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基于中心复合设计的洛匹那韦维生素 E-TPGS 胶束优化:体外特性研究和体内药代动力学研究。

Central composite design-based optimization of lopinavir vitamin E-TPGS micelle: In vitro characterization and in vivo pharmacokinetic study.

机构信息

Department of Pharmaceutics and Pharmaceutical Technology, R. C. Patel Institute of Pharmaceutical Education and Research, Shirpur, India.

Department of Pharmaceutics and Pharmaceutical Technology, R. C. Patel Institute of Pharmaceutical Education and Research, Shirpur, India; Department of Pharmaceutics, H. R. Patel Institute of Pharmaceutical Education and Research, Shirpur, India.

出版信息

Colloids Surf B Biointerfaces. 2020 Oct;194:111149. doi: 10.1016/j.colsurfb.2020.111149. Epub 2020 May 26.

Abstract

This study was aimed at formulating Lopinavir loaded Vitamin E-TPGS micelles to enhance its oral bioavailability. Lopinavir is an HIV-1 protease inhibitor with low aqueous solubility leading to poor oral bioavailability and thus frequent dosing. Drug loaded micelles were fabricated using thin film hydration technique and optimized by two-factor five-level central composite design. For this purpose independent variables selected were TPGS to drug ratio and rotational speed of rotary evaporator, whereas dependent variables chosen were particle size and % entrapment efficiency. The effect of an independent variable on the dependent variable was studied by generating a quadratic polynomial model. Results of in vitro characterization showed that prepared lopinavir micelles exhibited particle size 91.71 nm, polydispersity index 0.129, zeta potential -24.8 mV, entrapment efficiency 99.36 ± 1.06% and drug loading 20.83 ± 1.23%. Results of DSC and P-XRD evaluation revealed that drugs were successfully encapsulated inside the Vitamin E-TPGS micelles. In vitro release studies displayed enhancement in drug dissolution as a result of its loading into micelles. TEM images showed that micelles were spherical. On oral administration of lopinavir micelles; the relative bioavailability was boosted by 3.17 folds compared to lopinavir suspensions. Thus, we can conclude that TPGS based micelles possess the prodigious potential to overcome the challenges of current HAART therapy.

摘要

本研究旨在制备洛匹那韦载脂蛋白 E-TPGS 胶束,以提高其口服生物利用度。洛匹那韦是一种 HIV-1 蛋白酶抑制剂,水溶性低,导致口服生物利用度差,因此需要频繁给药。采用薄膜水化技术制备载药胶束,并通过两因素五水平中心复合设计进行优化。为此,选择的自变量是 TPGS 与药物的比例和旋转蒸发器的转速,而选择的因变量是粒径和包封效率。通过生成二次多项式模型研究自变量对因变量的影响。体外特性研究结果表明,所制备的洛匹那韦胶束粒径为 91.71nm,多分散指数为 0.129,Zeta 电位为-24.8mV,包封效率为 99.36±1.06%,载药量为 20.83±1.23%。DSC 和 P-XRD 评价结果表明,药物成功地包裹在维生素 E-TPGS 胶束内。体外释放研究显示,药物负载到胶束中后,药物溶解得到增强。TEM 图像显示胶束呈球形。与洛匹那韦混悬液相比,洛匹那韦胶束口服后,相对生物利用度提高了 3.17 倍。因此,我们可以得出结论,基于 TPGS 的胶束具有克服当前 HAART 治疗挑战的巨大潜力。

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