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Factors Controlling the Redox Potential of ZnCe6 in an Engineered Bacterioferritin Photochemical ‘Reaction Centre’

机译:工程化细菌铁蛋白光化学反应中心中控制ZnCe6氧化还原电位的因素

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摘要

Photosystem II (PSII) of photosynthesis has the unique ability to photochemically oxidize water. Recently an engineered bacterioferritin photochemical ‘reaction centre’ (BFR-RC) using a zinc chlorin pigment (ZnCe6) in place of its native heme has been shown to photo-oxidize bound manganese ions through a tyrosine residue, thus mimicking two of the key reactions on the electron donor side of PSII. To understand the mechanism of tyrosine oxidation in BFR-RCs, and explore the possibility of water oxidation in such a system we have built an atomic-level model of the BFR-RC using ONIOM methodology. We studied the influence of axial ligands and carboxyl groups on the oxidation potential of ZnCe6 using DFT theory, and finally calculated the shift of the redox potential of ZnCe6 in the BFR-RC protein using the multi-conformational molecular mechanics–Poisson-Boltzmann approach. According to our calculations, the redox potential for the first oxidation of ZnCe6 in the BRF-RC protein is only 0.57 V, too low to oxidize tyrosine. We suggest that the observed tyrosine oxidation in BRF-RC could be driven by the ZnCe6 di-cation. In order to increase the efficiency of tyrosine oxidation, and ultimately oxidize water, the first potential of ZnCe6 would have to attain a value in excess of 0.8 V. We discuss the possibilities for modifying the BFR-RC to achieve this goal.
机译:光合作用的光系统II(PSII)具有光化学氧化水的独特能力。最近显示,使用二氢卟酚锌颜料(ZnCe6)代替天然血红素的工程细菌铁蛋白光化学“反应中心”(BFR-RC)可通过酪氨酸残基对结合的锰离子进行光氧化,从而模仿了两个关键反应在PSII的电子供体侧。为了了解BFR-RC中酪氨酸氧化的机理,并探索在这种系统中水氧化的可能性,我们使用ONIOM方法建立了BFR-RC原子级模型。我们使用DFT理论研究了轴向配体和羧基对ZnCe6氧化电位的影响,最后使用多构象分子力学-Poisson-Boltzmann方法计算了BFR-RC蛋白中ZnCe6氧化还原电位的变化。根据我们的计算,BRF-RC蛋白中ZnCe6首次氧化的氧化还原电位仅为0.57 V,太低而无法氧化酪氨酸。我们建议观察到的BRF-RC中的酪氨酸氧化可能是由ZnCe6双阳离子驱动的。为了提高酪氨酸的氧化效率并最终氧化水,ZnCe6的第一电位必须达到超过0.8 V的值。我们讨论了为实现这一目标而对BFR-RC进行改性的可能性。

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