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Published on: July 7, 2014
Oxidative Stress as A Mechanism for Functional Alterations in Cardiac Hypertrophy and Heart Failure
Anureet K Shah1, Sukhwinder K Bhullar2, Vijayan Elimban2
1School of Kinesiology, Nutrition and Food Science, California State University, Los Angeles, CA 90032, USA.
Insights
Cardiac hypertrophy, initially adaptive, can progress to heart failure. Prolonged exposure to vasoactive hormones and resulting oxidative stress drive this transition through cellular damage and remodeling.
Area of Science:
- Cardiovascular Physiology
- Pathophysiology of Heart Failure
- Oxidative Stress Biology
Background:
- Cardiac hypertrophy is an adaptive response to pathological stimuli like myocardial infarction and pressure overload.
- The transition from cardiac hypertrophy to heart failure is not fully understood.
- Vasoactive hormones (catecholamines, angiotensin II, endothelins) are elevated in pathological conditions.
Purpose of the Study:
- To elucidate the mechanisms underlying the transition of cardiac hypertrophy to heart failure.
- To investigate the role of sustained hormonal stimulation and oxidative stress in this progression.
- To understand how oxidative stress contributes to cardiac remodeling and dysfunction.
Main Methods:
- Review of existing literature on cardiac hypertrophy and heart failure.
- Analysis of the roles of vasoactive hormones and their signaling pathways.
- Examination of the generation and impact of oxidative stress in hypertrophied hearts.
Main Results:
- Initial hypertrophy is adaptive, involving redox-sensitive mechanisms.
- Prolonged hormonal stimulation leads to cardiac dysfunction.
- Oxidative stress, generated by various stimuli, promotes adverse cardiac remodeling, Ca2+ handling defects, and cell loss.
Conclusions:
- Sustained oxidative stress is a critical factor in the progression from cardiac hypertrophy to heart failure.
- Oxidative stress induces extracellular matrix degradation and subcellular remodeling.
- Understanding these mechanisms is key to developing therapeutic strategies for heart failure.
Abstract:
Although heart failure due to a wide variety of pathological stimuli including myocardial infarction, pressure overload and volume overload is associated with cardiac hypertrophy, the exact reasons for the transition of cardiac hypertrophy to heart failure are not well defined. Since circulating levels of several vasoactive hormones including catecholamines, angiotensin II, and endothelins are elevated under pathological conditions, it has been suggested that these vasoactive hormones may be involved in the development of both cardiac hypertrophy and heart failure. At initial stages of pathological stimuli, these hormones induce an increase in ventricular wall tension by acting through their respective receptor-mediated signal transduction systems and result in the development of cardiac hypertrophy. Some oxyradicals formed at initial stages are also involved in the redox-dependent activation of the hypertrophic process but these are rapidly removed by increased content of antioxidants in hypertrophied heart. In fact, cardiac hypertrophy is considered to be an adaptive process as it exhibits either normal or augmented cardiac function for maintaining cardiovascular homeostasis. However, exposure of a hypertrophied heart to elevated levels of circulating hormones due to pathological stimuli over a prolonged period results in cardiac dysfunction and development of heart failure involving a complex set of mechanisms. It has been demonstrated that different cardiovascular abnormalities such as functional hypoxia, metabolic derangements, uncoupling of mitochondrial electron transport, and inflammation produce oxidative stress in the hypertrophied failing hearts. In addition, oxidation of catecholamines by monoamine oxidase as well as NADPH oxidase activation by angiotensin II and endothelin promote the generation of oxidative stress during the prolonged period by these pathological stimuli. It is noteworthy that oxidative stress is known to activate metallomatrix proteases and degrade the extracellular matrix proteins for the induction of cardiac remodeling and heart dysfunction. Furthermore, oxidative stress has been shown to induce subcellular remodeling and Ca2+-handling abnormalities as well as loss of cardiomyocytes due to the development of apoptosis, necrosis, and fibrosis. These observations support the view that a low amount of oxyradical formation for a brief period may activate redox-sensitive mechanisms, which are associated with the development of cardiac hypertrophy. On the other hand, high levels of oxyradicals over a prolonged period may induce oxidative stress and cause Ca2+-handling defects as well as protease activation and thus play a critical role in the development of adverse cardiac remodeling and cardiac dysfunction as well as progression of heart failure.
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