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Georges, F.

Publications and source records attributed to Georges, F..

2 recordsLinked to original sources

Into the deep: The subthalamic and para-subthalamic nuclei in behavioral avoidance

The subthalamic nucleus (STN) is a key component of the brain network for movement control. However, the STN is strikingly heterogeneous and also intricately engaged in limbic and cognitive functions. The STN shows aberrant firing activity in several neurological and neuropsychiatric disorders, including Parkinso[n]s disease (PD). Deep brain stimulation (DBS) in the STN alleviates motor impairment in PD, but patients have reported altered mood as adverse side-effect. Recent observations suggest that optogenetic STN activation in mice induces flight behavior. We hypothesized that STN activation stand at risk of causing an aversive response with behavioral avoidance as consequence. The STN is directly adjoined with the para-STN (pSTN), a hypothalamic area correlated with appetitive and aversive behavior. STN-DBS aiming to correct STN might thereby also modulate pSTN. To dissociate the impact of STN and pSTN, we took advantage of selective promoters in mice, identified in our recent RNA- sequencing of the subthalamic area, to selectively direct optogenetic excitation. Acute photostimulation resulted in aversion via both the STN and pSTN, but only STN- stimulation-paired cues resulted in conditioned avoidance. Viral-genetic tracing coupled with electrophysiological recordings identified a polysynaptic pathway from the STN to the lateral habenula, a critical hub for aversion and associated with clinical depression. This study demonstrates that STN activation is directly correlated with aversion, and thereby contributes neurobiological underpinnings to emotional affect upon STN manipulation with implications for STN-targeted treatment outcome.

neuroscience↗

The ventral striatum contributes to energy balance

Accumulating evidence points to dysregulations of common brain systems in eating disorders (ED), the Nucleus Accumbens (NAc) in particular. However, to which extent alterations in NAc activity contribute to ED-like dimensions remains unclear. Using chemogenetic manipulations of dopamine D1 receptor-expressing and D2-expressing neuronal subpopulations of the NAc in male mice, we assessed their respective roles in incentive processes, food intake and the balance between feeding and exercise-mediated energy expenditure. We found that D1-neurons facilitate effort for a food reward but decreased food intake, while D2-neurons have opposite effects. The anorexigenic influence of D1-neurons was accompanied by increased voluntary exercise while the orexigenic effect of D2-neurons was concomitant with decreased running, congruent with D2-neurons being more active than D1-neurons during feeding while it is the opposite during running. Chronic manipulations of each subpopulations had limited effects on energy balance. However, repeated activation of D1-neurons combined with inhibition of D2-neurons biased behavior toward activity-related energy expenditure leading to weight/fat loss, whilst the opposite manipulations favored energy intake and hence weight/fat gain. Strikingly, concomitant activation of D1-neurons and inhibition of D2-neurons precipitated weight loss in anorexia models. These results suggest that dysregulations of NAc dopaminoceptive neurons might be at the core of EDs.

neuroscience↗