• DocumentCode
    1084648
  • Title

    A universal steady state I-V relationship for membrane current

  • Author

    Chernyak, Yuri B.

  • Author_Institution
    Div. of Health Sci. & Technol., Harvard Univ., Cambridge, MA, USA
  • Volume
    42
  • Issue
    12
  • fYear
    1995
  • Firstpage
    1145
  • Lastpage
    1157
  • Abstract
    A purely electrical mechanism for the gating of membrane ionic channel gives rise to a simple I-V relationship for membrane current. The authors´ approach is based on the known presence of gating charge, which is an established property of the membrane channel gating. The gating charge is systematically treated as a polarization of the channel protein which varies with the external electric field and modifies the effective potential through which the ions migrate in the channel. Two polarization effects have been considered: 1) the up or down shift of the whole potential function; and 2) the change in the effective electric field inside the channel which is due to familiar effect of the effective reduction of the electric field inside a dielectric body because of the presence of surface charges on its surface. Both effects are linear in the channel polarization. The ionic current is described by a steady state solution of the Nernst-Planck equation with the potential directly controlled by the gating charge system. The solution describes reasonably well the steady state and peak-current I-V relationships for different channels, and when applied adiabatically, explains the time lag between the gating charge current and the rise of the ionic current. The approach developed can be useful as an effective way to model the ionic currents in axons, cardiac cells and other excitable tissues.
  • Keywords
    bioelectric phenomena; biomembrane transport; physiological models; Nernst-Planck equation; axons; cardiac cells; channel polarization; dielectric body; electric field effective reduction; excitable tissues; gating charge current; ionic current; membrane current; membrane ionic channel gating; polarization effects; purely electrical mechanism; time lag; universal steady state I-V relationship; Biomembranes; Control systems; Dielectrics; Equations; Markov processes; Polarization; Proteins; Space technology; Steady-state; Voltage; Animals; Electric Conductivity; Humans; Ion Channel Gating; Ion Channels; Mathematics; Membrane Potentials; Models, Biological; Time Factors;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/10.476121
  • Filename
    476121