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February 5, 2026Circulation Arrhythmia and Electrophysiology2 citations

First Clinical Experience With Reversible Electroporation Mapping in Atrial Flutter

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IDIoannis DoundoulakisKNKazutaka NakasoneLPLuigi Alfonso Pannone

Key Result

Pulsed field ablation mapping identified critical isthmus sites in reentrant atrial flutter with 100% specificity for tachycardia termination.

Key Points

  • The aim is to characterize the responses of nontriggered pulsed field ablation pulses as a new mapping tool for reentrant atrial flutter.
  • Delivered PF REV pulses using a 9-mm lattice-tip catheter in 30 atrial tachycardia cases.
  • Assessed local capture and responses to PF REV pulses within the circuit.
  • Analyzed 163 PF REV pulses for various outcomes including tachycardia termination and cycle length changes.
  • 34.4% of PF REV pulses achieved atrial capture and propagation.
  • Tachycardia termination occurred in 11.0% of cases, while stable TCL prolongation was seen in 9.8%.
  • Termination and stable TCL prolongation were exclusively tied to PF REV delivery in the reentry circuit with 100% specificity.

Structured PICO

Does reversible pulsed field ablation (PF REV) mapping identify critical sites in reentrant atrial tachycardia?

P
Population
26 patients with 30 reentrant atrial tachycardias
I
Intervention
Reversible pulsed field ablation (PF REV) pulses delivered in and outside of the circuit using a 9-mm lattice-tip catheter
O
Outcome
Presence of local capture and responses to PF REV pulses (tachycardia termination, stable tachycardia cycle length prolongation, transient irregular variations, or no change)surrogate

Reversible pulsed field ablation mapping is a novel, feasible, and highly specific tool for identifying the critical isthmus in reentrant atrial tachycardias.

Abstract

BACKGROUND: Reversible pulsed field ablation (PF REV ) can temporarily block cardiomyocyte conduction, potentially identifying critical target sites before creating definitive lesions. However, PF REV local capture might interfere with the tachycardia mechanism. The aim of the study was to characterize the responses of nontriggered PF REV pulses to serve as a novel clinical mapping tool in reentrant atrial flutter. METHODS: PF REV pulses were delivered in and outside of the circuit using a 9-mm lattice-tip catheter in 30 reentrant atrial tachycardias in 26 patients. The presence of local capture and responses to PF REV pulses was characterized. RESULTS: Out of 163 PF REV pulses analyzed, 56 (34.4%) showed atrial capture and propagation. Propagated versus Nonpropagated PF REV cohorts were compared. The coupling interval of propagated PF REV pulses was significantly longer (195.3±69.2 msec versus 98.9±77.2 msec; P <0.001). Globally, 4 responses were observed: tachycardia termination (11.0%), stable tachycardia cycle length (TCL) prolongation (9.8%), transient irregular TCL variations (3.1%), and no change in activation sequence and TCL (76.1%). Propagation was only associated with irregular TCL variations (8.9% versus 0%, P =0.002). Tachycardia termination or TCL prolongation occurred only when PF REV was delivered in the reentry circuit (100% specificity). Termination occurred exclusively in the critical isthmus (100% specificity regardless of propagation), and stable TCL prolongation occurred in 93.8% and 6.2% of the cases in the isthmus and outer loop, respectively (100% specificity for nonpropagated and 83.3% specificity for propagated PF REV to localize the isthmus). Sensitivity of termination or stable TCL prolongation for identifying the critical isthmus was moderate (38.8%) and influenced by isthmus width (11.7±1.7 mm versus 22.9±2.1 mm; P <0.001). Reproducibility of PF REV pulses, determined by consecutive pulses delivered at the same site producing identical responses, was high (82.9%). CONCLUSIONS: PF REV mapping is a novel, feasible, and reproducible tool for identifying critical sites in reentrant atrial tachycardia with narrow isthmuses that may be improved through optimized triggering and dose titration.

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Cite This Study

Doundoulakis et al. (2026) studied this question. Pulsed field ablation mapping identified critical isthmus sites in reentrant atrial flutter with 100% specificity for tachycardia termination.

synapsesocial.com/papers/69843412f1d9ada3c1fb1cc3https://doi.org/10.1161/circep.125.014359
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Reversible pulsed-field mapping: feasibility of clinical applications beyond atrial flutter2026
  2. 2Reversible Pulsed Electrical Fields as an In Vivo Tool to Study Cardiac Electrophysiology: The Advent of Pulsed Field Mapping2023 · 34 citations
  3. 3Reversible pulsed field ablation for facilitating safe and effective mitral isthmus block: a case series2026
  4. 4Peak frequency mapping of atypical atrial flutter2024 · 11 citations
  5. 5Peak frequency mapping characteristics in patients with scar-related atypical atrial reentrant tachycardias; findings from a novel automated annotation algorithm to detect near field signals2024