cetpinhibition.org

The class

Molecular dynamics simulations reveal how sugar chains on CETP shape its lipid-transfer tunnel (J Chem Inf Model 2021)

Original title: Mechanism of Glycans Modulating Cholesteryl Ester Transfer Protein: Unveiled by Molecular Dynamics Simulation

J Chem Inf Model · · 5

Hao D, Wang H, Zang Y, Zhang L, Yang Z, Zhang S

To better understand why CETP inhibitor drugs have had only marginal clinical success despite three decades of development, researchers ran large-scale molecular dynamics simulations to explore how glycans attached to CETP influence its structure and function. The simulations showed that glycan88 can assist CETP in forming a continuous tunnel through the protein by interacting with the upper-right region of the N-barrel, but can also prevent tunnel formation by swinging toward the right-rear of the N-barrel. Glycan240 formed stable hydrogen bonds with Helix-B, potentially stabilising the protein's central cavity. Different glycans showed similar nonspecific hydroxyl-group interactions with the protein core, suggesting physiological glycosylation may produce comparable structural effects, providing insight relevant to devising new CETP-targeted treatments.

Read the paper (DOI)PubMed

Original abstract

Inhibition of the cholesteryl ester transfer protein (CETP) has been considered as a promising way for the treatment of cardiovascular disease (CVD) for three decades. However, clinical trials of several CETP inhibitors with various potencies have been marginally successful at best, raising doubts on the target drugability of CETP. The in-depth understanding of the glycosylated CETP structure could be beneficial to more definitive descriptions of the CETP function and the underlying mechanism. In this work, large-scale molecular dynamics simulations were performed to thoroughly explore the mechanism of glycans modulating CETP. Here, the extensive simulation results intensely suggest that glycan88 tends to assist CETP in forming a continuous tunnel throughout interacting with the upper-right region of the N-barrel, while it also could prevent the formation of a continuous tunnel by swinging toward the right-rear of the N-barrel. Furthermore, glycan240 formed stable H-bonds with Helix-B and might further stabilize the central cavity of CETP. Furthermore, the nonspecific involvement of the hydroxyl groups from the various glycans with protein core interactions and the similar influence of different glycans trapped at similar regions on the protein structure suggest that physiological glycan may lead to a similar effect. This study would provide valuable insights into devising novel methods for CVD treatment targeting CETP and functional studies about glycosylation for other systems.

the classmechanisms

Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 19 August 2026. Methods.