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用于吸入给药的聚乙烯吡咯烷酮 K29-32 固体分散体的微球颗粒。

Microspherical Particles of Solid Dispersion of Polyvinylpyrrolidone K29-32 for Inhalation Administration.

机构信息

Department of Physical Chemistry, A.M. Butlerov Institute of Chemistry, Kazan Federal University, Kremlevskaya 18, Kazan 420008, Russia.

ZPTI-Subdivision, FIC KazanSC of RAS, Sibirsky Tract 10/7, Kazan 420029, Russia.

出版信息

Biomed Res Int. 2018 Jan 10;2018:2412156. doi: 10.1155/2018/2412156. eCollection 2018.

Abstract

Inhalation administration is a promising alternative to the invasive drug delivery methods. The particle size required for ideal drug aerosol preparation is between 1 and 3 m. The application of microspherical particles of solid dispersions enhances bioavailability of poorly soluble drugs due to the solubilization. In the present work, the spray drying process of the production of microspherical particles of solid dispersions of polyvinylpyrrolidone K29-32 with model hydrophobic drug, phenacetin, was optimized using the results of DSC, PXRD, and viscometry. The diameter of the obtained particles is within 1-3 m range. The Gibbs energy of dissolution in water was shown to be negative for the mixture with polymer/phenacetin mass ratio 5 : 1. We have demonstrated that the optimal size distribution for the inhalation administration is obtained for microspherical particles produced using spray caps with 7.0 m hole size. The dissolution rates of phenacetin from the produced microspherical particles were faster than that of drug powder. As evidenced by powder X-ray diffraction data, phenacetin stayed in amorphous state for 4 months in microspherical particles of solid dispersions. According to the obtained results, strategic application of the spray drying process could be beneficial for the improvement of the pharmaceutical properties of model drug, phenacetin.

摘要

吸入给药是一种有前途的替代侵入性药物输送方法。理想药物气溶胶制剂所需的粒径在 1 至 3 微米之间。由于增溶作用,固体分散体的微球颗粒的应用增强了难溶性药物的生物利用度。在本工作中,使用 DSC、PXRD 和粘度计的结果对聚维酮 K29-32 与模型疏水性药物非那西汀的固体分散体的微球颗粒的喷雾干燥过程进行了优化。所得颗粒的直径在 1-3 微米范围内。对于聚合物/非那西汀质量比为 5∶1 的混合物,水的溶解吉布斯自由能显示为负值。我们已经证明,使用 7.0 微米孔尺寸的喷雾帽生产的微球颗粒可获得用于吸入给药的最佳粒径分布。从所制备的微球颗粒中释放的非那西汀的溶解速率比药物粉末快。如粉末 X 射线衍射数据所示,非那西汀在固体分散体的微球颗粒中 4 个月内仍保持无定形状态。根据获得的结果,喷雾干燥工艺的战略应用可能有利于改善模型药物非那西汀的药物性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cdfa/5818905/43f2b20b0d5f/BMRI2018-2412156.001.jpg

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