Related Experiment Videos
High-density lipoproteins, platelets and the pathogenesis of atherosclerosis
Jerzy-Roch Nofer1, Martin F Brodde, Beate E Kehrel
1Center for Laboratory Medicine, University Hospital Münster, Münster, Germany. nofer@uni-muenster.de
Insights
High-density lipoprotein (HDL) cholesterol shows an inverse relationship with coronary artery disease. HDL exerts antiplatelet effects, potentially counteracting atherothrombotic vascular disease and offering therapeutic avenues for thrombosis.
Area of Science:
- Cardiovascular Science
- Lipid Metabolism
- Thrombosis Research
Background:
- High-density lipoprotein (HDL)-cholesterol is inversely associated with coronary artery disease incidence.
- HDL's atheroprotective effects are traditionally linked to reverse cholesterol transport.
- Emerging evidence suggests HDL possesses antiplatelet properties relevant to vascular disease.
Purpose of the Study:
- To review recent advances in understanding HDL-platelet interactions.
- To explore the potential of HDL-like particles in thrombosis therapy.
Main Methods:
- In vitro studies demonstrating HDL's inhibition of platelet aggregation and related pathways.
- Populational studies correlating plasma HDL levels with venous thromboembolism and platelet thrombus formation.
- Clinical investigations on the effects of reconstituted HDL particles on platelet activation.
Main Results:
- HDL inhibits agonist-stimulated platelet aggregation, fibrinogen binding, and thromboxane A(2) release.
- HDL's antiplatelet effects involve scavenger receptor type B1 and apoER2/LRP8, activating intracellular signaling.
- Lower plasma HDL levels are associated with increased venous thromboembolism and acute platelet thrombus formation.
Conclusions:
- HDL exhibits significant antiplatelet effects, contributing to its atheroprotective role.
- HDL-platelet interactions are crucial in preventing atherothrombotic vascular disease.
- HDL-based therapies hold promise for managing and treating thrombosis.
Abstract:
1. Prospective and interventional studies demonstrate an inverse relationship between plasma high-density lipoprotein (HDL)-cholesterol and the incidence of coronary artery disease. Although the atheroprotective effects of HDL are usually attributed to the reverse cholesterol transport, in which HDL shuttles cholesterol from cells in the arterial wall to the liver, other mechanisms are also under investigation. 2. Platelets are involved in both the initiation and progression of atherosclerotic lesions. In addition, the formation of thrombi over ruptured atherosclerotic plaques results in the narrowing or complete occlusion of coronary arteries. Current experimental evidence suggests that HDL may exert antiplatelet effects and thereby counteract the development of atherothrombotic vascular disease. 3. In vitro studies show that HDL inhibits agonist-stimulated platelet aggregation, fibrinogen binding, granule secretion and liberation of thromboxane A(2). Inhibitory effects of HDL are mediated, in part, by scavenger receptor type B1 and/or the apolipoprotein E receptor apoER2/LRP8 and are linked to the induction of intracellular signalling cascades encompassing stimulation of protein kinase C, cytoplasmatic alkalization and generation of nitric oxide. 4. Populational studies demonstrate that there is an inverse association between plasma HDL levels and recurrent venous thromboembolism. In addition, HDL-cholesterol has been identified as an independent predictor of acute platelet thrombus formation. The administration of reconstituted HDL particles in humans attenuates ex vivo platelet activation. 5. The present review summarizes recent advances in understanding HDL-platelet interactions and discusses the potential use of HDL-like particles in the therapy of thrombosis.
Related Concept Videos
Atherosclerosis I: Introduction
Coronary Artery Disease II: Pathophysiology
Inflammation
Peripheral Artery Disease I: Introduction
Lipid-derived Compounds in the Human Body
Fat-soluble Vitamins
Fat-soluble vitamins, including vitamins A, D, E, and K, are required in minimal quantities, but their deficiencies can lead to severely abnormal physiological conditions. For example, vitamin A deficiency can cause night blindness, dry skin, delayed...
Coronary Artery Disease I: Introduction