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能够进行直接种间电子转移。

Capable of Direct Interspecies Electron Transfer.

机构信息

Key Laboratory of Coastal Biology and Biological Resources Utilization, Yantai Institute of Coastal Zone Research, Chinese Academy of Sciences, Yantai 264003, China.

Laboratory for Marine Biology and Biotechnology, Pilot National Laboratory for Marine Science and Technology (Qingdao), Qingdao 266237, PR China.

出版信息

Environ Sci Technol. 2020 Dec 1;54(23):15347-15354. doi: 10.1021/acs.est.0c05525. Epub 2020 Nov 18.

Abstract

Direct interspecies electron transfer (DIET) from bacteria to methanogens is a revolutionary concept for syntrophic metabolism in methanogenic soils/sediments and anaerobic digestion. Previous studies have indicated that the potential for DIET is limited to methanogens in the , leading to the assumption that an abundance of other types of methanogens, such as species, indicates a lack of DIET. We report here on a strain of , designated strain YSL, that grows via DIET in defined cocultures with . The cocultures formed aggregates, in which cells of strain YSL and were uniformly dispersed throughout. This close association of the two species is the likely explanation for the ability of a strain of that could not express electrically conductive pili to grow in coculture with strain YSL. Granular activated carbon promoted the initial formation of the DIET-based cocultures. The discovery of DIET in , the genus of methanogens that has been the exemplar for interspecies electron transfer H, suggests that the capacity for DIET is much more broadly distributed among methanogens than previously considered. More innovative approaches to microbial isolation and characterization are needed in order to better understand how methanogenic communities function.

摘要

直接种间电子转移(DIET)从细菌到产甲烷菌是一种革命性的概念,用于产甲烷土壤/沉积物和厌氧消化中的共代谢。以前的研究表明,DIET 的潜力仅限于 中的产甲烷菌,这导致人们假设其他类型的产甲烷菌(如 )的丰度表明缺乏 DIET。我们在这里报告了一株 ,命名为 YSL 菌株,它可以通过与 的定义共培养来进行 DIET。共培养物形成了聚集体,其中 YSL 菌株和 的细胞均匀分散在其中。这两个物种的紧密联系可能是不能表达电导率菌毛的 菌株能够与 YSL 菌株在共培养中生长的原因。颗粒活性炭促进了基于 DIET 的共培养物的初始形成。在 中发现 DIET,这是种间电子转移的典范 H,这表明 DIET 的能力在产甲烷菌中的分布比以前认为的要广泛得多。需要更具创新性的微生物分离和表征方法,以便更好地了解产甲烷菌群落的功能。

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