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Analysis of advanced technologies for 3D printing of pharmaceutical products for personalised medicine: A review

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Purpose: of this paper is to make an analysis of the advanced technologies for 3D printing of pharmaceutical products for personalised medicine. Design/methodology/approach: A review of the basic 3D printing methods used in pharmaceutical technologies is conducted. The main types of printed solid dosage forms are examined, along with the primary advantages and disadvantages of 3D printing compared to conventional drug production. Each method is evaluated in terms of working principles, material compatibility, advantages, and limitations. Findings: Revealed that stereolithography (SLA), selective laser sintering (SLS), fused deposition modelling (FDM), ink-jet printing (IJP), and semi-solid extrusion (SSE) are the most suitable 3D printing processes for producing pharmaceutical products. The combination of two methods ensures better results, as illustrated by examples of the main types of printed solid dosage forms. Research limitations/implications: The 3D printing technologies for production of pharmaceutical products present several limitations such as: uneven geometries and porous structures, necessitating the fabrication of larger and irregular dosage forms to ensure the required drug load for the patient; degradation of thermolabile drugs during FDM process; increased hardness of FDM produced tablets impairing drug release. Practical implications: The advanced 3D printing technologies offer the ability to produce new formulations easily through simple design modifications in software, compared to conventional manufacturing. They enable the design of flexible formulations with complex release profiles and the personalised production of dosage forms tailored to individual patients. Originality/value: 3D printing has emerged as a transformative technology in pharmaceutical manufacturing, enabling the production of personalised dosage forms with precise drug loading, tailored release profiles, and complex geometries. The review not only summarises the main applicable techniques but also highlights the most recommended methods for personalised pharmacotherapy. The versatility and adaptability of 3D printing provide promising solutions for personalised therapy, emergency drug manufacturing, and enhanced patient compliance, marking a significant step toward decentralised, digital pharmaceutical production.
Rocznik
Strony
29--41
Opis fizyczny
Bibliogr. 73 poz.
Twórcy
autor
  • Faculty of Pharmacy, Medical University of Varna, Varna, 84 Tsar Osvoboditel blvd., 9000, Varna, Bulgaria
  • Faculty of Dental Medicine, Medical University of Varna, Varna, 84 Tsar Osvoboditel blvd., 9000, Varna, Bulgaria
autor
  • Faculty of Dental Medicine, Medical University of Varna, Varna, 84 Tsar Osvoboditel blvd., 9000, Varna, Bulgaria
Bibliografia
  • [1] H. Kodama, Automatic method for fabricating a three-dimensional plastic model with photo-hardening polymer, Review of Scientific Instruments 52/11 (1981) 1770-1773. DOI: https://doi.org/10.1063/1.1136492
  • [2] M.A. Zlenko, M.V. Nagaitsev, V.M. Dovbish, Additive technologies in mechanical engineering. Manual for engineers [Additivnie tehnologii v mashinostroenii. Posobie dlia injenerov], NAMI, Moskva, 2015 (in Russian).
