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Cholesterol Acceptors Regulate the Lipidome of Macrophage Foam Cells
Antoni Paul1, Todd A Lydic2, Ryan Hogan1
1Department of Molecular and Cellular Physiology, Albany Medical College, Albany, NY 12208, USA.
Insights
Apolipoprotein A-I (apoA-I) and high-density lipoprotein (HDL) reduce multiple lipids in foam cells, not just cholesterol. This suggests apoA-I plays a key role in regulating the foam cell lipidome and preventing atherosclerosis.
Area of Science:
- Biochemistry
- Cardiovascular Biology
- Lipid Metabolism
Background:
- Arterial foam cells are key drivers of atherosclerosis.
- Previous research focused on free cholesterol transport by apolipoprotein A-I (apoA-I) and high-density lipoprotein (HDL).
- Oxidized sterols and non-sterol lipids accumulate in plaques and promote inflammation.
Purpose of the Study:
- To investigate how cholesterol acceptors impact the foam cell lipidome, specifically oxidized sterols and non-sterol lipids.
- To explore the role of apoA-I and HDL beyond free cholesterol and phospholipid efflux.
Main Methods:
- Lipidomics analysis of arterial foam cells.
- Comparative analysis of lipid profiles before and after treatment with cholesterol acceptors (apoA-I/HDL).
Main Results:
- Cholesterol acceptors significantly remodel the foam cell lipidome.
- Specific oxidized sterols, sphingomyelins, and ceramides, enriched in human plaques, were reduced by apoA-I and HDL.
- Lipid-poor apoA-I demonstrated a notable reduction in these atherogenic lipid species.
Conclusions:
- ApoA-I and HDL influence a broader range of lipids within foam cells than previously understood.
- ApoA-I acts as a significant regulator of the foam cell lipidome.
- Targeting apoA-I may offer a therapeutic strategy to reduce multiple lipid species implicated in atherosclerosis pathogenesis.
Abstract:
Arterial foam cells are central players of atherogenesis. Cholesterol acceptors, apolipoprotein A-I (apoA-I) and high-density lipoprotein (HDL), take up cholesterol and phospholipids effluxed from foam cells into the circulation. Due to the high abundance of cholesterol in foam cells, most previous studies focused on apoA-I/HDL-mediated free cholesterol (FC) transport. However, recent lipidomics of human atherosclerotic plaques also identified that oxidized sterols (oxysterols) and non-sterol lipid species accumulate as atherogenesis progresses. While it is known that these lipids regulate expression of pro-inflammatory genes linked to plaque instability, how cholesterol acceptors impact the foam cell lipidome, particularly oxysterols and non-sterol lipids, remains unexplored. Using lipidomics analyses, we found cholesterol acceptors remodel foam cell lipidomes. Lipid subclass analyses revealed various oxysterols, sphingomyelins, and ceramides, species uniquely enriched in human plaques were significantly reduced by cholesterol acceptors, especially by apoA-I. These results indicate that the function of lipid-poor apoA-I is not limited to the efflux of cholesterol and phospholipids but suggest that apoA-I serves as a major regulator of the foam cell lipidome and might play an important role in reducing multiple lipid species involved in the pathogenesis of atherosclerosis.
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