Current and emerging antiarrhythmic drug therapy for ventricular tachycardia
Eric S Williams1, Mohan N Viswanathan
1Division of Cardiology, University of Washington Medical Center, Seattle, WA, USA, ew49@uw.edu.
Insights
Ventricular arrhythmias like ventricular tachycardia (VT) cause sudden cardiac death. Current therapies offer limited efficacy and significant side effects, necessitating new treatments for these life-threatening heart rhythm disorders.
Area of Science:
- Cardiology
- Electrophysiology
- Pharmacology
Background:
- Ventricular arrhythmias (VT/VF) are primary causes of sudden cardiac death, often linked to structural heart disease.
- Implantable cardioverter-defibrillators (ICDs) reduce mortality but recurrent events impair quality of life.
- Antiarrhythmic drugs are used to manage symptomatic VT, reduce ICD shocks, and improve patient outcomes.
Purpose of the Study:
- To review current and emerging therapies for ventricular arrhythmias (VT).
- To discuss the efficacy and limitations of existing antiarrhythmic drugs.
- To explore novel molecular targets and future pharmacologic treatments for VT.
Main Methods:
- Literature review of current antiarrhythmic therapies.
- Analysis of clinical studies on drug efficacy and toxicity.
- Exploration of basic electrophysiology research for new therapeutic targets.
Main Results:
- Current antiarrhythmic drugs (amiodarone, sotalol) have suboptimal efficacy and significant toxicity.
- Other agents like dronedarone, dofetilide, and ranolazine show potential in smaller studies.
- New molecular targets are being investigated for future VT treatments.
Conclusions:
- Existing antiarrhythmic therapies for VT are limited by efficacy and side effects.
- Emerging drugs and novel molecular targets offer promise for improved VT management.
- Further research is needed to develop safer and more effective treatments for ventricular arrhythmias.
Abstract:
Ventricular arrhythmias, including ventricular fibrillation (VF) and sustained ventricular tachycardia (VT), are the principal causes of sudden cardiac death in patients with structural heart disease. While coronary artery disease is the predominant substrate associated with the development of VT, these arrhythmias are known to occur in a variety of disorders, including dilated cardiomyopathy, valvular and congenital heart disease, and cardiac ion channelopathies such as the long QT syndrome. In a minority of patients, VT occurs in the absence of structural heart disease. Despite the established mortality benefit of the implantable cardioverter defibrillator (ICD) in patients at risk of lethal arrhythmias, recurrent VT/VF events continue to be a source of morbidity and impaired quality of life in such patients. Antiarrhythmic therapy is indicated in select patients to treat symptomatic VT episodes, to reduce the incidence of ICD shocks, and potentially to improve quality of life and reduce hospitalizations related to cardiac arrhythmia. The primary adverse effects of antiarrhythmic medications are related to both cardiac and extracardiac toxicity, including the risk of proarrhythmia. Current drug therapy for ventricular arrhythmia has been limited by suboptimal efficacy in many patients, resulting in recurrent VT/VF events, and by drug toxicity or intolerance leading to discontinuation in a large percentage of patients. Amiodarone and sotalol are the principal agents used in the chronic treatment of VT. In addition, dronedarone and dofetilide, agents approved for the treatment of atrial fibrillation, and ranolazine, an antianginal agent, have been demonstrated to be protective against ventricular arrhythmia in small clinical studies. Finally, advances in basic electrophysiology have uncovered new molecular targets for the treatment of ventricular arrhythmia, and pharmacologic agents directed at these targets may emerge as promising VT treatments in the future. The roles of these current and emerging therapies for the treatment of VT in humans will be summarized in this review.
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