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Updated: Oct 29, 2025

Whole-Mount Immunofluorescence Staining, Confocal Imaging and 3D Reconstruction of the Sinoatrial and Atrioventricular Node in the Mouse
Published on: December 22, 2020
The Organization of the Sinoatrial Node Microvasculature Varies Regionally to Match Local Myocyte Excitability
Nathan Grainger1, Laura Guarina1, Robert H Cudmore1
1Department of Physiology and Membrane Biology, University of California, Davis, Davis, CA 95618, USA.
Insights
The heart
Area of Science:
- Cardiovascular Physiology
- Cardiac Electrophysiology
- Microvascular Biology
Background:
- The cardiac cycle relies on the sinoatrial node for rhythm generation, demanding significant metabolic support from coronary vasculature.
- While ventricular circulation is well-studied, the sinoatrial node's microvasculature and its relation to pacemaking are unclear.
Purpose of the Study:
- To investigate regional variations in sinoatrial node microvasculature.
- To determine if these variations correlate with local myocyte electrical activity and pacemaking properties.
Main Methods:
- Quantitative analysis of vessel densities in superior and inferior regions of the sinoatrial node.
- Electrophysiological recordings of sinoatrial node myocytes from different regions.
- Correlation analysis between vascularization and myocyte firing rates.
Main Results:
- Higher vessel densities and closer proximity of myocytes to vessels were observed in the superior sinoatrial node compared to the inferior region.
- Sinoatrial node myocytes in the superior region exhibited higher intrinsic action potential firing rates.
- Regional differences in vascularization align with regional differences in myocyte electrical activity.
Conclusions:
- Sinoatrial node microvascular organization varies regionally, supporting local myocyte metabolic and electrical demands.
- The superior sinoatrial node's high vascularization supports high-frequency pacemaking, while the inferior region's lower vascularization may support periodicity via stochastic resonance.
Abstract:
The cardiac cycle starts when an action potential is produced by pacemaking cells in the sinoatrial node. This cycle is repeated approximately 100 000 times in humans and 1 million times in mice per day, imposing a monumental metabolic demand on the heart, requiring efficient blood supply via the coronary vasculature to maintain cardiac function. Although the ventricular coronary circulation has been extensively studied, the relationship between vascularization and cellular pacemaking modalities in the sinoatrial node is poorly understood. Here, we tested the hypothesis that the organization of the sinoatrial node microvasculature varies regionally, reflecting local myocyte firing properties. We show that vessel densities are higher in the superior versus inferior sinoatrial node. Accordingly, sinoatrial node myocytes are closer to vessels in the superior versus inferior regions. Superior and inferior sinoatrial node myocytes produce stochastic subthreshold voltage fluctuations and action potentials. However, the intrinsic action potential firing rate of sinoatrial node myocytes is higher in the superior versus inferior node. Our data support a model in which the microvascular densities vary regionally within the sinoatrial node to match the electrical and Ca2+ dynamics of nearby myocytes, effectively determining the dominant pacemaking site within the node. In this model, the high vascular density in the superior sinoatrial node places myocytes with metabolically demanding, high-frequency action potentials near vessels. The lower vascularization and electrical activity of inferior sinoatrial node myocytes could limit these cells to function to support sinoatrial node periodicity with sporadic voltage fluctuations via a stochastic resonance mechanism.
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09:20Microelectrode Array Recording of Sinoatrial Node Firing Rate to Identify Intrinsic Cardiac Pacemaking Defects in Mice
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09:32Methods for the Isolation, Culture, and Functional Characterization of Sinoatrial Node Myocytes from Adult Mice
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