Microbial extracellular electron transfer (EET) drives various globally important environmental phenomena and has biotechnology applications. Diverse prokaryotes have been proposed to perform EET via surface-displayed "nanowires" composed of multi-heme cytochromes. However, the mechanism that enables only a few cytochromes to polymerize into nanowires is unclear. Here, we identify a highly conserved omcS-companion (osc) cluster that drives the formation of cytochrome OmcS nanowires in Geobacter sulfurreducens. Through a combination of genetic, biochemical, and biophysical methods, we establish that prolyl isomerase-containing chaperon OscH, channel-like OscEFG, and β-propeller-like OscD are involved in the folding, secretion, and morphology maintenance of OmcS nanowires, respectively. OscH and OscG can interact with OmcS. Furthermore, overexpression of oscG accelerates EET by overproducing nanowires in an ATP-dependent manner. Heme loading splits OscD; ÎoscD accelerates cell growth, bundles nanowires into cables. Our findings establish the mechanism and prevalence of a specialized and modular assembly system for nanowires across phylogenetically diverse species and environments.
A widespread and ancient bacterial machinery assembles cytochrome OmcS nanowires essential for extracellular electron transfer.
一种广泛存在且古老的细菌机制组装细胞色素 OmcS 纳米线,这是细胞外电子传递所必需的
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作者:Shen Cong, Salazar-Morales Aldo I, Jung Wonhyeuk, Erwin Joey, Gu Yangqi, Coelho Anthony, Gupta Kallol, Yalcin Sibel Ebru, Samatey Fadel A, Malvankar Nikhil S
| 期刊: | Cell Chemical Biology | 影响因子: | 7.200 |
| 时间: | 2025 | 起止号: | 2025 Feb 20; 32(2):239-254 |
| doi: | 10.1016/j.chembiol.2024.12.013 | 研究方向: | 细胞生物学 |
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