双重交联的可降解的多离子微粒用于持续的葡萄糖反应性胰岛素释放
Yuhong Ma1, Yu Xing1, Fuwei Han1
1Department of Pharmaceutical Engineering, School of Engineering, China Pharmaceutical University, Nanjing 211198, P. R. China. hlqian@cpu.edu.cn.
Biomaterials science
|May 15, 2024
概括
这项研究引入了双重交联的胰岛素多离子微粒 (DCM@胰岛素),以改善糖尿病治疗. 这些小粒提供持续的葡萄糖反应性胰岛素释放,在高血糖环境中增强血糖控制.
科学领域:
- 生物材料科学 生物材料科学
- 聚合物化学 聚合物化学
- 药物输送系统 药物输送系统
背景情况:
- 对葡萄糖敏感的输送系统对糖尿病有希望,但在高血糖症中往往不稳定,限制持续的胰岛素释放.
- 现有的系统面临短期胰岛素释放和高葡萄糖环境中的不稳定性挑战.
研究的目的:
- 设计和评估双重交联的胰岛素多离子微粒 (DCM@胰岛素) 进行增强,持续的葡萄糖反应性胰岛素释放.
- 提高糖尿病管理中的胰岛素输送系统的稳定性和治疗疗效.
主要方法:
- 合成包含酸和UV可交联单元的triblock聚合物.
- 形成双重交联的多离子细胞,封装胰岛素 (DCM@胰岛素).
- 评估葡萄糖反应,胰岛素释放动力学,稳定性和体内血糖控制.
主要成果:
- 在高血糖条件下,DCM@insulin表现出增强的血糖反应和持续的胰岛素释放.
- 双重交叉连接 (乙烯乙烯和UV诱导) 保护胰岛素免受降解和突发释放.
- 在体内研究表明,DCM@胰岛素有效地维持了正常血糖水平6小时,与单个交叉链接的小粒相比.
结论:
- 开发的对葡萄糖有反应的,双重交联的多离子菌根系统显示出有效治疗糖尿病的巨大潜力.
- DCM@insulin提供一种稳定和持续的胰岛素输送方法,解决当前系统的局限性.
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