Magramane Sabrina, Kállai-Szabó Nikolett, Farkas Dóra, Süvegh Károly, Zelkó Romána, Antal István
Department of Pharmaceutics, Semmelweis University, Hőgyes Str. 7, H-1092 Budapest, Hungary.
Center for Pharmacology and Drug Research & Development, Semmelweis University, 1085 Budapest, Hungary.
Pharmaceutics. 2025 Jul 3;17(7):877. doi: 10.3390/pharmaceutics17070877.
: This study investigates the impact of high humidity (25 °C, 75% relative humidity) on gelatin and hydroxypropyl methylcellulose (HPMC) capsules used in dry powder inhalers (DPIs), focusing on moisture dynamics, structural responses, and mechanical performance, with an emphasis on understanding how different capsule types respond to prolonged exposure to humid conditions. : Capsules were exposed to controlled humidity conditions, and moisture uptake was measured via thermal analysis. Visual observations of silica bead color changes were performed to assess moisture absorption, while surface wettability was measured using the sessile drop method. Hardness testing, mechanical deformation, and puncture tests were performed to evaluate structural and mechanical changes. Positron annihilation lifetime spectroscopy (PALS) was used to analyze free volume expansion. : HPMC capsules exhibited rapid moisture uptake, attributed to their lower equilibrium moisture content and ability to rearrange dynamically, preventing brittleness. In contrast, gelatin capsules showed slower moisture absorption but reached higher equilibrium levels, resulting in plasticization and softening. Mechanical testing showed that HPMC capsules retained structural integrity with minimal deformation, while gelatin capsules became softer and exhibited reduced puncture resistance. Structural analysis revealed greater free volume expansion in HPMC capsules, consistent with their amorphous nature, compared with gelatin's semi-crystalline matrix. : HPMC capsules demonstrated superior humidity resilience, making them more suitable for protecting moisture-sensitive active pharmaceutical ingredients (APIs) in DPI formulations. These findings underline the importance of appropriate storage conditions, as outlined in the Summary of Product Characteristics, to ensure optimal capsule performance throughout patient use.
本研究调查了高湿度(25°C,相对湿度75%)对干粉吸入器(DPI)中使用的明胶和羟丙基甲基纤维素(HPMC)胶囊的影响,重点关注水分动态、结构响应和机械性能,强调了解不同类型的胶囊如何应对长时间暴露在潮湿环境中。
将胶囊暴露在受控的湿度条件下,通过热分析测量水分吸收情况。通过观察硅胶珠颜色变化进行目视评估以测定吸湿情况,同时使用静滴法测量表面润湿性。进行硬度测试、机械变形测试和穿刺测试以评估结构和机械变化。采用正电子湮没寿命谱(PALS)分析自由体积膨胀情况。
HPMC胶囊表现出快速的水分吸收,这归因于其较低的平衡水分含量以及能够动态重排从而防止变脆的能力。相比之下,明胶胶囊的吸湿速度较慢,但达到的平衡水平较高,导致增塑和软化。机械测试表明,HPMC胶囊保持结构完整性,变形最小,而明胶胶囊变得更软,抗穿刺性降低。结构分析显示,与明胶的半结晶基质相比,HPMC胶囊的自由体积膨胀更大,这与其无定形性质一致。
HPMC胶囊表现出卓越的湿度耐受性,使其更适合在DPI制剂中保护对水分敏感的活性药物成分(API)。这些发现强调了产品特性摘要中所述的适当储存条件对于确保患者在整个使用过程中胶囊性能最佳的重要性。