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Warming-induced permafrost thaw exacerbates tundra soil carbon decomposition mediated by microbial community

BACKGROUND: It is well-known that global warming has effects on high-latitude tundra underlain with permafrost. This leads to a severe concern that decomposition of soil organic carbon (SOC) previously stored in this region, which accounts for about 50% of the world’s SOC storage, will cause positiv...

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Autores principales: Feng, Jiajie, Wang, Cong, Lei, Jiesi, Yang, Yunfeng, Yan, Qingyun, Zhou, Xishu, Tao, Xuanyu, Ning, Daliang, Yuan, Mengting M., Qin, Yujia, Shi, Zhou J., Guo, Xue, He, Zhili, Van Nostrand, Joy D., Wu, Liyou, Bracho-Garillo, Rosvel G., Penton, C. Ryan, Cole, James R., Konstantinidis, Konstantinos T., Luo, Yiqi, Schuur, Edward A. G., Tiedje, James M., Zhou, Jizhong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6969446/
https://www.ncbi.nlm.nih.gov/pubmed/31952472
http://dx.doi.org/10.1186/s40168-019-0778-3
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author Feng, Jiajie
Wang, Cong
Lei, Jiesi
Yang, Yunfeng
Yan, Qingyun
Zhou, Xishu
Tao, Xuanyu
Ning, Daliang
Yuan, Mengting M.
Qin, Yujia
Shi, Zhou J.
Guo, Xue
He, Zhili
Van Nostrand, Joy D.
Wu, Liyou
Bracho-Garillo, Rosvel G.
Penton, C. Ryan
Cole, James R.
Konstantinidis, Konstantinos T.
Luo, Yiqi
Schuur, Edward A. G.
Tiedje, James M.
Zhou, Jizhong
author_facet Feng, Jiajie
Wang, Cong
Lei, Jiesi
Yang, Yunfeng
Yan, Qingyun
Zhou, Xishu
Tao, Xuanyu
Ning, Daliang
Yuan, Mengting M.
Qin, Yujia
Shi, Zhou J.
Guo, Xue
He, Zhili
Van Nostrand, Joy D.
Wu, Liyou
Bracho-Garillo, Rosvel G.
Penton, C. Ryan
Cole, James R.
Konstantinidis, Konstantinos T.
Luo, Yiqi
Schuur, Edward A. G.
Tiedje, James M.
Zhou, Jizhong
author_sort Feng, Jiajie
collection PubMed
description BACKGROUND: It is well-known that global warming has effects on high-latitude tundra underlain with permafrost. This leads to a severe concern that decomposition of soil organic carbon (SOC) previously stored in this region, which accounts for about 50% of the world’s SOC storage, will cause positive feedback that accelerates climate warming. We have previously shown that short-term warming (1.5 years) stimulates rapid, microbe-mediated decomposition of tundra soil carbon without affecting the composition of the soil microbial community (based on the depth of 42684 sequence reads of 16S rRNA gene amplicons per 3 g of soil sample). RESULTS: We show that longer-term (5 years) experimental winter warming at the same site altered microbial communities (p < 0.040). Thaw depth correlated the strongest with community assembly and interaction networks, implying that warming-accelerated tundra thaw fundamentally restructured the microbial communities. Both carbon decomposition and methanogenesis genes increased in relative abundance under warming, and their functional structures strongly correlated (R(2) > 0.725, p < 0.001) with ecosystem respiration or CH(4) flux. CONCLUSIONS: Our results demonstrate that microbial responses associated with carbon cycling could lead to positive feedbacks that accelerate SOC decomposition in tundra regions, which is alarming because SOC loss is unlikely to subside owing to changes in microbial community composition.
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spelling pubmed-69694462020-01-27 Warming-induced permafrost thaw exacerbates tundra soil carbon decomposition mediated by microbial community Feng, Jiajie Wang, Cong Lei, Jiesi Yang, Yunfeng Yan, Qingyun Zhou, Xishu Tao, Xuanyu Ning, Daliang Yuan, Mengting M. Qin, Yujia Shi, Zhou J. Guo, Xue He, Zhili Van Nostrand, Joy D. Wu, Liyou Bracho-Garillo, Rosvel G. Penton, C. Ryan Cole, James R. Konstantinidis, Konstantinos T. Luo, Yiqi Schuur, Edward A. G. Tiedje, James M. Zhou, Jizhong Microbiome Research BACKGROUND: It is well-known that global warming has effects on high-latitude tundra underlain with permafrost. This leads to a severe concern that decomposition of soil organic carbon (SOC) previously stored in this region, which accounts for about 50% of the world’s SOC storage, will cause positive feedback that accelerates climate warming. We have previously shown that short-term warming (1.5 years) stimulates rapid, microbe-mediated decomposition of tundra soil carbon without affecting the composition of the soil microbial community (based on the depth of 42684 sequence reads of 16S rRNA gene amplicons per 3 g of soil sample). RESULTS: We show that longer-term (5 years) experimental winter warming at the same site altered microbial communities (p < 0.040). Thaw depth correlated the strongest with community assembly and interaction networks, implying that warming-accelerated tundra thaw fundamentally restructured the microbial communities. Both carbon decomposition and methanogenesis genes increased in relative abundance under warming, and their functional structures strongly correlated (R(2) > 0.725, p < 0.001) with ecosystem respiration or CH(4) flux. CONCLUSIONS: Our results demonstrate that microbial responses associated with carbon cycling could lead to positive feedbacks that accelerate SOC decomposition in tundra regions, which is alarming because SOC loss is unlikely to subside owing to changes in microbial community composition. BioMed Central 2020-01-17 /pmc/articles/PMC6969446/ /pubmed/31952472 http://dx.doi.org/10.1186/s40168-019-0778-3 Text en © The Author(s). 2020 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research
Feng, Jiajie
Wang, Cong
Lei, Jiesi
Yang, Yunfeng
Yan, Qingyun
Zhou, Xishu
Tao, Xuanyu
Ning, Daliang
Yuan, Mengting M.
Qin, Yujia
Shi, Zhou J.
Guo, Xue
He, Zhili
Van Nostrand, Joy D.
Wu, Liyou
Bracho-Garillo, Rosvel G.
Penton, C. Ryan
Cole, James R.
Konstantinidis, Konstantinos T.
Luo, Yiqi
Schuur, Edward A. G.
Tiedje, James M.
Zhou, Jizhong
Warming-induced permafrost thaw exacerbates tundra soil carbon decomposition mediated by microbial community
title Warming-induced permafrost thaw exacerbates tundra soil carbon decomposition mediated by microbial community
title_full Warming-induced permafrost thaw exacerbates tundra soil carbon decomposition mediated by microbial community
title_fullStr Warming-induced permafrost thaw exacerbates tundra soil carbon decomposition mediated by microbial community
title_full_unstemmed Warming-induced permafrost thaw exacerbates tundra soil carbon decomposition mediated by microbial community
title_short Warming-induced permafrost thaw exacerbates tundra soil carbon decomposition mediated by microbial community
title_sort warming-induced permafrost thaw exacerbates tundra soil carbon decomposition mediated by microbial community
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6969446/
https://www.ncbi.nlm.nih.gov/pubmed/31952472
http://dx.doi.org/10.1186/s40168-019-0778-3
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