TY - JOUR
T1 - Evaluation of a Three-Dimensional Printed Interventional Simulator for Cardiac Ablation Therapy Training
AU - Saija, Carlo
AU - Sabu, Sachin
AU - Leung, Lisa
AU - Lowe, Ellie
AU - Al-Bahrani, Noor
AU - Coutinho Pinto, Marco Antonio
AU - Herridge, Mark
AU - Chowdhury, Nadia M.
AU - Gibson, Gregory
AU - Byrne, Calum
AU - Gabbeta, Adharvan
AU - Marion, Ewen
AU - Chavan, Rashi
AU - Behar, Jonathan
AU - Pontiki, Antonia Agapi
AU - Berthet-Rayne, Pierre
AU - Housden, Richard James
AU - Rhode, Kawal
N1 - Publisher Copyright:
© 2024 by the authors.
PY - 2024/9/19
Y1 - 2024/9/19
N2 - Featured Application: A guide to construct and operate an experimental cardiac ablation simulator for interventional electrophysiology training. Cardiac ablation (CA) is an interventional electrophysiological procedure used to disrupt arrhythmic substrates in the myocardium by inducing localized scarring. Current CA training relies on the master–apprentice model. In different fields of medicine including CA, virtual and physical simulators have proven to enhance, and even outperform, conventional training modalities while providing a risk-free learning environment. Despite the benefits, high costs and operational difficulties limit the widespread use of interventional simulators. Our previous research introduced a low-cost CA simulator using a 3D-printed biatrial cardiac model, successfully recording ten ablation lesions on the phantom myocardium. In this work, we present and evaluate an enhanced version: compared to the previous version, the cardiac phantom’s electrical behavior and ablation settings were optimized to produce consistent lesions, while 3D-printed components improved the haptic and radiographic properties of the simulator. Seven cardiologists compared the experimental simulator’s performance to the leading commercial system from Heartroid in a 24-question survey on a 5-point Likert scale. The four following areas of fidelity were considered: catheter entry, anatomical correctness, radiographic appearance, and mapping and ablation. The experimental simulator significantly outperformed the commercial system (p < 0.01), particularly in radiographic appearance (p < 0.01). The results show the potential for the experimental simulator in routine CA training.
AB - Featured Application: A guide to construct and operate an experimental cardiac ablation simulator for interventional electrophysiology training. Cardiac ablation (CA) is an interventional electrophysiological procedure used to disrupt arrhythmic substrates in the myocardium by inducing localized scarring. Current CA training relies on the master–apprentice model. In different fields of medicine including CA, virtual and physical simulators have proven to enhance, and even outperform, conventional training modalities while providing a risk-free learning environment. Despite the benefits, high costs and operational difficulties limit the widespread use of interventional simulators. Our previous research introduced a low-cost CA simulator using a 3D-printed biatrial cardiac model, successfully recording ten ablation lesions on the phantom myocardium. In this work, we present and evaluate an enhanced version: compared to the previous version, the cardiac phantom’s electrical behavior and ablation settings were optimized to produce consistent lesions, while 3D-printed components improved the haptic and radiographic properties of the simulator. Seven cardiologists compared the experimental simulator’s performance to the leading commercial system from Heartroid in a 24-question survey on a 5-point Likert scale. The four following areas of fidelity were considered: catheter entry, anatomical correctness, radiographic appearance, and mapping and ablation. The experimental simulator significantly outperformed the commercial system (p < 0.01), particularly in radiographic appearance (p < 0.01). The results show the potential for the experimental simulator in routine CA training.
KW - 3D printing
KW - cardiac ablation
KW - cardiac phantom
KW - fluoroscopy guidance
KW - interventional training
KW - medical simulator
UR - http://www.scopus.com/inward/record.url?scp=85205252466&partnerID=8YFLogxK
U2 - 10.3390/app14188423
DO - 10.3390/app14188423
M3 - Article
AN - SCOPUS:85205252466
SN - 2076-3417
VL - 14
JO - Applied Sciences (Switzerland)
JF - Applied Sciences (Switzerland)
IS - 18
M1 - 8423
ER -