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Evaluation of 3D Printability and Biocompatibility of Microfluidic Resin for Fabrication of Solid Microneedles.
Tabriz, Atabak Ghanizadeh; Viegas, Beatriz; Okereke, Michael; Uddin, Md Jasim; Lopez, Elena Arribas; Zand, Nazanin; Ranatunga, Medhavi; Getti, Giulia; Douroumis, Dennis.
Afiliação
  • Tabriz AG; Faculty of Engineering and Science, School of Science, University of Greenwich, Chatham Maritime, Chatham ME4 4TB, UK.
  • Viegas B; CIPER Centre for Innovation and Process Engineering Research, Kent ME4 4TB, UK.
  • Okereke M; School of Science and Technology, NOVA University Lisbon, 2829-516 Almada, Portugal.
  • Uddin MJ; Faculty of Engineering and Science, School of Science, University of Greenwich, Chatham Maritime, Chatham ME4 4TB, UK.
  • Lopez EA; Faculty of Engineering and Science, School of Science, University of Greenwich, Chatham Maritime, Chatham ME4 4TB, UK.
  • Zand N; CIPER Centre for Innovation and Process Engineering Research, Kent ME4 4TB, UK.
  • Ranatunga M; Faculty of Engineering and Science, School of Science, University of Greenwich, Chatham Maritime, Chatham ME4 4TB, UK.
  • Getti G; Faculty of Engineering and Science, School of Science, University of Greenwich, Chatham Maritime, Chatham ME4 4TB, UK.
  • Douroumis D; Faculty of Engineering and Science, School of Science, University of Greenwich, Chatham Maritime, Chatham ME4 4TB, UK.
Micromachines (Basel) ; 13(9)2022 Aug 23.
Article em En | MEDLINE | ID: mdl-36143991
ABSTRACT
In this study, we have employed Digital Light Processing (DLP) printing technology for the fabrication of solid microneedle (MN) arrays. Several arrays with various geometries, such as cones, three-sided pyramids and four-sided pyramids, with different height to aspect ratios of 11, 21 and 31, were printed. Post-processing curing optimizations showed that optimal mechanical properties of the photocurable resin were obtained at 40 °C and 60 min. Ex vivo skin studies showed that piercing forces, penetration depth and penetration width were affected by the MN geometry and height to aspect ratio. Cone-shaped MNs required lower applied forces to penetrate skin and showed higher penetration depth with increasing height to aspect ratio, followed by three-sided and four-sided printed arrays. Cytotoxicity studies presented 84% cell viability of human fibroblasts after 2.5 h, suggesting the very good biocompatibility of the photocurable resin. Overall, DLP demonstrated excellent printing capacity and high resolution for a variety of MN designs.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2022 Tipo de documento: Article