The fate of carbon in a mature forest under carbon dioxide enrichment.


Journal

Nature
ISSN: 1476-4687
Titre abrégé: Nature
Pays: England
ID NLM: 0410462

Informations de publication

Date de publication:
04 2020
Historique:
received: 10 07 2019
accepted: 04 02 2020
entrez: 10 4 2020
pubmed: 10 4 2020
medline: 4 6 2020
Statut: ppublish

Résumé

Atmospheric carbon dioxide enrichment (eCO

Identifiants

pubmed: 32269351
doi: 10.1038/s41586-020-2128-9
pii: 10.1038/s41586-020-2128-9
doi:

Substances chimiques

Soil 0
Carbon Dioxide 142M471B3J

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

227-231

Subventions

Organisme : European Research Council
Pays : International

Commentaires et corrections

Type : CommentIn

Références

Le Quéré, C. L. et al. Global carbon budget 2018. Earth Syst. Sci. Data 10, 2141–2194 (2018).
Schimel, D., Stephens, B. B. & Fisher, J. B. Effect of increasing CO
pubmed: 25548156 pmcid: 25548156
Walker, A. P. et al. Decadal biomass increment in early secondary successional woody ecosystems is increased by CO
pubmed: 30765702 pmcid: 30765702
Norby, R. J. & Zak, D. R. Ecological lessons from Free-Air CO
Leuzinger, S. & Hättenschwiler, S. Beyond global change: lessons from 25 years of CO
pubmed: 23306422 pmcid: 23306422
Arora, V. K. et al. Carbon-concentration and carbon-climate feedbacks in CMIP5 Earth system models. J. Clim. 26, 5289–5314 (2013).
Ellsworth, D. S. et al. Elevated CO
Körner, C. et al. Carbon flux and growth in mature deciduous forest trees exposed to elevated CO
pubmed: 16123297 pmcid: 16123297
Ryan, M. G. Three decades of research at Flakaliden advancing whole-tree physiology, forest ecosystem and global change research. Tree Physiol. 33, 1123–1131 (2013).
pubmed: 24300337 pmcid: 24300337
Klein, T. et al. Growth and carbon relations of mature Picea abies trees under 5 years of free-air CO
Norby, R. J. et al. Model-data synthesis for the next generation of forest free-air CO
pubmed: 26249015 pmcid: 26249015
Pugh, T. A. M. et al. Role of forest regrowth in global carbon sink dynamics. Proc. Natl Acad. Sci. USA 116, 4382–4387 (2019).
pubmed: 30782807 pmcid: 30782807
Grassi, G. et al. The key role of forests in meeting climate targets requires science for credible mitigation. Nat. Clim. Chang. 7, 220–226 (2017).
Peñuelas, J. et al. Shifting from a fertilization-dominated to a warming-dominated period. Nat. Ecol. Evol. 1, 1438–1445 (2017).
pubmed: 29185529 pmcid: 29185529
Luo, Y. et al. Progressive nitrogen limitation of ecosystem response to rising atmospheric carbon dioxide. Bioscience 54, 731–739 (2004).
DeLucia, E. H. et al. Net primary production of a forest ecosystem with experimental CO
pubmed: 10325230 pmcid: 10325230
Crous, K., Ósvaldsson, A. & Ellsworth, D. S. Is phosphorus limiting in a mature Eucalyptus woodland? Phosphorus fertilization stimulates stem growth. Plant Soil 391, 293–305 (2015).
Medlyn, B. E. et al. Using models to guide field experiments: a priori predictions for the CO
Medlyn, B. E. et al. Using ecosystem experiments to improve vegetation models. Nat. Clim. Chang. 5, 528–534 (2015).
Friedlingstein, P. et al. Uncertainties in CMIP5 climate projections due to carbon cycle feedbacks. J. Clim. 27, 511–526 (2014).
Yang, J. et al. Low sensitivity of gross primary production to elevated CO
DeLucia, E. H., Drake, J. E., Thomas, R. B. & Gonzalez-Meler, M. Forest carbon use efficiency: is respiration a constant fraction of gross primary production? Glob. Change Biol. 13, 1157–1167 (2007).
Norby, R. J. Forest canopy productivity index. Nature 381, 564 (1996).
Duursma, R. A. et al. Canopy leaf area of a mature evergreen Eucalyptus woodland does not respond to elevated atmospheric CO
Drake, J. E. et al. Short-term carbon cycling responses of a mature eucalypt woodland to gradual stepwise enrichment of atmospheric CO
Drake, J. E. et al. Three years of soil respiration in a mature eucalypt woodland exposed to atmospheric CO
Drake, J. E. et al. Increases in the flux of carbon belowground stimulate nitrogen uptake and sustain the long-term enhancement of forest productivity under elevated CO
pubmed: 21303437 pmcid: 21303437
