Wang Mingqi, Zhang Xiaolong, Peng Han, Zhang Mingkui, Zhang Xianshuo, Liu Zhe, Ma Liwei, Wei Hua
State Key Laboratory of Applied Organic Chemistry, Key Laboratory of Nonferrous Metal Chemistry and Resources Utilization of Gansu Province, and College of Chemistry and Chemical Engineering, Lanzhou University, Lanzhou, Gansu 730000, China.
ACS Biomater Sci Eng. 2018 Aug 13;4(8):2903-2910. doi: 10.1021/acsbiomaterials.8b00678. Epub 2018 Jul 27.
The preparation of various types of miktoarm star polymers with precisely controlled structures (AB, ABC, ABC, etc.) has made significant progress due to the considerable advances in the synthetic strategies, including multistep protections/deprotections, orthogonality, and integration of different polymerization techniques. However, compared to the well-developed synthesis methodologies, the investigations on miktoarm star copolymers as drug delivery vehicles remain relatively unexplored, especially for the relationship of their branched structures and properties as drug delivery systems. To elucidate this structure-property relationship of amphiphilic miktoarm star polymers, we prepared four different amphiphilic miktoarm star copolymers with the respectively identical molecular weights (MWs) of hydrophilic and hydrophobic moieties but different star structures using heteroinitiators that were synthesized by protection/deprotection strategies for integrated ring-opening polymerization of hydrophobic ε-caprolactone and atom transfer radical polymerization of hydrophilic oligo (ethylene glycol) monomethyl ether methacrylate (OEGMA). Further screening of an optimal formulation for anticancer drug delivery by the stability of micelles, in vitro drug loading capacity, drug release properties, cellular uptake efficacy, and cytotoxicity of doxorubicin (DOX)-loaded micelles showed that PCLPOEGMA micelles possessed the lowest critical micelle concentration, the highest drug loading content, and enhanced therapeutic efficiency for DOX release of all the synthesized four star copolymer constructs. This study thus provides preliminary guidelines and rationalities for the construction of amphiphilic miktoarm star polymers toward enhanced anticancer drug delivery.
由于合成策略取得了重大进展,包括多步保护/脱保护、正交性以及不同聚合技术的整合,各种具有精确可控结构(AB、ABC、ABC等)的多臂星型聚合物的制备取得了显著进展。然而,与成熟的合成方法相比,作为药物递送载体的多臂星型共聚物的研究仍相对较少,尤其是它们的支化结构与作为药物递送系统的性质之间的关系。为了阐明两亲性多臂星型聚合物的这种结构-性质关系,我们使用通过保护/脱保护策略合成的杂化引发剂,制备了四种不同的两亲性多臂星型共聚物,它们具有相同的亲水性和疏水性部分分子量,但星型结构不同,用于疏水的ε-己内酯的开环聚合与亲水性聚乙二醇单甲醚甲基丙烯酸酯(OEGMA)的原子转移自由基聚合的整合。通过胶束稳定性、体外载药能力、药物释放特性、细胞摄取效率以及载有多柔比星(DOX)的胶束的细胞毒性,进一步筛选用于抗癌药物递送的最佳配方,结果表明PCLPOEGMA胶束在所有合成的四种星型共聚物构建体中具有最低的临界胶束浓度、最高的载药含量以及增强的多柔比星释放治疗效率。因此,本研究为构建用于增强抗癌药物递送的两亲性多臂星型聚合物提供了初步指导原则和理论依据。