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Seasonal Changes in Temperature Dependence of Photosynthetic Rate in Rice Under a Free-air CO2 Enrichment

机译:空气中CO2浓度升高下水稻光合速率温度依赖性的季节变化

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• Background and Aims Influences of rising global CO2 concentration and temperature on plant growth and ecosystem function have become major concerns, but how photosynthesis changes with CO2 and temperature in the field is poorly understood. Therefore, studies were made of the effect of elevated CO2 on temperature dependence of photosynthetic rates in rice (Oryza sativa) grown in a paddy field, in relation to seasons in two years.• Methods Photosynthetic rates were determined monthly for rice grown under free-air CO2 enrichment (FACE) compared to the normal atmosphere (570 vs 370 µmol mol−1). Temperature dependence of the maximum rate of RuBP (ribulose-1,5-bisphosphate) carboxylation (Vcmax) and the maximum rate of electron transport (Jmax) were analysed with the Arrhenius equation. The photosynthesis–temperature response was reconstructed to determine the optimal temperature (Topt) that maximizes the photosynthetic rate.• Key Results and Conclusions There was both an increase in the absolute value of the light-saturated photosynthetic rate at growth CO2 (Pgrowth) and an increase in Topt for Pgrowth caused by elevated CO2 in FACE conditions. Seasonal decrease in Pgrowth was associated with a decrease in nitrogen content per unit leaf area (Narea) and thus in the maximum rate of electron transport (Jmax) and the maximum rate of RuBP carboxylation (Vcmax). At ambient CO2, Topt increased with increasing growth temperature due mainly to increasing activation energy of Vcmax. At elevated CO2, Topt did not show a clear seasonal trend. Temperature dependence of photosynthesis was changed by seasonal climate and plant nitrogen status, which differed between ambient and elevated CO2.
机译:•背景和目的全球CO2浓度和温度升高对植物生长和生态系统功能的影响已成为人们关注的主要问题,但人们对光合作用如何随CO2和温度变化的认识却很少。因此,研究了CO2浓度升高对稻田中水稻(Oryza sativa)的光合速率与温度的相关性的影响,并与两年中的季节有关。与正常大气相比(570 vs 370 µmol mol -1 )。使用Arrhenius方程分析了RuBP(1,5-双磷酸核糖)最大羧化速率(Vcmax)和最大电子传输速率(Jmax)的温度依赖性。重建光合作用-温度响应,以确定使光合速率最大化的最佳温度(Topt)。•主要结果和结论在生长CO2(生长)时,光饱和光合速率的绝对值增加,且光合作用增加。在FACE条件下,CO2升高引起的生长Topt的增加。 Pgrowth的季节性减少与单位叶面积(Narea)中氮含量的减少有关,因此与最大电子传输速率(Jmax)和RuBP羧化最大速率(Vcmax)有关。在环境CO 2 下,T opt 随着生长温度的升高而增加,其主要原因是V cmax 的活化能增加。在CO 2 升高的情况下, T opt 没有明显的季节性趋势。光合作用的温度依赖性受季节气候和植物氮素状态的影响而变化,环境和升高的CO 2 之间存在差异。

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