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Metabolic Remodeling Induced by Exercise: Emerging Mechanisms for Myocardial Protection in Cardiovascular Disease
Tianwen Wei1, Chang Zhou1, Jieyun You2
1Department of Cardiology, Shanghai East Hospital, School of Medicine, Tongji University, Shanghai, 200120, PR China.
Insights
Exercise training improves heart function by regulating cardiomyocyte metabolism in cardiovascular diseases (CVDs). This approach may offer disease-specific benefits by targeting unique metabolic pathways altered in conditions like heart failure and hypertension.
Area of Science:
- Cardiology
- Metabolic research
- Exercise physiology
Background:
- Cardiovascular diseases (CVDs) involve significant cardiomyocyte metabolic disturbances, affecting lipid and glucose metabolism.
- Key regulatory systems like fatty acid transport and the AMPK/eNOS axis are dysfunctional in CVDs.
- Abnormalities in myocardial metabolism are central to the progression of various cardiovascular pathologies.
Purpose of the Study:
- To review how exercise training modulates myocardial metabolism in CVDs.
- To explore the mechanisms by which exercise impacts cardiac energy homeostasis and injury.
- To discuss the potential for disease-specific exercise interventions targeting metabolic pathways.
Main Methods:
- Literature review of studies on exercise, metabolism, and cardiovascular diseases.
- Analysis of molecular and cellular mechanisms of exercise's effects on the heart.
- Synthesis of evidence on exercise's impact on metabolic pathways like PGC-1α and PPAR-α.
Main Results:
- Exercise training enhances substrate utilization and activates key metabolic pathways (PGC-1α, PPAR-α).
- Improved myocardial energy homeostasis and reduced cardiac injury are observed with exercise.
- Distinct CVDs present unique metabolic profiles, suggesting tailored exercise approaches.
Conclusions:
- Exercise training is a potent modulator of cardiomyocyte metabolism, beneficial across various CVDs.
- Exercise interventions can potentially delay or reverse disease progression by optimizing cardiac metabolism.
- Disease-specific metabolic abnormalities in CVDs open avenues for targeted, individualized exercise therapies.
Abstract:
Cardiovascular diseases (CVDs), including coronary artery disease, heart failure, arrhythmias, hypertension, and cardiomyopathy, promote disease progression in part through profound disturbances in cardiomyocyte metabolism. These disorders are characterized by abnormal lipid and glucose metabolism and dysfunction of key metabolic regulatory systems, including fatty acid transport proteins and the AMPK/eNOS signaling axis. Exercise training regulates substrate selection and activates essential metabolic pathways, including PGC-1α and PPAR-α, thereby improving myocardial energy homeostasis and limiting cardiac injury. This review summarizes the mechanisms by which exercise modulates myocardial metabolism to delay or reverse disease progression across multiple forms of CVDs. Current evidence indicates that distinct cardiovascular pathologies exhibit unique metabolic abnormalities, suggesting that exercise interventions may exert disease-specific therapeutic effects by selectively targeting altered metabolic pathways.
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