• DocumentCode
    1414904
  • Title

    Theoretical and Experimental Analysis of Electroporated Membrane Conductance in Cell Suspension

  • Author

    Suzuki, Daniela O H ; Ramos, Airton ; Ribeiro, Maria C M ; Cazarolli, Luisa H. ; Silva, Fatima R M B ; Leite, Laura D. ; Marques, Jefferson L B

  • Author_Institution
    Dept. of Electr. Eng., Fed. Univ. of Santa Catarina (UFSC), Florianopolis, Brazil
  • Volume
    58
  • Issue
    12
  • fYear
    2011
  • Firstpage
    3310
  • Lastpage
    3318
  • Abstract
    An intense electric field can be applied to increase the membrane conductance G and consequently, the conductivity of cell suspension. This phenomenon is called electroporation. This mechanism is used in a wide range of medical applications, genetic engineering, and therapies. Conductivity measurements of cell suspensions were carried out during application of electric fields from 40 to 165 kV/m. Experimental results were analyzed with two electroporation models: the asymptotic electroporation model was used to estimate Gm at the beginning and at the end of electric field pulse, and the extended Kinosita electroporation model to increase Gm linearly in time. The maximum G was 1-7 × 104 S/m2, and the critical angle (when the Gm is insignificant) was 50°-65°. In addition, the sensitivity of electroporated membrane conductance to extracellular and cytoplasmatic conductivity and cell radius has been studied. This study showed that external conductivity and cell radius are important parameters affecting the pore-opening phenomenon. However, if the cell radius is larger than 7 μm in low conductivity medium, the cell dimensions are not so important.
  • Keywords
    bioelectric phenomena; biological effects of fields; biomembranes; cellular effects of radiation; electric admittance; electrical conductivity; electrical conductivity measurement; asymptotic electroporation model; cell radius; cell suspension; conductivity measurements; cytoplasmatic conductivity; electric field pulse; electroporated membrane conductance; experimental analysis; extended Kinosita electroporation model; external conductivity; genetic engineering; intense electric field; medical applications; membrane conductance G; pore-opening phenomenon; theoretical analysis; therapies; Biomembranes; Conductivity; Electric fields; Electric potential; Equations; Mathematical model; Suspensions; Electroporation; electric fields; membrane conductance; red blood cell; transmembrane potential; Animals; Cell Membrane; Cell Physiological Processes; Electric Conductivity; Electromagnetic Fields; Electroporation; Erythrocytes; Male; Membrane Potentials; Models, Biological; Porosity; Rats; Rats, Wistar;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2010.2103074
  • Filename
    5677451