Stand age and species richness dampen interannual variation of ecosystem-level photosynthetic capacity

被引:0
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作者
Talie Musavi
Mirco Migliavacca
Markus Reichstein
Jens Kattge
Christian Wirth
T. Andrew Black
Ivan Janssens
Alexander Knohl
Denis Loustau
Olivier Roupsard
Andrej Varlagin
Serge Rambal
Alessandro Cescatti
Damiano Gianelle
Hiroaki Kondo
Rijan Tamrakar
Miguel D. Mahecha
机构
[1] Max Planck Institute for Biogeochemistry,Department of Biology
[2] German Centre for Integrative Biodiversity Research (iDiv) Halle-Jena-Leipzig,Department of Sustainable Agro
[3] Institute of Special Botany and Functional Biodiversity,Ecosystems and Bioresources
[4] University of Leipzig,undefined
[5] Biometeorology and Soil Physics Group,undefined
[6] Faculty of Land and Food Systems,undefined
[7] University of British Columbia,undefined
[8] University of Antwerpen,undefined
[9] Bioclimatology,undefined
[10] Georg-August University of Göttingen,undefined
[11] INRA,undefined
[12] ISPA,undefined
[13] Centre de Bordeaux Aquitaine,undefined
[14] UMR Ecologie Fonctionnelle and Biogéochimie des Sols et Agroécosystèmes,undefined
[15] SupAgro-CIRAD-INRA-IRD,undefined
[16] A.N. Severtsov Institute of Ecology and Evolution,undefined
[17] Russian Academy of Sciences,undefined
[18] Centre d'Ecologie Fonctionnelle et Evolutive,undefined
[19] Universidade Federal de Lavras,undefined
[20] European Commission,undefined
[21] Joint Research Centre,undefined
[22] Directorate for Sustainable Resources,undefined
[23] Research and Innovation Center,undefined
[24] Fondazione Edmund Mach,undefined
[25] Foxlab Joint CNR-FEM Initiative,undefined
[26] National Institute of Advanced Industrial Science and Technology (AIST),undefined
来源
Nature Ecology & Evolution | / 1卷
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摘要
The total uptake of carbon dioxide by ecosystems via photosynthesis (gross primary productivity, GPP) is the largest flux in the global carbon cycle. A key ecosystem functional property determining GPP is the photosynthetic capacity at light saturation (GPPsat), and its interannual variability (IAV) is propagated to the net land–atmosphere exchange of CO2. Given the importance of understanding the IAV in CO2 fluxes for improving the predictability of the global carbon cycle, we have tested a range of alternative hypotheses to identify potential drivers of the magnitude of IAV in GPPsat in forest ecosystems. Our results show that while the IAV in GPPsat within sites is closely related to air temperature and soil water availability fluctuations, the magnitude of IAV in GPPsat is related to stand age and biodiversity (R2 = 0.55, P < 0.0001). We find that the IAV of GPPsat is greatly reduced in older and more diverse forests, and is higher in younger forests with few dominant species. Older and more diverse forests seem to dampen the effect of climate variability on the carbon cycle irrespective of forest type. Preserving old forests and their diversity would therefore be beneficial in reducing the effect of climate variability on Earth's forest ecosystems.
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