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Updated: May 2, 2026

Isolation and Culture Expansion of Tumor-specific Endothelial Cells
Published on: October 14, 2015
Endothelial-specific Notch blockade inhibits vascular function and tumor growth through an eNOS-dependent mechanism
Alexandre Patenaude1, Megan Fuller, Linda Chang
1Authors' Affiliations: Genome Sciences Centre; Integrative Oncology Program; Department of Pathology and Laboratory Medicine, British Columbia Cancer Agency; and Department of Pathology and Laboratory Medicine, University of British Columbia, Vancouver, British Columbia, Canada.
Abstract:
Notch signaling is important for tumor angiogenesis induced by vascular endothelial growth factor A. Blockade of the Notch ligand Dll4 inhibits tumor growth in a paradoxical way. Dll4 inhibition increases endothelial cell sprouting, but vessels show reduced perfusion. The reason for this lack of perfusion is not currently understood. Here we report that inhibition of Notch signaling in endothelial cell using an inducible binary transgenic system limits VEGFA-driven tumor growth and causes endothelial dysfunction. Neither excessive endothelial cell sprouting nor defects of pericyte abundance accompanied the inhibition of tumor growth and functional vasculature. However, biochemical and functional analysis revealed that endothelial nitric oxide production is decreased by Notch inhibition. Treatment with the soluble guanylate cyclase activator BAY41-2272, a vasorelaxing agent that acts downstream of endothelial nitric oxide synthase (eNOS) by directly activating its soluble guanylyl cyclase receptor, rescued blood vessel function and tumor growth. We show that reduction in nitric oxide signaling is an early alteration induced by Notch inhibition and suggest that lack of functional vessels observed with Notch inhibition is secondary to inhibition of nitric oxide signaling. Coculture and tumor growth assays reveal that Notch-mediated nitric oxide production in endothelial cell requires VEGFA signaling. Together, our data support that eNOS inhibition is responsible for the tumor growth and vascular function defects induced by endothelial Notch inhibition. This study uncovers a novel mechanism of nitric oxide production in endothelial cells in tumors, with implications for understanding the peculiar character of tumor blood vessels.
Insights
Notch inhibition impairs tumor blood vessel function by reducing nitric oxide production. Restoring nitric oxide signaling with BAY41-2272 rescues vascular function and inhibits tumor growth.
Area of Science:
- Oncology
- Vascular Biology
- Molecular Signaling
Background:
- Notch signaling regulates tumor angiogenesis, but Dll4 blockade paradoxically impairs tumor vascular perfusion.
- The mechanisms behind Dll4 blockade-induced vascular dysfunction remain unclear.
Purpose of the Study:
- To investigate the role of Notch signaling in endothelial cells on tumor vascular function and growth.
- To elucidate the molecular mechanisms underlying Notch inhibition-induced vascular defects.
Main Methods:
- Utilized an inducible binary transgenic system to inhibit Notch signaling in endothelial cells.
- Performed biochemical and functional analyses, including nitric oxide production assays.
- Employed coculture and tumor growth assays with vascular endothelial growth factor A (VEGFA).
- Tested the efficacy of the soluble guanylate cyclase activator BAY41-2272.
Main Results:
- Notch inhibition limited VEGFA-driven tumor growth and caused endothelial dysfunction without affecting sprouting or pericyte abundance.
- Endothelial nitric oxide (NO) production was significantly decreased following Notch inhibition.
- Treatment with BAY41-2272 rescued blood vessel function and tumor growth, indicating NO deficiency was the cause.
- Notch-mediated NO production in endothelial cells was dependent on VEGFA signaling.
Conclusions:
- Endothelial nitric oxide synthase (eNOS) inhibition is responsible for the tumor growth and vascular defects observed with endothelial Notch inhibition.
- This study reveals a novel mechanism of VEGFA-dependent NO production in tumor endothelial cells via Notch signaling.
- Understanding this pathway has implications for targeting tumor vasculature and improving anti-angiogenic therapies.
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