Impact of Platelets and Platelet-Derived Microparticles on Hypercoagulability Following Burn Injury

Emily F Midura1, Joshua W Kuethe, Teresa C Rice

  • 1Division of Research, Department of Surgery and Institute for Military Medicine, University of Cincinnati, Cincinnati, Ohio.

Shock (Augusta, Ga.)
|November 4, 2015
PubMed

Insights

Burn injury causes coagulopathy, with platelet-derived microparticles (PMPs) contributing early. Later, increased platelet activation drives hypercoagulability after burn injury.

Area of Science:

  • Trauma and Injury Research
  • Hematology
  • Coagulation Science

Background:

  • Acute burn injuries induce coagulopathy, progressing to a hypercoagulable state.
  • Platelet-derived microparticles (PMPs) are implicated in post-burn coagulation changes.

Purpose of the Study:

  • To investigate the role of platelets and PMPs in coagulation following burn injury.
  • To understand the temporal changes in platelet populations and PMPs after a scald injury.

Main Methods:

  • Development of a murine scald model with 28% TBSA full thickness burn.
  • Analysis of circulating microparticle populations, platelet counts, coagulation, and platelet function at various time points post-injury.

Main Results:

  • Burn injury induced hypercoagulability persisting from post-burn day one (PBD1) to PBD6.
  • On PBD1, decreased platelet counts and function were observed with increased procoagulant PMPs.
  • On PBD6, increased platelet numbers and activation occurred, with ADP-induced platelet activation being key.

Conclusions:

  • A temporal shift in hypercoagulability mechanisms occurs after scald injury.
  • PMPs are crucial for early coagulation changes (PBD1) post-burn.
  • ADP-induced platelet activation is a key factor in later hypercoagulability (PBD6).

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