电子转移
化学
生物膜
生化工程
化学工程
纳米技术
碳纤维
生物量(生态学)
合成生物学
微生物
电子流
材料科学
代谢工程
自养
生物电化学
作者
Jing Zhang,He Liu,He Liu,Qihao Cao,Chao Zhang,Min Zhang,Min-Hua Cui,Yan Zhang,Bo Fu,Hongbo Liu,Hongbo Liu,Jing Zhang,He Liu,Qihao Cao,Chao Zhang,Min Zhang,Min-Hua Cui,Yan Zhang,Bo Fu,Hongbo Liu
标识
DOI:10.1002/advs.202513340
摘要
Abstract Precise manipulation of interspecies electron transfer (IET) is critical for advancing microbial electrosynthesis (MES) toward efficient CO 2 bioconversion. Here, defined synthetic consortia are constructed by pairing Shewanella oneidensis MR‐1, a model bidirectional electroactive bacterium, with Clostridium aceticum (electroactive acetogen) or Acetobacterium woodii (nonelectroactive acetogen), mimicking functional guilds commonly observed in natural MES communities. Co‐cultivation markedly boosts acetate production by up to 88%, achieving 1.16 ± 0.01 and 1.05 ± 0.01 g L −1 , with carbon conversion efficiencies exceeding 84%. Comprehensive electrochemical, spectroscopic, and biomass analyses reveal distinct spatial electron transfer modes: DIET via cytochrome c and riboflavin dominates at the biofilm‐electrode interface in S. oneidensis–C. aceticum consortia, whereas S. oneidensis–A. woodii consortia prefer H 2 /formate‐mediated IET in the planktonic phase. This metabolic stratification enables S. oneidensis to function as an “ecosystem engineer,” orchestrating electron flow to optimize CO 2 ‐to‐acetate conversion across biofilm and suspension niches. The proposed synthetic ecology strategy provides a blueprint for designing high‐efficiency MES consortia, paving new avenues for sustainable carbon capture and bio‐based chemical production.
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