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Updated: May 3, 2026

Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Oncolytic vaccinia virus demonstrates antiangiogenic effects mediated by targeting of VEGF
Weizhou Hou1, Hannah Chen, Juan Rojas
1Department of Surgery, University of Pittsburgh Cancer Institute, University of Pittsburgh, PA.
Abstract:
Oncolytic vaccinia virus has been shown to induce a profound, rapid and tumor-specific vascular collapse in both preclinical models and clinical studies; however, a complete examination of the kinetics and levels of collapse and revascularization has not been described previously. Contrast-enhanced ultrasound was used to follow tumor perfusion levels in mouse tumor models at times after vaccinia therapy. It was observed that revascularization after viral therapy was dramatically delayed and did not occur until after viral clearance. This indicated that oncolytic vaccinia may possess a previously undescribed antiangiogenic potential that might synergize with the reported anti-vascular effects. Despite a rapid loss of perfusion and widespread hypoxia within the tumor, it was observed that VEGF levels in the tumor were suppressed throughout the period of active viral infection. Although tumor vasculature could eventually reform after the viral therapy was cleared in mouse models, anti-tumor effects could be significantly enhanced through additional combination with anti-VEGF therapies. This was initially examined using a gene therapy approach (Ad-Flk1-Fc) to target VEGF directly, demonstrating that the timing of application of the antiangiogenic therapy was critical. However, it is also known that oncolytic vaccinia sensitizes tumors to tyrosine kinase inhibitors (TKI) in the clinic through an unknown mechanism. It is possible this phenomenon may be mediated through the antiangiogenic effects of the TKIs. This was modeled in mouse tumors using sunitinib in combination with oncolytic vaccinia. It was observed that prevention of angiogenesis mediated by oncolytic vaccinia can be utilized to enhance the TKI therapy.
Insights
Oncolytic vaccinia virus causes delayed tumor revascularization and suppressed VEGF, suggesting antiangiogenic potential. Combining vaccinia therapy with anti-VEGF agents or tyrosine kinase inhibitors enhances anti-tumor effects.
Area of Science:
- Oncology
- Virology
- Immunotherapy
Background:
- Oncolytic vaccinia virus induces rapid tumor vascular collapse.
- Kinetics of collapse and revascularization are not fully understood.
Purpose of the Study:
- Investigate the kinetics of tumor perfusion and revascularization after vaccinia therapy.
- Explore the antiangiogenic potential of oncolytic vaccinia.
- Evaluate combination therapies with anti-VEGF agents and tyrosine kinase inhibitors.
Main Methods:
- Contrast-enhanced ultrasound to monitor tumor perfusion in mouse models.
- Gene therapy (Ad-Flk1-Fc) to target VEGF.
- Combination therapy with sunitinib (a tyrosine kinase inhibitor) and oncolytic vaccinia.
Main Results:
- Revascularization was significantly delayed until after viral clearance.
- VEGF levels were suppressed during active viral infection.
- Combination with anti-VEGF therapy and sunitinib enhanced anti-tumor effects, with timing being critical.
Conclusions:
- Oncolytic vaccinia exhibits previously undescribed antiangiogenic properties.
- This antiangiogenic effect can be leveraged to enhance combination therapies.
- Targeting angiogenesis alongside vaccinia virus therapy holds significant therapeutic potential.
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