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Published on: May 27, 2011
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.
Abstract:
Development of next-generation oncolytic viruses requires the design of vectors that are potently oncolytic, immunogenic in human tumors, and well tolerated in patients. Starting with a joint-region deleted herpes simplex virus 1 (HSV-1) to create large transgene capability, we retained a single copy of the ICP34.5 gene, introduced mutations in UL37 to inhibit retrograde axonal transport, and inserted cell-type-specific microRNA (miRNA) target cassettes in HSV-1 genes essential for replication or neurovirulence. Ten miRNA candidates highly expressed in normal tissues and with low or absent expression in malignancies were selected from a comprehensive profile of 800 miRNAs with an emphasis on protection of the nervous system. Among the genes essential for viral replication identified using a small interfering RNA (siRNA) screen, we selected ICP4, ICP27, and UL8 for miRNA attenuation where a single miRNA is sufficient to potently attenuate viral replication. Additionally, a neuron-specific miRNA target cassette was introduced to control ICP34.5 expression. This vector is resistant to type I interferon compared to ICP34.5-deleted oncolytic HSVs, and in cancer cell lines, the oncolytic activity of the modified vector is equivalent to its parental virus. In vivo, this vector potently inhibits tumor growth while being well tolerated, even at high intravenous doses, compared to parental wild-type HSV-1.
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.
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