Hasegawa, S., Macdonald, C. A. & Power, S. A. Elevated carbon dioxide increases soil nitrogen and phosphorus availability in a phosphorus-limited Eucalyptus woodland. Glob. Change Biol. 22, 1628–1643 (2016).
Ochoa-Hueso, R. et al. Rhizosphere-driven increase in nitrogen and phosphorus availability under elevated atmospheric CO
Crous, K. Y., Wujeska-Klause, A., Jiang, M., Medlyn, B. E. & Ellsworth, D. S. Nitrogen and phosphorus retranslocation of leaves and stemwood in a mature Eucalyptus forest exposed to 5 years of elevated CO
pubmed: 31214212 pmcid: 31214212
Zaehle, S. et al. Evaluation of 11 terrestrial carbon-nitrogen cycle models against observations from two temperature Free-Air CO
pubmed: 24467623 pmcid: 24467623
Fleischer, K. et al. Amazon forest response to CO
Todd-Brown, K. E. O. et al. Changes in soil organic carbon storage predicted by earth system models during the 21
Kuzyakov, Y., Horwath, W. R., Dorodnikov, M. & Blagodatskaya, E. Review and synthesis of the effects of elevated atmospheric CO
Luyssaert, S. et al. Old-growth forests as global carbon sinks. Nature 455, 213–215 (2008).
pubmed: 18784722 pmcid: 18784722
Jones, C. et al. 21st century compatible CO
Australia’s Agriculture, Fisheries And Forestry At A Glance 2012 https://www.agriculture.gov.au/about/publications/glance2012 (Department of Agriculture, Fisheries and Forestry, 2012).
Global Forest Resources Assessment 2000 FAO Forestry Paper 140 (Food and Agricultural Organization of the United Nations, 2001).
Gimeno, T. E., McVicar, T. R., O’Grady, A. P., Tissue, D. T. & Ellsworth, D. S. Elevated CO
Hasegawa, S. et al. Elevated CO
Pathare, V. S. et al. Water availability affects seasonal CO
Paul, K. I. et al. Development and testing of allometric equations for estimating above-ground biomass of mixed-species environmental plantings. For. Ecol. Manage. 310, 483–494 (2013).
Collins, L. et al. Understorey productivity in temperate grassy woodland responds to soil water availability but not to elevated CO
Snowdon, P. et al. National Carbon Accounting System Technical Report no. 17 (Australian Greenhouse Office, 2000).
Wallander, H. et al. Evaluation of methods to estimate production, biomass and turnover of ectomycorrhizal mycelium in forests soils. Soil Biol. Biochem. 57, 1034–1047 (2013).
Buyer, J. S. & Sasser, M. High throughput phospholipid fatty acid analysis of soils. Appl. Soil Ecol. 61, 127–130 (2012).
Gherlenda, A. N., Esveld, J. L., Hall, A. A. G., Duursma, R. A. & Riegler, M. Boom and bust: rapid feedback responses between insect outbreak dynamics and canopy leaf area impacted by rainfall and CO
Facey, S. L. et al. Atmospheric change causes declines in woodland arthropods and impacts specific trophic groups. Agric. For. Entomol. 19, 101–112 (2017).
Murray, T. J., Tissue, D. T., Ellsworth, D. S. & Riegler, M. Interactive effects of pre-industrial, current and future CO
pubmed: 23053228 pmcid: 23053228
Trakimas, G. et al. Ecological stoichiometry: a link between developmental speed and physiological stress in an omnivorous insect. Front. Behav. Neurosci. 13, 42 (2019).
pubmed: 30906256 pmcid: 30906256
Farquhar, G. D., von Caemmerer, S. & Berry, J. A. A biochemical model of photosynthetic CO
pubmed: 24306196 pmcid: 24306196
Medlyn, B. E. et al. Reconciling the optimal and empirical approaches to modelling stomatal conductance. Glob. Change Biol. 17, 2134–2144 (2011).
Gimeno, T. E. et al. Conserved stomatal behavior under elevated CO
Yang, J. et al. Incorporating non-stomatal limitation improves the performance of leaf and canopy models at high vapor pressure deficit. Tree Physiol. 39, 1961-1974 (2019).
Martins, C. S. C. et al. Identifying environmental drivers of greenhouse gas emissions under warming and reduced rainfall in boreal-temperate forests. Funct. Ecol. 31, 2356–2368 (2017).
Zhang, X. & Wang, W. The decomposition of fine and coarse roots: their global patterns and controlling factors. Sci. Rep. 5, 9940 (2015).
pubmed: 25942391 pmcid: 25942391
Reich, P. B. et al. Plant diversity enhances ecosystem responses to elevated CO
pubmed: 11298447 pmcid: 11298447
