刺激
柠檬酸循环
细菌
生物物理学
新陈代谢
细胞内
分解代谢
谷氨酰胺
电子传输链
细胞外
糖酵解
细胞生物学
大肠杆菌
神经科学
生物
化学
生物化学
氨基酸
遗传学
基因
作者
Zimeng Zhang,Zhiling Li,Xueqi Chen,Jun Nan,Yunxia Zu,Fan Chen,Bin Liang,Aijie Wang
标识
DOI:10.1021/acsestengg.3c00472
摘要
Understanding how nonelectroactive bacteria (non-EAB) perceive and respond to electro-stimulation is pivotal for optimizing electro-biostimulation systems. Here, Escherichia coli, a representative non-EAB, was employed to investigate its electrical response behavior and molecular regulatory mechanism across a spectrum of current densities. Accelerated bacterial growth was observed at current densities ranging from 2 to 10 A m–2 with a maximum growth rate of 1.89 h–1 at 10 A m–2. Moderate electrostimulation (10 A m–2) promoted NADH regeneration and adenosine triphosphate synthesis by modulating intracellular glycolytic flux, tricarboxylic acid (TCA) cycle and electron transport chain (ETC), while cells became inactivated at 20 A m–2 mainly due to the overall inhibition of the TCA cycle and domino collapse of ETC. The presence of reductive stress caused by electro-stimulation not only promoted NADPH and glutamine consumption but also impacted the material exchange fluxes by altering outer membrane proteins (OMPs) from β-fold to β-corner. Additionally, extracellular polymeric substances served as the electron transient medium to sense electro-stimulation. The study revealed that non-EAB possessed approaches different from EET to sense and respond to electro-stimulation. The improved comprehension of regulatory mechanisms governing catabolic pathways under electro-stimulation holds promise for developing more efficient electro-biostimulation systems, with implications for environmental biotechnology applications.
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