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Design, Synthesis and Anti-Melanoma Activity of Novel Annexin V Derivative with β3-Integrin Affinity
Jingyi Zhu1, Wenjuan Li1, Jian Jing1
1Beijing Key Lab of Biotechnology and Genetic Engineering, College of Life Sciences, Beijing Normal University, Beijing 100875, China.
Abstract:
Tumor tissues often exhibit unique integrin receptor presentation during development, such as high exposures of αvβ3 and αIIbβ3 integrins. These features are not present in normal tissues. The induction of selective thrombosis and infarction in the tumor-feeding vessels, as well as specific antagonism of αvβ3 integrin on the surface of tumor endothelial cells, is a potential novel antitumor strategy. The Echistatin-Annexin V (EAV) fusion protein is a novel Annexin V (ANV) derivative that possesses a high degree of αvβ3 and αIIbβ3 integrin receptor recognition and binding characteristics while retaining the specific binding ability of the natural ANV molecule for phosphatidylserine (PS). We systematically investigated the biological effects of this novel molecule with superimposed functions on mouse melanoma. We found that EAV inhibited the viability and migration of B16F10 murine melanoma cells in a dose-dependent manner, exhibited good tumor suppressive effects in a xenograft mouse melanoma model, strongly induced tumor tissue necrosis in mice, and targeted the inhibition of angiogenesis in mouse melanoma tumor tissue. EAV exhibited stronger biological effects than natural ANV molecules in inhibiting melanoma in mice. The unique biological effects of EAV are based on its high β3-type integrin receptor-specific recognition and binding ability, as well as its highly selective binding to PS molecules. Based on these findings, we propose that EAV-mediated tumor suppression is a novel and promising antitumor strategy that targets both PS- and integrin β3-positive tumor neovascularization and the tumor cells themselves, thus providing a possible mechanism for the treatment of melanoma.
Insights
The novel Echistatin-Annexin V (EAV) fusion protein shows promise as an antitumor strategy by targeting both tumor cells and their blood vessels. EAV effectively suppresses melanoma growth and induces tumor necrosis in mice.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Tumor tissues display unique integrin receptor expression, notably αvβ3 and αIIbβ3, absent in normal tissues.
- Targeting these integrins and phosphatidylserine (PS) presents a novel antitumor strategy.
Purpose of the Study:
- To investigate the biological effects of the Echistatin-Annexin V (EAV) fusion protein, a novel Annexin V derivative.
- To evaluate EAV's potential as an antitumor agent against melanoma by targeting integrin β3 and PS.
Main Methods:
- Systematic investigation of EAV's effects on B16F10 murine melanoma cells in vitro.
- Evaluation of EAV's anti-tumor efficacy, tumor necrosis induction, and anti-angiogenesis activity in a xenograft mouse melanoma model.
Main Results:
- EAV dose-dependently inhibited melanoma cell viability and migration.
- EAV demonstrated significant tumor suppressive effects, induced necrosis, and inhibited angiogenesis in mouse melanoma models.
- EAV exhibited superior anti-melanoma activity compared to native Annexin V.
Conclusions:
- EAV's potent anti-melanoma effects stem from its dual targeting of β3-type integrins and PS.
- EAV represents a promising novel antitumor strategy targeting tumor neovascularization and tumor cells, offering a potential treatment for melanoma.
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