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Preclinical Cardiac Electrophysiology Assessment by Dual Voltage and Calcium Optical Mapping of Human Organotypic Cardiac Slices
Published on: June 16, 2020
Cardiac Conduction in Physiology and Disease - Gap Junction Biology, Immune Modulation, and Computational
Katsuhito Fujiu1,2,3
1Department of Cardiovascular Medicine, Graduate School of Medicine, The University of Tokyo.
Insights
Cardiac conduction, influenced by gap junctions and immune cells, is crucial for heart rhythm. Macrophages regulate connexin 43 (Cx43) for stable conduction, preventing arrhythmias and sudden death.
Area of Science:
- Cardiovascular Physiology
- Cardiac Electrophysiology
- Immunology
Background:
- Arrhythmias are traditionally linked to automaticity, triggered activity, and re-entry.
- Emerging evidence highlights conduction abnormalities as a substrate integrating structural, electrical, and immune signals.
- Connexin 43 (Cx43) is vital for ventricular conduction, with its remodeling leading to arrhythmias.
Purpose of the Study:
- To review multiscale mechanisms of cardiac impulse propagation, focusing on gap junction coupling.
- To elucidate the role of cardiac macrophages in maintaining ventricular conduction via Cx43.
- To discuss conduction abnormalities in human disease and insights from modeling.
Main Methods:
- Review of existing literature on cardiac conduction and connexin 43.
- Emphasis on gap junction-mediated coupling and Cx43 phosphorylation.
- Integration of findings from computational modeling and electrocardiography.
Main Results:
- Cardiac resident macrophages promote Cx43 phosphorylation via EGFR signaling, preserving conduction.
- Loss of this pathway leads to Cx43 disorganization, heart block, and sudden death.
- Conduction is a dynamic, regulated property influenced by immune-electrical interactions.
Conclusions:
- Cardiac conduction is a regulated process involving an immune-electrical interface.
- Targeting gap junction and immune pathways offers potential for precision cardiology.
- Understanding Cx43 regulation by macrophages is key to preventing conduction disorders.
Abstract:
Cardiac conduction is a central determinant of normal rhythm and arrhythmia susceptibility. Although arrhythmias have traditionally been attributed to abnormal automaticity, triggered activity, and re-entry, emerging evidence indicates that conduction abnormalities integrate structural, electrical, and immune-derived signals into a common arrhythmogenic substrate. This review summarizes multiscale mechanisms of impulse propagation, with an emphasis on gap junction-mediated coupling. Connexin 43 (Cx43), the principal ventricular connexin, maintains intercellular current flow through phosphorylation-dependent localization at intercalated discs; its remodeling leads to conduction slowing, heterogeneous propagation, and reentrant vulnerability. Recent studies have revealed that cardiac resident macrophages preserve ventricular conduction by promoting Cx43 phosphorylation via amphiregulin-epidermal growth factor receptor signaling. Loss of this macrophage-derived pathway causes Cx43 disorganization, atrioventricular block, ventricular fibrillation, and sudden death during cardiac stress, establishing an immune-electrical interface essential for conduction stability. This review further highlights conduction abnormalities in human disease, differences between mice and humans, and insights derived from electrocardiography and advanced computational modeling. Simulations linking molecular alterations to organ-level activation patterns provide a mechanistic bridge between cellular coupling, Purkinje network integrity, fibrosis distribution, and clinical electrophysiology. Together, these findings position conduction as a dynamic, regulated property of the ventricular myocardium and suggest that targeting gap junction and immune pathways may enable future conduction-based precision cardiology.
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