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.

F1000Research
|October 27, 2016
PubMed

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.

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