  • [3] T. Dikova, D. Dzhendov, M. Simov, I. Katreva- Bozukova, S. Angelova, D. Pavlova, M. Abadzhiev, T. Tonchev, Modern trends in the development of the technologies for production of dental constructions, Journal of IMAB – Annual Proceeding Scientific Papers 21/4 (2015) 974-981. DOI: https://doi.org/10.5272/jimab.2015214.974
  • [4] I. Katreva, T. Dikova, M. Abadzhiev, T. Tonchev, D. Dzhendov, M. Simov, Sv. Angelova, D. Pavlova, M. Doychinova, 3D-Printing in Contemporary Prosthodontic Treatment, Scripta Scientifica Medicinae Dentalis 2/1 (2016) 7-11. DOI: https://doi.org/10.14748/ssmd.v1i1.1446
  • [5] I. Katreva, T. Dikova, T. Tonchev, 3D printing–an alternative of conventional crown fabrication: a case report, Journal of IMAB – Annual Proceeding Scientific Papers 24/2 (2018) 2048-2054. DOI: https://doi.org/10.5272/jimab.2018242.2048
  • [6] M. Attaran, The rise of 3-D printing: the advantages of additive manufacturing over traditional manufacturing, Business Horizons 60/5 (2017) 677-688. DOI: https://doi.org/10.1016/j.bushor.2017.05.011
  • [7] T. Dikova, Perspectives and development trends for application of additive technologies in modern dentistry in the light of Industry 4.0, Journal of the Technical University of Gabrovo 68/6 (2024) 1-11. DOI: https://doi.org/10.62853/ELSJ6320
  • [8] T. Dikova, Implementation of advanced technologies-the basis for the development of modern dentistry, Archives of Materials Science and Engineering, 130/2 (2024) 60-76. DOI: https://doi.org/10.5604/01.3001.0054.9814
  • [9] I. Karakurt, L. Lin, 3D printing technologies: techniques, materials, and post-processing, Current Opinion in Chemical Engineering 28 (2020) 134-143. DOI: https://doi.org/10.1016/j.coche.2020.04.001
  • [10] L.A. Dobrzański, L.B. Dobrzański, A.D. Dobrzańska- Danikiewicz, Additive and hybrid technologies for products manufacturing using powders of metals, their alloys and ceramics, Archives of Materials Science and Engineering 102/2 (2020) 59-85. DOI: https://doi.org/10.5604/01.3001.0014.1525
  • [11] L.A. Dobrzański, L.B. Dobrzański, A.D. Dobrzańska- Danikiewicz, M. Kraszewska, Manufacturing powders of metals, their alloys and ceramics and the importance of conventional and additive technologies for products manufacturing in Industry 4.0 stage, Archives of Materials Science and Engineering 102/1 (2020) 13-41. DOI: https://doi.org/10.5604/01.3001.0014.1452
  • [12] P.A. Karni, S. Maheshwari, V. Sarada, S.S. Das, M.N. Ananda, 3D Printing in Dentistry: Revolutionizing Customization and Delivery of Dental Prosthetics, Journal of Neonatal Surgery 14/4 (2025) 473-478. DOI: https://doi.org/10.52783/jns.v14.3928
  • [13] A.A. Kazi, S. Choudhuri, Sk. Mohin, S. Goswami, 3D bioprinting of implantable and wearable devices, Bioprinting 36 (2023) e00312. DOI: https://doi.org/10.1016/j.bprint.2023.e00312
  • [14] J. Taczała, W. Czepułkowska, B. Konieczny, J. Sokołowski, M. Kozakiewicz, P. Szymor, Comparison of 3D printing MJP and FDM technology in dentistry, Archives of Materials Science and Engineering 101/1 (2020) 32-40. DOI: https://doi.org/10.5604/01.3001.0013.9504
