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Configurational entropy elucidates the role of salt-bridge networks in protein thermostability

机译:构型熵阐明了盐桥网络在蛋白质热稳定性中的作用

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摘要

Detailed knowledge of how networks of surface salt bridges contribute to protein thermal stability is essential not only to understand protein structure and function but also to design thermostable proteins for industrial applications. Experimental studies investigating thermodynamic stability through measurements of free energy associated with mutational alterations in proteins provide only macroscopic evidence regarding the structure of salt-bridge networks and assessment of their contribution to protein stability. Using explicit-solvent molecular dynamics simulations to provide insight on the atomic scale, we investigate here the structural stability, defined in terms of root-mean-square fluctuations, of a short polypeptide designed to fold into a stable trimeric coiled coil with a well-packed hydrophobic core and an optimal number of intra- and interhelical surface salt bridges. We find that the increase of configurational entropy of the backbone and side-chain atoms and decreased pair correlations of these with increased temperature are consistent with nearly constant atom-positional root-mean-square fluctuations, increased salt-bridge occupancies, and stronger electrostatic interactions in the coiled coil. Thus, our study of the coiled coil suggests a mechanism in which well-designed salt-bridge networks could accommodate stochastically the disorder of increased thermal motion to produce thermostability.
机译:关于表面盐桥网络如何促进蛋白质热稳定性的详细知识,不仅对于理解蛋白质的结构和功能,而且对于设计用于工业应用的热稳定蛋白质都是必不可少的。通过测量与蛋白质突变变化相关的自由能来研究热力学稳定性的实验研究仅提供了有关盐桥网络结构及其对蛋白质稳定性的贡献的宏观证据。使用显式溶剂分子动力学模拟来提供原子尺度的洞察力,我们在这里研究根据根均方差定义的短多肽的结构稳定性,该短多肽可折叠成稳定的三聚体卷曲螺旋,具有良好的结构。填充的疏水核以及最佳数量的螺旋内和螺旋间表面盐桥。我们发现主链和侧链原子的结构熵的增加以及它们与温度的升高之间的成对相关性降低与几乎恒定的原子-位置均方根波动,盐桥占有率增加和更强的静电相互作用相一致在盘绕线圈中。因此,我们对盘绕线圈的研究提出了一种机制,其中精心设计的盐桥网络可以随机地适应热运动增加而产生热稳定性的障碍。

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