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Fibrinogen decreases cardiomyocyte contractility through an ICAM-1-dependent mechanism
John H Boyd1, Edmond H Chau, Chiho Tokunanga
1University of British Columbia Critical Care Research Laboratories, St. Paul's Hospital, 1081 Burrard Street, Vancouver, BC, V6Z 1Y6, Canada. jboyd@mrl.ubc.ca
Insights
Inflammation increases intracellular adhesion molecule-1 (ICAM-1) on heart cells. Fibrinogen binds to ICAM-1, impairing heart cell contraction, with D-dimer also affecting function.
Area of Science:
- Cardiovascular Biology
- Inflammation Research
- Molecular Cardiology
Background:
- Inflammation induces intracellular adhesion molecule-1 (ICAM-1) expression in cardiomyocytes.
- ICAM-1 on inflamed cardiomyocytes may mediate interactions with plasma proteins.
Purpose of the Study:
- To investigate if fibrinogen and its degradation products alter cardiomyocyte contractility via ICAM-1.
- To identify specific fibrinogen regions involved in ICAM-1 binding.
Main Methods:
- Systemic inflammation induced in rats via endotoxin injection.
- Isolated rat cardiomyocytes treated with tumor necrosis factor-alpha.
- Assessment of cardiomyocyte contractile function and ICAM-1/fibrinogen colocalization.
Main Results:
- Endotoxin decreased cardiac function, increasing ICAM-1 and perivascular fibrinogen.
- Fibrinogen colocalized with ICAM-1 on cardiomyocytes; blocking ICAM-1 disrupted this.
- Fibrinogen and D-dimer decreased cardiomyocyte fractional shortening.
- Fibrinogen gamma chain residues 117-133 mediate ICAM-1 interaction.
Conclusions:
- The fibrinogen gamma chain (residues 117-133) binds ICAM-1.
- This interaction significantly depresses cardiomyocyte contractility.
Introduction:
Cardiomyocytes exposed to inflammatory processes express intracellular adhesion molecule-1 (ICAM-1). We investigated whether fibrinogen and fibrinogen degradation products, including D-dimer, could alter cardiomyocyte contractile function through interaction with ICAM-1 found on inflamed cardiomyocytes.
Methods:
In vivo, rats were injected with endotoxin to model systemic inflammation, whereas isolated rat cardiomyocytes were treated with tumor necrosis factor-alpha to model the inflammatory environment seen following exposure to bacterial products such as lipopolysaccharide.
Results:
In vivo, endotoxin administration profoundly decreased cardiac contractile function associated with a large increase in intracardiac ICAM-1 and perivascular fibrinogen. Confocal microscopy with double-staining of isolated rat cardiomyocytes demonstrated colocalization of ICAM-1 and fibrinogen. This interaction was disrupted through pre-treatment of the cells with an ICAM-1-blocking antibody. Functionally, isolated rat cardiomyocyte preparations exhibited decreased fractional shortening when incubated with fibrinogen, and through the use of synthetic peptides, we determined that residues 117-133 of the fibrinogen gamma chain are responsible for this interaction with ICAM-1. Despite having crosslinked gamma chains, D-dimer retained the ability to decrease cardiomyocyte contractility.
Conclusion:
Site 117-133 of the fibrinogen gamma chain is able to depress cardiomyocyte contractility through binding ICAM-1.
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