Catheter ablation for atrial tachycardias: How to interpret the unclear activation map?
Wei Ma1, Jiuchun Qiu2, Fengmin Lu1
1Heart Rhythm Center, Heart Institute, Tianjin Chest Hospital, Tianjin, China.
Insights
This study identifies common errors in activation mapping for post-ablation atrial tachycardias (ATs). A new mapping strategy helps accurately interpret tachycardia mechanisms in patients with complex substrates, leading to successful ablation.
Area of Science:
- Electrophysiology
- Cardiology
- Medical Device Technology
Background:
- Post-ablation atrial tachycardias (ATs) present low-voltage signals complicating current mapping techniques.
- Identifying tachycardia mechanisms in patients with challenging substrates requires refined mapping strategies.
Purpose of the Study:
- To analyze common activation mapping errors in post-ablation ATs.
- To develop and present a mapping strategy for accurate interpretation of AT mechanisms in complex substrates.
Main Methods:
- Analysis of activation mapping in 31 patients undergoing AT ablation.
- Identification and categorization of three common incorrect activation patterns: unrecognized block line, incorrect timing window of interest, and mis-annotation of complex signals.
Main Results:
- Common errors included pseudo-macroreentry, pseudo-fig-8 reentry, chaotic activation, and multiple sites of "early meets late".
- These errors occurred in focal/localized reentry and macroreentrant ATs, often associated with previous ablation or low-voltage substrate.
- All identified ATs were successfully eliminated at their origin site.
Conclusions:
- A systematic approach can correct activation mapping errors in complex atrial substrates.
- The proposed algorithm aids in rapid correction of activation maps and identification of AT mechanisms.
Background:
Post-ablation atrial tachycardias (ATs) are characterized by low-voltage signals that challenge current mapping methods. In this study, we analyzed common mistakes during activation mapping and delineated a mapping strategy for correct interpretation of tachycardia mechanisms in patients with challenging underlying substrate.
Methods And Results:
Thirty-one patients referred for AT ablation were selected for the study. Three types of incorrect activation patterns were identified, which were referred to as unrecognized block line (pseudo-macroreentry and pseudo-fig-8 reentry), incorrect activation timing window of interest (WOI) (chaotic activation), and mis-annotation of complex signals (multiple sites of "early meets late"). Pseudo-macroreentry and chaotic activation occur in focal or localized reentry AT with the error related to the WOI selection (four cases), incorrect annotation of local activation time (six cases), or a previous line of atrial block in (seven cases). Pseudo-fig-8 reentry (five cases) and multiple sites of "early meets late" (nine cases) occur in macroreentrant AT with blocked areas and low-voltage atrial substrate. All ATs were successfully eliminated at the origin site.
Conclusions:
We delineated a series of ATs in the setting of a disordered pattern of activation mapping encountered in patients after previous extensive ablation or atriotomy. The algorithm proposed rapidly corrects the activation map and identifies the mechanism of the AT.
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