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Atria-selective antiarrhythmic drugs in need of alliance partners
Rémi Peyronnet1, Ursula Ravens2
1Institute for Experimental Cardiovascular Medicine, University Heart Center Freiburg Bad Krozingen, Medical Center, University of Freiburg, Freiburg, Germany; Faculty of Medicine, University of Freiburg, Freiburg, Germany.
Insights
Atria-selective antiarrhythmic drugs target specific heart channels to reduce side effects. However, their clinical effectiveness requires further demonstration, potentially needing combination therapy for optimal atrial fibrillation treatment.
Area of Science:
- Cardiovascular Pharmacology
- Cardiac Electrophysiology
- Medicinal Chemistry
Background:
- Current atrial fibrillation (AF) treatments include antiarrhythmic drugs, but conventional options carry risks of severe side effects like ventricular fibrillation.
- Atria-selective antiarrhythmic drugs are designed to target ion channels predominantly found in the atria, aiming to minimize off-target effects in the ventricles.
Purpose of the Study:
- To review novel atria-selective antiarrhythmic drug candidates and their proposed mechanisms of action.
- To discuss the potential for combination therapies ('alliance partners') to enhance the clinical efficacy of these drugs in treating supraventricular arrhythmias.
Main Methods:
- Review of scientific literature on atria-selective antiarrhythmic agents.
- Analysis of in-vitro and animal model data regarding drug efficacy and selectivity.
- Discussion of pharmacological targets including specific sodium (Na+) and potassium (K+) channels (e.g., Kv1.5, Kir3.x, Kir2.x, SK, K2P, TRP channels).
Main Results:
- Atria-selective Na+ channel blockers exhibit fast dissociation and high affinity for inactivated channels.
- Various atria-selective K+ channel blockers targeting Kv1.5, Kir3.x, Kir2.x, SK, K2P, and TRP channels have been developed.
- Preclinical studies show promising antiarrhythmic effects, but robust clinical evidence for efficacy is still lacking.
Conclusions:
- Atria-selective antiarrhythmic drugs offer a promising strategy to improve AF treatment safety.
- Clinical validation of these agents is necessary, and combination therapies may be crucial for achieving sufficient antiarrhythmic potency and efficacy.
Abstract:
Atria-selective antiarrhythmic drugs in need of alliance partners. Guideline-based treatment of atrial fibrillation (AF) comprises prevention of thromboembolism and stroke, as well as antiarrhythmic therapy by drugs, electrical rhythm conversion, ablation and surgical procedures. Conventional antiarrhythmic drugs are burdened with unwanted side effects including a propensity of triggering life-threatening ventricular fibrillation. In order to solve this therapeutic dilemma, 'atria-selective' antiarrhythmic drugs have been developed for the treatment of supraventricular arrhythmias. These drugs are designed to aim at atrial targets, taking advantage of differences in atrial and ventricular ion channel expression and function. However it is not clear, whether such drugs are sufficiently antiarrhythmic or whether they are in need of an alliance partner for clinical efficacy. Atria-selective Na+ channel blockers display fast dissociation kinetics and high binding affinity to inactivated channels. Compounds targeting atria-selective K+ channels include blockers of ultra rapid delayed rectifier (Kv1.5) or acetylcholine-activated inward rectifier K+ channels (Kir3.x), inward rectifying K+ channels (Kir2.x), Ca2+-activated K+ channels of small conductance (SK), weakly rectifying two-pore domain K+ channels (K2P), and transient receptor potential channels (TRP). Despite good antiarrhythmic data from in-vitro and animal model experiments, clinical efficacy of atria-selective antiarrhythmic drugs remains to be demonstrated. In the present review we will briefly summarize the novel compounds and their proposed antiarrhythmic action. In addition, we will discuss the evidence for putative improvement of antiarrhythmic efficacy and potency by addressing multiple pathophysiologically relevant targets as possible alliance partners.
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