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Published on: June 14, 2016
Essential roles of the dystrophin-glycoprotein complex in different cardiac pathologies
Isela C Valera1, Amanda L Wacker1, Hyun Seok Hwang1
1Department of Nutrition, Food and Exercise Sciences, Florida State University, Tallahassee, FL, USA.
Insights
The dystrophin-glycoprotein complex (DGC) remodels during heart disease, impacting muscle membrane stability. Understanding DGC remodeling offers therapeutic potential for various cardiac conditions beyond muscular dystrophies.
Area of Science:
- Cardiovascular Biology
- Muscle Physiology
- Molecular Medicine
Background:
- The dystrophin-glycoprotein complex (DGC) is crucial for sarcolemma stability and mechanical force transmission.
- Genetic defects in DGC proteins cause muscular dystrophies, highlighting its role in muscle health.
- The DGC is increasingly recognized for its dynamic remodeling in response to cardiac stress.
Purpose of the Study:
- To review the dynamic remodeling of the DGC in cardiac disease.
- To explore DGC remodeling as a common factor across various heart conditions.
- To discuss the therapeutic potential of targeting the DGC for heart disorders.
Main Methods:
- Literature review of studies on DGC function and remodeling in cardiac disease.
- Analysis of DGC alterations in response to genetic causes and pathogenic insults.
- Synthesis of current knowledge on DGC's role in heart health and disease.
Main Results:
- DGC remodeling is a common feature in diseases affecting heart function.
- Pathogenic processes, including ischemia-reperfusion and myocarditis, alter DGC protein abundance.
- DGC links the cytoskeleton to the extracellular matrix, essential for mechanical stability.
Conclusions:
- DGC remodeling is a significant factor in diverse heart diseases.
- Targeting the DGC may offer novel therapeutic strategies for cardiac conditions.
- Further research into DGC's role can benefit clinical management of heart disease.
Abstract:
The dystrophin-glycoprotein complex (DGC), situated at the sarcolemma dynamically remodels during cardiac disease. This review examines DGC remodeling as a common denominator in diseases affecting heart function and health. Dystrophin and the DGC serve as broad cytoskeletal integrators that are critical for maintaining stability of muscle membranes. The presence of pathogenic variants in genes encoding proteins of the DGC can cause absence of the protein and/or alterations in other complex members leading to muscular dystrophies. Targeted studies have allowed the individual functions of affected proteins to be defined. The DGC has demonstrated its dynamic function, remodeling under a number of conditions that stress the heart. Beyond genetic causes, pathogenic processes also impinge on the DGC, causing alterations in the abundance of dystrophin and associated proteins during cardiac insult such as ischemia-reperfusion injury, mechanical unloading, and myocarditis. When considering new therapeutic strategies, it is important to assess DGC remodeling as a common factor in various heart diseases. The DGC connects the internal F-actin-based cytoskeleton to laminin-211 of the extracellular space, playing an important role in the transmission of mechanical force to the extracellular matrix. The essential functions of dystrophin and the DGC have been long recognized. DGC based therapeutic approaches have been primarily focused on muscular dystrophies, however it may be a beneficial target in a number of disorders that affect the heart. This review provides an account of what we now know, and discusses how this knowledge can benefit persistent health conditions in the clinic.
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