Genetics
CETP co-expression halves HDL cholesterol and roughly doubles VLDL cholesterol in mice modeling type III hyperlipoproteinemia (J Biol Chem 1994)
Original title: Co-expression of cholesteryl ester transfer protein and defective apolipoprotein E in transgenic mice alters plasma cholesterol distribution. Implications for the pathogenesis of type III hyperlipoproteinemia
To test whether CETP overexpression contributes to hyperlipidemia and beta-VLDL accumulation in type III hyperlipoproteinemia (HLP), double-transgenic mice co-expressing simian CETP with either high or low levels of the human receptor binding-defective apoE(Cys-142) variant were produced. Co-expressing CETP induced a massive transfer of cholesteryl esters from HDL to VLDL in both transgenic lines, reducing HDL cholesterol and apoA-I to about 50% of normal, increasing VLDL cholesterol 2.5-fold, and raising VLDL cholesteryl ester content to levels resembling human beta-VLDL. The ratio of defective to normal apoE in VLDL was unaffected by CETP co-expression and remained higher in high-apoE-expresser animals, and despite increased beta-VLDL accumulation in the high-expresser mice, VLDL in the low-expresser mice retained pre-beta mobility even with CETP co-expression. The authors conclude that the ratio of defective to normal apoE on VLDL, rather than VLDL cholesteryl ester content, is the major determinant of severe hyperlipidemia and beta-VLDL formation in type III hyperlipoproteinemia.
Original abstract
Despite the definite etiologic link between apolipoprotein (apo) E mutations and type III hyperlipoproteinemia (HLP), it is not clear what additional factors are involved in the development of florid hyperlipidemia and how to explain the wide variability in the expression of the hyperlipidemic phenotype in carriers of receptor binding-defective apoE variants. The present study was designed to determine whether the overexpression of cholesteryl ester transfer protein (CETP), a plasma protein that transfers cholesteryl esters from the high density lipoproteins (HDL) to the very low density lipoproteins (VLDL) and whose activity is increased in hyperlipidemic states, plays a role in the development of hyperlipidemia and beta-VLDL accumulation in type III HLP. We produced double-transgenic mice that co-expressed high levels of simian CETP and either high or low levels of a human receptor binding-defective apoE variant, apoE(Cys-142). We previously reported that apoE(Cys-142) high-expresser mice showed spontaneous hyperlipidemia and accumulation of beta-VLDL, whereas the low-expresser mice showed only a modest increase in VLDL cholesterol. Co-expression of CETP induced a massive transfer of cholesteryl esters from the HDL to the VLDL in both lines of double-transgenic mice. As a result, HDL cholesterol and apoA-I levels were reduced to about 50% of normal, VLDL cholesterol increased 2.5-fold, and the cholesteryl ester content of VLDL reached values similar to those observed in human beta-VLDL. The ratio of defective to normal apoE in VLDL was unaffected by CETP co-expression and was higher in animals expressing high apoE levels. Finally, in spite of an increased accumulation of beta-VLDL in the high-expresser mice, the VLDL of the low-expresser mice maintained pre-beta mobility upon co-expression of CETP. The results of this study demonstrate that the ratio of defective to normal apoE on the VLDL, rather than the cholesteryl ester content of VLDL, is the major factor determining the development of severe hyperlipidemia and the formation and accumulation of beta-VLDL in type III HLP.
Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 19 August 2026. Methods.