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Determination of the Procoagulant Activity of Extracellular Vesicle (EV) Using EV-Activated Clotting Time (EV-ACT)
Published on: August 4, 2023
Human cell-derived microparticles promote thrombus formation in vivo in a tissue factor-dependent manner
E Biró1, K N Sturk-Maquelin, G M T Vogel
1Department of Clinical Chemistry, Academic Medical Center, University of Amsterdam, The Netherlands. E.Biro@amc.uva.nl
Background:
Circulating microparticles of various cell types are present in healthy individuals and, in varying numbers and antigenic composition, in various disease states. To what extent these microparticles contribute to coagulation in vivo is unknown.
Objectives:
To examine the in vivo thrombogenicity of human microparticles.
Methods:
Microparticles were isolated from pericardial blood of cardiac surgery patients and venous blood of healthy individuals. Their numbers, cellular source, and tissue factor (TF) exposure were determined using flow cytometry. Their in vitro procoagulant properties were studied in a fibrin generation test, and their in vivo thrombogenicity in a rat model.
Results:
The total number of microparticles did not differ between pericardial samples and samples from healthy individuals (P = 0.786). In both groups, microparticles from platelets, erythrocytes, and granulocytes exposed TF. Microparticle-exposed TF antigen levels were higher in pericardial compared with healthy individual samples (P = 0.036). Pericardial microparticles were strongly procoagulant in vitro and highly thrombogenic in a venous stasis thrombosis model in rats, whereas microparticles from healthy individuals were not [thrombus weights 24.8 (12.2-41.3) mg vs. 0 (0-24.3) mg median and range; P < 0.001]. Preincubation of pericardial microparticles with an inhibitory antibody against human TF abolished their thrombogenicity [0 (0-4.4) mg; P < 0.01], while a control antibody had no effect [19.6 (12.6-53.7) mg; P > 0.05]. The thrombogenicity of the microparticles correlated strongly with their TF exposure (r = 0.9524, P = 0.001).
Conclusions:
Human cell-derived microparticles promote thrombus formation in vivo in a TF-dependent manner. They might be the direct cause of an increased thromboembolic tendency in various patient groups.
Insights
Human cell-derived microparticles, particularly those from pericardial blood, significantly promote blood clot formation in vivo. This thrombogenicity is dependent on tissue factor (TF) exposure and may explain increased thromboembolic risk in patients.
Area of Science:
- Cardiovascular Science
- Hematology
- Cell Biology
Background:
- Circulating microparticles from various cell types are found in healthy individuals and disease states.
- The contribution of microparticles to in vivo coagulation remains largely unknown.
Purpose of the Study:
- To investigate the in vivo thrombogenicity of human microparticles.
- To determine the role of tissue factor (TF) in microparticle-mediated thrombus formation.
Main Methods:
- Microparticles were isolated from pericardial blood of cardiac surgery patients and healthy individuals.
- Flow cytometry was used to quantify microparticle numbers, cellular sources, and TF exposure.
- In vitro procoagulant properties and in vivo thrombogenicity in a rat model were assessed.
Main Results:
- Pericardial microparticles exhibited significantly higher TF exposure and procoagulant activity compared to those from healthy individuals.
- Pericardial microparticles were highly thrombogenic in vivo, while healthy individual microparticles were not.
- TF inhibition abolished the thrombogenicity of pericardial microparticles, correlating strongly with TF exposure.
Conclusions:
- Human cell-derived microparticles promote in vivo thrombus formation in a TF-dependent manner.
- These microparticles may be a direct cause of increased thromboembolic tendency in various patient populations.
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