Evidence for nontraditionalmcr-containing archaea contributing to biological methanogenesis in geothermal springs

产甲烷 古细菌 生物 基因组 广域古菌界 嗜热菌 微生物生态学 生态学 细菌 甲烷 生物化学 基因 遗传学
作者
Jiajia Wang,Yan-Ni Qu,Paul N. Evans,Qinghai Guo,Fengwu Zhou,Ming Nie,Qusheng Jin,Yan Zhang,Xiangmei Zhai,Ming Zhou,Zhiguo Yu,Qing‐Long Fu,Yuan-Guo Xie,Brian P. Hedlund,Wen‐Jun Li,Zheng-Shuang Hua,Zimeng Wang,Yanxin Wang
出处
期刊:Science Advances [American Association for the Advancement of Science]
卷期号:9 (26) 被引量:5
标识
DOI:10.1126/sciadv.adg6004
摘要

Recent discoveries of methyl-coenzyme M reductase–encoding genes ( mcr ) in uncultured archaea beyond traditional euryarchaeotal methanogens have reshaped our view of methanogenesis. However, whether any of these nontraditional archaea perform methanogenesis remains elusive. Here, we report field and microcosm experiments based on 13 C-tracer labeling and genome-resolved metagenomics and metatranscriptomics, revealing that nontraditional archaea are predominant active methane producers in two geothermal springs. Archaeoglobales performed methanogenesis from methanol and may exhibit adaptability in using methylotrophic and hydrogenotrophic pathways based on temperature/substrate availability. A five-year field survey found Candidatus Nezhaarchaeota to be the predominant mcr -containing archaea inhabiting the springs; genomic inference and mcr expression under methanogenic conditions strongly suggested that this lineage mediated hydrogenotrophic methanogenesis in situ. Methanogenesis was temperature-sensitive , with a preference for methylotrophic over hydrogenotrophic pathways when incubation temperatures increased from 65° to 75°C. This study demonstrates an anoxic ecosystem wherein methanogenesis is primarily driven by archaea beyond known methanogens, highlighting diverse nontraditional mcr -containing archaea as previously unrecognized methane sources.
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