Geometry-Driven Fabrication of Mini-Tablets via 3D Printing: Correlating Release Kinetics with Polyhedral Shapes

Author:

Kim Young-Jin1ORCID,Choi Yu-Rim1,Kang Ji-Hyun2ORCID,Park Yun-Sang3ORCID,Kim Dong-Wook4ORCID,Park Chun-Woong1ORCID

Affiliation:

1. College of Pharmacy, Chungbuk National University, Cheongju 28160, Republic of Korea

2. School of Pharmacy, Institute of New Drug Development, and Respiratory Drug Development Research Institute, Jeonbuk National University, Jeonju 54896, Republic of Korea

3. Research & Development Center, P2K Bio, Cheongju 28160, Republic of Korea

4. Collge of Pharmacy, Wonkwang University, Iksan 54538, Republic of Korea

Abstract

The aim of this study was to fabricate mini-tablets of polyhedrons containing theophylline using a fused deposition modeling (FDM) 3D printer, and to evaluate the correlation between release kinetics models and their geometric shapes. The filaments containing theophylline, hydroxypropyl cellulose (HPC), and EUDRAGIT RS PO (EU) could be obtained with a consistent thickness through pre-drying before hot melt extrusion (HME). Mini-tablets of polyhedrons ranging from tetrahedron to icosahedron were 3D-printed using the same formulation of the filament, ensuring equal volumes. The release kinetics models derived from dissolution tests of the polyhedrons, along with calculations for various physical parameters (edge, SA: surface area, SA/W: surface area/weight, SA/V: surface area/volume), revealed that the correlation between the Higuchi model and the SA/V was the highest (R2 = 0.995). It was confirmed that using 3D- printing for the development of personalized or pediatric drug products allows for the adjustment of drug dosage by modifying the size or shape of the drug while maintaining or controlling the same release profile.

Funder

National Research Foundation of Korea Grants funded by the Korean government

National Research Foundation of Korea

Ministry of Education

Publisher

MDPI AG

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