Department of Pharmaceutics and Drug Delivery, School of Pharmacy, University of Mississippi, MS 38677, USA.
Department of Pharmaceutics and Drug Delivery, School of Pharmacy, University of Mississippi, MS 38677, USA; Pii Center for Pharmaceutical Technology, University of Mississippi, University, MS 38677, USA.
Eur J Pharm Biopharm. 2023 Jul;188:254-264. doi: 10.1016/j.ejpb.2023.05.015. Epub 2023 May 16.
In the present study, timed-release indomethacin tablets, releasing drug after predetermined lag times, were developed for the effective treatment of early morning stiffness in rheumatoid arthritis using two-nozzle fused deposition modeling (FDM) 3D printing with a Bowden extruder. The developed core-shell tablets consisted of a drug-containing core and release-regulating shell with different designed thicknesses (i.e., 0.4 mm, 0.6 mm, 0.8 mm). The filaments to fabricate cores and shells were prepared using hot-melt extrusion (HME), and different filament compositions were formulated for core tablets and screened for rapid release and printability. Eventually, the HPMCAS-based formulation comprised a core tablet enclosed by a shell of Affinisol™ 15LV, a swellable polymer. During 3D printing, one nozzle was dedicated to printing core tablets loaded with indomethacin, and the other nozzle was dedicated to printing shells, making a whole structure produced at once without inconvenient filament change and nozzle cleanout. The mechanical properties of filaments were compared using a texture analyzer. The core-shell tablets were characterized for dissolution profiles and physical attributes (e.g., dimension, friability, hardness). SEM image indicated a smooth and complete surface of the core-shell tablets. The tablets showed 4-8 h of lag depending on the shell thicknesses and released most of the drugs in 3 h, regardless of the shell thicknesses. The core-shell tablets showed high reproducibility but exhibited low dimensional accuracy in the shell thickness. This study explored the suitability of using two-nozzle FDM 3D printing with Bowden extrusion for producing personalized chronotherapeutic core-shell tablets and discussed possible challenges that needed to be considered for a successful printing process using this technology.
在本研究中,使用带有 Bowden 挤出机的双喷嘴熔丝制造(FDM)3D 打印技术,开发了定时释放吲哚美辛片,以在预定的滞后时间后释放药物,从而有效治疗类风湿关节炎的晨僵。所开发的核壳片剂由含有药物的核和具有不同设计厚度(即 0.4mm、0.6mm、0.8mm)的控释壳组成。用于制造核和壳的长丝通过热熔挤出(HME)制备,并且为核片剂配制了不同的长丝组成,并对其进行了快速释放和可打印性筛选。最终,基于 HPMCAS 的配方由包含吲哚美辛的核片剂组成,由可溶胀聚合物 Affinisol™15LV 构成的壳封闭。在 3D 打印过程中,一个喷嘴专门用于打印装有吲哚美辛的核片剂,另一个喷嘴专门用于打印壳,从而可以一次打印整个结构,而无需不方便的长丝更换和喷嘴清理。使用纹理分析仪比较了长丝的机械性能。对核壳片剂进行了溶解曲线和物理特性(例如尺寸、脆性、硬度)的表征。SEM 图像表明核壳片剂具有光滑完整的表面。根据壳厚度,片剂的滞后时间为 4-8 小时,并在 3 小时内释放了大部分药物,而与壳厚度无关。核壳片剂具有良好的重现性,但壳厚度的尺寸精度较低。本研究探讨了使用带有 Bowden 挤出机的双喷嘴 FDM 3D 打印生产个性化时间治疗性核壳片剂的适用性,并讨论了使用该技术成功打印过程中需要考虑的可能挑战。