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Viral Transgene Expression in Rodent Hearts and the Assessment of Cardiac Arrhythmia Risk
Published on: July 27, 2022
TRANSCRIPTIONAL REGULATION OF THE CARDIAC CONDUCTION SYSTEM
1NEW YORK, NEW YORK.
Insights
Researchers identified novel genes crucial for the cardiac conduction system (VCS) and its function. Understanding these molecular determinants aids in developing therapies for heart rhythm disorders and cardiovascular diseases.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Developmental Biology
Background:
- The cardiac conduction system (VCS) is vital for coordinated heartbeats.
- Dysfunction of the VCS causes significant cardiovascular disease, including arrhythmias and heart failure.
Purpose of the Study:
- To elucidate molecular determinants of VCS development, function, and disease.
- To identify novel genes regulating VCS physiology.
Main Methods:
- Stem cell models
- Genetically encoded VCS reporter mice
- Comparative transcriptional profiling
- Functional assays
Main Results:
- Discovered novel VCS-enriched genes, including transcription factors, receptors, and signaling molecules.
- Identified key regulators of VCS physiology and development.
Conclusions:
- Novel genes play critical roles in cardiac conduction system function.
- Discoveries provide a foundation for therapeutic strategies targeting cardiac rhythm disorders.
Abstract:
The cardiac conduction system (VCS) is essential for normal myocardial excitation and contraction. Heritable and acquired syndromes perturbing conduction system formation or function are responsible for a substantial burden of cardiovascular disease, including heart block, triggered and reentrant arrhythmias, sudden cardiac death, myocardial dyssynchrony, and progression of heart failure. Our laboratory has employed stem cell models, genetically encoded conduction system reporter mice, comparative transcriptional profiling, and a battery of functional assays to elucidate the molecular determinants of conduction system development, physiology, and disease pathogenesis. Through these strategies, we have uncovered a diversity of novel conduction system-enriched genes, including transcription factors, receptors, and signaling molecules that modulate conduction system physiology. Our long-term goals are to leverage these discoveries for therapeutic impact and to diminish the burden of diseases resulting from abnormal cardiac rhythmicity.
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