透皮
钙黄绿素
材料科学
生物医学工程
药物输送
磁导率
反应离子刻蚀
药品
渗透(战争)
纳米技术
蚀刻(微加工)
药理学
化学
医学
膜
生物化学
图层(电子)
运筹学
工程类
作者
Sébastien Henry,Devin V. McAllister,Mark G. Allen,Mark R. Prausnitz
标识
DOI:10.1109/memsys.1998.659807
摘要
Although modern biotechnology has produced extremely sophisticated and potent drugs, many of these compounds cannot be effectively delivered using current drug delivery techniques (e.g., pills and injections). Administration across skin by transdermal drug delivery is an attractive alternative, but it is limited by the remarkably poor permeability of the skin. Because the primary barrier to transport is located in the upper 10-15 /spl mu/m of skin, and because nerves are only found in deeper tissue, we made arrays of microneedles long enough to cross the permeability barrier but not so long that they stimulate nerves, thereby causing no pain. These microneedles were fabricated using the Black Silicon Method, which is a reactive ion etching process in which an SF/sub 6//O/sub 2/ plasma etches silicon anisotropically. When inserted into skin in vitro, these microneedles demonstrated excellent mechanical properties and enhanced skin permeability to calcein, a model drug, by up to four orders of magnitude. Limited tests on humans demonstrated that microneedles were painless.
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