药代动力学
药理学
生物利用度
口服
药效学
小猎犬
化学
医学
脂肪性肝炎
剂量-反应关系
体内
选择(遗传算法)
药品
酶抑制剂
体外
有效剂量(辐射)
作者
Inkyu Kim,Inyoung Hwang,Sang Won Lee,Yun Kim
标识
DOI:10.1016/j.ejps.2026.107470
摘要
Metabolic dysfunction-associated steatohepatitis (MASH) is a progressive liver disease with limited therapeutic options. J2H-1702 is a novel and selective inhibitor of 11β-hydroxysteroid dehydrogenase type 1 (11β-HSD1) that has demonstrated pharmacological activity in preclinical models. This study aimed to predict the human pharmacokinetics (PK) of J2H-1702 and support rational first-in-human (FIH) dose selection using a model-informed approach. Plasma PK data following intravenous and oral administration were obtained from Sprague-Dawley rats and Beagle dogs and analyzed using non-compartmental analysis and nonlinear mixed-effects modeling. Less-than-dose-proportional increases in systemic exposure were observed following oral administration in both species. This nonlinear exposure behavior was explicitly characterized using a nonlinear bioavailability model and incorporated into an interspecies pharmacokinetic framework. Interspecies extrapolation was performed using multiple allometric scaling approaches, including body weight-based, maximum lifespan potential-adjusted, brain weight-adjusted, and multiple-exponent models. Among these, the brain weight-adjusted model showed the best predictive performance. The final model was used to simulate human PK profiles across oral dose levels. Simulations predicted that doses ≥3 mg would maintain plasma concentrations above the in vitro half-maximal inhibitory concentration for 11β-HSD1 inhibition for approximately 48 hours. In parallel, no-observed-adverse-effect level-based calculations supported a substantially higher maximum recommended starting dose, indicating a wide safety margin. Integration of exposure-based pharmacodynamic criteria with toxicology-based constraints supported selection of 3 mg as a conservative and pharmacologically relevant FIH starting dose. These findings demonstrate the utility of model-informed PK analysis for translating preclinical data into rational FIH dose selection in early clinical development.
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