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Makrini-Maleville, L.

Publications and source records attributed to Makrini-Maleville, L..

2 recordsLinked to original sources

Neuroanatomical characterization of the Nmu-Cre knock-in mice reveals an interconnected network of unique neuropeptidergic cells

Neuromedin U (NMU) is an evolutionary conserved neuropeptide that has been implicated in multiple processes, such as circadian regulation, energy homeostasis, reward processing and stress coping. Although central expression of NMU has been addressed previously, the lack of specific and sensitive tools has prevented a comprehensive characterization of NMU-expressing neurons in the brain. We have generated a knock-in mouse model constitutively expressing Cre recombinase under the Nmu promoter. We have validated the model using a multi-level approach based on quantitative reverse-transcription polymerase chain reactions, in situ hybridization, a reporter mouse line and an adenoviral vector driving Cre-dependent expression of a fluorescent protein. Using the Nmu-Cre mouse, we performed a complete mapping of NMU expression in adult mouse brain, unveiling a potential midline NMU modulatory circuit with the ventromedial hypothalamic nucleus (VMH) as a key node. Moreover, immunohistochemical analysis suggested that NMU neurons in the VMH mainly constitute a unique population of hypothalamic cells. Taken together, our results suggest that Cre expression in the Nmu-Cre mouse model largely reflects NMU expression in the adult mouse brain, without altering endogenous NMU expression. Thus, the Nmu-Cre mouse model is a powerful and sensitive tool to explore the role of NMU neurons in mice.

neuroscience↗

Dichotomous Intrinsic Properties of Adult Accumbens Medium Spiny Neurons Vanish in the Fragile X Mouse Model of Autism

Fragile X syndrome (FXS), the most common cause of autism and inherited intellectual disability, is caused by the mutation of a single gene, fmr1, which encodes the Fragile X mental retardation protein (FMRP). FXS patients suffer from cognitive, emotional, and social deficits indicative of dysfunction in the nucleus accumbens (NAc), a structure central to the control of social behavior. The major cell type of the NAc, medium spiny neurons (MSNs), are differentiated in two subtypes based on their expression of either dopamine D1 or D2 receptors, their connectivity, and associated behavioral functions. Understanding how the absence of FMRP differentially affects the cellular properties of MSNs is a necessary step to categorize FXS cellular endophenotypes. To address this question, we comprehensively compared the intrinsic passive and active properties of MSN subtypes identified in a novel Fmr1-/y :: Drd1a-tdTomato mouse model allowing in-situ identification of MSN subtypes in FXS mice. Although fmr1 transcripts and their gene product, FMRP, were found in both MSNs subtypes, the results suggest cell-autonomous functions for Fmr1. The opposite membrane properties and action potential kinetics that normally discriminate D1- from D2- MSNs in WT mouse is either reversed or abolished in Fmr1-/y :: Drd1a-tdTomato mice. Multivariate analysis shed light on the compound effects of Fmr1 ablation by revealing how the phenotypic traits that distinguish each cell type in WT are modified in FXS. Together these data show that in Fragile X mice the normal dichotomy that characterizes NAc D1- and D2-MSNs is thrown out of balance, leading to a uniform phenotype that could underlie selected aspects of the pathology.

neuroscience↗