聚乙二醇衍生纳米结构作为疏水药物潜在递送载体的合成与评价

Sunaina Chaurasiya , Vigram Muneeswaran M , Ashok Kumar Jangid , Kanakaraju Medicherla , Deep Pooja , Hitesh Kulhari
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引用次数: 0

摘要

树状大分子是具有多种生物特性的三维单分散聚合物。本研究以三聚己酸(TMA)为核心分子,聚乙二醇(PEG2000)为支链单元,合成了一种新型的树枝状纳米结构。PEG2000与TMA的偶联是通过在TMA的羧基和PEG的羟基之间形成酯键实现的。通过FTIR和质子核磁共振谱分析证实了树突状纳米结构的成功形成。通过FTIR和1HNMR分析,还验证了低水溶性抗癌药物紫杉醇(PTX)被包封到树突状纳米结构中。利用DLS、TEM、DSC和XRD等技术对ptx负载的TMA-PEG纳米结构进行了进一步表征。在不同生理缓冲液中的体外药物释放研究表明,PTX从纳米结构中释放。溶血毒性研究表明,空白树突状结构和ptx负载制剂均对人体红细胞无毒性,表明其具有良好的生物相容性。此外,对A549(人肺癌)和MCF7(人乳腺癌)细胞系的体外细胞活力测定显示出剂量和时间依赖性的细胞毒性作用。重要的是,与游离PTX相比,PTX负载的TMA-PEG纳米结构显示出更高的细胞毒性。因此,所开发的树突纳米结构有望作为疏水性抗癌药物(如紫杉醇)的有效药物递送系统,提供更好的疗效和生物相容性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Synthesis and evaluation of PEG derivatized nanostructures as potential delivery carrier for hydrophobic drugs

Synthesis and evaluation of PEG derivatized nanostructures as potential delivery carrier for hydrophobic drugs
Dendrimers are three-dimensional, monodispersed polymers with diverse biological properties. In this study, a novel dendritic nanostructure was synthesized using trimesic acid (TMA) as the core molecule and poly(ethylene glycol) (PEG2000) as the branching units. The coupling of PEG2000 with TMA was achieved through the formation of ester bonds between the carboxylic groups of TMA and the hydroxyl groups of PEG. The successful formation of the dendritic nanostructure was confirmed using FTIR and proton NMR spectroscopy. The encapsulation of the poorly water-soluble anticancer drug paclitaxel (PTX) into the dendritic nanostructure was also validated through FTIR and 1HNMR analysis. The PTX-loaded TMA-PEG nanostructure was further characterized using DLS, TEM, DSC, and XRD techniques. In vitro drug release studies in different physiological buffers demonstrated the release profile of PTX from the nanostructures. Haemolytic toxicity studies revealed that both blank dendritic structures and PTX-loaded formulations exhibited no toxicity toward human red blood cells, indicating excellent biocompatibility. Furthermore, in vitro cell viability assays against A549 (human lung cancer) and MCF7 (human breast cancer) cell lines showed dose- and time-dependent cytotoxic effects. Importantly, the PTX-loaded TMA-PEG nanostructure demonstrated significantly higher cytotoxicity compared to free PTX. Thus, the developed dendritic nanostructure shows promise as an efficient drug delivery system for hydrophobic anticancer drugs like paclitaxel, offering improved efficacy and biocompatibility.
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