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Isolation of Human Atrial Myocytes for Simultaneous Measurements of Ca2+ Transients and Membrane Currents
Published on: July 3, 2013
Chamber-specific transcriptional responses in atrial fibrillation
Catherine E Lipovsky1,2, Jesus Jimenez1, Qiusha Guo1
1Department of Medicine, Cardiovascular Division.
Insights
Notch pathway activation in atrial cardiomyocytes contributes to atrial fibrillation (AF) by altering gene expression and electrophysiology. This study reveals a shared human and murine model for AF pathogenesis.
Area of Science:
- Cardiology
- Molecular Biology
- Genetics
Background:
- Atrial fibrillation (AF) is a common arrhythmia, but its underlying molecular mechanisms remain unclear.
- Understanding the molecular basis of atrial substrate vulnerability is crucial for developing targeted therapies.
Purpose of the Study:
- To identify chamber-specific transcriptional differences in atrial cardiomyocytes (CMs) in patients with AF and heart failure (HF).
- To investigate the role of the Notch pathway in AF pathogenesis and its impact on atrial CMs.
Main Methods:
- Transcriptional profiling of human atrial CMs from patients with AF+HF and HF alone.
- Utilizing a murine genetic model to study the effects of transient Notch signaling activation in CMs.
- Assessing cellular electrophysiologic changes in response to Notch activation.
Main Results:
- Distinct gene expression signatures were identified in left versus right atrial CMs, particularly in AF+HF patients.
- Notch pathway activation in human and murine atrial CMs led to increased ploidy and an AF-like transcriptomic profile.
- Notch activation caused chamber-specific electrophysiologic alterations, including prolonged action potential duration in the left atrium and reduced upstroke velocity in the right atrium.
Conclusions:
- The Notch pathway plays a significant role in AF pathogenesis by altering atrial CMs' molecular and electrophysiologic properties.
- Increased Notch pathway activity represents a shared mechanism predisposing to AF in both humans and mice.
- These findings provide a foundation for novel therapeutic strategies targeting the Notch pathway in AF.
Abstract:
Atrial fibrillation (AF) is the most common cardiac arrhythmia, yet the molecular signature of the vulnerable atrial substrate is not well understood. Here, we delineated a distinct transcriptional signature in right versus left atrial cardiomyocytes (CMs) at baseline and identified chamber-specific gene expression changes in patients with a history of AF in the setting of end-stage heart failure (AF+HF) that are not present in heart failure alone (HF). We observed that human left atrial (LA) CMs exhibited Notch pathway activation and increased ploidy in AF+HF but not in HF alone. Transient activation of Notch signaling within adult CMs in a murine genetic model is sufficient to increase ploidy in both atrial chambers. Notch activation within LA CMs generated a transcriptomic fingerprint resembling AF, with dysregulation of transcription factor and ion channel genes, including Pitx2, Tbx5, Kcnh2, Kcnq1, and Kcnip2. Notch activation also produced distinct cellular electrophysiologic responses in LA versus right atrial CMs, prolonging the action potential duration (APD) without altering the upstroke velocity in the left atrium and reducing the maximal upstroke velocity without altering the APD in the right atrium. Our results support a shared human/murine model of increased Notch pathway activity predisposing to AF.
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