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Published on: October 28, 2014
Intracellular calcium overloading and oxidative stress in cardiomyocyte necrosis via a mitochondriocentric
Mazen Shaheen1, Yaser Cheema, Atta U Shahbaz
1Division of Cardiovascular Diseases, University of Tennessee Health Science Center, Memphis, Tennessee, USA.
Insights
Congestive heart failure involves cardiomyocyte necrosis due to excessive calcium and oxidative stress. This study explores a mitochondriocentric pathway contributing to heart cell death in rat models of acute and chronic stress.
Area of Science:
- Cardiology
- Molecular Biology
- Pathophysiology
Background:
- Congestive heart failure (CHF) is a widespread condition with significant morbidity and frequent hospitalizations.
- Understanding the mechanisms of cardiomyocyte necrosis is crucial for developing effective treatments for CHF.
- Dr. Pawan K. Singal's research has illuminated key factors in heart muscle cell death.
Purpose of the Study:
- To review recent work on a mitochondriocentric pathway leading to cardiomyocyte necrosis.
- To investigate this pathway in rat models of acute and chronic stress relevant to CHF.
Main Methods:
- Review of recent experimental work.
- Studies involving rat models subjected to isoproterenol administration (acute stress).
- Studies involving rat models subjected to aldosterone/salt treatment (chronic stress).
Main Results:
- Excessive intracellular calcium accumulation and oxidative stress are implicated in CHF.
- A mitochondriocentric signal-transducer-effector pathway contributes to cardiomyocyte necrosis.
- This pathway is relevant in both acute (isoproterenol) and chronic (aldosterone/salt) stress models in rats.
Conclusions:
- The findings provide mechanistic insights into cardiomyocyte necrosis in CHF.
- The mitochondriocentric pathway represents a key target for understanding and potentially treating CHF.
- This work highlights the importance of mitochondrial function in heart failure pathophysiology.
Abstract:
Congestive heart failure (CHF), a common clinical syndrome, has reached epidemic proportions. Its disabling symptoms account for frequent hospitalizations and readmissions. Pathophysiological mechanisms that lead to CHF and account for its progressive nature are of considerable interest. Important scientific observations obtained from Dr Pawan K Singal's laboratory in Winnipeg, Manitoba, have provided crucial insights to our understanding of the pathophysiological factors that contribute to cardiomyocyte necrosis (the heart is a postmitotic organ incapable of tolerating an ongoing loss of these cells without adverse functional consequences). This increment in knowledge and the mechanistic insights afforded by Dr Singal and his colleagues have highlighted the role of excessive intracellular calcium accumulation and the appearance of oxidative stress in CHF, in which the rate of reactive oxygen species generation overwhelms their rate of detoxification by antioxidant defenses. They have shown that this common pathophysiological scenario applies to diverse entities such as ischemia/reperfusion and hypoxia/reoxygenation forms of injury, myocardial infarction and the cardiomyopathies that accompany diabetes and excess levels of catecholamines and adriamycin. The authors are honoured to be invited to contribute to the present focus issue of Experimental & Clinical Cardiology in recognizing Dr Singal's numerous scholarly accomplishments. The present article reviews the authors' recent work on a mitochondriocentric signal-transducer-effector pathway to cardiomyocyte necrosis found in rats with either an acute stressor state that accompanies isoproterenol administration or a chronic stressor state manifested after four weeks of aldosterone/salt treatment.
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