Improving the predictions of leaf photosynthesis during and after short‐term heat stress with current rice models

光合作用 水槽(地理) 氮气 热应力 光合有效辐射 生态生理学 蒸汽压差 环境科学 农学 植物 化学 园艺 生物 动物科学 蒸腾作用 有机化学 地图学 地理
作者
Ting Sun,Xiaohu Zhang,Suyu Lv,Xuan Lin,Jifeng Ma,J. Liu,Qizhao Fang,Liang Tang,Leilei Liu,Weixing Cao,Bing Liu,Yan Zhu
出处
期刊:Plant Cell and Environment [Wiley]
卷期号:46 (11): 3353-3370 被引量:2
标识
DOI:10.1111/pce.14683
摘要

In response to increasing global warming, extreme heat stress significantly alters photosynthetic production. While numerous studies have investigated the temperature effects on photosynthesis, factors like vapour pressure deficit (VPD), leaf nitrogen, and feedback of sink limitation during and after extreme heat stress remain underexplored. This study assessed photosynthesis calculations in seven rice growth models using observed maximum photosynthetic rate (Pmax ) during and after short-term extreme heat stress in multi-year environment-controlled experiments. Biochemical models (FvCB-type) outperformed light response curve-based models (LRC-type) when incorporating observed leaf nitrogen, photosynthetically active radiation, temperatures, and intercellular CO2 concentration (Ci ) as inputs. Prediction uncertainty during heat stress treatment primarily resulted from variation in temperatures and Ci . Improving FVPD (the slope for the linear effect of VPD on Ci /Ca ) to be temperature-dependent, rather than constant as in original models, significantly improved Ci prediction accuracy under heat stress. Leaf nitrogen response functions led to model variation in leaf photosynthesis predictions after heat stress, which was mitigated by calibrated nitrogen response functions based on active photosynthetic nitrogen. Additionally, accounting for observed differences in carbohydrate accumulation between panicles and stems during grain filling improved the feedback of sink limitation, reducing Ci overestimation under heat stress treatments.
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