Mannitol-Coated Hydroxypropyl Methylcellulose as a Directly Compressible Controlled Release Excipient for Moisture-Sensitive Drugs: A Stability Perspective.

IF 4.3 3区 医学 Q2 CHEMISTRY, MEDICINAL
Pharmaceuticals Pub Date : 2024-09-04 DOI:10.3390/ph17091167
Christina Yong Xin Kang, Keat Theng Chow, Yuan Siang Lui, Antoine Salome, Baptiste Boit, Philippe Lefevre, Tze Ning Hiew, Rajeev Gokhale, Paul Wan Sia Heng
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引用次数: 0

Abstract

Background/objectives: Hydroxypropyl methylcellulose (HPMC) is one of the most commonly used hydrophilic polymers in formulations of matrix tablets for controlled release applications. However, HPMC attracts moisture and poses issues with drug stability in formulations containing moisture-sensitive drugs.

Methods: Herein, the moisture sorption behavior of excipients and drug stability using aspirin as the model drug in matrix tablets were evaluated, using HPMC and the newly developed mannitol-coated HPMC, under accelerated stability conditions (40 °C, 75% relative humidity) with open and closed dishes.

Results: Tablets prepared with mannitol-coated HPMC showed a slower drug degradation rate compared to tablets prepared with directly compressible HPMC. Initial moisture content and hygroscopicity were stronger predictors of drug stability compared to water activity when comparing samples without similar moisture content. In the early stage (day 0 to 30), the aspirin degradation rate was similar in both open and closed conditions, as moisture content is the main degradation contributor. In the later stage (day 30 to 90), aspirin degradation was faster under closed conditions than under open conditions, likely due to autocatalytic effects caused by the volatile acidic by-product entrapped in the closed environment.

Conclusions: The findings from this study reinforced the importance of judicious excipient selection based on the understanding of excipient-moisture interactions to maximize the chemical stability of moisture-sensitive drugs. Mannitol-coated HPMC is a promising addition to the formulator's toolbox for the formulation of controlled release dosage forms by direct compression.

甘露醇包衣羟丙基甲基纤维素作为湿敏药物的直接可压缩控释辅料:稳定性透视。
背景/目的:羟丙基甲基纤维素(HPMC)是控释基质片剂配方中最常用的亲水性聚合物之一。方法:本文以阿司匹林为模型药物,使用 HPMC 和新开发的甘露醇包衣 HPMC,在加速稳定条件(40 °C,75% 相对湿度)下,通过开放式和封闭式皿,对基质片剂中辅料的吸湿行为和药物稳定性进行了评估:结果:与使用直接可压缩的 HPMC 制备的片剂相比,使用甘露醇包衣的 HPMC 制备的片剂药物降解速度较慢。与水活性相比,初始含水量和吸湿性更能预测药物的稳定性。在早期阶段(第 0 天至第 30 天),阿司匹林在开放和封闭条件下的降解率相似,因为水分含量是导致降解的主要因素。在后期(第 30 天至第 90 天),封闭条件下阿司匹林的降解速度快于开放条件下,这可能是由于封闭环境中夹带的挥发性酸性副产物产生了自催化作用:这项研究的结果表明,在了解辅料与水分相互作用的基础上明智地选择辅料对于最大限度地提高对水分敏感的药物的化学稳定性非常重要。甘露醇包衣的HPMC是配方设计师通过直接压制法配制控释剂型的一个很有前途的新工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Pharmaceuticals
Pharmaceuticals Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
CiteScore
6.10
自引率
4.30%
发文量
1332
审稿时长
6 weeks
期刊介绍: Pharmaceuticals (ISSN 1424-8247) is an international scientific journal of medicinal chemistry and related drug sciences.
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