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Ratiometric Biosensors that Measure Mitochondrial Redox State and ATP in Living Yeast Cells
Published on: July 22, 2013
Calorie restriction attenuates hypertrophy-induced redox imbalance and mitochondrial ATP-sensitive K+ channel
Cicera Edna Barbosa David1, Aline Maria Brito Lucas1, Maria Thalyne Silva Araújo1
1Faculdade de Medicina, Universidade Federal do Cariri, Barbalha, CE, Brazil.
Insights
Calorie restriction (CR) prevents cardiac hypertrophy in mice by reducing oxidative stress and maintaining antioxidant enzyme activity. This protective effect involves the activation of mitochondrial ATP-sensitive potassium channels (mitoKATP).
Area of Science:
- Cardiovascular Biology
- Metabolic Regulation
- Oxidative Stress Research
Background:
- Cardiac hypertrophy, a thickening of heart tissue, is linked to heart failure and oxidative stress.
- Calorie restriction (CR) is known to promote health and longevity.
- The role of oxidative stress and mitochondrial channels in hypertrophy requires further investigation.
Purpose of the Study:
- To determine if calorie restriction prevents isoproterenol-induced cardiac hypertrophy in mice.
- To investigate the impact of CR on reactive oxygen species (ROS) production and antioxidant enzyme activity.
- To explore the involvement of mitochondrial ATP-sensitive potassium channels (mitoKATP) in CR's protective effects against cardiac hypertrophy.
Main Methods:
- Mice underwent a 40% calorie restriction for 3 weeks.
- Cardiac hypertrophy was induced using isoproterenol injections.
- Measurements included heart weight, protein levels, hydrogen peroxide production, protein oxidation, antioxidant enzyme activity, and mitoKATP channel function.
Main Results:
- CR significantly reduced hypertrophic markers in isoproterenol-treated mice.
- CR decreased reactive oxygen species production and protein oxidation in cardiac tissue.
- CR maintained antioxidant enzyme activity and prevented repression of mitoKATP channel opening.
Conclusions:
- Calorie restriction ameliorates cardiac hypertrophy by improving redox balance.
- The protective mechanism of CR involves the activation of mitoKATP channels.
- CR offers a potential therapeutic strategy for preventing cardiac hypertrophy and associated heart failure.
Abstract:
Oxidative stress has been implicated in the pathogenesis of cardiac hypertrophy and associated heart failure. Cardiac tissue grows in response to pressure or volume overload, leading to wall thickening or chamber enlargement. If sustained, this condition will lead to a dysfunctional cardiac tissue and oxidative stress. Calorie restriction (CR) is a powerful intervention to improve health and delay aging. Here, we investigated whether calorie restriction in mice prevented isoproterenol-induced cardiac hypertrophy in vivo by avoiding reactive oxygen species (ROS) production and maintaining antioxidant enzymatic activity. Additionally, we investigated the involvement of mitochondrial ATP-sensitive K+ channels (mitoKATP) in cardiac hypertrophy. CR was induced by 40% reduction in daily calorie ingestion. After 3 weeks on CR or ad libitum (Control) feeding, Swiss mice were treated intraperitoneally with isoproterenol (30 mg/kg per day) for 8 days to induce hypertrophy. Isoproterenol-treated mice had elevated heart weight/tibia length ratios and cardiac protein levels. These gross hypertrophic markers were significantly reduced in CR mice. Cardiac tissue from isoproterenol-treated CR mice also produced less H2O2 and had lower protein sulfydryl oxidation. Additionally, calorie restriction blocked hypertrophic-induced antioxidant enzyme (catalase, superoxide dismutase and glutathione peroxidase) activity repression during cardiac hypertrophy. MitoKATP opening was repressed in isolated mitochondria from hypertrophic hearts, in a manner sensitive to calorie restriction. Finally, mitoKATP inhibition significantly blocked the protective effects of calorie restriction. Altogether, our results suggest that CR improves intracellular redox balance during cardiac hypertrophy and prevents this process in a mechanism involving mitoKATP activation.
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