胰岛素
葡萄糖氧化酶
右旋糖酐
胰岛素释放
化学
血糖性
纳米颗粒
体内
动力学
药物输送
糖尿病
生物化学
内科学
内分泌学
材料科学
纳米技术
医学
生物
酶
有机化学
1型糖尿病
量子力学
生物技术
物理
作者
Lisa R. Volpatti,Morgan A. Matranga,Abel B. Cortinas,Derfogail Delcassian,Kevin B. Daniel,Róbert Langer,Daniel G. Anderson
出处
期刊:ACS Nano
[American Chemical Society]
日期:2019-11-25
卷期号:14 (1): 488-497
被引量:178
标识
DOI:10.1021/acsnano.9b06395
摘要
To mimic native insulin activity, materials have been developed that encapsulate insulin, glucose oxidase, and catalase for glucose-responsive insulin delivery. A major challenge, however, has been achieving the desired kinetics of both rapid and extended release. Here, we tune insulin release profiles from polymeric nanoparticles by altering the degree of modification of acid-degradable, acetalated-dextran polymers. Nanoparticles synthesized from dextran with a high acyclic acetal content (94% of residues) show rapid release kinetics, while nanoparticles from dextran with a high cyclic acetal content (71% of residues) release insulin more slowly. Thus, coformulation of these two materials affords both rapid and extended glucose-responsive insulin delivery. In vivo analyses using both streptozotocin-induced type 1 diabetic and healthy mouse models indicate that this delivery system has the ability to respond to glucose on a therapeutically relevant time scale. Importantly, the concentration of human insulin in mouse serum is enhanced more than 3-fold with elevated glucose levels, providing direct evidence of glucose-responsiveness in animals. We further show that a single subcutaneous injection provides 16 h of glycemic control in diabetic mice. We believe the nanoparticle formulations developed here may provide a generalized strategy for the development of glucose-responsive insulin delivery systems.
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