Literature DB >> 31256443

A computational model of open-irrigated radiofrequency catheter ablation accounting for mechanical properties of the cardiac tissue.

Argyrios Petras1, Massimiliano Leoni1,2, Jose M Guerra3, Johan Jansson1,2, Luca Gerardo-Giorda1.   

Abstract

Radiofrequency catheter ablation (RFCA) is an effective treatment for cardiac arrhythmias. Although generally safe, it is not completely exempt from the risk of complications. The great flexibility of computational models can be a major asset in optimizing interventional strategies if they can produce sufficiently precise estimations of the generated lesion for a given ablation protocol. This requires an accurate description of the catheter tip and the cardiac tissue. In particular, the deformation of the tissue under the catheter pressure during the ablation is an important aspect that is overlooked in the existing literature, which resorts to a sharp insertion of the catheter into an undeformed geometry. As the lesion size depends on the power dissipated in the tissue and the latter depends on the percentage of the electrode surface in contact with the tissue itself, the sharp insertion geometry has the tendency to overestimate the lesion obtained, which is a consequence of the tissue temperature rise overestimation. In this paper, we introduce a full 3D computational model that takes into account the tissue elasticity and is able to capture tissue deformation and realistic power dissipation in the tissue. Numerical results in FEniCS-HPC are provided to validate the model against experimental data and to compare the lesions obtained with the new model and with the classical ones featuring a sharp electrode insertion in the tissue.
© 2019 John Wiley & Sons, Ltd.

Entities:  

Keywords:  elastic tissue deformation; finite elements; open-irrigated catheter; radiofrequency ablation

Mesh:

Year:  2019        PMID: 31256443     DOI: 10.1002/cnm.3232

Source DB:  PubMed          Journal:  Int J Numer Method Biomed Eng        ISSN: 2040-7939            Impact factor:   2.747


  3 in total

1.  Spatial temperature reconstructions in myocardial tissues undergoing radiofrequency ablations by performing high-resolved temperature measurements.

Authors:  Martina Zaltieri; Pietro Rossi; Stefano Bianchi; Marco Polselli; Marta Niscola; Veronica Fanti; Carlo Massaroni; Emiliano Schena; Filippo Maria Cauti
Journal:  J Interv Card Electrophysiol       Date:  2022-02-17       Impact factor: 1.900

2.  Multiscale and Multiphysics Modeling of Anisotropic Cardiac RFCA: Experimental-Based Model Calibration via Multi-Point Temperature Measurements.

Authors:  Leonardo Molinari; Martina Zaltieri; Carlo Massaroni; Simonetta Filippi; Alessio Gizzi; Emiliano Schena
Journal:  Front Physiol       Date:  2022-04-19       Impact factor: 4.755

3.  Systematic Characterization of High-Power Short-Duration Ablation: Insight From an Advanced Virtual Model.

Authors:  Argyrios Petras; Zoraida Moreno Weidmann; Massimiliano Leoni; Luca Gerardo-Giorda; Jose M Guerra
Journal:  Front Med Technol       Date:  2021-11-12
  3 in total

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