透皮
药物输送
小型化
可穿戴计算机
按需
生物医学工程
计算机科学
纳米技术
材料科学
嵌入式系统
工程类
医学
药理学
多媒体
作者
Qian Wu,Pan Chen,Puhuan Shi,Lei Zou,Shiya Huang,Ning-Ning Zhang,Sensen Li,Qian Chen,Yi Yang,Lujian Chen,Xuejia Hu
标识
DOI:10.1016/j.cej.2023.147124
摘要
Both acute and chronic diseases require on-demand and convenient drug delivery, particularly for life-threatening acute conditions. Although emerging microneedle arrays (MNs) offer a promising therapeutic platform for painlessly administering drug payloads to patients, current dissolving or diffusion-based MNs encounter significant challenges in achieving programmable and on-demand liquid drug delivery. In this study, we develop active programmable MNs based on a wearable acoustic platform, which enables the smart management of diseases. The vortex effect near the tips excited by acoustics is utilized to actively extract drugs from MNs, that are manufactured through high precision 3D printing. By digitally controlling acoustic signals, we demonstrate user-requirement-based drug releasing, in tissue-mimicking agar gel phantoms and mouse models. The system achieves precise dosage control through three different modes: rapid single delivery mode, batch delivery mode, and long-term slow-release mode. This versatility makes the system suitable for various disease conditions. The in situ acoustic drug delivery strategy implemented on this platform offers advantages in terms of miniaturization, ease of operation and intelligence. This platform is anticipated to provide a novel personalized therapeutic approach for clinics and biomedicine.
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