透皮
离子导入
材料科学
胰岛素释放
药物输送
按需
纳米技术
胰岛素
输送系统
控制释放
生物医学工程
药理学
医学
计算机科学
糖尿病
内科学
多媒体
1型糖尿病
放射科
内分泌学
作者
Mingwei Peng,Ziwen Heng,Dewei Ma,Bo Hou,Ke‐Ke Yang,Qinglong Liu,Zhongwei Gu,Wei Liu,Siyuan Chen
标识
DOI:10.1021/acsami.4c18381
摘要
Transdermal insulin delivery in a painless, convenient, and on-demand way remains a long-standing challenge. A variety of smart microneedles (MNs) fabricated by glucose-responsive phenylboronic acid hydrogels have been previously developed to provide painless and autonomous insulin release in response to a glucose level change. However, like the majority of MNs, their transdermal delivery efficiency was still relatively low compared to that with subcutaneous injection. Herein, we report an iontophoresis (ITP)-integrated smart MNs delivery platform with enhanced transdermal delivery efficiency and delivery depth. Carbon nanotubes (CNTs) were induced in the boronate-containing hydrogel to develop a semi-interpenetrating network hydrogel with enhanced stiffness and conductivity. Remarkably, ITP not only facilitated efficient and deeper transdermal delivery of insulin via electroosmosis and electrophoresis but also well-maintained glucose responsiveness. This ITP-combined smart MNs delivery platform, which could provide on-demand insulin delivery in a painless, convenient, and safe way, is promising to achieve persistent glycemic control. Furthermore, transdermal delivery of payloads with a wide size range was achieved by this delivery platform and thus shed light on the development of an efficient transdermal delivery platform with deep skin penetration in a minimally invasive way.
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