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.

Plos Medicine
|December 29, 2007
PubMed
Abstract

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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