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从系统相关的 IC 数据中推导出与系统无关的 P-糖蛋白介导的地高辛转运的 。

Derivation of a System-Independent for P-glycoprotein Mediated Digoxin Transport from System-Dependent IC Data.

机构信息

Departments of Biology (A.C., A.L., A.Y., M.O., J.B.) and Biodiversity, Ecology and Earth Sciences (M.O.), Drexel University, Philadelphia, Pennsylvania; Newcastle University, Institute for Cell and Molecular Biosciences, Newcastle upon Tyne, United Kingdom (G.C., C.B.); GlaxoSmithKline Pharmaceuticals, Drug Metabolism and Pharmacokinetics, King of Prussia, Pennsylvania (H.E.); and Ardea Biosciences Inc., Translational Sciences, San Diego, California (C.L.).

Departments of Biology (A.C., A.L., A.Y., M.O., J.B.) and Biodiversity, Ecology and Earth Sciences (M.O.), Drexel University, Philadelphia, Pennsylvania; Newcastle University, Institute for Cell and Molecular Biosciences, Newcastle upon Tyne, United Kingdom (G.C., C.B.); GlaxoSmithKline Pharmaceuticals, Drug Metabolism and Pharmacokinetics, King of Prussia, Pennsylvania (H.E.); and Ardea Biosciences Inc., Translational Sciences, San Diego, California (C.L.)

出版信息

Drug Metab Dispos. 2018 Mar;46(3):279-290. doi: 10.1124/dmd.117.075606. Epub 2018 Jan 9.

Abstract

It has been previously demonstrated that IC values for inhibition of digoxin transport across confluent polarized cell monolayers are system-dependent. Digoxin IC data from five laboratories participating in the P-glycoprotein (P-gp) IC Initiative, using Caco-2, MDCKII-hMDR1 or LLC-PK1-hMDR1 cells, were fitted by the structural mass action kinetic model for P-gp-mediated transport across confluent cell monolayers. We determined their efflux-active P-gp concentration [T(0)], inhibitor elementary dissociation rate constant from P-gp (), digoxin basolateral uptake clearance (), and inhibitor binding affinity to the digoxin basolateral uptake transporter (). We also fitted the IC data for inhibition of digoxin transport through monolayers of primary human proximal tubule cells (HPTCs). All cell systems kinetically required a basolateral uptake transporter for digoxin, which also bound to all inhibitors. The inhibitor was cell system-independent, thereby allowing calculation of a system-independent i. The variability in efflux-active P-gp concentrations and basolateral uptake clearances in the five laboratories was about an order of magnitude. These laboratory-to-laboratory variabilities can explain more than 60% of the IC variability found in the principal component analysis plot in a previous study, supporting the hypothesis that the observed IC variability is primarily due to differences in expression levels of efflux-active P-gp and the basolateral digoxin uptake transporter. HPTCs had 10- to 100-fold lower efflux-active P-gp concentrations than the overexpressing cell lines, whereas their digoxin basolateral uptake clearances were similar. HPTC basolateral uptake of digoxin was inhibited 50% by 10 M ouabain, suggesting involvement of OATP4C1.

摘要

先前已经证明,抑制跨紧密连接的极化细胞单层的地高辛转运的 IC 值是系统依赖性的。参与 P-糖蛋白(P-gp)IC 计划的五个实验室用 Caco-2、MDCKII-hMDR1 或 LLC-PK1-hMDR1 细胞获得的地高辛 IC 数据,通过 P-gp 介导的跨紧密连接细胞单层转运的结构质量作用动力学模型进行拟合。我们确定了它们的外排活性 P-gp 浓度 [T(0)]、从 P-gp 解离的抑制剂基本解离速率常数 ()、地高辛基底外侧摄取清除率 (),以及抑制剂与地高辛基底外侧摄取转运体的结合亲和力 ()。我们还拟合了通过原代人近端肾小管细胞 (HPTC) 单层抑制地高辛转运的 IC 数据。所有细胞系统动力学都需要地高辛的基底外侧摄取转运体,该转运体也与所有抑制剂结合。抑制剂 与细胞系统无关,从而允许计算系统无关的 i。五个实验室中,外排活性 P-gp 浓度和基底外侧摄取清除率的变异性约为一个数量级。这些实验室间的变异性可以解释在前一项研究的主成分分析图中发现的 IC 变异性的 60%以上,支持这样的假设,即观察到的 IC 变异性主要是由于外排活性 P-gp 和基底外侧地高辛摄取转运体的表达水平的差异。HPTC 的外排活性 P-gp 浓度比过表达细胞系低 10 至 100 倍,而它们的地高辛基底外侧摄取清除率相似。HPTC 对地高辛的基底外侧摄取被 10 μM 哇巴因抑制 50%,表明 OATP4C1 的参与。

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