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Updated: May 16, 2026

Determination of the Procoagulant Activity of Extracellular Vesicle (EV) Using EV-Activated Clotting Time (EV-ACT)
Published on: August 4, 2023
Red blood cell-derived microparticles isolated from blood units initiate and propagate thrombin generation
Olivier Rubin1, Julien Delobel, Michel Prudent
1Service Régional Vaudois de Transfusion Sanguine, Epalinges, Switzerland.
Background:
Red blood cell-derived microparticles (RMPs) are small phospholipid vesicles shed from RBCs in blood units, where they accumulate during storage. Because microparticles are bioactive, it could be suggested that RMPs are mediators of posttransfusion complications or, on the contrary, constitute a potential hemostatic agent.
Study Design And Methods:
This study was performed to establish the impact on coagulation of RMPs isolated from blood units. Using calibrated automated thrombography, we investigated whether RMPs affect thrombin generation (TG) in plasma.
Results:
We found that RMPs were not only able to increase TG in plasma in the presence of a low exogenous tissue factor (TF) concentration, but also to initiate TG in plasma in absence of exogenous TF. TG induced by RMPs in the absence of exogenous TF was neither affected by the presence of blocking anti-TF nor by the absence of Factor (F)VII. It was significantly reduced in plasma deficient in FVIII or F IX and abolished in FII-, FV-, FX-, or FXI-deficient plasma. TG was also totally abolished when anti-XI 01A6 was added in the sample. Finally, neither Western blotting, flow cytometry, nor immunogold labeling allowed the detection of traces of TF antigen. In addition, RMPs did not comprise polyphosphate, an important modulator of coagulation.
Conclusions:
Taken together, our data show that RMPs have FXI-dependent procoagulant properties and are able to initiate and propagate TG. The anionic surface of RMPs might be the site of FXI-mediated TG amplification and intrinsic tenase and prothrombinase complex assembly.
Insights
Red blood cell-derived microparticles (RMPs) enhance thrombin generation (TG) in plasma, initiating coagulation independently of tissue factor. These RMPs possess FXI-dependent procoagulant properties, highlighting their role in hemostasis.
Area of Science:
- Hematology
- Biochemistry
- Coagulation Science
Background:
- Red blood cell-derived microparticles (RMPs) are vesicles accumulating in stored blood.
- RMPs are bioactive and may influence post-transfusion complications or act as hemostatic agents.
Purpose of the Study:
- To investigate the impact of RMPs on blood coagulation.
- To determine if RMPs affect thrombin generation (TG) in plasma.
Main Methods:
- Isolation of RMPs from blood units.
- Calibrated automated thrombography to measure TG in plasma with and without exogenous tissue factor (TF).
- Assays using plasma deficient in specific coagulation factors and blocking antibodies.
Main Results:
- RMPs increased TG in plasma with low TF and initiated TG without TF.
- TF antigen and polyphosphate were not detected on RMPs.
- TG initiated by RMPs was FXI-dependent and reduced in FVIII/FIX-deficient plasma, abolished in FII/FV/FX/FXI-deficient plasma.
Conclusions:
- RMPs exhibit FXI-dependent procoagulant properties, initiating and propagating TG.
- The anionic surface of RMPs may facilitate FXI-mediated TG amplification and complex assembly.
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