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Dalcetrapib

A mathematical model shows torcetrapib and JTT-705 inhibit CETP more potently than classic competitive inhibition would predict (J Lipid Res 2009)

Original title: Mechanism of inhibition defines CETP activity: a mathematical model for CETP in vitro

J Lipid Res · · 6

Potter LK, Sprecher DL, Walker MC, Tobin FL

To explore the mechanisms and dynamics of cholesteryl ester transfer protein (CETP) activity, researchers built a mechanistic mathematical model based on the shuttle mechanism for lipid transfer, with parameters estimated from eight published experimental datasets. The model reproduced observed CETP dynamics in vitro and supported the shuttle hypothesis. Simulations indicated that net cholesteryl ester transfer activity from HDL to VLDL and LDL can be significantly altered by shifting the balance of homoexchange versus heteroexchange of neutral lipids through CETP, and that lipemia-induced increases in CETP activity more likely stem from larger lipoprotein particle size than from higher particle number. The model also found that the inhibition mechanisms of the CETP inhibitors torcetrapib and JTT-705 (dalcetrapib) were significantly more potent than a classic competitive inhibition mechanism, with irreversible binding producing the most robust response.

Read the paper (DOI)PubMed

Original abstract

Because cholesteryl ester transfer protein (CETP) inhibition is a potential HDL-raising therapy, interest has been raised in the mechanisms and consequences of CETP activity. To explore these mechanisms and the dynamics of CETP in vitro, a mechanistic mathematical model was developed based upon the shuttle mechanism for lipid transfer. Model parameters were estimated from eight published experimental datasets, and the resulting model captures observed dynamics of CETP in vitro. Simulations suggest the shuttle mechanism yields behaviors consistent with experimental observations. Three key findings predicted from model simulations are: 1) net CE transfer activity from HDL to VLDL and LDL can be significantly altered by changing the balance of homoexchange versus heteroexchange of neutral lipids via CETP; 2) lipemia-induced increases in CETP activity are more likely caused by increases in lipoprotein particle size than particle number; and 3) the inhibition mechanisms of the CETP inhibitors torcetrapib and JTT-705 are significantly more potent than a classic competitive inhibition mechanism with the irreversible binding mechanism having the most robust response. In summary, the model provides a plausible representation of CETP activity in vitro, corroborates strong evidence for the shuttle hypothesis, and provides new insights into the consequences of CETP activity and inhibition on lipoproteins.

assaydalcetrapibmechanismstorcetrapib

Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 18 August 2026. Methods.