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通过 Box-Behnken 设计优化米氮平载入介孔硅纳米结构:表征和评估。

Optimization of mirtazapine loaded into mesoporous silica nanostructures via Box-Behnken design: characterization and assessment.

机构信息

Department of Pharmaceutics, College of Pharmaceutical Sciences and Drug Manufacturing, Misr University for Science and Technology, Giza, Egypt.

Department of Pharmaceutics, Faculty of Pharmacy, Zagazig University, Zagazig, Egypt.

出版信息

Drug Deliv. 2022 Dec;29(1):1582-1594. doi: 10.1080/10717544.2022.2075985.

Abstract

Employment of mesoporous silica nanostructures (MSNs) in the drug delivery field has shown a significant potential for improving the oral delivery of active pharmaceutical products with low solubility in water. Mirtazapine (MRT) is a tetracyclic antidepressant with poor water solubility (BCS Class II), which was recently approved as a potent drug used to treat severe depression. The principle of this research is to optimize the incorporation of Mirtazapine into MSNs to improve its aqueous solubility, loading efficiency, release performance, and subsequent bioavailability. The formulation was optimized by using of Box-Behnken Design, which allows simultaneous estimation of the impact of different types of silica (SBA-15, MCM-41, and Aluminate-MCM-41), a different drug to silica ratios (33.33%, 49.99%, and 66.66%), and different drug loading procedures (Incipient wetness, solvent evaporation, and solvent impregnation) on the MRT loading efficiency, aqueous solubility and dissolution rate. The optimized formula was achieved by loading MRT into SBA-15 at 33.33% drug ratio prepared by the incipient wetness method, which displayed a loading efficiency of 104.05%, water solubility of 0.2 mg/ml, and 100% dissolution rate after 30 min. The pharmacokinetic profile of the optimized formula was obtained by conducting the in study in rabbits which showed a marked improvement (2.14-fold) in oral bioavailability greater than plain MRT. The physicochemical parameters and morphology of the optimized formula were characterized by; gas adsorption manometry, scanning electron microscopy (SEM), polarized light microscopy (PLM), Fourier-transform infrared spectroscopy (FT-IR), differential scanning calorimetry (DSC), and X-ray powder diffraction (XRPD).

摘要

介孔硅纳米结构(MSNs)在药物传递领域的应用显示出了提高水中低溶解度活性药物产品口服传递的巨大潜力。米氮平(MRT)是一种四环抗抑郁药,水溶性差(BCS 分类 II),最近被批准为一种用于治疗严重抑郁症的有效药物。本研究的原理是优化米氮平在 MSNs 中的包封,以提高其水溶解度、载药量、释放性能和随后的生物利用度。该配方通过 Box-Behnken 设计进行了优化,该设计允许同时估计不同类型的硅(SBA-15、MCM-41 和铝酸盐-MCM-41)、不同的药物与硅的比例(33.33%、49.99%和 66.66%)以及不同的药物加载程序(初始湿度、溶剂蒸发和溶剂浸渍)对 MRT 载药量、水溶解度和溶解速率的影响。通过以 33.33%的药物比在初始湿度法制备的 SBA-15 中负载 MRT 来优化配方,达到 104.05%的载药量、0.2mg/ml 的水溶解度和 30min 后 100%的溶解速率。通过在兔子体内进行的研究获得了优化配方的药代动力学特征,显示出比普通 MRT 显著提高(2.14 倍)的口服生物利用度。通过气体吸附压汞法、扫描电子显微镜(SEM)、偏光显微镜(PLM)、傅里叶变换红外光谱(FT-IR)、差示扫描量热法(DSC)和 X 射线粉末衍射(XRPD)对优化配方的物理化学参数和形态进行了表征。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c50/9135429/d8334a6dbbe8/IDRD_A_2075985_F0001_C.jpg

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