Department of Pharmacy, University of Copenhagen, Universitetsparken 2, 2100 Copenhagen, Denmark.
Department of Pharmacy, University of Copenhagen, Universitetsparken 2, 2100 Copenhagen, Denmark.
J Pharm Sci. 2019 Jan;108(1):26-35. doi: 10.1016/j.xphs.2018.11.012. Epub 2018 Nov 13.
Application of additive manufacturing techniques (3D printing) for mass-customized products has boomed in the recent years. In pharmaceutical industry and research, the interest has grown particularly with the future scenario of more personalized medicinal products. Understanding a broad range of material properties and process behavior of the drug-excipient combinations is necessary for successful 3D printing of dosage forms. This commentary reviews recent 3D-printing studies by fused deposition modeling (FDM) technique in pharmaceutical sciences, extending into the fields of polymer processing and rapid prototyping, where more in-depth studies on the feedstock material properties, modeling, and simulation of the FDM process have been performed. A case study of a model oral dosage form from custom-prepared indomethacin-polycaprolactone feedstock filament was used as an example in the pharmaceutical context. The printability was assessed in the different process steps: preparation of customized filaments for FDM, filament feeding, deposition, and solidification. These were linked with the rheological, thermal, and mechanical properties and their characterization, relevant for understanding the printability of drug products by FDM.
近年来,增材制造技术(3D 打印)在大规模定制产品中的应用蓬勃发展。在制药行业和研究中,随着未来更个性化药物的出现,人们对其的兴趣日益浓厚。要成功地对剂型进行 3D 打印,就必须了解药物-赋形剂组合的广泛材料性能和工艺行为。本评论综述了最近通过熔融沉积建模(FDM)技术在制药科学方面的 3D 打印研究,扩展到聚合物加工和快速原型制作领域,在这些领域对原料材料性能、FDM 工艺建模和模拟进行了更深入的研究。以定制的吲哚美辛-聚己内酯原料长丝为例,在药物背景下对模型口服剂型进行了案例研究。在不同的工艺步骤中评估了可打印性:用于 FDM 的定制长丝的制备、长丝进料、沉积和固化。这些与流变学、热学和力学性能及其特性相关联,有助于理解 FDM 对药物产品的可打印性。