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April 10, 2026Journal of Arrhythmia0 citationsOpen Access

Predicting Transmural Lesion Formation and Steam‐Pop Occurrence During Bipolar Ablation—Ex Vivo Porcine Model

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HMHisaki MakimotoMKMasashi KamiokaTWTomonori Watanabe

Key Result

A model incorporating RF energy, duration, initial impedance, and tissue thickness accurately predicted transmural lesion formation during ex vivo bipolar ablation (AUC 0.95; 95% CI 0.91-0.99).

Key Points

  • To develop and validate predictive algorithms for assessing transmural lesion formation and steam-pop incidents during bipolar radiofrequency ablation.
  • Conducted ex vivo bipolar ablation on porcine myocardium with varying RF power and duration.
  • Catheters applied at specific angles and contact forces.
  • Used generalized linear models to analyze data from 194 applications for predictive modeling.
  • A separate set of 111 applications validated the models.
  • Achieved 49% transmural lesions with high predictive accuracy (AUC 0.95).
  • The optimal model included RF energy, duration, impedance, and tissue thickness.
  • Steam-pop occurred in 5.7% of cases, with a predictive model accuracy of AUC 0.90.

Structured PICO

Can generalized linear models accurately predict lesion transmurality and steam-pop occurrence based on tissue characteristics and impedance during bipolar radiofrequency ablation?

P
Population
Ex vivo porcine myocardium (5-20 mm thickness) undergoing bipolar radiofrequency ablation (n=305 total applications; 194 training, 111 validation)
I
Intervention
Bipolar radiofrequency ablation (RF power 20-50 W, duration 20-180 s) with catheters placed bilaterally at 45-degree angle and 10-g contact force
O
Outcome
Lesion transmurality and steam-pop occurrencesurrogate

Tissue thickness is the dominant determinant of transmural lesion formation, and early impedance drop reliably predicts steam-pop risk during bipolar RF ablation, offering a potential method for real-time energy titration.

Main Result

Effect estimate: AUC 0.95 (95% CI 0.91-0.99)

Abstract

ABSTRACT Background Bipolar radiofrequency (RF) ablation can create deeper myocardial lesions than unipolar ablation, yet its optimal settings remain undefined. Objective To develop and validate predictive models for lesion transmurality and steam‐pop occurrence during bipolar ablation. Methods Ex vivo bipolar ablation was applied to porcine myocardium (5–20 mm thickness) with catheters placed bilaterally at 45‐degree and 10‐g contact‐force. RF power (20–50 W) and duration (20–180 s) were systematically varied. Generalized linear models (GLM) were trained on 194 applications to predict transmurality and steam‐pop from RF energy, tissue thickness, initial bipolar impedance, 5‐s impedance drop (absolute and percentage PercentImpDrop5), and RF duration; 111 independent applications served as the validation. Results Training yielded 95 transmural lesions (49%) and 11 steam‐pops (5.7%). For transmurality, the model incorporating RF energy, RF duration, initial impedance, and tissue thickness achieved an area under the receiver‐operating characteristics curve (AUC) of 0.95 (95% CI 0.91–0.99) with 88% sensitivity and 100% specificity. Omitting tissue thickness markedly degraded performance (AUC 0.68; DeLong, p = 0.003). For steam‐pop, the model combining RF energy and PercentImpDrop5 showed the best discrimination (AUC 0.90 0.82–0.97, sensitivity 84%, specificity 90%); notably, PercentImpDrop5 alone achieved comparable accuracy (AUC 0.89). Conclusion Tissue thickness is the dominant determinant of transmural lesion formation, whereas early impedance drop serves as a reliable real‐time indicator of steam‐pop risk during bipolar RF ablation. These algorithms may help standardize bipolar ablation protocols by enabling prospective titration of energy delivery based on tissue characteristics and intraprocedural impedance monitoring.

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Cite This Study

Makimoto et al. (2026) studied Bipolar radiofrequency ablation (n=305). Bipolar radiofrequency ablation was evaluated on Transmural lesion formation (AUC 0.95, 95% CI 0.91-0.99). A model incorporating RF energy, duration, initial impedance, and tissue thickness accurately predicted transmural lesion formation during ex vivo bipolar ablation (AUC 0.95; 95% CI 0.91-0.99).

synapsesocial.com/papers/69d896676c1944d70ce07cd3https://doi.org/10.1002/joa3.70337
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