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Esteve-Perez, R.

Publications and source records attributed to Esteve-Perez, R..

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Phenotypic characterization of a mouse model of Rett syndrome reveals pubertal dysregulation and hypothalamic-gonadal dysfunction

BackgroundMutations in the MECP2 gene, encoding the epigenetic reader Methyl-CpG binding protein 2, are the main cause of Rett syndrome, a rare neurodevelopmental disorder. Besides severe symptoms such as profound intellectual disability, loss of speech and motor skills and epilepsy, loss of function of MECP2 has been associated with pubertal dysregulation, but the biological mechanisms leading to this remain unclear. MethodsUsing a mouse model of Rett, in which males are hemizygous and females heterozygous for Mecp2 loss of function mutation, we assessed the onset and progression of puberty, together with increase in body weight and onset of neurological symptoms in post-weaning mice until puberty. In brain samples of young adult mice, we analysed hypothalamic Gonadotropin releasing hormone (GnRH) neurons by immunofluorescent labelling, and in plasma samples measured circulating GnRH, LH and testosterone concentrations. Finally, we analysed testosterone dependent arginine-vasopressin circuits. ResultsIn our mouse model we found delayed puberty in Mecp2 CD1-null males, associated with a reduced rate of weight gain, but with puberty onset occurring at a lower body weight than in wildtype controls. Despite later puberty onset, Mecp2CD1-null male mice were found to have an increased number of GnRH neurons, but displayed lower levels of circulating reproductive hormones. Consequently, Mecp2CD1-null males have deficient testosterone-dependent arginine-vasopressin innervation. In female Mecp2CD1-heterozygous mice, we found no overall significant differences in pubertal development or GnRH neurons. The lack of significant alterations in females might be related to a later onset of neurological symptoms due to heterozygosity. ConclusionsOur data supports that MECP2 is essential for typical pubertal development, with complete loss of Mecp2 in a male murine model resulting in abnormalities of pubertal timing related to lower body weight, with an observed increase in hypothalamic GnRH neurons.

neuroscience↗

Doublecortin-immunoreactive immature neurons in the olfactory system across pregnancy and lactation in female mice

Motherhood is a critical period modulating behavioural changes to favour survival in mammals. In mice, olfaction is a key driver of social behaviours, and adult neurogenesis in the olfactory bulb is modulated at this stage, contributing to pup recognition. However, whether motherhood would also promote changes in the population of immature neurons of the piriform cortex is unknown. To investigate this question, we analysed the expression of doublecortin (DCX), a marker of immature neurons, in prepubescent vs young adults, in virgin vs pregnant and in pup-sensitized virgins vs lactating female mice. We found that the density of DCX cells sharply decreased in the piriform cortex with age, but pregnancy and lactation failed to significantly alter the density of these cells. To further analyse how motherhood could affect DCX-ir cells, we co-labelled DCX cells with NeuN, an archetypical marker of mature neurons. We did not find significant differences in the percentage of double-labelled cells nor in features related to maturation like number of neurites or main diameter in lactating dams as compared to pup-sensitized virgin females. Our results suggest that the first pregnancy does not significantly affect the differentiation of immature neurons of the piriform cortex.

neuroscience↗