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Updated: Aug 9, 2025

Microelectrode Array Recording of Sinoatrial Node Firing Rate to Identify Intrinsic Cardiac Pacemaking Defects in Mice
Published on: July 5, 2021
Characterization of sinoatrial automaticity in Microcebus murinus to study the effect of aging on cardiac activity
Mattia L DiFrancesco1,2,3, Manon Marrot1,2, Eleonora Torre1,2
1Institut de Génomique Fonctionnelle, Université de Montpellier, CNRS, INSERM, Montpellier, France.
Abstract:
Microcebus murinus, or gray mouse lemur (GML), is one of the smallest primates known, with a size in between mice and rats. The small size, genetic proximity to humans and prolonged senescence, make this lemur an emerging model for neurodegenerative diseases. For the same reasons, it could help understand how aging affects cardiac activity. Here, we provide the first characterization of sinoatrial (SAN) pacemaker activity and of the effect of aging on GML heart rate (HR). According to GML size, its heartbeat and intrinsic pacemaker frequencies lie in between those of mice and rats. To sustain this fast automaticity the GML SAN expresses funny and Ca2+ currents (If, ICa,L and ICa,T) at densities similar to that of small rodents. SAN automaticity was also responsive to β-adrenergic and cholinergic pharmacological stimulation, showing a consequent shift in the localization of the origin of pacemaker activity. We found that aging causes decrease of basal HR and atrial remodeling in GML. We also estimated that, over 12 years of a lifetime, GML generates about 3 billion heartbeats, thus, as many as humans and three times more than rodents of equivalent size. In addition, we estimated that the high number of heartbeats per lifetime is a characteristic that distinguishes primates from rodents or other eutherian mammals, independently from body size. Thus, cardiac endurance could contribute to the exceptional longevity of GML and other primates, suggesting that GML's heart sustains a workload comparable to that of humans in a lifetime. In conclusion, despite the fast HR, GML replicates some of the cardiac deficiencies reported in old people, providing a suitable model to study heart rhythm impairment in aging. Moreover, we estimated that, along with humans and other primates, GML presents a remarkable cardiac longevity, enabling longer life span than other mammals of equivalent size.
Insights
The gray mouse lemur (GML) exhibits unique cardiac activity, with aging impacting its heart rate and atrial structure. This primate
Area of Science:
- Cardiology
- Primate Physiology
- Aging Research
Background:
- The gray mouse lemur (GML) is a small primate model for neurodegenerative diseases.
- Its size and genetic proximity to humans make it relevant for studying aging effects.
- Understanding GML cardiac activity provides insights into primate aging.
Purpose of the Study:
- Characterize sinoatrial node (SAN) pacemaker activity in GML.
- Investigate the impact of aging on GML heart rate (HR) and cardiac function.
- Establish GML as a model for cardiac aging and longevity.
Main Methods:
- Electrophysiological characterization of SAN pacemaker activity.
- Pharmacological stimulation (β-adrenergic, cholinergic) to assess autonomic control.
- Histological analysis of atrial remodeling in aged GML.
- Estimation of lifetime heartbeats and cardiac workload.
Main Results:
- GML exhibits intrinsic pacemaker frequencies between mice and rats.
- SAN expresses key ion currents (If, ICa,L, ICa,T) supporting fast automaticity.
- Aging decreases basal HR and induces atrial remodeling in GML.
- GML generates ~3 billion heartbeats in a lifetime, comparable to humans.
Conclusions:
- GML's cardiac system shows similarities to human aging, including rhythm impairments.
- High lifetime heartbeats contribute to GML's cardiac longevity and lifespan.
- GML serves as a valuable model for studying cardiac aging and longevity in primates.

