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Anacetrapib

Atomistic simulations show anacetrapib lodges in the N-terminal tunnel of CETP to block cholesteryl ester diffusion (PLoS Comput Biol 2014)

Original title: How anacetrapib inhibits the activity of the cholesteryl ester transfer protein? Perspective through atomistic simulations

PLoS Comput Biol · · 6

Äijänen T, Koivuniemi A, Javanainen M, Rissanen S, Rog T, Vattulainen I

Atomistic molecular dynamics simulations were used to characterize how anacetrapib inhibits CETP-mediated lipid transfer. The simulations showed a clear affinity of anacetrapib for the concave surface of CETP, particularly the region around the N-terminal tunnel opening, with its primary binding site located inside the tunnel near the residues surrounding that opening. Free energy calculations showed that when anacetrapib occupies this site, it hinders cholesteryl ester from diffusing out of CETP. The simulations further showed anacetrapib alters the structure-function relationships of phospholipids and helix X, a structural region of CETP important for neutral lipid exchange with lipoproteins, together indicating that CETP inhibition occurs when anacetrapib enters and occupies the lipid-binding pocket within the tunnel.

Read the paper (DOI)PubMed

Original abstract

Cholesteryl ester transfer protein (CETP) mediates the reciprocal transfer of neutral lipids (cholesteryl esters, triglycerides) and phospholipids between different lipoprotein fractions in human blood plasma. A novel molecular agent known as anacetrapib has been shown to inhibit CETP activity and thereby raise high density lipoprotein (HDL)-cholesterol and decrease low density lipoprotein (LDL)-cholesterol, thus rendering CETP inhibition an attractive target to prevent and treat the development of various cardiovascular diseases. Our objective in this work is to use atomistic molecular dynamics simulations to shed light on the inhibitory mechanism of anacetrapib and unlock the interactions between the drug and CETP. The results show an evident affinity of anacetrapib towards the concave surface of CETP, and especially towards the region of the N-terminal tunnel opening. The primary binding site of anacetrapib turns out to reside in the tunnel inside CETP, near the residues surrounding the N-terminal opening. Free energy calculations show that when anacetrapib resides in this area, it hinders the ability of cholesteryl ester to diffuse out from CETP. The simulations further bring out the ability of anacetrapib to regulate the structure-function relationships of phospholipids and helix X, the latter representing the structural region of CETP important to the process of neutral lipid exchange with lipoproteins. Altogether, the simulations propose CETP inhibition to be realized when anacetrapib is transferred into the lipid binding pocket. The novel insight gained in this study has potential use in the development of new molecular agents capable of preventing the progression of cardiovascular diseases.

anacetrapibthe classmechanisms

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