Fabrication Technology of Self-Dissolving Sodium Hyaluronate Gels Ultrafine Microneedles for Medical Applications with UV-Curing Gas-Permeable Mold

Author:

Yamagishi Rio1ORCID,Miura Sayaka1ORCID,Yabu Kana2,Ando Mano2,Hachikubo Yuna2,Yokoyama Yoshiyuki3,Yasuda Kaori1,Takei Satoshi1ORCID

Affiliation:

1. Graduate School of Biotechnology and Pharmaceutical Engineering, Toyama Prefectural University, Imizu 939-0398, Toyama, Japan

2. Department of Pharmaceutical Engineering, Toyama Prefectural University, Imizu 939-0398, Toyama, Japan

3. Toyama Industrial Technology Research and Development Center, Takaoka 933-0981, Toyama, Japan

Abstract

Microneedles are of great interest in diverse fields, including cosmetics, drug delivery systems, chromatography, and biological sensing for disease diagnosis. Self-dissolving ultrafine microneedles of pure sodium hyaluronate hydrogels were fabricated using a UV-curing TiO2-SiO2 gas-permeable mold polymerized by sol-gel hydrolysis reactions in nanoimprint lithography processes under refrigeration at 5 °C, where thermal decomposition of microneedle components can be avoided. The moldability, strength, and dissolution behavior of sodium hyaluronate hydrogels with different molecular weights were compared to evaluate the suitability of ultrafine microneedles with a bottom diameter of 40 μm and a height of 80 μm. The appropriate molecular weight range and formulation of pure sodium hyaluronate hydrogels were found to control the dissolution behavior of self-dissolving ultrafine microneedles while maintaining the moldability and strength of the microneedles. This fabrication technology of ultrafine microneedles expands their possibilities as a next-generation technique for bioactive gels for controlling the blood levels of drugs and avoiding pain during administration.

Funder

Japan Society for the Promotion of Science Bilateral Joint Research Projects

Belgium, the Toyama Prefecture Grant 2023

Suzuki Foundation 2023

Sango Monozukuri Foundation 2023

OSG Foundation 2023

Izumi Science and Technology Foundation 2023

Amano Institute of Technology Foundation 2023

Iketani Science and Technology Foundation 2022

Takeuchi Foundation 2022

Amada Foundation 2022

Die and Mould Technology Promotion Foundation 2022

Ogasawara Foundation 2022

Hayashi Rheology Memorial Foundation 2022

TOBE MAKI Scholarship Foundation 2022

Lotte Foundation 2022

KOSE Cosmetology Research Foundation 2022

TAU Scholarship 2022

Publisher

MDPI AG

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