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溶剂质量对拥挤聚合物构象的影响。

Influence of solvent quality on conformations of crowded polymers.

机构信息

Department of Physics, North Dakota State University, Fargo, North Dakota 58108-6050, USA.

出版信息

J Chem Phys. 2018 Sep 28;149(12):124901. doi: 10.1063/1.5043434.

Abstract

The structure and function of polymers in confined environments, e.g., biopolymers in the cytoplasm of a cell, are strongly affected by macromolecular crowding. To explore the influence of solvent quality on conformations of crowded polymers, we model polymers as penetrable ellipsoids, whose shape fluctuations are governed by the statistics of self-avoiding walks, appropriate for a polymer in a good solvent. Within this coarse-grained model, we perform Monte Carlo simulations of mixtures of polymers and hard-nanosphere crowders, including trial changes in polymer size and shape. Penetration of polymers by crowders is incorporated via a free energy cost predicted by polymer field theory. To analyze the impact of crowding on polymer conformations in different solvents, we compute the average polymer shape distributions, radius of gyration, volume, and asphericity over ranges of the polymer-to-crowder size ratio and crowder volume fraction. The simulation results are accurately predicted by a free-volume theory of polymer crowding. Comparison of results for polymers in good and theta solvents indicates that excluded-volume interactions between polymer segments significantly affect crowding, especially in the limit of crowders much smaller than polymers. Our approach may help to motivate future experimental studies of polymers in crowded environments, with possible relevance for drug delivery and gene therapy.

摘要

在受限环境中,聚合物的结构和功能(例如细胞细胞质中的生物聚合物)受大分子拥挤的强烈影响。为了探索溶剂质量对拥挤聚合物构象的影响,我们将聚合物建模为可穿透的椭球体,其形状波动由自回避行走的统计数据控制,适用于良溶剂中的聚合物。在这个粗粒度模型中,我们对聚合物和硬纳米球拥挤剂的混合物进行了蒙特卡罗模拟,包括聚合物大小和形状的试验性变化。通过聚合物场论预测的自由能成本来纳入聚合物被拥挤剂穿透的情况。为了分析拥挤对不同溶剂中聚合物构象的影响,我们在聚合物与拥挤剂的尺寸比和拥挤剂体积分数的范围内计算了聚合物平均形状分布、回转半径、体积和各向异性。模拟结果被聚合物拥挤的自由体积理论准确预测。在良好和 theta 溶剂中聚合物的结果比较表明,聚合物段之间的排斥体积相互作用对拥挤有重大影响,尤其是在拥挤剂比聚合物小得多的极限情况下。我们的方法可能有助于激发未来对拥挤环境中聚合物的实验研究,这可能与药物输送和基因治疗有关。

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