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Numerical Simulations of Electroporation Process and Effect in the Bile Duct and Heart

The result's identifiers

  • Result code in IS VaVaI

    <a href="https://www.isvavai.cz/riv?ss=detail&h=RIV%2F00216305%3A26220%2F26%3A0199385" target="_blank" >RIV/00216305:26220/26:0199385 - isvavai.cz</a>

  • Result on the web

    <a href="https://www.humboldt-foundation.de/en/connect/humboldt-kolleg-sustainable-science-development-transforming-industries-and-society" target="_blank" >https://www.humboldt-foundation.de/en/connect/humboldt-kolleg-sustainable-science-development-transforming-industries-and-society</a>

  • DOI - Digital Object Identifier

Alternative languages

  • Result language

    angličtina

  • Original language name

    Numerical Simulations of Electroporation Process and Effect in the Bile Duct and Heart

  • Original language description

    Irreversible electroporation (IRE) is a minimally invasive ablation technique used primarily for the treatment of tumors. It uses short, high-voltage electrical pulses to induce nanopores in cell membranes, causing cell death [1]. IRE offers several advantages over traditional ablation techniques, such as reduced scarring, inflammation, and immune reaction. It has been reported to exhibit tissue selectivity, allowing tumors to be treated even in proximity to sensitive structures. Although it is not affected by the heat sink effect, it is no longer considered an exclusively non-thermal ablation method [2]. To date, IRE remains largely experimental and requires further clinical validation before routine use. Our research explores novel applications of using IRE to treat various health issues. Two case studies using 3D FEM simulations in COMSOL Multiphysics will be presented. The first addresses recanalization of occluded biliary metal stents caused by malignant stenosis, where simulations confirmed the feasibility of this innovative approach for future clinical protocols [3]. The second focuses on pulsed field ablation (PFA) in cardiac tissue to treat arrhythmias. Results indicate maximal Joule losses near the active electrode in blood, coinciding with the region of peak current density. Blood flow appears sufficient to cool the electrode under certain conditions while increasing voltage leads to a temperature rise that requires cooling. Conversely, larger blood contact increases current flow and associated patient risk. A balance between current and temperature is therefore essential. These findings highlight the complexity of PFA and the need to consider multiple interacting parameters for safe and effective treatment outcomes [4].

  • Czech name

  • Czech description

Classification

  • Type

    O - Miscellaneous

  • CEP classification

  • OECD FORD branch

    20201 - Electrical and electronic engineering

Result continuities

  • Project

  • Continuities

    S - Specificky vyzkum na vysokych skolach

Others

  • Publication year

    2025

  • Confidentiality

    S - Úplné a pravdivé údaje o projektu nepodléhají ochraně podle zvláštních právních předpisů