多价脂质MVL5胶束纳米颗粒显示增加紫杉醇负载与聚乙二醇化增强癌细胞渗透和细胞毒性

IF 5.5 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
William S. Fisher, Aria Ghasemizadeh, Sherwin Roshan, Anna Goldstein, Jessica Douglas, Ramon Perez, Youli Li, Kai K. Ewert and Cyrus R. Safinya*, 
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引用次数: 0

摘要

具有链溶液膜的阳离子脂质体(CLs)在癌症化疗中是很有前途的疏水药物纳米载体,包括常用的紫杉醇(PTX)药物。含有单价N-[2,3-二聚氧基-1-丙基]三甲基氯化铵(DOTAP)的CL制剂,如EndoTAG-1,在临床试验中取得了有限的成功,并面临着内体包裹、PTX膜溶解度有限以及体内肿瘤靶向困难等挑战。将10 mol %的锥形聚乙二醇脂质(peg -脂质)掺入含有dotap的CLs中,使一部分颗粒转变为盘状胶束。在体内乳腺癌肿瘤模型中,与裸CLs相比,这些装载PTX的聚乙二醇化CLs和盘状胶束在体外显示出增强的细胞摄取,改善的肿瘤穿透和促凋亡活性。含有50摩尔%的多价阳离子脂质MVL5 (+5e)的配方形成完全由圆盘胶束组成的纳米颗粒(NPs),并在75摩尔%的MVL5中转变为与球体共存的短胶束棒,在聚乙二醇化过程中,棒进一步转变为长柔性棒。在这里,我们报告了一项发现,与基于EndoTAG-1模型的参考CLs相比,基于mvl5的盘状、棒状和球形胶束NPs显著提高了PTX在其液膜中的溶解度,提高了近3倍。细胞活力测试显示,PTX对MVL5胶束NPs的溶解性改善导致细胞毒性的提高,而PEGylation进一步提高了细胞毒性。值得注意的是,通过荧光显微镜和颗粒分析,我们发现聚乙二醇修饰显著提高了MVL5纳米颗粒的细胞摄取和穿透深度。该研究结果与一个模型一致,该模型认为,PTX通过带离子脂质NPs传递的限速步骤是含有NPs的内吞囊泡通过细胞表面附近的肌动蛋白网扩散,同时PTX从内体膜跳跃到附近的微管。因此,含有MVL5的聚乙二醇化阳离子脂质纳米颗粒代表了纳米医学应用中非常有前途的疏水抗癌药物递送载体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Multivalent Lipid MVL5 Micellar Nanoparticles Exhibit Increased Paclitaxel Loading with PEGylation Enhancing Cancer Cell Penetration and Cytotoxicity

Multivalent Lipid MVL5 Micellar Nanoparticles Exhibit Increased Paclitaxel Loading with PEGylation Enhancing Cancer Cell Penetration and Cytotoxicity

Cationic liposomes (CLs) with chain-melted fluid membranes are promising nanocarriers of hydrophobic drugs in cancer chemotherapy, including the prevalent drug paclitaxel (PTX). CL formulations containing univalent N-[2,3-dioleoyloxy-1-propyl]trimethylammonium chloride (DOTAP), like EndoTAG-1, have shown limited success in clinical trials and challenges like endosomal entrapment, limited PTX membrane solubility, and difficulty with in vivo tumor targeting remain. Incorporation of 10 mol % cone-shaped poly(ethylene glycol)-lipid (PEG-lipid) to DOTAP-containing CLs transitions a fraction of the particles to disc micelles. These PTX─loaded PEGylated CLs and disc micelles show enhanced cellular uptake in vitro and improved tumor penetration and proapoptotic activity compared to bare CLs in an in vivo breast cancer tumor model. Formulations incorporating the multivalent cationic lipid MVL5 (+5e) at 50 mol % form nanoparticles (NPs) comprised entirely of disc micelles, and transition at 75 mol % MVL5 to short micellar rods coexisting with spheres, with rods further transitioning to long flexible rods upon PEGylation. Here, we report on the finding that MVL5-based micellar NPs with disc, rod, and spherical morphologies dramatically improve the solubility of PTX in their fluid membranes by nearly 3-fold compared to reference CLs modeled on EndoTAG-1. Cell viability assays revealed that this improved PTX solubility for MVL5 micellar NPs leads to improved cytotoxic efficacy, which is further improved by PEGylation. Remarkably, using fluorescent microscopy and particle analysis, we find that the cellular uptake and penetration depth of MVL5 nanoparticles is significantly improved by PEGylation. The findings are consistent with a model where the rate-limiting step of PTX delivery by cationic lipid NPs is diffusion of endocytic vesicles containing NPs through the actin mesh near the cell surface combined with the hopping rate of PTX from endosomal membrane to nearby microtubules. PEGylated cationic lipid nanoparticles containing MVL5 therefore represent a very promising hydrophobic cancer drug delivery vehicle for nanomedicine applications.

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来源期刊
CiteScore
8.30
自引率
3.40%
发文量
1601
期刊介绍: ACS Applied Nano Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics and biology relevant to applications of nanomaterials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important applications of nanomaterials.
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