首页> 外文期刊>Journal of pharmacokinetics and pharmacodynamics >Semi-mechanistic kidney model incorporating physiologically-relevant fluid reabsorption and transporter-mediated renal reabsorption: pharmacokinetics of gamma-hydroxybutyric acid and l-lactate in rats
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Semi-mechanistic kidney model incorporating physiologically-relevant fluid reabsorption and transporter-mediated renal reabsorption: pharmacokinetics of gamma-hydroxybutyric acid and l-lactate in rats

机译:结合生理相关的液体重吸收和转运蛋白介导的肾脏重吸收的半机械肾脏模型:γ-羟基丁酸和l-乳酸在大鼠中的药代动力学

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This study developed a semi-mechanistic kidney model incorporating physiologically-relevant fluid reabsorption and transporter-mediated active reabsorption. The model was applied to data for the drug of abuse gamma-hydroxybutyric acid (GHB), which exhibits monocarboxylate transporter (MCT1/SMCT1)-mediated renal reabsorption. The kidney model consists of various nephron segments-proximal tubules, Loop-of-Henle, distal tubules, and collecting ducts-where the segmental fluid flow rates, volumes, and sequential reabsorption were incorporated as functions of the glomerular filtration rate. The active renal reabsorption was modeled as vectorial transport across proximal tubule cells. In addition, the model included physiological blood, liver, and remainder compartments. The population pharmacokinetic modeling was performed using ADAPT5 for GHB blood concentration-time data and cumulative amount excreted unchanged into urine data (200-1000 mg/kg IV bolus doses) from rats [Felmlee et al (PMID: 20461486)]. Simulations assessed the effects of inhibition (R = [I]/K-I = 0-100) of renal reabsorption on systemic exposure (AUC) and renal clearance of GHB. Visual predictive checks and other model diagnostic plots indicated that the model reasonably captured GHB concentrations. Simulations demonstrated that the inhibition of renal reabsorption significantly increased GHB renal clearance and decreased AUC. Model validation was performed using a separate dataset. Furthermore, our model successfully evaluated the pharmacokinetics of l-lactate using data obtained from Morse et al (PMID: 24854892). In conclusion, we developed a semi-mechanistic kidney model that can be used to evaluate transporter-mediated active renal reabsorption of drugs by the kidney.
机译:这项研究开发了一种半机械肾脏模型,该模型结合了生理相关的液体重吸收和转运蛋白介导的主动重吸收。该模型已应用于滥用γ-羟基丁酸(GHB)药物的数据,该药物表现出单羧酸盐转运蛋白(MCT1 / SMCT1)介导的肾脏重吸收。肾脏模型由各种肾单位组成:近端肾小管,亨利环,远端肾小管和收集管,其中肾小管滤过率,体积和顺序再吸收与肾小球滤过率的函数结合在一起。活跃的肾脏重吸收被建模为跨近端小管细胞的矢量转运。此外,该模型包括生理血液,肝脏和其余部分。使用ADAPT5进行GHB血液浓度-时间数据的人群药代动力学建模,并从大鼠[Felmlee等人(PMID:20461486)]尿液数据(200-1000 mg / kg静脉推注剂量)不变地累积累积量。模拟评估了肾脏重吸收对全身暴露(AUC)和GHB肾清除率的抑制作用(R = [I] / K-1 = 0-100)。视觉预测检查和其他模型诊断图表明该模型合理地捕获了GHB浓度。模拟表明,抑制肾重吸收可显着增加GHB肾清除率并降低AUC。使用单独的数据集执行模型验证。此外,我们的模型使用从Morse等人(PMID:24854892)获得的数据成功评估了l-乳酸的药代动力学。总之,我们开发了一种半机械肾脏模型,可用于评估转运蛋白介导的肾脏对肾脏的药物主动重吸收。

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