Literature DB >> 15887531

Sequential finite element model of tissue electropermeabilization.

Davorka Sel1, David Cukjati, Danute Batiuskaite, Tomaz Slivnik, Lluis M Mir, Damijan Miklavcic.   

Abstract

Permeabilization, when observed on a tissue level, is a dynamic process resulting from changes in membrane permeability when exposing biological cells to external electric field (E). In this paper we present a sequential finite element model of E distribution in tissue which considers local changes in tissue conductivity due to permeabilization. These changes affect the pattern of the field distribution during the high voltage pulse application. The presented model consists of a sequence of static models (steps), which describe E distribution at discrete time intervals during tissue permeabilization and in this way present the dynamics of electropermeabilization. The tissue conductivity for each static model in a sequence is determined based on E distribution from the previous step by considering a sigmoid dependency between specific conductivity and E intensity. Such a dependency was determined by parameter estimation on a set of current measurements, obtained by in vivo experiments. Another set of measurements was used for model validation. All experiments were performed on rabbit liver tissue with inserted needle electrodes. Model validation was carried out in four different ways: 1) by comparing reversibly permeabilized tissue computed by the model and the reversibly permeabilized area of tissue as obtained in the experiments; 2) by comparing the area of irreversibly permeabilized tissue computed by the model and the area where tissue necrosis was observed in experiments; 3) through the comparison of total current at the end of pulse and computed current in the last step of sequential electropermeabilization model; 4) by comparing total current during the first pulse and current computed in consecutive steps of a modeling sequence. The presented permeabilization model presents the first approach of describing the course of permeabilization on tissue level. Despite some approximations (ohmic tissue behavior) the model can predict the permeabilized volume of tissue, when exposed to electrical treatment. Therefore, the most important contribution and novelty of the model is its potentiality to be used as a tool for determining parameters for effective tissue permeabilization.

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Year:  2005        PMID: 15887531     DOI: 10.1109/TBME.2005.845212

Source DB:  PubMed          Journal:  IEEE Trans Biomed Eng        ISSN: 0018-9294            Impact factor:   4.538


  54 in total

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Journal:  J Membr Biol       Date:  2014-10-07       Impact factor: 1.843

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Authors:  Chang Kyu Sung; Hong Bae Kim; Jong Hyun Jung; Ku Youn Baik; Kee Wook Moon; Hyung-Sik Kim; Jeong-Han Yi; Jong Hoon Chung
Journal:  Technol Cancer Res Treat       Date:  2016-04-14

5.  EView: An electric field visualization web platform for electroporation-based therapies.

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Authors:  A L Tosi; L G Campana; F Dughiero; M Forzan; M Rastrelli; E Sieni; C R Rossi
Journal:  Med Biol Eng Comput       Date:  2016-10-01       Impact factor: 2.602

7.  Towards treatment planning and treatment of deep-seated solid tumors by electrochemotherapy.

Authors:  Damijan Miklavcic; Marko Snoj; Anze Zupanic; Bor Kos; Maja Cemazar; Mateja Kropivnik; Matej Bracko; Tjasa Pecnik; Eldar Gadzijev; Gregor Sersa
Journal:  Biomed Eng Online       Date:  2010-02-23       Impact factor: 2.819

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9.  Electrical resistance of human soft tissue sarcomas: an ex vivo study on surgical specimens.

Authors:  L G Campana; M Cesari; F Dughiero; M Forzan; M Rastrelli; C R Rossi; E Sieni; A L Tosi
Journal:  Med Biol Eng Comput       Date:  2015-09-01       Impact factor: 2.602

10.  An e-learning application on electrochemotherapy.

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Journal:  Biomed Eng Online       Date:  2009-10-20       Impact factor: 2.819

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