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A systematic analysis of peptide linker length and liposomal polyethylene glycol coating on cellular uptake of peptide-targeted liposomes

机译:肽接头长度和脂质体聚乙二醇涂层对靶向肽的脂质体细胞摄取的系统分析

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PEGylated liposomes are attractive pharmaceutical nanocarriers; however, literature reports of ligand-targeted nanoparticles have not consistently shown successful results. Here, we employed a multifaceted synthetic strategy to prepare peptide-targeted liposomal nanoparticles with high purity, reproducibility, and precisely controlled stoichiometry of functionalities to evaluate the role of liposomal PEG coating, peptide EG-linker length, and peptide valency on cellular uptake in a systematic manner. We analyzed these parameters in two distinct disease models where the liposomes were functionalized with either HER2-or VLA-4-antagonistic peptides to target HER2-overexpressing breast cancer cells or VLA-4-overexpressing myeloma cells, respectively. When targeting peptides were tethered to nanoparticles with an EG45 (~PEG2000) linker in a manner similar to a more traditional formulation, their cellular uptake was not enhanced compared to non-targeted versions regardless of the liposomal PEG coating used. Conversely, reduction of the liposomal PEG to PEG350 and the peptide linker to EG12 dramatically enhanced cellular uptake by ~9 fold and ~100 fold in the breast cancer and multiple myeloma cells, respectively. Uptake efficiency reached a maximum and a plateau with ~2% peptide density in both disease models. Taken together, these results demonstrate the significance of using the right design elements such as the appropriate peptide EG-linker length in coordination with the appropriate liposomal PEG coating and optimal ligand density in efficient cellular uptake of liposomal nanoparticles.
机译:聚乙二醇化脂质体是有吸引力的药物纳米载体。然而,以配体为靶的纳米颗粒的文献报道并未始终显示出成功的结果。在这里,我们采用了多方面的合成策略来制备具有高纯度,重现性和精确控制的化学计量的功能的肽靶向脂质体纳米颗粒,以评估脂质体PEG涂层,肽EG-接头长度和肽效价对细胞吸收的作用。系统的方式。我们在两个不同的疾病模型中分析了这些参数,其中脂质体分别用HER2或VLA-4拮抗肽功能化,分别靶向过表达HER2的乳腺癌细胞或过表达VLA-4的骨髓瘤细胞。当以类似于传统配方的方式将靶向肽与EG45(〜PEG2000)接头束缚在纳米颗粒上时,无论使用何种脂质体PEG涂层,与非靶向版本相比,它们的细胞摄取均未增强。相反,在乳腺癌和多发性骨髓瘤细胞中,将脂质体PEG还原为PEG350和将肽接头还原为EG12,分别显着提高了细胞摄取约9倍和约100倍。在两种疾病模型中,吸收效率均达到最大值,并达到约2%的肽密度平台。综上所述,这些结果证明了在脂质体纳米颗粒的有效细胞摄取中,使用正确的设计元素(如适当的肽EG-接头长度,适当的脂质体PEG涂层和最佳配体密度)的重要性。

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