古细菌
甲烷厌氧氧化
生态学
微生物
生物
盐度
生态系统
细菌
甲烷
大气甲烷
丰度(生态学)
微生物生态学
微生物种群生物学
生物地理学
环境科学
硝酸盐
环境化学
湿地
生物地球化学循环
极端微生物
生态型
作者
Shuai Liu,Jiaxin Cheng,Hongyu Mu,Yining Jiang,Shaoping Kuang,Sai Xu,Hui Chen,Jianhua Guo
标识
DOI:10.1016/j.wroa.2025.100450
摘要
• Distinct n-DAMO biogeography between the Yellow River and Sea. • Divergent roles of n-DAMO bacteria and archaea in CH4 oxidation between ecosystems • Yellow Sea shows higher n-DAMO archaea abundance and nitrate-DAMO rates. • Salinity drives spatial variation in n-DAMO microbial communities. Nitrite/nitrate-dependent anaerobic methane oxidation (n-DAMO) processes represent a critical methane sink to mitigate greenhouse gas emissions. However, it remains unclear whether there are ecological and interactional differences between n-DAMO bacteria and n-DAMO archaea in freshwater and marine environments. This study investigated n-DAMO microorganisms in China’s Yellow River (freshwater) and Yellow Sea (marine). We used stable isotope tracers and molecular techniques to analyze their distribution and activity. Active n-DAMO processes were detected in sediments from both ecosystems. Specifically, the nitrite-DAMO process was more predominant for methane oxidation in the Yellow River, while the nitrate-DAMO process was more significant in the Yellow Sea, with nitrate availability (NO 3 − -N) identified as a key influencing factor. The mcr A gene abundance of n-DAMO archaea was 19.9-fold higher in the Yellow Sea (average 2.94 × 10 8 copies g −1 dry weight) than in the Yellow River ( p < 0.05). Conversely, the pmo A genes of n-DAMO bacteria in Yellow River sediments showed marginally lower abundance compared to Yellow Sea sediments. n-DAMO microbial communities in the two ecosystems demonstrated distinct divergence, with salinity identified as the principal environmental driver, explaining 28.03% bacterial and 26.19% archaeal variance (RDA, p < 0.05). Phylogenetic niche partitioning was observed: Group A lineage of n-DAMO bacteria exclusively dominated Yellow River sediments (100% relative abundance), whereas Group B prevailed in Yellow Sea ecosystems, likely attributed to osmo-tolerance adaptations. These findings demonstrated biogeochemical conditions, especially salinity and substrate availability, determine the niche and functional differentiation of n-DAMO microbes.
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