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Molecular dynamics approach to aggregation of polymer chains with monomers connected by springs

机译:分子动力学方法聚合通过弹簧连接的单体的聚合物链

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We consider the aggregation processes of model systems consisting of polymer chains and a fluid of Lennard-Jones (L-J) molecules. The neighboring monomers in a polymer chain are connected by springs of five different strengths for five different systems. The bending-angle and torsion-angle potentials of a polymer chain have strength parameters K_b and K_t, respectively. A small number of randomly chosen "linker sites" along a polymer chain are fluid-attractive, while the other monomers are fluid-repulsive. Using molecular dynamics simulation, we monitor the non-equilibrium aggregation process and analyze its dependence on the strengths of the angle potentials (K_b and K_t) and the monomer-monomer connecting springs. We find that polymer chains tend to aggregate when K_b and K_t are small enough and the temperature of the monomers is low. A quantitative analysis of the structures reveals the hierarchy in the formation of aggregated clusters. The alignment of local segments of individual chains is followed by the coalescence of these local patches. By removing the fluid and setting the angle potentials to zero, we study the aggregation processes in pure systems. We find the formation of bundle-like aggregated clusters to be robust. Several stages of clustering may prevail when the strength of the springs is increased. To identify the effect of the hindrance caused by the angle potentials, we also simulate systems of mixed chains and fluid, with larger angle potentials. Our analysis suggests that larger angle potentials prevent the aligned local segments from extending spatially and cause the failure of the formation of aggregated clusters. The scenario revealed in this study may be useful for the analysis of protein aggregation in more realistic complex biological systems.
机译:我们考虑由聚合物链和Lennard-Jones(L-J)分子流体组成的模型系统的聚集过程。对于五个不同的系统,聚合物链中的相邻单体通过具有五个不同强度的弹簧连接。聚合物链的弯曲角和扭转角电势分别具有强度参数K_b和K_t。沿着聚合物链的少量随机选择的“连接位点”具有吸引流体的能力,而其他单体具有排斥流体的能力。使用分子动力学模拟,我们监视非平衡聚集过程,并分析其对角势(K_b和K_t)和单体-单体连接弹簧强度的依赖性。我们发现,当K_b和K_t足够小且单体温度低时,聚合物链趋于聚集。对结构的定量分析揭示了聚集簇形成的层次。各个链的局部片段的排列之后是这些局部斑块的合并。通过去除流体并将角势设置为零,我们研究了纯系统中的聚集过程。我们发现束状聚集簇的形成是鲁棒的。当增加弹簧的强度时,聚簇的几个阶段可能会占上风。为了确定由角电势引起的障碍的影响,我们还模拟了具有较大角电势的混合链和流体的系统。我们的分析表明,较大的角度电势会阻止对齐的局部片段在空间上扩展,并导致聚集簇的形成失败。这项研究中揭示的场景可能对更现实的复杂生物系统中蛋白质聚集的分析有用。

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