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PULSed Field Ablation for Atrial Fibrillation Using a Balloon for Early Intervention - Study

No phase Interventional Atrial Fibrillation

For patients and families

In plain language

An automatic summary of structured registry data. It is an orientation aid, not a substitute for the official protocol or a physician assessment.

What is being studied
The protocol lists: Ablation of atrial fibrillation (AF).
Who it may be relevant to
Registry conditions: Atrial Fibrillation. Basic parameters: from 18 years · All.
What needs checking
Age, condition and sex are only basic indicators. Prior treatment, laboratory values and other mandatory requirements appear in the eligibility criteria below.
Where it takes place
Center list to be confirmed — check the primary protocol.
Next step
Save the trial, show it to the treating physician, and confirm current recruitment with the study center. Costs, documents and travel →
Official title

PULSed Field Ablation for Atrial Fibrillation Using a Balloon for Early Intervention - Study - The "PULSE - Study"

Overview

This study is a prospective, multicenter, randomized, open-label, blinded end-point, controlled clinical trial to investigate the impact of first line pulsed field ablation during 12 months follow-up in patients with early-stage paroxysmal or persistent atrial fibrillation (\<3 years) compared to usual care, defined as OMT.

Detailed description

Atrial fibrillation (AF) is a progressive arrhythmia associated with significant morbidity and mortality and burden for our health care system. Early rhythm-control therapy was beneficial regarding cardiovascular outcomes in patients with symptomatic and asymptomatic AF. Recent studies introducing first line Cryo Balloon based catheter ablation EARLY-AF and STOP -AF provided strong evidence supporting early catheter ablation over pharmacologic rhythm control in the paroxysmal setting of AF. Ongoing studies are challenging the current concept investigating the expansion of early rhythm control also to all types of clinically diagnosed AF using cryo ablation. With the advent of pulsed field ablation (PFA), a third energy source-alongside cryothermal and radiofrequency (RF) ablation-has been established for the effective treatment of atrial fibrillation (AF). PFA induces so-called irreversible electroporation, thereby enabling successful ablation of myocardial tissue. Different cell types exhibit varying susceptibility and threshold levels for irreversible electroporation when exposed to PFA. Carefully tailored PFA pulse trains deliver sufficient energy to induce irreversible electroporation while avoiding excessive thermal effects on the surrounding tissue. Consequently, PFA enables selective targeting of myocardial tissue while minimizing collateral injury. This characteristic may translate into improved safety and efficacy in the treatment of AF. In contrast, thermal ablation techniques such as cryoablation and RF ablation inherently rely on substantial temperature changes, either cooling or heating, which may adversely affect adjacent anatomical structures including nerves (e.g., resulting in phrenic nerve palsy), vascular structures, and extracardiac tissues such as the esophagus. The occurrence of these potentially life-threatening complications may be reduced or possibly avoided using PFA. Over recent years, various PFA catheter designs as well as different PFA energy delivery settings have been introduced to enable effective and safe pulmonary vein isolation (PVI). A broad spectrum of catheter configurations-including focal single-tip catheters, pentaspline multielectrode systems, and balloon-based technologies-has been incorporated into clinical practice. Substantial comparative data evaluating PFA against conventional thermal ablation modalities (cryoablation and RF ablation) are now available. To date, no significant differences in acute procedural success rates, procedural parameters, or clinical outcome measures have been consistently observed, although one randomized trial demonstrated a trend toward improved outcomes with PFA. Across these studies, procedure duration was significantly shorter with PFA compared with conventional thermal ablation, representing an additional potential advantage of this treatment modality. More recent studies suggest that catheter ablation-particularly PFA-based ablation-for AF patients without documented recurrence during follow-up may be associated with a reduction in overall ischemic stroke events. These findings indicate that catheter ablation of AF may confer additional benefits in preventing adverse cardiovascular outcomes compared with medical therapy alone. Even in cases of AF recurrence, catheter ablation has been shown not only to significantly reduce AF burden but also to slow the progression from paroxysmal to persistent AF, the latter generally being associated with less favorable clinical outcomes compared with ablation performed during earlier disease stages. Despite the availability of effective antiarrhythmic drug therapy for AF, long-term pharmacological treatment is frequently limited by intolerance, side effects, or insufficient efficacy in a substantial proportion of patients. Nevertheless, large, randomized trials directly comparing PFA-based AF ablation with optimized medical therapy remain scarce.

Therefore, the PULSE study aims to evaluate the impact of PFA using a balloon-based catheter system for the treatment of AF on the maintenance of sinus rhythm compared with optimized medical therapy. In addition, the study will assess AF disease progression in patients with early-stage atrial fibrillation, including both symptomatic and asymptomatic individuals with paroxysmal or early persistent AF.

Interventions

  • Procedure Ablation of atrial fibrillation (AF)
    PFA (Pulse Field Ablation) - Pulmonary vein isolation ablation for atrial fibrillation

Primary outcome measures

  • Freedom from any Atrial Tachyarrhythmia [Time frame: through 9 weeks to 12 months follow-up]
Secondary outcome measures (7)
  • AF Burden [Time frame: through 9 weeks to 12 months follow-up]
  • Burden of Atrial Tachycardia and Atrial Flutter [Time frame: through 9 weeks to 12 months follow-up]
  • Re-hospitalization rate [Time frame: up to 12 months follow-up]
  • AF Progression Timeline [Time frame: through 9 weeks to 12 months follow-up]
  • Symptom Burden assessed by quality of life [Time frame: QoL will be measured at baseline and at 12 months of follow up evaluating the improvement of QoL within one year.]
  • Procedure-related complications [Time frame: up to 12 months follow-up]
  • HF Progression Markers [Time frame: up to 12 months follow-up]

