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  3. Phosphorus enrichment does not enlarge the predicted CO2 fertilization effect on forest carbon sequestration.
 

Phosphorus enrichment does not enlarge the predicted CO2 fertilization effect on forest carbon sequestration.

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BORIS DOI
10.48620/97012
Publisher DOI
10.1073/pnas.2516152123
PubMed ID
41855264
Description
The capacity of nutrient-limited forests to enhance carbon (C) sequestration under elevated CO2 (eCO2) remains a critical uncertainty in C cycle modeling. While existing evidence suggests that low phosphorus (P) bioavailability may constrain CO2 fertilization effects on plant growth, the extent to which this limitation modulates ecosystem responses to eCO2 in forests adapted to P-deficient soils remains poorly understood. Here, using eight P-enabled models, we simulated the magnitudes and mechanisms through which P bioavailability interacts with eCO2, emulating an ecosystem-scale P enrichment experiment at a P-limited Eucalyptus forest undergoing long-term Free-Air CO2 Enrichment. While models predicted pronounced P effects on tree growth, P enrichment unexpectedly did not increase the CO2 effects on tree growth and ecosystem C sequestration. Models prioritized either CO2-driven or P-driven growth, but rarely both. This tradeoff emerged due to model-specific assumptions on 1) partitioning of the extra P in soil labile versus nonlabile pools; 2) plant photosynthetic acclimation to P deficiency; 3) C and nutrient use strategies regulating plant size and allocation; and 4) microbial-driven soil decomposition processes. By generating divergent yet biologically plausible outcomes, these predictions establish critical testable hypotheses for empirical research and highlight multiple P-related pathways that may influence the future land C sink.
Date of Publication
2026-03-24
Publication Type
Article
Subject(s)
900 History > 910 Geography & travel
Keyword(s)
CO2 fertilization effect
•
carbon sequestration
•
ecosystem model
•
forest
•
phosphorus limitation
Language(s)
en
Contributor(s)
Wang, Bin
Lyu, He
Zhang, Xueqian
Jiang, Mingkai
Medlyn, Belinda E
Wårlind, David
Knauer, Jürgen
Fleischer, Katrin
Goll, Daniel S
Olin, Stefan
Yang, Xiaojuan
Yu, Lin
Zaehle, Sönke
Zhang, Haicheng
Schufft, Kristian
Crous, Kristine Y
Carrillo, Yolima
Macdonald, Catriona A
Anderson, Ian C
Boer, Matthias M
Farrell, Mark
Gherlenda, Andrew
Castañeda-Gómez, Laura
Hasegawa, Shun
Jarosch, Klaus
Institute of Geography, Soil Science
Institute of Geography, Physical Geography
Oeschger Centre for Climate Change Research (OCCR)
Milham, Paul
Ochoa-Hueso, Raúl
Pathare, Varsha
Pihlblad, Johanna
Piñeiro, Juan
Power, Sally A
Reich, Peter B
Riegler, Markus
Ellsworth, David S
Smith, Benjamin
Additional Credits
Institute of Geography, Physical Geography
Oeschger Centre for Climate Change Research (OCCR)
Institute of Geography, Soil Science
Series
Proceedings of the National Academy of Sciences
Publisher
National Academy of Sciences
ISSN
1091-6490
0027-8424
Access(Rights)
open.access
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