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应用响应面法优化醋氯芬酸的控释微球。

Optimization of sustained release aceclofenac microspheres using response surface methodology.

机构信息

Department of Pharmaceutical Technology, University Institute of Chemical Technology, North Maharashtra University, Jalgaon, 425 001 Maharashtra, India.

Department of Pharmaceutical Technology, University Institute of Chemical Technology, North Maharashtra University, Jalgaon, 425 001 Maharashtra, India.

出版信息

Mater Sci Eng C Mater Biol Appl. 2015 Mar;48:197-204. doi: 10.1016/j.msec.2014.12.008. Epub 2014 Dec 5.

Abstract

Polymeric microspheres containing aceclofenac were prepared by single emulsion (oil-in-water) solvent evaporation method using response surface methodology (RSM). Microspheres were prepared by changing formulation variables such as the amount of Eudragit® RS100 and the amount of polyvinyl alcohol (PVA) by statistical experimental design in order to enhance the encapsulation efficiency (E.E.) of the microspheres. The resultant microspheres were evaluated for their size, morphology, E.E., and in vitro drug release. The amount of Eudragit® RS100 and the amount of PVA were found to be significant factors respectively for determining the E.E. of the microspheres. A linear mathematical model equation fitted to the data was used to predict the E.E. in the optimal region. Optimized formulation of microspheres was prepared using optimal process variables setting in order to evaluate the optimization capability of the models generated according to IV-optimal design. The microspheres showed high E.E. (74.14±0.015% to 85.34±0.011%) and suitably sustained drug release (minimum; 40% to 60%; maximum) over a period of 12h. The optimized microspheres formulation showed E.E. of 84.87±0.005 with small error value (1.39). The low magnitudes of error and the significant value of R(2) in the present investigation prove the high prognostic ability of the design. The absence of interactions between drug and polymers was confirmed by Fourier transform infrared (FTIR) spectroscopy. Differential scanning calorimetry (DSC) and X-ray powder diffractometry (XRPD) revealed the dispersion of drug within microspheres formulation. The microspheres were found to be discrete, spherical with smooth surface. The results demonstrate that these microspheres could be promising delivery system to sustain the drug release and improve the E.E. thus prolong drug action and achieve the highest healing effect with minimal gastrointestinal side effects.

摘要

采用响应面法(RSM)通过单乳液(油包水)溶剂蒸发法制备载双氯芬酸钠的聚合微球。通过改变制剂变量,如 Eudragit® RS100 的用量和聚乙烯醇(PVA)的用量,用统计实验设计来制备微球,以提高微球的包封效率(E.E.)。评估所得微球的粒径、形态、E.E.和体外药物释放。发现 Eudragit® RS100 的用量和 PVA 的用量分别是影响微球 E.E.的显著因素。拟合数据的线性数学模型方程用于预测最佳区域的 E.E.。根据 IV-最优设计生成的模型的优化能力,使用最佳工艺变量设置制备优化的微球配方。微球显示出高的 E.E.(74.14±0.015%至 85.34±0.011%)和适当的药物释放(最小 40%至 60%;最大)持续 12h。优化后的微球配方显示 E.E.为 84.87±0.005,误差值较小(1.39)。本研究中误差值小且 R2 值显著,证明了设计的高预测能力。傅里叶变换红外(FTIR)光谱证实药物与聚合物之间没有相互作用。差示扫描量热法(DSC)和 X 射线粉末衍射法(XRPD)显示药物在微球配方中的分散性。微球呈离散状、球形,表面光滑。结果表明,这些微球可以作为有前途的给药系统,以维持药物释放,提高 E.E.,从而延长药物作用时间,并达到最高的治疗效果,同时最小化胃肠道副作用。

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