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J Neurophysiol 92: 715-725, 2004; doi:10.1152/jn.00159.2004
0022-3077/04 $5.00
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Light-Evoked Oscillatory Discharges in Retinal Ganglion Cells Are Generated by Rhythmic Synaptic Inputs

Itaru Arai, Yoshiyuki Yamada, Tomomitsu Asaka and Masao Tachibana

Department of Psychology, Graduate School of Humanities and Sociology, The University of Tokyo, Tokyo 113-0033, Japan

Submitted 19 February 2004; accepted in final form 25 March 2004

In the visual system, optimal light stimulation sometimes generates {gamma}-range (ca. 20 ~ 80 Hz) synchronous oscillatory spike discharges. This phenomenon is assumed to be related to perceptual integration. Applying a planar multi-electrode array to the isolated frog retina, Ishikane et al. demonstrated that dimming detectors, off-sustained type ganglion cells, generate synchronous oscillatory spike discharges in response to diffuse dimming illumination. In the present study, applying the whole cell current-clamp technique to the isolated frog retina, we examined how light-evoked oscillatory spike discharges were generated in dimming detectors. Light-evoked oscillatory (~30 Hz) spike discharges were triggered by rhythmic (~30 Hz) fluctuations superimposed on a depolarizing plateau potential. When a suprathreshold steady depolarizing current was injected into a dimming detector, only a few spikes were evoked at the stimulus onset. However, repetitive spikes were triggered by a {gamma}-range sinusoidal current superimposed on the steady depolarizing current. Thus the light-evoked rhythmic fluctuations are likely to be generated presynaptically. The light-evoked rhythmic fluctuations were suppressed not by intracellular application of N-(2,6-dimethyl-phenylcarbamoylmethyl)triethylammonium bromide (QX-314), a Na+ channel blocker, to the whole cell clamped dimming detector but by bath-application of tetrodotoxin to the retina. The light-evoked rhythmic fluctuations were suppressed by a GABAA receptor antagonist but potentiated by a GABAC receptor antagonist, whereas these fluctuations were little affected by a glycine receptor antagonist. Because amacrine cells are spiking neurons and because GABA is one of the main transmitters released from amacrine cells, amacrine cells may participate in generating rhythmically fluctuated synaptic input to dimming detectors.


Address for reprint requests and other correspondence: M. Tachibana, Dept. of Psychology, Graduate School of Humanities and Sociology, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-0033, Japan (E-mail: Ltmasao{at}L.u-tokyo.ac.jp).




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J. Petit-Jacques, B. Volgyi, B. Rudy, and S. Bloomfield
Spontaneous Oscillatory Activity of Starburst Amacrine Cells in the Mouse Retina
J Neurophysiol, September 1, 2005; 94(3): 1770 - 1780.
[Abstract] [Full Text] [PDF]




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