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CXCL11 mediates TWIST1-induced angiogenesis in epithelial ovarian cancer
Yu-Jin Koo1, Tae-Jin Kim2, Kyung-Jin Min3
11 Department of Obstetrics and Gynecology, Yeungnam University Medical Center, Daegu, Korea.
Abstract:
To investigate the role of TWIST1 in tumor angiogenesis in epithelial ovarian cancer and to identify key molecules involved in angiogenesis. TWIST1 small interfering RNA was transfected into A2780 cells, while a complementary DNA vector was transfected into non-malignant human ovarian surface epithelial cells to generate a TWIST1-overexpressing cell line. To evaluate how this affects angiogenesis, human umbilical vein endothelial cell tube formation assays were performed using the control and transfected cell lines. An antibody-based cytokine array was used to identify the molecules involved in TWIST1-mediated angiogenesis. After knockdown of TWIST1 via transfection of TWIST1 small interfering RNA into A2780 cells, the number of tubes formed by human umbilical vein endothelial cells significantly decreased in a tube formation assay. In a cytokine array, TWIST1 downregulation did not significantly decrease the secretion of the common pro-angiogenic factor, vascular endothelial growth factor, but instead inhibited the expression of the CXC chemokine ligand 11, which was confirmed by both an enzyme-linked immunosorbent assay and western blotting. In contrast, TWIST1 overexpression resulted in increased secretion of CXC chemokine ligand 11. Conversely, CXC chemokine ligand 11 downregulation did not inhibit the expression of TWIST1. Furthermore, the ability of TWIST1-expressing A2780 cells to induce angiogenesis was found to be inhibited after CXC chemokine ligand 11 knockdown in a tube formation assay. TWIST1 plays an important role in angiogenesis in epithelial ovarian cancer and is mediated by a novel pro-angiogenic factor, CXC chemokine ligand 11. Downregulation of CXC chemokine ligand 11 can inhibit tumor angiogenesis, suggesting that anti-CXC chemokine ligand 11 therapy may offer an alternative treatment strategy for TWIST1-positive ovarian cancer.
Insights
TWIST1 promotes tumor angiogenesis in ovarian cancer by upregulating CXC chemokine ligand 11. Inhibiting this chemokine may offer a new treatment strategy for TWIST1-positive ovarian cancer.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Tumor angiogenesis is crucial for epithelial ovarian cancer progression.
- The role of TWIST1 in ovarian cancer angiogenesis requires further elucidation.
- Identifying key molecular mediators of TWIST1-driven angiogenesis is essential for therapeutic development.
Purpose of the Study:
- To investigate the function of TWIST1 in epithelial ovarian cancer angiogenesis.
- To identify novel molecular factors regulated by TWIST1 that contribute to angiogenesis.
- To explore the therapeutic potential of targeting TWIST1-mediated angiogenesis.
Main Methods:
- TWIST1 knockdown and overexpression in ovarian cancer cell lines (A2780).
- Human umbilical vein endothelial cell tube formation assays to assess angiogenesis.
- Antibody-based cytokine array, ELISA, and Western blotting to identify and validate key molecules.
Main Results:
- TWIST1 knockdown significantly reduced endothelial cell tube formation.
- TWIST1 downregulation inhibited CXC chemokine ligand 11 (CXCL11) expression, while TWIST1 overexpression increased it.
- CXCL11 knockdown abrogated the pro-angiogenic effect of TWIST1-expressing cells.
- Vascular endothelial growth factor (VEGF) secretion was not significantly affected by TWIST1 modulation.
Conclusions:
- TWIST1 is a significant driver of angiogenesis in epithelial ovarian cancer.
- CXC chemokine ligand 11 is a novel pro-angiogenic factor mediating TWIST1's effects.
- Targeting CXCL11 presents a potential therapeutic strategy for TWIST1-positive ovarian cancer.
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