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Updated: Jun 26, 2025

Microelectrode Array Recording of Sinoatrial Node Firing Rate to Identify Intrinsic Cardiac Pacemaking Defects in Mice
Published on: July 5, 2021
Pacemaker Channels and the Chronotropic Response in Health and Disease
Konstantin Hennis1, Chiara Piantoni1, Martin Biel2,3
1Institute of Cardiovascular Physiology and Pathophysiology, Biomedical Center Munich, Walter Brendel Centre of Experimental Medicine, Faculty of Medicine (K.H., C.P., C.W.-S.), Ludwig-Maximilians-Universität München, Germany.
Insights
Autonomic nervous system control of heart rate is crucial for cardiovascular health. Recent studies reveal hyperpolarization-activated cyclic nucleotide-gated cation channels (HCN4) stabilize heart rate by balancing pacemaker cell activity, protecting against arrhythmias.
Area of Science:
- Cardiovascular Physiology
- Autonomic Nervous System Regulation
- Cardiac Electrophysiology
Background:
- Precise heart rate control by the autonomic nervous system is vital for cardiovascular health, yet mechanisms remain unclear.
- Dysregulation contributes to cardiovascular diseases like heart failure and arrhythmias.
- Heart rate changes are mediated by sinoatrial node pacemaker cell activity.
Purpose of the Study:
- To review the latest findings on sinoatrial node automaticity.
- To discuss the role of HCN pacemaker channels in the chronotropic response.
- To explore the physiological and pathophysiological significance of HCN channels.
Main Methods:
- Review of recent studies on sinoatrial node automaticity.
- Analysis of cyclic adenosine monophosphate-dependent regulation of HCN4.
- Examination of the balance between firing and nonfiring pacemaker cells.
Main Results:
- Cyclic adenosine monophosphate-dependent regulation of HCN4 stabilizes heart rate during autonomic nervous system-induced transitions.
- HCN channels balance firing and nonfiring pacemaker cells in the sinoatrial node.
- This regulation may protect against sinoatrial node dysfunction and arrhythmias.
Conclusions:
- HCN pacemaker channels play a critical role in heart rate regulation and the chronotropic effect.
- HCN4 channel regulation is key to maintaining stable heart rate, especially during rapid changes.
- These channels offer potential protective mechanisms against cardiac arrhythmias.
Abstract:
Loss or dysregulation of the normally precise control of heart rate via the autonomic nervous system plays a critical role during the development and progression of cardiovascular disease-including ischemic heart disease, heart failure, and arrhythmias. While the clinical significance of regulating changes in heart rate, known as the chronotropic effect, is undeniable, the mechanisms controlling these changes remain not fully understood. Heart rate acceleration and deceleration are mediated by increasing or decreasing the spontaneous firing rate of pacemaker cells in the sinoatrial node. During the transition from rest to activity, sympathetic neurons stimulate these cells by activating β-adrenergic receptors and increasing intracellular cyclic adenosine monophosphate. The same signal transduction pathway is targeted by positive chronotropic drugs such as norepinephrine and dobutamine, which are used in the treatment of cardiogenic shock and severe heart failure. The cyclic adenosine monophosphate-sensitive hyperpolarization-activated current (If) in pacemaker cells is passed by hyperpolarization-activated cyclic nucleotide-gated cation channels and is critical for generating the autonomous heartbeat. In addition, this current has been suggested to play a central role in the chronotropic effect. Recent studies demonstrate that cyclic adenosine monophosphate-dependent regulation of HCN4 (hyperpolarization-activated cyclic nucleotide-gated cation channel isoform 4) acts to stabilize the heart rate, particularly during rapid rate transitions induced by the autonomic nervous system. The mechanism is based on creating a balance between firing and recently discovered nonfiring pacemaker cells in the sinoatrial node. In this way, hyperpolarization-activated cyclic nucleotide-gated cation channels may protect the heart from sinoatrial node dysfunction, secondary arrhythmia of the atria, and potentially fatal tachyarrhythmia of the ventricles. Here, we review the latest findings on sinoatrial node automaticity and discuss the physiological and pathophysiological role of HCN pacemaker channels in the chronotropic response and beyond.
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