浮游植物
亚硝酸盐
硝酸盐
硝化作用
环境化学
生物地球化学循环
微生物
环境科学
海洋学
铵
氨
生态系统
氮气循环
氮气
生态学
化学
生物
营养物
细菌
生物化学
地质学
有机化学
遗传学
作者
Emily J. Zakem,Alia Al-Haj,Matthew J. Church,Gert L. van Dijken,Stephanie Dutkiewicz,Sarah Foster,Robinson W. Fulweiler,Matthew M. Mills,Michael J. Follows
标识
DOI:10.1038/s41467-018-03553-w
摘要
Abstract Microorganisms oxidize organic nitrogen to nitrate in a series of steps. Nitrite, an intermediate product, accumulates at the base of the sunlit layer in the subtropical ocean, forming a primary nitrite maximum, but can accumulate throughout the sunlit layer at higher latitudes. We model nitrifying chemoautotrophs in a marine ecosystem and demonstrate that microbial community interactions can explain the nitrite distributions. Our theoretical framework proposes that nitrite can accumulate to a higher concentration than ammonium because of differences in underlying redox chemistry and cell size between ammonia- and nitrite-oxidizing chemoautotrophs. Using ocean circulation models, we demonstrate that nitrifying microorganisms are excluded in the sunlit layer when phytoplankton are nitrogen-limited, but thrive at depth when phytoplankton become light-limited, resulting in nitrite accumulation there. However, nitrifying microorganisms may coexist in the sunlit layer when phytoplankton are iron- or light-limited (often in higher latitudes). These results improve understanding of the controls on nitrification, and provide a framework for representing chemoautotrophs and their biogeochemical effects in ocean models.
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