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作为药物递送系统的双响应性树枝状聚甘油硫酸盐的克级合成

Gram Scale Synthesis of Dual-Responsive Dendritic Polyglycerol Sulfate as Drug Delivery System.

作者信息

Reisbeck Felix, Ozimkovski Alexander, Cherri Mariam, Dimde Mathias, Quaas Elisa, Mohammadifar Ehsan, Achazi Katharina, Haag Rainer

机构信息

Institute of Chemistry and Biochemistry, Freie Universität Berlin, Takustr. 3, 14195 Berlin, Germany.

出版信息

Polymers (Basel). 2021 Mar 23;13(6):982. doi: 10.3390/polym13060982.

Abstract

Biocompatible polymers with the ability to load and release a cargo at the site of action in a smart response to stimuli have attracted great attention in the field of drug delivery and cancer therapy. In this work, we synthesize a dual-responsive dendritic polyglycerol sulfate (DR-dPGS) drug delivery system by copolymerization of glycidol, ε-caprolactone and an epoxide monomer bearing a disulfide bond (SSG), followed by sulfation of terminal hydroxyl groups of the copolymer. The effect of different catalysts, including Lewis acids and organic bases, on the molecular weight, monomer content and polymer structure was investigated. The degradation of the polymer backbone was proven in presence of reducing agents and Lipase B (CALB) enzyme, which results in the cleavage of the disulfides and ester bonds, respectively. The hydrophobic anticancer drug Doxorubicin (DOX) was loaded in the polymer and the kinetic assessment showed an enhanced drug release with glutathione (GSH) or CALB as compared to controls and a synergistic effect of a combination of both stimuli. Cell uptake was studied by using confocal laser scanning microscopy with HeLa cells and showed the uptake of the Dox-loaded carriers and the release of the drug into the nucleus. Cytotoxicity tests with three different cancer cell lines showed good tolerability of the polymers of as high concentrations as 1 mg mL while cancer cell growth was efficiently inhibited by DR-dPGS@Dox.

摘要

具有在智能响应刺激下在作用部位加载和释放货物能力的生物相容性聚合物在药物递送和癌症治疗领域引起了极大关注。在这项工作中,我们通过缩水甘油、ε-己内酯和带有二硫键的环氧化物单体(SSG)的共聚合成了一种双响应树枝状聚甘油硫酸盐(DR-dPGS)药物递送系统,随后对共聚物的末端羟基进行硫酸化。研究了包括路易斯酸和有机碱在内的不同催化剂对分子量、单体含量和聚合物结构的影响。在还原剂和脂肪酶B(CALB)存在下,聚合物主链发生降解,分别导致二硫键和酯键的断裂。将疏水性抗癌药物阿霉素(DOX)负载到聚合物中,动力学评估表明,与对照相比,谷胱甘肽(GSH)或CALB可增强药物释放,且两种刺激联合具有协同作用。使用共聚焦激光扫描显微镜对HeLa细胞进行细胞摄取研究,结果显示载有Dox的载体被摄取且药物释放到细胞核中。对三种不同癌细胞系的细胞毒性测试表明,聚合物在高达1 mg/mL的高浓度下具有良好的耐受性,而DR-dPGS@Dox可有效抑制癌细胞生长。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5eee/8004855/bb4dee651ffb/polymers-13-00982-g001.jpg

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