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功能化聚离子复合物胶束用于潜在的靶向疏水性药物传递。

Functional Polyion Complex Micelles for Potential Targeted Hydrophobic Drug Delivery.

机构信息

Institute of Polymers, Bulgarian Academy of Sciences, Akad. G. Bonchev St., Bl. 103-A, 1113 Sofia, Bulgaria.

出版信息

Molecules. 2022 Mar 28;27(7):2178. doi: 10.3390/molecules27072178.

Abstract

Polyion complex (PIC) micelles have gained an increasing interest, mainly as promising nano-vehicles for the delivery of various hydrophilic charged (macro)molecules such as DNA or drugs to the body. The aim of the present study is to construct novel functional PIC micelles bearing cell targeting ligands on the surface and to evaluate the possibility of a hydrophobic drug encapsulation. Initially, a pair of functional oppositely charged peptide-based hybrid diblock copolymers were synthesized and characterized. The copolymers spontaneously co-assembled in water into nanosized PIC micelles comprising a core of a polyelectrolyte complex between poly(L-aspartic acid) and poly(L-lysine) and a biocompatible mixed shell of disaccharide-modified poly(ethylene glycol) and poly(2-hydroxyethyl methacrylate). Depending on the molar ratio between the oppositely charged groups, PIC micelles varying in surface charge were obtained and loaded with the natural hydrophobic drug curcumin. PIC micelles' drug loading efficiency, in vitro drug release profiles and antioxidant activity were evaluated. The preliminary results indicate that PIC micelles can be successfully used as carriers of hydrophobic drugs, thus expanding their potential application in nanomedicine.

摘要

聚离子复合物(PIC)胶束越来越受到关注,主要作为有前途的纳米载体,用于将各种亲水性带电(大)分子如 DNA 或药物递送到体内。本研究的目的是构建表面带有细胞靶向配体的新型功能性 PIC 胶束,并评估包裹疏水性药物的可能性。最初,合成并表征了一对功能相反电荷的基于肽的杂化两亲嵌段共聚物。该共聚物在水中自发组装成纳米级 PIC 胶束,其包含聚(L-天冬氨酸)和聚(L-赖氨酸)之间的聚电解质复合物的核以及双糖修饰的聚(乙二醇)和聚(2-羟乙基甲基丙烯酸酯)的生物相容性混合壳。根据相反电荷基团的摩尔比,得到了表面电荷不同的 PIC 胶束,并负载了天然疏水性药物姜黄素。评估了 PIC 胶束的载药效率、体外药物释放曲线和抗氧化活性。初步结果表明,PIC 胶束可成功用作疏水性药物的载体,从而扩展了它们在纳米医学中的潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/828c/9000450/1ae557685062/molecules-27-02178-g001.jpg

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