Temporal dynamics of pre-flowering dry matter remobilization and post-flowering photosynthetic compensation in wheat under combined high temperature and drought stress
作者:Qiao Li, Yangchun Ye, Demei Wang, Yanjie Wang, Min Zhang, Ruiguo Cai, Zhao GuangCai, Yushuang Yang, Xuhong Chang, Xiwei Liu · 发表于:Plant Growth Regulation · 年份:2025 · DOI:10.1007/s10725-025-01336-0 · 被引用次数:3 · 研究领域:Crop Yield and Soil Fertility、Wheat and Barley Genetics and Pathology、Climate change impacts on agriculture
Pre-flowering total dry matter remobilization (PTDR) and post-flowering photosynthetic accumulation (PTPA) are critical for grain-filling under abiotic stress, yet their temporal dynamics and organ-specific contributions under combined high temperature (HT) and drought stress (DS) remain poorly understood. Through a two-year field study (2021–2023) with two wheat cultivars (Zhongmai36 and Jimai22), we investigated yield components, PTDR-PTPA coordination, and grain-filling dynamics under HT, DS, and combined drought-heat stress (DHS). The results demonstrated that stress treatments significantly reduced yield by 14.1–33.3% (Zhongmai36) and 14.9–29.5% (Jimai22), driven by declines in grain numbers per spike (7.0–18.4%) and 1000-grains weight (5.0–17.5%). Random Forest analysis revealed the contribution of 1000-grains weight to the yield variation under all stresses amounts to 55.1–59.1%, while grain numbers per spike dominated 56.1–70.3% for Jimai22 under DS and DHS. Additionally, pre-flowering total dry matter remobilization (PTDR) increased by 18.6–21.5% under DHS due to enhanced contributions from the stem-sheath and leaf, partially mitigating yield losses. However, post-flowering photosynthetic accumulation (PTPA) decreased by 7.5–50.8%, with the most severe reductions under DHS. Meanwhile, the PTDR/PTPA ratio rose significantly under DHS, highlighting compensatory remobilization under combined stresses. The timing and contribution of dry matter remobilization varied acros...