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Critical roles for the Fas/Fas ligand system in postinfarction ventricular remodeling and heart failure
Yiwen Li1, Genzou Takemura, Ken-ichiro Kosai
1Second Department of Internal Medicine, Gifu University School of Medicine, Gifu, Japan.
Insights
Blocking Fas/Fas ligand interaction prevents granulation tissue cell apoptosis after myocardial infarction (MI). This improves cardiac scarring, reduces heart failure, and enhances survival, offering a potential therapy for post-MI complications.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Regenerative Medicine
Background:
- Myocardial infarction (MI) leads to cell death in granulation tissue, forming scarce scars.
- Apoptosis blockade post-MI improves ventricular remodeling and heart failure, but mechanisms remain unclear.
- The role of Fas/Fas ligand in MI-induced apoptosis is not fully understood.
Purpose of the Study:
- To elucidate the molecular mechanisms of apoptosis in granulation tissue after MI.
- To investigate the role of the Fas/Fas ligand pathway in this process.
- To evaluate the therapeutic potential of inhibiting Fas/Fas ligand interaction.
Main Methods:
- Assessed Fas and Fas ligand expression in mouse MI models.
- Utilized Fas-deficient (lpr) and Fas ligand-deficient (gld) mice.
- Administered adenovirus encoding soluble Fas (sFas) via gene delivery.
Main Results:
- Fas and Fas ligand were upregulated in granulation tissue post-MI.
- Fas-deficient mice showed reduced apoptosis and attenuated cardiac dysfunction.
- sFas gene therapy suppressed apoptosis, leading to improved scar quality, reduced heart failure, and increased survival.
Conclusions:
- The Fas/Fas ligand pathway is critical for granulation tissue cell apoptosis after MI.
- Inhibiting this pathway via sFas gene therapy promotes beneficial cardiac remodeling.
- Interfering with Fas/Fas ligand interaction is a promising therapeutic strategy for post-MI heart failure.
Abstract:
In myocardial infarction (MI), granulation tissue cells disappear via apoptosis to complete a final scarring with scanty cells. Blockade of this apoptosis was reported to improve post-MI ventricular remodeling and heart failure. However, the molecular biological mechanisms for the apoptosis are unknown. Fas and Fas ligand were overexpressed in the granulation tissue at the subacute stage of MI (1 week after MI) in mice, where apoptosis frequently occurred. In mice lacking functioning Fas (lpr strain) and in those lacking Fas ligand (gld strain), apoptotic rate of granulation tissue cells was significantly fewer compared with that of genetically controlled mice, and post-MI ventricular remodeling and dysfunction were greatly attenuated. Mice were transfected with adenovirus encoding soluble Fas (sFas), a competitive inhibitor of Fas ligand, on the third day of MI. The treatment resulted in suppression of granulation tissue cell apoptosis and produced a thick, cell-rich infarct scar containing rich vessels and bundles of smooth muscle cells with a contractile phenotype at the chronic stage (4 weeks after MI). This accompanied not only alleviation of heart failure but also survival improvement. However, the sFas gene delivery during scar tissue phase was ineffective, suggesting that beneficial effects of the sFas gene therapy owes to inhibition of granulation tissue cell apoptosis. The Fas/Fas ligand interaction plays a critical role for granulation tissue cell apoptosis after MI. Blockade of this apoptosis by interfering with the Fas/Fas ligand interaction may become one of the therapeutic strategies against chronic heart failure after large MI.
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