  • [15] J. Nowacki, N. Sieczkiewicz, Problems of determination of MultiJet 3D printing distortions using a 3D scanner, Archives of Materials Science and Engineering 103/1 (2020) 30-41. DOI: https://doi.org/10.5604/01.3001.0014.1771
  • [16] P. Ikonomov, A. Yahamed, P. Fleming, A. Pekarovicova, Design and testing 3D printed structures for bone replacements, Journal of Achievements in Materials and Manufacturing Engineering 101/2 (2020) 76-85. DOI: https://doi.org/10.5604/01.3001.0014.4922
  • [17] P. Penchev, Ultimate flexural strength and Young's modulus analysis of denture base resins for masked stereolithography 3D printing technology, Archives of Materials Science and Engineering 126/2 (2024) 78-85. DOI: https://doi.org/10.5604/01.3001.0054.6753
  • [18] S. Wang, X. Chen, X. Han, X. Hong, X. Li, H. Zhang, M. Li, Z. Wang, A. Zheng, A Review of 3D Printing Technology in Pharmaceutics: Technology and (2023) 416. DOI: https://doi.org/10.3390/pharmaceutics15020416
  • [19] J. Norman, R.D. Madurawe, C.M. Moore, M.A. Khan, A. Khairuzzaman, A new chapter in pharmaceutical manufacturing: 3D-printed drug products, Advanced Drug Delivery Reviews 108 (2017) 39-50. DOI: https://doi.org/10.1016/j.addr.2016.03.001
  • [20] B.J. Park, H.J. Choi, S.J. Moon, S.J. Kim, R. Bajracharya, J.Y. Min, H.-K. Han, Pharmaceutical applications of 3D printing technology: current understanding and future perspectives, Journal of Pharmaceutical Investigation 49/6 (2018) 575-585. DOI: https://doi.org/10.1007/s40005-018-00414-y
  • [21] L.A.G. Pinho, A.L. Lima, L.L. Sa-Barreto, T. Gratieri, G.M. Gelfuso, R.N. Marreto, M. Cunha-Filho, Preformulation Studies to Guide the Production of Medicines by Fused Deposition Modeling 3D Printing, AAPS PharmSciTech 22/8 (2021) 263. DOI: https://doi.org/10.1208/s12249-021-02114-7
  • [22] T.D. Dikova, D.A. Dzhendov, D. Ivanov, K. Bliznakova, Dimensional accuracy and surface roughness of polymeric dental bridges produced by different 3D printing processes, Archives of Materials Science and Engineering 94/2 (2018) 65-75. DOI: https://doi.org/10.5604/01.3001.0012.8660
  • [23] Y. Yang, H. Wang, H. Li, Z. Ou, G. Yang, 3D printed tablets with internal scaffold structure using ethyl cellulose to achieve sustained ibuprofen release, European Journal of Pharmaceutical Sciences 115 (2018) 11-18. DOI: https://doi.org/10.1016/j.ejps.2018.01.005
  • [24] C.W. Hull, Patent US4575330A, Apparatus for production of three-dimensional objects by stereolithography, USA, 1986-3-11.
  • [25] A. Kafle, E. Luis, R. Silwal, H.M. Pan, P.L. Shrestha, A.K. Bastola, 3D/4D Printing of Polymers: Fused Deposition Modelling (FDM), Selective Laser Sintering (SLS), and Stereolithography (SLA), Polymers 13/18 (2021) 3101. DOI: https://doi.org/10.3390/polym13183101
  • [26] F.P.W. Melchels, J. Feijen, D.W. Grijpma, A review on stereolithography and its applications in biomedical engineering, Biomaterials 31/24 (2010) 6121-6130. DOI: https://doi.org/10.1016/j.biomaterials.2010.04.050
  • [27] F. Jiang, D. Drummer, Curing Kinetic Analysis of Acrylate Photopolymer for Additive Manufacturing by Photo-DSC, Polymers 12/5 (2020) 1080. DOI: https://doi.org/10.3390/polym12051080
