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使用高分辨率X射线晶体学测定蛋白质中的质子化状态:分辨率和完整性的影响

Protonation-state determination in proteins using high-resolution X-ray crystallography: effects of resolution and completeness.

作者信息

Fisher S J, Blakeley M P, Cianci M, McSweeney S, Helliwell J R

机构信息

School of Chemistry, University of Manchester, Brunswick Street, Manchester M13 9PL, England.

出版信息

Acta Crystallogr D Biol Crystallogr. 2012 Jul;68(Pt 7):800-9. doi: 10.1107/S0907444912012589. Epub 2012 Jun 15.

Abstract

A bond-distance analysis has been undertaken to determine the protonation states of ionizable amino acids in trypsin, subtilisin and lysozyme. The diffraction resolutions were 1.2 Å for trypsin (97% complete, 12% H-atom visibility at 2.5σ), 1.26 Å for subtilisin (100% complete, 11% H-atom visibility at 2.5σ) and 0.65 Å for lysozyme (PDB entry 2vb1; 98% complete, 30% H-atom visibility at 3σ). These studies provide a wide diffraction resolution range for assessment. The bond-length e.s.d.s obtained are as small as 0.008 Å and thus provide an exceptional opportunity for bond-length analyses. The results indicate that useful information can be obtained from diffraction data at around 1.2-1.3 Å resolution and that minor increases in resolution can have significant effects on reducing the associated bond-length standard deviations. The protonation states in histidine residues were also considered; however, owing to the smaller differences between the protonated and deprotonated forms it is much more difficult to infer the protonation states of these residues. Not even the 0.65 Å resolution lysozyme structure provided the necessary accuracy to determine the protonation states of histidine.

摘要

已进行键长分析以确定胰蛋白酶、枯草杆菌蛋白酶和溶菌酶中可电离氨基酸的质子化状态。胰蛋白酶的衍射分辨率为1.2 Å(完整度97%,在2.5σ下氢原子可见度为12%),枯草杆菌蛋白酶为1.26 Å(完整度100%,在2.5σ下氢原子可见度为11%),溶菌酶为0.65 Å(PDB条目2vb1;完整度98%,在3σ下氢原子可见度为30%)。这些研究提供了用于评估的宽衍射分辨率范围。获得的键长标准偏差小至0.008 Å,因此为键长分析提供了绝佳机会。结果表明,在约1.2 - 1.3 Å分辨率的衍射数据中可获得有用信息,分辨率的微小提高对降低相关键长标准偏差可能有显著影响。还考虑了组氨酸残基的质子化状态;然而,由于质子化和去质子化形式之间的差异较小,推断这些残基的质子化状态要困难得多。即使是0.65 Å分辨率的溶菌酶结构也没有提供确定组氨酸质子化状态所需的精度。

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