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埃格林c的α-螺旋溶剂暴露位点突变具有长程效应:来自分子动力学模拟的证据。

Mutations in alpha-helical solvent-exposed sites of eglin c have long-range effects: evidence from molecular dynamics simulations.

作者信息

Fetrow Jacquelyn S, Knutson Stacy T, Edgell Marshall Hall

机构信息

Department of Physics, Wake Forest University, Winston-Salem, North Carolina 27109-7507, USA.

出版信息

Proteins. 2006 May 1;63(2):356-72. doi: 10.1002/prot.20794.

DOI:10.1002/prot.20794
PMID:16342264
Abstract

Eglin c is a small protease inhibitor whose structural and thermodynamic properties have been well studied. Previous thermodynamic measurements on mutants at solvent-accessible positions in the protein's helix have shown the unexpected result that the data could be best fit by the inclusion of residue- and position-specific parameters to the model. To explore the origins of this surprising result, long molecular dynamics simulations in explicit solvent have been performed. These simulations indicate specific long-range interactions between the solvent-exposed residues in the eglin c alpha-helix and binding loop, an unexpected observation for such a small protein. The residues involved in the interaction are on opposite sides of the protein, about 25 A apart. Simulations of alanine substitutions at the solvent-exposed helix positions, arginine 22, glutamic acid 23, threonine 26, and leucine 27, show both small and large perturbations of eglin c dynamics. Two mutations exhibit large impacts on the long-range helix-loop interactions. Previous stability measurements (Yi et al., Biochemistry 2003;42:7594-7603) had indicated that an alanine substitution at position 27 was less stabilizing than at other solvent-exposed positions in the helix. The L27A mutation effects observed in these simulations suggest that the position-dependent loss of stability measured in wet bench experiments is derived from changes in dynamics that involve long-range interactions; thus, these simulations support the hypothesis that solvent-exposed positions in helices are not always equivalent.

摘要

埃格林C是一种小型蛋白酶抑制剂,其结构和热力学性质已得到充分研究。先前对该蛋白质螺旋中溶剂可及位置的突变体进行的热力学测量显示了一个意外结果,即通过在模型中纳入残基和位置特异性参数,数据能得到最佳拟合。为探究这一惊人结果的根源,已在显式溶剂中进行了长时间的分子动力学模拟。这些模拟表明,埃格林Cα螺旋和结合环中溶剂暴露残基之间存在特定的长程相互作用,对于这样一个小蛋白质来说,这是一个意外发现。参与相互作用的残基位于蛋白质的相对两侧,相距约25埃。对溶剂暴露螺旋位置(精氨酸22、谷氨酸23、苏氨酸26和亮氨酸27)的丙氨酸取代进行的模拟显示,埃格林C动力学既有小的扰动,也有大的扰动。两个突变对长程螺旋-环相互作用有很大影响。先前的稳定性测量(Yi等人,《生物化学》2003年;42:7594 - 7603)表明,27位的丙氨酸取代比螺旋中其他溶剂暴露位置的取代稳定性更低。在这些模拟中观察到的L27A突变效应表明,在湿实验台上测量的稳定性位置依赖性损失源于涉及长程相互作用的动力学变化;因此,这些模拟支持了螺旋中溶剂暴露位置并非总是等效的这一假设。

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