  • [28] N. Panova, K. Nikolova, T. Dikova, Application of lasers and laser processing technologies in modern dentistry: A review, Journal of Chemical Technology and Metallurgy 58/6 (2023) 1116-1127. DOI: https://doi.org/10.59957/jctm.v58i6.151
  • [29] J.M. Williams, A. Adewunmi, R.M. Schek, C.L. Flanagan, P.H. Krebsbach, St.E. Feinberg, S.J. Hollister, S. Das, Bone tissue engineering using polycaprolactone scaffolds fabricated via selective laser sintering, Biomaterials 26/23 (2005) 4817-4827. DOI: https://doi.org/10.1016/j.biomaterials.2004.11.057
  • [30] F. Fina, A. Goyanes, S. Gaisford, A.W. Basit, Selective laser sintering (SLS) 3D printing of medicines, International Journal of Pharmaceutics 529/1-2 (2017) 285-293. DOI: https://doi.org/10.1016/j.ijpharm.2017.06.082
  • [31] J. Johannesson, J. Khan, M. Hubert, A. Teleki, C.A.S. Bergström, 3D-printing of solid lipid tablets from emulsion gels, International Journal of Pharmaceutics 597 (2021) 120304. DOI: https://doi.org/10.1016/j.ijpharm.2021.120304
  • [32] M. Cui, Y. Li, S. Wang, Y. Chai, J. Lou, F. Chen, Q. Li, W. Pan, P. Ding, Exploration and Preparation of a Dose-Flexible Regulation System for Levetiracetam Tablets via Novel Semi-Solid Extrusion Three- Dimensional Printing, Journal of Pharmaceutical Sciences 108/2 (2019) 977-986. DOI: https://doi.org/10.1016/j.xphs.2018.10.001
  • [33] J. Goole, K. Amighi, 3D printing in pharmaceutics: a new tool for designing customized drug delivery systems, International Journal of Pharmaceutics 499/1- 2 (2016) 376-394. DOI: https://doi.org/10.1016/j.ijpharm.2015.12.071
  • [34] M. Kyobula, A. Adedeji, M.R. Alexander, E. Saleh, R. Wildman, I. Ashcroft, P.R. Gellert, C.J. Roberts, 3D inkjet printing of tablets exploiting bespoke complex geometries for controlled and tuneable drug release, Journal of Controlled Release 261 (2017) 207-215. DOI: https://doi.org/10.1016/j.jconrel.2017.06.025
  • [35] E.A. Clark, M.R. Alexander, D.J. Irvine, C.J. Roberts, M.J. Wallace, S. Sharpe, J. Yoo, R.J.M. Hague, C.J. Tuck, R.D. Wildman, 3D printing of tablets using inkjet with UV photoinitiation, International Journal of Pharmaceutics 529/1-2 (2017) 523-530. DOI: https://doi.org/10.1016/j.ijpharm.2017.06.085
  • [36] N. Scoutaris, M.R. Alexander, P.R. Gellert, C.J. Roberts, Inkjet printing as a novel medicine formulation technique, Journal of Controlled Release 156/2 (2011) 179-185. DOI: https://doi.org/10.1016/j.jconrel.2011.07.033
  • [37] M.A. Alhnan, T.C. Okwuosa, S. Muzna, K.-W. Wan, W. Ahmed, B. Arafat, Emergence of 3D Printed Dosage Forms: Opportunities and Challenges, Pharmaceutical Research 33/8 (2016) 1817-1832. DOI: https://doi.org/10.1007/s11095-016-1933-1
  • [38] B.K. Lee, Y.H. Yun, J.S. Choi, Y.C. Choi, J.D. Kim, Y.W. Cho, Fabrication of drug-loaded polymer microparticles with arbitrary geometries using a piezoelectric inkjet printing system, International Journal of Pharmaceutics 427/2 (2012) 305-310. DOI: https://doi.org/10.1016/j.ijpharm.2012.02.011
  • [39] P.R. Martinez, A. Goyanes, A.W. Basit, S. Gaisford, Influence of Geometry on the Drug Release Profiles of Stereolithographic (SLA) 3D-Printed Tablets, AAPS PharmSciTech 19/8 (2018) 3355-3361. DOI: https://doi.org/10.1208/s12249-018-1075-3
