• J. Neurophysiol. · Oct 1997

    Mechanisms by which cell geometry controls repetitive impulse firing in retinal ganglion cells.

    • J F Fohlmeister and R F Miller.
    • Physiology Department, University of Minnesota, Minneapolis, Minnesota 55455, USA.
    • J. Neurophysiol. 1997 Oct 1; 78 (4): 1948-64.

    AbstractModels for generating repetitive impulse activity were developed based on multicompartmental representations of ganglion cell morphology in the amphibian retina. Each model includes five nonlinear ion channels and one linear (leakage) channel. Compartmental distribution of ion channel type and density was designed to simulate whole cell recording experiments carried out in the intact retina-eyecup preparation. Correspondence between the model and physiology emphasized channel-specific details in the impulse waveform, based on phase plot analysis, frequency versus current (F/I) properties, and interspike trajectories for current injected into the soma, as well as the ability to conduct impulses in both orthodromic and antidromic directions. Two general types of model are developed, including equivalent cylinder representations and more realistic compartmentalizations of dendritic morphology. These multicompartmental models include representations for dendritic trees, soma, axon hillock, a thin axonal segment, and axon distal to thin segment. A large number of compartments (

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