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Conservation and dissipation of light energy in desiccation-tolerant photoautotrophs, two sides of the same coin

机译:耐干燥的自养生物中光能的守恒和耗散,同一枚硬币的两面

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摘要

Conservation of light energy in photosynthesis is possible only in hydrated photoautotrophs. It requires complex biochemistry and is limited in capacity. Charge separation in reaction centres of photosystem II initiates energy conservation but opens also the path to photooxidative damage. A main mechanism of photoprotection active in hydrated photoautotrophs is controlled by light. This is achieved by coupling light flux to the protonation of a special thylakoid protein which activates thermal energy dissipation. This mechanism facilitates the simultaneous occurrence of energy conservation and energy dissipation but cannot completely prevent damage by light. Continuous metabolic repair is required to compensate damage. More efficient photoprotection is needed by desiccation-tolerant photoautotrophs. Loss of water during desiccation activates ultra-fast energy dissipation in mosses and lichens. Desiccation-induced energy dissipation neither requires a protonation reaction nor light but photoprotection often increases when light is present during desiccation. Two different mechanisms contribute to photoprotection of desiccated photoautotrophs. One facilitates energy dissipation in the antenna of photosystem II which is faster than energy capture by functional reaction centres. When this is insufficient for full photoprotection, the other one permits energy dissipation in the reaction centres themselves.
机译:仅在水合光合自养生物中,光合作用中的光能守恒才有可能。它需要复杂的生物化学,并且容量有限。光系统II的反应中心中的电荷分离可启动能量守恒,但也打开了光氧化损伤的路径。水合光合自养生物中光保护活性的主要机制受光控制。这是通过将光通量与特殊类囊体蛋白的质子化耦合而实现的,从而激活热能消散。该机制有助于同时进行节能和消能,但是不能完全防止光损坏。需要连续的代谢修复来补偿损害。耐干燥的自养生物需要更有效的光保护。干燥过程中的水分流失会激活苔藓和地衣中的超快能量消散。干燥引起的能量耗散既不需要质子化反应也不需要光,但是当在干燥过程中存在光时,光保护通常会增加。两种不同的机制有助于干燥的自养生物的光保护。一种方法促进了光系统II天线中的能量耗散,它比功能性反应中心的能量捕获要快。当这不足以进行全面的光保护时,另一个会允许反应中心本身消散能量。

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