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Omnes, F.

Publications and source records attributed to Omnes, F..

2 recordsLinked to original sources

Inhibition of oxytocin neurons during key periods of development has long-term behavioural and body composition effects

BackgroundOxytocin (OT) is a key neuromodulator of social behavior in mammals, and accumulating evidence supports the existence of a critical period for OT action during infancy. However, other developmental windows remain poorly explored, and it remains unclear whether OT exert distinct functions depending on the timing of its activity. In this study, we aimed to determine whether specific developmental stages exist during which OT-expressing neurons play a decisive role with long-term consequences. MethodsWe used a chemogenetic approach to transiently inhibit OT-expressing neurons during three postnatal developmental periods: infancy, the juvenile period, and young adulthood in male and female mice. Behavioral and metabolic outcomes were then assessed longitudinally. We also examined the effects of inhibiting OT neurons during late fetal stages and at birth. ResultsSocial memory was consistently impaired in males, regardless of the timing of neuronal inactivation. The most pronounced behavioral effects were observed following inhibition during infancy in both sexes. Metabolically, adult males from all cohorts exhibited increased body weight, whereas increased fat mass and adipocyte size hypertrophy were specifically observed following inhibition during the juvenile period. Notably, inhibition of OT-expressing neurons around the time of birth resulted in delayed parturition and altered neonatal feeding behavior. LimitationsOT-expressing neurons release multiple signaling molecules. However, converging evidence suggests that the observed phenotypes are primarily attributable to OT deficiency. Although this study demonstrates long-term behavioral and metabolic consequences of transient OT neuron inhibition, further experiments are required to elucidate underlying mechanisms and identify additional effects. ConclusionsTransient inhibition of OT-expressing neurons during distinct postnatal developmental periods leads to long-lasting effects on social behavior and metabolism, with outcomes depending on both the timing of inhibition and sex. Furthermore, our findings reveal an unexpected role for fetal/neonatal OT neurons in regulating the timing of birth and early feeding behavior.

neuroscience↗

Investigation of a Novel Mouse Model of Prader-Willi Syndrome with Invalidation of Necdin and Magel2

Prader-Willi syndrome (PWS) is a multigenic disorder caused by the loss of seven contiguous paternally expressed genes. Mouse models with inactivation of all PWS genes are lethal. Knockout (KO) mouse models for each candidate gene were generated, but they lack the functional interactions between PWS genes. Here, we revealed an interplay between Necdin and Magel2 "PWS" genes and generated a novel mouse model (named "Madin") with a deletion including both genes. A subset of Madin KO mice showed neonatal lethality. Behaviorally, surviving mutant mice exhibited sensory delays during infancy and alterations in social exploration at adulthood. Madin KO mice had a lower body weight before weaning, persisting after weaning in males only, with reduced fat mass and improved glucose tolerance. Delayed sexual maturation and altered timing of puberty onset were observed in mutant mice. Adult Madin KO mice displayed increased ventilation and a persistent increase in apneas following a hypercapnic challenge. Transcriptomics analyses revealed a dysregulation of key circadian genes and alterations of genes associated with axonal function that were also found in the hypothalamus of patients with PWS. At neuroanatomical levels, we report an impaired maturation of oxytocin neurons and a disrupted development of melanocortin circuits. Together, these data indicate that the Madin KO mouse is a reliable and more genetically relevant model for the study of PWS.

systems biology↗