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Construction of a novel redox protein by rational design: Conversion of a disulfide bridge into a mononuclear iron-sulfur center

机译:通过合理设计构建新型氧化还原蛋白:将二硫键转化为单核铁硫中心

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A mononuclear iron-sulfur center, capable of reversible electron transfer, has been introduced into thioredoxin, a protein devoid of such sites, using an automated, structure-based design algorithm. One of the sites predicted by the Dezymer computer program to introduce a tetrahedral tetrathiolate iron center included the intrinsic Cys32-Cys35 disulfide of wild-type thioredoxin and two additional mutants, Trp28Cys and Ile75Cys, thereby converting a disulfide into a metal-based redox center. This designed protein forms a 1:1 monomeric complex with Fe-III, whose electronic absorption and EPR spectra closely resemble those of the rubredoxins, as intended. Co-II spectra provided further confirmation of tetrahedral tetrathiolate metal coordination. The designed protein is capable of undergoing successive cycles of oxidation and reduction. The computer-generated design only took into account the geometry of the primary coordination shell around the metal. We have therefore demonstrated that simple geometrical considerations can be sufficient to reproduce the dominant electronic structure and reactivity of a simple metal-based redox center. [References: 50]
机译:使用自动的,基于结构的设计算法,已将能够可逆电子转移的单核铁硫中心引入了没有这种位点的蛋白质硫氧还蛋白中。 Dezymer计算机程序预测的引入四面体四硫醇铁中心的位点之一包括野生型硫氧还蛋白的固有Cys32-Cys35二硫化物和两个其他突变体Trp28Cys和Ile75Cys,从而将二硫化物转化为基于金属的氧化还原中心。这种设计的蛋白质与Fe-III形成了1:1的单体络合物,如预期的那样,其电子吸收光谱和EPR光谱与rubredoxins的光谱非常相似。 Co-II光谱进一步证实了四面体四硫醇盐金属配位。设计的蛋白质能够经历连续的氧化和还原循环。计算机生成的设计仅考虑了围绕金属的主要配位壳的几何形状。因此,我们证明了简单的几何考虑就足以再现简单的基于金属的氧化还原中心的主要电子结构和反应性。 [参考:50]

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