Regulation of PV interneuron plasticity by neuropeptide-encoding genes.

Selten, Martijn; Bernard, Clémence; Mukherjee, Diptendu; Hamid, Fursham; Hanusz-Godoy, Alicia; Oozeer, Fazal; Zimmer, Christoph; Marín, Oscar · Nature · 2025

basic_science · Level V

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Abstract

Neuronal activity must be regulated in a narrow permissive band for the proper operation of neural networks. Changes in synaptic connectivity and network activity-for example, during learning-might disturb this balance, eliciting compensatory mechanisms to maintain network function<sup>1-3</sup>. In the neocortex, excitatory pyramidal cells and inhibitory interneurons exhibit robust forms of stabilizing plasticity. However, although neuronal plasticity has been thoroughly studied in pyramidal cells<sup>4-8</sup>, little is known about how interneurons adapt to persistent changes in their activity. Here we describe a critical cellular process through which cortical parvalbumin-expressing (PV<sup>+</sup>) interneurons adapt to changes in their activity levels. We found that changes in the activity of individual PV<sup>+</sup> interneurons drive bidirectional compensatory adjustments of the number and strength of inhibitory synapses received by these cells, specifically from other PV<sup>+</sup> interneurons. High-throughput profiling of ribosome-associated mRNA revealed that increasing the activity of a PV<sup>+</sup> interneuron leads to upregulation of two genes encoding multiple secreted neuropeptides: Vgf and Scg2. Functional experiments demonstrated that VGF is critically required for the activity-dependent scaling of inhibitory PV<sup>+</sup> synapses onto PV<sup>+</sup> interneurons. Our findings reveal an instructive role for neuropeptide-encoding genes in regulating synaptic connections among PV<sup>+</sup> interneurons in the adult mouse neocortex.

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