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Published on: May 4, 2015
Intramyocardial hemorrhage drives fatty degeneration of infarcted myocardium
Ivan Cokic1, Shing Fai Chan2, Xingmin Guan2
1Cedars-Sinai Medical Center, Los Angeles, CA, USA.
Insights
Intramyocardial hemorrhage after heart attack causes delayed healing and chronic heart failure. Reducing iron in the damaged area promotes favorable heart remodeling and may prevent heart failure.
Area of Science:
- Cardiovascular Medicine
- Pathology
- Regenerative Medicine
Background:
- Millions suffer heart attacks (myocardial infarction, MI) globally.
- Reperfusion saves lives but 50% develop chronic heart failure (CHF).
- The reasons for progression to CHF post-MI are unclear.
Purpose of the Study:
- Investigate the mechanism linking reperfusion injury to chronic heart failure.
- Identify factors driving adverse cardiac remodeling after myocardial infarction.
- Explore therapeutic strategies to mitigate post-MI heart failure.
Main Methods:
- Utilized large animal models of reperfused myocardial infarction.
- Analyzed intramyocardial hemorrhage as a key reperfusion injury.
- Examined iron-induced cellular processes in the infarcted myocardium.
Main Results:
- Intramyocardial hemorrhage drives delayed infarct healing and continuous fatty degeneration.
- Fatty degeneration results from iron-mediated macrophage activation, lipid peroxidation, and foam cell formation.
- Reducing iron in the hemorrhagic zone improves cardiac remodeling and reduces fatty infiltration.
Conclusions:
- Intramyocardial hemorrhage is a key determinant of post-MI chronic heart failure progression.
- Iron accumulation drives adverse cardiac remodeling through specific cellular pathways.
- Targeting iron in hemorrhagic zones offers a potential therapeutic strategy for preventing heart failure post-MI.
Abstract:
Sudden blockage of arteries supplying the heart muscle contributes to millions of heart attacks (myocardial infarction, MI) around the world. Although re-opening these arteries (reperfusion) saves MI patients from immediate death, approximately 50% of these patients go on to develop chronic heart failure (CHF) and die within a 5-year period; however, why some patients accelerate towards CHF while others do not remains unclear. Here we show, using large animal models of reperfused MI, that intramyocardial hemorrhage - the most damaging form of reperfusion injury (evident in nearly 40% of reperfused ST-elevation MI patients) - drives delayed infarct healing and is centrally responsible for continuous fatty degeneration of the infarcted myocardium contributing to adverse remodeling of the heart. Specifically, we show that the fatty degeneration of the hemorrhagic MI zone stems from iron-induced macrophage activation, lipid peroxidation, foam cell formation, ceroid production, foam cell apoptosis and iron recycling. We also demonstrate that timely reduction of iron within the hemorrhagic MI zone reduces fatty infiltration and directs the heart towards favorable remodeling. Collectively, our findings elucidate why some, but not all, MIs are destined to CHF and help define a potential therapeutic strategy to mitigate post-MI CHF independent of MI size.
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