Improving Dissolution Performance and Drug Loading of Amorphous Dispersions Through a Hierarchical Particle Approach

溶解 无定形固体 材料科学 背景(考古学) 粒子(生态学) 聚合物 化学工程 X射线光电子能谱 差示扫描量热法 粒径 色散(光学) 溶剂 扫描电子显微镜 溶解试验 分析化学(期刊) 化学 色谱法 有机化学 复合材料 光学 地质学 工程类 古生物学 物理 海洋学 热力学 乙基纤维素 生物
作者
Tze Ning Hiew,Sugandha Saboo,Dmitry Zemlyanov,Ashish Punia,Michael Wang,Daniel T. Smith,Michael Lowinger,Marina A. Solomos,Luke Schenck,Lynne S. Taylor
出处
期刊:Journal of Pharmaceutical Sciences [Elsevier]
卷期号:112 (8): 2057-2068 被引量:2
标识
DOI:10.1016/j.xphs.2022.12.019
摘要

Co-precipitation is an emerging manufacturing strategy for amorphous solid dispersions (ASDs). Herein, the interplay between processing conditions, surface composition, and release performance was evaluated using grazoprevir and hypromellose acetate succinate as the model drug and polymer, respectively. Co-precipitated amorphous dispersion (cPAD) particles were produced in the presence and absence of an additional polymer that was either dissolved or dispersed in the anti-solvent. This additional polymer in the anti-solvent was deposited on the surfaces of the cPAD particles during isolation and drying to create hierarchical particles, which we define here as a core ASD particle with an additional water soluble component that is coating the particle surfaces. The resultant hierarchical particles were characterized using X-ray powder diffraction, differential scanning calorimetry, scanning electron microscopy, and X-ray photoelectron spectroscopy (XPS). Release performance was evaluated using a two-stage dissolution test. XPS analysis revealed a trend whereby cPAD particles with a lower surface drug concentration showed improved release relative to particles with a higher surface drug concentration, for nominally similar drug loadings. This surface drug concentration could be impacted by whether the secondary polymer was dissolved in the anti-solvent or dispersed in the anti-solvent prior to isolating final dried hierarchical cPAD powders. Grazoprevir exposure in dogs was higher when the hierarchical cPAD was dosed, with ∼1.8 fold increase in AUC compared to the binary cPAD. These observations highlight the important interplay between processing conditions and ASD performance in the context of cPAD particles and illustrate a hierarchical particle design as a successful approach to alter ASD surface chemistry to improve dissolution performance.
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