Department of Pharmaceutics and Industrial Pharmacy, Faculty of Pharmacy, Cairo University, Kasr El-aini Street, Cairo 11562, Egypt.
Int J Pharm. 2010 May 31;391(1-2):203-11. doi: 10.1016/j.ijpharm.2010.03.008. Epub 2010 Mar 7.
The aim of this study was to develop and optimize SNEDDS formulations containing surfactants reported to be bioenhancers for improvement of dissolution and oral absorption of lacidipine (LCDP). Preliminary screening was carried out to select proper components combination. D-optimal mixture experimental design was applied to optimize a SNEDDS that contains a minimum amount of surfactant, a maximum amount of lipid, and possesses enhanced emulsification and dissolution rates. Three formulation variables; the oil phase X(1) (a mixture of Labrafil/Capmul), the surfactant X(2) (a mixture of Cremophor/Tween 80) and the co-surfactant X(3), were included in the design. The systems were assessed for droplet size, light absorbance, optical clarity, drug release and emulsification efficiency. Following optimization, the values of formulation components (X(1), X(2), and X(3)) were 34.20%, 40.41% and 25.39%, respectively. There is a good correlation between light absorbance and droplet size analysis of diluted SNEDDS (R(2)=0.883). Transmission electron microscopy demonstrated spherical droplet morphology. The stability of the optimized formulation was retained after storage at 40 degrees C/75% RH for three months. The optimized formulation of LCDP showed a significant increase in dissolution rate compared to the drug suspension under the same conditions. Our results proposed that the optimized SNEDDS formulation, containing bioenhancing surfactants, could be promising to improve oral absorption of LCDP.
本研究旨在开发和优化载有被报道能增强生物利用度的表面活性剂的 SNEDDS 配方,以改善拉西地平(LCDP)的溶解和口服吸收。进行了初步筛选以选择合适的成分组合。应用 D-最优混合实验设计来优化 SNEDDS,使其含有最小量的表面活性剂、最大量的脂质,并具有增强的乳化和溶解速率。三个配方变量;油相 X(1)(Labrafil/Capmul 的混合物)、表面活性剂 X(2)(Cremophor/Tween 80 的混合物)和助表面活性剂 X(3),被包括在设计中。对系统进行了粒径、光吸收、光学透明度、药物释放和乳化效率评估。优化后,配方成分(X(1)、X(2)和 X(3))的值分别为 34.20%、40.41%和 25.39%。稀释 SNEDDS 的光吸收和粒径分析之间存在良好的相关性(R(2)=0.883)。透射电子显微镜显示出球形液滴形态。在 40 度 C/75%相对湿度下储存三个月后,优化配方的稳定性得以保留。与相同条件下的药物混悬剂相比,优化的 LCDP 配方显示出溶解速率的显著增加。我们的结果表明,含有生物增强表面活性剂的优化 SNEDDS 配方可能有希望提高 LCDP 的口服吸收。