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Feasibility and Safety of Remote-Controlled Magnetic Navigation for Ablation of Atrial Fibrillation
The American Journal of Cardiology, 2008Radiofrequency ablation for atrial fibrillation (AF) involves complex catheter manipulation resulting in prolonged procedure time and fluoroscopy exposure. Remote magnetic navigation (RMN) represents a novel approach toward improving the ability to perform complex ablation.
William T, Katsiyiannis +5 more
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Journal of Cardiovascular Electrophysiology, 2010
Magnetic Navigation and Implanted Devices. Background: Remote magnetic catheter navigation (MNS) has been shown to be feasible and safe for radiofrequency catheter ablation of various cardiac arrhythmias. However, its safety in patients with implanted pacemakers or cardioverter–defibrillators has not yet been studied.
Charlotte, Eitel +7 more
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Magnetic Navigation and Implanted Devices. Background: Remote magnetic catheter navigation (MNS) has been shown to be feasible and safe for radiofrequency catheter ablation of various cardiac arrhythmias. However, its safety in patients with implanted pacemakers or cardioverter–defibrillators has not yet been studied.
Charlotte, Eitel +7 more
openaire +2 more sources
Catheter Ablation Utilizing Remote Magnetic Navigation: A Review of Applications and Outcomes
Pacing and Clinical Electrophysiology, 2012The utilization of the NIOBE™ magnetic navigation system (MNS, Stereotaxis, St. Louis, MO, USA) has increased significantly since the first published report in 2002. There has been much enthusiasm for this technology as a means to reduce radiation exposure to the patient and physician alike, and potentially decrease risks associated with catheter ...
Jason, Bradfield +4 more
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ACUTE AND LONGITUDINAL EFFICACY WITH REMOTE MAGNETIC NAVIGATION FOR PVC ABLATION
Journal of the American College of Cardiology, 2019Remote magnetic navigation (RMN) is an alternative to manual catheter ablation of premature ventricular contractions (PVCs). When compared to manual, RMN has a theoretical advantage of tip stability, which could result in higher acute procedural success.
Sandeep Sodhi +7 more
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Remote Magnetic Navigation to Map and Ablate Left Coronary Cusp Ventricular Tachycardia
Journal of Cardiovascular Electrophysiology, 2006Background: Premature ventricular contractions (PVCs) and ventricular tachycardia may arise from the coronary cusps. Navigation, mapping, and ablation in the coronary cusps can be challenging. Remote magnetic navigation may offer an alternative to conventional manually operated catheters.
J David, Burkhardt +4 more
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Pacing and Clinical Electrophysiology, 2006
Ablation of idiopathic left ventricular, or fascicular tachycardia can be aided by electroanatomical mapping. The addition of a floppy, magnetically enabled ablation catheter may improve maneuvering as well as decrease mechanically induced arrhythmias and mechanical block.
Thornton, AS (Andrew) +3 more
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Ablation of idiopathic left ventricular, or fascicular tachycardia can be aided by electroanatomical mapping. The addition of a floppy, magnetically enabled ablation catheter may improve maneuvering as well as decrease mechanically induced arrhythmias and mechanical block.
Thornton, AS (Andrew) +3 more
openaire +2 more sources
Outcomes of Remote Magnetic Navigation in SVT Ablation
Journal of Atrial Fibrillation and Electrophysiology, 2022openaire +1 more source
Magnetic field interpolation for remote magnetic navigation in minimally invasive surgery
2022Samuel L. Charreyron, Bradley J. Nelson
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Masui. The Japanese journal of anesthesiology, 2019
Catheter ablation is a common treatment for ar- rhythmia and the number of procedures is increasing. Takatsuki General Hospital introduced a remote mag- netic navigation system into clinical practice for the first time in Japan. This system produces- magnetic flux density of 0.08-0.1 Tesla.
Yumi, Doi +2 more
openaire +1 more source
Catheter ablation is a common treatment for ar- rhythmia and the number of procedures is increasing. Takatsuki General Hospital introduced a remote mag- netic navigation system into clinical practice for the first time in Japan. This system produces- magnetic flux density of 0.08-0.1 Tesla.
Yumi, Doi +2 more
openaire +1 more source

