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bioRxiv · 10.1101/2021.11.02.466870

Tonic engagement of nicotinic receptors bidirectionally controls striatal spiny projection neuron spike timing

Abstract

Striatal spiny projection neurons (SPNs) transform convergent excitatory corticostriatal inputs into an inhibitory signal that shapes basal ganglia output. This process is fine-tuned by striatal GABAergic interneurons (GINs), which receive overlapping cortical inputs and mediate rapid corticostriatal feedforward inhibition of SPNs. Adding another level of control, cholinergic interneurons (CINs), which are also vigorously activated by corticostriatal excitation, can disynaptically inhibit SPNs by activating 4{beta}2 nicotinic acetylcholine receptors (nAChRs) on various GINs. Measurements of this disynaptic inhibitory pathway, however, indicate that it is too slow to compete with direct GIN-mediated feed-forward inhibition. Moreover, functional nAChRs are also present on populations of GINs that respond only weakly to phasic activation of CINs, such as parvalbumin-positive fast-spiking interneurons (PV-FSIs), making the overall role of nAChRs in shaping striatal synaptic integration unclear. Using acute striatal slices we show that upon synchronous optogenetic activation of corticostriatal projections blockade of 4{beta}2 nAChRs shortened SPN spike latencies and increased postsynaptic depolarizations. The nAChR-dependent inhibition was mediated by downstream GABA release, and data suggest that the GABA source was not limited to GINs that respond strongly to phasic CIN activation. In particular, the observed decrease in spike latency caused by nAChR blockade was associated with a diminished frequency of spontaneous inhibitory postsynaptic currents in SPNs, a parallel hyperpolarization of PV-FSIs, and was occluded by pharmacologically preventing cortical activation of PV-FSIs. Taken together, we describe a role for tonic (as opposed to phasic) activation of nAChRs in striatal function. We conclude that tonic activation of nAChRs by CINs maintains a GABAergic brake on cortically-driven striatal output by "priming" feedforward inhibition, a process that may shape SPN spike timing, striatal processing and synaptic plasticity. Impact StatementA novel mechanism describing how tonic activation of nicotinic acetylcholine receptors can modulate the timing of striatal output by priming feed forward inhibition.

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BibTeXRIS

Matityahu, L., Malgady, J., Schirelman, M., Johansson, Y., Wilking, J., Silberberg, G., Goldberg, J. A., Plotkin, J. L.. 2021-11-03. Tonic engagement of nicotinic receptors bidirectionally controls striatal spiny projection neuron spike timing. https://doi.org/10.1101/2021.11.02.466870

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