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An Electrochemiluminescence-Based Assay for MeCP2 Protein Variants
Published on: May 22, 2020
MeCP2 deficiency downregulates specific nuclear proteins that could be partially recovered by valproic acid in vitro
Manuela Vecsler1, Amos J Simon, Ninette Amariglio
1Sagol Neuroscience Center, Sheba Medical Center, Tel Hashomer, Israel.
Abstract:
MeCP2, the major causative factor of Rett syndrome and related phenotypes including autism, is a two-face nuclear modulator acting via transcriptional and chromatin remodeling mechanisms. This study investigated the expression of several nuclear proteins and their dependence on MeCP2 dose and presence of the Rett causative R306C mutation. To this end, we developed in vitro models representing MeCP2 deficiency induced by siRNAs, and cells expressing the R306C mutation. Using an extended antibody microarray validated by specific assays, revealed that MeCP2 dose was correlated with specific nuclear proteins profiles including the BRM/SNF2 component of SWI/SNF complex, PRMT1 methyl transferase and HDAC2. Furthermore, while exposing the MeCP2 knock-down system to therapeutic concentrations of valproic acid (VPA), a known HDACs inhibitor, we observed a partial restoration of MeCP2 expression levels. Exposure to VPA also increased the levels of BRM, as well as of BDNF, an important co-factor in MeCP2-mediated pathway. Our findings provide additional evidence of diverse mechanisms of MeCP2 function as transcriptional repressor and activator of specific genes. As it has been recently demonstrated that post-natal restoration of MeCP2 deficiency may reverse neurological defects in a mouse model of Rett syndrome, we suggest to study the restorative effect of HDAC inhibitors in MeCP2-deficient mouse model.
Insights
Methyl-CpG-binding protein 2 (MeCP2) influences nuclear protein levels. Valproic acid partially restored MeCP2 and increased BRM and BDNF, suggesting HDAC inhibitors for Rett syndrome.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Methyl-CpG-binding protein 2 (MeCP2) is crucial for neuronal function and its dysfunction causes Rett syndrome and related disorders.
- MeCP2 acts as a nuclear modulator, impacting gene transcription and chromatin remodeling.
- Understanding MeCP2's regulatory roles and the effects of mutations is vital for therapeutic development.
Purpose of the Study:
- To investigate how MeCP2 levels and the R306C mutation affect nuclear protein expression.
- To explore the potential of valproic acid (VPA) as a therapeutic agent in MeCP2 deficiency models.
Main Methods:
- Developed in vitro models of MeCP2 deficiency (siRNA) and R306C mutation.
- Utilized antibody microarrays and specific assays to profile nuclear proteins.
- Treated MeCP2-deficient cells with valproic acid (VPA).
Main Results:
- MeCP2 levels correlated with specific nuclear protein profiles, including BRM/SNF2, PRMT1, and HDAC2.
- VPA treatment partially restored MeCP2 expression in knockdown models.
- VPA also increased levels of BRM and BDNF, a key MeCP2 pathway co-factor.
Conclusions:
- MeCP2 exhibits diverse functions as both a transcriptional repressor and activator.
- HDAC inhibitors like VPA show promise in restoring MeCP2 levels and related protein expression.
- Further investigation into HDAC inhibitors for MeCP2-deficient mouse models is warranted for potential therapeutic applications in Rett syndrome.
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