Cargando…

Characterization of Experimentally Observed Complex Interplay between Pulse Duration, Electrical Field Strength, and Cell Orientation on Electroporation Outcome Using a Time-Dependent Nonlinear Numerical Model

Electroporation is a biophysical phenomenon involving an increase in cell membrane permeability to molecules after a high-pulsed electric field is applied to the tissue. Currently, electroporation is being developed for non-thermal ablation of cardiac tissue to treat arrhythmias. Cardiomyocytes have...

Descripción completa

Detalles Bibliográficos
Autores principales: Scuderi, Maria, Dermol-Černe, Janja, Batista Napotnik, Tina, Chaigne, Sebastien, Bernus, Olivier, Benoist, David, Sigg, Daniel C., Rems, Lea, Miklavčič, Damijan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10216437/
https://www.ncbi.nlm.nih.gov/pubmed/37238597
http://dx.doi.org/10.3390/biom13050727
_version_ 1785048297819340800
author Scuderi, Maria
Dermol-Černe, Janja
Batista Napotnik, Tina
Chaigne, Sebastien
Bernus, Olivier
Benoist, David
Sigg, Daniel C.
Rems, Lea
Miklavčič, Damijan
author_facet Scuderi, Maria
Dermol-Černe, Janja
Batista Napotnik, Tina
Chaigne, Sebastien
Bernus, Olivier
Benoist, David
Sigg, Daniel C.
Rems, Lea
Miklavčič, Damijan
author_sort Scuderi, Maria
collection PubMed
description Electroporation is a biophysical phenomenon involving an increase in cell membrane permeability to molecules after a high-pulsed electric field is applied to the tissue. Currently, electroporation is being developed for non-thermal ablation of cardiac tissue to treat arrhythmias. Cardiomyocytes have been shown to be more affected by electroporation when oriented with their long axis parallel to the applied electric field. However, recent studies demonstrate that the preferentially affected orientation depends on the pulse parameters. To gain better insight into the influence of cell orientation on electroporation with different pulse parameters, we developed a time-dependent nonlinear numerical model where we calculated the induced transmembrane voltage and pores creation in the membrane due to electroporation. The numerical results show that the onset of electroporation is observed at lower electric field strengths for cells oriented parallel to the electric field for pulse durations ≥10 µs, and cells oriented perpendicular for pulse durations ~100 ns. For pulses of ~1 µs duration, electroporation is not very sensitive to cell orientation. Interestingly, as the electric field strength increases beyond the onset of electroporation, perpendicular cells become more affected irrespective of pulse duration. The results obtained using the developed time-dependent nonlinear model are corroborated by in vitro experimental measurements. Our study will contribute to the process of further development and optimization of pulsed-field ablation and gene therapy in cardiac treatments.
format Online
Article
Text
id pubmed-10216437
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-102164372023-05-27 Characterization of Experimentally Observed Complex Interplay between Pulse Duration, Electrical Field Strength, and Cell Orientation on Electroporation Outcome Using a Time-Dependent Nonlinear Numerical Model Scuderi, Maria Dermol-Černe, Janja Batista Napotnik, Tina Chaigne, Sebastien Bernus, Olivier Benoist, David Sigg, Daniel C. Rems, Lea Miklavčič, Damijan Biomolecules Article Electroporation is a biophysical phenomenon involving an increase in cell membrane permeability to molecules after a high-pulsed electric field is applied to the tissue. Currently, electroporation is being developed for non-thermal ablation of cardiac tissue to treat arrhythmias. Cardiomyocytes have been shown to be more affected by electroporation when oriented with their long axis parallel to the applied electric field. However, recent studies demonstrate that the preferentially affected orientation depends on the pulse parameters. To gain better insight into the influence of cell orientation on electroporation with different pulse parameters, we developed a time-dependent nonlinear numerical model where we calculated the induced transmembrane voltage and pores creation in the membrane due to electroporation. The numerical results show that the onset of electroporation is observed at lower electric field strengths for cells oriented parallel to the electric field for pulse durations ≥10 