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Apolipoprotein A-II, HDL metabolism and atherosclerosis
Anne Tailleux1, Patrick Duriez, Jean-Charles Fruchart
1Faculté de Pharmacie, Département d'athérosclérose et INSERM U 545, Institut Pasteur, Université Lille 2, 1, rue du Professeur Calmette, 59019 Cedex, Lille, France. anne.tailleux@pasteur.lille.fr
Insights
Apolipoprotein A-II (Apo A-II) has complex and controversial effects on HDL metabolism and reverse cholesterol transport, potentially influencing coronary heart disease risk.
Area of Science:
- Cardiovascular Science
- Lipid Metabolism
- Atherosclerosis Research
Background:
- High-density lipoprotein (HDL) cholesterol and apolipoprotein A-I (Apo A-I) are inversely linked to coronary heart disease (CHD) risk.
- The role of apolipoprotein A-II (Apo A-II) in CHD risk remains unclear.
- HDL particles containing Apo A-I (Lp A-I) and both Apo A-I and Apo A-II (Lp A-I:A-II) are reduced in myocardial infarction survivors, suggesting they are CHD risk markers.
Purpose of the Study:
- To investigate the multifaceted role of Apo A-II in HDL metabolism and reverse cholesterol transport.
- To elucidate the controversial effects of Apo A-II on atherogenesis.
- To determine if Apo A-II is a significant determinant or modulator of lipid metabolism.
Main Methods:
- Analysis of prospective epidemiological data (PRIME study).
- Studies involving mice transgenic for human Apo A-I and/or Apo A-II.
- In vitro cell culture models to assess cholesterol efflux from different HDL particles (Lp A-I vs. Lp A-I:A-II).
- Evaluation of Apo A-II's impact on key enzymes and proteins involved in HDL metabolism (LCAT, CETP, HL, SR-BI).
Main Results:
- Both Lp A-I and Lp A-I:A-II levels are reduced in myocardial infarction survivors.
- Transgenic mice studies show conflicting results regarding Apo A-II's effect on atherosclerosis.
- In vitro studies demonstrate variable effects of Lp A-I:A-II on cellular cholesterol efflux compared to Lp A-I.
- Apo A-II exhibits opposing effects on enzymes like LCAT, CETP, and HL, and on hepatic cholesterol uptake via SR-BI.
Conclusions:
- Apo A-II's influence on HDL metabolism and reverse cholesterol transport is complex and context-dependent.
- Apo A-II modulates atherogenesis through opposing effects on various metabolic pathways, leading to controversial outcomes.
- Apo A-II is likely a modulator, rather than a primary determinant, of lipid metabolism and CHD risk.
Abstract:
Apolipoprotein (Apo) A-I and apo A-II are the major apolipoproteins of HDL. It is clearly demonstrated that there are inverse relationships between HDL-cholesterol and apo A-I plasma levels and the risk of coronary heart disease (CHD) in the general population. On the other hand, it is still not clearly demonstrated whether apo A-II plasma levels are associated with CHD risk. A recent prospective epidemiological (PRIME) study suggests that Lp A-I (HDL containing apo A-I but not apo A-II) and Lp A-I:A-II (HDL containing apo A-I and apo A-II) were both reduced in survivors of myocardial infarction, suggesting that both particles are risk markers of CHD. Apo A-II and Lp A-I:A-II plasma levels should be rather related to apo A-II production rate than to apo A-II catabolism. Mice transgenic for both human apo A-I and apo A-II are less protected against atherosclerosis development than mice transgenic for human apo A-I only, but the results of the effects of trangenesis of human apo A-II (in the absence of a co-transgenesis of human apo A-I) are controversial. It is highly suggested that HDL reduce CHD risk by promoting the transfer of peripherical free cholesterol to the liver through the so-called 'reverse cholesterol transfer'. Apo A-II modulates different steps of HDL metabolism and therefore probably alters reverse cholesterol transport. Nevertheless, some effects of apo A-II on intermediate HDL metabolism might improve reverse cholesterol transport and might reduce atherosclerosis development while some other effects might be deleterious. In different in vitro models of cell cultures, Lp A-I:A-II induce either a lower or a similar cellular cholesterol efflux (the first step of reverse cholesterol transport) than Lp A-I. Results depend on numerous factors such as cultured cell types and experimental conditions. Furthermore, the effects of apo A-II on HDL metabolism, beyond cellular cholesterol efflux, are also complex and controversial: apo A-II may inhibit lecithin-cholesterol acyltransferase (LCAT) (potential deleterious effect) and cholesteryl-ester-transfer protein (CETP) (potential beneficial effect) activities, but may increase the hepatic lipase (HL) activity (potential beneficial effect). Apo A-II may also inhibit the hepatic cholesteryl uptake from HDL (potential deleterious effect) probably through the SR-BI depending pathway. Therefore, in terms of atherogenesis, apo A-II alters the intermediate HDL metabolism in opposing ways by increasing (LCAT, SR-BI) or decreasing (HL, CETP) the atherogenicity of lipid metabolism. Effects of apo A-II on atherogenesis are controversial in humans and in transgenic animals and probably depend on the complex effects of apo A-II on these different intermediate metabolic steps which are in weak equilibrium with each other and which can be modified by both endogenous and environmental factors. It can be suggested that apo A-II is not a strong determinant of lipid metabolism, but is rather a modulator of reverse cholesterol transport.