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Excited-state dynamics in photosystem II: Insights from the x-ray crystal structure

机译:光系统II中的激发态动力学: X射线晶体结构

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摘要

The heart of oxygenic photosynthesis is photosystem II (PSII), a multisubunit protein complex that uses solar energy to drive the splitting of water and production of molecular oxygen. The effectiveness of the photochemical reaction center of PSII depends on the efficient transfer of excitation energy from the surrounding antenna chlorophylls. A kinetic model for PSII, based on the x-ray crystal structure coordinates of 37 antenna and reaction center pigment molecules, allows us to map the major energy transfer routes from the antenna chlorophylls to the reaction center chromophores. The model shows that energy transfer to the reaction center is slow compared with the rate of primary electron transport and depends on a few bridging chlorophyll molecules. This unexpected energetic isolation of the reaction center in PSII is similar to that found in the bacterial photosystem, conflicts with the established view of the photophysics of PSII, and may be a functional requirement for primary photochemistry in photosynthesis. In addition, the model predicts a value for the intrinsic photochemical rate constant that is 4 times that found in bacterial reaction centers.
机译:氧气光合作用的核心是光系统II(PSII),它是一种多亚基蛋白质复合物,利用太阳能来驱动水的分裂和分子氧的产生。 PSII的光化学反应中心的有效性取决于周围天线叶绿素的激发能的有效传递。基于37个天线和反应中心色素分子的X射线晶体结构坐标,PSII的动力学模型使我们能够绘制从天线叶绿素到反应中心发色团的主要能量转移路径。该模型显示,与初级电子传输速率相比,能量转移至反应中心的速度较慢,并且取决于少量桥接的叶绿素分子。 PSII中反应中心的这种意想不到的高能分离与细菌光系统中发现的相似,与PSII光物理的已建立观点相冲突,并且可能是光合作用中初级光化学的功能要求。此外,该模型预测固有光化学速率常数的值是在 细菌反应中心。

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