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Development of recombinant vesicular stomatitis viruses that exploit defects in host defense to augment specific
Masatsugu Obuchi1, Marilyn Fernandez, Glen N Barber
1Department of Microbiology and Immunology and Sylvester Comprehensive Cancer Center, University of Miami School of Medicine, Miami, Florida 33136, USA.
Abstract:
Vesicular stomatitis virus (VSV) is a negative-stranded RNA virus normally sensitive to the antiviral actions of alpha/beta interferon (IFN-alpha/beta). Recently, we reported that VSV replicates to high levels in many transformed cells due, in part, to susceptible cells harboring defects in the IFN system. These observations were exploited to demonstrate that VSV can be used as a viral oncolytic agent to eradicate malignant cells in vivo while leaving normal tissue relatively unaffected. To attempt to improve the specificity and efficacy of this system as a potential tool in gene therapy and against malignant disease, we have genetically engineered VSV that expresses the murine IFN-beta gene. The resultant virus (VSV-IFNbeta) was successfully propagated in cells not receptive to murine IFN-alpha/beta and expressed high levels of functional heterologous IFN-beta. In normal murine embryonic fibroblasts (MEFs), the growth of VSV-IFNbeta was greatly reduced and diminished cytopathic effect was observed due to the production of recombinant IFN-beta, which by functioning in a manner involving autocrine and paracrine mechanisms induced an antiviral effect, preventing virus growth. However, VSV-IFNbeta grew to high levels and induced the rapid apoptosis of transformed cells due to defective IFN pathways being prevalent and thus unable to initiate proficient IFN-mediated host defense. Importantly, VSV expressing the human IFN-beta gene (VSV-hIFNbeta) behaved comparably and, while nonlytic to normal human cells, readily killed their malignant counterparts. Similar to our in vitro observations, following intravenous and intranasal inoculation in mice, recombinant VSV (rVSV)-IFNbeta was also significantly attenuated compared to wild-type VSV or rVSV expressing green fluorescent protein. However, VSV-IFNbeta retained propitious oncolytic activity against metastatic lung disease in immunocompetent animals and was able to generate robust antitumor T-cell responses. Our data indicate that rVSV designed to exploit defects in mechanisms of host defense can provide the basis for new generations of effective, specific, and safer viral vectors for the treatment of malignant and other disease.
Insights
Genetically engineered vesicular stomatitis virus (VSV) expressing interferon-beta (IFN-beta) selectively targets and destroys cancer cells. This enhanced viral oncolytic agent shows promise for safer, more effective gene therapy against malignant diseases.
Area of Science:
- Virology
- Immunology
- Gene Therapy
Background:
- Vesicular stomatitis virus (VSV) normally sensitive to interferon (IFN) actions.
- Transformed cells often have defects in the IFN system, allowing higher VSV replication.
- VSV's selective replication in cancer cells suggests potential as an oncolytic agent.
Purpose of the Study:
- To engineer VSV expressing IFN-beta to improve specificity and efficacy as a viral oncolytic agent.
- To evaluate the oncolytic potential and safety of engineered VSV in preclinical models.
- To explore the use of VSV-IFNbeta as a tool in gene therapy for malignant diseases.
Main Methods:
- Genetically engineered VSV to express murine and human IFN-beta genes (VSV-IFNbeta, VSV-hIFNbeta).
- Propagated engineered VSV in cell lines with varying IFN system functionality.
- Assessed viral replication, cytopathic effects, apoptosis induction, and in vivo efficacy in mouse models.
- Evaluated antitumor T-cell responses generated by the engineered VSV.
Main Results:
- VSV-IFNbeta and VSV-hIFNbeta expressed functional IFN-beta, exhibiting reduced growth in normal cells but high replication in transformed cells.
- Engineered VSV induced rapid apoptosis in cancer cells while sparing normal cells.
- In vivo studies showed attenuated VSV-IFNbeta in mice but retained oncolytic activity against metastatic lung disease.
- Recombinant VSV demonstrated robust antitumor T-cell responses.
Conclusions:
- Engineered VSV expressing IFN-beta effectively targets and eliminates malignant cells by exploiting host defense defects.
- This approach offers a basis for developing safer and more specific viral vectors for treating cancer and other diseases.
- VSV-IFNbeta represents a promising next-generation oncolytic virus with potential applications in gene therapy.