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Distinct phospholipid and sphingolipid species are linked to altered HDL function in apolipoprotein A-I deficiency
Emile Zakiev1, Fabiana Rached2, Marie Lhomme3
1UMR-ICAN 1166, National Institute for Health and Medical Research (INSERM), Sorbonne University, Paris, France.
Insights
Familial apolipoprotein A-I deficiency (FAID) alters HDL lipidome, increasing specific phospholipids and sphingolipids. This lipidomic shift impairs HDL
Area of Science:
- Lipidomics
- Cardiovascular Research
- Atherosclerosis
Background:
- Familial apolipoprotein A-I deficiency (FAID) is characterized by low apoA-I and HDL cholesterol.
- FAID is linked to accelerated atherosclerosis.
Purpose of the Study:
- To characterize HDL subpopulations' lipidome in FAID.
- To investigate the relationship between HDL lipidome alterations and antiatherogenic activities in FAID.
Main Methods:
- Isolated five HDL subfractions from FAID patients and controls using ultracentrifugation.
- Quantitatively evaluated the HDL lipidome, including 160 molecular species across 9 lipid classes.
Main Results:
- FAID significantly increased lysophosphatidylcholine, ceramides, phosphatidylserine, phosphatidic acid, and phosphatidylglycerol in HDL subpopulations.
- Decreased phosphatidylethanolamine species were observed in FAID HDL.
- Specific lipid species, particularly phosphatidylcholine (34:2), correlated with impaired HDL function in FAID.
Conclusions:
- Altered phospholipid and sphingolipid profiles in HDL are associated with reduced antiatherogenic properties in FAID.
- Metabolic pathways of sphingolipids, glycerophospholipids, and linoleic acid are significantly impacted by FAID.
Background:
Familial apolipoprotein A-I (apoA-I) deficiency (FAID) involving low levels of both apoA-I and high-density lipoprotein (HDL) cholesterol is associated with accelerated atherosclerosis.
Objective:
The objective of this study was to define distinctive patterns in the lipidome of HDL subpopulations in FAID in relationship to antiatherogenic activities.
Methods:
Five HDL subfractions were isolated by ultracentrifugation from plasma of FAID Caucasian patients (n = 5) and age-matched healthy normolipidemic Caucasian controls (n = 8), and the HDL lipidome (160 molecular species of 9 classes of phospholipids and sphingolipids) was quantitatively evaluated.
Results:
Increased concentrations of numerous molecular species of lysophosphatidylcholine (up to 12-fold), ceramides (up to 3-fold), phosphatidylserine (up to 34-fold), phosphatidic acid (up to 71-fold), and phosphatidylglycerol (up to 20-fold) were detected throughout all five HDL subpopulations as compared with their counterparts from controls, whereas concentrations of phosphatidylethanolamine species were decreased (up to 5-fold). Moderately to highly abundant, within their lipid class, species of phosphatidylcholine, sphingomyelin, phosphatidylinositol, phosphatidylethanolamine, phosphatidylserine, and ceramide featuring multiple unsaturations were primarily affected by apoA-I deficiency; their HDL content, particularly that of phosphatidylcholine (34:2), was strongly correlated with HDL function, impaired in FAID. Metabolic pathway analysis revealed that sphingolipid, glycerophospholipid, and linoleic acid metabolism was significantly affected by FAID.
Conclusion:
These data reveal that altered content of specific phospholipid and sphingolipid species is linked to deficient antiatherogenic properties of HDL in FAID.
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