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Golf, S. R.

Publications and source records attributed to Golf, S. R..

3 recordsLinked to original sources

Astrocytic connexin43 phosphorylation contributes to seizure susceptibility after mild Traumatic Brain Injury

Astrocytes play a crucial role in maintaining brain homeostasis through functional gap junctions (GJs) primarily formed by connexin43 (Cx43) in the cortical gray matter. These GJs facilitate electrical and metabolic coupling between astrocytes, allowing the passage of ions, glucose, and metabolites. Dysregulation of Cx43 has been implicated in various pathologies, including traumatic brain injury (TBI) and acquired epilepsy. After mild TBI/concussion, we previously identified a subset of atypical astrocytes, which are correlated with the development of spontaneous seizures. These astrocytes exhibit reduced Cx43 expression and coupling. However, atypical astrocytes represent a relatively small subset of astrocytes within the cortical gray matter and previous studies suggest an overall increase of Cx43 protein after TBI. Additionally, Cx43 also has non-junctional and channel-independent functions, which include hemichannel communication with the extracellular milieu, cell adhesion, protein trafficking, protein-protein interactions, and intracellular signaling. In the present study, we set out to determine how mild TBI initiates alterations to Cx43 protein expression and localization, how they may be regulated, and whether they contribute to seizure susceptibility. We demonstrate remarkable heterogeneity of Cx43 protein levels from astrocyte to astrocyte. In accordance with our previous findings, a subset of astrocytes lost Cx43 expression, yet total cortical Cx43 protein increased. At the subcellular level, junctional Cx43 protein levels remained stable, while hemichannels and/or cytoplasmic Cx43 were increased. Phosphorylation of Cx43 at serine 368, a key regulatory site influencing GJ assembly and function, increased after mild TBI. Critically, Cx43S368A mutant mice, lacking this phosphorylation, exhibited reduced susceptibility to pentylenetetrazol-induced seizures. These findings suggest that TBI-induced Cx43 phosphorylation enhances seizure susceptibility, while inhibiting this modification presents a potential therapeutic avenue for mitigating neuronal hyperexcitability and seizure development. Significance statementConnexin43 (Cx43) is the main protein comprising astrocyte gap junctions which mediate astrocyte coupling into cellular networks, but it also has other non-junctional functions. Many pathologies present with altered Cx43 regulation. In this study, we assessed Cx43 alterations after mild traumatic brain injury (TBI) in a mouse model. We found that while some astrocytes lost Cx43 expression, other astrocytes had increased cytoplasmic and hemichannel Cx43. This increase correlated with an increase in phosphorylated Cx43 at serine 368. Cx43S368A mutant mice, lacking this phosphorylation, exhibited reduced susceptibility to seizures induced by pentylenetetrazol (PTZ). These findings suggest that TBI-induced Cx43 phosphorylation enhances seizure susceptibility.

neuroscience↗

Astrocytic Neuroligins Are Not Required for Synapse Formation or a Normal Astrocyte Cytoarchitecture

Astrocytes perform multifarious roles in the formation, regulation, and function of synapses in the brain, but the mechanisms involved are incompletely understood. Interestingly, astrocytes abundantly express neuroligins, postsynaptic adhesion molecules that function as synaptic organizers by binding to presynaptic neurexins. Here we examined the function of neuroligins in astrocytes with a rigorous genetic approach that uses the conditional deletion of all major neuroligins (Nlgn1-3) in astrocytes in vivo and complemented this approach by a genetic deletion of neuroligins in glia cells that are co-cultured with human neurons. Our results show that early postnatal deletion of neuroligins from astrocytes in vivo has no detectable effect on cortical or hippocampal synapses and does not alter the cytoarchitecture of astrocytes when evaluated in young adult mice. Moreover, deletion of astrocytic neuroligins in co-cultures of human neurons produced no detectable consequences for the formation and function of synapses. Thus, astrocytic neuroligins are unlikely to fundamentally shape synapse formation or astrocyte morphogenesis but likely perform other important roles that remain to be discovered.

neuroscience↗

Distinct Neurexin-Cerebellin Complexes Control AMPA-and NMDA-Receptor Responses in a Circuit-Dependent Manner

At mature CA1[->]subiculum synapses, alternatively spliced SS4+ variants of neurexin-1 (Nrxn1SS4+) and neurexin-3 (Nrxn3SS4+) enhance NMDA- and suppress AMPA-receptors, respectively. Both Nrxn1SS4+ and Nrxn3SS4+ act by binding to secreted cerebellin-2 (Cbln2) that in turn activates postsynaptic GluD1, which is homologous to AMPA- and NMDA-receptors. Whether neurexin-Cbln2-GluD1 signaling complexes have additional functions in synapse formation besides regulating NMDA- and AMPA-receptors, and whether they perform similar roles at other synapses, remains unknown. Using constitutive Cbln2 deletions, we here demonstrate that at CA1[->]subiculum synapses, Cbln2 performs no additional developmental functions besides regulating AMPA- and NMDA-receptors. Moreover, we show that low-level expression of Cbln1, which is functionally redundant with Cbln2, does not compensate for a synapse-formation function of Cbln2 at CA1[->]subiculum synapses. In exploring the generality of these findings, we found that in prefrontal cortex, Nrxn1SS4+-Cbln2 signaling selectively regulates NMDA-receptors, whereas Nrxn3SS4+-Cbln2 signaling has no apparent role. In contrast, in the cerebellum Nrxn3SS4+-Cbln1 signaling regulates AMPA-receptors, whereas now Nrxn1SS4+-Cbln1 signaling has no manifest effect. Thus, Nrxn1SS4+- and Nrxn3SS4+-Cbln1/2 signaling complexes generally control NMDA- and AMPA-receptors in different synapses without regulating synapse formation, but these signaling complexes are differentially active in diverse neural circuits.

neuroscience↗