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Reductively degradable polyester-based block copolymers prepared by facile polycondensation and ATRP: synthesis, degradation, and aqueous micellization

机译:通过容易的缩聚和ATRP制备的可还原降解的聚酯基嵌段共聚物:合成,降解和水性胶束化

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摘要

Well-defined reductively degradable amphiphilic block copolymers having disulfide linkages positioned repeatedly on hydrophobic chains, thus exhibiting fast degradation, were prepared by a combination of polycondensation and ATRP. The new method consists of three synthetic steps including, (1) polycondensation of commercially available diols and diacids through carbodiimide coupling or high temperature processes to synthesize degradable polyesters with disulfides labeled on the main chain at regular intervals (ssPES–OH), (2) bromination of ssPES–OH to ssPES–Br, and (3) ATRP for chain extension of ssPES–Br with water-soluble polymethacrylate, yielding ssPES-b-polymethacrylate block copolymers (ssABPs). The reductive cleavage of disulfide linkages in reducing conditions resulted in the degradation of ssPES homopolymers; their degradation rate was significantly enhanced with the increasing amounts of disulfide linkages in ssPES–OH and reducing agents. For ATRP, gel permeation chromatography and 1H-NMR results confirmed the synthesis of well-defined ssABPs and revealed that polymerizations were well controlled. Because of their amphiphilic nature, ssABPs self-assembled in water toward the formation of core/shell micelles consisting of a hydrophobic ssPES core surrounded with polymethacrylate coronas. The effects of the corona's chain length on thermal properties and micellization in water of well-defined ssABPs were examined. Moreover, reductive (or thiol-responsive) degradation of ssABP-based micelles enabled fast release of encapsulated model drugs. Cell culture experiments confirmed nontoxicity and biocompatibility of well-defined ssABPs as effect candidates for targeted delivery applications.
机译:通过缩聚反应和ATRP的组合制备了具有良好定义的可还原降解的两亲嵌段共聚物,该共聚物具有重复位于疏水链上的二硫键,因此具有快速降解的特性。新方法包括三个合成步骤,其中包括:(1)通过碳二亚胺偶联或高温工艺使市售的二醇和二酸缩聚,以固定间隔(ssPES-OH)合成具有主链上标记的二硫键的可降解聚酯,(2)将ssPES-OH溴化为ssPES-Br,以及(3)用ATRP进行ssPES-Br与水溶性聚甲基丙烯酸酯的扩链,生成ssPES-b-聚甲基丙烯酸酯嵌段共聚物(ssABPs)。在还原条件下二硫键的还原裂解导致ssPES均聚物的降解。随着ssPES-OH和还原剂中二硫键数量的增加,它们的降解率显着提高。对于ATRP,凝胶渗透色谱和1H-NMR结果证实了定​​义明确的ssABP的合成,并揭示了聚合反应受到良好控制。由于其两亲性,ssABP在水中自组装,形成核/壳胶束,该胶束由疏水的ssPES核组成,并被聚甲基丙烯酸酯电晕包围。研究了电晕链长对明确定义的ssABP在水中的热性能和胶束化的影响。此外,基于ssABP的胶束的还原性(或巯基响应性)降解能够快速释放封装的模型药物。细胞培养实验证实了明确定义的ssABPs的无毒和生物相容性,可作为靶向递送应用的候选药物。

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