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Nitrifier adaptation to low energy flux controls inventory of reduced nitrogen in the dark ocean

Ammonia oxidation to nitrite and its subsequent oxidation to nitrate provides energy to the two populations of nitrifying chemoautotrophs in the energy-starved dark ocean, driving a coupling between reduced inorganic nitrogen (N) pools and production of new organic carbon (C) in the dark ocean. Howe...

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Autores principales: Zhang, Yao, Qin, Wei, Hou, Lei, Zakem, Emily J., Wan, Xianhui, Zhao, Zihao, Liu, Li, Hunt, Kristopher A., Jiao, Nianzhi, Kao, Shuh-Ji, Tang, Kai, Xie, Xiabing, Shen, Jiaming, Li, Yufang, Chen, Mingming, Dai, Xiaofeng, Liu, Chang, Deng, Wenchao, Dai, Minhan, Ingalls, Anitra E., Stahl, David A., Herndl, Gerhard J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7060736/
https://www.ncbi.nlm.nih.gov/pubmed/32071230
http://dx.doi.org/10.1073/pnas.1912367117
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author Zhang, Yao
Qin, Wei
Hou, Lei
Zakem, Emily J.
Wan, Xianhui
Zhao, Zihao
Liu, Li
Hunt, Kristopher A.
Jiao, Nianzhi
Kao, Shuh-Ji
Tang, Kai
Xie, Xiabing
Shen, Jiaming
Li, Yufang
Chen, Mingming
Dai, Xiaofeng
Liu, Chang
Deng, Wenchao
Dai, Minhan
Ingalls, Anitra E.
Stahl, David A.
Herndl, Gerhard J.
author_facet Zhang, Yao
Qin, Wei
Hou, Lei
Zakem, Emily J.
Wan, Xianhui
Zhao, Zihao
Liu, Li
Hunt, Kristopher A.
Jiao, Nianzhi
Kao, Shuh-Ji
Tang, Kai
Xie, Xiabing
Shen, Jiaming
Li, Yufang
Chen, Mingming
Dai, Xiaofeng
Liu, Chang
Deng, Wenchao
Dai, Minhan
Ingalls, Anitra E.
Stahl, David A.
Herndl, Gerhard J.
author_sort Zhang, Yao
collection PubMed
description Ammonia oxidation to nitrite and its subsequent oxidation to nitrate provides energy to the two populations of nitrifying chemoautotrophs in the energy-starved dark ocean, driving a coupling between reduced inorganic nitrogen (N) pools and production of new organic carbon (C) in the dark ocean. However, the relationship between the flux of new C production and the fluxes of N of the two steps of oxidation remains unclear. Here, we show that, despite orders-of-magnitude difference in cell abundances between ammonia oxidizers and nitrite oxidizers, the two populations sustain similar bulk N-oxidation rates throughout the deep waters with similarly high affinities for ammonia and nitrite under increasing substrate limitation, thus maintaining overall homeostasis in the oceanic nitrification pathway. Our observations confirm the theoretical predictions of a redox-informed ecosystem model. Using balances from this model, we suggest that consistently low ammonia and nitrite concentrations are maintained when the two populations have similarly high substrate affinities and their loss rates are proportional to their maximum growth rates. The stoichiometric relations between the fluxes of C and N indicate a threefold to fourfold higher C-fixation efficiency per mole of N oxidized by ammonia oxidizers compared to nitrite oxidizers due to nearly identical apparent energetic requirements for C fixation of the two populations. We estimate that the rate of chemoautotrophic C fixation amounts to ∼1 × 10(13) to ∼2 × 10(13) mol of C per year globally through the flux of ∼1 × 10(14) to ∼2 × 10(14) mol of N per year of the two steps of oxidation throughout the dark ocean.
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spelling pubmed-70607362020-03-13 Nitrifier adaptation to low energy flux controls inventory of reduced nitrogen in the dark ocean Zhang, Yao Qin, Wei Hou, Lei Zakem, Emily J. Wan, Xianhui Zhao, Zihao Liu, Li Hunt, Kristopher A. Jiao, Nianzhi Kao, Shuh-Ji Tang, Kai Xie, Xiabing Shen, Jiaming Li, Yufang Chen, Mingming Dai, Xiaofeng Liu, Chang Deng, Wenchao Dai, Minhan Ingalls, Anitra E. Stahl, David A. Herndl, Gerhard J. Proc Natl Acad Sci U S A Biological Sciences Ammonia oxidation to nitrite and its subsequent oxidation to nitrate provides energy to the two populations of nitrifying chemoautotrophs in the energy-starved dark ocean, driving a coupling between reduced inorganic nitrogen (N) pools and production of new organic carbon (C) in the dark ocean. However, the relationship between the flux of new C production and the fluxes of N of the two steps of oxidation remains unclear. Here, we show that, despite orders-of-magnitude difference in cell abundances between ammonia oxidizers and nitrite oxidizers, the two populations sustain similar bulk N-oxidation rates throughout the deep waters with similarly high affinities for ammonia and nitrite under increasing substrate limitation, thus maintaining overall homeostasis in the oceanic nitrification pathway. Our observations confirm the theoretical predictions of a redox-informed ecosystem model. Using balances from this model, we suggest that consistently low ammonia and nitrite concentrations are maintained when the two populations have similarly high substrate affinities and their loss rates are proportional to their maximum growth rates. The stoichiometric relations between the fluxes of C and N indicate a threefold to fourfold higher C-fixation efficiency per mole of N oxidized by ammonia oxidizers compared to nitrite oxidizers due to nearly identical apparent energetic requirements for C fixation of the two populations. We estimate that the rate of chemoautotrophic C fixation amounts to ∼1 × 10(13) to ∼2 × 10(13) mol of C per year globally through the flux of ∼1 × 10(14) to ∼2 × 10(14) mol of N per year of the two steps of oxidation throughout the dark ocean. National Academy of Sciences 2020-03-03 2020-02-18 /pmc/articles/PMC7060736/ /pubmed/32071230 http://dx.doi.org/10.1073/pnas.1912367117 Text en Copyright © 2020 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/ https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Zhang, Yao
Qin, Wei
Hou, Lei
Zakem, Emily J.
Wan, Xianhui
Zhao, Zihao
Liu, Li
Hunt, Kristopher A.
Jiao, Nianzhi
Kao, Shuh-Ji
Tang, Kai
Xie, Xiabing
Shen, Jiaming
Li, Yufang
Chen, Mingming
Dai, Xiaofeng
Liu, Chang
Deng, Wenchao
Dai, Minhan
Ingalls, Anitra E.
Stahl, David A.
Herndl, Gerhard J.
Nitrifier adaptation to low energy flux controls inventory of reduced nitrogen in the dark ocean
title Nitrifier adaptation to low energy flux controls inventory of reduced nitrogen in the dark ocean
title_full Nitrifier adaptation to low energy flux controls inventory of reduced nitrogen in the dark ocean
title_fullStr Nitrifier adaptation to low energy flux controls inventory of reduced nitrogen in the dark ocean
title_full_unstemmed Nitrifier adaptation to low energy flux controls inventory of reduced nitrogen in the dark ocean
title_short Nitrifier adaptation to low energy flux controls inventory of reduced nitrogen in the dark ocean
title_sort nitrifier adaptation to low energy flux controls inventory of reduced nitrogen in the dark ocean
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7060736/
https://www.ncbi.nlm.nih.gov/pubmed/32071230
http://dx.doi.org/10.1073/pnas.1912367117
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