Wang Jixue, Li Shengxian, Han Yuping, Guan Jingjing, Chung Shirley, Wang Chunxi, Li Di
Department of Urology, The First Hospital of Jilin University, Changchun, China.
Key Laboratory of Polymer Ecomaterials, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, China.
Front Pharmacol. 2018 Mar 8;9:202. doi: 10.3389/fphar.2018.00202. eCollection 2018.
For the treatment of malignancy, many therapeutic agents, including small molecules, photosensitizers, immunomodulators, proteins and genes, and so forth, have been loaded into nanocarriers for controllable cancer therapy. Among these nanocarriers, polymeric micelles have been considered as one of the most promising nanocarriers, some of which have already been applied in different stages of clinical trials. The successful advantages of polymeric micelles from bench to bedside are due to their special core/shell structures, which can carry specific drugs in certain disease conditions. Particularly, poly(ethylene glycol)-polylactide (PEG-PLA) micelles have been considered as one of the most promising platforms for drug delivery. The PEG shell effectively prevents the adsorption of proteins and phagocytes, thereby evidently extending the blood circulation period. Meanwhile, the hydrophobic PLA core can effectively encapsulate many therapeutic agents. This review summarizes recent advances in PEG-PLA micelles for the treatment of malignancy. In addition, future perspectives for the development of PEG-PLA micelles as drug delivery systems are also presented.
为了治疗恶性肿瘤,许多治疗剂,包括小分子、光敏剂、免疫调节剂、蛋白质和基因等,已被载入纳米载体用于可控癌症治疗。在这些纳米载体中,聚合物胶束被认为是最有前途的纳米载体之一,其中一些已经应用于不同阶段的临床试验。聚合物胶束从实验室到临床应用的成功优势在于其特殊的核/壳结构,这种结构可以在特定疾病条件下携带特定药物。特别是,聚乙二醇-聚丙交酯(PEG-PLA)胶束被认为是最有前途的药物递送平台之一。PEG外壳有效地防止了蛋白质和吞噬细胞的吸附,从而显著延长了血液循环时间。同时,疏水的PLA核可以有效地包封许多治疗剂。本文综述了PEG-PLA胶束治疗恶性肿瘤的最新进展。此外,还介绍了PEG-PLA胶束作为药物递送系统的未来发展前景。