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一种改进的机械机制方法,用于预测不同辊压速度下的带状固体分数。

A modified mechanistic approach for predicting ribbon solid fraction at different roller compaction speeds.

机构信息

Boehringer Ingelheim Pharmaceuticals Inc., Department of Material and Analytical Sciences, Ridgefield, CT 06877, USA.

Boehringer Ingelheim Pharmaceuticals Inc., Department of Material and Analytical Sciences, Ridgefield, CT 06877, USA.

出版信息

Int J Pharm. 2024 Jul 20;660:124366. doi: 10.1016/j.ijpharm.2024.124366. Epub 2024 Jun 18.

DOI:10.1016/j.ijpharm.2024.124366
PMID:38901541
Abstract

This research investigates the modeling of the pharmaceutical roller compaction process, focusing on the application of the Johanson model and the impact of varying roll speeds from 1 to 15 RPM on predictive accuracy of ribbon solid fraction. The classical Johanson's model was integrated with a dwell time parameter leading to an expression of a floating correction factor as a function of roll speed. Through systematic analysis of the effect of different roll speeds on the solid fraction of ribbons composed of microcrystalline cellulose, lactose, and their blends, corrective adjustment to the Johanson model was found to depend on both roll speed and formulation composition. Interestingly, the correction factor demonstrated excellent correlation with the blend's mechanical properties, namely yield stress (P) and elastic modulus (E), representative of the deformability of the powder. Validated by a multicomponent drug formulation with ±0.4-1.3 % differences, the findings underscore the utility of this modified mechanistic approach for precise prediction of ribbon solid fraction when P or E is known for a given blend. Hence, this work advances the field by offering early insights for more accurate and controllable roller compaction operations during late-stage pharmaceutical manufacturing.

摘要

本研究调查了制药滚压过程的建模,重点研究了 Johanson 模型的应用以及将辊速从 1 至 15 RPM 变化对预测带状固体分数的准确性的影响。经典的 Johanson 模型与停留时间参数相结合,得到了一个浮动修正因子的表达式,该因子是辊速的函数。通过系统分析不同辊速对由微晶纤维素、乳糖及其混合物组成的带状物的固体分数的影响,发现对 Johanson 模型的修正调整取决于辊速和配方组成。有趣的是,修正因子与混合物的力学性能(即屈服应力 (P) 和弹性模量 (E))表现出极好的相关性,这些力学性能代表了粉末的可变形性。通过对一种多组分药物制剂进行验证,差异在±0.4-1.3%之间,研究结果强调了这种改进的机械方法在已知给定混合物的 P 或 E 时,用于精确预测带状固体分数的实用性。因此,这项工作通过在药物制造后期提供更准确和可控的滚压操作的早期见解,推进了该领域的发展。

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