Pantub Ketrawee, Wongtrakul Paveena, Janwitayanuchit Wicharn
Faculty of Pharmaceutical Sciences, Huachiew Chalermprakiet University.
J Oleo Sci. 2017;66(12):1311-1319. doi: 10.5650/jos.ess17051.
Nanostructured lipid carriers loaded salicylic acid (NLCs-SA) were developed and optimized by using the design of experiment (DOE). Box-Behnken experimental design of 3-factor, 3-level was applied for optimization of nanostructured lipid carriers prepared by emulsification method. The independent variables were total lipid concentration (X), stearic acid to Lexol GT-865 ratio (X) and Tween 80 concentration (X) while the particle size was a dependent variable (Y). Box-Behnken design could create 15 runs by setting response optimizer as minimum particle size. The optimized formulation consists of 10% of total lipid, a mixture of stearic acid and capric/caprylic triglyceride at a 4:1 ratio, and 25% of Tween 80 which the formulation was applied in order to prepare in both loaded and unloaded salicylic acid. After preparation for 24 hours, the particle size of loaded and unloaded salicylic acid was 189.62±1.82 nm and 369.00±3.37 nm, respectively. Response surface analysis revealed that the amount of total lipid is a main factor which could affect the particle size of lipid carriers. In addition, the stability studies showed a significant change in particle size by time. Compared to unloaded nanoparticles, the addition of salicylic acid into the particles resulted in physically stable dispersion. After 30 days, sedimentation of unloaded lipid carriers was clearly observed. Absolute values of zeta potential of both systems were in the range of 3 to 18 mV since non-ionic surfactant, Tween 80, providing steric barrier was used. Differential thermograms indicated a shift of endothermic peak from 55°C for α-crystal form in freshly prepared samples to 60°C for β´-crystal form in storage samples. It was found that the presence of capric/caprylic triglyceride oil could enhance encapsulation efficiency up to 80% and facilitate stability of the particles.
通过实验设计(DOE)开发并优化了负载水杨酸的纳米结构脂质载体(NLCs-SA)。采用三因素、三水平的Box-Behnken实验设计对乳化法制备的纳米结构脂质载体进行优化。自变量为总脂质浓度(X1)、硬脂酸与Lexol GT-865的比例(X2)和吐温80浓度(X3),而粒径为因变量(Y)。Box-Behnken设计通过将响应优化器设置为最小粒径可生成15次运行。优化后的配方包括10%的总脂质、硬脂酸与辛酸/癸酸甘油三酯以4:1比例混合,以及25%的吐温80,该配方用于制备负载和未负载水杨酸的脂质载体。制备24小时后,负载和未负载水杨酸的粒径分别为189.62±1.82 nm和369.00±3.37 nm。响应面分析表明,总脂质的量是影响脂质载体粒径的主要因素。此外,稳定性研究表明粒径随时间有显著变化。与未负载纳米颗粒相比,向颗粒中添加水杨酸导致物理稳定的分散体。30天后,明显观察到未负载脂质载体的沉降。由于使用了提供空间位阻的非离子表面活性剂吐温80,两个体系的ζ电位绝对值在3至18 mV范围内。差示热谱图表明,吸热峰从新鲜制备样品中α晶型的55°C移至储存样品中β´晶型的60°C。发现辛酸/癸酸甘油三酯油的存在可将包封效率提高至80%并促进颗粒的稳定性。