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Updated: Jun 11, 2026

Silencing of BRCA2 to Identify Novel BRCA2-regulated Biological Functions in Cultured Human Cells
Published on: August 12, 2015
Methylation of the tumor suppressor protein, BRCA1, influences its transcriptional cofactor function
Irene Guendel1, Lawrence Carpio, Caitlin Pedati
1Department of Microbiology, Immunology, and Tropical Medicine, The George Washington University Medical Center, Washington, DC, United States of America.
Background:
Approximately half of hereditary breast cancers have mutations in either BRCA1 or BRCA2. BRCA1 is a multifaceted tumor suppressor protein that has implications in processes such as cell cycle, transcription, DNA damage response and chromatin remodeling. This multifunctional nature of BRCA1 is achieved by exerting its many effects through modulation of transcription. Many cellular events are dictated by covalent modification of proteins, an important mechanism in regulating protein and genome function; of which protein methylation is an important posttranslational modification with activating or repressive effects.
Methods/Principal Findings:
Here we demonstrate for the first time that BRCA1 is methylated both in breast cancer cell lines and breast cancer tumor samples at arginine and lysine residues through immunoprecipitation and western blot analysis. Arginine methylation by PRMT1 was observed in vitro and the region of BRCA1 504-802 shown to be highly methylated. PRMT1 was detected in complex with BRCA1 504-802 through in vitro binding assays and co-immunoprecipitated with BRCA1. Inhibition of methylation resulted in decreased BRCA1 methylation and alteration of BRCA1 binding to promoters in vivo as shown through chromatin immunoprecipitation assays. Knockdown of PRMT1 also resulted in increased BRCA1 binding to particular promoters in vivo. Finally, following methylation inhibition, Sp1 was found to preferentially associate with hypo-methylated BRCA1 and STAT1 was found to preferentially associate with hyper-methylated BRCA1.
Conclusions/Significance:
These results suggest that methylation may influence either the ability of BRCA1 to bind to specific promoters or protein-protein interactions which alters the recruitment of BRCA1 to these promoters. Thus, given the importance of BRCA1 to genomic stability, methylation of BRCA1 may ultimately affect the tumor suppressor ability of BRCA1.
Insights
Breast cancer protein BRCA1 (Breast cancer type 1 susceptibility protein) is methylated, affecting its DNA binding and tumor suppressor function. This methylation, influenced by PRMT1, impacts protein interactions and promoter recruitment, potentially altering BRCA1
Area of Science:
- Molecular Biology
- Cancer Research
- Epigenetics
Background:
- Hereditary breast cancers often involve BRCA1 mutations.
- BRCA1 is a tumor suppressor crucial for DNA repair and gene regulation.
- Protein methylation is a key post-translational modification influencing cellular functions.
Purpose of the Study:
- To investigate the methylation of BRCA1 in breast cancer.
- To identify the enzymes responsible for BRCA1 methylation.
- To determine the functional consequences of BRCA1 methylation on its activity.
Main Methods:
- Immunoprecipitation and Western blot analysis to detect BRCA1 methylation.
- In vitro binding assays and co-immunoprecipitation to study PRMT1-BRCA1 interaction.
- Chromatin immunoprecipitation assays to assess BRCA1 promoter binding in vivo.
Main Results:
- BRCA1 is methylated at arginine and lysine residues in breast cancer cells and tumors.
- PRMT1 methylates BRCA1 in vitro, with a specific region (504-802) being highly methylated.
- Inhibition of methylation alters BRCA1's in vivo promoter binding and affects its association with Sp1 and STAT1.
Conclusions:
- BRCA1 methylation influences its promoter binding and protein interactions.
- Methylation of BRCA1 may impact its tumor suppressor capabilities.
- Understanding BRCA1 methylation provides insights into breast cancer pathogenesis and potential therapeutic targets.
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