透皮
离子导入
材料科学
胰岛素释放
自愈水凝胶
药物输送
纳米技术
胰岛素
输送系统
生物医学工程
药理学
医学
糖尿病
高分子化学
内分泌学
1型糖尿病
放射科
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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