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SANTINI, E.

Publications and source records attributed to SANTINI, E..

2 recordsLinked to original sources

DARPP-32 in motor cortex regulates structural and synaptic plasticity in corticothalamic neurons and enables motor learning.

The dopamine and cAMP-regulated phosphoprotein of 32 kDa (DARPP-32), a key mediator of monoaminergic signaling, is expressed in the cortex; however, its cellular distribution and role in cortically dependent behaviors remain elusive. Here, we determined the functional integration of DARPP-32 in motor cortex circuitry using molecular profiling, circuit tracing, patch-clamp electrophysiology, virus-assisted gene targeting and motor behavior analyses. Unlike the significant overlap between DARPP-32 and dopamine receptors in striatal GABAergic medium spiny projection neurons, we found that the majority of DARPP-32-positive cortical neurons express the corticothalamic marker FoxP2 but not dopamine D1 or D2 receptors. Notably, in cortical slices, adenylyl cyclase activation induced a more robust increase in DARPP-32 phosphorylation at threonine 34, a protein kinase A target site, compared to dopamine D1 receptor stimulation. Conditional ablation of DARPP-32 in the motor cortex did not affect basal or psychostimulant-induced motor activity but reduced motor aptitude and compromised overnight retention of motor skill. Concomitantly, the absence of DARPP-32 reduced dendritic spines density and prevented the induction of glutamatergic long-term potentiation in layer 6 motor cortical neurons. Altogether, our study demonstrates a critical role for DARPP-32 in cortical synaptic plasticity, emphasizing its importance in corticothalamic regulation of motor skill learning.

neuroscience↗

Altered striatal long-term potentiation in the eIF4E- TG ASD mouse model

Autism spectrum disorder (ASD) is associated with deficits in synaptic plasticity across brain regions. While striatal dysfunction is observed in various mouse models of ASD, the effect of ASD-associated genes on striatal plasticity has not been well characterised. We previously showed that overexpression of the SFARI ASD risk gene eIF4E in transgenic (eIF4E-TG) mice produces ASD-like behaviours and impairs dorsal striatal dopamine release. Here, we examined whether eIF4E overexpression alters striatal synaptic transmission and plasticity. Using microscopy, whole-cell electrophysiology, optogenetics and fast-scan cyclic voltammetry, we assessed dendritic morphology and excitatory synaptic properties of spiny projection neurons (SPNs). The eIF4E-TG mice exhibited higher dendritic spine density, elevated AMPA and NMDA receptor-mediated mEPSC frequency, and reduced AMPA mEPSC amplitude. We also observed an increased induction rate and magnitude of long-term potentiation (LTP) in SPNs, which is NMDA receptor-dependent but is not prevented by pharmacological D1 or D2 receptor antagonism under the conditions tested. Finally, we found that somatic and dendritic Ca2+ signals evoked by brief depolarisation are altered in SPNs from eIF4E-TG mice. Together, these findings are consistent with eIF4E overexpression promoting an NMDA receptor-dependent form of striatal LTP that is not prevented by D1/D2 receptor antagonism.

neuroscience↗