Mechanisms
Molecular dynamics simulations support a tunnel mechanism for lipid transfer by CETP (J Biol Chem 2016)
Original title: Structural Plasticity of Cholesteryl Ester Transfer Protein Assists the Lipid Transfer Activity
Using multimicrosecond molecular dynamics simulations and normal mode analysis, researchers explored how cholesteryl ester transfer protein (CETP) moves cholesteryl esters and triglycerides between lipoproteins. The bound cholesteryl esters interconverted between bent and linear conformations within the CETP core tunnel as a result of the high conformational flexibility of the protein, and this switching was accompanied by reduced hydrophobic contacts between the lipids and CETP and the spontaneous appearance of a continuous tunnel spanning the long axis of the protein. These findings support the previously proposed tunnel mechanism of CETP derived from cryo-EM studies and could inform methods to block CETP function as a cardiovascular therapeutic.
Original abstract
Cholesteryl ester transfer protein (CETP) mediates the transfer of cholesteryl esters (CEs) and triglycerides between different lipoproteins. Recent studies have shown that blocking the function of CETP can increase the level of HDL cholesterol in blood plasma and suppress the risk of cardiovascular disease. Hence, understanding the structure, dynamics, and mechanism by which CETP transfers the neutral lipids has received tremendous attention in last decade. Although the recent crystal structure has provided direct evidence of the existence of strongly bound CEs in the CETP core, very little is known about the mechanism of CE/triglyceride transfer by CETP. In this study, we explore the large scale dynamics of CETP by means of multimicrosecond molecular dynamics simulations and normal mode analysis, which provided a wealth of detailed information about the lipid transfer mechanism of CETP. Results show that the bound CEs intraconvert between bent and linear conformations in the CETP core tunnel as a consequence of the high degree of conformational flexibility of the protein. During the conformational switching, there occurred a significant reduction in hydrophobic contacts between the CEs and CETP, and a continuous tunnel traversing across the CETP long axis appeared spontaneously. Thus, our results support the recently proposed "tunnel mechanism" of CETP from cryo-EM studies for the transfer of neutral lipids between different lipoproteins. The detailed understanding obtained here could help in devising methods to prevent CETP function as a cardiovascular disease therapeutic.
Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 18 August 2026. Methods.