mar;45(2):434-453. doi: 10.1080/07388551.2024.2372070. Epub 2024 Jul 15.
Increasing industrialization and urbanization have contributed to a significant rise in wastewater discharge and exerted extensive pressure on the existing natural energy resources. Microbial fuel cell (MFC) is a sustainable technology that utilizes wastewater for electricity generation. MFC comprises a bioelectrochemical system employing electroactive biofilms of several aerobic and anaerobic bacteria, such as and Since the electroactive biofilms constitute a vital part of the MFC, it is crucial to understand the biofilm-mediated pollutant metabolism and electron transfer mechanisms. Engineering electroactive biofilm communities for improved biofilm formation and extracellular polymeric substances (EPS) secretion can positively impact the bioelectrochemical system and improve fuel cell performance. This review article summarizes the role of electroactive bacterial communities in MFC for wastewater treatment and bioelectricity generation. A significant focus has been laid on understanding the composition, structure, and function of electroactive biofilms in MFC. Various electron transport mechanisms, including direct electron transfer (DET), indirect electron transfer (IET), and long-distance electron transfer (LDET), have been discussed. A detailed summary of the optimization of process parameters and genetic engineering strategies for improving the performance of MFC has been provided. Lastly, the applications of MFC for wastewater treatment, bioelectricity generation, and biosensor development have been reviewed.
工业化和城市化进程的加快导致废水排放量大幅增加,给现有的自然资源带来了巨大压力。微生物燃料电池(MFC)是一种利用废水发电的可持续技术。MFC由一个生物电化学系统组成,该系统采用多种好氧和厌氧细菌的电活性生物膜,如 和 。由于电活性生物膜是MFC的重要组成部分,了解生物膜介导的污染物代谢和电子转移机制至关重要。构建工程化的电活性生物膜群落以改善生物膜形成和胞外聚合物(EPS)分泌,可对生物电化学系统产生积极影响并提高燃料电池性能。这篇综述文章总结了电活性细菌群落在MFC用于废水处理和生物发电中的作用。重点在于了解MFC中电活性生物膜的组成、结构和功能。讨论了各种电子传输机制,包括直接电子转移(DET)、间接电子转移(IET)和长距离电子转移(LDET)。提供了优化工艺参数和基因工程策略以提高MFC性能的详细总结。最后,综述了MFC在废水处理、生物发电和生物传感器开发方面的应用。