Microbial competition for phosphorus limits the CO<sub>2</sub> response of a mature forest.

Jiang, Mingkai; Crous, Kristine Y; Carrillo, Yolima; Macdonald, Catriona A; Anderson, Ian C; Boer, Matthias M; Farrell, Mark; Gherlenda, Andrew N et al. · Nature · 2024

basic_science · Level V

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Abstract

The capacity for terrestrial ecosystems to sequester additional carbon (C) with rising CO<sub>2</sub> concentrations depends on soil nutrient availability<sup>1,2</sup>. Previous evidence suggested that mature forests growing on phosphorus (P)-deprived soils had limited capacity to sequester extra biomass under elevated CO<sub>2</sub> (refs. <sup>3-6</sup>), but uncertainty about ecosystem P cycling and its CO<sub>2</sub> response represents a crucial bottleneck for mechanistic prediction of the land C sink under climate change<sup>7</sup>. Here, by compiling the first comprehensive P budget for a P-limited mature forest exposed to elevated CO<sub>2</sub>, we show a high likelihood that P captured by soil microorganisms constrains ecosystem P recycling and availability for plant uptake. Trees used P efficiently, but microbial pre-emption of mineralized soil P seemed to limit the capacity of trees for increased P uptake and assimilation under elevated CO<sub>2</sub> and, therefore, their capacity to sequester extra C. Plant strategies to stimulate microbial P cycling and plant P uptake, such as increasing rhizosphere C release to soil, will probably be necessary for P-limited forests to increase C capture into new biomass. Our results identify the key mechanisms by which P availability limits CO<sub>2</sub> fertilization of tree growth and will guide the development of Earth system models to predict future long-term C storage.

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