S100A8 and S100A9 mediate endotoxin-induced cardiomyocyte dysfunction via the receptor for advanced glycation end

John H Boyd1, Bernard Kan, Haley Roberts

  • 1Critical Care Research Laboratories, St. Paul' Hospital, University of British Columbia, Vancouver, Canada. jboyd@mrl.ubc.ca

Circulation Research
|April 12, 2008
PubMed

Insights

Sepsis causes heart dysfunction via increased S100A8 and S100A9 proteins, which interact with RAGE to reduce calcium flux and contractility in cardiomyocytes. This reveals a key mechanism in sepsis-induced cardiac problems.

Area of Science:

  • Cardiology
  • Immunology
  • Molecular Biology

Background:

  • Sepsis-induced cardiovascular dysfunction is a major cause of death in critically ill patients.
  • Cardiomyocytes exhibit reduced contractility upon pathogen exposure, linked to Toll-like receptor activation, but downstream mechanisms are unclear.

Purpose of the Study:

  • To elucidate the molecular mechanisms linking Toll-like receptor activation to sepsis-induced cardiac dysfunction.
  • To investigate the role of S100A8 and S100A9 proteins in cardiomyocyte response to lipopolysaccharide (LPS).

Main Methods:

  • Microarray analysis of cardiac tissue exposed to LPS.
  • Overexpression and knockdown of S100A8 and S100A9 in HL-1 cardiomyocytes and mouse models.
  • In vivo microbubble technology for protein delivery and inhibition.
  • Coimmunoprecipitation to identify protein interactions, focusing on RAGE (receptor for advanced glycation end products).

Main Results:

  • LPS exposure significantly upregulated S100A8 and S100A9 in cardiomyocytes and cardiac tissue.
  • Overexpression of S100A8/S100A9 in cardiomyocytes reduced calcium flux.
  • Cardiac overexpression of S100A8/S100A9 led to decreased ejection fraction in mice.
  • S100A8 and S100A9 interact with RAGE, mediating LPS-induced cardiac dysfunction.
  • Knockdown of S100A9 attenuated LPS-induced cardiac dysfunction.

Conclusions:

  • Sepsis induces S100A8 and S100A9 expression in cardiomyocytes.
  • These proteins, via RAGE interaction, decrease calcium flux and cardiomyocyte contractility.
  • This study identifies a novel mechanism linking pathogen-associated molecular products to cardiac dysfunction in sepsis.

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