  • [40] S. Cailleaux, N.M. Sanchez-Ballester, Y.A. Gueche, B. Bataille, I. Soulairol, Fused Deposition Modeling (FDM), the New Asset for the Production of Tailored Medicines, Journal of Controlled Release 330 (2021) 821-841. DOI: https://doi.org/10.1016/j.jconrel.2020.10.056
  • [41] J. Aho, J.P. Bøtker, N. Genina, M. Edinger, L. Arnfast, J. Rantanen, Roadmap to 3D-Printed Oral Pharmaceutical Dosage Forms: Feedstock Filament Properties and Characterization for Fused Deposition Modeling, Journal of Pharmaceutical Sciences 108/1 (2019) 26-35. DOI: https://doi.org/10.1016/j.xphs.2018.11.012
  • [42] M.E. Mackay, Z.R. Swain, C.R. Banbury, D.D. Phan, D.A. Edwards, The Performance of the Hot End in a Plasticating 3D Printer, Journal of Rheology 61/2 (2017) 229-236. DOI: https://doi.org/10.1122/1.4973852
  • [43] V.S. Chaudhari, T.K. Malakar, U.S. Murty, S. Banerjee, Fused deposition modeling (FDM)-mediated 3D-printed mouth-dissolving wafers loaded with nanostructured lipid carriers (NLCs) for in vitro release, Journal of Materials Research 36 (2021) 3963- 3973. DOI: https://doi.org/10.1557/s43578-021- 00288-1 [44] T. Charoenying, P. Patrojanasophon, T. Ngawhirunpat, T. Rojanarata, P. Akkaramongkolporn, P. Opanasopit, Design and Optimization of 3D-Printed Gastroretentive Floating Devices by Central Composite Design, AAPS PharmSciTech 22/5 (2021) 197. DOI: https://doi.org/10.1208/s12249-021-02053-3
  • [45] D. Smith, Y. Kapoor, A. Hermans, R. Nofsinger, F. Kesisoglou, T.P. Gustafson, A. Procopio, 3D printed capsules for quantitative regional absorption studies in the GI tract, International Journal of Pharmaceutics 550/1-2 (2018) 418-428. DOI: https://doi.org/10.1016/j.ijpharm.2018.08.055
  • [46] D.M. Smith, Y. Kapoor, G.R. Klinzing, A.T. Procopio, Pharmaceutical 3D printing: Design and qualification of a single step print and fill capsule, International Journal of Pharmaceutics 544/1 (2018) 21-30. DOI: https://doi.org/10.1016/j.ijpharm.2018.03.056
  • [47] N.R. Dumpa, S. Bandari, M.A. Repka, Novel Gastroretentive Floating Pulsatile Drug Delivery System Produced via Hot-Melt Extrusion and Fused Deposition Modeling 3D Printing, Pharmaceutics 12/1 (2020) 52. DOI: https://doi.org/10.3390/pharmaceutics12010052
  • [48] S. Shin, T.H. Kim, S.W. Jeong, S.E. Chung, D.Y. Lee, D.H. Kim, B.S. Shin, Development of a gastroretentive delivery system for acyclovir by 3D printing technology and its in vivo pharmacokinetic evaluation in Beagle dogs, PLoS ONE 14/5 (2019) e0216875. DOI: https://doi.org/10.1371/journal.pone.0216875
  • [49] T. Tagami, E. Ito, N. Hayashi, N. Sakai, T. Ozeki, Application of 3D printing technology for generating hollow-type suppository shells, International Journal of Pharmaceutics 589 (2020) 119825. DOI: https://doi.org/10.1016/j.ijpharm.2020.119825
  • [50] T. Tagami, N. Hayashi, N. Sakai, T. Ozeki, 3D printing of unique water-soluble polymer-based suppository shell for controlled drug release, International Journal of Pharmaceutics 568 (2019) 118494. DOI: https://doi.org/10.1016/j.ijpharm.2019.118494
  • [51] M. Tiboni, M. Tiboni, A. Pierro, M. Del Papa, S. Sparaventi, M. Cespi, L. Casettari, Microfluidics for nanomedicines manufacturing: An affordable and low-cost 3D printing approach, International Journal of Pharmaceutics 599 (2021) 120464. DOI: https://doi.org/10.1016/j.ijpharm.2021.120464
