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带电的单层保护纳米颗粒插入脂质双层的自由能变化。

Free energy change for insertion of charged, monolayer-protected nanoparticles into lipid bilayers.

作者信息

Van Lehn Reid C, Alexander-Katz Alfredo

出版信息

Soft Matter. 2014 Jan 28;10(4):648-58. doi: 10.1039/c3sm52329b.

Abstract

Charged, monolayer-protected gold nanoparticles (AuNPs) with core diameters smaller than 10 nm have recently emerged as a prominent class of nanomaterial for use in targeted drug delivery and biosensing. In particular, recent experimental studies showed that AuNPs protected by a binary mixture of purely hydrophobic and anionic, end-functionalized alkanethiol ligands were able to spontaneously penetrate through cell membranes via a non-endocytic, non-disruptive mechanism. The critical step in the penetration process is a fusion step during which the AuNPs insert into the hydrophobic core of the bilayer. This fusion step is driven by hydrophobic forces as inserted AuNPs minimize their exposed hydrophobic surface area and thereby lower their free energy compared to particles in the bulk. Here, we explore the effect of the large parameter space of composition, size, ligand length, morphology, and hydrophobicity strength on the change in the free energy upon insertion. Using a newly developed implicit bilayer, implicit solvent simulation model, our work shows that there is a size cutoff for insertion that has a strong dependence on surface composition and ligand chemistry. Our results agree well with previous experimental findings for a particular value of the hydrophobicity strength. This work provides physical insight that may be used to both understand the insertion of AuNPs into bilayers and guide the design of monolayers to either encourage or inhibit insertion.

摘要

核直径小于10纳米的带电单层保护金纳米颗粒(AuNP)最近已成为一类用于靶向药物递送和生物传感的重要纳米材料。特别是,最近的实验研究表明,由纯疏水和阴离子末端官能化烷硫醇配体的二元混合物保护的AuNP能够通过非内吞、非破坏机制自发穿透细胞膜。穿透过程中的关键步骤是融合步骤,在此期间AuNP插入双层的疏水核心。这个融合步骤是由疏水力驱动的,因为插入的AuNP会将其暴露的疏水表面积降至最低,从而与本体中的颗粒相比降低其自由能。在这里,我们探讨了组成、尺寸、配体长度、形态和疏水强度等大参数空间对插入时自由能变化的影响。使用新开发的隐式双层、隐式溶剂模拟模型,我们的工作表明存在一个对表面组成和配体化学强烈依赖的插入尺寸截止值。我们的结果与先前关于特定疏水强度值的实验结果非常吻合。这项工作提供了物理见解,可用于理解AuNP插入双层的过程,并指导单层的设计以促进或抑制插入。

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