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Updated: Nov 5, 2025

Induction of Mesenchymal-Epithelial Transitions in Sarcoma Cells
Published on: April 7, 2017
Heparanase 2 (Hpa2) attenuates tumor growth by inducing Sox2 expression
Miriam Gross-Cohen1, Yifat Yanku1, Ofra Kessler1
1Technion Integrated Cancer Center (TICC), Rappaport Faculty of Medicine, Technion, Haifa, Israel.
Abstract:
The pro-tumorigenic properties of heparanase are well documented, and heparanase inhibitors are being evaluated clinically as anti-cancer therapeutics. In contrast, the role of heparanase 2 (Hpa2), a close homolog of heparanase, in cancer is largely unknown. Previously, we have reported that in head and neck cancer, high levels of Hpa2 are associated with prolonged patient survival and decreased tumor cell dissemination to regional lymph nodes, suggesting that Hpa2 functions to restrain tumorigenesis. Also, patients with high levels of Hpa2 were diagnosed as low grade and exhibited increased expression of cytokeratins, an indication that Hpa2 promotes or maintains epithelial cell differentiation and identity. To reveal the molecular mechanism underlying the tumor suppressor properties of Hpa2, and its ability to induce the expression of cytokeratin, we employed overexpression as well as gene editing (Crispr) approaches, combined with gene array and RNAseq methodologies. At the top of the list of many genes found to be affected by Hpa2 was Sox2. Here we provide evidence that silencing of Sox2 resulted in bigger tumors endowed with reduced cytokeratin levels, whereas smaller tumors were developed by cells overexpressing Sox2, suggesting that in head and neck carcinoma, Sox2 functions to inhibit tumor growth. Notably, Hpa2-null cells engineered by Crispr/Cas 9, produced bigger tumors vs control cells, and rescue of Hpa2 attenuated tumor growth. These results strongly imply that Hpa2 functions as a tumor suppressor in head and neck cancer, involving Sox2 upregulation mediated, in part, by the high-affinity interaction of Hpa2 with heparan sulfate.
Insights
Heparanase 2 (Hpa2) acts as a tumor suppressor in head and neck cancer, inhibiting growth and promoting differentiation. Its mechanism involves upregulating Sox2, a key factor in restraining tumor progression.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Heparanase (HPA) promotes tumor growth, with inhibitors in clinical trials.
- The role of heparanase 2 (Hpa2) in cancer remains largely unexplored.
- Previous studies suggest Hpa2 restrains head and neck cancer (HNC) progression and maintains epithelial differentiation.
Purpose of the Study:
- To elucidate the molecular mechanisms behind Hpa2's tumor suppressor functions in HNC.
- To investigate Hpa2's role in regulating cytokeratin expression and epithelial identity.
- To identify key molecular players involved in Hpa2-mediated tumor suppression.
Main Methods:
- Gene expression analysis using gene array and RNA sequencing.
- Gene editing techniques, including CRISPR/Cas9, for gene manipulation.
- Overexpression studies to assess the functional impact of Hpa2 and Sox2.
Main Results:
- Hpa2 upregulation correlated with reduced tumor cell dissemination and increased patient survival in HNC.
- Sox2 was identified as a key gene regulated by Hpa2; Sox2 silencing increased tumor size and decreased cytokeratin levels.
- Hpa2-null cells exhibited enhanced tumor growth, which was attenuated upon Hpa2 reintroduction, confirming its tumor-suppressive role.
Conclusions:
- Hpa2 functions as a tumor suppressor in head and neck carcinoma.
- Hpa2-mediated tumor suppression involves the upregulation of Sox2.
- Hpa2's interaction with heparan sulfate contributes to its tumor-suppressive activity by influencing Sox2 expression.
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