Literature DB >> 27905442

Quantifying global soil carbon losses in response to warming.

T W Crowther1,2, K E O Todd-Brown3, C W Rowe2, W R Wieder4,5, J C Carey6, M B Machmuller7, B L Snoek1,8, S Fang9,10, G Zhou9, S D Allison11,12, J M Blair13, S D Bridgham14, A J Burton15, Y Carrillo16, P B Reich16,17, J S Clark18, A T Classen19, F A Dijkstra20, B Elberling, B A Emmett21, M Estiarte22,23, S D Frey24, J Guo25, J Harte26, L Jiang27, B R Johnson28, G Kröel-Dulay29, K S Larsen, H Laudon, J M Lavallee7,30, Y Luo27,31, M Lupascu32, L N Ma33, S Marhan34, A Michelsen35, J Mohan36, S Niu37, E Pendall16, J Peñuelas22,23, L Pfeifer-Meister14, C Poll34, S Reinsch21, L L Reynolds14, I K Schmidt, S Sistla38, N W Sokol3, P H Templer39, K K Treseder12, J M Welker, M A Bradford1,2.   

Abstract

The majority of the Earth's terrestrial carbon is stored in the soil. If anthropogenic warming stimulates the loss of this carbon to the atmosphere, it could drive further planetary warming. Despite evidence that warming enhances carbon fluxes to and from the soil, the net global balance between these responses remains uncertain. Here we present a comprehensive analysis of warming-induced changes in soil carbon stocks by assembling data from 49 field experiments located across North America, Europe and Asia. We find that the effects of warming are contingent on the size of the initial soil carbon stock, with considerable losses occurring in high-latitude areas. By extrapolating this empirical relationship to the global scale, we provide estimates of soil carbon sensitivity to warming that may help to constrain Earth system model projections. Our empirical relationship suggests that global soil carbon stocks in the upper soil horizons will fall by 30 ± 30 petagrams of carbon to 203 ± 161 petagrams of carbon under one degree of warming, depending on the rate at which the effects of warming are realized. Under the conservative assumption that the response of soil carbon to warming occurs within a year, a business-as-usual climate scenario would drive the loss of 55 ± 50 petagrams of carbon from the upper soil horizons by 2050. This value is around 12-17 per cent of the expected anthropogenic emissions over this period. Despite the considerable uncertainty in our estimates, the direction of the global soil carbon response is consistent across all scenarios. This provides strong empirical support for the idea that rising temperatures will stimulate the net loss of soil carbon to the atmosphere, driving a positive land carbon-climate feedback that could accelerate climate change.

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Year:  2016        PMID: 27905442     DOI: 10.1038/nature20150

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  13 in total

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Authors:  E A G Schuur; A D McGuire; C Schädel; G Grosse; J W Harden; D J Hayes; G Hugelius; C D Koven; P Kuhry; D M Lawrence; S M Natali; D Olefeldt; V E Romanovsky; K Schaefer; M R Turetsky; C C Treat; J E Vonk
Journal:  Nature       Date:  2015-04-09       Impact factor: 49.962

Review 2.  Temperature sensitivity of soil carbon decomposition and feedbacks to climate change.

Authors:  Eric A Davidson; Ivan A Janssens
Journal:  Nature       Date:  2006-03-09       Impact factor: 49.962

3.  Toward improved model structures for analyzing priming: potential pitfalls of using bulk turnover time.

Authors:  Katerina Georgiou; Charles D Koven; William J Riley; Margaret S Torn
Journal:  Glob Chang Biol       Date:  2015-11-02       Impact factor: 10.863

4.  Thermal acclimation in widespread heterotrophic soil microbes.

Authors:  Thomas W Crowther; Mark A Bradford
Journal:  Ecol Lett       Date:  2013-01-18       Impact factor: 9.492

5.  Long-term warming restructures Arctic tundra without changing net soil carbon storage.

Authors:  Seeta A Sistla; John C Moore; Rodney T Simpson; Laura Gough; Gaius R Shaver; Joshua P Schimel
Journal:  Nature       Date:  2013-05-15       Impact factor: 49.962

6.  Carbon losses from all soils across England and Wales 1978-2003.

Authors:  Pat H Bellamy; Peter J Loveland; R Ian Bradley; R Murray Lark; Guy J D Kirk
Journal:  Nature       Date:  2005-09-08       Impact factor: 49.962

