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Updated: Jun 25, 2025

Transesophageal Atrial Burst Pacing for Atrial Fibrillation Induction in Rats
Published on: February 14, 2022
The SK4 channel allosteric blocker, BA6b9, reduces atrial fibrillation substrate in rats with reduced ejection
Shira Burg1, Or Levi2,3, Sigal Elyagon2,3
1Department of Physiology & Pharmacology, Sackler Faculty of Medicine and Sagol School of Neurosciences, Tel Aviv University, Tel Aviv 69978, Israel.
Insights
A novel drug, BA6b9, effectively treats atrial fibrillation (AF) by targeting SK4 channels. This treatment reduces AF episodes and atrial remodeling, offering hope for patients with heart failure (HF).
Area of Science:
- Cardiology
- Pharmacology
- Molecular Biology
Background:
- Atrial fibrillation (AF) is a common arrhythmia linked to heart failure (HF), leading to poor outcomes.
- Existing AF therapies lack efficacy and do not address underlying atrial remodeling.
- SK4 K+ channels are upregulated in AF and HF, presenting a potential therapeutic target.
Purpose of the Study:
- To investigate the efficacy of BA6b9, a novel SK4 channel inhibitor, in mitigating AF and atrial remodeling in a rat model of heart failure.
- To assess the impact of BA6b9 on atrial structural changes, inflammation, and electrical properties.
Main Methods:
- A post-myocardial infarction rat model was used to induce systolic heart failure.
- Rats received daily injections of BA6b9 (20 mg/kg) for three weeks.
- AF susceptibility, atrial effective refractory period, and atrial structural remodeling markers (collagen, α-SMA, NLRP3 inflammasome, Cx43) were evaluated.
Main Results:
- BA6b9 treatment prolonged the atrial effective refractory period and reduced AF incidence and duration.
- The drug significantly prevented atrial structural remodeling, including collagen deposition and NLRP3 inflammasome upregulation.
- BA6b9 reversed SK4 channel upregulation and reduced connexin Cx43 lateralization in the left atrium.
Conclusions:
- Targeting SK4 K+ channels with BA6b9 is a promising therapeutic strategy for controlling AF rhythm.
- BA6b9 effectively reduces atrial structural remodeling, a key factor in AF progression, especially in HF patients.
- This approach offers a dual benefit of rhythm control and structural stabilization for AF management.
Abstract:
Atrial fibrillation (AF), the most common cardiac arrhythmia, is strongly associated with several comorbidities including heart failure (HF). AF in general, and specifically in the context of HF, is progressive in nature and associated with poor clinical outcomes. Current therapies for AF are limited in number and efficacy and do not target the underlying causes of atrial remodeling such as inflammation or fibrosis. We previously identified the calcium-activated SK4 K+ channels, which are preferentially expressed in the atria relative to the ventricles in both rat and human hearts, as attractive druggable target for AF treatment. Here, we examined the ability of BA6b9, a novel allosteric inhibitor of SK4 channels that targets the specific calmodulin-PIP2 binding domain, to alter AF susceptibility and atrial remodeling in a systolic HF rat postmyocardial infarction (post-MI) model. Daily BA6b9 injection (20 mg/kg/day) for 3 weeks starting 1-week post-MI prolonged the atrial effective refractory period, reduced AF induction and duration, and dramatically prevented atrial structural remodeling. In the post-MI left atrium (LA), pronounced upregulation of the SK4 K+ channel was observed, with corresponding increases in collagen deposition, α-SMA levels, and NLRP3 inflammasome expression. Strikingly, BA6b9 treatment reversed these changes while also significantly reducing the lateralization of the atrial connexin Cx43 in the LA of post-MI rats. Our findings indicate that the blockade of SK4 K+ channels using BA6b9 not only favors rhythm control but also remarkably reduces atrial structural remodeling, a property that is highly desirable for novel AF therapies, particularly in patients with comorbid HF.
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