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蛋白质中金属-配体相互作用的几何学

Geometry of metal-ligand interactions in proteins.

作者信息

Harding M M

机构信息

Institute of Cell and Molecular Biology, University of Edinburgh, Michael Swann Building, Edinburgh EH9 3JR, Scotland.

出版信息

Acta Crystallogr D Biol Crystallogr. 2001 Mar;57(Pt 3):401-11. doi: 10.1107/s0907444900019168.

Abstract

The geometry of metal-ligand interactions in proteins is examined and compared with information for small-molecule complexes from the Cambridge Structural Database (CSD). The paper deals with the metals Ca, Mg, Mn, Fe, Cu, Zn and with metal-donor atom distances, coordination numbers and extent of distortion from ideal geometry (octahedral, tetrahedral etc.). It assesses the agreement between geometry found in all metalloprotein structures in the Protein Data Bank (PDB) determined at resolution < or = 1.6 A with that predicted from the CSD for ligands which are analogues of amino-acid side chains in proteins [Harding (1999), Acta Cryst. D55, 1432-1443; Harding (2000), Acta Cryst. D56, 857-867]. The agreement is reasonably good for these structures but poorer for many determined at lower resolution (examined to 2.8 A resolution). For metal-donor distances, the predictions from the CSD, with minor adjustments, provide good targets either for validation or for restraints in refinement of structures where only poorer resolution data is available. These target distances are tabulated and the use of restraints is recommended. Validation of angles or the use in refinement of restraints on angles at the metal atom is more difficult because of the inherent flexibility of these angles. A much simplified set of parameters for angle restraints with quite large standard deviations is provided. (Despite the flexibility of the angles, acceptable and preferred coordination numbers and shapes are well established and a summary table is provided.) An unusual and perhaps biochemically important feature of Zn coordination with carboxylate seen in the CSD examples is also clearly present in metalloprotein structures. With metals like Ca, carboxylate coordination is monodentate or bidentate (two M-O bonds of nearly equal length). In Zn carboxylates a continuous range between monodentate and bidentate coordination is found, with one Zn-O bond of normal length and another of any length between this and a van der Waals contact.

摘要

本文研究了蛋白质中金属 - 配体相互作用的几何结构,并与剑桥结构数据库(CSD)中小分子配合物的信息进行了比较。论文涉及钙(Ca)、镁(Mg)、锰(Mn)、铁(Fe)、铜(Cu)、锌(Zn)等金属,以及金属 - 供体原子距离、配位数和与理想几何结构(八面体、四面体等)的畸变程度。它评估了蛋白质数据库(PDB)中分辨率≤1.6 Å 的所有金属蛋白结构中发现的几何结构与 CSD 中预测的蛋白质氨基酸侧链类似物配体的几何结构之间的一致性[哈丁(1999年),《晶体学报》D55卷,1432 - 1443页;哈丁(2000年),《晶体学报》D56卷,857 - 867页]。对于这些结构,一致性相当好,但对于许多较低分辨率(检查至2.8 Å 分辨率)测定的结构则较差。对于金属 - 供体距离,CSD 的预测在进行微小调整后,可为仅获得较差分辨率数据的结构的验证或精修中的约束提供良好目标。这些目标距离已列表,并建议使用约束。由于这些角度具有固有的灵活性,因此对角度进行验证或在金属原子处对角度约束进行精修更为困难。提供了一组标准差相当大的简化角度约束参数。(尽管角度具有灵活性,但可接受和优选的配位数及形状已得到很好的确立,并提供了一个汇总表。)在 CSD 示例中看到的锌与羧酸盐配位的一个不寻常且可能具有生物化学重要性的特征在金属蛋白结构中也很明显。对于钙等金属,羧酸盐配位是单齿或双齿的(两个 M - O 键长度几乎相等)。在锌羧酸盐中,发现了单齿和双齿配位之间的连续范围,其中一个 Zn - O 键长度正常,另一个键长度在正常长度与范德华接触长度之间的任何值。

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