Related Experiment Video
Updated: Feb 19, 2026

Isolation and Culture of Resident Cardiac Macrophages from the Murine Sinoatrial and Atrioventricular Node
Published on: May 7, 2021
Cardiac resident macrophages: the emerging role in arrhythmogenesis
Jiaqian Zhao1,2, Jun Liu1, Ying Zou1
1Key Laboratory of Medical Electrophysiology of the Ministry of Education Medical Electrophysiological Key Laboratory of Sichuan Province, Institute Southwest Medical University, of Cardiovascular Research, Sichuan, China.
Insights
Cardiac resident macrophages (CRMs) directly modulate heart electrical activity, contributing to arrhythmias. Understanding CRMs
Area of Science:
- Cardiovascular Science
- Immunology
- Electrophysiology
Background:
- Arrhythmia is a common complication of cardiovascular diseases, often linked to cardiomyocyte dysfunction.
- Non-cardiomyocytes, including immune cells, also contribute to arrhythmogenesis through inflammation and cellular transitions.
- Cardiac tissue-resident macrophages (CRMs) possess unique properties distinct from bone marrow-derived macrophages.
Purpose of the Study:
- To elucidate the electrophysiological properties of CRMs.
- To delineate the specific mechanisms by which CRMs contribute to cardiac arrhythmia.
- To offer new perspectives for anti-arrhythmic therapeutic strategies targeting CRMs.
Main Methods:
- Utilized advanced techniques including patch-clamp electrophysiology.
- Employed high-throughput sequencing and proteomic analyses.
- Conducted studies in mammalian models to investigate CRM-cardiomyocyte interactions.
Main Results:
- CRMs exhibit distinct functional and transcriptomic profiles compared to bone marrow-derived macrophages.
- CRMs directly modulate cardiac electrophysiology through ion channels and gap junctions.
- These CRMs play a unique role in cardiac homeostasis and arrhythmogenesis.
Conclusions:
- CRMs are key players in cardiac electrophysiology and arrhythmia development.
- CRMs offer novel therapeutic targets for managing cardiac arrhythmias.
- Further research into CRMs can advance anti-arrhythmic strategies.
Abstract:
Arrhythmia is a prevalent complication associated with various cardiovascular diseases. The onset of cardiac disease or injury can impair the normal function of cardiomyocytes, thereby precipitating arrhythmic events. Moreover, non-cardiomyocytes, including immune cells, may also play a contributory role in arrhythmogenesis. For instance, processes such as the infiltration of inflammatory cells that secrete pro-inflammatory mediators, fibroblast-to-myofibroblast transformation, and endothelial-to-mesenchymal transition have all been implicated in this process. Recent investigations have identified a distinct subset of resident macrophages within cardiac tissue that exhibit functional properties differing from those of bone marrow-derived macrophages. Cardiac tissue-resident macrophages (CRMs) are distinguished from bone marrow-derived macrophages by their developmental origin, transcriptomic profile, and functional traits. Beyond their canonical immune functions shared with bone marrow-derived macrophages, CRMs uniquely contribute to cardiac homeostasis by exerting direct electrophysiological modulation via ion channels and gap junctions. This constitutes a distinct mechanism underlying their role in arrhythmogenesis. Advanced methodologies, such as patch-clamp electrophysiology, high-throughput sequencing, and proteomic analyses in mammalian models, have revealed the complex electrophysiological interactions between CRMs and cardiomyocytes. While both CRMs and bone marrow-derived macrophages play roles in arrhythmia initiation and progression, existing reviews have primarily focused on bone marrow-derived macrophages. This review seeks to clarify the electrophysiological properties of CRMs and to delineate the specific mechanisms through which these cells contribute to arrhythmogenesis, thereby providing novel perspectives for the development of anti-arrhythmic therapeutic strategies.
Related Concept Videos
Mechanism of Cardiac Arrhythmias
Myocarditis I: Introduction

