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Soil CO(2) and N(2)O emissions and microbial abundances altered by temperature rise and nitrogen addition in active-layer soils of permafrost peatland

Changes in soil CO(2) and N(2)O emissions due to climate change and nitrogen input will result in increased levels of atmospheric CO(2) and N(2)O, thereby feeding back into Earth’s climate. Understanding the responses of soil carbon and nitrogen emissions mediated by microbe from permafrost peatland...

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Autores principales: Song, Yanyu, Cheng, Xiaofeng, Song, Changchun, Li, Mengting, Gao, Siqi, Liu, Zhendi, Gao, Jinli, Wang, Xianwei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9792967/
https://www.ncbi.nlm.nih.gov/pubmed/36583043
http://dx.doi.org/10.3389/fmicb.2022.1093487
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author Song, Yanyu
Cheng, Xiaofeng
Song, Changchun
Li, Mengting
Gao, Siqi
Liu, Zhendi
Gao, Jinli
Wang, Xianwei
author_facet Song, Yanyu
Cheng, Xiaofeng
Song, Changchun
Li, Mengting
Gao, Siqi
Liu, Zhendi
Gao, Jinli
Wang, Xianwei
author_sort Song, Yanyu
collection PubMed
description Changes in soil CO(2) and N(2)O emissions due to climate change and nitrogen input will result in increased levels of atmospheric CO(2) and N(2)O, thereby feeding back into Earth’s climate. Understanding the responses of soil carbon and nitrogen emissions mediated by microbe from permafrost peatland to temperature rising is important for modeling the regional carbon and nitrogen balance. This study conducted a laboratory incubation experiment at 15 and 20°C to observe the impact of increasing temperature on soil CO(2) and N(2)O emissions and soil microbial abundances in permafrost peatland. An NH(4)NO(3) solution was added to soil at a concentration of 50 mg N kg(−1) to investigate the effect of nitrogen addition. The results indicated that elevated temperature, available nitrogen, and their combined effects significantly increased CO(2) and N(2)O emissions in permafrost peatland. However, the temperature sensitivities of soil CO(2) and N(2)O emissions were not affected by nitrogen addition. Warming significantly increased the abundances of methanogens, methanotrophs, and nirK-type denitrifiers, and the contents of soil dissolved organic carbon (DOC) and ammonia nitrogen, whereas nirS-type denitrifiers, β-1,4-glucosidase (βG), cellobiohydrolase (CBH), and acid phosphatase (AP) activities significantly decreased. Nitrogen addition significantly increased soil nirS-type denitrifiers abundances, β-1,4-N- acetylglucosaminidase (NAG) activities, and ammonia nitrogen and nitrate nitrogen contents, but significantly reduced bacterial, methanogen abundances, CBH, and AP activities. A rising temperature and nitrogen addition had synergistic effects on soil fungal and methanotroph abundances, NAG activities, and DOC and DON contents. Soil CO(2) emissions showed a significantly positive correlation with soil fungal abundances, NAG activities, and ammonia nitrogen and nitrate nitrogen contents. Soil N(2)O emissions showed positive correlations with soil fungal, methanotroph, and nirK-type denitrifiers abundances, and DOC, ammonia nitrogen, and nitrate contents. These results demonstrate the importance of soil microbes, labile carbon, and nitrogen for regulating soil carbon and nitrogen emissions. The results of this study can assist simulating the effects of global climate change on carbon and nitrogen cycling in permafrost peatlands.
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spelling pubmed-97929672022-12-28 Soil CO(2) and N(2)O emissions and microbial abundances altered by temperature rise and nitrogen addition in active-layer soils of permafrost peatland Song, Yanyu Cheng, Xiaofeng Song, Changchun Li, Mengting Gao, Siqi Liu, Zhendi Gao, Jinli Wang, Xianwei Front Microbiol Microbiology Changes in soil CO(2) and N(2)O emissions due to climate change and nitrogen input will result in increased levels of atmospheric CO(2) and N(2)O, thereby feeding back into Earth’s climate. Understanding the responses of soil carbon and nitrogen emissions mediated by microbe from permafrost peatland to temperature rising is important for modeling the regional carbon and nitrogen balance. This study conducted a laboratory incubation experiment at 15 and 20°C to observe the impact of increasing temperature on soil CO(2) and N(2)O emissions and soil microbial abundances in permafrost peatland. An NH(4)NO(3) solution was added to soil at a concentration of 50 mg N kg(−1) to investigate the effect of nitrogen addition. The results indicated that elevated temperature, available nitrogen, and their combined effects significantly increased CO(2) and N(2)O emissions in permafrost peatland. However, the temperature sensitivities of soil CO(2) and N(2)O emissions were not affected by nitrogen addition. Warming significantly increased the abundances of methanogens, methanotrophs, and nirK-type denitrifiers, and the contents of soil dissolved organic carbon (DOC) and ammonia nitrogen, whereas nirS-type denitrifiers, β-1,4-glucosidase (βG), cellobiohydrolase (CBH), and acid phosphatase (AP) activities significantly decreased. Nitrogen addition significantly increased soil nirS-type denitrifiers abundances, β-1,4-N- acetylglucosaminidase (NAG) activities, and ammonia nitrogen and nitrate nitrogen contents, but significantly reduced bacterial, methanogen abundances, CBH, and AP activities. A rising temperature and nitrogen addition had synergistic effects on soil fungal and methanotroph abundances, NAG activities, and DOC and DON contents. Soil CO(2) emissions showed a significantly positive correlation with soil fungal abundances, NAG activities, and ammonia nitrogen and nitrate nitrogen contents. Soil N(2)O emissions showed positive correlations with soil fungal, methanotroph, and nirK-type denitrifiers abundances, and DOC, ammonia nitrogen, and nitrate contents. These results demonstrate the importance of soil microbes, labile carbon, and nitrogen for regulating soil carbon and nitrogen emissions. The results of this study can assist simulating the effects of global climate change on carbon and nitrogen cycling in permafrost peatlands. Frontiers Media S.A. 2022-12-13 /pmc/articles/PMC9792967/ /pubmed/36583043 http://dx.doi.org/10.3389/fmicb.2022.1093487 Text en Copyright © 2022 Song, Cheng, Song, Li, Gao, Liu, Gao and Wang. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Microbiology
Song, Yanyu
Cheng, Xiaofeng
Song, Changchun
Li, Mengting
Gao, Siqi
Liu, Zhendi
Gao, Jinli
Wang, Xianwei
Soil CO(2) and N(2)O emissions and microbial abundances altered by temperature rise and nitrogen addition in active-layer soils of permafrost peatland
title Soil CO(2) and N(2)O emissions and microbial abundances altered by temperature rise and nitrogen addition in active-layer soils of permafrost peatland
title_full Soil CO(2) and N(2)O emissions and microbial abundances altered by temperature rise and nitrogen addition in active-layer soils of permafrost peatland
title_fullStr Soil CO(2) and N(2)O emissions and microbial abundances altered by temperature rise and nitrogen addition in active-layer soils of permafrost peatland
title_full_unstemmed Soil CO(2) and N(2)O emissions and microbial abundances altered by temperature rise and nitrogen addition in active-layer soils of permafrost peatland
title_short Soil CO(2) and N(2)O emissions and microbial abundances altered by temperature rise and nitrogen addition in active-layer soils of permafrost peatland
title_sort soil co(2) and n(2)o emissions and microbial abundances altered by temperature rise and nitrogen addition in active-layer soils of permafrost peatland
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9792967/
https://www.ncbi.nlm.nih.gov/pubmed/36583043
http://dx.doi.org/10.3389/fmicb.2022.1093487
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