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Designed azurins show lower reorganization free energies for intraprotein electron transfer

机译:设计的天青蛋白显示出较低的重组自由能用于蛋白内电子转移

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摘要

Low reorganization free energies are necessary for fast electron transfer (ET) reactions. Hence, rational design of redox proteins with lower reorganization free energies has been a long-standing challenge, promising to yield a deeper understanding of the underlying principles of ET reactivity and to enable potential applications in different energy conversion systems. Herein we report studies of the intramolecular ET from pulse radiolytically produced disulfide radicals to Cu(II) in rationally designed azurin mutants. In these mutants, the copper coordination sphere has been fine-tuned to span a wide range of reduction potentials while leaving the metal binding site effectively undisrupted. We find that the reorganization free energies of ET within the mutants are indeed lower than that of WT azurin, increasing the intramolecular ET rate constants almost 10-fold: changes that are correlated with increased flexibility of their copper sites. Moreover, the lower reorganization free energy results in the ET rate constants reaching a maximum value at higher driving forces, as predicted by the Marcus theory.
机译:低重组自由能是快速电子转移(ET)反应所必需的。因此,具有较低重组自由能的氧化还原蛋白的合理设计一直是一个长期的挑战,有望使人们对ET反应性的基本原理有更深入的了解,并有望在不同的能量转换系统中得到潜在的应用。在本文中,我们报告了在合理设计的天青蛋白突变体中,从脉冲辐射产生的二硫自由基到Cu(II)的分子内ET的研究。在这些突变体中,对铜配位球进行了微调,使其具有广泛的还原电位,同时有效地保持了金属结合位点不受干扰。我们发现,突变体中ET的重组自由能确实低于WT天青素,从而使分子内ET速率常数增加了近10倍:与铜位柔性增加相关的变化。此外,较低的重组自由能导致ET速率常数在较高的驱动力下达到最大值,如Marcus理论所预测。

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