7.  Global convergence in the temperature sensitivity of respiration at ecosystem level.

Authors:  Miguel D Mahecha; Markus Reichstein; Nuno Carvalhais; Gitta Lasslop; Holger Lange; Sonia I Seneviratne; Rodrigo Vargas; Christof Ammann; M Altaf Arain; Alessandro Cescatti; Ivan A Janssens; Mirco Migliavacca; Leonardo Montagnani; Andrew D Richardson
Journal:  Science       Date:  2010-07-05       Impact factor: 47.728

8.  Mapping tree density at a global scale.

Authors:  T W Crowther; H B Glick; K R Covey; C Bettigole; D S Maynard; S M Thomas; J R Smith; G Hintler; M C Duguid; G Amatulli; M-N Tuanmu; W Jetz; C Salas; C Stam; D Piotto; R Tavani; S Green; G Bruce; S J Williams; S K Wiser; M O Huber; G M Hengeveld; G-J Nabuurs; E Tikhonova; P Borchardt; C-F Li; L W Powrie; M Fischer; A Hemp; J Homeier; P Cho; A C Vibrans; P M Umunay; S L Piao; C W Rowe; M S Ashton; P R Crane; M A Bradford
Journal:  Nature       Date:  2015-09-02       Impact factor: 49.962

9.  A simplified, data-constrained approach to estimate the permafrost carbon-climate feedback.

Authors:  C D Koven; E A G Schuur; C Schädel; T J Bohn; E J Burke; G Chen; X Chen; P Ciais; G Grosse; J W Harden; D J Hayes; G Hugelius; E E Jafarov; G Krinner; P Kuhry; D M Lawrence; A H MacDougall; S S Marchenko; A D McGuire; S M Natali; D J Nicolsky; D Olefeldt; S Peng; V E Romanovsky; K M Schaefer; J Strauss; C C Treat; M Turetsky
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2015-11-13       Impact factor: 4.226

10.  SoilGrids1km--global soil information based on automated mapping.

Authors:  Tomislav Hengl; Jorge Mendes de Jesus; Robert A MacMillan; Niels H Batjes; Gerard B M Heuvelink; Eloi Ribeiro; Alessandro Samuel-Rosa; Bas Kempen; Johan G B Leenaars; Markus G Walsh; Maria Ruiperez Gonzalez
Journal:  PLoS One       Date:  2014-08-29       Impact factor: 3.240

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  85 in total

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Journal:  Nature       Date:  2019-07-24       Impact factor: 49.962

Review 2.  Status and trends in Arctic vegetation: Evidence from experimental warming and long-term monitoring.

Authors:  Anne D Bjorkman; Mariana García Criado; Isla H Myers-Smith; Virve Ravolainen; Ingibjörg Svala Jónsdóttir; Kristine Bakke Westergaard; James P Lawler; Mora Aronsson; Bruce Bennett; Hans Gardfjell; Starri Heiðmarsson; Laerke Stewart; Signe Normand
Journal:  Ambio       Date:  2019-03-30       Impact factor: 5.129

3.  Biogeochemistry: Projections of the soil-carbon deficit.

Authors:  Eric A Davidson
Journal:  Nature       Date:  2016-11-30       Impact factor: 49.962

Review 4.  Emergent Properties of Microbial Activity in Heterogeneous Soil Microenvironments: Different Research Approaches Are Slowly Converging, Yet Major Challenges Remain.

Authors:  Philippe C Baveye; Wilfred Otten; Alexandra Kravchenko; María Balseiro-Romero; Éléonore Beckers; Maha Chalhoub; Christophe Darnault; Thilo Eickhorst; Patricia Garnier; Simona Hapca; Serkan Kiranyaz; Olivier Monga; Carsten W Mueller; Naoise Nunan; Valérie Pot; Steffen Schlüter; Hannes Schmidt; Hans-Jörg Vogel
Journal:  Front Microbiol       Date:  2018-08-27       Impact factor: 5.640

