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由双重超分子组装诱导的温敏水凝胶及其控制释放性能用于增强抗癌药物递送。

Thermoresponsive Hydrogel Induced by Dual Supramolecular Assemblies and Its Controlled Release Property for Enhanced Anticancer Drug Delivery.

机构信息

Department of Biomedical Engineering, Faculty of Engineering, National University of Singapore, 7 Engineering Drive 1, Singapore 117574, Singapore.

Institute of Materials Research and Engineering, A*STAR (Agency for Science, Technology and Research), 2 Fusionopolis Way, Singapore 138634, Singapore.

出版信息

Biomacromolecules. 2020 Apr 13;21(4):1516-1527. doi: 10.1021/acs.biomac.0c00077. Epub 2020 Mar 20.

Abstract

Supramolecular hydrogels based on inclusion complexation between cyclodextrins (CDs) and polymers have attracted much interest because of their potential for biomedical applications. It is also attractive to incorporate stimuli-responsive properties into the system to create "smart" hydrogels. Herein, a poly(-isopropylacrylamide) (PNIPAAm) star polymer with a β-CD core and an adamantyl-terminated poly(ethylene glycol) (Ad-PEG) polymer were synthesized. They self-assembled into a thermoresponsive pseudo-block copolymer through host-guest complexation and formed supramolecular micelles with the change in environment temperature. Subsequently, an injectable polypseudorotaxane-based supramolecular hydrogel was formed between α-CD and the PEG chains of the pseudo-block copolymer. The hydrogel had a unique network structure involving two types of supramolecular self-assemblies between cyclodextrins and polymers, that is, the host-guest complexation between β-CD units and adamantyl groups and the polypseudorotaxane formation between α-CD and PEG chains. We hypothesize that the dual supramolecular hydrogel formed at room temperature may be enhanced by increasing the temperature over the lower critical solution temperature of PNIPAAm because of the hydrophobic interactions of PNIPAAm segments. Furthermore, if the hydrogel is applied for sustained delivery of hydrophobic drugs, the copolymer dissolved from the hydrogel could micellize and continue to serve as micellar drug carriers with the drug encapsulated in the hydrophobic core. Rheological tests revealed that the hydrophobic interactions of the PNIPAAm segments could significantly enhance the strength of the hydrogel when the temperature increased from 25 to 37 °C. As compared to hydrogels formed by α-CD and PEG alone, the sustained release property of this thermoresponsive hydrogel for an anticancer drug, doxorubicin (DOX), improved at 37 °C. The hydrogel dissolved slowly and released the pseudo-block copolymer in the form of micelles that continued to serve as drug carriers with DOX encapsulated in the hydrophobic core, achieving a better cellular uptake and anticancer effect than free DOX controls, even in multidrug-resistant cancer cells. According to these findings, the dual supramolecular hydrogel developed in this work with remarkable thermoresponsive properties might have potential for sustained anticancer drug delivery with enhanced therapeutic effect in multidrug-resistant cancer cells.

摘要

基于环糊精(CDs)与聚合物之间包合络合作用的超分子水凝胶因其在生物医学应用方面的潜力而受到广泛关注。将刺激响应特性纳入系统中以创建“智能”水凝胶也很有吸引力。本文合成了一种具有β-CD 核和金刚烷基封端的聚(乙二醇)(Ad-PEG)聚合物的聚(异丙基丙烯酰胺)(PNIPAAm)星型聚合物。它们通过主客体络合自组装成温敏假两亲嵌段共聚物,并随着环境温度的变化形成超分子胶束。随后,α-CD 与假两亲嵌段共聚物的 PEG 链之间形成了一种可注射的聚伪轮烷基超分子水凝胶。该水凝胶具有独特的网络结构,涉及到两种类型的 CD 与聚合物之间的超分子自组装,即β-CD 单元与金刚烷基之间的主客体络合以及α-CD 与 PEG 链之间的聚伪轮烷形成。我们假设,由于 PNIPAAm 段的疏水相互作用,在室温下形成的双超分子水凝胶可能会在温度超过 PNIPAAm 的下临界溶液温度时增强。此外,如果该水凝胶用于疏水性药物的持续释放,从水凝胶中溶解的共聚物可以胶束化,并继续作为胶束药物载体,将药物包裹在疏水性核心中。流变学测试表明,当温度从 25°C 升高到 37°C 时,PNIPAAm 段的疏水相互作用可以显著增强水凝胶的强度。与单独由α-CD 和 PEG 形成的水凝胶相比,这种温敏水凝胶对阿霉素(DOX)等抗癌药物的持续释放性能在 37°C 时得到改善。水凝胶缓慢溶解,并以胶束的形式释放出伪嵌段共聚物,继续作为药物载体,将 DOX 包裹在疏水性核心中,与游离 DOX 对照组相比,具有更好的细胞摄取和抗癌效果,即使在多药耐药癌细胞中也是如此。根据这些发现,本文开发的具有显著温敏特性的双超分子水凝胶可能具有用于多药耐药癌细胞中增强治疗效果的持续抗癌药物输送的潜力。

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