Lin Yonghui, Hu Wei, Bai Xiaowen, Ju Yanshan, Cao Cong, Zou Shufen, Tong Zaizai, Cen Chao, Jiang Guohua, Kong Xiangdong
College of Materials Science and Engineering & Institute of Smart Biomedical Materials & Zhejiang-Mauritius Joint Research Center for Biomaterials and Tissue Engineering, Zhejiang Sci-Tech University, Hangzhou 310018, China.
Jiangxi Province Key Laboratory of Polymer Micro/Nano Manufacturing and Devices, School of Chemistry, Biology, and Materials Science, East China University of Technology, Nanchang 330013, China.
ACS Appl Bio Mater. 2020 Sep 21;3(9):6376-6383. doi: 10.1021/acsabm.0c00813. Epub 2020 Aug 25.
Smart insulin delivery platforms having the ability of mimicking pancreatic cells are highly expected for diabetes treatment. Herein, a smart glucose-sensitive insulin delivery platform on the basis of transcutaneous microneedles has been designed. The as-prepared microneedles are composed of glucose- and pH-responsive supramolecular polymer vesicles (PVs) as the drug storage and water soluble polymers as the matrix. The well-defined PVs are constructed from the host-guest inclusion complex between water-soluble pillar[5]arene (WP5) with pH-responsiveness and paraquat-ended poly(phenylboronic acid) (PPBA-G) with glucose-sensitivity. The drug-loaded PVs, including insulin and glucose oxidase (GOx) can quickly respond to elevated glucose level, accompanied by the disassociation of PVs and fast release of encapsulated insulin. Moreover, the insulin release rate is further accelerated by GOx, which generates gluconic acid at high glucose levels, thus decreasing the local pH. Therefore, the host-guest interaction between WP5 and PPBA-G is destroyed and a total structure disassociation of PVs takes place, contributing to a fast release of encapsulated insulin. The in vivo insulin delivery to diabetic rats displays a quick response to hyperglycemic levels and then can fast regulate the blood glucose concentrations to normal levels, which demonstrates that the obtained smart insulin device has a highly potential application in the treatment of diabetes.
具有模拟胰腺细胞能力的智能胰岛素递送平台在糖尿病治疗方面备受期待。在此,基于经皮微针设计了一种智能葡萄糖敏感型胰岛素递送平台。所制备的微针由葡萄糖和pH响应性超分子聚合物囊泡(PVs)作为药物储存载体以及水溶性聚合物作为基质组成。明确的PVs是由具有pH响应性的水溶性柱[5]芳烃(WP5)与具有葡萄糖敏感性的百草枯端基聚(苯硼酸)(PPBA-G)之间的主客体包合物构建而成。负载药物的PVs,包括胰岛素和葡萄糖氧化酶(GOx),能够快速响应升高的葡萄糖水平,伴随着PVs的解离和封装胰岛素的快速释放。此外,GOx在高葡萄糖水平下产生葡萄糖酸,从而降低局部pH值,进一步加速了胰岛素的释放速率。因此,WP5与PPBA-G之间的主客体相互作用被破坏,PVs发生整体结构解离,促使封装胰岛素快速释放。对糖尿病大鼠的体内胰岛素递送显示出对高血糖水平的快速响应,然后能够将血糖浓度快速调节至正常水平,这表明所获得的智能胰岛素装置在糖尿病治疗中具有高度潜在的应用价值。