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Updated: May 4, 2026

High-resolution Optical Mapping of the Mouse Sino-atrial Node
Published on: December 2, 2016
Three-dimensional reconstruction of the rabbit atrioventricular conduction axis by combining histological, desmin,
Yu-Shien Ko1, Hung-I Yeh, Yu-Lin Ko
1First Cardiovascular Division, Chang Gung Memorial Hospital, Taipei, Taiwan, Republic of China. c12037@adm.cgmh.org.tw
Insights
This study reveals the 3D structure of the rabbit atrioventricular conduction axis, detailing cellular connections and connexin protein expression patterns crucial for understanding cardiac rhythm.
Area of Science:
- Cardiovascular Physiology
- Cardiac Electrophysiology
- Molecular Cardiology
Background:
- The precise 3D structure and molecular composition of the atrioventricular (AV) conduction axis remain incompletely understood.
- This knowledge gap hinders mechanistic insights into cardiac rhythm disorders.
Purpose of the Study:
- To reconstruct a detailed 3D model of the rabbit AV conduction axis.
- To elucidate cellular and molecular architecture, focusing on gap-junctional proteins.
Main Methods:
- Histological and immunofluorescence staining on serial sections of rabbit hearts.
- 3D reconstruction and spatial analysis of the AV conduction axis.
Main Results:
- A 3D model revealed two distinct compartments within the AV conduction axis based on connexin expression.
- Connexin45 predominates in the compact node and transitional cells, while connexin43 and connexin45 co-expression is found in the His bundle and lower nodal regions.
- The transitional zone exhibits complex spatial features, including a bridging bilayer structure and asymmetrical continuity.
Conclusions:
- A distinct anatomical border between transitional and atrial cells was identified.
- Connections between transitional cells, lower nodal cells, and posterior nodal extension were established.
- Distinct connexin expression patterns provide a structural basis for understanding nodal function and cardiac rhythm.
Background:
The 3D structure of the atrioventricular conduction axis incorporating detailed cellular and molecular composition, especially that relating to gap-junctional proteins, is still unclear, impeding mechanistic understanding of cardiac rhythmic disorders.
Methods And Results:
A 3D model of the rabbit atrioventricular conduction axis was reconstructed by combining histological and immunofluorescence staining on serial sections. The exact cellular boundaries, especially those between transitional cells and atrial myocardium, were demarcated by a dense and irregular desmin-labeling pattern in conductive myocardium. The model demonstrates that the atrioventricular conduction axis is segregated into 2 connecting compartments, 1 predominantly expressing connexin45 (compact node and transitional cells) and the other predominantly coexpressing connexin43 and connexin45 (His bundle, lower nodal cells, and posterior nodal extension). The transitional zone shows unique features of spatial complexity, including a bridging bilayer structure (a deep transitional zone connecting with a superficial atrial-transitional overlay) and asymmetrical continuity (wider atrial-transitional interfaces and shorter atrial-axial distances in the hisian portion than in the ostial portion). In the latter compartment, the His bundle, lower nodal cells, and posterior nodal extension form a continual axis and longitudinal transitional-axial interface.
Conclusions:
Key findings of the present study are the demonstration of a distinct anatomical border between transitional and atrial cells, connection between transitional cells and both lower nodal cells and posterior nodal extension, and distinctive connexin expression patterns in different compartments of the rabbit atrioventricular conduction axis. These features, synthesized in a novel 3D model, provide a structural framework for the interpretation of nodal function.
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