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Updated: Aug 29, 2026

A Simple Bioassay for the Evaluation of Vascular Endothelial Growth Factors
Published on: March 15, 2016
Inhibition of VEGF-dependent multistage carcinogenesis by soluble EphA receptors
Nikki Cheng1, Dana Brantley, Wei Bin Fang
1Department of Cancer Biology and Vanderbilt-Ingram Cancer Center, Vanderbilt University School of Medicine, Nashville, TN 37232, USA.
Abstract:
Elevated expression of Eph receptors has long been correlated with the growth of solid tumors. However, the functional role of this family of receptor tyrosine kinases in carcinogenesis and tumor angiogenesis has not been well characterized. Here we report that soluble EphA receptors inhibit tumor angiogenesis and tumor progression in vivo in the RIP-Tag transgenic model of vascular endothelial growth factor (VEGF)-dependent multistage pancreatic islet cell carcinoma. Soluble EphA receptors delivered either by a transgene or an osmotic minipump inhibited the formation of angiogenic islet, a premalignant lesion, and reduced tumor volume of solid islet cell carcinoma. EphA2-Fc or EphA3-Fc treatment resulted in decreased tumor volume but increased tumor and endothelial cell apoptosis in vivo. In addition, soluble EphA receptors inhibited VEGF and betaTC tumor cell-conditioned medium-induced endothelial cell migration in vitro and VEGF-induced cornea angiogenesis in vivo. A dominant negative EphA2 mutant inhibited--whereas a gain-of-function EphA2 mutant enhanced--tumor cell-induced endothelial cell migration, suggesting that EphA2 receptor activation is required for tumor cell-endothelial cell interaction. These data provide functional evidence for EphA class receptor regulation of VEGF-dependent tumor angiogenesis, suggesting that the EphA signaling pathway may represent an attractive novel target for antiangiogenic therapy in cancer.
Insights
Soluble EphA receptors significantly inhibit tumor angiogenesis and progression. This discovery highlights the EphA signaling pathway as a promising target for novel anti-cancer therapies.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Eph receptor tyrosine kinases are linked to solid tumor growth.
- Their specific roles in carcinogenesis and tumor angiogenesis remain unclear.
Purpose of the Study:
- To investigate the functional role of soluble EphA receptors in tumor angiogenesis and progression.
- To determine if EphA signaling can be targeted for anti-cancer therapies.
Main Methods:
- Utilized the RIP-Tag transgenic mouse model for pancreatic islet cell carcinoma.
- Administered soluble EphA receptors via transgene and osmotic minipump.
- Assessed tumor angiogenesis, volume, cell apoptosis, and endothelial cell migration in vitro and in vivo.
- Employed dominant-negative and gain-of-function EphA2 mutants to study receptor activation.
Main Results:
- Soluble EphA receptors inhibited premalignant angiogenic islet formation and reduced tumor volume.
- Treatment with EphA2-Fc or EphA3-Fc decreased tumor volume and increased apoptosis.
- Soluble EphA receptors suppressed VEGF-induced endothelial cell migration and cornea angiogenesis.
- EphA2 receptor activation was critical for tumor cell-endothelial cell interactions.
Conclusions:
- EphA receptors play a crucial role in regulating VEGF-dependent tumor angiogenesis.
- The EphA signaling pathway represents a potential therapeutic target for anti-angiogenic cancer treatments.
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