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Published on: August 15, 2014
Function and distribution of apolipoprotein A1 in the artery wall are markedly distinct from those in plasma
Joseph A DiDonato1, Ying Huang, Kulwant S Aulak
1Departments of Cellular and Molecular Medicine, Lerner Research Institute (J.A.D., Y.H., K.A., G.G., V.G., P.L.F., W.H.W.T., J.D.S., S.L.H.), Cardiovascular Medicine, Heart, and Vascular Institute (W.H.W.T., J.D.S., S.L.H.), and Molecular Cardiology, Lerner Research Institute (E.F.P.), Cleveland Clinic, Cleveland, OH; Department of Medicine, New York University, New York, NY (O.E.-O., E.A.F.); and Departments of Chemistry (G.G., V.G., S.L.H.) and Mathematics (Y.W.), Cleveland State University, Cleveland, OH.
Insights
Apolipoprotein A1 (apoA1) in human arteries is oxidized and cross-linked, impairing its function. This artery wall apoA1 is mostly lipid-poor and not HDL-associated, unlike in plasma.
Area of Science:
- Cardiovascular Biology
- Lipid Metabolism
- Atherosclerosis Research
Background:
- Apolipoprotein A1 (apoA1) in atherosclerotic lesions is highly oxidized.
- Oxidation of apoA1 or HDL cross-links apoA1, impairing lipid binding, cholesterol efflux, and enzyme activities.
- No prior studies quantified apoA1 function or HDL particle distribution in the human artery wall.
Purpose of the Study:
- To quantify the function and HDL particle distribution of apoA1 recovered from the human artery wall.
- To compare apoA1 characteristics in atherosclerotic lesions versus normal aorta.
- To investigate the oxidative state and cross-linking of artery wall apoA1.
Main Methods:
- Developed a monoclonal antibody (10G1.5) recognizing all forms of apoA1.
- Examined apoA1 enrichment in atherosclerotic plaque-laden aorta via homogenates.
- Utilized buoyant density fractionation to determine apoA1 particle distribution.
- Assessed functional activities (cholesterol efflux, LCAT) of recovered apoA1.
Main Results:
- ApoA1 was >100-fold enriched in atherosclerotic aorta compared to normal aorta.
- The majority (>90%) of aortic apoA1 was found in the lipoprotein-depleted fraction (d>1.21), not HDL-like particles (<3%).
- Artery wall apoA1 (normal and lesion) was highly cross-linked (50-70%).
- Aorta-derived apoA1 exhibited ~80% lower cholesterol efflux and ~90% lower LCAT activity than circulating apoA1.
Conclusions:
- ApoA1 in the human aorta has distinct function and distribution compared to plasma.
- Artery wall apoA1 is enriched in atherosclerotic plaque, predominantly lipid-poor, and not HDL-associated.
- Extensively oxidatively cross-linked artery wall apoA1 is functionally impaired.
Background:
Prior studies show that apolipoprotein A1 (apoA1) recovered from human atherosclerotic lesions is highly oxidized. Ex vivo oxidation of apoA1 or high-density lipoprotein (HDL) cross-links apoA1 and impairs lipid binding, cholesterol efflux, and lecithin-cholesterol acyltransferase activities of the lipoprotein. Remarkably, no studies to date directly quantify either the function or HDL particle distribution of apoA1 recovered from the human artery wall.
Methods And Results:
A monoclonal antibody (10G1.5) was developed that equally recognizes lipid-free and HDL-associated apoA1 in both native and oxidized forms. Examination of homogenates of atherosclerotic plaque-laden aorta showed >100-fold enrichment of apoA1 compared with normal aorta (P<0.001). Surprisingly, buoyant density fractionation revealed that only a minority (<3% of total) of apoA1 recovered from either lesions or normal aorta resides within an HDL-like particle (1.063≤d≤1.21). In contrast, the majority (>90%) of apoA1 within aortic tissue (normal and lesions) was recovered within the lipoprotein-depleted fraction (d>1.21). Moreover, both lesion and normal artery wall apoA1 are highly cross-linked (50% to 70% of total), and functional characterization of apoA1 quantitatively recovered from aorta with the use of monoclonal antibody 10G1.5 showed ≈80% lower cholesterol efflux activity and ≈90% lower lecithin-cholesterol acyltransferase activity relative to circulating apoA1.
Conclusions:
The function and distribution of apoA1 in human aorta are quite distinct from those found in plasma. The lipoprotein is markedly enriched within atherosclerotic plaque, predominantly lipid-poor, not associated with HDL, extensively oxidatively cross-linked, and functionally impaired.
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