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February 8, 2026Ecology Letters0 citations

Stronger Sensitivity of Plant Photosynthesis to Rising CO 2 in High Elevation Ecosystems

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YCYao ChenYZYangjian ZhangLZLiu Zhihua

Key Points

  • The research aims to explore how rising CO2 levels affect photosynthesis and carbon sinks in high elevation ecosystems.
  • Conducted a 6-year CO2 enrichment experiment with an increase of 100 ppm in alpine grassland.
  • Analyzed the impact on gross primary production (GPP) and its relationship with water availability and biomass allocation.
  • Synthetically reviewed 10 global CO2 enrichment experiments to assess elevation-dependent CFE patterns.
  • Utilized the satellite-based EC-LUE model to support findings with model predictions.
  • Elevated CO2 increased gross primary production (GPP) by 25.5% ± 4.6%.
  • CFE was found to increase with elevation, indicating stronger photosynthetic responses in high elevations.
  • Water availability and plant biomass allocation significantly influenced CFE across different seasons.
  • Current terrestrial biosphere models inadequately represent elevation-dependent CFE patterns.

Abstract

ABSTRACT The CO 2 ‐fertilisation effect (CFE) on vegetation productivity is the major driver of the enhanced land carbon sink in recent decades. CFE theoretically increases with elevation due to the higher sensitivity of carboxylation to an increase of CO 2 under lower CO 2 partial pressure, but the elevation‐dependent CFE pattern has been largely overlooked. By conducting a 6‐year CO 2 enrichment experiment (+100 ppm) in an alpine grassland, we show that elevated CO 2 increased gross primary production (GPP) by 25.5% ± 4.6%. Water availability and plant biomass allocation modulates CFE during different seasons. A global synthesis of 10 CO 2 enrichment experiments reveals that CFE increased with elevation. The satellite‐based EC‐LUE model also demonstrates a positive global elevation‐dependent CFE pattern, albeit substantially weaker than that from experimental observations. Current terrestrial biosphere models, however, could not represent the elevation‐dependent pattern, highlighting the need to improve the representations of plants' elevational physiological adaptation to rising CO 2 in models.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/698828ab0fc35cd7a8848635https://doi.org/10.1111/ele.70328
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