The class
Review positions CETP as a new therapeutic target, noting statins and fibrates already attenuate its activity indirectly (Pharmacol Ther 2004)
Original title: Pharmacological modulation of cholesteryl ester transfer protein, a new therapeutic target in atherogenic dyslipidemia
This review frames CETP as a critical mediator of reverse cholesterol transport and HDL particle remodeling, noting that dyslipidemic, high-cardiovascular-risk states are marked by elevated CETP activity that shifts cholesterol toward atherogenic apoB-containing lipoproteins. It observes that statins and fibrates already indirectly attenuate CETP activity by reducing the number of acceptor lipoprotein particles available for HDL-derived cholesteryl ester, thereby retaining more cholesteryl ester in HDL. The review also notes that CETP-deficiency mutations produce HDL cholesterol levels above 60 mg/dL alongside reduced cardiovascular risk, establishing the rationale for direct pharmacological CETP modulation as a new therapeutic target in atherogenic dyslipidemia.
Original abstract
In mediating the transfer of cholesteryl esters (CE) from antiatherogenic high density lipoprotein (HDL) to proatherogenic apolipoprotein (apo)-B-containing lipoprotein particles (including very low density lipoprotein [VLDL], VLDL remnants, intermediate density lipoprotein [IDL], and low density lipoprotein [LDL]), the CE transfer protein (CETP) plays a critical role not only in the reverse cholesterol transport (RCT) pathway but also in the intravascular remodeling and recycling of HDL particles. Dyslipidemic states associated with premature atherosclerotic disease and high cardiovascular risk are characterized by a disequilibrium due to an excess of circulating concentrations of atherogenic lipoproteins relative to those of atheroprotective HDL, thereby favoring arterial cholesterol deposition and enhanced atherogenesis. In such states, CETP activity is elevated and contributes significantly to the cholesterol burden in atherogenic apoB-containing lipoproteins. In reducing the numbers of acceptor particles for HDL-derived CE, both statins (VLDL, VLDL remnants, IDL, and LDL) and fibrates (primarily VLDL and VLDL remnants) act to attenuate potentially proatherogenic CETP activity in dyslipidemic states; simultaneously, CE are preferentially retained in HDL and thereby contribute to elevation in HDL-cholesterol content. Mutations in the CETP gene associated with CETP deficiency are characterized by high HDL-cholesterol levels (>60 mg/dL) and reduced cardiovascular risk. Such findings are consistent with studies of pharmacologically mediated inhibition of CETP in the rabbit, which argue strongly in favor of CETP inhibition as a valid therapeutic approach to delay atherogenesis. Consequently, new organic inhibitors of CETP are under development and present a potent tool for elevation of HDL in dyslipidemias involving low HDL levels and premature coronary artery disease, such as the dyslipidemia of type II diabetes and the metabolic syndrome. The results of clinical trials to evaluate the impact of CETP inhibition on premature atherosclerosis are eagerly awaited.
Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 19 August 2026. Methods.