Mechanisms of magnetic sensing and regulating extracellular electron transfer of electroactive bacteria under magnetic fields

硫化地杆菌 地杆菌 电子转移 生物物理学 电子传输链 化学 细胞生物学 周质间隙 生物膜 生物化学 生物 细菌 基因 遗传学 大肠杆菌 有机化学
作者
Huihui Zhou,Xianwen Xuanyuan,Xiaowei Lv,Jing Wang,Kun Feng,Chuan Chen,Jun Ma,Defeng Xing
出处
期刊:Science of The Total Environment [Elsevier BV]
卷期号:895: 165104-165104 被引量:16
标识
DOI:10.1016/j.scitotenv.2023.165104
摘要

Electroactive bacteria can display notable plasticity in their response to magnetic field (MF), which prompted bioelectrochemical system as promising candidates for magnetic sensor applications. In this study, we explored the sensing and stimulatory effect of MF on current generation by Geobacter sulfurreducens, and elucidated the related molecular mechanism at the transcriptomic level. MF treatment significantly enhanced electricity generation and overall energy efficiency of G. sulfurreducens by 50 % and 22 %, respectively. The response of current to MFs was instantaneous and reversible. Cyclic voltammetry analysis of the anode biofilm revealed that the redox couples changed from −0.31 to −0.39 V (vs. Ag/AgCl), suggesting that MFs could alter electron transfer related components. Differential gene expression analysis further verified this hypothesis, genes associated with electron transfer were upregulated in G. sulfurreducens under MF treatment relative to the control group, specifically, genes encoding periplasmic c-type cytochromes (ppcA and ppcD), outer membrane cytochrome (omcF, omcZ, omcB), pili (pilA-C, pilM, and pilV2), and ribosome. The enhanced bacterial extracellular electron transfer process was also linked to the overexpression of the NADH dehydrogenase I subunit, the ABC transporter, transcriptional regulation, and ATP synthase. Overall, our findings shed light on the molecular mechanism underlying the effects of magnetic field stimuli on EAB and provide a theoretical basis for its further application in magnetic sensors and other biological system.
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