µs, and cells oriented perpendicular for pulse durations ~100 ns. For pulses of ~1 µs duration, electroporation is not very sensitive to cell orientation. Interestingly, as the electric field strength increases beyond the onset of electroporation, perpendicular cells become more affected irrespective of pulse duration. The results obtained using the developed time-dependent nonlinear model are corroborated by in vitro experimental measurements. Our study will contribute to the process of further development and optimization of pulsed-field ablation and gene therapy in cardiac treatments. MDPI 2023-04-23 /pmc/articles/PMC10216437/ /pubmed/37238597 http://dx.doi.org/10.3390/biom13050727 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Scuderi, Maria
Dermol-Černe, Janja
Batista Napotnik, Tina
Chaigne, Sebastien
Bernus, Olivier
Benoist, David
Sigg, Daniel C.
Rems, Lea
Miklavčič, Damijan
Characterization of Experimentally Observed Complex Interplay between Pulse Duration, Electrical Field Strength, and Cell Orientation on Electroporation Outcome Using a Time-Dependent Nonlinear Numerical Model
title Characterization of Experimentally Observed Complex Interplay between Pulse Duration, Electrical Field Strength, and Cell Orientation on Electroporation Outcome Using a Time-Dependent Nonlinear Numerical Model
title_full Characterization of Experimentally Observed Complex Interplay between Pulse Duration, Electrical Field Strength, and Cell Orientation on Electroporation Outcome Using a Time-Dependent Nonlinear Numerical Model
title_fullStr Characterization of Experimentally Observed Complex Interplay between Pulse Duration, Electrical Field Strength, and Cell Orientation on Electroporation Outcome Using a Time-Dependent Nonlinear Numerical Model
title_full_unstemmed Characterization of Experimentally Observed Complex Interplay between Pulse Duration, Electrical Field Strength, and Cell Orientation on Electroporation Outcome Using a Time-Dependent Nonlinear Numerical Model
title_short Characterization of Experimentally Observed Complex Interplay between Pulse Duration, Electrical Field Strength, and Cell Orientation on Electroporation Outcome Using a Time-Dependent Nonlinear Numerical Model
title_sort characterization of experimentally observed complex interplay between pulse duration, electrical field strength, and cell orientation on electroporation outcome using a time-dependent nonlinear numerical model
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10216437/
https://www.ncbi.nlm.nih.gov/pubmed/37238597
http://dx.doi.org/10.3390/biom13050727
work_keys_str_mv AT scuderimaria characterizationofexperimentallyobservedcomplexinterplaybetweenpulsedurationelectricalfieldstrengthandcellorientationonelectroporationoutcomeusingatimedependentnonlinearnumericalmodel
AT dermolcernejanja characterizationofexperimentallyobservedcomplexinterplaybetweenpulsedurationelectricalfieldstrengthandcellorientationonelectroporationoutcomeusingatimedependentnonlinearnumericalmodel
AT batistanapotniktina characterizationofexperimentallyobservedcomplexinterplaybetweenpulsedurationelectricalfieldstrengthandcellorientationonelectroporationoutcomeusingatimedependentnonlinearnumericalmodel
AT chaignesebastien characterizationofexperimentallyobservedcomplexinterplaybetweenpulsedurationelectricalfieldstrengthandcellorientationonelectroporationoutcomeusingatimedependentnonlinearnumericalmodel
AT bernusolivier characterizationofexperimentallyobservedcomplexinterplaybetweenpulsedurationelectricalfieldstrengthandcellorientationonelectroporationoutcomeusingatimedependentnonlinearnumericalmodel
AT benoistdavid characterizationofexperimentallyobservedcomplexinterplaybetweenpulsedurationelectricalfieldstrengthandcellorientationonelectroporationoutcomeusingatimedependentnonlinearnumericalmodel
AT siggdanielc characterizationofexperimentallyobservedcomplexinterplaybetweenpulsedurationelectricalfieldstrengthandcellorientationonelectroporationoutcomeusingatimedependentnonlinearnumericalmodel
AT remslea characterizationofexperimentallyobservedcomplexinterplaybetweenpulsedurationelectricalfieldstrengthandcellorientationonelectroporationoutcomeusingatimedependentnonlinearnumericalmodel
AT miklavcicdamijan characterizationofexperimentallyobservedcomplexinterplaybetweenpulsedurationelectricalfieldstrengthandcellorientationonelectroporationoutcomeusingatimedependentnonlinearnumericalmodel