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采用双喷嘴熔丝沉积建模(FDM)3D 打印技术制备用于时间控制药物传递的吲哚美辛核壳型定时释放片。

Fabrication of timed-release indomethacin core-shell tablets for chronotherapeutic drug delivery using dual nozzle fused deposition modeling (FDM) 3D printing.

机构信息

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.

出版信息

Eur J Pharm Biopharm. 2023 Jul;188:254-264. doi: 10.1016/j.ejpb.2023.05.015. Epub 2023 May 16.

Abstract

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.

摘要

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。

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