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药物应用中熔融沉积成型 3D 打印面临的挑战:我们现在在哪里?

Challenges of fused deposition modeling 3D printing in pharmaceutical applications: Where are we now?

机构信息

University of Liege, Laboratory of Pharmaceutical Technology and Biopharmacy, Center for Interdisciplinary Research on Medicines (CIRM), B36 Tower 4, 2nd floor, Avenue Hippocrate 15, 4000 Liège, Belgium.

University of Liege, Laboratory of Pharmaceutical Technology and Biopharmacy, Center for Interdisciplinary Research on Medicines (CIRM), B36 Tower 4, 2nd floor, Avenue Hippocrate 15, 4000 Liège, Belgium.

出版信息

Adv Drug Deliv Rev. 2021 Aug;175:113810. doi: 10.1016/j.addr.2021.05.020. Epub 2021 May 23.

Abstract

In recent years, fused deposition modeling has become one of the most used three-dimensional printing technologies in the pharmaceutical field. The production of personalized dosage forms for individualized therapy and the modification of the drug release profile by the elaboration of complex geometries make fused deposition modeling a promising tool for small-scale production. However, fused deposition modeling has a considerable number of challenges to overcome. They are divided into three categories of parameters. Material-specific parameters encompass the physicochemical properties of the filament, like thermal, mechanical and rheological properties. They determine the feasibility of the printing process. Operation-specific parameters relate to the processing conditions of printing, such as printing temperature and infill density, which have an influence on the final quality and on the dissolution behavior of the objects. The printer equipment is defined by the machine-specific parameters. Some modifications of this equipment also enhance the performance of the printing process. The aim of this review is to highlight the major fused deposition modeling critical process parameters in the pharmaceutical field and possible solutions in order to speed up the development of objects in the pharmaceutical market.

摘要

近年来,熔融沉积建模已成为制药领域应用最广泛的三维打印技术之一。通过精细设计复杂的几何形状,熔融沉积建模可以生产用于个体化治疗的个性化剂量形式,并改变药物释放曲线,这使其成为小规模生产的有前途的工具。然而,熔融沉积建模仍有许多挑战需要克服。这些挑战可以分为三类参数:材料特定参数包括细丝的物理化学特性,如热学、力学和流变学特性,它们决定了打印过程的可行性;操作特定参数与打印的加工条件有关,例如打印温度和填充密度,这些参数会影响最终质量和物体的溶解行为;打印机设备由机器特定参数定义,对设备的某些修改也可以提高打印过程的性能。本文的目的是强调制药领域中熔融沉积建模的主要关键工艺参数以及可能的解决方案,以加速制药市场中物体的开发。

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