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Molecular Description of the LCST Behavior of an Elastin-Like Polypeptide

机译:类弹性蛋白多肽的LCST行为的分子描述

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Elastin-like polypeptides (ELPs) with the repeat sequence of VPGVG are widely used as a model system for investigation of lower critical solution temperature (LCST) transition behavior. In this paper, the effect of temperature on the structure, dynamics and association of (VPGVG)_(18) in aqueous solution is investigated using atomistic molecular dynamics simulations. Our simulations show that as the temperature increases the ELP backbones undergo gradual conformational changes, which are attributed to the formation of more ordered secondary structures such as β-strands. In addition, increasing temperature changes the hydrophobicity of the ELP by exposure of hydrophobic valine-side chains to the solvent and hiding of proline residues. Based on our simulations, we conclude that the transition behavior of (VPGVG)_(18) can be attributed to a combination of thermal disruption of the water network that surrounds the polypeptide, reduction of solvent accessible surface area of the polypeptide, and increase in its hydrophobicity. Simulations of the association of two (VPGVG)_(18) molecules demonstrated that the observed gradual changes in the structural properties of the single polypeptide chain are enough to cause the aggregation of polypeptides above the LCST. These results lead us to propose that the LCST phase behavior of poly(VPGVG) is a collective phenomenon that originates from the correlated gradual changes in single polypeptide structure and the abrupt change in properties of hydration water around the peptide and is a result of a competition between peptide-peptide and peptide-water interactions. This is a computational study of an important intrinsically disordered peptide system that provides an atomic-level description of structural features and interactions that are relevant in the LCST phase behavior.
机译:具有VPGVG重复序列的弹性蛋白样多肽(ELP)被广泛用作研究较低临界溶液温度(LCST)转变行为的模型系统。本文使用原子分子动力学模拟研究了温度对水溶液中(VPGVG)_(18)的结构,动力学和缔合的影响。我们的模拟结果表明,随着温度的升高,ELP主链会经历逐渐的构象变化,这归因于更有序的二级结构(如β链)的形成。此外,温度升高会通过使疏水性缬氨酸侧链暴露于溶剂并隐藏脯氨酸残基来改变ELP的疏水性。根据我们的模拟,我们得出结论,(VPGVG)_(18)的过渡行为可归因于以下因素的组合:围绕多肽的水网络的热破坏,减少多肽的溶剂可及表面积以及增加它的疏水性。两个(VPGVG)_(18)分子缔合的模拟表明,观察到的单个多肽链结构特性的逐渐变化足以引起LCST上方多肽的聚集。这些结果使我们提出,聚(VPGVG)的LCST相行为是一种集体现象,其起源于单个多肽结构的相关逐渐变化和肽周围的水合水性质的突然变化,并且是竞争的结果肽-肽和肽-水相互作用之间的关系。这是对重要的内在无序的肽系统的计算研究,该系统提供了与LCST相行为相关的结构特征和相互作用的原子级描述。

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