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Dravid, S. M.

Publications and source records attributed to Dravid, S. M..

3 recordsLinked to original sources

The small GTPase Rem2 modulates sex-dependent spatial learning by regulating CA1 glutamate receptor composition

The small GTPase Rem2 is a key signaling molecule involved in synaptic formation, dendritic complexity, spine formation, and regulation of CaMKII-dependent long-term potentiation (LTP). However, it remains unclear how Rem2 explicitly impacts learning and memory. To address this issue, we deleted Rem2 specifically in dorsal CA1 neurons of male and female mice and assessed spatial learning using a spatial object recognition (SOR) task. We found that males outperform females in this behavioral assay and that deleting Rem2 did not impact spatial learning in males. In contrast, Rem2 deletion significantly improved spatial learning in females enabling them to perform as well as males in the SOR task. Using an automated Western blot system to assess all known AMPA- and NMDA-mediated glutamate receptor (AMPAR and NMDAR) subunits in each mouse, we found that the sex-dependent change in SOR we observed was likely due to Rem2 increasing GluN2D expression in the interneurons of female mice only. Furthermore, using S-statistics to compare the overall AMPAR and NMDAR composition among groups, we found that males and females normally have divergent covariance structures but this divergence is eliminated when Rem2 is deleted from CA1 neurons. These results reveal an unexpected role of Rem2 in maintaining sex differences in glutamate receptor composition and spatial learning abilities. To our knowledge, this is the first demonstration of a signaling molecule that confers sexual dimorphism to excitatory synapses. As such, Rem2 may play a critical role in understanding how sex-dependent symptoms of neurodevelopmental and neurodegenerative disorders arise.

neuroscience↗

Effects of Glutamate Delta 1 Receptor (GluD1) Deletion on the Ultrastructural Features of Corticostriatal and Thalamostriatal Synapses in Mice

The glutamate delta 1 receptor (GluD1) represents a unique subtype of ionotropic glutamate receptors that is strongly expressed in the mammalian striatum. Disruptions of the GRID1 gene, which encodes GluD1, have been associated with neuropsychiatric disorders, including schizophrenia and autism spectrum disorder; however, the role of GluD1 in the brain remains poorly understood. Previous studies in mice have demonstrated that the knockout of striatal GluD1 led to fear-conditioning deficits and depressive-like behaviors. Furthermore, these mice exhibited reduced excitatory input to the striatum due to a loss of thalamostriatal innervation, whereas corticostriatal innervation was unaffected. In this study, we examined whether changes in synapse morphology contribute to the observed functional deficits. We found that the ablation of GluD1 does not affect synaptic targeting patterns of corticostriatal and thalamostriatal terminals, using transmission electron microscopy. We further utilized three-dimensional reconstruction to obtain quantitative data on synapse ultrastructure and found no significant changes in corticostriatal and thalamostriatal synaptic components, including the presynaptic terminal volume, postsynaptic density area and morphology, and postsynaptic dendritic spine volume. These findings support a model in which GluD1 regulates input-specific circuit organization and synaptic connectivity rather than the structural morphology of individual synapses.

neuroscience↗

GluN2D-containing NMDA receptors regulate dentate gyrus function by facilitating granule cell activity and mediating synaptic plasticity

N-Methyl-D-aspartate ionotropic glutamate receptors (NMDARs) are crucial for synaptic transmission, long-term plasticity, neuronal activity, and cognition. Consistent with these functions, NMDAR dysfunction is linked to several brain disorders, including Alzheimers disease, autism, schizophrenia, and depression. NMDARs are tetrameric complexes composed of two essential GluN1 subunits and two distinct GluN2 subunits (GluN2A-D) that define their functional characteristics. Although the roles of GluN2A and GluN2B, which are highly expressed in the brain, have been extensively studied, much less is known about GluN2D in brain function. Using selective GluN2D antagonists in the mature rodent brain and a conditional GluN2D knockout model, we assessed the role of GluN2D-containing NMDARs in dentate granule cells (GCs). We found that these receptors are tonically active, primarily extrasynaptic, and facilitate GC action-potential firing. Additionally, physiologically relevant presynaptic and postsynaptic activity patterns induced strong long-term potentiation of NMDAR-mediated transmission at medial perforant path synaptic inputs. This plasticity was likely driven by lateral diffusion of GluN2D and supported by non-canonical glutamate delta-1 (GluD1) receptors. Finally, removing GluN2D from excitatory cells in the dentate gyrus impaired spatial memory. Overall, our findings demonstrate that GluN2D-containing NMDARs are vital for hippocampal function, likely by modulating GC activity and mediating NMDAR synaptic plasticity. TEASERGluN2D-containing NMDA receptors control dentate gyrus function by regulating neuronal firing and synaptic plasticity

neuroscience↗