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Protein film photoelectrochemistry of the water oxidation enzyme photosystem II

机译:水氧化酶光系统II的蛋白膜光电化学

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Photosynthesis is responsible for the sunlight-powered conversion of carbon dioxide and water into chemical energy in the form of carbohydrates and the release of O2 as a by-product. Although many proteins are involved in photosynthesis, the fascinating machinery of Photosystem II (PSII) is at the heart of this process. This tutorial review describes an emerging technique named protein film photoelectrochemistry (PF-PEC), which allows for the light-dependent activity of PSII adsorbed onto an electrode surface to be studied. The technique is straightforward to use, does not require highly specialised and/or expensive equipment, is highly selective for the active fractions of the adsorbed enzyme, and requires a small amount of enzyme sample. The use of PF-PEC to study PSII can yield insights into its activity, stability, quantum yields, redox behaviour, and interfacial electron transfer pathways. It can also be used in PSII inhibition studies and chemical screening, which may prove useful in the development of biosensors. PSII PF-PEC cells also serve as proof-of-principle solar water oxidation systems; here, a comparison is made against PSII-inspired synthetic photocatalysts and materials for artificial photosynthesis.
机译:光合作用负责将阳光下的二氧化碳和水转化为碳水化合物形式的化学能,并释放副产物O2。尽管许多蛋白质参与光合作用,但Photosystem II(PSII)的迷人机制是此过程的核心。本教程综述描述了一种新兴的技术,称为蛋白质膜光电化学(PF-PEC),它允许对吸附在电极表面上的PSII的光依赖性活性进行研究。该技术易于使用,不需要高度专业化和/或昂贵的设备,对吸附的酶的活性部分具有高度的选择性,并且需要少量的酶样品。使用PF-PEC研究PSII可以深入了解其活性,稳定性,量子产率,氧化还原行为和界面电子转移途径。它也可以用于PSII抑制研究和化学筛选,这可能对生物传感器的开发很有用。 PSII PF-PEC电池还可以用作原理证明太阳能氧化系统;在此,我们将对比PSII启发的合成光催化剂和用于人造光合作用的材料。

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