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Updated: Jul 6, 2026

Induction and Analysis of Epithelial to Mesenchymal Transition
Published on: August 27, 2013
A kinase-dependent role for EphA2 receptor in promoting tumor growth and metastasis
Wei Bin Fang1, Dana M Brantley-Sieders, Monica A Parker
1Department of Cancer Biology, Vanderbilt University School of Medicine, Nashville, TN 37232-2363, USA.
Abstract:
Receptor tyrosine kinases of the Eph family are upregulated in several different types of cancer. One family member in particular, the EphA2 receptor, has been linked to breast, prostate, lung and colon cancer, as well as melanoma. However, mechanisms by which EphA2 contributes to tumor progression are far from clear. In certain tumor cell lines, EphA2 receptor is underphosphorylated, raising the question of whether ligand-induced receptor phosphorylation and its kinase activity play a role in oncogenesis. To test directly the role of EphA2 receptor phosphorylation/kinase activity in tumor progression, we generated EphA2 receptor variants that were either lacking the cytoplasmic domain or carrying a point mutation that inhibits its kinase activity. Expression of these EphA2 mutants in breast cancer cells resulted in decreased tumor volume and increased tumor apoptosis in primary tumors. In addition, the numbers of lung metastases were significantly reduced in both experimental and spontaneous metastasis models. Reduced tumor volume and metastasis are not due to defects in tumor angiogenesis, as there is no significant difference in tumor vessel density between wild-type tumors and tumors expressing EphA2-signaling-defective mutants. In contrast, tumor cells expressing the EphA2 mutants are defective in RhoA GTPase activation and cell migration. Taken together, these results suggest that receptor phosphorylation and kinase activity of the EphA2 receptor, at least in part, contribute to tumor malignancy.
Insights
EphA2 receptor phosphorylation and kinase activity are crucial for tumor progression. Inhibiting these functions in breast cancer cells reduced tumor growth and metastasis, indicating their role in malignancy.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- EphA2 receptor tyrosine kinase is upregulated in various cancers, including breast, prostate, lung, colon, and melanoma.
- The precise mechanisms by which EphA2 promotes tumor progression remain unclear.
- Underphosphorylated EphA2 in some tumor cells suggests a potential role for ligand-induced phosphorylation and kinase activity in oncogenesis.
Purpose of the Study:
- To investigate the direct role of EphA2 receptor phosphorylation and kinase activity in tumor progression.
- To elucidate the contribution of EphA2 signaling to cancer malignancy.
Main Methods:
- Generated EphA2 receptor variants lacking the cytoplasmic domain or with a kinase-inactivating point mutation.
- Expressed these EphA2 mutants in breast cancer cells.
- Assessed tumor volume, apoptosis, metastasis, angiogenesis, RhoA GTPase activation, and cell migration.
Main Results:
- Expression of EphA2 mutants led to decreased tumor volume and increased apoptosis in primary tumors.
- Significant reduction in lung metastases was observed in both experimental and spontaneous metastasis models.
- Tumor cells with EphA2 mutants showed defective RhoA GTPase activation and cell migration, without affecting tumor angiogenesis.
Conclusions:
- Receptor phosphorylation and kinase activity of EphA2 receptor play a significant role in tumor malignancy.
- Targeting EphA2 phosphorylation and kinase activity may represent a therapeutic strategy for reducing cancer progression and metastasis.
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