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Electron Donors Supporting Growth and Electroactivity of Geobacter sulfurreducens Anode Biofilms

机译:电子供体支持还原性土壤杆菌的阳极生物膜的生长和电活性

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Geobacter bacteria efficiently oxidize acetate into electricity in bioelectrochemical systems, yet the range of fermentation products that support the growth of anode biofilms and electricity production has not been thoroughly investigated. Here, we show that Geobacter sulfurreducens oxidized formate and lactate with electrodes and Fe(III) as terminal electron acceptors, though with reduced efficiency compared to acetate. The structure of the formate and lactate biofilms increased in roughness, and the substratum coverage decreased, to alleviate the metabolic constraints derived from the assimilation of carbon from the substrates. Low levels of acetate promoted formate carbon assimilation and biofilm growth and increased the system's performance to levels comparable to those with acetate only. Lactate carbon assimilation also limited biofilm growth and led to the partial oxidization of lactate to acetate. However, lactate was fully oxidized in the presence of fumarate, which redirected carbon fluxes into the tricarboxylic acid (TCA) cycle, and by acetate-grown biofilms. These results expand the known ranges of electron donors for Geobacter -driven fuel cells and identify microbial constraints that can be targeted to develop better-performing strains and increase the performance of bioelectrochemical systems.
机译:地球细菌细菌在生物电化学系统中将乙酸有效地氧化为电能,但是,支持阳极生物膜生长和发电的各种发酵产物尚未得到彻底研究。在这里,我们表明,Geobacter硫可以还原电极和Fe(III)作为末端电子受体的甲酸和乳酸,尽管与乙酸盐相比效率有所降低。甲酸和乳酸生物膜的结构在粗糙度上增加,并且基质覆盖率降低,从而减轻了由于碳与底物同化而产生的代谢限制。低水平的乙酸盐促进了甲酸的碳同化和生物膜的生长,并使系统的性能提高到仅与乙酸盐相当的水平。乳酸碳同化作用还限制了生物膜的生长,并导致乳酸部分氧化为乙酸盐。但是,在富马酸盐的存在下,乳酸盐被完全氧化,这将碳通量重定向到三羧酸(TCA)循环中,并被乙酸盐生长的生物膜所覆盖。这些结果扩大了由地细菌驱动的燃料电池的电子供体的已知范围,并确定了可用于开发性能更好的菌株并提高生物电化学系统性能的微生物限制条件。

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