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An Electrochemiluminescence-Based Assay for MeCP2 Protein Variants
Published on: May 22, 2020
Brain protein changes in Mecp2 mouse mutant models: Effects on disease progression of Mecp2 brain specific gene
Alessio Cortelazzo1, Claudio De Felice2, Jacky Guy3
1Child Neuropsychiatry Unit, University Hospital, Azienda Ospedaliera Universitaria Senese (AOUS), Siena, Italy; Department of Medical Biotechnologies, University of Siena, Siena, Italy; Clinical Pathology Laboratory Unit, University Hospital, AOUS, Siena, Italy.
Abstract:
Rett syndrome (RTT) is a leading cause of severe intellectual disability in females, caused by de novo loss-of function mutations in the X-linked methyl-CpG binding protein 2 (MECP2). To better investigate RTT disease progression/pathogenesis animal models of Mecp2 deficiency have been developed. Here, Mecp2 mouse models are employed to investigate the role of protein patterns in RTT. A proteome analysis was carried out in brain tissue from i) Mecp2 deficient mice at the pre-symptomatic and symptomatic stages and, ii) mice in which the disease phenotype was reversed by Mecp2 reactivation. Several proteins were shown to be differentially expressed in the pre-symptomatic (n = 18) and symptomatic (n = 20) mice. Mecp2 brain reactivated mice showed wild-type comparable levels of expression for twelve proteins, mainly related to proteostasis (n = 4) and energy metabolic pathways (n = 4). The remaining ones were found to be involved in redox homeostasis (n = 2), nitric oxide regulation (n = 1), neurodevelopment (n = 1). Ten out of twelve proteins were newly linked to Mecp2 deficiency. Our study sheds light on the relevance of the protein-regulation of main physiological process in the complex mechanisms leading from Mecp2 mutation to the RTT clinical phenotype. SIGNIFICANCE: We performed a proteomic study of a Mecp2stop/y mouse model for Rett syndrome (RTT) at the pre-symptomatic and symptomatic Mecp2 deficient mice stage and for the brain specific reactivated Mecp2 model. Our results reveal major protein expression changes pointing out to defects in proteostasis or energy metabolic pathways other than, to a lesser extent, in redox homeostasis, nitric oxide regulation or neurodevelopment. The Mecp2 mouse rescued model provides the possibility to select target proteins more susceptible to the Mecp2 gene mutation, potential and promising therapeutical targets.
Insights
This study used Mecp2 mouse models to analyze protein changes in Rett syndrome (RTT). Restoring Mecp2 function in mice normalized key protein levels, revealing potential therapeutic targets for RTT.
Area of Science:
- Neuroscience
- Genetics
- Biochemistry
Background:
- Rett syndrome (RTT) is a severe neurodevelopmental disorder caused by mutations in the MECP2 gene.
- MECP2 mutations lead to intellectual disability, primarily affecting females.
- Mecp2 mouse models are crucial for understanding RTT pathogenesis and exploring therapeutic strategies.
Purpose of the Study:
- To investigate the role of protein expression patterns in RTT pathogenesis using Mecp2 mouse models.
- To identify proteins affected by Mecp2 deficiency at different disease stages.
- To evaluate protein level changes following Mecp2 reactivation in a rescued mouse model.
Main Methods:
- Proteome analysis of brain tissue from Mecp2-deficient mice (pre-symptomatic and symptomatic stages).
- Proteome analysis of brain tissue from Mecp2-reactivated mice.
- Differential protein expression analysis to identify key molecular changes.
Main Results:
- Significant differential protein expression was observed in pre-symptomatic and symptomatic Mecp2-deficient mice.
- Mecp2 reactivation in mice restored wild-type levels for twelve proteins, primarily involved in proteostasis and energy metabolism.
- Ten of these twelve proteins were newly identified as being linked to Mecp2 deficiency.
Conclusions:
- Mecp2 deficiency profoundly impacts protein expression, affecting pathways crucial for cellular function.
- Restoration of Mecp2 function can normalize critical protein levels, suggesting therapeutic potential.
- Identified proteins represent promising targets for developing novel RTT therapies.

