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.

Transfusion
|December 12, 2012
PubMed
Abstract

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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