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Electrical Stimulation for Low-Energy Termination of Cardiac Arrhythmias: a Review
Skylar Buchan1, Ronit Kar1,2, Mathews John1
1Electrophysiology Clinical Research and Innovations, Texas Heart Institute, 6770 Bertner Avenue, Houston, TX, 77030, USA.
Insights
Researchers are exploring low-energy defibrillation to treat cardiac arrhythmias. This approach aims to terminate dangerous heart rhythms painlessly, improving patient outcomes and reducing anxiety associated with traditional high-energy shocks.
Area of Science:
- Cardiology
- Electrophysiology
- Medical Devices
Background:
- Cardiac arrhythmias are a significant cause of death globally.
- Current treatments for life-threatening tachyarrhythmias rely on high-energy defibrillation.
- High-energy defibrillation causes pain, anxiety, and adverse physiological effects.
Purpose of the Study:
- To review the development of low-energy defibrillation methods.
- To explore the mechanisms underlying these novel defibrillation techniques.
- To provide an overview of the current landscape of pain-threshold defibrillation technologies.
Main Methods:
- Literature review of existing studies on low-energy defibrillation.
- Analysis of underlying electrophysiological mechanisms.
- Synthesis of current technological advancements.
Main Results:
- Interest is growing in defibrillation protocols below the human pain threshold (0.1–1 J).
- Research is focused on developing methods to terminate arrhythmias with minimal patient discomfort.
- Several low-energy approaches are under investigation.
Conclusions:
- Low-energy defibrillation holds promise for improving patient experience and outcomes.
- Further research is needed to refine these techniques and establish clinical efficacy.
- This technology could revolutionize the treatment of cardiac arrhythmias.
Abstract:
Cardiac arrhythmias are a leading cause of morbidity and mortality in the developed world, estimated to be responsible for hundreds of thousands of deaths annually. Our understanding of the electrophysiological mechanisms of such arrhythmias has grown since they were formally characterized in the late nineteenth century, and this has led to the development of numerous devices and therapies that have markedly improved outcomes for patients affected by such conditions. Despite these advancements, the application of a single large shock remains the clinical standard for treating deadly tachyarrhythmias. Such defibrillating shocks are undoubtedly effective in terminating such arrhythmias; however, they are applied without forewarning, contributing to the patient's stress and anxiety; they can be intensely painful; and they can have adverse psychological and physiological effects on patients. In recent years, there has been interest in developing defibrillation protocols that can terminate arrhythmias without crossing the human pain threshold for energy delivery, generally estimated to be between 0.1 and 1 J. In this article, we review existing literature on the development of such low-energy defibrillation methods and their underlying mechanisms, in an attempt to broadly describe the current landscape of these technologies.
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