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Updated: Nov 24, 2025

Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Fusogenic oncolytic vaccinia virus enhances systemic antitumor immune response by modulating the tumor
Motomu Nakatake1, Nozomi Kuwano1, Emi Kaitsurumaru1
1Division of Molecular Medicine, Department of Genomic Medicine and Regenerative Therapeutics, School of Medicine, Tottori University Faculty of Medicine, 86 Nishi-cho, Yonago 683-8503, Japan.
Abstract:
Oncolytic viruses induce antitumor immunity following direct viral oncolysis. However, their therapeutic effects are limited in distant untreated tumors because their antitumor function depends on indirect antitumor immunity. Here, we generated a novel fusogenic oncolytic vaccinia virus (FUVAC) and compared its antitumor activity with that of its parental non-fusogenic virus. Compared with the parent, FUVAC exerted the cytopathic effect and induced immunogenic cell death in human and murine cancer cells more efficiently. In a bilateral tumor-bearing syngeneic mouse model, FUVAC administration significantly inhibited tumor growth in both treated and untreated tumors. However, its antitumor effects were completely suppressed by CD8+ T cell depletion. Notably, FUVAC reduced the number of tumor-associated immune-suppressive cells in treated tumors, but not in untreated tumors. Mice treated with FUVAC before an immune checkpoint inhibitor (ICI) treatment achieved complete response (CR) in both treated and untreated tumors, whereas ICI alone did not show antitumor activity. Mice achieving CR rejected rechallenge with the same tumor cells, suggesting establishment of a long-term tumor-specific immune memory. Thus, FUVAC improves the tumor immune microenvironment and enhances systemic antitumor immunity, suggesting that, alone and in combination with ICI, it is a novel immune modulator for overcoming oncolytic virus-resistant tumors.
Insights
A novel fusogenic oncolytic vaccinia virus (FUVAC) effectively targets tumors and enhances systemic immunity. FUVAC, combined with immune checkpoint inhibitors, induces complete tumor regression and long-term immune memory.
Area of Science:
- Oncolytic virology
- Cancer immunotherapy
- Immunogenic cell death
Background:
- Oncolytic viruses stimulate antitumor immunity via viral oncolysis.
- Therapeutic efficacy is limited in distant tumors due to reliance on indirect antitumor immunity.
Purpose of the Study:
- To develop and evaluate a novel fusogenic oncolytic vaccinia virus (FUVAC).
- To compare FUVAC's antitumor activity against its non-fusogenic parent virus.
- To assess FUVAC's potential in combination with immune checkpoint inhibitors (ICIs).
Main Methods:
- Generation of a fusogenic oncolytic vaccinia virus (FUVAC).
- In vitro assessment of cytopathic effect and immunogenic cell death.
- In vivo evaluation in a bilateral tumor-bearing syngeneic mouse model.
- CD8+ T cell depletion studies and combination therapy with ICIs.
Main Results:
- FUVAC demonstrated enhanced cytopathic effects and immunogenic cell death compared to the parent virus.
- FUVAC significantly inhibited tumor growth in both treated and untreated tumors, dependent on CD8+ T cells.
- FUVAC reduced immunosuppressive cells in treated tumors and, when combined with ICIs, led to complete tumor regression and durable immune memory.
Conclusions:
- FUVAC effectively improves the tumor immune microenvironment and enhances systemic antitumor immunity.
- FUVAC shows promise as a novel immune modulator for overcoming oncolytic virus-resistant tumors, both as a monotherapy and in combination with ICIs.
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