溶解有机碳
中层带
深海
有机质
远洋带
碳循环
生物圈
环境化学
生态演替
微生物种群生物学
生态学
环境科学
半深海区
地表水
总有机碳
微生物环
化学
生物
食物网
海洋学
生态系统
地质学
细菌
底栖区
古生物学
环境工程
作者
Richard A. LaBrie,Bérangère Péquin,Nicolas Fortin St‐Gelais,Igor Yashayaev,Jennifer Cherrier,Yves Gélinas,François Guillemette,David C. Podgorski,Robert G. M. Spencer,Luc Tremblay,Roxane Maranger
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2022-07-08
卷期号:8 (27)
被引量:43
标识
DOI:10.1126/sciadv.abn0035
摘要
The microbial carbon pump (MCP) hypothesis suggests that successive transformation of labile dissolved organic carbon (DOC) by prokaryotes produces refractory DOC (RDOC) and contributes to the long-term stability of the deep ocean DOC reservoir. We tested the MCP by exposing surface water from a deep convective region of the ocean to epipelagic, mesopelagic, and bathypelagic prokaryotic communities and tracked changes in dissolved organic matter concentration, composition, and prokaryotic taxa over time. Prokaryotic taxa from the deep ocean were more efficient at consuming DOC and producing RDOC as evidenced by greater abundance of highly oxygenated molecules and fluorescent components associated with recalcitrant molecules. This first empirical evidence of the MCP in natural waters shows that carbon sequestration is more efficient in deeper waters and suggests that the higher diversity of prokaryotes from the rare biosphere holds a greater metabolic potential in creating these stable dissolved organic compounds.
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