Microbial temperature sensitivity and biomass change explain soil carbon loss with warming

被引:339
作者
Walker, Tom W. N. [1 ,2 ]
Kaiser, Christina [1 ,3 ]
Strasser, Florian [4 ]
Herbold, Craig W. [4 ]
Leblans, Niki I. W. [5 ,6 ]
Woebken, Dagmar [4 ]
Janssens, Ivan A. [5 ]
Sigurdsson, Bjarni D. [6 ]
Richter, Andreas [1 ,3 ]
机构
[1] Univ Vienna, Dept Microbiol & Ecosyst Sci, Div Terr Ecosyst Res, Vienna, Austria
[2] Univ Lausanne, Dept Ecol & Evolut, Lausanne, Switzerland
[3] Inst Appl Syst Anal, Laxenburg, Austria
[4] Univ Vienna, Dept Microbiol & Ecosyst Sci, Div Microbial Ecol, Vienna, Austria
[5] Univ Antwerp, Dept Biol, Antwerp, Belgium
[6] Agr Univ Iceland, Hvanneyri, Borgarnes, Iceland
基金
欧洲研究理事会;
关键词
USE EFFICIENCY; CLIMATE-CHANGE; DECOMPOSER COMMUNITIES; THERMAL-ACCLIMATION; CYCLE FEEDBACKS; RESPIRATION; PHYSIOLOGY; DYNAMICS; PATTERNS; SYSTEM;
D O I
10.1038/s41558-018-0259-x
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Soil microorganisms control carbon losses from soils to the atmosphere(1-3), yet their responses to climate warming are often short-lived and unpredictable (4-7). Two mechanisms, microbial acclimation and substrate depletion, have been proposed to explain temporary warming effects on soil microbial activity(8-10). However, empirical support for either mechanism is unconvincing. Here we used geothermal temperature gradients (>50 years of field warming)(11) and a short-term experiment to show that microbial activity (gross rates of growth, turnover, respiration and carbon uptake) is intrinsically temperature sensitive and does not acclimate to warming (+6 degrees C) over weeks or decades. Permanently accelerated microbial activity caused carbon loss from soil. However, soil carbon loss was temporary because substrate depletion reduced microbial biomass and constrained the influence of microbes over the ecosystem. A microbial biogeochemical model(12-14) showed that these observations are reproducible through a modest, but permanent, acceleration in microbial physiology. These findings reveal a mechanism by which intrinsic microbial temperature sensitivity and substrate depletion together dictate warming effects on soil carbon loss via their control over microbial biomass. We thus provide a framework for interpreting the links between temperature, microbial activity and soil carbon loss on timescales relevant to Earth's climate system.
引用
收藏
页码:885 / +
页数:7
相关论文
共 33 条
[1]   Soil-carbon response to warming dependent on microbial physiology [J].
Allison, Steven D. ;
Wallenstein, Matthew D. ;
Bradford, Mark A. .
NATURE GEOSCIENCE, 2010, 3 (05) :336-340
[2]   Microbial contributions to climate change through carbon cycle feedbacks [J].
Bardgett, Richard D. ;
Freeman, Chris ;
Ostle, Nicholas J. .
ISME JOURNAL, 2008, 2 (08) :805-814
[3]   Improved software detection and extraction of ITS1 and ITS2 from ribosomal ITS sequences of fungi and other eukaryotes for analysis of environmental sequencing data [J].
Bengtsson-Palme, Johan ;
Ryberg, Martin ;
Hartmann, Martin ;
Branco, Sara ;
Wang, Zheng ;
Godhe, Anna ;
De Wit, Pierre ;
Sanchez-Garcia, Marisol ;
Ebersberger, Ingo ;
de Sousa, Filipe ;
Amend, Anthony S. ;
Jumpponen, Ari ;
Unterseher, Martin ;
Kristiansson, Erik ;
Abarenkov, Kessy ;
Bertrand, Yann J. K. ;
Sanli, Kemal ;
Eriksson, K. Martin ;
Vik, Unni ;
Veldre, Vilmar ;
Nilsson, R. Henrik .
