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An Electrochemiluminescence-Based Assay for MeCP2 Protein Variants
Published on: May 22, 2020
Identification of Novel MeCP2 Cancer-Associated Target Genes and Post-Translational Modifications
Isabel Castro-Piedras1, David Vartak1, Monica Sharma1
1Department of Immunology and Molecular Microbiology, Texas Tech University Health Sciences Center, Lubbock, TX, United States.
Abstract:
Abnormal regulation of DNA methylation and its readers has been associated with a wide range of cellular dysfunction. Disruption of the normal function of DNA methylation readers contributes to cancer progression, neurodevelopmental disorders, autoimmune disease and other pathologies. One reader of DNA methylation known to be especially important is MeCP2. It acts a bridge and connects DNA methylation with histone modifications and regulates many gene targets contributing to various diseases; however, much remains unknown about how it contributes to cancer malignancy. We and others previously described novel MeCP2 post-translational regulation. We set out to test the hypothesis that MeCP2 would regulate novel genes linked with tumorigenesis and that MeCP2 is subject to additional post-translational regulation not previously identified. Herein we report novel genes bound and regulated by MeCP2 through MeCP2 ChIP-seq and RNA-seq analyses in two breast cancer cell lines representing different breast cancer subtypes. Through genomics analyses, we localize MeCP2 to novel gene targets and further define the full range of gene targets within breast cancer cell lines. We also further examine the scope of clinical and pre-clinical lysine deacetylase inhibitors (KDACi) that regulate MeCP2 post-translationally. Through proteomics analyses, we identify many additional novel acetylation sites, nine of which are mutated in Rett Syndrome. Our study provides important new insight into downstream targets of MeCP2 and provide the first comprehensive map of novel sites of acetylation associated with both pre-clinical and FDA-approved KDACi used in the clinic. This report examines a critical reader of DNA methylation and has important implications for understanding MeCP2 regulation in cancer models and identifying novel molecular targets associated with epigenetic therapies.
Insights
Researchers identified novel genes regulated by MeCP2 (methyl CpG binding protein 2) in breast cancer. The study also uncovered new acetylation sites on MeCP2, offering insights into epigenetic therapies for cancer.
Area of Science:
- Epigenetics
- Molecular Biology
- Cancer Research
Background:
- Abnormal DNA methylation and its readers are linked to cellular dysfunction and diseases, including cancer.
- MeCP2 (methyl CpG binding protein 2) is a key DNA methylation reader connecting DNA methylation to histone modifications, but its role in cancer malignancy is not fully understood.
- Previous work identified novel post-translational regulation of MeCP2.
Purpose of the Study:
- To test the hypothesis that MeCP2 regulates novel genes involved in tumorigenesis.
- To investigate additional, previously unidentified post-translational modifications of MeCP2.
- To explore the impact of lysine deacetylase inhibitors (KDACi) on MeCP2 regulation in breast cancer.
Main Methods:
- MeCP2 Chromatin Immunoprecipitation sequencing (ChIP-seq) and RNA sequencing (RNA-seq) were performed on two breast cancer cell lines.
- Genomic analyses were used to identify novel MeCP2 gene targets.
- Proteomics analyses were conducted to identify novel MeCP2 acetylation sites and examine the effects of KDACi.
Main Results:
- Novel genes bound and regulated by MeCP2 in breast cancer cell lines were identified.
- A comprehensive map of MeCP2 gene targets in breast cancer was defined.
- Numerous novel MeCP2 acetylation sites were identified, with nine mutated in Rett Syndrome, and the effects of KDACi on these sites were examined.
Conclusions:
- This study provides new insights into MeCP2's downstream targets in breast cancer.
- It offers the first comprehensive map of novel acetylation sites regulated by KDACi.
- The findings have significant implications for understanding MeCP2 regulation in cancer and developing novel epigenetic therapies.
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