The class
Review argues the role of CETP and reverse cholesterol transport defects in diabetic atherosclerosis remains unproven, despite altered HDL composition (Diabetes Metab Res Rev 2000)
Original title: Reverse cholesterol transport in diabetes mellitus
This review examines whether defects in reverse cholesterol transport, involving HDL subfractions, CETP, and LCAT activity, underlie the premature atherosclerosis of diabetes mellitus. Although HDL particle composition and metabolism are known to be substantially altered in diabetes, with diminished in vitro efficiency at removing cellular cholesterol, the authors argue definitive in vivo evidence that a primary reverse cholesterol transport defect drives diabetic atherogenesis is lacking, complicated by inadequate or misinterpreted in vitro measurement methods for LCAT and CETP. The review concludes that knockout or transgenic mouse models of LCAT, CETP, PLTP, and CETP inhibitors are needed to properly investigate these proteins' roles in diabetic atherosclerosis.
Original abstract
There are epidemiological data and experimental animal models relating the development of premature atherosclerosis with defects of the reverse cholesterol transport (RCT) system. In this regard, the plasma concentrations of the high density lipoprotein (HDL) subfractions, of cholesteryl ester transfer protein (CETP), as well as the activity of the enzyme lecithin-cholesterol acyl transferase (LCAT) play critical roles. However, there has been plenty of evidence that atherosclerosis in diabetes mellitus (DM) is ascribed to a greater arterial wall cell uptake of modified apoB-containing lipoproteins whereas a primary or predominant defect of the RCT system is still a subject of debate. In other words, in spite of the fact that in DM the composition and rates of metabolism of the HDL particles are greatly altered and display a diminished in vitro efficiency to remove cell cholesterol, definitive in vivo demonstration of the importance of this fact in atherogenesis is lacking. Furthermore, the roles played by LCAT and CETP in RCT in DM are difficult to interpret because the in vitro procedures of measurement utilized have either been inadequate, or inappropriately interpreted. Knock-out or transgenic mice are much needed models to investigate the roles of LCAT, CETP, phospholipid transfer protein (PLTP), and of a CETP inhibitor in the development of atherosclerosis of experimental DM.
Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 19 August 2026. Methods.