Gherlenda, A. N., Moore, B. D., Haigh, A. M., Johnson, S. N. & Riegler, M. Insect herbivory in a mature Eucalyptus woodland canopy depends on leaf phenology but not CO
pubmed: 27760541 pmcid: 27760541
Gherlenda, A. N. et al. Precipitation, not CO
Drake, J. E. et al. The partitioning of gross primary production for young Eucalyptus tereticornis trees under experimental warming and altered water availability. New Phytol. 222, 1298–1312 (2019).
pubmed: 30536971 pmcid: 30536971
Salomón, R. L., Steppe, K., Crous, K. Y., Noh, N. J. & Ellsworth, D. S. Elevated CO
pubmed: 30903994 pmcid: 30903994
Raumonen, P. et al. Fast automatic precision tree models from terrestrial laser scanner data. Remote Sens. 5, 491–520 (2013).
Calders, K. et al. Nondestructive estimates of above-ground biomass using terrestrial laser scanning. Methods Ecol. Evol. 6, 198–208 (2015).
Davidson, E. A., Samanta, S., Caramori, S. S. & Savage, K. The dual Arrhenius and Michaelis–Menten kinetics model for decomposition of soil organic matter at hourly to seasonal time scales. Glob. Change Biol. 18, 371–384 (2012).
Guenther, A. B. et al. The Model of Emissions of Gases and Aerosols from Nature version 2.1 (MEGAN2.1): an extended and updated framework for modeling biogenic emissions. Geosci. Model Dev. 5, 1471–1492 (2012).
Emmerson, K. M., Palmer, P. I., Thatcher, M., Haverd, V. & Guenther, A. B. Sensitivity of isoprene emissions to drought over south-eastern Australia: integrating models and satellite observations of soil moisture. Atmos. Environ. 209, 112–124 (2019).
Kännaste, A., Copolovici, L. & Niinemets, Ü. Gas chromatography mass-spectrometry method for determination of biogenic volatile organic compounds emitted by plants. In Plant Isoprenoids: Methods And Protocols (ed. Rodríguez-Concepción, M.) 161–169 (Humana Press, 2014).
Tholl, D. et al. Practical approaches to plant volatile analysis. Plant J. 45, 540–560 (2006).
pubmed: 16441348 pmcid: 16441348
Li, T., Holst, T., Michelsen, A. & Rinnan, R. Amplification of plant volatile defense against insect herbivory in a warming Arctic tundra. Nat. Plants 5, 568–574 (2019).
pubmed: 31182843 pmcid: 31182843
Johnsen, L. G., Skou, P. B., Khakimov, B. & Bro, R. Gas chromatography—mass spectrometry data processing made easy. J. Chromatogr. A 1503, 57–64 (2017).
pubmed: 28499599 pmcid: 28499599
Keith, H. et al. Multiple measurements constrain estimates of net carbon exchange by a Eucalyptus forest. Agric. For. Meteorol. 149, 535–558 (2009).
Bates, D., Machler, M., Bolker, B. M. & Walker, S. C. Fitting linear mixed-effects models using lme4. J. Stat. Softw. 67, 1–48 (2015).
R Core Team. R: A Language And Environment For Statistical Computing https://www.R-project.org/ (R Foundation for Statistical Computing, 2018).
Ouimette, A. P. et al. Accounting for carbon flux to mycorrhizal fungi may resolve discrepancies in forest carbon budgets. Ecosystems https://doi.org/10.1007/s10021-019-00440-3 (2019).
Harris, I., Jones, P. D., Osborn, T. J. & Lister, D. H. Updated high-resolution grids of monthly climatic observations—the CRU TS3.10 dataset. Int. J. Climatol. 34, 623–642 (2014).
Olson, D. M. et al. Terrestrial ecoregions of the world: a new map of life on Earth. Bioscience 51, 933–938 (2001).
Jiang, M., Felzer, B. S., Nielsen, U. N. & Medlyn, B. E. Biome-specific climatic space defined by temperature and precipitation predictability. Glob. Ecol. Biogeogr. 26, 1270–1282 (2017).
Scarascia-Mugnozza, G. et al. Response to elevated CO
Linder, S. NPP Boreal Forest: Flakaliden, Sweden, 1986-1996, R1. Dataset at https://doi.org/10.3334/ORNLDAAC/201 (Oak Ridge National Laboratory Distributed Active Archive Center, 2013).
Anderson-Teixeira, K. J. et al. ForC: a global database of forest carbon stock and fluxes. Ecology 99, 1507 (2018).
pubmed: 29603730 pmcid: 29603730
Shangguan, W., Dai, Y., Duan, Q., Liu, B. & Yuan, H. A global soil data set for Earth system modelling. J. Adv. Model. Earth Syst. 6, 249–263 (2014).
Yang, X., Post, W.M., Thornton, P.E. and Jain, A. Global gridded soil phosphorus distribution maps at 0.5-degree resolution. Dataset at https://doi.org/10.3334/ORNLDAAC/1223 (Oak Ridge National Laboratory Distributed Active Archive Center, 2014).

