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Replica Exchange Molecular Dynamics Simulations Provide Insight into Substrate Recognition by Small Heat Shock Proteins

机译:复制品交换分子动力学模拟可洞察小型热激蛋白对底物的识别作用

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摘要

The small heat shock proteins (sHSPs) are a virtually ubiquitous and diverse group of molecular chaperones that can bind and protect unfolding proteins from irreversible aggregation. It has been suggested that intrinsic disorder of the N-terminal arm (NTA) of sHSPs is important for substrate recognition. To investigate conformations of the NTA that could recognize substrates we performed replica exchange molecular dynamics simulations. Behavior at normal and stress temperatures of the dimeric building blocks of dodecameric HSPs from wheat (Ta16.9) and pea (Ps18.1) were compared because they display high sequence similarity, but Ps18.1 is more efficient in binding specific substrates. In our simulations, the NTAs of the dimer are flexible and dynamic; however, rather than exhibiting highly extended conformations they retain considerable α-helical character and contacts with the conserved α-crystallin domain (ACD). Network analysis and clustering methods reveal that there are two major conformational forms designated either “open” or “closed” based on the relative position of the two NTAs and their hydrophobic solvent accessible surface area. The equilibrium constant for the closed to open transition is significantly different for Ta16.9 and Ps18.1, with the latter showing more open conformations at elevated temperature correlated with its more effective chaperone activity. In addition, the Ps18.1 NTAs have more hydrophobic solvent accessible surface than those of Ta16.9. NTA hydrophobic patches are comparable in size to the area buried in many protein-protein interactions, which would enable sHSPs to bind early unfolding intermediates. Reduced interactions of the Ps18.1 NTAs with each other and with the ACD contribute to the differences in dynamics and hydrophobic surface area of the two sHSPs. These data support a major role for the conformational equilibrium of the NTA in substrate binding and indicate features of the NTA that contribute to sHSP chaperone efficiency.
机译:小型热激蛋白(sHSP)是分子伴侣中几乎无处不在的各种分子,它们可以结合并保护展开的蛋白免受不可逆的聚集。已经提出,sHSPs的N末端臂(NTA)的内在障碍对于底物识别很重要。为了研究可以识别底物的NTA构象,我们进行了副本交换分子动力学模拟。比较了小麦(Ta16.9)和豌豆(Ps18.1)的十二聚体HSPs二聚体构件在正常温度和应力温度下的行为,因为它们显示出高度的序列相似性,但是Ps18.1在结合特定底物上更有效。在我们的仿真中,二聚体的NTA是灵活而动态的。然而,它们没有表现出高度延伸的构象,而是保留了相当大的α-螺旋特性并与保守的α-结晶蛋白结构域(ACD)接触。网络分析和聚类方法表明,基于两个NTA的相对位置及其疏水性溶剂可及的表面积,有两种主要的构象形式称为“开放”或“封闭”。 Ta16.9和Ps18.1的闭合到开放过渡的平衡常数显着不同,后者在升高的温度下显示更多的开放构象,与其更有效的伴侣活性相关。另外,与Ta16.9相比,Ps18.1 NTA具有更多的疏水性溶剂可及表面。 NTA疏水膜片的大小可与许多蛋白-蛋白相互作用中掩埋的面积相媲美,这将使sHSPs结合早期的未折叠中间体。 Ps18.1 NTA彼此之间以及与ACD的相互作用减少,导致两种sHSP动力学和疏水表面积的差异。这些数据支持了NTA在底物结合中构象平衡的主要作用,并表明了NTA有助于sHSP伴侣效率的特征。

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