Procoagulant microparticles promote coagulation in a factor XI-dependent manner in human endotoxemia

M J Mooberry1, R Bradford2, E L Hobl3

  • 1Department of Medicine, University of North Carolina, Chapel Hill, NC, USA.

Abstract

Insights

Microparticles (MPs) from endotoxemia volunteers promote coagulation via the intrinsic pathway, specifically through factor XI. These findings reveal a novel mechanism of MP procoagulant effects in endotoxemia.

Area of Science:

  • Hematology
  • Coagulation Science
  • Immunology

Background:

  • Endotoxemia involves acute inflammation and coagulation activation.
  • Circulating microparticles (MPs) increase during endotoxemia.
  • The procoagulant role and pathways of endotoxin-induced MPs are not fully understood.

Purpose of the Study:

  • To characterize endotoxin-induced MPs.
  • To investigate the procoagulant properties of these MPs.
  • To determine the specific coagulation pathways involved in MP-mediated effects.

Main Methods:

  • Flow cytometry for MP enumeration and characterization.
  • Assays using factor-deficient plasmas (FVII, FXI) and blocking antibodies (TF, FXIa).
  • Calibrated automated thrombography (CAT) for thrombin generation analysis.

Main Results:

  • Total and platelet MPs were elevated 6 hours post-endotoxin infusion.
  • Endotoxin-induced MPs showed increased TF activity and shortened clotting times.
  • MP procoagulant activity was dependent on Factor XI, not Factor VII or Tissue Factor.

Conclusions:

  • Endotoxin-induced MPs activate coagulation through the intrinsic pathway.
  • Factor XI is the key mediator of MP procoagulant effects in endotoxemia.
  • This contrasts with the extrinsic pathway's role in cellular TF initiation.

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