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首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Retrostructural analysis of metalloproteins: Application to the design of a minimal model for diiron proteins
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Retrostructural analysis of metalloproteins: Application to the design of a minimal model for diiron proteins

机译:金属蛋白的逆向结构分析:在设计铁离子最小模型中的应用

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De novo protein design provides an attractive approach for the construction of models to probe the features required for function of complex metalloproteins. The metal-binding sites of many metalloproteins lie between multiple elements of secondary struc- ture, inviting a retrostructural approach to constructing minimal models of their active sites. The backbone geometries comprising the metal-binding sites of zinc fingers, diiron proteins, and rubre- doxins may be described to within approximately 1 A rms deviation by using a simple geometric model with only six adjustable parameters. These geometric models provide excellent starting points for the design of metalloproteins, as illustrated in the construction of Due Ferro 1 (DF1). a minimal model for the Glu- Xxx-Xxx-His class of dinuclear metalloproteins. This protein was synthesized and structurally characterized as the di-Zn(Ⅱ) complex by x-ray crystallography, by using data that extend to 2.5 A. This four-helix bundle protein is comprised of two noncovalently as- sociated helix-loop-helix motifs. The dinuclear center is formed by two bridging Glu and two chelating Glu side chains, as well as two monodentate His ligands. The primary ligands are mostly buried in the protein interior. and their geometries are stabilized by a network of hydrogen bonds to second-shell ligands. In particular, a Tyr residue forms a hydrogen bond to a chelating Glu ligand. similar to a motif found in the diiron-containing R2 subunit of Escherichia coli ribonucleotide reductase and the ferritins. DF1 also binds cobalt and iron ions and should provide an attractive model for a variety of diiron proteins that use oxygen for processes including iron storage, radical formation. and hydrocarbon oxidation.
机译:从头蛋白质设计为构建模型以探索复杂金属蛋白功能所需的特征提供了一种有吸引力的方法。许多金属蛋白的金属结合位点位于二级结构的多个元素之间,这促使采用逆向结构方法来构建其活性位点的最小模型。通过使用仅具有六个可调参数的简单几何模型,可以将包含锌指,二价铁蛋白和红血球毒素的金属结合位点的骨架几何结构描述为在1 rms偏差之内。这些几何模型为设计金属蛋白提供了极好的起点,如Due Ferro 1(DF1)的构建所示。 Glu-Xxx-Xxx-His类双核金属蛋白的最小模型。通过扩展到2.5 A的数据,通过X射线晶体学合成了该蛋白质,并在结构上表征为di-Zn(Ⅱ)配合物。该四螺旋束蛋白质由两个非共价缔合的螺旋-环-螺旋组成图案。双核中心由两个桥接的Glu和两个螯合的Glu侧链以及两个单齿His配体形成。主要配体大部分埋在蛋白质内部。并且它们的几何形状通过与第二壳配体的氢键网络稳定。特别地,Tyr残基与螯合的Glu配体形成氢键。类似于在大肠杆菌核糖核苷酸还原酶和铁蛋白的含二铁的R2亚基中发现的基序。 DF1还结合钴和铁离子,并应为使用氧气进行铁存储,自由基形成等过程的多种二铁蛋白质提供有吸引力的模型。和碳氢化合物氧化。

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