Impact of formulation on the quality and stability of freeze-dried nanoparticles

冷冻干燥 纳米颗粒 分散性 海藻糖 甘露醇 粒径 化学工程 赋形剂 材料科学 色谱法 喷雾干燥 化学 纳米技术 有机化学 高分子化学 工程类
作者
Wei-Chung Luo,André O’Reilly Beringhs,Rachel Kim,William Zhang,Sajal M. Patel,Robin H. Bogner,Xiuling Lü
出处
期刊:European Journal of Pharmaceutics and Biopharmaceutics [Elsevier]
卷期号:169: 256-267 被引量:21
标识
DOI:10.1016/j.ejpb.2021.10.014
摘要

Freeze-drying is an effective approach to improve the long-term stability of nanomedicines. Lyoprotectants are generally considered as requisite excipients to ensure that the quality of nanoparticles is maintained throughout the freeze-drying process. However, depending on the type of nanoparticles, the needs for lyoprotectants or the challenges they face during freeze-drying may be different. In this study, we compared and identified the impact of freeze-drying on key characteristics of three types of nanoparticles: solid lipid nanoparticles (SLNs), polymeric nanoparticles (PNs), and liposomes. Sucrose, trehalose, and mannitol were added to nanoparticle suspensions before freeze-drying. The same conservative freeze-drying conditions with controlled ice nucleation at -8 °C were employed for all formulations. The collapse temperatures of nanoparticle formulations were found to be the same as those of the lyoprotectant added, except PN formulation. Likely the poly(vinyl alcohol) (PVA) in the formulation induced a higher collapse temperature and retardation of drying of PNs. Freeze-drying of both SLNs and liposomes without lyoprotectants increased particle size and polydispersity, which was resolved by adding amorphous disaccharides. Regardless of the addition of lyoprotectants, freeze-drying did not alter the size of PNs possibly due to the protection from PVA. However, lyoprotectants were still necessary to shorten the reconstitution time and reduce the residual moisture. In conclusion, different types of nanoparticles face distinct challenges for freeze-drying, and lyoprotectants differentially affect various stability and quality attributes of freeze-dried nanoparticles.
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