• DocumentCode
    805188
  • Title

    Electroporation of biological membranes from multicellular to nano scales

  • Author

    Weaver, James C.

  • Author_Institution
    HST Biomed. Eng. Center, Harvard-MIT Div. of Health Sci. & Technol., Cambridge, MA, USA
  • Volume
    10
  • Issue
    5
  • fYear
    2003
  • Firstpage
    754
  • Lastpage
    768
  • Abstract
    Electroporation, widely used in research and applications, is briefly reviewed. Both cell and artificial planar bilayer membranes exhibit dramatic changes if the transmembrane voltage is raised to ∼0.2 to 1 V by various electric field pulses. Ionic and molecular transport increases by orders of magnitude, with both reversible and irreversible outcomes. Initially the term breakdown was used, but ion pair generation of classic dielectric breakdown was ruled out. Instead, a stochastic pore hypothesis is consistent with features of electroporation in planar lipid membranes. There is a rapid, nonlinear conduction increase through a rapidly evolving pore population, and this causes the fast membrane discharge previously termed "breakdown". Phenomena due to primary aqueous pores and secondary processes such as heating and chemical exchange have been observed in planar bilayers, cell single systems encountered mainly in vitro, multicellular systems relevant to in vivo applications, and possibly subcellular structures such as mitochondria. For membrane systems that approach nanoscales, modified behavior should occur because of conformational constraints, and deterministic processes may become more important. Understanding electroporation is a subset of a general problem: obtaining a quantitative description of how electromagnetic field-altered changes in chemical species within a biological system govern observed effects.
  • Keywords
    bioelectric phenomena; biological effects of fields; biomembrane transport; electric field effects; lipid bilayers; reviews; biological membranes electroporation; biological system; chemical exchange; chemical species; electromagnetic field-altered changes; fast membrane discharge; heating; in vitro multicellular systems; mitochondria; multicellular scale; nanoscale; primary aqueous pores; rapidly evolving pore population; secondary processes; stochastic pore hypothesis; Biomembranes; Chemical processes; Dielectric breakdown; Electric breakdown; Heating; In vitro; In vivo; Lipidomics; Stochastic processes; Voltage;
  • fLanguage
    English
  • Journal_Title
    Dielectrics and Electrical Insulation, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1070-9878
  • Type

    jour

  • DOI
    10.1109/TDEI.2003.1237325
  • Filename
    1237325