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Updated: Oct 13, 2025

Isolation, Culture, and Functional Characterization of Adult Mouse Cardiomyoctyes
Published on: September 24, 2013
Desmosomes: emerging pathways and non-canonical functions in cardiac arrhythmias and disease
Jing Zhang1, Yan Liang1, William H Bradford1
1Department of Medicine, University of California San Diego, 9500 Gilman Drive, La Jolla, CA 92093 USA.
Insights
Desmosome protein defects, particularly CSN6 loss, can cause arrhythmogenic right ventricular cardiomyopathy (ARVC) by disrupting cardiac cell adhesion and promoting degradation. This highlights protein degradation pathways as key drivers of ARVC pathogenesis.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Cell Adhesion Mechanisms
Background:
- Desmosomes are vital for cardiomyocyte structure and function.
- Mutations in desmosomal genes are linked to arrhythmogenic right ventricular cardiomyopathy (ARVC).
- The exact molecular mechanisms driving ARVC pathogenesis remain incompletely understood.
Purpose of the Study:
- To investigate the role of protein degradation in ARVC.
- To explore the function of CSN6 as a cardiac desmosomal protein.
- To elucidate diverse pathogenic pathways contributing to ARVC.
Main Methods:
- Analysis of desmosomal protein degradation pathways.
- Investigating the role of CSN6 in cardiomyocyte desmosome stability.
- Examining the impact of ARVC-related mutations on protein degradation.
- Reviewing studies on electrical remodeling and inflammation in ARVC.
Main Results:
- CSN6 acts as a cardiac desmosomal protein that restricts desmosome degradation.
- Defects in protein degradation can initiate structural remodeling in ARVC.
- ARVC mutations may increase susceptibility to calpain-mediated degradation.
- Desmosomal mutations can affect arrhythmogenic pathways independently of structural changes.
- Inflammation and autoimmune processes are implicated in ARVC pathogenesis.
Conclusions:
- Protein degradation pathways, exemplified by CSN6, are critical in preventing ARVC.
- Distinct molecular mechanisms, including electrical dysfunction and inflammation, contribute to ARVC.
- Further research into these pathways is essential for understanding ARVC heterogeneity.
Abstract:
Desmosomes are critical adhesion structures in cardiomyocytes, with mutation/loss linked to the heritable cardiac disease, arrhythmogenic right ventricular cardiomyopathy (ARVC). Early studies revealed the ability of desmosomal protein loss to trigger ARVC disease features including structural remodeling, arrhythmias, and inflammation; however, the precise mechanisms contributing to diverse disease presentations are not fully understood. Recent mechanistic studies demonstrated the protein degradation component CSN6 is a resident cardiac desmosomal protein which selectively restricts cardiomyocyte desmosomal degradation and disease. This suggests defects in protein degradation can trigger the structural remodeling underlying ARVC. Additionally, a subset of ARVC-related mutations show enhanced vulnerability to calpain-mediated degradation, further supporting the relevance of these mechanisms in disease. Desmosomal gene mutations/loss has been shown to impact arrhythmogenic pathways in the absence of structural disease within ARVC patients and model systems. Studies have shown the involvement of connexins, calcium handling machinery, and sodium channels as early drivers of arrhythmias, suggesting these may be distinct pathways regulating electrical function from the desmosome. Emerging evidence has suggested inflammation may be an early mechanism in disease pathogenesis, as clinical reports have shown an overlap between myocarditis and ARVC. Recent studies focus on the association between desmosomal mutations/loss and inflammatory processes including autoantibodies and signaling pathways as a way to understand the involvement of inflammation in ARVC pathogenesis. A specific focus will be to dissect ongoing fields of investigation to highlight diverse pathogenic pathways associated with desmosomal mutations/loss.
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