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用于药物递送的双响应接枝共聚物的化学酶法合成:长期稳定性、高载药量和细胞选择性

Chemoenzymatic synthesis of dual-responsive graft copolymers for drug delivery: long-term stability, high loading and cell selectivity.

作者信息

Li Jun, Yang Xian-Ling, Liu Yan-Hong, Wu Wan-Xia, Liu Bei-Yu, Wang Na, Yu Xiao-Qi

机构信息

Key Laboratory of Green Chemistry & Technology, Ministry of Education, College of Chemistry, Sichuan University, Chengdu 610064, P. R. China.

出版信息

J Mater Chem B. 2018 Nov 21;6(43):6993-7003. doi: 10.1039/c8tb01973h. Epub 2018 Oct 16.

Abstract

A series of amphiphilic graft copolymers, poly(N-propargyldiethanolamine 4,4'-dithiodibutyionate)-graft-monomethoxy poly(ethylene glycol) (PPD-g-mPEG), were designed via a chemoenzymatic method for pH and reduced glutathione (GSH) dual-responsive drug delivery. The effects of percent grafting and molecular weights of mPEG on critical micelle concentration (CMC) values, size of micelles, drug loading and dual-response were tested. The graft copolymers could easily form homogeneous spherical micelles with appropriate sizes and zeta-potentials. The micelles of PPD-g-mPEG copolymers loaded doxorubicin (DOX) in high efficiency, and showed excellent stability under physiological conditions and synergetic dual-response to weakly acidic pH and GSH. In vitro experiments confirmed that the DOX-loaded micelles could be internalized into cancer cells efficiently and release DOX over time. Furthermore, cell cytotoxicity assays indicated that the graft copolymers were non-cytotoxic to both cancerous and normal cells while the DOX-loaded micelles greatly improved the selectivity ratios between HeLa cells and HL-7702 cells. DOX-loaded micelles also avoided hemolysis of red blood cells (RBCs) effectively compared with commercialized doxorubicin hydrochloride. All these demonstrated the potential of PPD-g-mPEG as a model to create more functional dual-responsive nanocarriers for controlled drug delivery.

摘要

通过化学酶法设计了一系列两亲性接枝共聚物,聚(N-炔丙基二乙醇胺4,4'-二硫代二丁酸酯)-接枝-单甲氧基聚(乙二醇)(PPD-g-mPEG),用于pH和还原型谷胱甘肽(GSH)双响应药物递送。测试了接枝百分比和mPEG分子量对临界胶束浓度(CMC)值、胶束尺寸、药物负载和双响应的影响。接枝共聚物能够轻松形成具有合适尺寸和zeta电位的均匀球形胶束。PPD-g-mPEG共聚物胶束高效负载阿霉素(DOX),并在生理条件下表现出优异的稳定性,对弱酸性pH和GSH具有协同双响应。体外实验证实,负载DOX的胶束能够有效地内化到癌细胞中,并随时间释放DOX。此外,细胞毒性试验表明,接枝共聚物对癌细胞和正常细胞均无细胞毒性,而负载DOX的胶束大大提高了HeLa细胞与HL-7702细胞之间的选择性比率。与商业化的盐酸阿霉素相比,负载DOX的胶束还能有效避免红细胞(RBC)溶血。所有这些都证明了PPD-g-mPEG作为创建更多功能性双响应纳米载体用于控释药物递送模型的潜力。

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