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Nonnative electrostatic interactions can modulate protein folding: molecular dynamics with a grain of salt.

机译:非自然的静电相互作用可以调节蛋白质折叠:带有一粒盐的分子动力学。

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摘要

In recent years, a growing number of protein folding studies have focused on the unfolded state, which is now recognized as playing a major role in the folding process. Some of these studies show that interactions occurring in the unfolded state can significantly affect the stability and kinetics of the protein folding reaction. In this study, we modeled the effect of electrostatic interactions, both native and nonnative, on the folding of three protein systems that underwent selective charge neutralization or reversal or complete charge suppression. In the case of the N-terminal L9 protein domain, our results directly attribute the increase in thermodynamic stability to destabilization of the unfolded ensemble, reaffirming the experimental observations. These results provide a deeper structural insight into the ensemble of the unfolded state and predict a new mutation site for increased protein stability. In the second case, charge reversal mutations of RNase Sa affected protein stability, with the destabilizing mutations being less destabilizing at higher salt concentrations, indicating the formation of charge-charge interactions in the unfolded state. In the N-terminal L9 and RNase Sa systems, changes in electrostatic interactions in the unfolded state that cause an increase in free energy had an overall compaction effect that suggests a decrease in entropy. In the third case, in which we compared the beta-lactalbumin and hen egg-white lysozyme protein homologues, we successfully eliminated differences between the folding kinetics of the two systems by suppressing electrostatic interactions, supporting previously reported findings. Our coarse-grained molecular dynamics study not only reproduces experimentally reported findings but also provides a detailed molecular understanding of the elusive unfolded-state ensemble and how charge-charge interactions can modulate the biophysical characteristics of folding.
机译:近年来,越来越多的蛋白质折叠研究都集中在未折叠状态上,目前人们认为折叠状态在折叠过程中起着重要作用。这些研究中的一些研究表明,以未折叠状态发生的相互作用会显着影响蛋白质折叠反应的稳定性和动力学。在这项研究中,我们模拟了静电相互作用,无论是天然的还是非天然的,对经过选择性电荷中和或逆转或完全电荷抑制的三种蛋白质系统折叠的影响。在N末端L9蛋白结构域的情况下,我们的结果直接将热力学稳定性的提高归因于展开的集合的不稳定,从而重申了实验观察结果。这些结果为展开状态的整体提供了更深的结构洞察力,并预测了增加蛋白质稳定性的新突变位点。在第二种情况下,RNase Sa的电荷反转突变影响蛋白质的稳定性,在较高的盐浓度下,去稳定突变的不稳定程度较小,表明在未折叠状态下形成了电荷-电荷相互作用。在N末端L9和RNase Sa系统中,未折叠状态下引起自由能增加的静电相互作用的变化具有整体压缩效应,表明熵降低。在第三例中,我们比较了β-乳清蛋白和鸡蛋清溶菌酶蛋白同源物,我们通过抑制静电相互作用成功消除了两个系统折叠动力学之间的差异,从而支持了先前报道的发现。我们的粗粒度分子动力学研究不仅重现了实验报告的发现,而且还提供了对难以捉摸的未折叠状态集合以及电荷-电荷相互作用如何调节折叠的生物物理特征的详细分子理解。

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