Key result
Understanding the anatomical conduction barriers of atrial flutter, such as the tricuspid annulus, crista terminalis, and Eustachian ridge, is necessary for successful radiofrequency ablation.
Understanding the anatomical conduction barriers of atrial flutter, such as the tricuspid annulus and crista terminalis, is essential for successful radiofrequency ablation.
Prioritizes barrier mapping for flutter ablation success; leaves open optimal strategies for variant circuits.
Atrial flutter (AFL) is a common arrhythmia in clinical practice. Several experimental models such as tricuspid ring model, tricuspid regurgitation model, and atrial crush injury model have provided important information about the role of conduction barriers in the reentrant circuit. Human typical AFL uses the tricuspid annulus as the anterior barrier, and uses the crista terminalis, Eustachian ridge, and sometimes sinus venosa as the posterior boundary. Rate-dependent conduction block was found in the crista terminalis and sinus venosa. Some barriers such as the crista terminalis and Eustachian ridge are not intact. The conduction gap in the barrier can produce another kind of arrhythmia. Understanding the barriers of AFL is necessary for successful radiofrequency ablation.
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TAI et al. (2008) conducted a review in Atrial flutter. Understanding the anatomical conduction barriers of atrial flutter, such as the tricuspid annulus, crista terminalis, and Eustachian ridge, is necessary for successful radiofrequency ablation.
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