  • [52] G.K. Eleftheriadis, P.K. Monou, N. Bouropoulos, J. Boetker, J. Rantanen, J. Jacobsen, I.S. Vizirianakis, D.G. Fatouros, Fabrication of Mucoadhesive Buccal Films for Local Administration of Ketoprofen and Lidocaine Hydrochloride by Combining Fused Deposition Modeling and Inkjet Printing, Journal of Pharmaceutical Sciences 109/9 (2020) 2757-2766. DOI: https://doi.org/10.1016/j.xphs.2020.05.022
  • [53] K. Shi, D.K. Tan, A. Nokhodchi, M. Maniruzzaman, Drop-On-Powder 3D Printing of Tablets with an Anti- Cancer Drug, 5-Fluorouracil, Pharmaceutics 11/4 (2019) 150. DOI: https://doi.org/10.3390/pharmaceutics11040150
  • [54] S.N. Economidou, C.P. Pissinato Pere, M. Okereke, D. Douroumis, Optimisation of Design and Manufacturing Parameters of 3D Printed Solid Microneedles for Improved Strength, Sharpness, and Drug Delivery, Micromachines 12/2 (2021) 117. DOI: https://doi.org/10.3390/mi12020117
  • [55] J. Konasch, A. Riess, R. Mau, M. Teske, N. Rekowska, T. Eickner, N. Grabow, H. Seitz, A Novel Hybrid Additive Manufacturing Process for Drug Delivery Systems with Locally Incorporated Drug Depots, Pharmaceutics 11/12 (2019) 661. DOI: https://doi.org/10.3390/pharmaceutics11120661
  • [56] C. Wu, Y. Luo, G. Cuniberti, Y. Xiao, M. Gelinsky, Three-dimensional printing of hierarchical and tough mesoporous bioactive glass scaffolds with a controllable pore architecture, excellent mechanical strength and mineralization ability, Acta Biomaterialia 7/6 (2011) 2644-2650. DOI: https://doi.org/10.1016/j.actbio.2011.03.009
  • [57] J. Li, M. Wu, W. Chen, H. Liu, D. Tan, S. Shen, Y. Lei, L. Xue, 3D Printing of Bioinspired Compartmentalized Capsular Structure for Controlled Drug Release, Journal of Zhejiang University-SCIENCE B 22/12 (2021) 1022-1033. DOI: https://doi.org/10.1631/jzus.B2100644
  • [58] Y. Zheng, F. Deng, B. Wang, Y. Wu, Q. Luo, X. Zuo, X. Liu, L. Cao, M. Li, H. Lu, S. Cheng, X. Li, Melt Extrusion Deposition (MEDTM) 3D Printing Technology — A Paradigm Shift in Design and Development of Modified Release Drug Products, International Journal of Pharmaceutics 602 (2021) 120639. DOI: https://doi.org/10.1016/j.ijpharm.2021.120639
  • [59] W.E. Katstra, R.D. Palazzolo, C.W. Rowe, B. Giritlioglu, P. Teung, M.J. Cima, Oral dosage forms fabricated by three dimensional printing, Journal of Controlled Release 66/1 (2000) 1-9. DOI: https://doi.org/10.1016/s0168-3659(99)00225-4
  • [60] S. Moreno, C. Perno, P. Mallon, G. Behrens, P. Corbeau, J.-P. Routy, G. Darcis, Two-drug vs. three-drug combinations for HIV-1: Do we have enough data to make the switch?, HIV Medicine 20/S4 (2019) 2-12. DOI: https://doi.org/10.1111/hiv.12716
  • [61] H. Wang, N. Dumpa, S. Bandari, T. Durig, M.A. Repka, Fabrication of Taste-Masked Donut-Shaped Tablets Via Fused Filament Fabrication 3D Printing Paired with Hot-Melt Extrusion Techniques, AAPS PharmSciTech 21/7 (2020) 243. DOI: https://doi.org/10.1208/s12249-020-01783-0
  • [62] P.A. Jose & G.V.P. Christoper, 3D Printing of Pharmaceuticals – A Potential Technology In Developing Personalized Medicine, Asian Journal of Pharmaceutical research and Development 6/3 (2018) 46-54. DOI: https://doi.org/10.22270/ajprd.v6i3.375
