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Updated: Jul 26, 2025

Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Trap and ambush therapy using sequential primary and tumor escape-selective oncolytic viruses
Mason J Webb1,2, Timothy Kottke2, Benjamin L Kendall2
1Division of Hematology/Medical Oncology, Mayo Clinic, Rochester, MN 55905, USA.
Abstract:
In multiple models of oncolytic virotherapy, it is common to see an early anti-tumor response followed by recurrence. We have previously shown that frontline treatment with oncolytic VSV-IFN-β induces APOBEC proteins, promoting the selection of specific mutations that allow tumor escape. Of these mutations in B16 melanoma escape (ESC) cells, a C-T point mutation in the cold shock domain-containing E1 (CSDE1) gene was present at the highest frequency, which could be used to ambush ESC cells by vaccination with the mutant CSDE1 expressed within the virus. Here, we show that the evolution of viral ESC tumor cells harboring the escape-promoting CSDE1C-T mutation can also be exploited by a virological ambush. By sequential delivery of two oncolytic VSVs in vivo, tumors which would otherwise escape VSV-IFN-β oncolytic virotherapy could be cured. This also facilitated the priming of anti-tumor T cell responses, which could be further exploited using immune checkpoint blockade with the CD200 activation receptor ligand (CD200AR-L) peptide. Our findings here are significant in that they offer the possibility to develop oncolytic viruses as highly specific, escape-targeting viro-immunotherapeutic agents to be used in conjunction with recurrence of tumors following multiple different types of frontline cancer therapies.
Insights
Sequential oncolytic virus delivery can cure tumors that typically escape therapy. This approach primes anti-tumor T-cell responses, offering a novel viro-immunotherapeutic strategy for recurrent cancers.
Area of Science:
- Oncolytic virotherapy
- Cancer immunotherapy
- Tumor immunology
Background:
- Oncolytic virotherapy often leads to early tumor response and subsequent recurrence.
- Oncolytic viruses like VSV-IFN-β can induce mutations (e.g., in CSDE1) that promote tumor escape.
- Specific mutations, such as in the CSDE1 gene, are key drivers of tumor escape post-virotherapy.
Purpose of the Study:
- To investigate exploiting tumor escape mutations for enhanced oncolytic virotherapy.
- To demonstrate the efficacy of sequential oncolytic virus delivery against escaping tumors.
- To explore combining virotherapy with immune checkpoint blockade for improved anti-tumor immunity.
Main Methods:
- Sequential *in vivo* administration of two distinct oncolytic VSVs.
- Analysis of tumor cell mutations, including a specific CSDE1 point mutation.
- Evaluation of anti-tumor T-cell responses and combination therapy with CD200AR-L peptide.
Main Results:
- Sequential VSV delivery successfully cured tumors that would otherwise escape VSV-IFN-β therapy.
- The strategy effectively targeted tumor cells harboring the escape-promoting CSDE1 mutation.
- The treatment primed potent anti-tumor T-cell responses, synergizing with immune checkpoint blockade.
Conclusions:
- Exploiting viral escape mechanisms via sequential virotherapy offers a potent anti-cancer strategy.
- This approach can overcome tumor resistance to standard oncolytic virotherapy.
- Developing targeted viro-immunotherapies holds promise for treating recurrent and therapy-resistant cancers.
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