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关于天冬氨酸蛋白酶中催化二联体的取向。

On the orientation of the catalytic dyad in aspartic proteases.

机构信息

Department of Biochemistry, University of Zürich, Switzerland.

出版信息

Proteins. 2010 May 1;78(6):1575-82. doi: 10.1002/prot.22674.

Abstract

The recent re-refinement of the X-ray structure of apo plasmepsin II from Plasmodium falciparum suggests that the two carboxylate groups in the catalytic dyad are noncoplanar, (Robbins et al., Acta Crystallogr D Biol Crystallogr 2009;65: 294-296) in remarkable contrast with the vast majority of structures of aspartic proteases. Here, evidence for the noncoplanarity of the catalytic aspartates is provided by analysis of multiple explicit water molecular dynamics (MD) simulations of plasmepsin II, human beta-secretase, and HIV-protease. In the MD runs of plasmepsin II, the angle between the planes of the two carboxylates of the catalytic dyad is almost always in the range 60 degrees -120 degrees , in agreement with the perpendicular orientation in the re-refined X-ray structure. The noncoplanar arrangement is prevalent also in the beta-secretase simulations, as well as in the runs with the inhibitor-bound proteases. Quantum-mechanics calculations provide further evidence that before catalysis the noncoplanar arrangement is favored energetically in eukaryotic aspartic proteases. Remarkably, the coplanar orientation of the catalytic dyad is observed in MD simulations of HIV-protease at 100 K but not at 300 K, which indicates that the noncoplanar arrangement is favored by conformational entropy. This finding suggests that the coplanar orientation in the crystal structures of apo aspartic proteases is promoted by the very low temperature used for data collection (usually around 100 K).

摘要

最近对恶性疟原虫无配体状态的裂殖体腔蛋白 II(plasmepsin II)的 X 射线结构的重新精修表明,催化对偶体中的两个羧酸盐基团是非共面的,(Robbins 等人,《 Acta Crystallogr D Biol Crystallogr 》2009;65: 294-296)与绝大多数天冬氨酸蛋白酶的结构形成鲜明对比。在这里,通过对裂殖体腔蛋白 II、人β-分泌酶和 HIV 蛋白酶的多个明确水分子动力学(MD)模拟的分析,提供了催化天冬氨酸非共面性的证据。在裂殖体腔蛋白 II 的 MD 运行中,催化对偶体的两个羧酸盐之间的角度几乎总是在 60 度到 120 度之间,与重新精修的 X 射线结构中的垂直取向一致。这种非共面排列在β-分泌酶模拟中以及抑制剂结合蛋白酶的运行中也很普遍。量子力学计算进一步提供了证据,表明在催化之前,非共面排列在真核天冬氨酸蛋白酶中在能量上是有利的。值得注意的是,在 100 K 下观察到 HIV 蛋白酶的 MD 模拟中的共面排列,但在 300 K 下则没有,这表明非共面排列有利于构象熵。这一发现表明,在无配体状态的天冬氨酸蛋白酶晶体结构中,共面排列是由用于数据收集的非常低的温度(通常在 100 K 左右)所促进的。

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