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分子动力学模拟揭示了一个表面盐桥在截短的葡萄球菌核酸酶展开过程中形成动力学陷阱。

Molecular dynamics simulation reveals a surface salt bridge forming a kinetic trap in unfolding of truncated Staphylococcal nuclease.

作者信息

Gruia Andreea D, Fischer Stefan, Smith Jeremy C

出版信息

Proteins. 2003 Feb 15;50(3):507-15. doi: 10.1002/prot.10312.

Abstract

Surface salt bridges are ubiquitous in globular proteins. Their contribution to protein stability has been extensively debated in the past decade. Here, molecular dynamics simulations are performed starting from a non-equilibrium state of Staphylococcal nuclease (SNase) with C-terminal truncation (SNaseDelta). The results indicate a key role in the unfolding of the surface salt bridge between arginine 105 and glutamate 135. Experimentally, SNaseDelta is known to be partially unfolded. However, in simulations over 1 ns at 300 K and over 500 ps at 400 K, SNaseDelta remains stable in the native-like folded conformation, the salt bridge hindering unfolding. When the potential function is altered so as to selectively weaken the salt bridge, which then breaks rapidly at 430 K, the protein starts to unfold. The results suggest that breaking of this salt bridge presents a significant barrier to the unfolding transition of SNaseDelta from a native-like state to the unfolded state. Potential of mean force calculations indicate that the barrier height for this transition is approximately 7 kcal/mol.

摘要

表面盐桥在球状蛋白质中普遍存在。在过去十年中,它们对蛋白质稳定性的贡献一直存在广泛争议。在此,从具有C端截短的葡萄球菌核酸酶(SNase)的非平衡状态(SNaseDelta)开始进行分子动力学模拟。结果表明,精氨酸105和谷氨酸135之间的表面盐桥在去折叠过程中起关键作用。实验上,已知SNaseDelta部分去折叠。然而,在300 K下超过1 ns以及在400 K下超过500 ps的模拟中,SNaseDelta在类似天然的折叠构象中保持稳定,盐桥阻碍去折叠。当势函数改变以选择性地削弱盐桥时,盐桥在430 K时迅速断裂,蛋白质开始去折叠。结果表明,该盐桥的断裂对SNaseDelta从类似天然状态到去折叠状态的去折叠转变构成了重大障碍。平均力势计算表明,该转变的势垒高度约为7千卡/摩尔。

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