Institute for Extra-cutting-edge Science and Technology Avant-garde Research (X-star), Japan Agency for Marine-Earth Science and Technology (JAMSTEC), Yokosuka, Japan.
Center for Sustainable Resource Science, RIKEN, Wako, Japan.
ISME J. 2023 Jan;17(1):12-20. doi: 10.1038/s41396-022-01316-6. Epub 2022 Sep 23.
Electroautotrophic microorganisms have attracted great attention since they exhibit a new type of primary production. Here, in situ electrochemical cultivation was conducted using the naturally occurring electromotive forces at a deep-sea hydrothermal vent. The voltage and current generation originating from the resulting microbial activity was observed for 12 days of deployment, with fluctuation in response to tidal cycles. A novel bacterium belonging to the genus Thiomicrorhabdus dominated the microbial community specifically enriched on the cathode. Metagenomic analysis provided the draft genome of the bacterium and the gene repertoire indicated that the bacterium has the potential for thio-autotrophic growth, which is a typical physiological feature of the members of the genus, while the bacterium had a unique gene cluster encoding multi-heme cytochrome c proteins responsible for extracellular electron transfer. Herein, we propose this bacterium as a new species, specifically enriched during electricity generation, as 'Candidatus Thiomicrorhabdus electrophagus'. This finding suggests the natural occurrence of electrosynthetic microbial populations using the geoelectricity in deep-sea hydrothermal environments.
自电自养微生物表现出一种新型的初级生产以来,它们引起了极大的关注。在这里,利用深海热液喷口处自然产生的电动势进行了原位电化学培养。在 12 天的部署过程中观察到了由微生物活动产生的电压和电流的产生,其响应潮汐周期而波动。一种属于硫微菌属的新型细菌在阴极上特别富集的微生物群落中占主导地位。宏基因组分析提供了该细菌的基因组草图,基因谱表明该细菌具有硫自养生长的潜力,这是该属成员的典型生理特征,而该细菌具有独特的基因簇,编码负责细胞外电子传递的多血红素细胞色素 c 蛋白。在此,我们将该细菌作为一种新的物种提出,该物种在发电过程中特别富集,称为“Candidatus Thiomicrorhabdus electrophagus”。这一发现表明,在深海热液环境中,确实存在利用地球电能的电合成微生物种群。