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Comparison of process parameter optimization using different designs in nanoemulsion-based formulation for transdermal delivery of fullerene

机译:基于纳米乳液的富勒烯透皮给药配方中使用不同设计的工艺参数优化的比较

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摘要

This research aims to formulate and to optimize a nanoemulsion-based formulation containing fullerene, an antioxidant, stabilized by a low amount of mixed surfactants using high shear and the ultrasonic emulsification method for transdermal delivery. Process parameters optimization of fullerene nanoemulsions was done by employing response surface methodology, which involved statistical multivariate analysis. Optimization of independent variables was investigated using experimental design based on Box–Behnken design and central composite rotatable design. An investigation on the effect of the homogenization rate (4,000–5,000 rpm), sonication amplitude (20%–60%), and sonication time (30–150 seconds) on the particle size, ζ-potential, and viscosity of the colloidal systems was conducted. Under the optimum conditions, the central composite rotatable design model suggested the response variables for particle size, ζ-potential, and viscosity of the fullerene nanoemulsion were 152.5 nm, −52.6 mV, and 44.6 pascal seconds, respectively. In contrast, the Box–Behnken design model proposed that preparation under the optimum condition would produce nanoemulsion with particle size, ζ-potential, and viscosity of 148.5 nm, −55.2 mV, and 39.9 pascal seconds, respectively. The suggested process parameters to obtain optimum formulation by both models yielded actual response values similar to the predicted values with residual standard error of <2%. The optimum formulation showed more elastic and solid-like characteristics due to the existence of a large linear viscoelastic region.
机译:这项研究的目的是配制和优化一种基于纳米乳液的配方,该配方包含富勒烯,一种抗氧化剂,可以通过使用高剪切力和超声乳化方法进行透皮递送,通过少量的混合表面活性剂来稳定。富勒烯纳米乳液的工艺参数优化是通过采用响应表面方法进行的,该方法涉及统计多元分析。使用基于Box–Behnken设计和中央复合旋转设计的实验设计,研究了自变量的优化。研究均质速率(4,000–5,000 rpm),超声处理幅度(20%–60%)和超声处理时间(30–150秒)对胶体体系的粒径,ζ电位和粘度的影响进行了。在最佳条件下,中心复合材料可旋转设计模型建议,富勒烯纳米乳液的粒径,ζ电位和粘度的响应变量分别为152.5 nm,-52.6 mV和44.6帕斯卡·秒。相比之下,Box–Behnken设计模型提出,在最佳条件下进行制备会产生纳米乳液,其粒径,ζ电位和粘度分别为148.5 nm,-55.2 mV和39.9帕斯卡·秒。为通过两个模型获得最佳配方而建议的工艺参数所产生的实际响应值与预测值相近,且残留标准误差<2%。最佳配方由于存在较大的线性粘弹性区域而显示出更多的弹性和类固体特征。

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