细菌细胞结构
细菌
超极化(物理学)
多药耐受
抗生素
电生理学
生物物理学
生物
细胞
膜电位
化学
细胞生物学
微生物学
生物化学
生物膜
遗传学
神经科学
核磁共振波谱
有机化学
作者
Xin Jin,Jun Xu,Xuejing Ding,Tian Tian,Chao-Kai Tseng,Xinwei Luo,Xiaoyun Chen,Chien-Jung Lo,Mark C. Leake,Fan Bai
标识
DOI:10.1073/pnas.2208348120
摘要
As an important free energy source, the membrane voltage (Vm) regulates many essential physiological processes in bacteria. However, in comparison with eukaryotic cells, knowledge of bacterial electrophysiology is very limited. Here, we developed a set of novel genetically encoded bacterial Vm sensors which allow single-cell recording of bacterial Vm dynamics in live cells with high temporal resolution. Using these new sensors, we reveal the electrically "excitable" and "resting" states of bacterial cells dependent on their metabolic status. In the electrically excitable state, frequent hyperpolarization spikes in bacterial Vm are observed, which are regulated by Na+/K+ ratio of the medium and facilitate increased antibiotic tolerance. In the electrically resting state, bacterial Vm displays significant cell-to-cell heterogeneity and is linked to the cell fate after antibiotic treatment. Our findings demonstrate the potential of our newly developed voltage sensors to reveal the underpinning connections between bacterial Vm and antibiotic tolerance.
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