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A minimal mathematical model of nonphotochemical quenching of chlorophyll fluorescence

机译:叶绿素荧光非光化学猝灭的最小数学模型

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摘要

Under natural conditions, plants are exposed to rapidly changing light intensities. To acclimate to such fluctuations, plants have evolved adaptive mechanisms that optimally exploit available light energy and simultaneously minimise damage of the photosynthetic apparatus through excess light. An important mechanism is the dissipation of excess excitation energy as heat which can be measured as nonphotochemical quenching of chlorophyll fluorescence (NPQ). In this paper, we present a highly simplified mathematical model that captures essential experimentally observed features of the short term adaptive quenching dynamics. We investigate the stationary and dynamic behaviour of the model and systematically analyse the dependence of characteristic system properties on key parameters such as rate constants and pool sizes. Comparing simulations with experimental data allows to derive conclusions about the validity of the simplifying assumptions and we further propose hypotheses regarding the role of the xanthophyll cycle in NPQ. We envisage that the presented theoretical description of the light reactions in conjunction with short term adaptive processes serves as a basis for the development of more detailed mechanistic models by which the molecular mechanisms of NPQ can be theoretically studied.
机译:在自然条件下,植物会受到快速变化的光照强度的影响。为了适应这种波动,植物已经进化出了适应性机制,该机制可以最佳地利用可用的光能,同时通过过量的光将光合作用设备的损害降至最低。一个重要的机制是将多余的激发能量作为热量散失,可以将其测量为叶绿素荧光(NPQ)的非光化学猝灭。在本文中,我们提出了一个高度简化的数学模型,该模型捕获了短期自适应淬火动力学的基本实验观察到的特征。我们研究了模型的静态和动态行为,并系统分析了特征系统属性对关键参数(如速率常数和池大小)的依赖性。将模拟与实验数据进行比较可以得出有关简化假设的有效性的结论,并且我们进一步提出关于叶黄素循环在NPQ中的作用的假设。我们设想,所提出的光反应的理论描述与短期自适应过程相结合,为开发更详细的力学模型奠定了基础,通过该模型可以对NPQ的分子机理进行理论研究。

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