  • [63] C.W. Rowe, W.E. Katstra, R.D. Palazzolo, B. Giritlioglu, P. Teung, M.J. Cima, Multimechanism oral dosage forms fabricated by three dimensional printingTM, Journal of Controlled Release 66/1 (2000) 11-17. DOI: https://doi.org/10.1016/s0168-3659(99)00224-2
  • [64] W.E. Katstra, Fabrication of complex oral drug delivery forms by three dimensional printing, PhD Thesis, Massachusetts Institute of Technology, Cambridge, MA, USA, 2001. Available from: http://hdl.handle.net/1721.1/32709
  • [65] C. Korte, J. Quodbach, Formulation development and process analysis of drug-loaded filaments manufactured via hot-melt extrusion for 3D-printing of medicines, Pharmaceutical Development and Technology 23/10 (2018) 1117-1127. DOI: https://doi.org/10.1080/10837450.2018.1433208
  • [66] M.A. Azad, D. Olawuni, G. Kimbell, A.Z. Badruddoza, S. Hossain, T. Sultana, Polymers for Extrusion-Based 3D Printing of Pharmaceuticals: A Holistic Materials– Process Perspective, Pharmaceutics 12/2 (2020) 124. DOI: https://doi.org/10.3390/pharmaceutics12020124
  • [67] S. Henry, L. De Wever, V. Vanhoorne, T. De Beer, C. Vervaet, Influence of Print Settings on the Critical Quality Attributes of Extrusion-Based 3D-Printed Caplets: A Quality-by-Design Approach, Pharmaceutics 13/12 (2021) 2068. DOI: https://doi.org/10.3390/pharmaceutics13122068
  • [68] A.G. Nambiar, M. Singh, A.R. Mali, D.R. Serrano, R. Kumar, A.M. Healy, A.K. Agrawal, D. Kumar, Continuous Manufacturing and Molecular Modeling of Pharmaceutical Amorphous Solid Dispersions, AAPS PharmSciTech 23 (2022) 249. DOI: https://doi.org/10.1208/s12249-022-02408-4
  • [69] S. Ayyoubi, J.R. Cerda, R. Fernández-García, P. Knief, A. Lalatsa, A.M. Healy, D.R. Serrano, 3D printed spherical mini-tablets: Geometry versus composition effects in controlling dissolution from personalised solid dosage forms, International Journal of Pharmaceutics 597 (2021) 120336. DOI: https://doi.org/10.1016/j.ijpharm.2021.120336
  • [70] D.-G. Yu, C. Branford-White, Y.-C. Yang, L.-M. Zhu, E.W. Welbeck, X.-L. Yang, A novel fast disintegrating tablet fabricated by three-dimensional printing, Drug Development and Industrial Pharmacy 35/12 (2009) 1530-1536. DOI: https://doi.org/10.3109/03639040903059359
  • [71] A. García-Domínguez, J. Claver, M. Sebastián, Study for the selection of design software for 3D printing topological optimization, Procedia Manufacturing 13 (2017) 903-909. DOI: https://doi.org/10.1016/j.promfg.2017.09.155
  • [72] H. Kizawa, E. Nagao, M. Shimamura, G. Zhang, H. Torii, Scaffold-free 3D bioprinted human liver tissue stably maintains metabolic functions useful for drug discovery, Biochemistry and Biophysics Reports 10 (2017) 186-191. DOI: https://doi.org/10.1016/j.bbrep.2017.04.004
  • [73] J. Edgar, S. Tint, Additive manufacturing technologies: 3D printing, rapid prototyping, and direct digital manufacturing, 2nd edition, Johnson Matthey Technology Review 59/3 (2015) 193-198. DOI: https://doi.org/10.1595/205651315X688406
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Bibliografia
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