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Effects of PEG tethering chain length of vitamin E TPGS with a Herceptin-functionalized nanoparticle formulation for targeted delivery of anticancer drugs

机译:维生素E TPGS的PEG束缚链长度与赫赛汀功能化的纳米颗粒制剂对靶向抗癌药物的影响

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摘要

Drug formulation by ligand conjugated nanoparticles of biodegradable polymers has become one of the most important strategies in drug targeting. We have developed in our previous work nanoparticles of a mixture of two vitamin E TPGS based copolymers PLA-TPGS and TPGS-TOOH with the latter for Herceptin conjugation for targeted delivery of anticancer drugs such as docetaxel to the cancer cells of human epidermal growth factor receptor 2 (HER2) overexpression. In this research, we investigated the effects of the PEG chain length in TPGS, which is in fact a PEGylated vitamin E, on the cellular uptake and cytotoxicity of the drug formulated in the Herceptin-conjugated nanoparticles of PLA-TPGS/TPGS-COOH blend (NPs). Such NPs of PEG1000, PEG2000, PEG3350 and PEG5000, i.e. the PEG of molecule weight 1000, 2000, 3350 and 5000, were prepared by the nanoprecipitation method and characterized for their size and size distribution, drug loading, surface morphology, surface charge and surface chemistry as well as in vitro drug release profile, cellular uptake and cytotoxicity. We found among such nanoparticles, those of PEG1000, i.e. of the shortest PEG tethering chain length, could result in the best therapeutic effects, which are 24.1%, 37.3%, 38.1% more efficient in cellular uptake and 68.1%, 90%, 92.6% lower in IC50 (thus higher in cytotoxicity) than the Herceptin-conjugated nanoparticles of PLA-TPGS/TPGS-COOH blend of PEG2000, PEG3350 and PEG5000 respectively in treatment of SK-BR-3 cancer cells which are of high HER2 overexpression. We provided a theoretical explanation from surface mechanics and thermodynamics for endocytosis of nanoparticles.
机译:通过可生物降解的聚合物的配体结合的纳米颗粒进行药物配制已经成为靶向药物中最重要的策略之一。我们在先前的工作中开发了两种基于维生素E TPGS的共聚物PLA-TPGS和TPGS-TOOH的混合物的纳米颗粒,后者用于赫赛汀偶联,可将抗癌药物(如多西他赛)靶向递送至人表皮生长因子受体的癌细胞2(HER2)过表达。在这项研究中,我们研究了TPGS(实际上是PEG化的维生素E)中PEG链长对在PLA-TPGS / TPGS-COOH共混物的赫赛汀偶联纳米颗粒中配制的药物的细胞摄取和细胞毒性的影响。 (NP)。通过纳米沉淀法制备了PEG1000,PEG2000,PEG3350和PEG5000的这些NP,即分子量为1000、2000、3350和5000的PEG,并对其大小和大小分布,药物载量,表面形态,表面电荷和表面进行了表征。化学以及体外药物释放曲线,细胞摄取和细胞毒性。我们发现,在此类纳米颗粒中,PEG1000的纳米颗粒(即最短的PEG束缚链长度)可以产生最佳的治疗效果,其细胞吸收效率分别高24.1%,37.3%,38.1%,而68.1%,90%,92.6在治疗高HER2过表达的SK-BR-3癌细胞中,IC50分别比PEG2000,PEG3350和PEG5000的PLA-TPGS / TPGS-COOH共混物的赫赛汀共轭纳米颗粒低50%(因此细胞毒性更高)。我们从表面力学和热力学为纳米粒子的内吞作用提供了理论解释。

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