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单层保护的混合带电金纳米粒子的 pH 依赖性聚集和 pH 非依赖性细胞膜黏附。

pH-Dependent aggregation and pH-independent cell membrane adhesion of monolayer-protected mixed charged gold nanoparticles.

机构信息

Department of Mechanical Engineering and Institute of Materials Science, University of Connecticut, Storrs, CT 06269, USA.

出版信息

Nanoscale. 2019 Apr 11;11(15):7371-7385. doi: 10.1039/c8nr09617a.

Abstract

Design of pH-responsive monolayer-protected gold nanoparticles (AuNPs) that are mixed charged, with the ability to switch their net surface charge, based on the stimuli of environmental pH is a promising technique in nanomedicine. However, understanding of pH-responsive mixed charged AuNP behavior in terms of their stability and cellular interaction are still limited. In this work, we study the aggregation of pH-responsive AuNPs and their interaction with model lipid bilayers by adopting Martini coarse-grained (CG) molecular dynamics simulations. The surface of these AuNPs is decorated by both positively and negatively charged ligands. The AuNP is positively charged at low pH values due to protonation of negatively charged ligands. Its net charge is lowered at higher pH by increasing the ratio of deprotonated negatively charged ligands. We find that the AuNPs are severely aggregated at moderate pH value, where each AuNP has an overall neutral charge, whereas they are stable and dispersed at both low and high pH values. Further free energy analysis reveals that the energy barrier at a larger separation distance than the location of the hydrophobic driving force potential well, plays a key role that determines the stability of monolayer-protected AuNPs at different pH values. This energy barrier is dramatically decreased at moderate pH value, leading to severe aggregation of AuNPs. By investigating the interaction between AuNPs and model lipid bilayers, we find that all the AuNPs adhere onto the lipid bilayer, independent of the pH value. Moreover, the lipids present originally in the bilayer are extracted by the AuNPs through a process of protrusion and upward climbing. The extraction of lipids can cause dehydration and disruption of the bilayers when multiple AuNPs are adhered. Free energy analysis reveals that the penetration of AuNPs will induce a dramatic free energy increase because of deformation of the ligands with hydrophilic functional end groups. We have systematically studied the stability of pH-responsive AuNPs and their interactions with lipid bilayers by simulation, which might pave the way for the design of pH-responsive monolayer protected AuNPs for biomedical applications.

摘要

设计基于环境 pH 值刺激而具有混合电荷且能够切换其净表面电荷的 pH 响应单层保护金纳米粒子(AuNPs)是纳米医学中一种很有前途的技术。然而,对于 pH 响应混合带电 AuNP 在稳定性和细胞相互作用方面的行为,人们的理解仍然有限。在这项工作中,我们通过采用马蒂尼粗粒(CG)分子动力学模拟研究了 pH 响应 AuNP 的聚集及其与模型脂质双层的相互作用。这些 AuNP 的表面同时被带正电荷和带负电荷的配体修饰。由于带负电荷的配体质子化,AuNP 在低 pH 值时带正电荷。随着去质子化的带负电荷配体比例的增加,其净电荷在较高 pH 值时降低。我们发现,AuNP 在中等 pH 值时严重聚集,此时每个 AuNP 的总电荷为中性,而在低 pH 值和高 pH 值时,它们是稳定且分散的。进一步的自由能分析表明,在大于疏水力势阱位置的较大分离距离处的能量势垒,在确定不同 pH 值下单层保护 AuNP 的稳定性方面起着关键作用。该能量势垒在中等 pH 值时显著降低,导致 AuNP 严重聚集。通过研究 AuNP 与模型脂质双层之间的相互作用,我们发现所有 AuNP 都附着在脂质双层上,与 pH 值无关。此外,通过突起和向上爬升的过程,AuNP 将原本存在于双层中的脂质提取出来。当多个 AuNP 附着时,脂质的提取会导致脱水和双层破裂。自由能分析表明,由于具有亲水性官能团末端的配体变形,AuNP 的穿透会导致自由能的急剧增加。我们通过模拟系统地研究了 pH 响应 AuNP 的稳定性及其与脂质双层的相互作用,这可能为设计用于生物医学应用的 pH 响应单层保护 AuNP 铺平道路。

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