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Updated: Jul 7, 2026

Microfluidics in Assessing Platelet Function
Published on: November 8, 2024
Platelet microparticles and vascular cells interactions: a checkpoint between the haemostatic and thrombotic
Olivier Morel1, Nicolas Morel, Jean-Marie Freyssinet
1Université Louis Pasteur, Faculté de Médecine, Institut d'Hématologie et d'Immunologie, Strasbourg, F-67085 France.
Abstract:
Described 40 years ago as cell dust, microparticles (MPs) are now considered a key component in the haemostatic response. Owing to their plasma membrane reactivity, platelets are believed to constitute the main source of circulating procoagulant microparticles and behave as true sensors for the haemostatic response. Erythrocytes, leukocytes and endothelial cells are also able to shed MPs in the blood flow, their respective contribution varying with the pathophysiologic circumstances and extent of the cellular damage. The catalytic properties of MPs rely on a procoagulant anionic phospholipid, phosphatidylserine, made accessible at the outer leaflet following plasma membrane remodelling and on the eventual presence of tissue factor (TF). Under resting conditions, most membrane-bound TF is encrypted. Although able to bind to FVIIa, it does not trigger blood coagulation. Under prothrombotic conditions, TF decryption would occur through intricate pathways involving platelets, monocytes, endothelial cells and derived MPs. P-selectin/P-selectin glycoprotein Ligand-1 (PSGL-1) interactions and reactive oxygen species would promote TF decryption in cell-MP aggregates. At sites of endothelium injury, the swift recruitment of TF+-MPs through P-selectin/PSGL-1 interactions enables the concentration of TF activity above a threshold allowing coagulation to be triggered. Another crucial feature in the initiation of blood coagulation, possibly tuned by MPs, is the balance between TF and TFPI. In specific pathophysiologic contents with elevated levels of circulating TF+-MPs, accessible TFPI at the MP surface would be overwhelmed. Beyond their procoagulant properties demonstrated in vitro, a number of pieces of evidence points to procoagulant MPs as efficient effectors in the haemostatic response, and as pathogenic markers of thrombotic disorders and vascular damage. This review will focus on the pathophysiological significance of platelet-derived MPs and their interaction with vascular cells.
Insights
Microparticles (MPs), once called cell dust, are crucial for blood clotting. Platelet-derived MPs, especially those exposing phosphatidylserine and tissue factor, initiate coagulation and serve as markers for thrombotic disorders.
Area of Science:
- Hematology
- Biochemistry
- Cell Biology
Background:
- Microparticles (MPs), initially termed 'cell dust,' are now recognized as vital in hemostasis.
- Platelets are a primary source of circulating procoagulant MPs, acting as sensors in hemostatic responses.
- Erythrocytes, leukocytes, and endothelial cells also release MPs, with contributions varying based on pathology and cell damage.
Purpose of the Study:
- To review the pathophysiological significance of microparticles, particularly platelet-derived MPs.
- To explore the interaction of microparticles with vascular cells in the context of hemostasis and thrombosis.
- To highlight the role of MPs in initiating blood coagulation and their function as markers for vascular damage.
Main Methods:
- Literature review focusing on microparticle formation, function, and clinical relevance.
- Analysis of the molecular mechanisms underlying MP procoagulant activity, including phosphatidylserine exposure and tissue factor decryption.
- Examination of the role of P-selectin/P-selectin glycoprotein Ligand-1 (PSGL-1) interactions and reactive oxygen species in MP-mediated coagulation.
Main Results:
- MPs possess procoagulant properties due to accessible phosphatidylserine and tissue factor (TF).
- TF decryption, crucial for coagulation initiation, is modulated by platelet-MP aggregates via P-selectin/PSGL-1 interactions and reactive oxygen species.
- Elevated circulating TF+-MPs can overwhelm tissue factor pathway inhibitor (TFPI), promoting coagulation.
- MPs are implicated as effectors in hemostasis and as pathogenic markers in thrombotic disorders and vascular damage.
Conclusions:
- Platelet-derived MPs are key effectors in the haemostatic response, contributing significantly to clot formation.
- The interaction between MPs and vascular cells, particularly under prothrombotic conditions, is critical for initiating and regulating coagulation.
- Circulating MPs serve as important diagnostic and prognostic markers for thrombotic disorders and vascular pathologies.
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