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熔融分散吸附在多孔载体上:一种增强盐酸雷洛昔芬溶解和流动性能的有效方法。

Melt Dispersion Adsorbed onto Porous Carriers: An Effective Method to Enhance the Dissolution and Flow Properties of Raloxifene Hydrochloride.

机构信息

Department of Pharmaceutics, Babaria Institute of Pharmacy, Vadodara, India.

出版信息

Assay Drug Dev Technol. 2020 Aug/Sep;18(6):282-294. doi: 10.1089/adt.2020.990. Epub 2020 Sep 2.

Abstract

The objective of the present investigation is to enhance the dissolution and flow properties of raloxifene hydrochloride (RXH), a biopharmaceutical classification system class II drug. Melt dispersion of RXH with polyethylene glycol (PEG) 6000 was prepared by the fusion method. The melt dispersion was then adsorbed onto a porous adsorbent, Neusilin, by the melt adsorption method. Response surface methodology was employed to establish the design space for formulation variables such as the ratio of RXH to PEG 6000 in melt dispersion and amount of porous adsorbent to melt dispersion. Differential scanning calorimetry, scanning electron microscopy, X-ray diffraction, Fourier-transform infrared spectroscopy, and accelerated stability techniques were utilized to characterize formulations. Negative Gibbs free energy values indicated spontaneous solubilization of RXH in PEG 6000. The time required for 80% of drug release from optimized formulation was <20 min compared with plain RXH. Accelerated stability studies confirmed the stabilization of amorphous melt dispersion in nanopores (nanoconfinement) of inorganic silicate Neusilin. Melt dispersion, adsorbed on porous carriers, is a promising technique to improve the dissolution characteristic as well as flow properties of drug molecules.

摘要

本研究旨在提高盐酸雷洛昔芬(RXH)的溶解和流动性能,RXH 是生物制药分类系统 II 类药物。通过熔融法制备 RXH 与聚乙二醇(PEG)6000 的熔融分散体。然后通过熔融吸附法将熔融分散体吸附到多孔吸附剂 Neusilin 上。采用响应面法建立了制剂变量(如熔融分散体中 RXH 与 PEG 6000 的比例和多孔吸附剂与熔融分散体的用量)的设计空间。利用差示扫描量热法、扫描电子显微镜、X 射线衍射、傅里叶变换红外光谱和加速稳定性技术对制剂进行了表征。负吉布斯自由能值表明 RXH 在 PEG 6000 中自发溶解。与普通 RXH 相比,优化配方中 80%药物释放所需的时间<20 分钟。加速稳定性研究证实了无定形熔融分散体在无机硅酸盐 Neusilin 的纳米孔(纳米约束)中的稳定化。吸附在多孔载体上的熔融分散体是一种很有前途的技术,可以改善药物分子的溶解特性和流动性能。

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