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Anode potential influences the structure and function of anodic electrode and electrolyte-associated microbiomes

机译:阳极电势影响阳极电极和与电解质相关的微生物群的结构和功能

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摘要

Three bioelectrochemical systems were operated with set anode potentials of +300 mV, +550 mV and +800 mV vs. Standard Hydrogen Electrode (SHE) to test the hypothesis that anode potential influences microbial diversity and is positively associated with microbial biomass and activity. Bacterial and archaeal diversity was characterized using 16 S rRNA gene amplicon sequencing, and biofilm thickness was measured as a proxy for biomass. Current production and substrate utilization patterns were used as measures of microbial activity and the mid-point potentials of putative terminal oxidases were assessed using cyclic voltammetry. All measurements were performed after 4, 16, 23, 30 and 38 days. Microbial biomass and activity differed significantly between anode potentials and were lower at the highest potential. Anodic electrode and electrolyte associated community composition was also significantly influenced by anode potential. While biofilms at +800 mV were thinner, transferred less charge and oxidized less substrate than those at lower potentials, they were also associated with putative terminal oxidases with higher mid-point potentials and generated more biomass per unit charge. This indicates that microbes at +800 mV were unable to capitalize on the potential for additional energy gain due to a lack of adaptive traits to high potential solid electron acceptors and/or sensitivity to oxidative stress.
机译:与标准氢电极(SHE)相比,在设定的阳极电位分别为+300 mV,+ 550 mV和+800 mV的条件下操作了三个生物电化学系统,以检验阳极电位影响微生物多样性并与微生物生物量和活性呈正相关的假设。使用16 S rRNA基因扩增子测序来表征细菌和古细菌的多样性,并测量生物膜厚度作为生物量的替代物。使用当前生产和底物利用模式作为微生物活性的量度,并使用循环伏安法评估推定的末端氧化酶的中点电位。在4、16、23、30和38天后进行所有测量。阳极电位之间的微生物生物量和活性差异显着,而最高电位则较低。阳极电极和电解质相关的群落组成也受到阳极电位的显着影响。尽管+800 mV的生物膜比低电位的生物膜更薄,电荷转移更少,被氧化的底物更少,但它们还与中点电位较高的推定末端氧化酶有关,每单位电荷产生更多的生物量。这表明+800 mV的微生物由于缺乏对高电位固体电子受体的适应性和/或对氧化应激的敏感性而无法利用额外的能量获取潜力。

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