Related Experiment Video
Updated: Jun 10, 2026

Generation of Lymphocytic Microparticles and Detection of their Proapoptotic Effect on Airway Epithelial Cells
Published on: February 20, 2015
Circulating microparticles in cardiovascular disease: implications for atherogenesis and atherothrombosis
E Shantsila1, P W Kamphuisen, G Y H Lip
1Haemostasis, Thrombosis and Vascular Biology Unit, University of Birmingham Centre for Cardiovascular Sciences, City Hospital, Birmingham, UK.
Insights
Circulating microparticles, small vesicles from cells, play a key role in cardiovascular diseases like atherogenesis. These microparticles act as biological messengers, influencing cell interactions and promoting thrombosis.
Area of Science:
- Cardiovascular Biology
- Cellular Biology
- Thrombosis Research
Background:
- Atherogenesis involves complex cell interactions within the vascular wall and blood.
- Circulating microparticles are newly discovered players in endothelial damage and platelet activation.
- These microparticles are small vesicles released from various blood and vascular cells.
Purpose of the Study:
- To investigate the role of circulating microparticles in atherogenesis and atherothrombotic complications.
- To understand how microparticles regulate inter-cellular interactions in cardiovascular disease.
- To explore the procoagulant activity and biological effects of microparticles.
Main Methods:
- Analysis of microparticle release from activated cells (platelets, leukocytes, endothelial cells).
- Assessment of microparticle surface proteins and cytoplasmic material.
- Evaluation of microparticle procoagulant activity compared to parent cells.
Main Results:
- Microparticles are phospholipid vesicles carrying functional molecules from parental cells.
- Platelet-derived microparticles contribute significantly to the procoagulant activity of activated platelets.
- Microparticle shedding is a regulated process involved in cell-to-cell communication.
Conclusions:
- Circulating microparticles are crucial biological messengers in cardiovascular pathophysiology.
- Microparticles are implicated in endothelial damage, hypercoagulability, and atherothrombosis.
- Their specific involvement highlights their significance in various cardiovascular disorders.
Abstract:
The complex and multifactorial nature of atherogenesis and development of atherothrombotic complications involves numerous interactions between various cell types inside the vascular wall (e.g. macrophages and smooth muscle cells) and in the blood (e.g. leukocytes and platelets). One relatively recent advance in this area is the discovery of circulating microparticles and their role in endothelial damage, platelet activation, hypercoagulability and regulation of inter-cellular interactions. Microparticles are small anucleoid phospholipid vesicles released from different cells, such as platelets, erythrocytes, leukocytes and endothelial cells. Microparticles carry surface proteins and include cytoplasmic material of the parental cells responsible for the exertion of microparticle-mediated biological effects. About 25% of the procoagulant activity of stimulated platelet suspensions is associated with microparticles released upon platelet activation and their surface may be approximately 50-100-fold more procoagulant than the surface of activated platelets per se. The available lines of evidence indicate that shedding of microparticles from the parental cells is not just a passive process accompanying cellular dysfunction and apoptosis, but a tightly regulated mechanism implicated in the interactions between various cell types. The role of microparticles as biological messengers is supported by their differential and specific involvement in the pathophysiology of different cardiovascular disorders, including atherogenesis and thrombosis.
Related Concept Videos
Anticoagulant Drugs: Low-Molecular-Weight Heparins
Coronary Artery Disease II: Pathophysiology
Atherosclerosis III: Management
Atherosclerosis I: Introduction
Peripheral Artery Disease I: Introduction
Coronary Artery Disease I: Introduction
