Enhancing Penetration Performance and Drug Delivery of Polymeric Microneedles Using Silica Nanoparticle Coatings

Author:

Kim Sohyun1,Choi Hyewon2,Jeong Hyejoong3,Ortiz Wilfredo Méndez3,Cheon Hwayeong4,Jeon Jae Yong4,Lee Jae Hyeon5,Han Jeong Hwan5,Stebe Kathleen J.3,Lee Daeyeon3,Yoon Hyunsik12ORCID

Affiliation:

1. Department of Nano Bio Engineering Seoul National University of Science and Technology Seoul 01811 South Korea

2. Department of Chemical and Biomolecular Engineering Seoul National University of Science and Technology Seoul 01811 South Korea

3. Department of Chemical and Biomolecular Engineering University of Pennsylvania Philadelphia PA 19104 USA

4. Department of Rehabilitation Medicine Asan Medical Center University of Ulsan College of Medicine Seoul 05505 South Korea

5. Department of Materials Science and Engineering Seoul National University of Science and Technology Seoul 01811 South Korea

Abstract

AbstractMicroneedle (MN) technology offers a powerful approach for transdermal delivery enabling painless injection and facilitating self‐administration without the need for professional assistance. However, the weak mechanical strength of MNs can lead to inefficient drug delivery and serious skin irritation if the MNs fracture during administration and leave fragments under the skin. Thus, the MNs need to be mechanically robust to avoid fracture during penetration through the skin while maintaining efficient drug delivery. Herein, the polymer‐based MNs with layer‐by‐layer (LbL) films of silica (SiO2) nanoparticles (NPs) and a polycation (poly(diallyldimethylammonium chloride) (PDADMAC)) followed by hydrothermal calcination are reinforced. The mechanical strength of the MNs is significantly improved after LbL assembly and shows lower threshold pressure to penetrate skins. Moreover, their drug loading and releasing properties are significantly enhanced due to an increase in the surface area and interfacial interaction. These SiO2 nanoparticle‐containing LbL thin films have great potential for the surface modification of 3D microstructured devices such as MNs, as evidenced by their enhanced mechanical strength and drug coating efficiency that result in a promising MN drug delivery model.

Funder

National Research Foundation of Korea

National Science Foundation

National Human Genome Research Institute

Publisher

Wiley

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