聚合物结构和带电分子排阻对疏水性聚合物塌缩的影响

Satyendra Rajput,  and , Divya Nayar*, 
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摘要

考虑活细胞内的拥挤效应对于全面了解生物分子过程和设计用于生物医学应用的聚合物基材料至关重要。长期以来,这些效应一直是熵体积排阻效应的代名词。软性、有吸引力的分子间相互作用的作用仍然难以捉摸。在此,我们利用分子动力学模拟研究了阳离子和阴离子疏水分子挤出物模型对不带电模型聚合物塌缩平衡的影响。特别是聚合物结构的影响,研究了 50 珠线性聚合物模型(Poly-I)和带有非极性侧链的支链聚合物模型(Poly-II)。研究发现,在纯水中,Poly-I 的塌缩比 Poly-II 更有利。添加阴离子排阻剂可加强 Poly-I 的疏水塌缩,而 Poly-II 的塌缩只比在纯水中略微有利。水中的热力学驱动力截然不同。聚合物-I 的塌缩是由有利的聚合物-溶剂熵变驱动的(由于塌缩时水份流失到体液中),而聚合物-II 的塌缩是由有利的聚合物-溶剂能量变化驱动的(由于有利的聚合物内能)。阴离子挤水剂支持 Poly-I 的熵机制,其作用类似于表面活性剂,将水偶极子转向自身,并优先吸附在 Poly-I 表面。在 Poly-II 的情况中,阴离子挤水剂与聚合物侧链结合松散,聚合物塌缩时挤水剂和水流失到体液中,减少了熵罚,从而使塌缩自由能略高于纯水。结果表明,阴离子挤水剂具有增强疏水塌缩的鉴别行为。这与两种聚合物末端和中心区域周围水分子的结构有关。结果说明了弱水合离子疏水剂在拥挤浓度下对疏水合的调节作用。
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Effects of Polymer Architecture and Charged Molecular Crowders on Hydrophobic Polymer Collapse

Accounting for the crowding effects inside a living cell is crucial to obtain a comprehensive view of the biomolecular processes and designing responsive polymer-based materials for biomedical applications. These effects have long been synonymous with the entropic volume exclusion effects. The role of soft, attractive intermolecular interactions remains elusive. Here, we investigate the effects of model cationic and anionic hydrophobic molecular crowders on the collapse equilibrium of uncharged model polymers using molecular dynamics simulations. Particularly, the effect of polymer architecture is explored where a 50-bead linear polymer model (Poly-I) and a branched polymer model (Poly-II) with nonpolar side chains are examined. The collapse of Poly-I is found to be highly favorable than in Poly-II in neat water. Addition of anionic crowders strengthens hydrophobic collapse in Poly-I, whereas collapse of Poly-II is only slightly favored over that in neat water. The thermodynamic driving forces are quite distinct in water. Collapse of Poly-I is driven by the favorable polymer–solvent entropy change (due to loss of waters to bulk on collapse), whereas collapse of Poly-II is driven by the favorable polymer–solvent energy change (due to favorable intrapolymer energy). The anionic crowders support the entropic mechanism for Poly-I by acting like surfactants, redirecting water dipoles toward themselves, and preferentially adsorbing on the Poly-I surface. In the case of Poly-II, the anionic crowders are loosely bound to polymer side chains, and loss of crowders and waters to the bulk on polymer collapse reduces the entropic penalty, thereby making collapse free energy slightly more favorable than in neat water. The results indicate the discriminating behavior of anionic crowders to strengthen the hydrophobic collapse. It is related to the structuring of water molecules around the termini and the central region of the two polymers. The results address the modulation of hydrophobic hydration by weakly hydrated ionic hydrophobes at crowded concentrations.

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