• DocumentCode
    1148461
  • Title

    A Time-Dependent Numerical Model of Transmembrane Voltage Inducement and Electroporation of Irregularly Shaped Cells

  • Author

    Pucihar, Gorazd ; Miklavcic, Damijan ; Kotnik, Tadej

  • Author_Institution
    Fac. of Electr. Eng., Univ. of Ljubljana, Ljubljana
  • Volume
    56
  • Issue
    5
  • fYear
    2009
  • fDate
    5/1/2009 12:00:00 AM
  • Firstpage
    1491
  • Lastpage
    1501
  • Abstract
    We describe a finite-element model of a realistic irregularly shaped biological cell in an external electric field that allows the calculation of time-dependent changes of the induced transmembrane voltage ( DeltaPsi) and simulation of cell membrane electroporation. The model was first tested by comparing its results to the time-dependent analytical solution for DeltaPsi on a nonporated spherical cell, and a good agreement was obtained. To simulate electroporation, the model was extended by introducing a variable membrane conductivity. In the regions exposed to a sufficiently high DeltaPsi, the membrane conductivity rapidly increased with time, leading to a modified spatial distribution of DeltaPsi. We show that steady-state models are insufficient for accurate description of DeltaPsi, as well as determination of electroporated regions of the membrane, and time-dependent models should be used instead. Our modeling approach also allows direct comparison of calculations and experiments. As an example, we show that calculated regions of electroporation correspond to the regions of molecular transport observed experimentally on the same cell from which the model was constructed. Both the time-dependent model of DeltaPsi and the model of electroporation can be exploited further to study the behavior of more complicated cell systems, including those with cell-to-cell interactions.
  • Keywords
    bioelectric phenomena; biomembrane transport; finite element analysis; cell-to-cell interaction; finite-element model; irregularly shaped cell electroporation; molecular transport; steady-state model; time-dependent numerical model; transmembrane voltage; variable membrane conductivity; Biological cells; Biological system modeling; Biomembranes; Cells (biology); Conductivity; Finite element methods; Lead; Numerical models; Testing; Voltage; Electropermeabilization; finite elements; propidium iodide; transmembrane potential; Algorithms; Animals; CHO Cells; Cell Membrane; Cell Shape; Computer Simulation; Cricetinae; Cricetulus; Electroporation; Finite Element Analysis; Fluorescence; Indicators and Reagents; Membrane Potentials; Models, Biological; Propidium; Time Factors;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2009.2014244
  • Filename
    4776470