Morozova Tatiana I, García Nicolás A, Matsarskaia Olga, Roosen-Runge Felix, Barrat Jean-Louis
Institut Laue-Langevin, 71 Avenue des Martyrs, 38042 Grenoble, France.
Instituto de Física del Sur (IFISUR), Departamento de Física, Universidad Nacional del Sur (UNS), CONICET, Av. L. N. Alem 1253, B8000CPB Bahía Blanca, Argentina.
Biomacromolecules. 2023 Apr 10;24(4):1912-1923. doi: 10.1021/acs.biomac.3c00124. Epub 2023 Mar 6.
Elastin-like peptides (ELPs) are artificially derived intrinsically disordered proteins (IDPs) mimicking the hydrophobic repeat unit in the protein elastin. ELPs are characterized by a lower critical solution temperature (LCST) in aqueous media. Here, we investigate the sequence GVG(VPGVG) over a wide range of temperatures (below, around, and above the LCST) and peptide concentrations employing all-atom molecular dynamics simulations, where we focus on the role of intra- and interpeptide interactions. We begin by investigating the structural properties of a single peptide that demonstrates a hydrophobic collapse with temperature, albeit moderate, because the sequence length is short. We observe a change in the interaction between two peptides from repulsive to attractive with temperature by evaluating the potential of mean force, indicating an LCST-like behavior. Next, we explore dynamical and structural properties of peptides in multichain systems. We report the formation of dynamical aggregates with coil-like conformation, in which valine central residues play an important role. Moreover, the lifetime of contacts between chains strongly depends on the temperature and can be described by a power-law decay that is consistent with the LCST-like behavior. Finally, the peptide translational and internal motion are slowed by an increase in the peptide concentration and temperature.
类弹性蛋白肽(ELPs)是人工合成的内在无序蛋白(IDPs),模仿了弹性蛋白中疏水重复单元。ELPs的特点是在水性介质中具有较低的临界溶解温度(LCST)。在此,我们通过全原子分子动力学模拟,在很宽的温度范围(低于、接近和高于LCST)以及肽浓度下研究序列GVG(VPGVG),其中我们关注肽内和肽间相互作用的作用。我们首先研究单个肽的结构特性,该肽随着温度的升高表现出疏水塌缩,尽管程度适中,因为序列长度较短。通过评估平均力势,我们观察到两个肽之间的相互作用随着温度从排斥变为吸引,表明存在类似LCST的行为。接下来,我们探索多链系统中肽的动力学和结构特性。我们报告了具有线圈状构象的动态聚集体的形成,其中缬氨酸中心残基起着重要作用。此外,链间接触的寿命强烈依赖于温度,并且可以用与类似LCST行为一致的幂律衰减来描述。最后,肽的平移和内部运动随着肽浓度和温度的升高而减慢。