Influence of Surface Area on Dissolution of Additively Manufactured Polyvinyl Alcohol Tablets
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Influence of Surface Area on Dissolution of Additively Manufactured Polyvinyl Alcohol Tablets

Authors: Seyedebrahim Afkhami, Meisam Abdi, Reza Baserinia

Abstract:

Additive manufacturing is revolutionizing production in different industries, including pharmaceuticals. This case study explores the influence of surface area on the dissolution of additively manufactured polyvinyl alcohol parts as a polymer candidate. Specimens of different geometries and constant mass were fabricated using a Fused Deposition Modeling (FDM) 3D printer. The dissolution behavior of these samples was compared with respect to their surface area. Improved and accelerated dissolution was observed for samples with a larger surface area. This study highlights the capabilities of additive manufacturing to produce samples of complex geometries that cannot be manufactured otherwise to control the dissolution behavior for pharmaceutical and biopharmaceutical applications.

Keywords: Additive manufacturing, polymer dissolution, fused deposition modelling, geometry optimization.

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References:


[1] G. Prashar, H. Vasudev, D. Bhuddhi, Additive manufacturing: expanding 3D printing horizon in industry 4.0 (2022).
[2] M. Mehrpouya, A. Dehghanghadikolaei, B. Fotovvati, A. Vosooghnia, S.S. Emamian, A. Gisario, The Potential of Additive Manufacturing in the Smart Factory Industrial 4.0: A Review 9 (2019).
[3] G. Auriemma, C. Tommasino, G. Falcone, T. Esposito, C. Sardo, R.P. Aquino, Additive Manufacturing Strategies for Personalized Drug Delivery Systems and Medical Devices: Fused Filament Fabrication and Semi Solid Extrusion, Molecules 27 (2022) 2784. doi: 10.3390/molecules27092784.
[4] Jange, C.G.; Wassgren, C.R.; Ambrose, K. The Significance of Tablet Internal Structure on Disintegration and Dissolution of Immediate-Release Formulas: A Review. Powders 2023, 2,99-123. https://doi.org/10.3390/powders2010008
[5] P.R. Martinez, A. Goyanes, A.W. Basit, S. Gaisford, Influence of Geometry on the Drug Release Profiles of Stereolithographic (SLA) 3D-Printed Tablets 19 (2018) 3355-3361.
[6] C. So, A.S. Narang, C. Mao, Modeling the Tablet Disintegration Process Using the Finite Difference Method, J. Pharm. Sci. 110 (2021) 3614-3622.
[7] R.J. Seager, A.J. Acevedo, F. Spill, M.H. Zaman, Solid dissolution in a fluid solvent is characterized by the interplay of surface area-dependent diffusion and physical fragmentation, Sci. Rep. 8 (2018) 7711-x.
[8] F. Molavi, H. Hamishehkar, A. Nokhodchi, Impact of Tablet Shape on Drug Dissolution Rate Through Immediate Released Tablets, Adv. Pharm. Bull. 10 (2020) 656-661.
[9] M. Bogdahn, J. Torner, J. Krause, M. Grimm, W. Weitschies, Influence of the geometry of 3D printed solid oral dosage forms on their swallowability 167 (2021) 65-72.
[10] A. Goyanes, P.R. Martinez, A. Buanz, A.W. Basit, S. Gaisford, Effect of geometry on drug release from 3D printed tablets, Int. J. Pharm. 494 (2015) 657-663.
[11] A. Goyanes, M. Kobayashi, R. Martínez-Pacheco, S. Gaisford, A.W. Basit, Fused-filament 3D printing of drug products: Microstructure analysis and drug release characteristics of PVA-based caplets, Int. J. Pharm. 514 (2016) 290-295.
[12] W. Jamróz, J. Pyteraf, M. Kurek, J. Knapik-Kowalczuk, J. Szafraniec-Szczęsny, K. Jurkiewicz, B. Leszczyński, A. Wróbel, M. Paluch, R. Jachowicz, Multivariate Design of 3D Printed Immediate-Release Tablets with Liquid Crystal-Forming Drug-Itraconazole, Materials (Basel) 13 (2020) 4961. doi: 10.3390/ma13214961.
[13] Chai, X., Chai, H., Wang, X. et al. Fused Deposition Modeling (FDM) 3D Printed Tablets for Intragastric Floating Delivery of Domperidone. Sci Rep 7, 2829 (2017). https://doi.org/10.1038/s41598-017-03097-x