Incorporating the temperature responses of stomatal and non-stomatal limitations to photosynthesis improves the predictability of the unified stomatal optimization model for wheat under heat stress
作者:Yiting Chen, Kehao Liang, Bingjing Cui, Jingxiang Hou, Eva Rosenqvist, Liang Fang, Fulai Liu · 发表于:Agricultural and Forest Meteorology · 年份:2025 · DOI:10.1016/j.agrformet.2025.110381 · 被引用次数:18 · 研究领域:Plant Water Relations and Carbon Dynamics、Plant responses to elevated CO2、Climate change impacts on agriculture
• Stomatal decoupling by heat is only detectable in plants with adequate water access. • The temperature of g s - A n decoupling depends on the heat tolerance of plants. • The modified slope of g s model is highly correlated with the relative stomatal limitation. • Considering the T leaf effect on slope parameter in the model improves model capability. Drought and heat stress often occur simultaneously causing detrimental impacts on crop growth and physiology. Stomata behave differently when plants are exposed to drought and heat stress, which may change the coupling relationship of stomatal conductance ( g s ) and photosynthesis ( A n ) and thereby influence the capability of the Ball-Berry (BB)-based g s model. To examine the prevalence of this g s - A n decoupling and its influence on the predictability of g s model, three pot experiments in climate-controlled greenhouses or climate chambers were conducted where leaf gas exchange of four wheat genotypes with varied sensitivity to drought or heat stress was measured, and the performance of the unified stomatal optimization model (USO model) in simulating g s under individual or combined stress was evaluated. Data obtained from 2019 were used for model parameterization and from 2020 to 2023 were used for model validation. Results showed that the g s - A n decoupling only occurred in well-watered plants under heat regardless of genotype, where the original USO model underestimated the g s . To improve the model prediction, a ...