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Diverse mechanisms for photoprotection in photosynthesis. Dynamic regulation of photosystem II excitation in response to rapid environmental change

机译:光合作用中光保护的多种机制。 响应快速环境变化的照相II激励的动态调节

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摘要

Photosystem II (PSII) of photosynthesis catalyzes one of the most challenging reactions in nature, the light driven oxidation of water and release of molecular oxygen. PSII couples the sequential four step oxidation of water and two step reduction of plastoquinone to single photon photochemistry with charge accumulation centers on both its electron donor and acceptor sides. Photon capture, excitation energy transfer, and trapping occur on a much faster time scale than the subsequent electron transfer and charge accumulation steps. A balance between excitation of PSII and the use of the absorbed energy to drive electron transport is essential. If the absorption of light energy increases and/or the sink capacity for photosynthetically derived electrons decreases, potentially deleterious side reactions may occur, including the production of reactive oxygen species. In response, a myriad of fast (second to minutes timescale) and reversible photoprotective mechanisms are observed to regulate PSII excitation when the environment changes more quickly than can be acclimated to by gene expression. This review compares the diverse photoprotective mechanisms that are used to dissipate (quench) PSII excitation within the antenna systems of higher land plants, green algae, diatoms, and cyanobacteria. The molecular bases of how PSII excitation pressure is sensed by the antenna system and how the antenna then reconfigures itself from a light harvesting to an energy dissipative mode are discussed. (C) 2015 Elsevier B.V. All rights reserved.
机译:光合作用的光电系统II(PSII)催化在自然界中最具挑战性的反应之一,光源氧化水和分子氧的释放。 PSII对水的序贯四步氧化和两步减少塑性醌对单一的光子光化学,在其电子供体和受体侧面上具有电荷累积中心。光子捕获,激励能量转移和捕获在比后续电子传递和电荷累积步骤更快的时间刻度上发生。 PSII激发与吸收能量之间的平衡,以驱动电子传输是必不可少的。如果光能的吸收和/或光合衍生电子的吸收能力降低,则可能发生潜在有害的副反应,包括产生反应性氧物质。作为响应,观察到快速(第二至分钟时间尺度)和可逆光保护机制以调节PSII激发,当环境更快地变化而不是通过基因表达均适应。该综述比较了用于在高地植物,绿藻,硅藻和青霉菌的天线系统内消散(淬火)PSII激发的多样性光保护机制。天线系统感测到PSII激励压力的分子碱基以及天线如何从对能量耗散模式重新配置的天线。 (c)2015 Elsevier B.v.保留所有权利。

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