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Determining the Likelihood of Variant Pathogenicity Using Amino Acid-level Signal-to-Noise Analysis of Genetic Variation
Published on: January 16, 2019
Inherited conduction system abnormalities--one group of diseases, many genes
Cordula M Wolf1, Charles I Berul
1Department of Cardiology, Children's Hospital, Boston Harvard Medical School, 300 Longwood Avenue, Boston, MA 02115, USA.
Insights
Molecular mechanisms underlying cardiac conduction system diseases are diverse, involving genetic mutations, developmental gene disruptions, and systemic disorders. Understanding these pathways is key to diagnosing and treating heart conduction abnormalities.
Area of Science:
- Cardiology
- Molecular Biology
- Genetics
Background:
- The cardiac conduction system is distinct from working myocardium.
- Conduction abnormalities stem from congenital defects, injury, ischemia, or inherited diseases.
- Idiopathic conduction system degeneration may have a hereditary basis.
Purpose of the Study:
- To review diverse molecular mechanisms of isolated and associated conduction system diseases.
- To highlight channelopathies, developmental gene roles, and systemic disorder links.
- To discuss emerging insights into cardiac conduction abnormalities.
Main Methods:
- Review of human genetic studies identifying gene mutations (e.g., SCN5A).
- Examination of the role of embryonic developmental genes (homeobox, T-box).
- Description of conduction system diseases linked to multisystem disorders and novel cardiomyopathies.
Main Results:
- Mutations in SCN5A cause tachyarrhythmias and progressive conduction disease.
- Developmental genes are crucial for conduction system formation and function.
- Systemic disorders like muscular dystrophies and glycogen storage cardiomyopathy impact conduction.
Conclusions:
- Understanding molecular and ionic mechanisms is vital for appreciating conduction abnormalities.
- Numerous gene mutations (transcription factors, ion channels, etc.) underlie these diseases.
- This review provides a molecular perspective on cardiac conduction system disorders.
Abstract:
The cardiac conduction system can be anatomically, developmentally, and molecularly distinguished from the working myocardium. Abnormalities in cardiac conduction can occur due to a variety of factors, including developmental and congenital defects, acquired injury or ischemia of portions of the conduction system, or less commonly due to inherited diseases that alter cardiac conduction system function. So called "idiopathic" conduction system degeneration may have familial clustering, and therefore is consistent with a hereditary basis. This "Molecular Perspectives" will highlight several diverse mechanisms of isolated conduction system disease as well as conduction system degeneration associated with other cardiac and non-cardiac disorders. The first part of this review focuses on channelopathies associated with conduction system disease. Human genetic studies have identified mutations in the sodium channel SCN5A gene causing tachyarrhythmia disorders, as well as progressive cardiac conduction system diseases, or overlapping syndromes. Next, the importance of embryonic developmental genes such as homeobox and T-box transcription factors are highlighted in conduction system development and function. Conduction system diseases associated with multisystem disorders, such as muscular and myotonic dystrophies, will be described. Last, a new glycogen storage cardiomyopathy associated with ventricular preexcitation and progressive conduction system degeneration will be reviewed. There are a myriad of mutations identified in genes encoding cardiac transcription factors, ion channels, gap junctions, energy metabolism regulators, lamins and other structural proteins. Understanding of the molecular and ionic mechanisms underlying cardiac conduction is essential for the appreciation of the pathogenesis of conduction abnormalities in structurally normal and altered hearts.
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