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Advances in direct interspecies electron transfer and conductive materials: Electron flux, organic degradation and microbial interaction

机译:直接梭菌电子转移和导电材料的进展:电子通量,有机化降解和微生物相互作用

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摘要

Direct interspecies electron transfer (DIET) via electrically conductive pili (e-pili) and c-type cytochrome between acetogens and methanogens has been proposed as an essential pathway for methane production. Supplements of conductive materials have been extensively found to promote methane production in microbial anaerobic treatment systems. This review comprehensively presents recent findings of DIET and the addition of conductive materials for methanogenesis and summarizes important results through aspects of electron flux, organic degradation, and microbial interaction. Conductive materials improve DIET and methanogenesis by acting as either substitute of e-pili or electron conduit between e-pili and electron acceptors. Other effects of conductive materials such as the change of redox potential may also be important factors for the stimulation. The type and organic loading rate of substrates affect the occurrence of DIET and stimulating effects of conductive materials. Geobacter, which can participate in DIET, were less enriched in anaerobic systems cultivated with non-ethanol substrates, suggesting the existence of other syntrophs with the capability of DIET. The coupling of communication systems such as quorum sensing may be a good strategy to achieve the formation of biofilm or granule enriched with syntrophic partners capable of DIET.
机译:已经提出了通过导电皮层(E-PILI)和乙酸乙酯和甲烷之间的C型细胞色素的直接呈现电子转移(饮食)作为甲烷生产的必要途径。广泛发现导电材料的补充剂促进微生物厌氧处理系统中的甲烷产量。本综述全面提出了最近的饮食结果和甲烷化的导电材料,并通过电子通量,有机降解和微生物相互作用方面来总结重要结果。导电材料通过作为E-菌毛和电子受体之间的E-Pili或电子导管替代来改善饮食和甲状腺发生。导电材料的其他效果如氧化还原潜力的变化也可能是刺激的重要因素。基材的类型和有机加载速率影响导电材料的饮食和刺激作用。可以参与饮食的Geobacter在用非乙醇底物培养的厌氧系统中富含富集,表明存在具有饮食能力的其他同步。诸如法定感测的通信系统的耦合可能是实现生物膜或颗粒的形成良好的策略,富含能够饮食的语言伙伴。

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