HDL biology
A review by Alan Tall names CETP and hepatic lipase as key genetic determinants of HDL catabolism, with lipoprotein lipase driving HDL formation (J Intern Med 1992)
Original title: Metabolic and genetic control of HDL cholesterol levels
HDL cholesterol levels show a strong inverse relationship with atherosclerotic vascular disease incidence, motivating intense study of their regulation. Human genetic differences in cholesteryl ester transfer protein and hepatic lipase illustrate the importance of these factors in normal HDL catabolism, while metabolic and population studies show lipoprotein lipase activity plays a central role in transferring lipids and apoproteins into HDL. Metabolic turnover studies suggest that variation in the fractional catabolism of the HDL structural proteins apoA-I and apoA-II accounts for much of the population variation in HDL levels. Changes in HDL core lipid composition, determined by lipid transfer processes and lipoprotein and hepatic lipase activities, may drive changes in apolipoprotein catabolism. The author concludes many genetic and environmental factors influencing HDL levels act by changing lipase activities or the lipid transfer process.
Original abstract
Variation of HDL cholesterol levels in man shows a strong inverse relationship to the incidence of atherosclerotic vascular disease. Thus the regulation of HDL cholesterol levels has been the subject of intense investigation. Human genetic differences in cholesteryl ester transfer protein and hepatic lipase illustrate the importance of these factors in the normal catabolism of HDL, while metabolic and population studies show that lipoprotein lipase activity plays a central role in the transfer of lipids and apoproteins into HDL. Metabolic turnover studies in humans suggest that variations in the fractional catabolism of the HDL structural proteins, apoA-I and apoA-II, account for much of the variation of HDL levels in human populations. Although the catabolism of these apolipoproteins is poorly understood, changes in the core lipid composition of HDL may lead to changes in catabolism of the HDL proteins. The core lipid composition of HDL appears to be determined by lipid transfer processes, and the activities of lipoprotein and hepatic lipase. Thus many genetic and environmental factors that influence HDL levels appear to operate by changing the activities of the lipases or the lipid transfer process.
Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 19 August 2026. Methods.