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Changes in hydrogen-bond strengths explain reduction potentials in 10 rubredoxin variants

机译:氢键强度的变化解释了10种氧化还原酶变体的还原潜力

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摘要

The rubredoxin from Clostridium pasteurianum (CpRd) provides an excellent system for investigating how the protein sequence modulates the reduction potential of the active site in an iron–sulfur protein. 15N NMR spectroscopy has allowed us to determine with unprecedented accuracy the strengths of all six key hydrogen bonds between protein backbone amides and the sulfur atoms of the four cysteine residues that ligate the iron in the oxidized (FeIII) and reduced (FeII) forms of wild-type CpRd and nine mutants (V44G, V44A, V44I, V44L, V8G, V8A, V8I, V8L, and V8G/V44G). The length (or strength) of each hydrogen bond was inferred from the magnitude of electron spin delocalized across the hydrogen bond from the iron atom onto the nitrogen. The aggregate lengths of these six hydrogen bonds are shorter in both oxidation states in variants with higher reduction potential than in those with lower reduction potential. Differences in aggregate hydrogen bonding upon reduction correlate linearly with the published reduction potentials for the 10 CpRd variants, which span 126 mV. Sequence effects on the reduction potential can be explained fully by their influence on hydrogen-bond strengths.
机译:巴斯德梭状芽胞杆菌(CpRd)中的rubredoxin提供了一个出色的系统,用于研究蛋白质序列如何调节铁硫蛋白质中活性位点的还原电位。 15 N NMR光谱使我们能够以前所未有的准确性确定蛋白质主链酰胺与连接氧化铁中铁的四个半胱氨酸残基的硫原子的所有六个关键氢键的强度(Fe < sup> III )和还原的(Fe II )形式的野生型CpRd和9个突变体(V44G,V44A,V44I,V44L,V8G,V8A,V8I,V8L和V8G / V44G)。每个氢键的长度(或强度)是根据从铁原子到氮原子的氢键上电子自旋离域的大小来推断的。在具有较高还原电位的变体中,这两个氢键的总长度在两种氧化态下都比具有较低还原电位的变体中的短。还原后聚集氢键的差异与10 CpRd变异体的已公布的还原电位线性相关,该电位跨度为126 mV。还原电位的顺序效应可以通过它们对氢键强度的影响来充分解释。

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