格式化
模块化设计
微生物
化学
电解
微生物燃料电池
聚羟基丁酸酯
碳纤维
生化工程
电化学
纳米技术
组合化学
代谢途径
细菌
工作(物理)
工业生物技术
原材料
合成生物学
微生物电解槽
级联
碳源
生物反应器
材料科学
代谢工程
生物相容性材料
甲酸脱氢酶
微生物代谢
生物系统
催化作用
生物电化学
作者
Ji-Hoon Choi,Nicolas E. Grandel,Deepika Awasthi,Geonhui Lee,Abhishant Nigam,Yu Shan,Nathan E. Soland,Maria Fonseca Guzman,Hye-jin Jo,Diep N. Pham,Peidong Yang,Blake A. Simmons
标识
DOI:10.1073/pnas.2608267123
摘要
Direct electrochemical CO 2 reduction is currently limited to a narrow range of multicarbon products due to limited multicarbon pathways on Cu surfaces. Biochemical methods, by contrast, are often slow due to the slow rate of gas–liquid mass transfer to microbial cells. To overcome the limitations of the individual processes, integrating electrochemical systems with biosynthetic processes has become a promising approach. However, only a narrow range of microbial strains has been explored in these combined systems. Here, we introduce a modular abiotic–biotic platform that allows electrochemically produced formate (eFormate) to be supplied independently to various microbial systems. A concentrated formate solution (0.87 M) was produced within 4 h using a SnO 2 catalyst and subsequently converted into a biocompatible carbon feedstock by adjusting the pH. Based on earlier reports, we identified and evaluated 13 microbial strains known to grow on formate, 10 of which exhibited robust growth in the prepared formate solution and successfully secreted multicarbon products and important metabolic markers like acetate, ethanol, lactate, pyruvate, and polyhydroxybutyrate (PHB). This work establishes a proof of concept for a broadly applicable abiotic–biotic platform that expands the microbial design space by coupling CO 2 electrolysis with carbon upgrading.
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