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胶束药物纳米载体与生物膜:它们如何相互作用?

Micellar drug nanocarriers and biomembranes: how do they interact?

机构信息

Dipartimento di Chimica e Biologia, Università di Salerno, I-84984 via Ponte don Melillo, Fisciano (SA), Italy.

出版信息

Phys Chem Chem Phys. 2014 Mar 21;16(11):5093-105. doi: 10.1039/c3cp54242d.

Abstract

Pluronic based formulations are among the most successful nanomedicines and block-copolymer micelles including drugs that are undergoing phase I/II studies as anticancer agents. Using coarse-grained models, molecular dynamics simulations of large-scale systems, modeling Pluronic micelles interacting with DPPC lipid bilayers, on the μs timescale have been performed. Simulations show, in agreement with experiments, the release of Pluronic chains from the micelle to the bilayer. This release changes the size of the micelle. Moreover, the presence of drug molecules inside the core of the micelle has a strong influence on this process. The picture emerging from the simulations is that the micelle stability is a result of an interplay of drug-micelle core and block-copolymer-bilayer interactions. The equilibrium size of the drug vector shows a strong dependency on the hydrophobicity of the drug molecules embedded in the core of the micelle. In particular, the radius of the micelle shows an abrupt increase in a very narrow range of drug molecule hydrophobicity.

摘要

基于普朗尼克的制剂是最成功的纳米药物之一,包括正在进行 I/II 期研究的作为抗癌剂的嵌段共聚物胶束。使用粗粒度模型,在 μs 时间尺度上对与 DPPC 脂质双层相互作用的普朗尼克胶束进行了大规模系统的分子动力学模拟。模拟结果与实验一致,表明普朗尼克链从胶束释放到双层。这种释放改变了胶束的大小。此外,药物分子存在于胶束的核心内对这个过程有很强的影响。模拟得出的图像表明,胶束的稳定性是药物-胶束核心和嵌段共聚物-双层相互作用的结果。药物载体的平衡大小强烈依赖于嵌入胶束核心的药物分子的疏水性。特别是,胶束的半径在药物分子疏水性的非常窄的范围内显示出急剧增加。

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