Training-induced circuit-specific excitatory synaptogenesis in mice is required for effort control.

Ulloa Severino, Francesco Paolo; Lawal, Oluwadamilola O; Sakers, Kristina; Wang, Shiyi; Kim, Namsoo; Friedman, Alexander David; Johnson, Sarah Anne; Sriworarat, Chaichontat et al. · Nat Commun · 2023

basic_science · Level V

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Abstract

Synaptogenesis is essential for circuit development; however, it is unknown whether it is critical for the establishment and performance of goal-directed voluntary behaviors. Here, we show that operant conditioning via lever-press for food reward training in mice induces excitatory synapse formation onto a subset of anterior cingulate cortex neurons projecting to the dorsomedial striatum (ACC<sub>→DMS</sub>). Training-induced synaptogenesis is controlled by the Gabapentin/Thrombospondin receptor α2δ-1, which is an essential neuronal protein for proper intracortical excitatory synaptogenesis. Using germline and conditional knockout mice, we found that deletion of α2δ-1 in the adult ACC<sub>→DMS</sub> circuit diminishes training-induced excitatory synaptogenesis. Surprisingly, this manipulation does not impact learning but results in a significant increase in effort exertion without affecting sensitivity to reward value or changing contingencies. Bidirectional optogenetic manipulation of ACC<sub>→DMS</sub> neurons rescues or phenocopies the behaviors of the α2δ-1 cKO mice, highlighting the importance of synaptogenesis within this cortico-striatal circuit in regulating effort exertion.

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