5.  Plant functional trait change across a warming tundra biome.

Authors:  Anne D Bjorkman; Isla H Myers-Smith; Sarah C Elmendorf; Signe Normand; Nadja Rüger; Pieter S A Beck; Anne Blach-Overgaard; Daan Blok; J Hans C Cornelissen; Bruce C Forbes; Damien Georges; Scott J Goetz; Kevin C Guay; Gregory H R Henry; Janneke HilleRisLambers; Robert D Hollister; Dirk N Karger; Jens Kattge; Peter Manning; Janet S Prevéy; Christian Rixen; Gabriela Schaepman-Strub; Haydn J D Thomas; Mark Vellend; Martin Wilmking; Sonja Wipf; Michele Carbognani; Luise Hermanutz; Esther Lévesque; Ulf Molau; Alessandro Petraglia; Nadejda A Soudzilovskaia; Marko J Spasojevic; Marcello Tomaselli; Tage Vowles; Juha M Alatalo; Heather D Alexander; Alba Anadon-Rosell; Sandra Angers-Blondin; Mariska Te Beest; Logan Berner; Robert G Björk; Agata Buchwal; Allan Buras; Katherine Christie; Elisabeth J Cooper; Stefan Dullinger; Bo Elberling; Anu Eskelinen; Esther R Frei; Oriol Grau; Paul Grogan; Martin Hallinger; Karen A Harper; Monique M P D Heijmans; James Hudson; Karl Hülber; Maitane Iturrate-Garcia; Colleen M Iversen; Francesca Jaroszynska; Jill F Johnstone; Rasmus Halfdan Jørgensen; Elina Kaarlejärvi; Rebecca Klady; Sara Kuleza; Aino Kulonen; Laurent J Lamarque; Trevor Lantz; Chelsea J Little; James D M Speed; Anders Michelsen; Ann Milbau; Jacob Nabe-Nielsen; Sigrid Schøler Nielsen; Josep M Ninot; Steven F Oberbauer; Johan Olofsson; Vladimir G Onipchenko; Sabine B Rumpf; Philipp Semenchuk; Rohan Shetti; Laura Siegwart Collier; Lorna E Street; Katharine N Suding; Ken D Tape; Andrew Trant; Urs A Treier; Jean-Pierre Tremblay; Maxime Tremblay; Susanna Venn; Stef Weijers; Tara Zamin; Noémie Boulanger-Lapointe; William A Gould; David S Hik; Annika Hofgaard; Ingibjörg S Jónsdóttir; Janet Jorgenson; Julia Klein; Borgthor Magnusson; Craig Tweedie; Philip A Wookey; Michael Bahn; Benjamin Blonder; Peter M van Bodegom; Benjamin Bond-Lamberty; Giandiego Campetella; Bruno E L Cerabolini; F Stuart Chapin; William K Cornwell; Joseph Craine; Matteo Dainese; Franciska T de Vries; Sandra Díaz; Brian J Enquist; Walton Green; Ruben Milla; Ülo Niinemets; Yusuke Onoda; Jenny C Ordoñez; Wim A Ozinga; Josep Penuelas; Hendrik Poorter; Peter Poschlod; Peter B Reich; Brody Sandel; Brandon Schamp; Serge Sheremetev; Evan Weiher
Journal:  Nature       Date:  2018-09-26       Impact factor: 49.962

6.  Microbial Organic Matter Utilization in High-Arctic Streams: Key Enzymatic Controls.

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Journal:  Microb Ecol       Date:  2019-02-10       Impact factor: 4.552

7.  Nutrient scarcity strengthens soil fauna control over leaf litter decomposition in tropical rainforests.

Authors:  Guille Peguero; Jordi Sardans; Dolores Asensio; Marcos Fernández-Martínez; Albert Gargallo-Garriga; Oriol Grau; Joan Llusià; Olga Margalef; Laura Márquez; Romà Ogaya; Ifigenia Urbina; Elodie A Courtois; Clément Stahl; Leandro Van Langenhove; Lore T Verryckt; Andreas Richter; Ivan A Janssens; Josep Peñuelas
Journal:  Proc Biol Sci       Date:  2019-09-04       Impact factor: 5.349

8.  Soil carbon debt of 12,000 years of human land use.

Authors:  Jonathan Sanderman; Tomislav Hengl; Gregory J Fiske
Journal:  Proc Natl Acad Sci U S A       Date:  2017-08-21       Impact factor: 11.205

9.  News Feature: Can predators have a big impact on carbon emissions calculations?

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Journal:  Proc Natl Acad Sci U S A       Date:  2018-03-06       Impact factor: 11.205

10.  Crowther et al. reply.

Authors:  T W Crowther; M B Machmuller; J C Carey; S D Allison; J M Blair; S D Bridgham; A J Burton; F A Dijkstra; B Elberling; M Estiarte; K S Larsen; H Laudon; M Lupascu; S Marhan; J Mohan; S Niu; J J Peñuelas; I K Schmidt; P H Templer; G Kröel-Dulay; S Frey; M A Bradford
Journal:  Nature       Date:  2018-02-21       Impact factor: 49.962

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