Mechanisms
CETP inside endothelial cells directly causes oxidative stress and vascular dysfunction, independent of its effect on HDL (Biomolecules 2021)
Original title: The Presence of Cholesteryl Ester Transfer Protein (CETP) in Endothelial Cells Generates Vascular Oxidative Stress and Endothelial Dysfunction
Endothelial dysfunction, driven partly by cholesterol and oxidative stress, precedes atherosclerosis, but whether CETP acts directly on endothelial cells beyond lowering HDL cholesterol was unclear. Acetylcholine-induced vasorelaxation was impaired in aortic rings from human CETP-expressing transgenic mice compared with non-transgenic littermates, even though endothelial nitric oxide synthase activation was paradoxically enhanced. Aortas from CETP transgenic mice generated more superoxide and hydrogen peroxide, and silencing CETP in cultured human aortic endothelial cells reduced oxidative stress from both major reactive oxygen species sources, mitochondria and NOX2. Silencing CETP also reduced endoplasmic reticulum stress markers (GADD153, PERK, ARF6) and unfolded protein response effectors, lowered endothelial TNF-alpha, ICAM-1 and VCAM-1 expression, and reduced monocyte adhesion. The authors conclude CETP expression itself damages endothelial cell function through oxidative stress, ER stress and inflammation, a mechanism distinct from and additional to its role in lowering HDL-cholesterol.
Original abstract
Endothelial dysfunction precedes atherosclerosis and is an independent predictor of cardiovascular events. Cholesterol levels and oxidative stress are key contributors to endothelial damage, whereas high levels of plasma high-density lipoproteins (HDL) could prevent it. Cholesteryl ester transfer protein (CETP) is one of the most potent endogenous negative regulators of HDL-cholesterol. However, whether and to what degree CETP expression impacts endothelial function, and the molecular mechanisms underlying the vascular effects of CETP on endothelial cells, have not been addressed. Acetylcholine-induced endothelium-dependent relaxation of aortic rings was impaired in human CETP-expressing transgenic mice, compared to their non-transgenic littermates. However, endothelial nitric oxide synthase (eNOS) activation was enhanced. The generation of superoxide and hydrogen peroxide was increased in aortas from CETP transgenic mice, while silencing CETP in cultured human aortic endothelial cells effectively decreased oxidative stress promoted by all major sources of ROS: mitochondria and NOX2. The endoplasmic reticulum stress markers, known as GADD153, PERK, and ARF6, and unfolded protein response effectors, were also diminished. Silencing CETP reduced endothelial tumor necrosis factor (TNF) α levels, intercellular cell adhesion molecule-1 (ICAM-1), and vascular cell adhesion molecule-1 (VCAM-1) expression, diminishing monocyte adhesion. These results support the notion that CETP expression negatively impacts endothelial cell function, revealing a new mechanism that might contribute to atherosclerosis.
Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 18 August 2026. Methods.