Sensory experience drives glutamate spillover, presynaptic LTP and functional connectome remodeling in the barrel cortex

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Abstract

Information handling and storage by neural circuits is thought to involve dynamic changes in the synaptic connectome, yet how this process unfolds at the level of individual synapses in vivo remains unclear. We took advantage of a well-defined thalamocortical anatomical framework to monitor identifiable individual synapses in barrel cortex during rhythmic whisker stimulation (RWS). Multiplexed ratiometric readouts from genetically targeted optical sensors showed that RWS-induced long-term potentiation (LTP) increased glutamate release per action potential in RWS-responsive axons while recruiting previously silent thalamocortical connections. Fast high-resolution imaging revealed pronounced inter-synaptic glutamate transients and global extracellular GABA waves triggered by brief RWS. LTP induction had no detectable effect on the evoked GABA signal but further enhanced glutamate crosstalk beyond thalamocortical synapses. Strikingly, neural-network simulations suggest that such volume-transmitted excitatory signals can improve associative memory retrieval in sparsely connected networks. Together, these findings uncover key plasticity features of the cortical synaptic connectome and point to a potential computational consequence of glutamate spillover for brain circuit function.

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