Eligibility criteria

Inclusion criteria

  • Adults (≥18 years) with symptomatic or asymptomatic, paroxysmal or persistent atrial fibrillation
  • First diagnosis of AF within the last 36 months
  • At least one documented episode of AF on ECG, Holter monitoring, or eligible Smart Watch Device
  • No prior catheter ablation for AF

Exclusion criteria

  • Persistent AF >3 years or longstanding persistent AF
  • Previous AF-Ablation
  • Ongoing continuous AAD therapy with Amiodarone at baseline
  • History of failed continuous AAD therapy with > 1 agent. Exceptions are Beta blocker, Verapamil or "pill in the pocket"-therapy
  • Left Atrial Volume Index (LAVI) > 50mL/m2
  • Severe mitral regurgitation
  • Contraindications to anticoagulation therapy
  • Severe pulmonary or renal disease
  • Pregnancy, active cancer disease
  • Any condition or disease which is contraindication for AF ablation within 21 days or Anti-Arrhythmic Drug (AAD)

Criteria are shown verbatim from the registry (in English). Final eligibility is always assessed by the study center.

Healthy volunteers: No

Study design

Allocation
Randomized
Model
Parallel assignment
Masking
Single blind
Primary purpose
Treatment

Study locations

Center list to be confirmed — check the primary protocol.

Publications

  • Ito T, Noda T, Nochioka K, Shiroto T, Yamamoto N, Sato H, Chiba T, Hasebe Y, Nakano M, Takahama H, Takahashi J, Miyata S, Shimokawa H, Yasuda S. Clinical impact of atrial fibrillation progression in patients with heart failure with preserved ejection fraction: A report from the CHART-2 Study. Europace. 2024 Aug 30;26(9):euae218. doi: 10.1093/europace/euae218. PMID 39150084
  • van Deutekom C, van de Lande ME, Rama R, Nguyen BO, Tieleman RG, Weberndorfer V, Hemels MEW, de Melis M, Schotten U, Linz D, Crijns HJGM, van Gelder IC, Rienstra M; RACE V Investigators. Multimorbidity Is Associated With Symptom Severity and Disease Progression in Patients with Paroxysmal Atrial Fibrillation-Data From the RACE V Study. J Am Heart Assoc. 2025 Mar 4;14(5):e034514. doi: 10.1161/JAHA. PMID 40008502
  • Willems S, Borof K, Brandes A, Breithardt G, Camm AJ, Crijns HJGM, Eckardt L, Gessler N, Goette A, Haegeli LM, Heidbuchel H, Kautzner J, Ng GA, Schnabel RB, Suling A, Szumowski L, Themistoclakis S, Vardas P, van Gelder IC, Wegscheider K, Kirchhof P. Systematic, early rhythm control strategy for atrial fibrillation in patients with or without symptoms: the EAST-AFNET 4 trial. Eur Heart J. 2022 Mar PMID 34447995
  • Andrade JG, Wells GA, Deyell MW, Bennett M, Essebag V, Champagne J, Roux JF, Yung D, Skanes A, Khaykin Y, Morillo C, Jolly U, Novak P, Lockwood E, Amit G, Angaran P, Sapp J, Wardell S, Lauck S, Macle L, Verma A; EARLY-AF Investigators. Cryoablation or Drug Therapy for Initial Treatment of Atrial Fibrillation. N Engl J Med. 2021 Jan 28;384(4):305-315. doi: 10.1056/NEJMoa2029980. Epub 2020 Nov 16. PMID 33197159
  • Wazni OM, Dandamudi G, Sood N, Hoyt R, Tyler J, Durrani S, Niebauer M, Makati K, Halperin B, Gauri A, Morales G, Shao M, Cerkvenik J, Kaplon RE, Nissen SE; STOP AF First Trial Investigators. Cryoballoon Ablation as Initial Therapy for Atrial Fibrillation. N Engl J Med. 2021 Jan 28;384(4):316-324. doi: 10.1056/NEJMoa2029554. Epub 2020 Nov 16. PMID 33197158
  • Gunawardene MA, Gessler N, Wohlmuth P, Steven D, Eckardt L, Hoffmann BA, Metzner A, Heeger CH, Kuniss M, Ehrlich JR, Parwani AS, Bengel P, Kalkowski C, Willems S. From the Emergency Department, Directly to Ablation of Atrial Fibrillation: Rationale and Design of the EMERGE Cryo Study. CJC Open. 2025 Dec 4;8(2):197-205. doi: 10.1016/j.cjco.2025.10.019. eCollection 2026 Feb. PMID 41766700
  • Ekanem E, Neuzil P, Reichlin T, Kautzner J, van der Voort P, Jais P, Chierchia GB, Bulava A, Blaauw Y, Skala T, Fiala M, Duytschaever M, Szeplaki G, Schmidt B, Massoullie G, Neven K, Thomas O, Vijgen J, Gandjbakhch E, Scherr D, Johannessen A, Keane D, Boveda S, Maury P, Garcia-Bolao I, Anic A, Hansen PS, Raczka F, Lepillier A, Guyomar Y, Gupta D, Van Opstal J, Defaye P, Sticherling C, Sommer P, Ku PMID 38977913
  • Camm AJ, Naccarelli GV, Mittal S, Crijns HJGM, Hohnloser SH, Ma CS, Natale A, Turakhia MP, Kirchhof P. The Increasing Role of Rhythm Control in Patients With Atrial Fibrillation: JACC State-of-the-Art Review. J Am Coll Cardiol. 2022 May 17;79(19):1932-1948. doi: 10.1016/j.jacc.2022.03.337. PMID 35550691

Identifiers

NCT: NCT07621003 · #4523 - PULSE Study

Primary sources (government registries)

View this study on ClinicalTrials.gov ↗