METHODS IN ECOLOGY AND EVOLUTION, 2013, 4 (10) :914-919
[4]   Temperature sensitivity and enzymatic mechanisms of soil organic matter decomposition along an altitudinal gradient on Mount Kilimanjaro [J].
Blagodatskaya, Evgenia ;
Blagodatsky, Sergey ;
Khomyakov, Nikita ;
Myachina, Olga ;
Kuzyakov, Yakov .
SCIENTIFIC REPORTS, 2016, 6
[5]  
Bradford MA, 2016, NAT CLIM CHANGE, V6, P751, DOI [10.1038/nclimate3071, 10.1038/NCLIMATE3071]
[6]   Thermal adaptation of decomposer communities in warming soils [J].
Bradford, Mark A. .
FRONTIERS IN MICROBIOLOGY, 2013, 4
[7]   Temperature response of soil respiration largely unaltered with experimental warming [J].
Carey, Joanna C. ;
Tang, Jianwu ;
Templer, Pamela H. ;
Kroeger, Kevin D. ;
Crowther, Thomas W. ;
Burton, Andrew J. ;
Dukes, Jeffrey S. ;
Emmett, Bridget ;
Frey, Serita D. ;
Heskel, Mary A. ;
Jiang, Lifen ;
Machmuller, Megan B. ;
Mohan, Jacqueline ;
Panetta, Anne Marie ;
Reich, Peter B. ;
Reinsch, Sabine ;
Wang, Xin ;
Allison, Steven D. ;
Bamminger, Chris ;
Bridgham, Scott ;
Collins, Scott L. ;
de Dato, Giovanbattista ;
Eddy, William C. ;
Enquist, Brian J. ;
Estiarte, Marc ;
Harte, John ;
Henderson, Amanda ;
Johnson, Bart R. ;
Larsen, Klaus Steenberg ;
Luo, Yiqi ;
Marhan, Sven ;
Melillo, Jerry M. ;
Peuelas, Josep ;
Pfeifer-Meister, Laurel ;
Poll, Christian ;
Rastetter, Edward ;
Reinmann, Andrew B. ;
Reynolds, Lorien L. ;
Schmidt, Inger K. ;
Shaver, Gaius R. ;
Strong, Aaron L. ;
Suseela, Vidya ;
Tietema, Albert .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2016, 113 (48) :13797-13802
[8]  
Carini P., 2016, ECOL LETT, V53
[9]   Quantifying global soil carbon losses in response to warming [J].
Crowther, T. W. ;
Todd-Brown, K. E. O. ;
Rowe, C. W. ;
Wieder, W. R. ;
Carey, J. C. ;
Machmuller, M. B. ;
Snoek, B. L. ;
Fang, S. ;
Zhou, G. ;
Allison, S. D. ;
Blair, J. M. ;
Bridgham, S. D. ;
Burton, A. J. ;
Carrillo, Y. ;
Reich, P. B. ;
Clark, J. S. ;
Classen, A. T. ;
Dijkstra, F. A. ;
Elberling, B. ;
Emmett, B. A. ;
Estiarte, M. ;
Frey, S. D. ;
Guo, J. ;
Harte, J. ;
Jiang, L. ;
Johnson, B. R. ;
Kroel-Dulay, G. ;
Larsen, K. S. ;
Laudon, H. ;
Lavallee, J. M. ;
Luo, Y. ;
Lupascu, M. ;
Ma, L. N. ;
Marhan, S. ;
Michelsen, A. ;
Mohan, J. ;
Niu, S. ;
Pendall, E. ;
Penuelas, J. ;
Pfeifer-Meister, L. ;
Poll, C. ;
Reinsch, S. ;
Reynolds, L. L. ;
Schmidt, I. K. ;
Sistla, S. ;
Sokol, N. W. ;
Templer, P. H. ;
Treseder, K. K. ;
Welker, J. M. ;
Bradford, M. A. .
NATURE, 2016, 540 (7631) :104-+
[10]   Thermal acclimation in widespread heterotrophic soil microbes [J].
Crowther, Thomas W. ;
Bradford, Mark A. .
ECOLOGY LETTERS, 2013, 16 (04) :469-477