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可编程两亲性嵌段共聚物载体用于双载药系统

Dual Biochemically Breakable Drug Carriers from Programmed Telechelic Homopolymers.

机构信息

Laboratory of Sustainable Polymers, Department of Analytical Chemistry and Organic Chemistry, University Rovira i Virgili, Tarragona 43007, Spain.

Institute of Biocomputation and Physics of Complex Systems (BIFI), Joint Units IQFR-CSIC-BIFI, and GBsC-CSIC-BIFI, Universidad de Zaragoza, Zaragoza 50018, Spain.

出版信息

Biomacromolecules. 2020 Oct 12;21(10):4313-4325. doi: 10.1021/acs.biomac.0c01113. Epub 2020 Sep 23.

Abstract

Well-defined hydrophilic telechelic dibromo poly(triethylene glycol monomethyl ether acrylate)s were prepared by single-electron transfer living radical polymerization employing a hydrophobic difunctional initiator containing acetal and disulfide linkages. Although the resulting homopolymers have low hydrophobic contents (<8.5 wt % of the entire structure), they are able to self-assemble in water into nanoscale micellelike particles via chain folding. Acetal and disulfide linkages were demonstrated to be "keystone" units for their dual stimuli-responsive behavior under biochemically relevant conditions. Their site-selective middle-chain cleavage under both acidic pH and reductive conditions splits the homopolymer into two equal-sized fragments and results in the breakdown of the nanoassemblies. The drug loading/delivery potential of these nanoparticles was investigated using curcumine combining in vitro drug release, cytotoxicity, and cellular uptake studies with human cancer cell lines (HT-29 and HeLa). Importantly, this strategy may be extended to prepare innovative nanoplatforms based on hydrophilic homopolymers or random copolymers for intelligent drug delivery.

摘要

通过使用含有缩醛和二硫键的疏水双官能引发剂的单电子转移活性自由基聚合,制备了结构明确的亲水端基二溴聚(三乙二醇单甲基醚丙烯酸酯)。尽管所得的均聚物的疏水性含量低(整个结构的<8.5wt%),但它们能够通过链折叠在水中自组装成纳米级胶束状颗粒。缩醛和二硫键被证明是具有双重刺激响应行为的“关键”单元,可在与生化相关的条件下进行。它们在酸性 pH 值和还原条件下的选择性中链断裂将均聚物分成两个相等大小的片段,并导致纳米组装的破坏。通过体外药物释放、细胞毒性和细胞摄取研究与人类癌细胞系(HT-29 和 HeLa)相结合,研究了这些纳米粒子的药物负载/递送潜力。重要的是,该策略可扩展到制备基于亲水均聚物或无规共聚物的创新纳米平台,用于智能药物递送。

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