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具有增强生物利用度潜力的反式白藜芦醇自纳米乳化药物递送系统(SNEDDS):优化、药代动力学及原位单通道肠道灌注(SPIP)研究

Trans-resveratrol self-nano-emulsifying drug delivery system (SNEDDS) with enhanced bioavailability potential: optimization, pharmacokinetics and in situ single pass intestinal perfusion (SPIP) studies.

作者信息

Singh Gurinder, Pai Roopa S

机构信息

Department of Pharmaceutics, Faculty of Pharmacy, Al-Ameen College of Pharmacy , Bangalore, Karnataka , India.

出版信息

Drug Deliv. 2015;22(4):522-30. doi: 10.3109/10717544.2014.885616. Epub 2014 Feb 11.

DOI:10.3109/10717544.2014.885616
PMID:24512464
Abstract

Trans-resveratrol (t-RVT) is a potent antioxidant. By virtue of extensive pre-systemic metabolism and existence of enterohepatic recirculation, t-RVT bioavailability is almost zero. The current study aimed to develop self-nanoemulsifying drug delivery systems (SNEDDS) using long-chain triglycerides (LCTs) of t-RVT in an attempt to circumvent such obstacles. Equilibrium solubility studies indicated the choice of Lauroglycol FCC as lipid, and of Labrasol and Transcutol P as surfactants, for formulating the SNEDDS. Ternary phase diagrams were constructed to select the areas of nanoemulsions, and the amounts of lipid (X(1)) and surfactant (X(2)) as the critical factor variables. The SNEDDS were optimized using 3(2) central composite design (CCD) and the optimized formulation (OPT) located using overlay plot. The nanometer size range and high negative values of zeta potential depicted non-coalescent nature of the SNEDDS. Optimized formulation indicated marked improvement in drug release profile vis-à-vis pure drug. Cloud point determination and accelerated stability studies ascertained the stability of OPT. Augmentation in the values of K(a) (3.29-fold) and AUC (4.31-fold) indicated significant enhancement in the rate and extent of bioavailability by the OPT compared with pure drug. In situ perfusion (SPIP) studies in Wistar rats construed remarkable enhancement in the absorptivity and permeability parameters of SNEDDS vis-à-vis the pure drug. Successful establishment of level A of in vitro/in vivo correlation substantiated the judicious choice of the in vitro dissolution milieu for simulating the in vivo conditions. The present study, therefore, reports the successful development of SNEDDS with distinctly enhanced bioavailability of t-RVT.

摘要

反式白藜芦醇(t-RVT)是一种强效抗氧化剂。由于广泛的首过代谢和肠肝循环的存在,t-RVT的生物利用度几乎为零。当前研究旨在使用t-RVT的长链甘油三酯(LCTs)开发自纳米乳化药物递送系统(SNEDDS),以试图克服此类障碍。平衡溶解度研究表明,选择月桂二醇FCC作为脂质,以及Labrasol和Transcutol P作为表面活性剂来制备SNEDDS。构建三元相图以选择纳米乳液区域,并将脂质(X(1))和表面活性剂(X(2))的量作为关键因素变量。使用3(2)中心复合设计(CCD)对SNEDDS进行优化,并使用叠加图确定优化配方(OPT)。纳米尺寸范围和高负值的zeta电位表明SNEDDS具有非聚结性质。优化配方相对于纯药物显示出药物释放曲线的显著改善。浊点测定和加速稳定性研究确定了OPT的稳定性。K(a)值(3.29倍)和AUC值(4.31倍)的增加表明,与纯药物相比,OPT显著提高了生物利用度的速率和程度。在Wistar大鼠中进行的原位灌注(SPIP)研究表明,与纯药物相比,SNEDDS的吸收性和渗透性参数有显著提高。成功建立体外/体内相关性的A级水平证实了为模拟体内条件而明智选择体外溶出介质的合理性。因此,本研究报告了成功开发出具有显著提高t-RVT生物利用度的SNEDDS。

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