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Updated: Jun 23, 2026

A Simple and Efficient Approach to Construct Mutant Vaccinia Virus Vectors
Published on: October 30, 2016
Targeting of interferon-beta to produce a specific, multi-mechanistic oncolytic vaccinia virus
David H Kirn1, Yaohe Wang, Fabrice Le Boeuf
1Jennerex Biotherapeutics, San Francisco, California, United States of America.
Background:
Oncolytic viruses hold much promise for clinical treatment of many cancers, but a lack of systemic delivery and insufficient tumor cell killing have limited their usefulness. We have previously demonstrated that vaccinia virus strains are capable of systemic delivery to tumors in mouse models, but infection of normal tissues remains an issue. We hypothesized that interferon-beta (IFN-beta) expression from an oncolytic vaccinia strain incapable of responding to this cytokine would have dual benefits as a cancer therapeutic: increased anticancer effects and enhanced virus inactivation in normal tissues. We report the construction and preclinical testing of this virus.
Methods And Findings:
In vitro screening of viral strains by cytotoxicity and replication assay was coupled to cellular characterization by phospho-flow cytometry in order to select a novel oncolytic vaccinia virus. This virus was then examined in vivo in mouse models by non-invasive imaging techniques. A vaccinia B18R deletion mutant was selected as the backbone for IFN-beta expression, because the B18R gene product neutralizes secreted type-I IFNs. The oncolytic B18R deletion mutant demonstrated IFN-dependent cancer selectivity and efficacy in vitro, and tumor targeting and efficacy in mouse models in vivo. Both tumor cells and tumor-associated vascular endothelial cells were targeted. Complete tumor responses in preclinical models were accompanied by immune-mediated protection against tumor rechallenge. Cancer selectivity was also demonstrated in primary human tumor explant tissues and adjacent normal tissues. The IFN-beta gene was then cloned into the thymidine kinase (TK) region of this virus to create JX-795 (TK-/B18R-/IFN-beta+). JX-795 had superior tumor selectivity and systemic intravenous efficacy when compared with the TK-/B18R- control or wild-type vaccinia in preclinical models.
Conclusions:
By combining IFN-dependent cancer selectivity with IFN-beta expression to optimize both anticancer effects and normal tissue antiviral effects, we were able to achieve, to our knowledge for the first time, tumor-specific replication, IFN-beta gene expression, and efficacy following systemic delivery in preclinical models.
Insights
A novel oncolytic vaccinia virus (JX-795) engineered to express interferon-beta (IFN-beta) demonstrates enhanced cancer selectivity and efficacy. This engineered virus effectively targets tumors while minimizing infection in normal tissues, offering a promising new cancer therapy.
Area of Science:
- Oncolytic virotherapy
- Cancer immunotherapy
- Gene therapy
Background:
- Oncolytic viruses show promise for cancer treatment but face challenges in systemic delivery and tumor cell killing.
- Previous vaccinia virus strains achieved systemic delivery but caused normal tissue infection.
- Hypothesis: Interferon-beta (IFN-beta) expression in an oncolytic vaccinia strain, unable to respond to IFN-beta, would enhance anti-cancer effects and virus inactivation in normal tissues.
Purpose of the Study:
- To construct and preclinically test a novel oncolytic vaccinia virus expressing IFN-beta.
- To evaluate the virus's dual benefits: increased anti-cancer effects and enhanced virus inactivation in normal tissues.
- To assess tumor-specific replication and efficacy following systemic delivery.
Main Methods:
- Selected a vaccinia B18R deletion mutant as a backbone for IFN-beta expression, as B18R neutralizes type-I IFNs.
- In vitro screening using cytotoxicity and replication assays, coupled with phospho-flow cytometry.
- In vivo examination in mouse models using non-invasive imaging techniques.
- Cloned the IFN-beta gene into the thymidine kinase (TK) region to create JX-795 (TK-/B18R-/IFN-beta+).
Main Results:
- The B18R deletion mutant showed IFN-dependent cancer selectivity and efficacy in vitro.
- In vivo studies demonstrated tumor targeting and efficacy in mouse models, affecting both tumor cells and vascular endothelial cells.
- Complete tumor responses were observed, accompanied by immune-mediated protection against tumor rechallenge.
- JX-795 exhibited superior tumor selectivity and systemic intravenous efficacy compared to control viruses in preclinical models.
Conclusions:
- Achieved tumor-specific replication, IFN-beta gene expression, and efficacy via systemic delivery in preclinical models.
- Combined IFN-dependent cancer selectivity with IFN-beta expression for optimized anti-cancer and normal tissue antiviral effects.
- Demonstrated, for the first time, a virus with these combined properties for cancer therapy.
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