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基于星形 PLGA 和 PEI 交联 PEG 的两亲性共聚物的纳米级阳离子胶束在蛋白质递药中的应用。

Nanoscale cationic micelles of amphiphilic copolymers based on star-shaped PLGA and PEI cross-linked PEG for protein delivery application.

机构信息

Biomaterials Research Center, School of Pharmaceutical Sciences, Southern Medical University, Guangzhou, 510515, China.

Guangdong Provincial Key Laboratory of New Drug Screening, School of Pharmaceutical Sciences, Southern Medical University, Guangzhou, 510515, China.

出版信息

J Mater Sci Mater Med. 2019 Aug 7;30(8):93. doi: 10.1007/s10856-019-6294-y.

Abstract

To enhance the bioavailability of protein therapeutants and improve the stability of storage and delivery, a series of branched amphiphilic block copolymers consisting of cholic acid (CA) initiated poly(D,L-lactide-co-glycolide) (CA-PLGA) and water-soluble polyethyleneimine cross-linked polyethylene glycol (PEI-PEG) denoted as CA-PLGA-b-(PEI-PEG) were synthesized and characterized. CA-PLGA-b-(PEI-PEG) presented low cytotoxicity by MTT and cck-8 assay. The cationic CA-PLGA-b-(PEI-PEG) micelles (diameter about 100 nm and zeta potential 34-61 mV) were prepared through self-assembly method, and complexed with insulin via electrostatic interaction to obtain nanoscale micelle/insulin complexes. The micelle/insulin complexes-loaded CA-PLGA microspheres (MIC-MS, 10.4 ± 3.85 μm) were manufactured by employing a double emulsion (W/O/W) method. The in vitro insulin release behavior and in vivo hypoglycaemic effect of MIC-MS on streptozotocin (STZ) induced diabetic rats were compared with those of the insulin-loaded CA-PLGA microspheres (INS-MS, 7.8 ± 2.57 μm). The initial burst in vitro release of MIC-MS was markedly lower than that of INS-MS (P < 0.01), and the pharmacological availability of MIC-MS via subcutaneous administration was 148.9% relative to INS-MS. Therefore, the cationic CA-PLGA-b-(PEI-PEG) micelles can effectively increase the bioavailability of insulin in CA-PLGA microspheres and can be considered as a potential protein carrier.

摘要

为了提高蛋白质治疗药物的生物利用度并改善储存和递送的稳定性,合成并表征了一系列由胆酸(CA)引发的聚(D,L-丙交酯-共-乙交酯)(CA-PLGA)和水溶性聚乙烯亚胺交联聚乙二醇(PEI-PEG)组成的支链两亲嵌段共聚物,命名为 CA-PLGA-b-(PEI-PEG)。MTT 和 cck-8 测定表明 CA-PLGA-b-(PEI-PEG)具有低细胞毒性。通过自组装方法制备了带正电荷的 CA-PLGA-b-(PEI-PEG)胶束(直径约 100nm,zeta 电位 34-61mV),并通过静电相互作用将其与胰岛素复合,得到纳米级胶束/胰岛素复合物。采用双乳液(W/O/W)法制备了载有胶束/胰岛素复合物的 CA-PLGA 微球(MIC-MS,10.4±3.85μm)。比较了 MIC-MS 对链脲佐菌素(STZ)诱导的糖尿病大鼠的体外胰岛素释放行为和体内降血糖作用与胰岛素负载的 CA-PLGA 微球(INS-MS,7.8±2.57μm)的体外胰岛素释放行为和体内降血糖作用。MIC-MS 的体外初始突释明显低于 INS-MS(P<0.01),经皮下给药后 MIC-MS 的药效学可用性相对于 INS-MS 为 148.9%。因此,阳离子 CA-PLGA-b-(PEI-PEG)胶束可以有效地提高 CA-PLGA 微球中胰岛素的生物利用度,可以被认为是一种潜在的蛋白质载体。

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