Evacetrapib
CYP3A handles about 90% of the metabolic clearance of evacetrapib, but even strong CYP3A inhibitors barely raise its exposure (Pharmacol Res Perspect 2015)
Original title: Evacetrapib: in vitro and clinical disposition, metabolism, excretion, and assessment of drug interaction potential with strong CYP3A and CYP2C8 inhibitors
To guide prescribing recommendations, this study characterized evacetrapib metabolism in vitro using recombinant human cytochromes P450, and its disposition, metabolism, and excretion in healthy subjects given a single 100 mg oral dose of carbon-14-labeled evacetrapib, alongside clinical drug interaction studies with strong CYP3A and CYP2C8 inhibitors. In vitro, CYP3A accounted for about 90% of the CYP-associated clearance of evacetrapib and CYP2C8 for about 10%. Clinically, only evacetrapib and two minor metabolites circulated in plasma, with 93.1% of the dose excreted in feces and 2.30% in urine. With the CYP3A inhibitor ketoconazole, evacetrapib geometric mean ratios were 2.37 for AUC0-infinity and 1.94 for Cmax, while the CYP2C8 inhibitor gemfibrozil produced no meaningful change (ratios 0.996 and 1.02). Although both CYP3A and CYP2C8 metabolize evacetrapib in vitro, clinical data confirmed CYP3A as the primary pathway, with only a modest exposure increase and robust safety profile suggesting low likelihood of clinically relevant drug interactions with strong CYP3A or CYP2C8 inhibitors.
Original abstract
Evacetrapib is an investigational cholesteryl ester transfer protein inhibitor (CETPi) for reduction of risk of major adverse cardiovascular events in patients with high-risk vascular disease. Understanding evacetrapib disposition, metabolism, and the potential for drug-drug interactions (DDI) may help guide prescribing recommendations. In vitro, evacetrapib metabolism was investigated with a panel of human recombinant cytochromes P450 (CYP). The disposition, metabolism, and excretion of evacetrapib following a single 100-mg oral dose of (14)C-evacetrapib were determined in healthy subjects, and the pharmacokinetics of evacetrapib were evaluated in the presence of strong CYP3A or CYP2C8 inhibitors. In vitro, CYP3A was responsible for about 90% of evacetrapib's CYP-associated clearance, while CYP2C8 accounted for about 10%. In the clinical disposition study, only evacetrapib and two minor metabolites circulated in plasma. Evacetrapib metabolism was extensive. A mean of 93.1% and 2.30% of the dose was excreted in feces and urine, respectively. In clinical DDI studies, the ratios of geometric least squares means for evacetrapib with/without the CYP3A inhibitor ketoconazole were 2.37 for area under the curve (AUC)(0-∞) and 1.94 for C max. There was no significant difference in evacetrapib AUC(0-τ) or C max with/without the CYP2C8 inhibitor gemfibrozil, with ratios of 0.996 and 1.02, respectively. Although in vitro results indicated that both CYP3A and CYP2C8 metabolized evacetrapib, clinical studies confirmed that evacetrapib is primarily metabolized by CYP3A. However, given the modest increase in evacetrapib exposure and robust clinical safety profile to date, there is a low likelihood of clinically relevant DDI with concomitant use of strong CYP3A or CYP2C8 inhibitors.
Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 18 August 2026. Methods.