Auteurs

Mingkai Jiang (M)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia. m.jiang@westernsydney.edu.au.

Belinda E Medlyn (BE)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia. b.medlyn@westernsydney.edu.au.

John E Drake (JE)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.
Department of Sustainable Resources Management, College of Environmental Science and Forestry, State University of New York, Syracuse, NY, USA.

Remko A Duursma (RA)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Ian C Anderson (IC)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Craig V M Barton (CVM)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Matthias M Boer (MM)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Yolima Carrillo (Y)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Laura Castañeda-Gómez (L)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Luke Collins (L)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.
Department of Ecology, Environment and Evolution, La Trobe University, Bundoora, Victoria, Australia.
Arthur Rylah Institute for Environmental Research, Department of Environment, Land, Water and Planning, Heidelberg, Victoria, Australia.

Kristine Y Crous (KY)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Martin G De Kauwe (MG)

ARC Centre of Excellence for Climate Extremes, University of New South Wales, Sydney, New South Wales, Australia.
Climate Change Research Centre, University of New South Wales, Sydney, New South Wales, Australia.
Evolution and Ecology Research Centre, University of New South Wales, Sydney, New South Wales, Australia.

Bruna M Dos Santos (BM)

Plant Biochemistry Laboratory, Department of Plant and Environmental Sciences, University of Copenhagen, Copenhagen, Denmark.
VILLUM Research Center for Plant Plasticity, University of Copenhagen, Copenhagen, Denmark.

Kathryn M Emmerson (KM)

Climate Science Centre, CSIRO Oceans and Atmosphere, Aspendale, Victoria, Australia.

Sarah L Facey (SL)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Andrew N Gherlenda (AN)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Teresa E Gimeno (TE)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.
Basque Centre for Climate Change, Leioa, Spain.
Ikerbasque, Basque Foundation for Science, Bilbao, Spain.

Shun Hasegawa (S)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.
Department of Forest Ecology and Management, Swedish University of Agricultural Sciences (SLU), Umeå, Sweden.

Scott N Johnson (SN)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Astrid Kännaste (A)

Estonian University of Life Sciences, Tartu, Estonia.

Catriona A Macdonald (CA)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Kashif Mahmud (K)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.
Department of Geography, Indiana University, Bloomington, IN, USA.

Ben D Moore (BD)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Loïc Nazaries (L)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Elizabeth H J Neilson (EHJ)

Plant Biochemistry Laboratory, Department of Plant and Environmental Sciences, University of Copenhagen, Copenhagen, Denmark.
VILLUM Research Center for Plant Plasticity, University of Copenhagen, Copenhagen, Denmark.

Uffe N Nielsen (UN)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Ülo Niinemets (Ü)

Estonian University of Life Sciences, Tartu, Estonia.

Nam Jin Noh (NJ)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.
Forest Technology and Management Research Center, National Institute of Forest Science, Pocheon, South Korea.

Raúl Ochoa-Hueso (R)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.
Department of Biology, IVAGRO, University of Cádiz, Campus de Excelencia Internacional Agroalimentario (CeiA3), Cádiz, Spain.

Varsha S Pathare (VS)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.
School of Biological Sciences, Washington State University, Pullman, WA, USA.

Elise Pendall (E)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Johanna Pihlblad (J)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Juan Piñeiro (J)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.
Division of Plant and Soil Sciences, West Virginia University, Morgantown, WV, USA.

Jeff R Powell (JR)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Sally A Power (SA)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Peter B Reich (PB)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.
Department of Forest Resources, University of Minnesota, St Paul, MN, USA.

Alexandre A Renchon (AA)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Markus Riegler (M)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Riikka Rinnan (R)

Terrestrial Ecology Section, Department of Biology, University of Copenhagen, Copenhagen, Denmark.

Paul D Rymer (PD)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Roberto L Salomón (RL)

Laboratory of Plant Ecology, Faculty of Bioscience Engineering, Ghent University, Ghent, Belgium.

Brajesh K Singh (BK)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.
Global Centre for Land Based Innovation, Western Sydney University, Penrith, New South Wales, Australia.

Benjamin Smith (B)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.
Department of Physical Geography and Ecosystem Science, Lund University, Lund, Sweden.

Mark G Tjoelker (MG)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Jennifer K M Walker (JKM)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Agnieszka Wujeska-Klause (A)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Jinyan Yang (J)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

Sönke Zaehle (S)

Max Planck Institute for Biogeochemistry, Jena, Germany.

David S Ellsworth (DS)

Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.

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