电子受体
电子转移
细胞外
电子传输链
脱硫弧菌
化学
生物地球化学循环
硫化地杆菌
生物物理学
细菌外膜
材料科学
生物
生物化学
细菌
环境化学
基因
生物膜
光化学
有机化学
大肠杆菌
硫酸盐
遗传学
作者
Dandan Liang,Xinying Liu,Trevor L. Woodard,Dawn E. Holmes,Jessica A. Smith,Kelly P. Nevin,Yujie Feng,Derek R. Lovley
标识
DOI:10.1021/acs.est.1c04071
摘要
Microbial extracellular electron transfer plays an important role in diverse biogeochemical cycles, metal corrosion, bioelectrochemical technologies, and anaerobic digestion. Evaluation of electron uptake from pure Fe(0) and stainless steel indicated that, in contrast to previous speculation in the literature, Desulfovibrio ferrophilus and Desulfopila corrodens are not able to directly extract electrons from solid-phase electron-donating surfaces. D. ferrophilus grew with Fe(III) as the electron acceptor, but Dp. corrodens did not. D. ferrophilus reduced Fe(III) oxide occluded within porous alginate beads, suggesting that it released a soluble electron shuttle to promote Fe(III) oxide reduction. Conductive atomic force microscopy revealed that the D. ferrophilus pili are electrically conductive and the expression of a gene encoding an aromatics-rich putative pilin was upregulated during growth on Fe(III) oxide. The expression of genes for multi-heme c-type cytochromes was not upregulated during growth with Fe(III) as the electron acceptor, and genes for a porin-cytochrome conduit across the outer membrane were not apparent in the genome. The results suggest that D. ferrophilus has adopted a novel combination of strategies to enable extracellular electron transport, which may be of biogeochemical and technological significance.
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