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Published on: February 20, 2019
HDL Function and Atherosclerosis: Reactive Dicarbonyls as Promising Targets of Therapy
MacRae F Linton1,2, Patricia G Yancey1, Huan Tao1
1Department of Medicine, Division of Cardiovascular Medicine, Atherosclerosis Research Unit (M.F.L., P.G.Y., H.T.), Vanderbilt University School of Medicine, Nashville, TN.
Insights
High-density lipoprotein (HDL) cholesterol levels may not reflect HDL function in preventing atherosclerotic cardiovascular disease (ASCVD). Oxidative modification impairs HDL
Area of Science:
- Cardiovascular Science
- Biochemistry
- Molecular Medicine
Background:
- Epidemiologic studies show an inverse relationship between high-density lipoprotein (HDL) cholesterol (HDL-C) and atherosclerotic cardiovascular disease (ASCVD).
- HDL-C-raising drugs have failed to reduce cardiovascular events, questioning HDL-C's role in ASCVD risk.
- HDL particle heterogeneity suggests HDL-C levels don't always reflect HDL function.
Purpose of the Study:
- To discuss HDL's antiatherogenic functions in relation to oxidative modifications.
- To explore the potential of reactive dicarbonyl scavengers as a therapeutic approach for ASCVD.
Main Methods:
- Review of epidemiologic studies and clinical trials on HDL-C and ASCVD.
- Analysis of HDL particle composition and function, including cholesterol efflux and anti-inflammatory properties.
- Examination of HDL's role in oxidative stress and modification by reactive carbonyl species.
Main Results:
- HDL's atheroprotective functions include reverse cholesterol transport and suppression of inflammation.
- Oxidative modification of HDL, particularly by reactive carbonyl species, impairs its antiatherogenic functions.
- Treatment with reactive dicarbonyl scavengers improved HDL function and reduced atherosclerosis in murine models.
Conclusions:
- HDL function, not just HDL-C levels, is critical for preventing ASCVD.
- Oxidative modification of HDL contributes to its dysfunction and inflammation in ASCVD.
- Reactive dicarbonyl scavengers represent a potential therapeutic strategy for improving HDL function and treating ASCVD.
Abstract:
Epidemiologic studies detected an inverse relationship between HDL (high-density lipoprotein) cholesterol (HDL-C) levels and atherosclerotic cardiovascular disease (ASCVD), identifying HDL-C as a major risk factor for ASCVD and suggesting atheroprotective functions of HDL. However, the role of HDL-C as a mediator of risk for ASCVD has been called into question by the failure of HDL-C-raising drugs to reduce cardiovascular events in clinical trials. Progress in understanding the heterogeneous nature of HDL particles in terms of their protein, lipid, and small RNA composition has contributed to the realization that HDL-C levels do not necessarily reflect HDL function. The most examined atheroprotective function of HDL is reverse cholesterol transport, whereby HDL removes cholesterol from plaque macrophage foam cells and delivers it to the liver for processing and excretion into bile. Indeed, in several studies, HDL has shown inverse associations between HDL cholesterol efflux capacity and ASCVD in humans. Inflammation plays a key role in the pathogenesis of atherosclerosis and vulnerable plaque formation, and a fundamental function of HDL is suppression of inflammatory signaling in macrophages and other cells. Oxidation is also a critical process to ASCVD in promoting atherogenic oxidative modifications of LDL (low-density lipoprotein) and cellular inflammation. HDL and its proteins including apoAI (apolipoprotein AI) and PON1 (paraoxonase 1) prevent cellular oxidative stress and LDL modifications. Importantly, HDL in humans with ASCVD is oxidatively modified rendering HDL dysfunctional and proinflammatory. Modification of HDL with reactive carbonyl species, such as malondialdehyde and isolevuglandins, dramatically impairs the antiatherogenic functions of HDL. Importantly, treatment of murine models of atherosclerosis with scavengers of reactive dicarbonyls improves HDL function and reduces systemic inflammation, atherosclerosis development, and features of plaque instability. Here, we discuss the HDL antiatherogenic functions in relation to oxidative modifications and the potential of reactive dicarbonyl scavengers as a therapeutic approach for ASCVD.
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