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Crystallization of Photosystem II for Time-Resolved Structural Studies Using an X-ray Free Electron Laser

机译:Photosystem II的结晶用于使用X射线自由电子激光的时间分辨结构研究

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摘要

Photosystem II (PSII) is a membrane protein supercomplex that executes the initial reaction of photosynthesis in higher plants, algae, and cyanobacteria. It captures the light from the sun to catalyze a transmembrane charge separation. In a series of four charge separation events, utilizing the energy from four photons, PSII oxidizes two water molecules to obtain dioxygen, four protons, and four electrons. The light reactions of photosystems I and II (PSI and PSII) result in the formation of an electrochemical transmembrane proton gradient that is used for the production of ATP. Electrons that are subsequently transferred from PSI via the soluble protein ferredoxin to ferredoxin-NADP+ reductase that reduces NADP+ to NADPH. The products of photosynthesis and the elemental oxygen evolved sustain all higher life on Earth. All oxygen in the atmosphere is produced by the oxygen-evolving complex in PSII, a process that changed our planet from an anoxygenic to an oxygenic atmosphere 2.5 billion years ago. In this chapter, we provide recent insight into the mechanisms of this process and methods used in probing this question.
机译:Photosystem II(PSII)是一种膜蛋白超复合物,它在高等植物,藻类和蓝细菌中执行光合作用的初始反应。它捕获来自太阳的光以催化跨膜电荷分离。在一系列的四个电荷分离事件中,PSII利用来自四个光子的能量,氧化了两个水分子以获得双氧,四个质子和四个电子。光系统I和II(PSI和PSII)的光反应导致形成电化学跨膜质子梯度,该梯度用于生产ATP。电子随后通过可溶性蛋白铁氧还蛋白从PSI转移至铁氧还蛋白-NADP + 还原酶,从而将NADP + 还原为NADPH。光合作用和释放出的元素氧的产物维持着地球上所有更高的生命。大气中的所有氧气都是由PSII中的放氧复合物产生的,这一过程使我们的星球从有氧环境变成了25亿年前的有氧环境。在本章中,我们将提供有关此过程的机制和用于探究此问题的方法的最新见解。

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