Inoue Tomomi, Noguchi Ko
National Institute for Environmental Studies, 16-2 Onogawa Tsukuba, Ibaraki, 305-8506, Japan.
Department of Life Science, Tokyo University of Pharmacy and Life Sciences, 1432-1 Horinouchi Hachioji, Tokyo, 192-0392, Japan.
New Phytol. 2021 Feb;229(3):1810-1821. doi: 10.1111/nph.16964. Epub 2020 Oct 25.
Temperature dependence of plant respiratory O -consumption has been empirically described by the Arrhenius equation. The slope of the Arrhenius plot (which is proportional to activation energy) sometimes deviates from a constant value. We conducted kinetic model simulations of mitochondrial electron flow dynamics to clarify factors affecting the shape of the Arrhenius plot. We constructed a kinetic model of respiration in which competitive O -consumption by the cytochrome pathway (CP) and the alternative pathway (AP) were considered, and we used this model to describe the temperature dependence of respiratory O -consumption of Arabidopsis. The model indicated that the electron partitioning and activation energy differences between CP and AP were reflected in the slope and magnitude of the dependent variables of the Arrhenius plot. When the electron partitioning and activation energies of CP and AP were constant with temperature change, our model suggested that the Arrhenius plot would be almost linear. When the electron partitioning or activation energy of CP, or both, rapidly changed with temperature, the Arrhenius plot deviated from linearity, as reported in previous experimental studies. Our simulation analysis quantitatively linked the kinetic model parameters with physiological mechanisms underlying the instantaneous temperature dependence of plant respiration rate.
植物呼吸耗氧量的温度依赖性已通过阿伦尼乌斯方程进行了经验描述。阿伦尼乌斯曲线的斜率(与活化能成正比)有时会偏离恒定值。我们进行了线粒体电子流动动力学的动力学模型模拟,以阐明影响阿伦尼乌斯曲线形状的因素。我们构建了一个呼吸动力学模型,其中考虑了细胞色素途径(CP)和交替途径(AP)的竞争性耗氧,并使用该模型描述拟南芥呼吸耗氧量的温度依赖性。该模型表明,CP和AP之间的电子分配和活化能差异反映在阿伦尼乌斯曲线因变量的斜率和幅度上。当CP和AP的电子分配和活化能随温度变化保持恒定时,我们的模型表明阿伦尼乌斯曲线几乎是线性的。当CP的电子分配或活化能,或两者随温度快速变化时,阿伦尼乌斯曲线偏离线性,如先前实验研究所报道。我们的模拟分析将动力学模型参数与植物呼吸速率瞬时温度依赖性背后的生理机制进行了定量关联。