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膜管成珠的分子模拟及纳米颗粒吸附的影响

Molecular modeling of membrane tube pearling and the effect of nanoparticle adsorption.

作者信息

Yue Tongtao, Zhang Xianren, Huang Fang

机构信息

State Key Laboratory of Heavy Oil Processing, Center for Bioengineering and Biotechnology, China University of Petroleum (East China), Qingdao, 266580, China.

出版信息

Phys Chem Chem Phys. 2014 Jun 14;16(22):10799-809. doi: 10.1039/c4cp01201a.

Abstract

The shape transformation of membrane tubes, also known as pearling, is thought to play an important role in a variety of cellular activities, like intracellular transport. Despite considerable experiments have investigating this phenomenon, the detailed molecular mechanism as well as how environmental factors affect the tube pearling instability is still ambiguous. In this work, we use computer simulation techniques to obtain a molecular-level insight into the tube pearling process. We find that the tube morphology is strongly determined by the water pressure inside membrane tubes. For example, the tube shrinkage and subsequent bending is observed when we decrease the inner water pressure. Contrarily, as we increase the inner water pressure, the tube pearling tends to occur in order to reduce the surface energy. Besides, our simulations show that the membrane tube pearling is regulated by the adsorption of nanoparticles (NPs) in two competing ways. One is that the NP adsorption can exert an additional membrane tension and thus promote the pearling and subsequent division of membrane tubes. On the other hand, the NP adsorption can locally rigidify the membrane and thus contrarily restrain the tube pearling. Therefore, the NP size, NP concentration and NP-membrane adhesion strength will collectively regulate the tube pearling process.

摘要

膜管的形状转变,也称为成珠现象,被认为在多种细胞活动中发挥着重要作用,比如细胞内运输。尽管已有大量实验对这一现象进行了研究,但详细的分子机制以及环境因素如何影响管成珠不稳定性仍不明确。在这项工作中,我们使用计算机模拟技术来深入了解管成珠过程的分子层面情况。我们发现管形态在很大程度上由膜管内部的水压决定。例如,当我们降低内部水压时,会观察到管收缩及随后的弯曲。相反,当我们增加内部水压时,管成珠倾向于发生以降低表面能。此外,我们的模拟表明膜管成珠受纳米颗粒(NPs)吸附的两种相互竞争方式的调节。一种是NP吸附可施加额外的膜张力,从而促进膜管的成珠及随后的分裂。另一方面,NP吸附可使膜局部变硬,从而相反地抑制管成珠。因此,NP尺寸、NP浓度和NP - 膜粘附强度将共同调节管成珠过程。

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