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Open AccessJournal ArticleDOI

Iron and copper promote modification of low density lipoprotein by human arterial smooth muscle cells in culture.

TLDR
Human monocyte-derived macrophages took up and esterified the cholesterol from modified low density lipoprotein more extensively than from native low densitylipoprotein.
Abstract
Modification of low density lipoproteins by human arterial smooth muscle cells was characterized by increased electrophoretic mobility and increased content of malondialdehyde-like oxidation products reactive with thiobarbituric acid. Lipoprotein modification was promoted by micromolar concentrations of iron or copper in the culture medium and was metal ion concentration- and time-dependent. The ability of diverse media to promote smooth muscle cell-mediated low density lipoprotein modification correlated with their iron concentration. Therefore, metal ion concentration of culture media contributes substantially to low density lipoprotein modification in vitro. Human monocyte-derived macrophages took up and esterified the cholesterol from modified low density lipoprotein more extensively than from native low density lipoprotein. Metal ion-mediated modification of low density lipoprotein may be a contributing factor to the pathogenesis of arteriosclerosis.

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A quantitative assessment of plasma homocysteine as a risk factor for vascular disease. Probable benefits of increasing folic acid intakes

TL;DR: Higher folic acid intake by reducing tHcy levels promises to prevent arteriosclerotic vascular disease and under different assumptions, 13,500 to 50,000 CAD deaths annually could be avoided.
Journal ArticleDOI

Role of oxidized low density lipoprotein in atherogenesis.

TL;DR: New ideas suggest new approaches, that in combination with lowering of plasma cholesterol, could lead to the prevention of atherosclerosis and its complications.
Journal ArticleDOI

The role of lipid peroxidation and antioxidants in oxidative modification of LDL.

TL;DR: A comprehensive survey on the compositional properties of LDL relevant for its susceptibility to oxidation, on the mechanism and kinetics of LDL oxidation, and on the chemical and physico-chemical properties of HDL oxidized by exposure to copper ions is provided.
Journal ArticleDOI

Atherosclerosis: basic mechanisms. Oxidation, inflammation, and genetics.

TL;DR: Enzymes associated with HDL may play an important role in protecting against lipid oxidation in the artery wall and may account in part for the inverse relation between HDL and risk for atherosclerotic clinical events.
References
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Journal Article

Protein Measurement with the Folin Phenol Reagent

TL;DR: Procedures are described for measuring protein in solution or after precipitation with acids or other agents, and for the determination of as little as 0.2 gamma of protein.
Book ChapterDOI

Microsomal lipid peroxidation.

TL;DR: This chapter discusses microsomal lipid peroxidation, a complex process known to occur in both plants and animals that involves the formation and propagation of lipid radicals, the uptake of oxygen, a rearrangement of the double bonds in unsaturated lipids, and the eventual destruction of membrane lipids.
Journal ArticleDOI

Binding Site on Macrophages that Mediates Uptake and Degradation of Acetylated Low Density Lipoprotein, Producing Massive Cholesterol Deposition

TL;DR: It is hypothesized that this macrophage uptake mechanism may mediate the degradation of denatured LDL in the body and thus serve as a "backup" mechanism for the previously described receptor-mediated degradation of native LDL that occurs in parenchymal cells.
Journal ArticleDOI

Lipoprotein metabolism in the macrophage: Implications for cholesterol deposition in atherosclerosis

TL;DR: The cholesteryl Ester/Protein Complexes from Atherosclerotic Plaques and the Foam Cell in Familial Hypercholesterolemia are studied.
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