Grassland responses to elevated CO2 determined by plant–microbe competition for phosphorus

被引:0
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作者
J. Ben Keane
Iain P. Hartley
Christopher R. Taylor
Jonathan R. Leake
Marcel R. Hoosbeek
Franco Miglietta
Gareth K. Phoenix
机构
[1] University of Sheffield,Plants Photosynthesis and Soil, School of Biosciences
[2] University of York,Department of Environment and Geography
[3] University of Exeter,Geography, Faculty of Environment, Science and Economy
[4] University of Manchester,Soil and Ecosystem Ecology, Earth and Environmental Sciences
[5] Wageningen University,Soil Chemistry
[6] Istituto Di Biometeorologia–Consiglio Nazionale Delle Ricerche,undefined
[7] Sede centrale,undefined
来源
Nature Geoscience | 2023年 / 16卷
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摘要
Rising atmospheric CO2 has stimulated plant productivity, with terrestrial ecosystems currently absorbing nearly one-third of anthropogenic CO2 emissions. Increases in photosynthesis can subsequently lead to increased carbon (C) storage in plants and soil. However, there is growing evidence that nitrogen (N) availability constrains elevated CO2 (eCO2) responses, yet we know much less about the role of phosphorus (P) limitation on productivity under eCO2. This is important because P-limited ecosystems are globally widespread, and the biogeochemical cycles of N and P differ fundamentally. In the Peak District National Park of northern England, we conducted a free-air CO2 enrichment (FACE) experiment for three years on two contrasting P-limited grasslands under long-term nutrient manipulation. Here we show that competition between plants and microbes for P can determine plant productivity responses to eCO2. In a limestone grassland, aboveground productivity increased (16%) and microbial biomass P remained unchanged, whereas in an acidic grassland, aboveground productivity and P uptake declined (11% and 20%, respectively), but P immobilization into microbial biomass increased (36%). Our results demonstrate that strong competition with microbes can cause plant P uptake to decline under eCO2, with implications for the future productivity of P-limited ecosystems in response to climate change.
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页码:704 / 709
页数:5
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