透皮
角质层
米诺地尔
材料科学
医学
药品
药理学
药物输送
脱发
生物医学工程
皮肤病科
纳米技术
病理
作者
Jen-Hung Fang,Che-Hau Liu,Ru-Siou Hsu,Yin-Yu Chen,Wen‐Hsuan Chiang,Hui‐Min David Wang,Shang‐Hsiu Hu
出处
期刊:Polymers
[MDPI AG]
日期:2020-06-22
卷期号:12 (6): 1392-1392
被引量:36
标识
DOI:10.3390/polym12061392
摘要
The transdermal delivery of therapeutic agents amplifying a local concentration of active molecules have received considerable attention in wide biomedical applications, especially in vaccine development and medical beauty. Unlike oral or subcutaneous injections, this approach can not only avoid the loss of efficacy of oral drugs due to the liver’s first-pass effect but also reduce the risk of infection by subcutaneous injection. In this study, a magneto-responsive transdermal composite microneedle (MNs) with a mesoporous iron oxide nanoraspberry (MIO), that can improve the drug delivery efficiency, was fabricated by using a 3D printing-molding method. With loading of Minoxidil (Mx, a medication commonly used to slow the progression of hair loss and speed the process of hair regrowth), MNs can break the barrier of the stratum corneum through the puncture ability, and control the delivery dose for treating androgenetic alopecia (AGA). By 3D printing process, the sizes and morphologies of MNs is able to be, easily, architected. The MIOs were embedded into the tip of MNs which can deliver Mx as well as generate mild heating for hair growth, which is potentially attributed by the expansion of hair follicle and drug penetration. Compared to the mice without any treatments, the hair density of mice exhibited an 800% improvement after being treated by MNs with MF at 10-days post-treatment.
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