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Published on: May 23, 2016
Hypertrophic cardiomyopathy in MYBPC3 carriers in aging
Kalyani Ananthamohan1, Julian E Stelzer2, Sakthivel Sadayappan1
1Department of Internal Medicine, Division of Cardiovascular Health and Disease, University of Cincinnati, Cincinnati, OH 45267, USA.
Insights
Late-onset hypertrophic cardiomyopathy (HCM) linked to MYBPC3 gene mutations is worsened by aging. Understanding MYBPC3 gene regulation offers new treatment avenues for this inherited heart condition.
Area of Science:
- Cardiology
- Genetics
- Molecular Biology
Background:
- Hypertrophic cardiomyopathy (HCM) involves myocardial thickening, leading to heart failure and sudden death risk.
- Mutations in sarcomeric genes, especially MYBPC3, are primary causes of inherited HCM.
- Late-onset HCM associated with MYBPC3 mutations presents varied symptoms and significant health risks.
Purpose of the Study:
- To review pathogenic mechanisms of late-onset HCM focusing on MYBPC3 gene modulation.
- To assess the impact of aging on MYBPC3 levels and HCM pathogenesis.
- To explore personalized omics for future HCM treatment strategies.
Main Methods:
- Review of existing literature on MYBPC3 gene regulation in HCM.
- Analysis of high-throughput omics data identifying molecular events in cardiomyocytes with MYBPC3 variants.
- Assessment of transcriptional, post-transcriptional, and post-translational modifications of MYBPC3.
Main Results:
- MYBPC3 mutations contribute to late-onset HCM through mechanisms like nonsense-mediated decay and haploinsufficiency.
- Aging exacerbates HCM severity in MYBPC3 mutation carriers.
- Molecular disruptions in cardiomyocytes expressing MYBPC3 variants are identified.
Conclusions:
- Modulation of MYBPC3 is crucial in HCM pathogenesis, particularly in the elderly.
- Aging significantly influences MYBPC3 levels and HCM progression.
- Personalized omics approaches show promise for novel late-onset HCM therapies.
Abstract:
Hypertrophic cardiomyopathy (HCM) is characterized by abnormal thickening of the myocardium, leading to arrhythmias, heart failure, and elevated risk of sudden cardiac death, particularly among the young. This inherited disease is predominantly caused by mutations in sarcomeric genes, among which those in the cardiac myosin binding protein-C3 (MYBPC3) gene are major contributors. HCM associated with MYBPC3 mutations usually presents in the elderly and ranges from asymptomatic to symptomatic forms, affecting numerous cardiac functions and presenting significant health risks with a spectrum of clinical manifestations. Regulation of MYBPC3 expression involves various transcriptional and translational mechanisms, yet the destiny of mutant MYBPC3 mRNA and protein in late-onset HCM remains unclear. Pathogenesis related to MYBPC3 mutations includes nonsense-mediated decay, alternative splicing, and ubiquitin-proteasome system events, leading to allelic imbalance and haploinsufficiency. Aging further exacerbates the severity of HCM in carriers of MYBPC3 mutations. Advancements in high-throughput omics techniques have identified crucial molecular events and regulatory disruptions in cardiomyocytes expressing MYBPC3 variants. This review assesses the pathogenic mechanisms that promote late-onset HCM through the lens of transcriptional, post-transcriptional, and post-translational modulation of MYBPC3, underscoring its significance in HCM across carriers. The review also evaluates the influence of aging on these processes and MYBPC3 levels during HCM pathogenesis in the elderly. While pinpointing targets for novel medical interventions to conserve cardiac function remains challenging, the emergence of personalized omics offers promising avenues for future HCM treatments, particularly for late-onset cases.
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