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HDL biology

LDL apheresis transiently reduces CETP-mediated cholesteryl ester transfer and cholesterol efflux capacity in familial hypercholesterolemia (J Lipid Res 2012)

Original title: Impact of LDL apheresis on atheroprotective reverse cholesterol transport pathway in familial hypercholesterolemia

J Lipid Res · · 4

Orsoni A, Villard EF, Bruckert E, Robillard P, Carrie A, Bonnefont-Rousselot D, Chapman MJ, Dallinga-Thie GM, Le Goff W, Guerin M

In patients with familial hypercholesterolemia (FH), researchers tested how LDL apheresis affects the reverse cholesterol transport pathway, which is impaired by low, dysfunctional HDL. LDL apheresis markedly reduced the abnormally accelerated cholesteryl ester transfer protein (CETP)-mediated transfer of cholesteryl esters from HDL to LDL, lowering their cholesteryl ester content, and produced a major decrease in pre-beta1-HDL levels (-53%; P < 0.0001). Whole-plasma capacity to mediate free cholesterol efflux from macrophages fell after apheresis (-15%; P < 0.02), driven by decreases in ABCA1-dependent efflux (-71%; P < 0.0001), scavenger receptor class B type I-dependent efflux (-21%; P < 0.0001), and ABCG1-dependent efflux (-15%; P < 0.04). However, isolated HDL particles from FH patients showed similar cholesterol efflux and hepatic cholesteryl ester delivery capacity before and after apheresis, indicating that LDL apheresis transiently reduces reverse cholesterol transport without changing the intrinsic function of HDL particles themselves.

Read the paper (DOI)PubMed

Original abstract

In familial hypercholesterolemia (FH), low HDL cholesterol (HDL-C) levels are associated with functional alterations of HDL particles that reduce their capacity to mediate the reverse cholesterol transport (RCT) pathway. The objective of this study was to evaluate the consequences of LDL apheresis on the efficacy of the RCT pathway in FH patients. LDL apheresis markedly reduced abnormal accelerated cholesteryl ester transfer protein (CETP)-mediated cholesteryl ester (CE) transfer from HDL to LDL, thus reducing their CE content. Equally, we observed a major decrease (-53%; P < 0.0001) in pre-β1-HDL levels. The capacity of whole plasma to mediate free cholesterol efflux from human macrophages was reduced (-15%; P < 0.02) following LDL apheresis. Such reduction resulted from a marked decrease in the ABCA1-dependent efflux (-71%; P < 0.0001) in the scavenger receptor class B type I-dependent efflux (-21%; P < 0.0001) and in the ABCG1-dependent pathway (-15%; P < 0.04). However, HDL particles isolated from FH patients before and after LDL apheresis displayed a similar capacity to mediate cellular free cholesterol efflux or to deliver CE to hepatic cells. We demonstrate that rapid removal of circulating lipoprotein particles by LDL apheresis transitorily reduces RCT. However, LDL apheresis is without impact on the intrinsic ability of HDL particles to promote either cellular free cholesterol efflux from macrophages or to deliver CE to hepatic cells.

HDL biologymechanisms

Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 18 August 2026. Methods.