Functional Circuitry for Peripheral Suppression in Mammalian Y-Type Retinal Ganglion Cells
- 1 June 2007
- journal article
- research article
- Published by American Physiological Society in Journal of Neurophysiology
- Vol. 97 (6) , 4327-4340
- https://doi.org/10.1152/jn.01091.2006
Abstract
A retinal ganglion cell receptive field is made up of an excitatory center and an inhibitory surround. The surround has two components: one driven by horizontal cells at the first synaptic layer and one driven by amacrine cells at the second synaptic layer. Here we characterized how amacrine cells inhibit the center response of on- and off-center Y-type ganglion cells in the in vitro guinea pig retina. A high spatial frequency grating (4–5 cyc/mm), beyond the spatial resolution of horizontal cells, drifted in the ganglion cell receptive field periphery to stimulate amacrine cells. The peripheral grating suppressed the ganglion cell spiking response to a central spot. Suppression of spiking was strongest and observed most consistently in off cells. In intracellular recordings, the grating suppressed the subthreshold membrane potential in two ways: a reduced slope (gain) of the stimulus-response curve by ∼20–30% and, in off cells, a tonic ∼1-mV hyperpolarization. In voltage clamp, the grating increased an inhibitory conductance in all cells and simultaneously decreased an excitatory conductance in off cells. To determine whether center response inhibition was presynaptic or postsynaptic (shunting), we measured center response gain under voltage-clamp and current-clamp conditions. Under both conditions, the peripheral grating reduced center response gain similarly. This result suggests that reduced gain in the ganglion cell subthreshold center response reflects inhibition of presynaptic bipolar terminals. Thus amacrine cells suppressed ganglion cell center response gain primarily by inhibiting bipolar cell glutamate release.Keywords
This publication has 80 references indexed in Scilit:
- Cellular Basis for Contrast Gain Control over the Receptive Field Center of Mammalian Retinal Ganglion CellsJournal of Neuroscience, 2007
- Retinal Ganglion Cells Can Rapidly Change Polarity from Off to OnPLoS Biology, 2007
- Chromatic Properties of Horizontal and Ganglion Cell Responses Follow a Dual Gradient in Cone Opsin ExpressionJournal of Neuroscience, 2006
- Network Variability Limits Stimulus-Evoked Spike Timing Precision in Retinal Ganglion CellsNeuron, 2006
- Populations of wide‐field amacrine cells in the mouse retinaJournal of Comparative Neurology, 2006
- Suppressive Surrounds and Contrast Gain in Magnocellular-Pathway Retinal Ganglion Cells of MacaqueJournal of Neuroscience, 2006
- Presynaptic Inhibition Modulates Spillover, Creating Distinct Dynamic Response Ranges of Sensory OutputNeuron, 2006
- The fundamental plan of the retinaNature Neuroscience, 2001
- Neurofibrillar long-range amacrine cells in mammalian retinaeProceedings of the Royal Society of London. B. Biological Sciences, 1988
- Lateral Interactions at Inner Plexiform Layer of Vertebrate Retina: Antagonistic Responses to ChangeScience, 1972