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Investigating the Pathogenesis of MYH7 Mutation Gly823Glu in Familial Hypertrophic Cardiomyopathy using a Mouse Model
Published on: August 8, 2022
Hypertrophic Cardiomyopathy: A Vicious Cycle Triggered by Sarcomere Mutations and Secondary Disease Hits
Paul J M Wijnker1, Vasco Sequeira1, Diederik W D Kuster1
11 Department of Physiology, Amsterdam Cardiovascular Sciences, VU University Medical Center, Amsterdam, The Netherlands.
Insights
Hypertrophic cardiomyopathy (HCM) involves genetic defects causing heart dysfunction. This study proposes a cycle where energy depletion and oxidative stress worsen HCM, suggesting metabolism and ROS balance as therapeutic targets.
Area of Science:
- Cardiovascular Genetics
- Mitochondrial Biology
- Oxidative Stress Research
Background:
- Hypertrophic cardiomyopathy (HCM) is a genetic heart disease affecting adults, caused by sarcomere protein mutations.
- The progression from genetic defect to cardiomyopathy involves complex secondary disease mechanisms.
- Increased reactive oxygen species (ROS) and oxidative stress are hallmarks of HCM.
Purpose of the Study:
- To elucidate the vicious cycle of mutation-induced disease progression in HCM.
- To explore the role of cellular metabolism, mitochondrial function, and ROS in HCM pathogenesis.
- To discuss current and future therapeutic strategies for HCM.
Main Methods:
- Review of laboratory-based studies and clinical evidence in HCM patients and animal models.
- Analysis of the proposed mutation-induced disease cycle involving energy depletion and metabolic alterations.
- Examination of the link between mutant sarcomeric proteins, cardiac ROS, and disease progression.
Main Results:
- A proposed vicious cycle where mutation-induced energy depletion alters metabolism, increasing mitochondrial work and ROS production.
- Evidence of excessive ROS and oxidative stress markers in HCM hearts and serum.
- Mutant sarcomeric proteins may drive cardiac ROS via impaired efficiency, mitochondrial dysfunction, and microvascular issues.
Conclusions:
- Restoring cellular metabolism, improving mitochondrial function, and balancing ROS are promising therapeutic avenues for HCM.
- Understanding the interplay between genetic mutations and secondary factors is crucial for effective HCM treatment.
- Targeting these pathways may offer potential to prevent or reverse HCM progression.
Abstract:
Hypertrophic cardiomyopathy (HCM) is a cardiac genetic disease characterized by left ventricular hypertrophy, diastolic dysfunction, and myocardial disarray. Disease onset occurs between 20 and 50 years of age, thus affecting patients in the prime of their life. HCM is caused by mutations in sarcomere proteins, the contractile building blocks of the heart. Despite increased knowledge of causal mutations, the exact path from genetic defect leading to cardiomyopathy is complex and involves additional disease hits. Laboratory-based studies indicate that HCM development not only depends on the primary sarcomere impairment caused by the mutation but also on secondary disease-related alterations in the heart. Here we propose a vicious mutation-induced disease cycle, in which a mutation-induced energy depletion alters cellular metabolism with increased mitochondrial work, which triggers secondary disease modifiers that will worsen disease and ultimately lead to end-stage HCM. Evidence shows excessive cellular reactive oxygen species (ROS) in HCM patients and HCM animal models. Oxidative stress markers are increased in the heart (oxidized proteins, DNA, and lipids) and serum of HCM patients. In addition, increased mitochondrial ROS production and changes in endogenous antioxidants are reported in HCM. Mutant sarcomeric protein may drive excessive levels of cardiac ROS via changes in cardiac efficiency and metabolism, mitochondrial activation and/or dysfunction, impaired protein quality control, and microvascular dysfunction. Interventions restoring metabolism, mitochondrial function, and improved ROS balance may be promising therapeutic approaches. We discuss the effects of current HCM pharmacological therapies and potential future therapies to prevent and reverse HCM. Antioxid. Redox Signal. 31, 318-358.
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