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Charge-charge interactions influence the denatured state ensemble and contribute to protein stability.

机译:电荷-电荷相互作用影响变性状态集合并有助于蛋白质稳定性。

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摘要

Several recent studies have shown that it is possible to increase protein stability by improving electrostatic interactions among charged groups on the surface of the folded protein. However, the stability increases are considerably smaller than predicted by a simple Coulomb's law calculation, and in some cases, a charge reversal on the surface leads to a decrease in stability when an increase was predicted. These results suggest that favorable charge-charge interactions are important in determining the denatured state ensemble, and that the free energy of the denatured state may be decreased more than that of the native state by reversing the charge of a side chain. We suggest that when the hydrophobic and hydrogen bonding interactions that stabilize the folded state are disrupted, the unfolded polypeptide chain rearranges to compact conformations with favorable long-range electrostatic interactions. These charge-charge interactions in the denatured state will reduce the net contribution of electrostatic interactions to protein stability and will help determine the denatured state ensemble. To support this idea, we show that the denatured state ensemble of ribonuclease Sa is considerably more compact at pH 7 where favorable charge-charge interactions are possible than at pH 3, where unfavorable electrostatic repulsion among the positive charges causes an expansion of the denatured state ensemble. Further support is provided by studies of the ionic strength dependence of the stability of charge-reversal mutants of ribonuclease Sa. These results may have important implications for the mechanism of protein folding.
机译:最近的一些研究表明,可以通过改善折叠蛋白质表面带电基团之间的静电相互作用来提高蛋白质稳定性。但是,稳定性的增加比通过简单的库仑定律计算所预测的要小得多,并且在某些情况下,当预测增加时,表面上的电荷反转会导致稳定性下降。这些结果表明,有利的电荷-电荷相互作用对于确定变性状态的集合很重要,并且通过反转侧链的电荷,变性状态的自由能比天然状态的自由能减少更多。我们建议,当稳定折叠状态的疏水键和氢键相互作用被破坏时,未折叠的多肽链将重新排列为紧密构象,并具有良好的长距离静电相互作用。这些在变性状态下的电荷-电荷相互作用将减少静电相互作用对蛋白质稳定性的净贡献,并有助于确定变性状态的集合。为了支持该想法,我们表明核糖核酸酶Sa的变性状态集合在pH 7时比在pH 3时更紧密,在pH值下,可能存在有利的电荷-电荷相互作用,而在pH 3时,正电荷之间不利的静电排斥导致变性状态的扩展合奏。通过对核糖核酸酶Sa的电荷反转突变体的稳定性的离子强度依赖性的研究提供了进一步的支持。这些结果可能对蛋白质折叠的机制具有重要意义。

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