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蓝色铜蛋白的铜离子几何结构没有张力。

The cupric geometry of blue copper proteins is not strained.

作者信息

Ryde U, Olsson M H, Pierloot K, Roos B O

机构信息

Department of Theoretical Chemistry, Lund University Chemical Centre, Sweden.

出版信息

J Mol Biol. 1996 Aug 30;261(4):586-96. doi: 10.1006/jmbi.1996.0484.

Abstract

The geometry of several realistic models of the metal coordination sphere in the blue copper proteins has been optimised using high-level quantum chemical methods. The results show that the optimal vacuum structure of the Cu(II) models is virtually identical to the crystal structure of oxidised blue copper proteins. For the reduced forms, the optimised structure seems to be more tetrahedral than the one found in the proteins, but the energy difference between the two geometries is less than 5 kJ/mol, i.e. within the error limits of the method. Thus, the results raise strong doubts against hypotheses (entatic state and the induced-rack theory) suggesting that blue copper proteins force the oxidised metal coordination sphere into a structure similar to that preferred by Cu(I) in order to minimise the reorganisation energy of the electron transfer reaction. Instead, a small reorganisation energy seems to be reached by an appropriate choice of metal ligands. In particular, the cysteine thiolate ligand appears to be crucial, changing the preferred geometry of the oxidised complexes from square-planar to a more trigonal geometry.

摘要

利用高级量子化学方法优化了几种蓝铜蛋白中金属配位球的真实模型的几何结构。结果表明,Cu(II)模型的最佳真空结构实际上与氧化态蓝铜蛋白的晶体结构相同。对于还原态,优化后的结构似乎比蛋白质中的结构更接近四面体,但两种几何结构之间的能量差小于5 kJ/mol,即在该方法的误差范围内。因此,这些结果对以下假设(静息态和诱导框架理论)提出了强烈质疑,这些假设认为蓝铜蛋白迫使氧化态金属配位球形成类似于Cu(I)偏好的结构,以最小化电子转移反应的重组能。相反,通过适当选择金属配体似乎可以实现较小的重组能。特别是,半胱氨酸硫醇盐配体似乎至关重要,它将氧化态配合物的偏好几何结构从平面正方形变为更接近三角形的几何结构。

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