Department of Biotechnology, College of Life Science and Biotechnology, Yonsei University, 50 Yonsei-ro, Seodaemun-gu, Seoul 03722, South Korea.
Department of Food Science and Human Nutrition, University of Veterinary and Animal Sciences, Lahore 54000, Pakistan.
Int J Pharm. 2020 Oct 15;588:119736. doi: 10.1016/j.ijpharm.2020.119736. Epub 2020 Aug 3.
Although oral administration is favorable mode of insulin delivery, it is the most challenging route, owing to poor oral bioavailability. In this study, a chitosan (CS)-based insulin delivery system was developed by ionic crosslinking with phytic acid (PA). CS-PA microspheres were optimized with different crosslinking conditions of CS and PA using response surface methodology to retain insulin during preparation and gastric digestion. Furthermore, the in vitro release profile, morphological structure, cytotoxicity, and intestinal permeability of the optimized microspheres, and its hypoglycemic effect in diabetic rats were evaluated. Under optimal conditions, the entrapment efficiency was 97.1%, and 67.0% of insulin was retained in the microspheres after 2 h of gastric digestion followed by a sustained-release in intestinal fluid. Insulin was primarily distributed in the microsphere core with a monodisperse diameter of 663.3 μm. The microspheres increased the permeability of insulin across Caco-2/HT-29 monolayers by 1.6 times with negligible cytotoxicity. The microspheres had a relative pharmacological bioavailability of 10.6% and significantly reduced blood glucose levels with a long-lasting hypoglycemic effect after oral administration in diabetic rats. This study demonstrated that an optimized formulation of a simple ionic crosslinking system using CS and PA could facilitate efficient oral delivery of insulin.
尽管口服是胰岛素给药的首选方式,但由于其生物利用度差,这也是最具挑战性的途径。在本研究中,通过与植酸(PA)离子交联开发了一种基于壳聚糖(CS)的胰岛素传递系统。使用响应面法,以 CS 和 PA 的不同交联条件优化 CS-PA 微球,以在制备和胃消化过程中保留胰岛素。此外,还评估了优化后的微球的体外释放特性、形态结构、细胞毒性、肠道通透性及其在糖尿病大鼠中的降血糖作用。在最佳条件下,包封效率为 97.1%,经 2 h 胃消化后,67.0%的胰岛素保留在微球中,随后在肠液中持续释放。胰岛素主要分布在微球核心,粒径为 663.3 μm,单分散性好。微球使胰岛素穿过 Caco-2/HT-29 单层的通透性增加了 1.6 倍,且细胞毒性可忽略不计。微球具有相对的 10.6%的药理生物利用度,在糖尿病大鼠口服后可显著降低血糖水平,并具有持久的降血糖作用。本研究表明,使用 CS 和 PA 的简单离子交联系统的优化配方可以促进胰岛素的高效口服递送。