Electrically Modulated Semi‐Convertible Hydrogel Microneedles for Programmable Insulin Delivery
Abstract
ABSTRACT Insulin delivery systems that mimic pancreatic secretion offer promising improvements in type 1 diabetes management. However, current systems struggle with sustained and precise release. Inspired by the dynamic secretion mechanisms of the pancreas, a wearable electrically modulated semi‐convertible hydrogel microneedle system for insulin delivery has been developed for long‐term self‐regulation in the treatment of type 1 diabetes. This system combines a non‐covalent electro‐responsive silk fibroin network and a polyethylene glycol/chitosan matrix, integrated with flexible electrodes that exhibit a partial gel‐sol phase transition under 1.2 V electrical stimulation. In hyperglycemic conditions, the electric field induces silk fibroin phase transition, triggering insulin release through electrostatic interactions and polymer network expansion. Once blood glucose normalizes, insulin is released passively via diffusion when the electric field is turned off. In type 1 diabetic mice, a single microneedle patch provides segmented control, with a 10‐min stimulation effect lasting up to 8 h, extendable to 16 h with further stimulation. This system offers a versatile, sustained, and precise drug delivery strategy with significant potential for chronic disease management.
Article Details
Authors (9)
Hongyue Jiang
State Key Laboratory of Supramolecular Structure and Materials College of Chemistry Jilin University Changchun P. R. China
Xinze Zhang
Xiang Li
Yuanyu Li
Xuhao Yang
School of Materials Science and Engineering Nanjing University of Science and Technology Nanjing 210094 China
Yudan Lv
The Department of Neurology the First Hospital of Jilin University Changchun P. R. China
Wenlong Song
State Key Laboratory of Natural and Biomimetic Drugs, School of Pharmaceutical Sciences, Peking University, 38 Xueyuan Road, Haidian District, Beijing 100191, China
Wenjing Tian
State Key Laboratory of Supramolecular Structure and Materials
Bin Xu