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A phosphotyrosine switch determines the antitumor activity of ERβ
Abstract:
Estrogen receptors ERα and ERβ share considerable sequence homology yet exert opposite effects on breast cancer cell proliferation. While the proliferative role of ERα in breast tumors is well characterized, it is not clear whether the antitumor activity of ERβ can be mobilized in breast cancer cells. Here, we have shown that phosphorylation of a tyrosine residue (Y36) present in ERβ, but not in ERα, dictates ERβ-specific activation of transcription and is required for ERβ-dependent inhibition of cancer cell growth in culture and in murine xenografts. Additionally, the c-ABL tyrosine kinase and EYA2 phosphatase directly and diametrically controlled the phosphorylation status of Y36 and subsequent ERβ function. A nonphosphorylatable, transcriptionally active ERβ mutant retained antitumor activity but circumvented control by upstream regulators. Phosphorylation of Y36 was required for ERβ-mediated coactivator recruitment to ERβ target promoters. In human breast cancer samples, elevated phosphorylation of Y36 in ERβ correlated with high levels of c-ABL but low EYA2 levels. Furthermore, compared with total ERβ, the presence of phosphorylated Y36-specific ERβ was strongly associated with both disease-free and overall survival in patients with stage II and III disease. Together, these data identify a signaling circuitry that regulates ERβ-specific antitumor activity and has potential as both a prognostic tool and a molecular target for cancer therapy.
Insights
Estrogen receptor beta (ERβ) phosphorylation at Y36 inhibits breast cancer growth. This finding reveals a signaling pathway for ERβ
Area of Science:
- Endocrinology
- Molecular Biology
- Oncology
Background:
- Estrogen receptors ERα and ERβ have opposing roles in breast cancer proliferation.
- The antitumor potential of ERβ remains largely unexploited in breast cancer therapy.
Purpose of the Study:
- To investigate the mechanism of ERβ's antitumor activity.
- To identify regulators of ERβ function and their clinical relevance in breast cancer.
Main Methods:
- Utilized cell culture and murine xenograft models to study ERβ phosphorylation at Y36.
- Investigated the roles of c-ABL tyrosine kinase and EYA2 phosphatase in regulating ERβ Y36 phosphorylation.
- Analyzed human breast cancer samples for ERβ Y36 phosphorylation status and its correlation with clinical outcomes.
Main Results:
- Phosphorylation of ERβ at Y36 is crucial for its transcriptional activity and inhibition of cancer cell growth.
- c-ABL and EYA2 directly regulate ERβ Y36 phosphorylation and ERβ-mediated antitumor effects.
- Phosphorylated ERβ at Y36 is associated with improved disease-free and overall survival in patients with Stage II and III breast cancer.
Conclusions:
- A signaling circuitry involving ERβ Y36 phosphorylation regulates its antitumor activity.
- ERβ Y36 phosphorylation serves as a potential prognostic marker and therapeutic target in breast cancer.
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