4.8 Article

Multifunctional Microneedle Patches via Direct Ink Drawing of Nanocomposite Inks for Personalized Transdermal Drug Delivery

期刊

ACS NANO
卷 17, 期 20, 页码 19925-19937

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.3c04758

关键词

microneedle patches; multimaterial3D printing; nanocomposite inks; transdermal drugdelivery; personalized medicine

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This study introduces an economical and scalable direct ink drawing strategy for creating drug-loaded microneedles. The approach allows for the fabrication of sharp-tipped microneedles with improved resolution, compatible with various polymers. The release behaviors of the drug-loaded microneedles can be easily adjusted by using different matrices. This fabrication strategy provides a simple and cost-effective method for self-administered transdermal drug delivery.
Additive manufacturing, commonly known as 3D printing, allows decentralized drug fabrication of orally administered tablets. Microneedles are comparatively favorable for self-administered transdermal drug delivery with improved absorption and bioavailability. Due to the cross-scale geometric characteristics, 3D-printed microneedles face a significant trade-off between the feature resolution and production speed in conventional layer-wise deposition sequences. In this study, we introduce an economical and scalable direct ink drawing strategy to create drug-loaded microneedles. A freestanding microneedle is efficiently generated upon each pneumatic extrusion and controlled drawing process. Sharp tips of similar to 5 mu m are formed with submillimeter nozzles, representing 2 orders of magnitude improved resolution. As the key enabler of this fabrication strategy, the yield-stress fluid inks are formulated by simply filling silica nanoparticles into regular polymer solutions. The approach is compatible with various microneedles based on dissolvable, biodegradable, and nondegradable polymers. Various matrices are readily adopted to adjust the release behaviors of the drug-loaded microneedles. Successful fabrication of multifunctional patches with heterogeneously integrated microneedles allows the treatment of melanoma via synergistic photothermal therapy and combination chemotherapy. The personalized patches are designed for cancer severity to achieve high therapeutic efficacy with minimal side effects. The direct ink drawing reported here provides a facile and low-cost fabrication strategy for multifunctional microneedle patches for self-administering transdermal drug delivery.

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