EYA4 drives breast cancer progression and metastasis through its novel role in replication stress avoidance
Bárbara de la Peña Avalos1, Romain Tropée2, Pascal H G Duijf3
1University of Texas Health Science Center at San Antonio.
Abstract:
The Eyes Absent (EYA) family of proteins is an atypical group of four dual-functioning protein phosphatases, which have been linked to many vital cellular processes and organogenesis pathways. Like the other isoforms, EYA4 possesses transcriptional activation and phosphatase functions, with serine/threonine and tyrosine phosphatase domains. EYA4 has been associated with several human cancers, with tumor-suppressing and tumor-promoting roles. However, EYA4 is the least well-characterized member of this unique family of phosphatases, with its biological functions and molecular mechanisms in cancer progression, particularly in breast cancer, still largely unknown. In the present study, we found that the over-expression of EYA4 in breast tissue leads to an aggressive and invasive breast cancer phenotype, while the inhibition of EYA4 reduced tumorigenic properties of breast cancer cells in vitro and in vivo . Cellular changes downstream of EYA4, including cell proliferation and migration, may explain the increased metastatic power of breast cancer cells over-expressing EYA4. Mechanistically, EYA4 prevents genome instability by inhibiting the accumulation of replication-associated DNA damage. Its depletion results in polyploidy as a consequence of endoreplication, a phenomenon that can occur in response to stress. The absence of EYA4 leads to spontaneous replication stress characterized by the activation of the ATR pathway, sensitivity to hydroxyurea, and accumulation of endogenous DNA damage as indicated by increased γH2AX levels. In addition, we show that EYA4, specifically its serine/threonine phosphatase domain, plays an important and so far, unexpected role in replication fork progression. This phosphatase activity is essential for breast cancer progression and metastasis. Taken together, our data indicate that EYA4 is a novel breast cancer oncogene that supports primary tumor growth and metastasis. Developing therapeutics aimed at the serine/threonine phosphatase activity of EYA4 represents a robust strategy for killing breast cancer cells, to limit metastasis and overcome chemotherapy resistance caused by endoreplication and genomic rearrangements.
Insights
Eyes Absent protein 4 (EYA4) drives aggressive breast cancer by promoting proliferation and metastasis. Inhibiting EYA4’s phosphatase activity offers a therapeutic strategy against breast cancer growth and spread.
Area of Science:
- Molecular Biology
- Cancer Biology
- Biochemistry
Background:
- The Eyes Absent (EYA) protein family comprises four dual-function phosphatases involved in cellular processes and organogenesis.
- EYA4, the least understood member, exhibits both transcriptional activation and serine/threonine/tyrosine phosphatase activities.
- EYA4's roles in cancer are contradictory, with limited knowledge regarding its function in breast cancer progression.
Approach:
- Investigated the role of EYA4 in breast cancer using in vitro and in vivo models.
- Analyzed cellular changes, including proliferation, migration, and DNA damage response, upon EYA4 modulation.
- Examined the specific contribution of EYA4's phosphatase activity to cancer progression.
Key Points:
- EYA4 overexpression correlates with aggressive, invasive breast cancer phenotypes and increased metastasis.
- EYA4 depletion reduces tumorigenicity and prevents genome instability by inhibiting DNA damage accumulation.
- EYA4 absence triggers replication stress, polyploidy, and ATR pathway activation.
- EYA4's serine/threonine phosphatase activity is crucial for replication fork progression and breast cancer metastasis.
Conclusions:
- EYA4 functions as a novel breast cancer oncogene, promoting tumor growth and metastasis.
- Targeting EYA4's serine/threonine phosphatase activity is a promising therapeutic strategy for breast cancer.
- Inhibition of EYA4 may overcome chemotherapy resistance linked to endoreplication and genomic instability.
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