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蛋白质中氨基酸有序水合的结构:晶体结构分析

Structure of the ordered hydration of amino acids in proteins: analysis of crystal structures.

作者信息

Biedermannová Lada, Schneider Bohdan

机构信息

Laboratory of Biomolecular Recognition, Institute of Biotechnology CAS, Videnska 1083, 142 20 Prague, Czech Republic.

出版信息

Acta Crystallogr D Biol Crystallogr. 2015 Nov;71(Pt 11):2192-202. doi: 10.1107/S1399004715015679. Epub 2015 Oct 27.

Abstract

Crystallography provides unique information about the arrangement of water molecules near protein surfaces. Using a nonredundant set of 2818 protein crystal structures with a resolution of better than 1.8 Å, the extent and structure of the hydration shell of all 20 standard amino-acid residues were analyzed as function of the residue conformation, secondary structure and solvent accessibility. The results show how hydration depends on the amino-acid conformation and the environment in which it occurs. After conformational clustering of individual residues, the density distribution of water molecules was compiled and the preferred hydration sites were determined as maxima in the pseudo-electron-density representation of water distributions. Many hydration sites interact with both main-chain and side-chain amino-acid atoms, and several occurrences of hydration sites with less canonical contacts, such as carbon-donor hydrogen bonds, OH-π interactions and off-plane interactions with aromatic heteroatoms, are also reported. Information about the location and relative importance of the empirically determined preferred hydration sites in proteins has applications in improving the current methods of hydration-site prediction in molecular replacement, ab initio protein structure prediction and the set-up of molecular-dynamics simulations.

摘要

晶体学提供了有关蛋白质表面附近水分子排列的独特信息。利用一组2818个分辨率优于1.8 Å的非冗余蛋白质晶体结构,分析了所有20种标准氨基酸残基水化层的范围和结构,作为残基构象、二级结构和溶剂可及性的函数。结果表明了水化作用如何取决于氨基酸构象及其所处的环境。对单个残基进行构象聚类后,汇编了水分子的密度分布,并将优选的水化位点确定为水分布的伪电子密度表示中的最大值。许多水化位点与主链和侧链氨基酸原子都有相互作用,还报道了一些具有较少典型接触的水化位点,如碳供体氢键、OH-π相互作用以及与芳香族杂原子的面外相互作用。有关蛋白质中经验确定的优选水化位点的位置和相对重要性的信息,在改进分子置换中当前的水化位点预测方法、从头算蛋白质结构预测以及分子动力学模拟的设置方面具有应用价值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a20b/4631476/bda081fd25e6/d-71-02192-fig1.jpg

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