Genetics
In CETP deficiency, LDL cholesteryl esters trace back to intracellular ACAT rather than CETP-mediated transfer from HDL (J Lipid Res 1991)
Original title: Familial cholesteryl ester transfer protein deficiency is associated with triglyceride-rich low density lipoproteins containing cholesteryl esters of probable intracellular origin
Building on the documented CETP gene splicing defect in a family with hyperalphalipoproteinemia, this study characterized lipoproteins in the LDL density range and the fatty-acid composition of cholesteryl esters across lipoproteins in CETP-deficient subjects. The conventional LDL density range in these subjects contained both an apoE-rich enlarged HDL resembling HDLc and separate apoB-containing lipoproteins, with gradient gel electrophoresis revealing a distinct, larger-than-normal LDL subclass. Anti-apoB-purified LDL from CETP-deficient subjects showed an elevated triglyceride-to-cholesteryl-ester ratio and a high cholesteryl oleate to cholesteryl linoleate ratio compared with their own HDL or with normal LDL. Adding purified CETP to CETP-deficient plasma equilibrated VLDL cholesteryl esters with those of HDL, indicating that in CETP-deficient humans the cholesteryl esters of VLDL and its product LDL originate predominantly from intracellular ACAT rather than from CETP-mediated transfer, and that CETP normally participates in forming LDL by removing triglyceride and adding LCAT-derived cholesteryl ester.
Original abstract
The net transfer of core lipids between lipoproteins is facilitated by cholesteryl ester transfer protein (CETP). We have recently documented CETP deficiency in a family with hyperalphalipoproteinemia, due to a CETP gene splicing defect. The purpose of the present study was to characterize the plasma lipoproteins within the low density lipoprotein (LDL) density range and also the cholesteryl ester fatty acid distribution amongst lipoproteins in CETP-deficient subjects. In CETP deficiency, the conventional LDL density range contained both an apoE-rich enlarged high density lipoprotein (HDL) (resembling HDLc), and also apoB-containing lipoproteins. Native gradient gel electrophoresis revealed clear speciation of LDL subclasses, including a distinct population larger in size than normal LDL. Anti-apoB affinity-purified LDL from the CETP-deficient subjects were shown to contain an elevated triglyceride to cholesteryl ester ratio, and also a high ratio of cholesteryl oleate to cholesteryl linoleate, compared to their own HDL or to LDL from normal subjects. Addition of purified CETP to CETP-deficient plasma results in equilibration of very low density lipoprotein (VLDL) cholesteryl esters with those of HDL. These data suggest that, in CETP-deficient humans, the cholesteryl esters of VLDL and its catabolic product, LDL, originate predominantly from intracellular acyl-CoA:cholesterol acyltransferase (ACAT). The CETP plays a role in the normal formation of LDL, removing triglyceride and transferring LCAT-derived cholesteryl esters into LDL precursors.
Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 18 August 2026. Methods.