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Okur, Z.

Publications and source records attributed to Okur, Z..

2 recordsLinked to original sources

Principles of NMDA receptor co-agonism at cortical fast-spiking GABAergic interneurons in the adolescent prefrontal cortex

N-methyl-D-aspartate receptors (NMDARs) populate fast-spiking (FS)-parvalbumin-positive (PV+) GABAergic interneurons (INs), where they play a critical role in shaping circuit motifs and memory. However, it is largely unknown whether and how NMDARs at FS-PV+-INs are gated by their co-agonists and the functional relevance of such modulations for their synaptic coupling with excitatory neurons. Here, we report that FS-PV+-INs in the adolescent mouse prefrontal cortex, an area central to complex cognitive operation exhibit functional GluN2B/D containing NMDARs. These receptors contribute to the excitatory drive of FS-PV+-INs and to the feedforward inhibition, controlling short-term and long-term synaptic plasticity. While the identity of the co-agonist controlling GABAergic tone is tuned by the synaptic activity regime from D-serine to glycine, we reveal that it remains largely unchanged at the excitatory synapse with D-serine being the sole co-agonist gating NMDARs. Lastly, we show that D-serine-deficient mice, a model of NMDAR hypofunction show selective attenuation of PV+-INs excitation together with selective loss of temporal summation and long-term plasticity at the excitatory synapse. Our study reveals the segregation of pools of NMDARs at the soma and dendrites that are differently sensitive to D-serine or glycine, the existence of distinct modes of activity-dependent regulation of these NMDARs by their co-agonists at this major type of GABAergic INs, and hence the rules governing cortical inhibition by FS-PV+-INs during a critical period of late postnatal development.

neuroscience↗

Control of neuronal excitation-inhibition balance by BMP-SMAD1 signaling

Throughout life, neuronal networks in the mammalian neocortex maintain a balance of excitation and inhibition which is essential for neuronal computation. Deviations from a balanced state have been linked to neurodevelopmental disorders and severe disruptions result in epilepsy. To maintain balance, neuronal microcircuits composed of excitatory and inhibitory neurons sense alterations in neural activity and adjust neuronal connectivity and function. Here, we identified a signaling pathway in the adult mouse neocortex that is activated in response to elevated neuronal network activity. Over-activation of excitatory neurons is signaled to the network through the elevation of BMP2, a growth factor well-known for its role as morphogen in embryonic development. BMP2 acts on parvalbumin-expressing (PV) interneurons through the transcription factor SMAD1, which controls an array of glutamatergic synapse proteins and components of peri-neuronal nets. PV interneuron-specific disruption of BMP2-SMAD1 signaling is accompanied by a loss of PV cell glutamatergic innervation, underdeveloped peri-neuronal nets, and decreased excitability. Ultimately, this impairment of PV interneuron functional recruitment disrupts cortical excitation - inhibition balance with mice exhibiting spontaneous epileptic seizures. Our findings suggest that developmental morphogen signaling is re-purposed to stabilize cortical networks in the adult mammalian brain.

neuroscience↗