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工程化微针贴片用于皮肤疫苗接种和药物传递。

Engineering Microneedle Patches for Vaccination and Drug Delivery to Skin.

机构信息

School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332-0100; email:

出版信息

Annu Rev Chem Biomol Eng. 2017 Jun 7;8:177-200. doi: 10.1146/annurev-chembioeng-060816-101514. Epub 2017 Mar 24.

Abstract

Microneedle patches (MNPs) contain arrays of solid needles measuring hundreds of microns in length that deliver drugs and vaccines into skin in a painless, easy-to-use manner. Optimal MNP design balances multiple interdependent parameters that determine mechanical strength, skin-insertion reliability, drug delivery efficiency, painlessness, manufacturability, and other features of MNPs that affect their performance. MNPs can be made by adapting various microfabrication technologies for delivery of small-molecule drugs, biologics, and vaccines targeted to the skin, which can have pharmacokinetic and immunologic advantages. A small number of human clinical trials, as well as a large and growing market for MNP products for cosmetics, indicate that MNPs can be used safely, efficaciously, and with strong patient acceptance. More advanced clinical trials and commercial-scale manufacturing will facilitate development of MNPs to realize their potential to dramatically increase patient access to otherwise-injectable drugs and to improve drug performance via skin delivery.

摘要

微针贴片(MNPs)包含长数百微米的固体针阵列,以无痛、易于使用的方式将药物和疫苗递送至皮肤中。最佳的 MNP 设计需要平衡多个相互依赖的参数,这些参数决定了机械强度、皮肤插入可靠性、药物输送效率、无痛性、可制造性以及影响 MNP 性能的其他特性。MNPs 可以通过适应各种微制造技术来输送小分子药物、生物制剂和针对皮肤的疫苗,这些技术具有药代动力学和免疫优势。少数人体临床试验,以及用于化妆品的 MNP 产品的庞大且不断增长的市场,表明 MNPs 可以安全、有效地使用,并得到患者的强烈认可。更先进的临床试验和商业规模的制造将促进 MNPs 的发展,以实现其潜力,从而显著增加患者获得其他可注射药物的机会,并通过皮肤输送来改善药物性能。

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