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首页> 外文期刊>International Journal of Nanomedicine >Finite Element Analysis for Predicting Skin Pharmacokinetics of Nano Transdermal Drug Delivery System Based on the Multilayer Geometry Model
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Finite Element Analysis for Predicting Skin Pharmacokinetics of Nano Transdermal Drug Delivery System Based on the Multilayer Geometry Model

机译:基于多层几何模型预测纳米透皮药物输送系统皮肤药代动力学的有限元分析

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Background: Skin pharmacokinetics is an indispensable indication for studying the drug fate after administration of transdermal drug delivery systems (TDDS). However, the heterogeneity and complex skin structured with stratum corneum, viable epidermis, dermis, and subcutaneous tissue inevitably leads the drug diffusion coefficient ( K p) to vary depending on the skin depth, which seriously limits the development of TDDS pharmacokinetics in full thickness skin. Methods: A multilayer geometry skin model was established and the K p of drug in SC, viable epidermis, and dermis was obtained using the technologies of molecular dynamics simulation, in vitro permeation experiments, and in vivo microdialysis, respectively. Besides, finite element analysis (FEA) based on drug K ps in different skin layers was applied to simulate the paeonol nanoemulsion (PAE-NEs) percutaneous dynamic penetration process in two and three dimensions. In addition, PAE-NEs skin pharmacokinetics profile obtained by the simulation was verified by in vivo experiment. Results: Coarse-grained modeling of molecular dynamic simulation was successfully established and the K p of PAE in SC was 2.00× 10? 6 cm2/h. The K p of PAE-NE in viable epidermis and in dermis detected using penetration test and microdialysis probe technology, was 1.58× 10? 5 cm2/h and 3.20× 10? 5 cm2/h, respectively. In addition, the results of verification indicated that PAE-NEs skin pharmacokinetics profile obtained by the simulation was consistent with that by in vivo experiment. Discussion: This study demonstrated that the FEA combined with the established multilayer geometry skin model could accurately predict the skin pharmacokinetics of TDDS.
机译:背景:皮肤药代动力学是研究透皮药物递送系统(TDDS)后研究药物命运的不可或缺的指示。然而,具有层内肌,可行的表皮,真皮和皮下组织构成的异质性和复杂的皮肤不可避免地导致药物扩散系数(k p)根据皮肤深度而变化,这严重限制了全厚度皮肤中TDDS药代动力学的发育。方法:使用分子动力学模拟,体外渗透实验和体内微透明度的分子动力学模拟技术,在SC,可行表皮和真皮中建立了多层几何皮肤模型,并获得了SC,可行表皮和真皮中的K P.此外,基于不同皮肤层的药物K PS的有限元分析(FEA)用于模拟两种和三维经皮动态渗透过程的芍药纳米乳液(PAE-NE)。此外,通过体内实验验证了通过模拟获得的PAE-NES皮肤药代动力学曲线。结果:成功建立了分子动态模拟的粗粒造粒模拟,SC中PAE的K P为2.00×10? 6 cm2 / h。使用渗透试验和微透析探针技术检测的可行表皮和真皮中的PAE-NE的K P为1.58×10? 5 cm2 / h和3.20×10?分别为5 cm2 / h。此外,验证结果表明,通过模拟获得的PAE-NES皮肤药代动力学曲线与体内实验一致。讨论:本研究表明,FEA与已建立的多层几何皮肤模型相结合,可以准确地预测TDD的皮肤药代动力学。

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