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CHD4 Interacts With TBX5 to Maintain the Gene Regulatory Network of Postnatal Atrial Cardiomyocytes
Insights
The transcription factor TBX5 recruits CHD4 to regulate gene expression in atrial cardiomyocytes (aCMs), maintaining normal heart rhythm. Disruption of this TBX5-CHD4 interaction increases atrial fibrillation vulnerability.
Area of Science:
- Cardiology
- Molecular Biology
- Genetics
Background:
- Atrial fibrillation (AF) is a common arrhythmia linked to impaired gene regulation in atrial cardiomyocytes (aCMs).
- The transcription factor TBX5 is crucial for maintaining aCM identity and normal atrial rhythm.
Purpose of the Study:
- To investigate how TBX5 regulates chromatin organization and gene expression in aCMs.
- To elucidate the role of CHD4 in TBX5-mediated gene regulation and its impact on cardiac function.
Main Methods:
- Single-nucleus RNA sequencing (snRNA-seq) and single-nucleus ATAC sequencing (snATAC-seq) were used on CHD4 knockout and control aCMs.
- Genomic regions of TBX5-recruited CHD4 (TBX5-enhanced CHD4 sites) were identified.
Main Results:
- TBX5 recruits CHD4 to specific genomic regions, enhancing chromatin accessibility and promoting aCM identity gene expression.
- CHD4 acts as both a gene activator and repressor in aCMs; its repression targets non-cardiomyocyte genes.
- Mice with disrupted *Chd4* exhibited increased susceptibility to AF, indicating its critical role in maintaining atrial rhythm.
Conclusions:
- CHD4 is essential for maintaining aCM gene expression, cellular identity, and overall atrial rhythm homeostasis.
- The TBX5-CHD4 interaction is a key mechanism for regulating cardiac gene expression and preventing AF.
Abstract:
Atrial fibrillation (AF) is the most common sustained arrhythmia, affecting 59 million individuals worldwide. Impairment of atrial cardiomyocyte (aCM) gene regulatory mechanisms predisposes to atrial fibrillation. The transcription factor TBX5 is essential for normal atrial rhythm, and its inactivation causes loss of aCM enhancer accessibility, looping, and transcriptional identity. Here we investigated the mechanisms by which TBX5 regulates chromatin organization. We found that TBX5 recruits CHD4, a chromatin remodeling ATPase, to 33,170 genomic regions (TBX5-enhanced CHD4 sites). As a component of the NuRD complex, CHD4 functions to repress gene transcription. However, combined snRNA-seq and snATAC-seq of CHD4 knockout (KO) and control aCMs revealed that CHD4 has both gene activator and repressor functions. Genes repressed by CHD4 in aCMs included sarcomeric proteins from non-CM cell lineages. Genes activated by CHD4 in aCMs were characterized by TBX5-enhanced CHD4 recruitment, which enhanced chromatin accessibility and promoted the expression of aCM identity genes. This mechanism of TBX5 recruitment of CHD4 was critical for sinus rhythm because Chd4 AKO mice had increased vulnerability to AF from electrical pacing and a fraction had spontaneous AF. Our findings reveal that CHD4 is essential for maintaining aCM gene expression, aCM identity, and atrial rhythm homeostasis.
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