论文标题
树突聚电解质的电荷和水合结构:硫酸聚甘油的分子模拟
Charge and hydration structure of dendritic polyelectrolytes: molecular simulations of polyglycerol sulphate
论文作者
论文摘要
基于树突状或超支聚电解质的大分子已成为生物医学应用的高潜在候选者。在这里,我们通过显式 - 溶剂分子动力学计算机模拟研究了氯化钠溶液中0至3代的树突状聚甘油(DPGS)的电荷和溶剂化结构。我们通过计算几种重要特性,例如相关的DPGS半径,分子分布,溶剂可访问的表面积和部分分子体积来表征DPG。特别是,由于DPG表现出高电荷的重新归一化效应,我们解决了如何获得明确定义的有效电荷和DPG对实际应用的表面潜力的挑战。我们将全部原子模拟中的隐式和明确的方法与以前的工作中的粗粒仿真进行了比较。我们发现在所有方法中,有效静电大小(即Deby-hückel球的有效电荷位置的位置)的一致值,最多偏向水分子的大小。最后,提出并合理化了水插入DPG及其热力学特征的过多化学潜力。
Macromolecules based on dendritic or hyperbranched polyelectrolytes have been emerging as high potential candidates for biomedical applications. Here we study the charge and solvation structure of dendritic polyglycerol sulphate (dPGS) of generations 0 to 3 in aqueous sodium chloride solution by explicit-solvent molecular dynamics computer simulations. We characterize dPGS by calculating several important properties such as relevant dPGS radii, molecular distributions, the solvent accessible surface area, and the partial molecular volume. In particular, as the dPGS exhibits high charge renormalization effects, we address the challenges of how to obtain a well-defined effective charge and surface potential of dPGS for practical applications. We compare implicit- and explicit-solvent approaches in our all-atom simulations with the coarse-grained simulations from our previous work. We find consistent values for the effective electrostatic size (i.e., the location of the effective charge of a Debye--Hückel sphere) within all the approaches, deviating at most by the size of a water molecule. Finally, the excess chemical potential of water insertion into dPGS and its thermodynamic signature are presented and rationalized.