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Published on: November 23, 2014
Antagonizing the S1P-S1P3 Axis as a Promising Anti-Angiogenic Strategy
Sofia Avnet1, Emi Mizushima2, Beatrice Severino3
1Department of Biomedical and Neuromotor Sciences, University of Bologna, 40138 Bologna, Italy.
Background:
Angiogenesis, the process of new blood vessel formation, is critically regulated by a balance of pro- and anti-angiogenic factors. This process plays a central role in tumor progression and is modulated by tumor cells. Sphingosine-1-phosphate (S1P), a bioactive lipid signaling molecule acting via G-protein-coupled receptors (S1PR1-5), has emerged as a key mediator of vascular development and pathological angiogenesis in cancer. Consequently, targeting the S1P-S1PRs axis represents a promising strategy for antiangiogenic therapies. This study explores S1PR3 as a potential therapeutic target in osteosarcoma, the most common primary bone malignancy, which we have previously demonstrated to secrete S1P within the acidic tumor microenvironment.
Methods:
The effects of KRX-725-II and its derivatives, Tic-4-KRX-725-II and [D-Tic]4-KRX-725-II-pepducins acting as S1PR3 antagonists as allosteric modulators of GPCR activity-were tested on metastatic osteosarcoma cells (143B) for proliferation and migration inhibition. Anti-angiogenic activity was assessed using endothelial cells (HUVEC) through proliferation and tubulogenesis assays in 2D, alongside sprouting and migration analyses in a 3D passively perfused microfluidic chip.
Results:
S1PR3 inhibition did not alter osteosarcoma cell growth or migration. However, it impaired endothelial cell tubulogenesis up to 75% and sprouting up to 30% in respect to controls. Conventional 2D assays revealed reduced tubule nodes and length, while 3D microfluidic models demonstrated diminished sprouting area and maximum migration distance, indicating S1PR3's role in driving endothelial cell differentiation.
Conclusions:
These findings highlight S1PR3 as a critical regulator of angiogenesis and posit its targeting as a novel anti-angiogenic strategy, particularly for aggressive, S1P-secreting tumors with pronounced metastatic potential and an acidic microenvironment.
Insights
Targeting Sphingosine-1-phosphate receptor 3 (S1PR3) inhibits new blood vessel formation in osteosarcoma. This anti-angiogenic strategy shows promise for aggressive, acidic tumors by impacting endothelial cell differentiation.
Area of Science:
- Oncology
- Vascular Biology
- Pharmacology
Background:
- Angiogenesis is crucial for tumor growth, regulated by pro- and anti-angiogenic factors.
- Sphingosine-1-phosphate (S1P) signaling via G-protein-coupled receptors (S1PRs) influences vascular development and pathological angiogenesis in cancer.
- Targeting the S1P-S1PRs axis offers a potential anti-angiogenic therapy strategy, with S1PR3 being explored in osteosarcoma.
Purpose of the Study:
- To investigate S1PR3 as a therapeutic target in osteosarcoma.
- To evaluate the anti-angiogenic effects of S1PR3 antagonists on endothelial cells.
- To assess the impact of S1PR3 inhibition on osteosarcoma cell behavior.
Main Methods:
- S1PR3 antagonists (KRX-725-II derivatives) were tested on metastatic osteosarcoma cells (143B) for proliferation and migration.
- Anti-angiogenic activity was assessed using human umbilical vein endothelial cells (HUVEC) in 2D (proliferation, tubulogenesis) and 3D microfluidic models (sprouting, migration).
Main Results:
- S1PR3 inhibition did not affect osteosarcoma cell growth or migration.
- Endothelial cell tubulogenesis was impaired by up to 75% and sprouting by up to 30% upon S1PR3 inhibition.
- 2D and 3D assays indicated S1PR3 plays a role in endothelial cell differentiation, reducing tubule formation and migration.
Conclusions:
- S1PR3 is a critical regulator of angiogenesis, not osteosarcoma cell proliferation or migration.
- Targeting S1PR3 presents a novel anti-angiogenic strategy for aggressive, S1P-secreting osteosarcomas.
- The acidic tumor microenvironment in aggressive osteosarcoma may enhance the relevance of targeting S1PR3.
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