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Menuet, C.

Publications and source records attributed to Menuet, C..

4 recordsLinked to original sources

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↗

The oxytocin-modulated brain circuit that synchronizes heart rate with breathing

The variation in heart rate in phase with breathing, called respiratory sinus arrhythmia (RSA), is cardio-protective1,2. RSA amplitude provides an index of health and physical fitness used both clinically, and by the broader population using "smart" watches. Relaxation and positive socio-emotional states can amplify RSA3, yet the underlying mechanism remains largely unknown. Here, we identify a hypothalamus-brainstem neuronal network through which the neuromodulator oxytocin (OT), known for its relaxing and prosocial effects4, amplifies RSA during calming behavior. OT neurons from the caudal paraventricular nucleus in the hypothalamus were found to regulate the activity of a subgroup of inhibitory neurons in the pre-Botzinger complex, the brainstem neuronal group that generates the inspiratory rhythm. Specifically, OT amplifies the inspiratory glycinergic input from pre-Botzinger complex neurons to cardiac-innervating parasympathetic neurons in the nucleus ambiguus. This leads to amplified respiratory modulation of parasympathetic activity to the heart, thereby amplifying RSA. Behaviorally, OT neurons participate in the restoration of RSA amplitude during recovery from stress. This work shows how a central action of OT induces a physiologically beneficial regulation of cardiac activity during a calming behavior, providing a foundation for therapeutic strategies for anxiety disorders and coping with stress. Furthermore, it identifies a phenotypic signature of a subpopulation of neurons controlling RSA, namely pre-Botzinger complex neurons expressing the OT-receptor, enabling the specific modulation of RSA amplitude to resolve its physiological and psychological functions.

neuroscience↗

Leptin antagonism improves Rett syndrome phenotype in symptomatic male Mecp2-null mice.

Rett syndrome (RTT) is a severe X-linked neurodevelopmental disorder caused by mutations in MECP2. Elevated circulating levels of the adipocyte hormone leptin are consistently observed in patients and in mouse models, yet their contribution to disease progression has remained unclear. Here, we show that reducing leptin signaling--either pharmacologically or genetically-- significantly alleviates RTT-like phenotypes in Mecp2-deficient mice. In males, these interventions preserved general health, prevented weight loss, and improved breathing and locomotor functions. At the neuronal level, they restored excitatory/inhibitory balance in the hippocampus and somatosensory cortex and rescued hippocampal synaptic plasticity. In females, delaying the pathological rise of leptin levels postponed symptom progression. These findings uncover leptin as a key contributor to RTT pathophysiology and position leptin-targeted interventions as a promising therapeutic strategy for this currently untreatable disorder.

neuroscience↗

Selective transduction and photoinhibition of pre-Botzinger neurons that project to the facial nucleus in rats affect the nasofacial activity

The preBotzinger Complex (preBotC), a key primary generator of the inspiratory breathing rhythm, contains neurons that project directly to facial nucleus (7n) motoneurons to coordinate orofacial and nasofacial activity. To further understand the identity of 7n-projecting preBotC neurons, we used a combination of optogenetic viral transgenic approaches to demonstrate that selective photoinhibition of these neurons affects mystacial pad activity, with minimal effects on breathing. These effects are altered by the type of anesthetic employed and also between anesthetised and conscious states. The population of 7n-projecting preBotC neurons we transduced consisted of both excitatory and inhibitory neurons that also send collaterals to multiple brainstem nuclei involved with the regulation of autonomic activity. We show that modulation of subgroups of preBotC neurons, based on their axonal projections, is a useful strategy to improve our understanding of the mechanisms that coordinate and integrate breathing with different motor and physiological behaviours. This is of fundamental importance, given that abnormal respiratory modulation of autonomic activity and orofacial behaviours have been associated with the development and progression of diseases.

neuroscience↗