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Flexibility in the Energy Balancing Network of Photosynthesis Enables Safe Operation under Changing Environmental Conditions

机译:光合作用的能量平衡网络的灵活性可确保在不断变化的环境条件下安全运行

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摘要

Given their ability to harness chemical energy from the sun and generate the organic compounds necessary for life, photosynthetic organisms have the unique capacity to act simultaneously as their own power and manufacturing plant. This dual capacity presents many unique challenges, chiefly that energy supply must be perfectly balanced with energy demand to prevent photodamage and allow for optimal growth. From this perspective, we discuss the energy balancing network using recent studies and a quantitative framework for calculating metabolic ATP and NAD(P)H demand using measured leaf gas exchange and assumptions of metabolic demand. We focus on exploring how the energy balancing network itself is structured to allow safe and flexible energy supply. We discuss when the energy balancing network appears to operate optimally and when it favors high capacity instead. We also present the hypothesis that the energy balancing network itself can adapt over longer time scales to a given metabolic demand and how metabolism itself may participate in this energy balancing.
机译:鉴于光合作用具有从太阳中吸收化学能并生成生命所必需的有机化合物的能力,因此它们具有独特的能力,可以同时充当自己的动力和制造工厂。这种双重能力提出了许多独特的挑战,首先是能源供应必须与能源需求完美平衡,以防止光损害并实现最佳增长。从这个角度出发,我们讨论了使用最新研究的能量平衡网络以及使用测得的烟气交换量和代谢需求假设来计算代谢ATP和NAD(P)H需求的定量框架。我们专注于探索能量平衡网络本身的结构,以实现安全灵活的能源供应。我们讨论了何时能量平衡网络看起来运行最佳,以及何时它偏爱大容量。我们还提出了一个假设,即能量平衡网络本身可以在更长的时间内适应给定的代谢需求,以及代谢本身如何参与这种能量平衡。

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