• DocumentCode
    3189526
  • Title

    Increased performance in genetic manipulation by modeling the dielectric properties of the rodent brain

  • Author

    Szczurkowska, Joanna ; dal Maschio, Marco ; Cwetsch, Andrzej W. ; Ghezzi, Diego ; Bony, Guillaume ; Alabastri, Alessandro ; Zaccaria, R.P. ; Di Fabrizio, Enzo ; Ratto, Gian Michele ; Cancedda, Laura

  • Author_Institution
    Dept. of Neurosci. & Brain Technol., Ist. Italiano di Tecnol., Genoa, Italy
  • fYear
    2013
  • fDate
    3-7 July 2013
  • Firstpage
    1615
  • Lastpage
    1618
  • Abstract
    Genetic approaches to control DNA expression in different brain areas have provided an excellent system to characterize gene function in health and disease of animal models. With respect to others, in utero electroporation of exogenous DNA into progenitor cells committed to specific brain areas is the optimal solution in terms of simplicity and velocity. Indeed, this method entails one quick and easy surgical procedure aimed at DNA injection in the embryonic brain followed by brief exposure to a strong electric field by a bipolar electrode. Nevertheless, the technique is still lacking the necessary control and reliability in addressing the field. Moving from a theoretical model that accounts for the morphology and the dielectric properties of the embryonic brain, we developed here a set of novel and reliable experimental configurations based on the use of three electrodes for electroporation in mouse. Indeed, by means of a full 3D model of the embryonic brain and the surrounding environment, we showed that the distribution of the electric field can be finely tuned in order to target specific brain regions at a desired temporal window by proper placement of the three electrodes. In the light of this theoretical background, we manufactured a three-electrode device and performed model-guided experimental sessions. The result was an increased spatial control, extended time frames and unprecedented reliability of the genetic manipulation, with respect to the current state of the art. In particular, the outcomes of this method applied into the mouse model are reported here for the first time.
  • Keywords
    DNA; bioelectric phenomena; biomedical electrodes; brain models; cellular biophysics; diseases; genetics; surgery; DNA expression; DNA injection; bipolar electrode; disease; electric field distribution; embryonic brain dielectric property; exogenous DNA; extended time frame; full 3D model; gene function; genetic manipulationmodeling; model-guided experimental session; morphological property; progenitor cel; rodent brain; spatial control; specific brain region; surgical procedure; surrounding environment; temporal window; three-electrode device; utero electroporation; Brain models; DNA; Electric fields; Electrodes; Mice;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Engineering in Medicine and Biology Society (EMBC), 2013 35th Annual International Conference of the IEEE
  • Conference_Location
    Osaka
  • ISSN
    1557-170X
  • Type

    conf

  • DOI
    10.1109/EMBC.2013.6609825
  • Filename
    6609825