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Updated: May 3, 2026

Immunohistochemical and Calcium Imaging Methods in Wholemount Rat Retina
Published on: October 13, 2014
Developmental changes in NMDA receptor subunit composition at ON and OFF bipolar cell synapses onto
Benjamin K Stafford1, Silvia J H Park, Kwoon Y Wong
1Departments of Ophthalmology and Visual Sciences, and Molecular, Cellular, and Developmental Biology, University of Michigan, Ann Arbor, Michigan 48105, Departments of Ophthalmology and Visual Science, and Cellular and Molecular Physiology, Yale University, New Haven, Connecticut 06511.
Insights
Activity shapes retinal synapse development. NMDA receptors (NMDARs) are crucial for this process, with GluN2B subunit involvement decreasing over time in specific ganglion cells.
Area of Science:
- Neuroscience
- Developmental Biology
- Retinal Physiology
Background:
- Activity-dependent synapse formation is critical for retinal development.
- Extrasynaptic NMDA receptors (NMDARs) may play a role in shaping developing retinal circuits.
- The function of NMDARs, particularly involving GluN2B subunits, may differ between ON and OFF bipolar cell synapses during development.
Purpose of the Study:
- To investigate the role of NMDARs in glutamatergic synapse development in the mouse retina.
- To characterize NMDAR-mediated responses in genetically identified direction-selective ganglion cells (dsGCs) during development.
- To determine the contribution of GluN2B-containing NMDARs to synaptic transmission in developing dsGCs.
Main Methods:
- Whole-cell recordings of NMDAR-mediated responses in TRHR and Drd4 dsGCs from P7 to P28.
- Stimulation using puffed NMDA and light-evoked responses under receptor blockade.
- Conductance analysis and pharmacological manipulation using the GluN2B antagonist ifenprodil.
Main Results:
- Both TRHR and Drd4 dsGCs exhibited light-evoked NMDAR responses from P14 to P28.
- ON and OFF bipolar cell inputs evoked similar NMDAR responses in both dsGC types at studied ages.
- At P14, ifenprodil partially blocked responses in both dsGC types, but at P28, only TRHR cells remained sensitive.
Conclusions:
- NMDARs are integral to ON and OFF bipolar cell synapse development in mouse retinal ganglion cells.
- GluN2B subunit-containing NMDARs contribute significantly at P14 but show declining involvement by P28 in a cell-type specific manner.
- These findings highlight the dynamic role of NMDARs in activity-dependent retinal circuit maturation.
Abstract:
In the developing mouse retina, spontaneous and light-driven activity shapes bipolar→ganglion cell glutamatergic synapse formation, beginning around the time of eye-opening (P12-P14) and extending through the first postnatal month. During this time, glutamate release can spill outside the synaptic cleft and possibly stimulate extrasynaptic NMDA-type glutamate receptors (NMDARs) on ganglion cells. Furthermore, the role of NMDARs during development may differ between ON and OFF bipolar synapses as in mature retina, where ON synapses reportedly include extrasynaptic NMDARs with GluN2B subunits. To better understand the function of glutamatergic synapses during development, we made whole-cell recordings of NMDAR-mediated responses, in vitro, from two types of genetically identified direction-selective ganglion cells (dsGCs): TRHR (thyrotropin-releasing hormone receptor) and Drd4 (dopamine receptor 4). Both dsGC types responded to puffed NMDA between P7 and P28; and both types exhibited robust light-evoked NMDAR-mediated responses at P14 and P28 that were quantified by conductance analysis during nicotinic and GABA(A) receptor blockade. For a given cell type and at a given age, ON and OFF bipolar cell inputs evoked similar NMDAR-mediated responses, suggesting that ON-versus-OFF differences in mature retina do not apply to the cell types or ages studied here. At P14, puff- and light-evoked NMDAR-mediated responses in both dsGCs were partially blocked by the GluN2B antagonist ifenprodil, whereas at P28 only TRHR cells remained ifenprodil-sensitive. NMDARs contribute at both ON and OFF bipolar cell synapses during a period of robust activity-dependent synaptic development, with declining GluN2B involvement over time in specific ganglion cell types.
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