• DocumentCode
    52047
  • Title

    Assessment of Cytoplasm Conductivity by Nanosecond Pulsed Electric Fields

  • Author

    Denzi, Agnese ; Merla, Caterina ; Palego, Cristiano ; Paffi, Alessandra ; Yaqing Ning ; Multari, Caroline R. ; Xuanhong Cheng ; Apollonio, Francesca ; Hwang, James C. M. ; Liberti, Micaela

  • Author_Institution
    Sapienza Univ., Rome, Italy
  • Volume
    62
  • Issue
    6
  • fYear
    2015
  • fDate
    Jun-15
  • Firstpage
    1595
  • Lastpage
    1603
  • Abstract
    The aim of this paper is to propose a new method for the better assessment of cytoplasm conductivity, which is critical to the development of electroporation protocols as well as insight into fundamental mechanisms underlying electroporation. For this goal, we propose to use nanosecond electrical pulses to bypass the complication of membrane polarization and a single cell to avoid the complication of the application of the “mixing formulas.” Further, by suspending the cell in a low-conductivity medium, it is possible to force most of the sensing current through the cytoplasm for a more direct assessment of its conductivity. For proof of principle, the proposed technique was successfully demonstrated on a Jurkat cell by comparing the measured and modeled currents. The cytoplasm conductivity was best assessed at 0.32 S/m and it is in line with the literature. The cytoplasm conductivity plays a key role in the understanding of the basis mechanism of the electroporation phenomenon, and in particular, a large error in the cytoplasm conductivity determination could result in a correspondingly large error in predicting electroporation. Methods for a good estimation of such parameter become fundamental.
  • Keywords
    bioelectric potentials; biological effects of fields; biomedical measurement; biomembranes; cellular biophysics; electrical conductivity; Jurkat cell; cytoplasm conductivity assessment; electroporation phenomenon; electroporation prediction; electroporation protocol development; low-conductivity medium; membrane polarization complication; nanosecond electrical pulses; nanosecond pulsed electric fields; single cell complication; Biomedical measurement; Biomembranes; Conductivity; Current measurement; Electrodes; Frequency measurement; Time measurement; Biological cells; biomedical transducers; cell cytoplasm conductivity; conductivity measurement; electroporation; microdosimetry;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2015.2399250
  • Filename
    7031398