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Updated: Oct 27, 2025

Isolation of Atrial Myocytes from Adult Mice
Published on: July 25, 2019
Coupling between cardiac cells-An important determinant of electrical impulse propagation and arrhythmogenesis
1Department of Pathology, Harvard Medical School, Boston, Massachusetts 02215, USA.
Insights
Cardiac arrhythmias, a major cause of sudden cardiac death, are driven by electrical propagation. This review details cardiac gap junctions
Area of Science:
- Cardiovascular Physiology
- Cell Biology
- Biophysics
Background:
- Cardiac arrhythmias are a primary cause of sudden cardiac death, linked to conditions like heart failure and ischemic heart disease.
- Cardiac electrical propagation, influenced by gap junctions, is central to arrhythmia initiation and maintenance.
- Gap junctions facilitate intercellular ion and molecule diffusion, crucial for coordinated heart function.
Purpose of the Study:
- To provide an updated review of cardiac gap junction channels.
- To elucidate the role of gap junctions in cardiac electrical impulse propagation.
- To highlight the interdisciplinary approach combining genetics, cell biology, and physics in cardiac electrophysiology.
Main Methods:
- Review of current literature on cardiac gap junctions and electrical propagation.
- Explanation of concepts like linear propagation and safety factor using cellular models.
- Discussion of electrical propagation in discontinuous cellular networks.
Main Results:
- Gap junctions are fundamental to cell-to-cell electrical coupling in the heart.
- The turnover of gap junction channels is a dynamic process involving trafficking and internalization.
- Non-canonical roles of gap junction proteins extend to mitochondrial function and cytoskeletal organization.
- Electrical propagation depends on cell coupling, ion channel function, and tissue structure.
Conclusions:
- Cardiac gap junctions are critical for normal electrical impulse propagation and preventing arrhythmias.
- Understanding gap junction dynamics and tissue structure is key to addressing cardiac arrhythmias.
- An integrated approach is essential for advancing modern cardiac electrophysiology research.
Abstract:
Cardiac arrhythmias are an important cause of sudden cardiac death-a devastating manifestation of many underlying causes, such as heart failure and ischemic heart disease leading to ventricular tachyarrhythmias and ventricular fibrillation, and atrial fibrillation causing cerebral embolism. Cardiac electrical propagation is a main factor in the initiation and maintenance of cardiac arrhythmias. In the heart, gap junctions are the basic unit at the cellular level that host intercellular low-resistance channels for the diffusion of ions and small regulatory molecules. The dual voltage clamp technique enabled the direct measurement of electrical conductance between cells and recording of single gap junction channel openings. The rapid turnover of gap junction channels at the intercalated disk implicates a highly dynamic process of trafficking and internalization of gap junction connexons. Recently, non-canonical roles of gap junction proteins have been discovered in mitochondria function, cytoskeletal organization, trafficking, and cardiac rescue. At the tissue level, we explain the concepts of linear propagation and safety factor based on the model of linear cellular structure. Working myocardium is adequately represented as a discontinuous cellular network characterized by cellular anisotropy and connective tissue heterogeneity. Electrical propagation in discontinuous cellular networks reflects an interplay of three main factors: cell-to-cell electrical coupling, flow of electrical charge through the ion channels, and the microscopic tissue structure. This review provides a state-of-the-art update of the cardiac gap junction channels and their role in cardiac electrical impulse propagation and highlights a combined approach of genetics, cell biology, and physics in modern cardiac electrophysiology.
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