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计算色氨酸笼状微蛋白的稳定性图。

Computing the stability diagram of the Trp-cage miniprotein.

作者信息

Paschek Dietmar, Hempel Sascha, García Angel E

机构信息

Fakultät Bio- und Chemieingenieurwesen, Emil-Figge-Strasse 70, Technische Universität Dortmund, D-44227 Dortmund, Germany.

出版信息

Proc Natl Acad Sci U S A. 2008 Nov 18;105(46):17754-9. doi: 10.1073/pnas.0804775105. Epub 2008 Nov 12.

Abstract

We report molecular dynamics simulations of the equilibrium folding/unfolding thermodynamics of an all-atom model of the Trp-cage miniprotein in explicit solvent. Simulations are used to sample the folding/unfolding free energy difference and its derivatives along 2 isochores. We model the DeltaG(u)(P,T) landscape using the simulation data and propose a stability diagram model for Trp-cage. We find the proposed diagram to exhibit features similar to globular proteins with increasing hydrostatic pressure destabilizing the native fold. The observed energy differences DeltaE(u) are roughly linearly temperature-dependent and approach DeltaE(u) = 0 with decreasing temperature, suggesting that the system approached the region of cold denaturation. In the low-temperature denatured state, the native helical secondary structure elements are largely preserved, whereas the protein conformation changes to an "open-clamp" configuration. A tighter packing of water around nonpolar sites, accompanied by an increasing solvent-accessible surface area of the unfolded ensemble, seems to stabilize the unfolded state at elevated pressures.

摘要

我们报告了在明确溶剂中对色氨酸笼状小蛋白全原子模型的平衡折叠/去折叠热力学进行的分子动力学模拟。模拟用于沿两条等容线采样折叠/去折叠自由能差及其导数。我们使用模拟数据对ΔG(u)(P,T)能态进行建模,并提出了色氨酸笼状蛋白的稳定性图模型。我们发现所提出的图表现出与球状蛋白相似的特征,随着静水压力增加,天然折叠结构变得不稳定。观察到的能量差ΔE(u)大致呈线性温度依赖性,并且随着温度降低接近ΔE(u)=0,这表明系统接近冷变性区域。在低温变性状态下,天然螺旋二级结构元件在很大程度上得以保留,而蛋白质构象转变为“开放夹钳”构型。非极性位点周围水的更紧密堆积,伴随着未折叠聚集体溶剂可及表面积的增加,似乎在高压下稳定了未折叠状态。

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