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辛伐他汀固体复合 888 ATO 纳米混悬剂的口服制剂:优化和生物分布研究。

Oral solid compritol 888 ATO nanosuspension of simvastatin: optimization and biodistribution studies.

机构信息

Department of Pharmaceutics, Rajiv Academy for Pharmacy, National Highway #2, Mathura, Uttar Pradesh, India.

出版信息

Drug Dev Ind Pharm. 2011 May;37(5):526-37. doi: 10.3109/03639045.2010.527983. Epub 2010 Dec 3.

DOI:10.3109/03639045.2010.527983
PMID:21128704
Abstract

The purpose of the present investigation was to develop solid lipid nanoparticles (SLNs) of simvastatin in order to enhance its oral bioavailability by minimizing its first-pass metabolism. To achieve our goal, SLNs were prepared by solvent injection technique and optimized by 2(3) full factorial experimental design using Design Expert software. The SLN formulations were optimized for amount of compritol, concentration of poloxamer, and volume of acetone in order to achieve desired responses of particle size, entrapment efficiency (EE), and cumulative drug release (CDR). Response surface plots were constructed to study the influence of each variable on each response and the interactions between any two variables were also analyzed. Formulation F(10) with particle size of 271.18 nm, % EE of 68.16% and % CDR of 76.23%, and highest desirability value of 0.645 was selected as optimized formulation. The optimized formulation was evaluated for biodistribution and pharmacokinetics by technetium-99m (Tc-99m) radiolabeling technique in mice. The relative bioavailability of simvastatin from optimized SLNs was found to be 220%, substantiating the protective action of SLNs against liver metabolism. However, though the drug initially bypassed the liver metabolism, simvastatin continuously entered in liver to exert its therapeutic action that was evidenced by biodistribution study.

摘要

本研究旨在制备辛伐他汀固体脂质纳米粒(SLN),通过最大限度地减少首过代谢来提高其口服生物利用度。为了达到我们的目标,我们采用溶剂注入技术制备了 SLN,并使用 Design Expert 软件通过 2(3)完全析因实验设计对其进行了优化。通过优化辛伐他汀 SLN 制剂中 Compritol 的用量、泊洛沙姆的浓度和丙酮的体积,实现了所需的粒径、包封效率(EE)和累积药物释放(CDR)的响应。构建响应面图来研究每个变量对每个响应的影响,并分析任何两个变量之间的相互作用。选择具有粒径为 271.18nm、% EE 为 68.16%和% CDR 为 76.23%以及最高理想值为 0.645 的配方 F(10)作为优化配方。通过在小鼠中进行锝-99m(Tc-99m)放射性标记技术评估优化配方的体内分布和药代动力学。从优化的 SLN 中得到的辛伐他汀相对生物利用度为 220%,这证实了 SLN 对肝脏代谢的保护作用。然而,尽管药物最初绕过了肝脏代谢,但辛伐他汀仍不断进入肝脏发挥其治疗作用,这一点通过体内分布研究得到了证实。

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