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Updated: Jun 27, 2026

Silencing of BRCA2 to Identify Novel BRCA2-regulated Biological Functions in Cultured Human Cells
Published on: August 12, 2015
Oestrogen-mediated phosphorylation and stabilization of BRCA2 protein in breast
J L Malone1, A C Nelson, R Lieberman
1Department of Pathology, University of Colorado at Denver (UCDHSC), Aurora, CO 80045, USA.
Abstract:
Disease-associated BRCA2 mutations typically result in protein truncations that delete the phosphorylation-regulated S3291 BRCA2 domain that interacts with Rad51. BRCA2 hereditary breast cancers are usually ER(+), differing from BRCA1 hereditary cancers, which are usually ER(-). We studied BRCA2 protein expression and S3291 phosphorylation in normal breast tissues and in sporadic breast cancers and observed that BRCA2 is expressed and phosphorylated in normal breast and 10 ER(+) breast cancers but not in 10 ER(-) breast cancers. In order to study this correlation between ER and BRCA2 expression, we studied ER(+) breast cancer cell lines. We found that a rapid increase in BRCA2 S3291 phosphorylation occurs following 17-beta-oestradiol (E2) treatment. This increase seen in BRCA2 total and phospho-S3291 protein levels was found to be unaffected with cycloheximide pre-treatment, but decreased following tamoxifen, ICI 182,780 or roscovitine treatment. This suggests a requirement for ER and cdk (cyclin-dependent kinase) in mediating the increased protein levels. MCF7 cell cycle distribution analysis following E2, in both the presence and absence of roscovitine (a cdk inhibitor), did not demonstrate any changes during an 8 h period, which further supports our hypothesis that mitogenic effects of E2 are not predominant at early time points. Studies with MG132 proteasome inhibitor and siRNA to skp2 support a model in which skp2-mediated proteasomal degradation of BRCA2 rapidly degrades BRCA2 protein in the absence of hormone treatment, which likely inhibits this pathway. E2 was shown to improve survival of MCF7 cells upon radiation treatment and roscovitine partially reversed this effect. We have demonstrated that BRCA2 protein is specifically expressed in ER(+) breast cancers and are investigating a pathway that may show a link between E2 action and BRCA2 protein function in breast cancer.
Insights
BRCA2 protein is expressed and phosphorylated in estrogen receptor-positive (ER+) breast cancers, linked to 17-beta-estradiol (E2) signaling. This suggests a potential pathway involving E2 and BRCA2 in breast cancer development and treatment.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- BRCA2 mutations often truncate the protein, affecting its interaction with Rad51.
- Hereditary breast cancers associated with BRCA2 are typically estrogen receptor-positive (ER+), unlike BRCA1-associated cancers (ER-).
Purpose of the Study:
- To investigate the correlation between estrogen receptor (ER) status and BRCA2 protein expression and phosphorylation.
- To elucidate the role of 17-beta-estradiol (E2) and associated signaling pathways in regulating BRCA2 in ER+ breast cancer.
Main Methods:
- Analysis of BRCA2 expression and S3291 phosphorylation in normal breast tissues and sporadic breast cancers (ER+ and ER-).
- Treatment of ER+ breast cancer cell lines with E2, cycloheximide, tamoxifen, ICI 182,780, roscovitine, MG132, and skp2 siRNA.
- Cell cycle analysis and assessment of cell survival after radiation treatment.
Main Results:
- BRCA2 was expressed and phosphorylated in normal breast tissue and ER+ breast cancers, but not in ER- breast cancers.
- E2 treatment rapidly increased BRCA2 S3291 phosphorylation and total protein levels in ER+ cells, dependent on ER and cyclin-dependent kinase (CDK).
- E2 enhanced MCF7 cell survival after radiation, an effect partially reversed by roscovitine; BRCA2 degradation is mediated by skp2-dependent proteasomal pathways.
Conclusions:
- BRCA2 protein is specifically expressed in ER+ breast cancers.
- A pathway linking E2 action to BRCA2 protein function in breast cancer is suggested, involving ER, CDK, and proteasomal degradation.
- Understanding this pathway may offer new therapeutic strategies for ER+ breast cancer.
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