The class
Electron microscopy shows torcetrapib and anacetrapib block CETP by favoring binary complexes over ternary lipoprotein bridging (Biochim Biophys Acta 2017)
Original title: Assessing the mechanisms of cholesteryl ester transfer protein inhibitors
The detailed molecular mechanisms behind three CETP inhibitors, torcetrapib, dalcetrapib, and anacetrapib, remained poorly understood, so electron microscopy was used to examine their effects on CETP structure, CETP-lipoprotein complex formation, and cholesteryl ester transfer. None of the inhibitors altered CETP structure or the conformation of binary CETP-lipoprotein complexes, but all three, especially torcetrapib and anacetrapib, increased the proportion of binary complexes (HDL-CETP and LDL-CETP) while decreasing the proportion of HDL-CETP-LDL ternary complexes. This shift toward binary and away from ternary complexes suggests binding of one CETP end to a lipoprotein triggers a conformational change at the opposite end that lowers binding to a second lipoprotein, reducing cholesteryl ester transfer between lipoproteins, and the authors propose new inhibitor designs that further suppress both binary and ternary complex formation.
Original abstract
Cholesteryl ester transfer protein (CETP) inhibitors are a new class of therapeutics for dyslipidemia that simultaneously improve two major cardiovascular disease (CVD) risk factors: elevated low-density lipoprotein (LDL) cholesterol and decreased high-density lipoprotein (HDL) cholesterol. However, the detailed molecular mechanisms underlying their efficacy are poorly understood, as are any potential mechanistic differences among the drugs in this class. Herein, we used electron microscopy (EM) to investigate the effects of three of these agents (Torcetrapib, Dalcetrapib and Anacetrapib) on CETP structure, CETP-lipoprotein complex formation and CETP-mediated cholesteryl ester (CE) transfer. We found that although none of these inhibitors altered the structure of CETP or the conformation of CETP-lipoprotein binary complexes, all inhibitors, especially Torcetrapib and Anacetrapib, increased the binding ratios of the binary complexes (e.g., HDL-CETP and LDL-CETP) and decreased the binding ratios of the HDL-CETP-LDL ternary complexes. The findings of more binary complexes and fewer ternary complexes reflect a new mechanism of inhibition: one distal end of CETP bound to the first lipoprotein would trigger a conformational change at the other distal end, thus resulting in a decreased binding ratio to the second lipoprotein and a degraded CE transfer rate among lipoproteins. Thus, we suggest a new inhibitor design that should decrease the formation of both binary and ternary complexes. Decreased concentrations of the binary complex may prevent the inhibitor was induced into cell by the tight binding of binary complexes during lipoprotein metabolism in the treatment of CVD.
Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 18 August 2026. Methods.