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使用广义朗之万动力学研究聚合物接枝纳米粒子与细胞的黏附。

Adhesion of a polymer-grafted nanoparticle to cells explored using generalized Langevin dynamics.

机构信息

Department of Chemical Engineering, National Taiwan University, Taipei 10617, Taiwan.

出版信息

Soft Matter. 2018 Dec 12;14(48):9910-9922. doi: 10.1039/c8sm01579a.

Abstract

We model a polymer-grafted stealth nanoparticle (SNP) as a composite system consisting of a spherical core coated with a porous polymeric brush with end-ligands. Adjacent to target cells, the near-wall hydrodynamics, thermal fluctuations, and thermodynamic adhesive interactions simultaneously impact the transient motion of the SNP. Employing both the Langevin framework for the effective hard sphere dynamics and the coupled generalized Langevin framework for the nanoparticle-polymer dynamics, we comprehensively investigate the velocity and position temporal relaxations of the SNP in the absence and presence of end-to-end distance fluctuations for the tethered polymer. We demonstrate that polymer structural relaxations substantially impact the SNP adhesive dynamics, especially when the grafted polymer is more flexible. Moreover, a long-time tail with t-3/2 scaling due to polymer chain-length fluctuations is observed in the velocity autocorrelation for a bound SNP. Finally, the thermodynamic effects of membrane morphology on SNP adhesion are explored by modifying the membrane-mediated binding potential of mean force.

摘要

我们将聚合物接枝隐形纳米粒子(SNP)建模为一个复合系统,由一个涂有末端配体的多孔聚合物刷的球形核组成。在接近靶细胞时,壁面附近的流体动力学、热涨落和热力学粘附相互作用同时影响 SNP 的瞬态运动。我们采用朗之万框架来模拟有效硬球动力学,采用耦合的广义朗之万框架来模拟纳米粒子-聚合物动力学,全面研究了 SNP 在没有和存在末端到末端距离波动的情况下的速度和位置时间松弛。我们证明了聚合物结构松弛对 SNP 的粘附动力学有很大的影响,特别是当接枝聚合物更灵活时。此外,在束缚 SNP 的速度自相关中观察到由于聚合物链长波动引起的长时间 t-3/2 标度的尾部。最后,通过修改膜介导的平均力结合势来探索膜形态对 SNP 粘附的热力学影响。

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