The class
Antisense knockdown of CETP in HepG2 cells raises cholesterol efflux to apoA-I but impairs SR-BI-mediated HDL cholesteryl ester uptake by the liver (Am J Physiol Endocrinol Metab 2003)
Original title: Dual effects on HDL metabolism by cholesteryl ester transfer protein inhibition in HepG2 cells
Using antisense oligodeoxynucleotides against CETP in HepG2 liver cells, researchers reduced CETP secretion by 70% at the mRNA level and 52% by mass. This CETP knockdown also cut expression of the HDL receptor SR-BI by about 50%, while apoA-I expression and secretion rose 30% and 92% respectively, and cholesterol efflux to apoA-I and HDL3 increased 88% and 37%. Selective uptake of labeled cholesteryl ester from HDL3 was decreased, and cellular cholesteryl ester levels rose 20%, alongside roughly doubled cholesterol esterification and higher ACAT1 mRNA. The findings show acute hepatic CETP suppression raises cellular cholesterol stores and apoA-I-mediated efflux while impairing the SR-BI pathway that returns HDL cholesteryl ester to the liver.
Original abstract
Cholesteryl ester transfer protein (CETP) promotes reverse cholesterol transport via exchange of cholesteryl ester and triglyceride among lipoproteins. Here, we focused on HDL metabolism during inhibition of CETP expression by using CETP antisense oligodeoxynucleotides (ODNs) in HepG2 cells. CETP secretion was decreased by 70% in mRNA levels and by 52% in mass 20 h after ODNs against CETP were delivered to HepG2 cells. Furthermore, as a consequence of the downregulation of CETP, the expression of scavenger receptor class B type I (SR-BI), an HDL receptor, was also reduced by approximately 50% in mRNA and protein levels, whereas the apolipoprotein A-I (apoA-I) expression and secretion were increased by 30 and 92%, respectively. In a functional study, the selective uptake of (125)I-[(14)C]cholesteryl oleate-labeled HDL(3) was decreased. Cholesterol efflux to apoA-I and HDL(3) was significantly increased by 88 and 37%, respectively. Moreover, the CE levels in cells after antisense treatment were elevated by 20%, which was related to the about twofold increase of cholesterol esterification and increased acyl-CoA:cholesterol acyltransferase 1 mRNA levels. Taken together, these findings suggest that although acute suppression of CETP expression leads to an elevation in cellular cholesterol stores, apoA-I secretion, and cellular cholesterol efflux to apoA-I, the return of HDL-CE to hepatocytes via an SR-BI pathway was inhibited in vitro. Thus antisense inhibition of hepatic CETP expression manifests dual effects: namely, increased formation of HDL and suppression of catabolism of HDL-CE, probably via the SR-BI pathway.
Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 19 August 2026. Methods.