• DocumentCode
    11810
  • Title

    System for the Nanoporation of Biological Cells Based on an Optically-Triggered High-Voltage Spark-Gap Switch

  • Author

    Balevicius, Saulius ; Stankevic, Voitech ; Zurauskiene, Nerija ; Shatkovskis, Eugenijus ; Stirke, A. ; Bitinaite, Aiste ; Saule, Rita ; Maciuleviciene, Ruta ; Saulis, Gintautas

  • Author_Institution
    Center for Phys. Sci. & Technol., Vilnius, Lithuania
  • Volume
    41
  • Issue
    10
  • fYear
    2013
  • fDate
    Oct. 2013
  • Firstpage
    2706
  • Lastpage
    2711
  • Abstract
    This nanosecond electric pulse generator is designed for the electroporation of biological cells suspended in a liquid media. It is based on a spark-gap switch, which is optically triggered by a 0.45-ns duration and 1-mJ energy laser pulse (wavelength 1062 nm). This system can also be triggered manually by changing the distance between the spark-gap electrodes. It is able to generate in a 75- Ω impedance transmission line near-perfect square-shaped electric pulses (rise and fall times ) with durations of 10, 40, 60, or 92 ns. The maximal amplitude of such pulses is 12.5 kV. The main advantage of this system is its ability to generate single pulses, the amplitude and duration of which can be precisely set in advance. To treat the cells, a coaxial cuvette with a 0.03-mL active volume and a 1-mm distance between the 28.3- mm2 circular-shaped electrodes was used. The system was tested on human erythrocytes. It was demonstrated that for the 92- and 40-ns duration pulse, the amplitude required to electroporate 50% of the cells was 20 and 65 kV/cm, respectively.
  • Keywords
    bio-optics; bioelectric phenomena; cellular effects of radiation; nanobiotechnology; spark gaps; biological cells nanoporation; coaxial cuvette; electroporation; energy 1 mJ; high voltage spark gap switch; impedance transmission line; laser pulse; liquid media; nanosecond electric pulse generator; optically triggered spark gap switch; resistance 75 ohm; spark gap electrodes; time 0.45 ns; time 10 ns; time 40 ns; time 60 ns; time 92 ns; voltage 12.5 kV; Biological cells; Biomedical optical imaging; Electrodes; Jitter; Nanobioscience; Optical pulses; Optical switches; Biological cells; electrical pulses; nanoporation;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2013.2280376
  • Filename
    6601017