合成生物学
生化工程
氧化剂
生物
非生物成分
固碳
微生物
纳米技术
计算生物学
光合作用
化学
生态学
细菌
材料科学
生物化学
遗传学
有机化学
工程类
作者
Yongchao Xie,Sevcan Erşan,Xun Guan,Jingyu Wang,Jihui Sha,Shuangning Xu,James A. Wohlschlegel,Junyoung O. Park,Chong Liu
标识
DOI:10.26434/chemrxiv-2023-3fjl6
摘要
A hybrid approach combining water-splitting electrochemistry and H2-oxidizing, CO2-fixing microorganisms offers a viable solution of producing value-added chemicals from sunlight, water, and air. The classic wisdom without thorough examination to date assumes that the electrochemistry in such a H2-mediated process is innocent of altering microbial behavior. Here we report unexpected metabolic rewiring induced by water-splitting electrochemistry in H2-oxidizing acetogenic bacterium Sporomusa ovata that challenges such a classic view. We found that the planktonic S. ovata is more efficient in utilizing reducing equivalent for ATP generation and hence CO2 fixation in the materials-biology hybrids, supported by our metabolomic and proteomic studies. These observations unravel previously underappreciated materials’ impact on microbial metabolism in seemingly simply H2-mediated charge transfer between biotic and abiotic components. Such a deeper understanding at the materials-biology interface will foster advanced design of hybrid systems for sustainable chemical transformation.
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