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GABA A , GABA C and glycine receptor‐mediated inhibition differentially affects light‐evoked signalling from mouse retinal rod bipolar cells
Author(s) -
Eggers Erika D.,
Lukasiewicz Peter D.
Publication year - 2006
Publication title -
the journal of physiology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.802
H-Index - 240
eISSN - 1469-7793
pISSN - 0022-3751
DOI - 10.1113/jphysiol.2005.103648
Subject(s) - inhibitory postsynaptic potential , gabaergic , excitatory postsynaptic potential , postsynaptic potential , amacrine cell , neuroscience , glycine receptor , postsynaptic current , retina , biology , receptor , glycine , chemistry , biophysics , biochemistry , amino acid
Rod bipolar cells relay visual signals evoked by dim illumination from the outer to the inner retina. GABAergic and glycinergic amacrine cells contact rod bipolar cell terminals, where they modulate transmitter release and contribute to the receptive field properties of third order neurones. However, it is not known how these distinct inhibitory inputs affect rod bipolar cell output and subsequent retinal processing. To determine whether GABA A , GABA C and glycine receptors made different contributions to light‐evoked inhibition, we recorded light‐evoked inhibitory postsynaptic currents (L‐IPSCs) from rod bipolar cells mediated by each pharmacologically isolated receptor. All three receptors contributed to L‐IPSCs, but their relative roles differed; GABA C receptors transferred significantly more charge than GABA A and glycine receptors. We determined how these distinct inhibitory inputs affected rod bipolar cell output by recording light‐evoked excitatory postsynaptic currents (L‐EPSCs) from postsynaptic AII and A17 amacrine cells. Consistent with their relative contributions to L‐IPSCs, GABA C receptor activation most effectively reduced the L‐EPSCs, while glycine and GABA A receptor activation reduced the L‐EPSCs to a lesser extent. We also found that GABAergic L‐IPSCs in rod bipolar cells were limited by GABA A receptor‐mediated inhibition between amacrine cells. We show that GABA A , GABA C and glycine receptors mediate functionally distinct inhibition to rod bipolar cells, which differentially modulated light‐evoked rod bipolar cell output. Our findings suggest that modulating the relative proportions of these inhibitory inputs could change the characteristics of rod bipolar cell output.