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Quantitative assessments of the distinct contributions of polypeptide backbone amides versus sidechain groups to chain expansion via chemical denaturation

机译:定量评估多肽骨架酰胺与侧链基团通过化学变性对链扩展的不同贡献

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摘要

In aqueous solutions with high concentrations of chemical denaturants such as urea and guanidinium chloride (GdmCl) proteins expand to populate heterogeneous conformational ensembles. These denaturing environments are thought to be good solvents for generic protein sequences because properties of conformational distributions align with those of canonical random coils. Previous studies showed that water is a poor solvent for polypeptide backbones and therefore backbones form collapsed globular structures in aqueous solvents. Here, we ask if polypeptide backbones can intrinsically undergo the requisite chain expansion in aqueous solutions with high concentrations of urea and GdmCl. We answer this question using a combination of molecular dynamics simulations and fluorescence correlation spectroscopy. We find that the degree of backbone expansion is minimal in aqueous solutions with high concentrations denaturants. Instead, polypeptide backbones sample conformations that are denaturant-specific mixtures of coils and globules, with a persistent preference for globules. Therefore, typical denaturing environments cannot be classified as good solvents for polypeptide backbones. How then do generic protein sequences expand in denaturing environments? To answer this question, we investigated the effects of sidechains using simulations of two archetypal sequences with amino acid compositions that are mixtures of charged, hydrophobic, and polar groups. We find that sidechains lower the effective concentration of backbone amides in water leading to an intrinsic expansion of polypeptide backbones in the absence of denaturants. Additional dilution of the effective concentration of backbone amides is achieved through preferential interactions with denaturants. These effects lead to conformational statistics in denaturing environments that are congruent with those of canonical random coils. Our results highlight the role of sidechain-mediated interactions as determinants of the conformational properties of unfolded states in water and in influencing chain expansion upon denaturation.
机译:在具有高浓度化学变性剂(例如尿素和氯化胍(GdmCl))的水溶液中,蛋白质会膨胀以填充异质构象集合。这些变性环境被认为是通用蛋白质序列的良好溶剂,因为构象分布的性质与规范随机线圈的性质一致。先前的研究表明,水是多肽骨架的不良溶剂,因此骨架在水性溶剂中会形成塌陷的球状结构。在这里,我们问多肽主链是否可以在具有高浓度尿素和GdmCl的水溶液中固有地进行必要的扩链。我们结合分子动力学模拟和荧光相关光谱法来回答这个问题。我们发现,在具有高浓度变性剂的水溶液中,骨架膨胀的程度最小。取而代之的是,多肽主链取样的构象是线圈和小球的变性剂特异性混合物,并持续偏爱小球。因此,典型的变性环境不能归类为多肽骨架的良好溶剂。普通蛋白质序列如何在变性环境中扩增?为了回答这个问题,我们使用带有电荷,疏水和极性基团的氨基酸组成的两个原型序列的模拟研究了侧链的影响。我们发现,在不存在变性剂的情况下,侧链降低了水中主链酰胺的有效浓度,导致多肽主链的内在膨胀。通过与变性剂的优先相互作用,可以进一步稀释有效浓度的主链酰胺。这些效应导致变性环境中的构象统计与规范随机线圈的构象统计一致。我们的结果强调了侧链介导的相互作用作为决定水中未折叠状态的构象性质以及影响变性后链扩展的作用。

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