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Hybrid analytical-numerical approach for investigation of differential effects in normal and cancer cells under electroporation

Electroporation has offered important biomedical applications in electrochemotherapy, tissue ablation and gene editing recently. Time and computation efficient analytical and numerical models should be developed to understand the differential effects of electroporation on normal and cancer cells. In...

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Autores principales: Aslam, Muhammad Awais, Riaz, Kashif, Mahmood, Muhammad Qasim, Zubair, Muhammad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076493/
https://www.ncbi.nlm.nih.gov/pubmed/35541630
http://dx.doi.org/10.1039/c9ra07428g
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author Aslam, Muhammad Awais
Riaz, Kashif
Mahmood, Muhammad Qasim
Zubair, Muhammad
author_facet Aslam, Muhammad Awais
Riaz, Kashif
Mahmood, Muhammad Qasim
Zubair, Muhammad
author_sort Aslam, Muhammad Awais
collection PubMed
description Electroporation has offered important biomedical applications in electrochemotherapy, tissue ablation and gene editing recently. Time and computation efficient analytical and numerical models should be developed to understand the differential effects of electroporation on normal and cancer cells. In this work, we present a hybrid analytical–numerical approach to investigate the behavior of normal and cancer cells under electroporation. We have compared the human breast cancer cell (MCF-7) and non-tumorigenic human breast cell (MCF-10A) under electroporation in terms of change in transmembrane voltage and pore formation on cell surface. The effects of electric pulse time, amplitude and membrane conductivity variation are analyzed in a systematic manner. To accelerate the calculation of transmembrane voltage, we have introduced a simple Multilayer Electric Potential Model (MEPM) which calculates the potential distribution across the cell analytically. The MEPM calculates electric potential distribution across a biological cell sandwiched between two semi-circular electrodes held at fixed potential, by solving the Laplace's equation over an equivalent planar, multilayer geometry. The MEPM model is then used in a Finite Element Method (FEM) based numerical model of electroporation. Transmembrane voltage and pore density for electroporated MCF-10A are estimated to be 1.31 V and 2.98 × 10(13) m(−2) respectively, and for MCF-7 the estimated values are 0.53 V and 1.93 × 10(14) m(−2), respectively. Our results suggest that under electroporation, the cancer cell's membrane get much more permeabilized than its counterpart normal cell even at small values of transmembrane voltage. This work provides a theoretical basis for further experimental exploration of electroporation process in cancer therapy, and serves as a design tool for performance optimization.
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spelling pubmed-90764932022-05-09 Hybrid analytical-numerical approach for investigation of differential effects in normal and cancer cells under electroporation Aslam, Muhammad Awais Riaz, Kashif Mahmood, Muhammad Qasim Zubair, Muhammad RSC Adv Chemistry Electroporation has offered important biomedical applications in electrochemotherapy, tissue ablation and gene editing recently. Time and computation efficient analytical and numerical models should be developed to understand the differential effects of electroporation on normal and cancer cells. In this work, we present a hybrid analytical–numerical approach to investigate the behavior of normal and cancer cells under electroporation. We have compared the human breast cancer cell (MCF-7) and non-tumorigenic human breast cell (MCF-10A) under electroporation in terms of change in transmembrane voltage and pore formation on cell surface. The effects of electric pulse time, amplitude and membrane conductivity variation are analyzed in a systematic manner. To accelerate the calculation of transmembrane voltage, we have introduced a simple Multilayer Electric Potential Model (MEPM) which calculates the potential distribution across the cell analytically. The MEPM calculates electric potential distribution across a biological cell sandwiched between two semi-circular electrodes held at fixed potential, by solving the Laplace's equation over an equivalent planar, multilayer geometry. The MEPM model is then used in a Finite Element Method (FEM) based numerical model of electroporation. Transmembrane voltage and pore density for electroporated MCF-10A are estimated to be 1.31 V and 2.98 × 10(13) m(−2) respectively, and for MCF-7 the estimated values are 0.53 V and 1.93 × 10(14) m(−2), respectively. Our results suggest that under electroporation, the cancer cell's membrane get much more permeabilized than its counterpart normal cell even at small values of transmembrane voltage. This work provides a theoretical basis for further experimental exploration of electroporation process in cancer therapy, and serves as a design tool for performance optimization. The Royal Society of Chemistry 2019-12-16 /pmc/articles/PMC9076493/ /pubmed/35541630 http://dx.doi.org/10.1039/c9ra07428g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Aslam, Muhammad Awais
Riaz, Kashif
Mahmood, Muhammad Qasim
Zubair, Muhammad
Hybrid analytical-numerical approach for investigation of differential effects in normal and cancer cells under electroporation
title Hybrid analytical-numerical approach for investigation of differential effects in normal and cancer cells under electroporation
title_full Hybrid analytical-numerical approach for investigation of differential effects in normal and cancer cells under electroporation
title_fullStr Hybrid analytical-numerical approach for investigation of differential effects in normal and cancer cells under electroporation
title_full_unstemmed Hybrid analytical-numerical approach for investigation of differential effects in normal and cancer cells under electroporation
title_short Hybrid analytical-numerical approach for investigation of differential effects in normal and cancer cells under electroporation
title_sort hybrid analytical-numerical approach for investigation of differential effects in normal and cancer cells under electroporation
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076493/
https://www.ncbi.nlm.nih.gov/pubmed/35541630
http://dx.doi.org/10.1039/c9ra07428g
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