Design of an Interferon-Resistant Oncolytic HSV-1 Incorporating Redundant Safety Modalities for Improved Tolerability

Edward M Kennedy1, Terry Farkaly1, Peter Grzesik1

  • 1Oncorus, Inc., Cambridge, MA, USA.

Molecular Therapy Oncolytics
|September 21, 2020
PubMed

Insights

Researchers engineered a novel herpes simplex virus 1 (HSV-1) oncolytic virus. This modified virus effectively targets cancer cells, shows reduced neurotoxicity, and is well-tolerated in vivo, offering a promising cancer therapy.

Area of Science:

  • Oncolytic virotherapy
  • Gene therapy
  • Herpes simplex virus engineering

Background:

  • Next-generation oncolytic viruses need to be potent, immunogenic, and safe.
  • Herpes simplex virus 1 (HSV-1) is a common platform for oncolytic virus development.

Purpose of the Study:

  • To engineer a novel HSV-1 vector with enhanced oncolytic potency, tumor specificity, and improved safety profile.
  • To develop a virus resistant to host immune responses and with reduced neurovirulence.

Main Methods:

  • Modified a joint-region deleted HSV-1, retaining ICP34.5 and mutating UL37 to inhibit axonal transport.
  • Inserted cell-type-specific microRNA (miRNA) target cassettes into essential viral genes (ICP4, ICP27, UL8).
  • Utilized a small interfering RNA (siRNA) screen to identify key viral replication genes for miRNA-mediated attenuation.

Main Results:

  • The engineered HSV-1 vector demonstrated potent oncolytic activity in cancer cell lines, equivalent to the parental virus.
  • The vector showed resistance to type I interferon compared to ICP34.5-deleted viruses.
  • In vivo studies showed potent tumor growth inhibition and good tolerability, even at high intravenous doses.

Conclusions:

  • The developed HSV-1 vector is a potent oncolytic agent with enhanced safety features, including reduced neurovirulence and interferon resistance.
  • This modified virus represents a promising candidate for next-generation cancer virotherapy.