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Reduced neuronal size and mTOR pathway activity in the Mecp2 A140V Rett syndrome mouse model
Sampathkumar Rangasamy1, Shannon Olfers2, Brittany Gerald3
1Neurogenomics Division, Translational Genomics Research Institute, Phoenix, USA; Center for Rare Childhood Disorders, Translational Genomics Research Institute, Phoenix, USA.
Abstract:
Rett syndrome (RTT) is a neurodevelopmental disorder caused by mutation in the X-linked MECP2 gene, encoding methyl-CpG-binding protein 2. We have created a mouse model ( Mecp2 A140V "knock-in" mutant) expressing the recurrent human MECP2 A140V mutation linked to an X-linked mental retardation/Rett syndrome phenotype. Morphological analyses focused on quantifying soma and nucleus size were performed on primary hippocampus and cerebellum granule neuron (CGN) cultures from mutant ( Mecp2A140V/y) and wild type ( Mecp2+/y) male mice. Cultured hippocampus and cerebellar granule neurons from mutant animals were significantly smaller than neurons from wild type animals. We also examined soma size in hippocampus neurons from individual female transgenic mice that express both a mutant (maternal allele) and a wild type Mecp2 gene linked to an eGFP transgene (paternal allele). In cultures from such doubly heterozygous female mice, the size of neurons expressing the mutant (A140V) allele also showed a significant reduction compared to neurons expressing wild type MeCP2, supporting a cell-autonomous role for MeCP2 in neuronal development. IGF-1 (insulin growth factor-1) treatment of neuronal cells from Mecp2 mutant mice rescued the soma size phenotype. We also found that Mecp2 mutation leads to down-regulation of the mTOR signaling pathway, known to be involved in neuronal size regulation. Our results suggest that i) reduced neuronal size is an important in vitro cellular phenotype of Mecp2 mutation in mice, and ii) MeCP2 might play a critical role in the maintenance of neuronal structure by modulation of the mTOR pathway. The definition of a quantifiable cellular phenotype supports using neuronal size as a biomarker in the development of a high-throughput, in vitro assay to screen for compounds that rescue small neuronal phenotype ("phenotypic assay").
Insights
Rett syndrome (RTT) is a neurodevelopmental disorder. Mecp2 mutations cause smaller neurons in mice, a phenotype rescued by IGF-1 and linked to mTOR pathway changes.
Area of Science:
- Neuroscience
- Genetics
- Developmental Biology
Background:
- Rett syndrome (RTT) is a neurodevelopmental disorder linked to mutations in the MECP2 gene.
- MECP2 encodes methyl-CpG-binding protein 2, crucial for neuronal development.
- A specific human MECP2 A140V mutation is associated with RTT phenotypes.
Purpose of the Study:
- To create and analyze a mouse model expressing the human MECP2 A140V mutation.
- To investigate the cellular and molecular consequences of Mecp2 mutation on neuronal size.
- To explore potential therapeutic interventions for Mecp2-related neuronal deficits.
Main Methods:
- Generation of a Mecp2 A140V
- knock-in
- mouse model.
- Morphological analysis of primary hippocampus and cerebellum granule neuron (CGN) cultures.
- Examination of neuronal soma size in mutant and wild-type mice, including doubly heterozygous females.
- Assessment of insulin growth factor-1 (IGF-1) treatment effects.
- Analysis of the mTOR signaling pathway.
Main Results:
- Mutant mice (Mecp2A140V/y) exhibited significantly smaller hippocampus and CGN cultures compared to wild-type controls.
- Neurons expressing the mutant MECP2 A140V allele in female mice also showed reduced size, indicating a cell-autonomous effect.
- IGF-1 treatment rescued the reduced soma size phenotype in Mecp2 mutant neurons.
- Mecp2 mutation led to down-regulation of the mTOR signaling pathway.
Conclusions:
- Reduced neuronal size is a quantifiable in vitro cellular phenotype of Mecp2 mutation in mice.
- MeCP2 plays a critical role in maintaining neuronal structure, potentially through modulation of the mTOR pathway.
- Neuronal size can serve as a biomarker for developing high-throughput in vitro assays to screen for RTT-rescuing compounds.

