IF 4.5 3区 医学 Q1 PHARMACOLOGY & PHARMACY
Manasi Kale, Sharvil Patil, Ravindra Kamble
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引用次数: 0

摘要

他达拉非(TDF)是一种生物制药分类系统(BCS)二级药物,水溶性低,渗透性差,限制了其口服生物利用度。本研究采用超声沉淀法开发壳聚糖包衣的他达拉非纳米晶体(CS-TNC)。研究采用盒-贝肯设计(BBD)对 CS-TNC 进行优化,并对稳定剂浓度、壳聚糖浓度和超声时间进行了研究。优化后的 CS 包覆纳米晶体呈棒状,其平均尺寸、zeta 电位和包封效率分别为 263.41 ± 4.11 nm、-34.32 ± 1.34 mV 和 90.88 ± 5.33 %。根据差示扫描量热法(DSC)、粉末 X 射线衍射(PXRD)和傅立叶变换红外光谱(FT-IR)的结果,与 TDF 分散体和不含壳聚糖的他达拉非纳米晶体(TNC)相比,CS-TNC 的晶体形态和化学结构在整个过程中没有发生变化。根据everted gut sac的结果,CS-TNC在十二指肠、空肠和回肠中的表观渗透系数(Papp)分别增加了6.0倍、6.7倍和7.4倍。这表明壳聚糖包裹的纳米晶体可通过增加渗透性和抑制P-gp外流来改善肠道对他达拉非的吸收。与 TNC 和 TDF 相比,CS-TNC 的 Cmax 分别高出 3.3 倍和 5.5 倍,AUC0-t 分别高出 2.3 倍和 6.0 倍。制备的制剂显示出更好的水溶性、体外释放性和卓越的稳定性,这表明它可以用于商业用途。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Fabrication of chitosan-coated tadalafil nanocrystals by Box-Behnken design to enhance its solubility and oral bioavailability via sonoprecipitation technique

Fabrication of chitosan-coated tadalafil nanocrystals by Box-Behnken design to enhance its solubility and oral bioavailability via sonoprecipitation technique
Tadalafil (TDF) is a Biopharmaceutics Classification System (BCS) class II drug representing low aqueous solubility and poor permeability which limits its oral bioavailability. This study used sonoprecipitation process to develop chitosan-coated tadalafil nanocrystals (CS-TNC). Box-Behnken design (BBD) was used for optimization of CS-TNC and was investigated regarding stabilizer concentration, chitosan concentration, and sonication time. The optimized CS-coated nanocrystals showed rod-shaped particles with an average size, zeta potential, and entrapment efficiency of 263.41 ± 4.11 nm, −34.32 ± 1.34 mV, and 90.88 ± 5.33 %. The crystal form and chemical structure of CS-TNC did not alter throughout the procedure, as per the results of differential scanning calorimetry (DSC), powder x-ray diffraction (PXRD), and fourier transform infrared spectroscopy (FT-IR) when compared to TDF dispersion and tadalafil nanocrystals without chitosan (TNC). Apparent permeability coefficient (Papp) of CS-TNC increased by 6.0-, 6.7-, and 7.4-folds, respectively, in the duodenum, jejunum, and ileum according to results from the everted gut sac. This suggests that chitosan-coated nanocrystals may improve intestinal absorption of tadalafil by increasing permeability and inhibiting P-gp efflux. In comparison to TNC and TDF, the Cmax of CS-TNC was 3.3 and 5.5 times higher, while the AUC0-t was 2.3 and 6.0 times higher, respectively. The prepared formulation displayed improved aqueous solubility, in vitro release, and superior stability suggesting its utility towards commercial application.
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来源期刊
CiteScore
8.00
自引率
8.00%
发文量
879
审稿时长
94 days
期刊介绍: The Journal of Drug Delivery Science and Technology is an international journal devoted to drug delivery and pharmaceutical technology. The journal covers all innovative aspects of all pharmaceutical dosage forms and the most advanced research on controlled release, bioavailability and drug absorption, nanomedicines, gene delivery, tissue engineering, etc. Hot topics, related to manufacturing processes and quality control, are also welcomed.
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