地杆菌
产甲烷
甲烷八叠球菌
甲烷菌
互惠主义(生物学)
基因组
电子转移
甲烷
生物
古细菌
硫化地杆菌
厚壁菌
产酸作用
生物膜
化学
厌氧消化
生态学
细菌
生物化学
遗传学
基因
有机化学
16S核糖体RNA
作者
Yuqing Yan,Jiayao Zhang,Lili Tian,Xuejun Yan,Lin Du,Aaron Leininger,Mou Zhang,Nan Li,Zhiyong Jason Ren,Xin Wang
出处
期刊:Water Research
[Elsevier BV]
日期:2023-03-23
卷期号:235: 119911-119911
被引量:89
标识
DOI:10.1016/j.watres.2023.119911
摘要
Direct interspecies electron transfer (DIET) has been demonstrated to be an efficient type of mutualism in methanogenesis. However, few studies have reported its presence in mixed microbial communities and its trigger mechanism in the natural environment and engineered systems. Here, we reported DIET-like mutualism of Geobacter and methanogens in the planktonic microbiome for the first time in anaerobic electrochemical digestion (AED) fed with propionate, potentially triggered by excessive cathodic hydrogen (56 times higher than the lowest) under the electrochemical condition. In contrast with model prediction without DIET, the highest current density and hydrogen and methane production were concurrently observed at −0.2 V where an abundance of Geobacter (49%) and extracellular electron transfer genes were identified in the planktonic microbiome via metagenomic analysis. Metagenomic assembly genomes annotated to Geobacter anodireducens were identified alongside two methanogens, Methanothrix harundinacea and Methanosarcina mazei, which were previously identified to participate in DIET. This discovery revealed that DIET-like mutualism could be triggered without external conductive materials, highlighting its potentially ubiquitous presence. Such mutualism simultaneously boosted methane and hydrogen production, thereby demonstrating the potential of AED in engineering applications.
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