基于生理学的药代动力学模型
奎尼丁
化学
药代动力学
药理学
药代动力学相互作用
药物相互作用
非线性系统
药物与药物的相互作用
色谱法
体内
作者
Wen Kou,Toshiaki Tsuchitani,Kazuya Maeda,Ryuto Tomabechi,Yuichi Sugiyama
标识
DOI:10.1016/j.dmd.2026.100333
摘要
Edoxaban, a direct factor Xa inhibitor and known P-glycoprotein (P-gp) substrate, exhibits nonlinear increases in systemic exposure after oral administration and significant interaction with quinidine, a P-gp inhibitor. However, it remains unclear how P-gp in each organ contributes to these phenomena. We developed a physiologically based pharmacokinetic (PBPK) model to describe pharmacokinetic (PK) of edoxaban after oral (0.05-60 mg) and intravenous administration (30 mg), as well as its interaction with quinidine following edoxaban intravenously. Parameters were estimated using the Cluster Gauss-Newton method through top-down and middle-out approaches. Accurate description of renal clearance, which required incorporation of a hypothetical basolateral uptake process, underscoring the importance of unidentified renal transporters involved in edoxaban urinary secretion. Nonlinearity of dose-normalized area under blood concentration-time curve (AUC) was highly sensitive to K mP-gp , with intestinal unbound concentrations exceeding K mP-gp at clinically relevant doses, consistent with intestinal P-gp saturation as the major driver of nonlinearity. In intravenous edoxaban-oral quinidine drug-drug interaction analysis, quinidine markedly reduced renal clearance and modestly increased hepatic availability, reflecting inhibition of renal and, to a lesser extent, hepatic P-gp. In conclusion, an edoxaban PBPK model incorporating renal uptake transport enabled physiologically consistent description of renal clearance. Saturation of intestinal P-gp was identified as the primary contributor to nonlinear PK, while inhibition of renal P-gp was the main mechanism underlying the edoxaban intravenously administered with quinidine. These findings provide mechanistic insight into transporter contributions to edoxaban disposition and drug-drug interactions and highlight the importance of tissue-specific transporter processes in nonlinear pharmacokinetics
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