The matricellular "cysteine-rich protein 61" is released from activated platelets and increased in the circulation

Claus Vinter B Hviid1, Johanna Samulin Erdem, Susanne Drechsler

  • 1*Institute for Surgical Research, Oslo University Hospital HF-Rikshospitalet; †Institute of Clinical Medicine, Faculty of Medicine, University of Oslo, Oslo, Norway; and ‡Ludwig Boltzmann Institute for Experimental and Clinical Traumatology, Vienna, Austria.

Shock (Augusta, Ga.)
|January 17, 2014
PubMed

Insights

Sepsis increases circulating Cyr61/CCN1 protein, while organ expression decreases. Activated platelets release CCN1, suggesting a novel source during sepsis-induced organ dysfunction.

Area of Science:

  • Biochemistry
  • Immunology
  • Critical Care Medicine

Background:

  • Sepsis and its associated organ dysfunction are leading causes of death in intensive care units.
  • The matricellular protein Cyr61/CCN1 (cysteine-rich, angiogenic-inducer, 61) is implicated in inflammatory responses and organ protection.
  • CCN1 regulation during sepsis remains poorly understood.

Purpose of the Study:

  • To comprehensively describe CCN1 regulation in circulation and vital organs during experimental sepsis.
  • To investigate the source of circulating CCN1 in sepsis.

Main Methods:

  • Cecal ligation and puncture (CLP) model in female CD-1 mice.
  • Analysis of CCN1 protein and mRNA in circulation and organs (liver, lungs) at various time points post-CLP.
  • Investigation of CCN1 content and release from human and mouse platelets.

Main Results:

  • Circulating CCN1 protein significantly increased (3-5 fold) at 18, 48, and 96 hours after CLP.
  • Hepatic and pulmonary CCN1 mRNA expression paradoxically decreased by 55-85% post-CLP.
  • CCN1 was detected in platelets, and platelet activation by thrombin or PAR1 agonists induced CCN1 release.

Conclusions:

  • Experimental sepsis is characterized by elevated circulating CCN1 protein and reduced organ mRNA expression.
  • Platelets are a novel source of CCN1 release into circulation during sepsis.
  • Understanding CCN1 regulation in sepsis may offer new therapeutic targets for organ protection.

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