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Updated: Feb 10, 2026

Ex Vivo Infection of Live Tissue with Oncolytic Viruses
Published on: June 25, 2011
Constitutive Interferon Pathway Activation in Tumors as an Efficacy Determinant Following Oncolytic Virotherapy
Cheyne Kurokawa1, Ianko D Iankov1, S Keith Anderson2
1Department of Molecular Medicine, Mayo Clinic, Rochester, MN.
Background:
Attenuated measles virus (MV) strains are promising agents currently being tested against solid tumors or hematologic malignancies in ongoing phase I and II clinical trials; factors determining oncolytic virotherapy success remain poorly understood, however.
Methods:
We performed RNA sequencing and gene set enrichment analysis to identify pathways differentially activated in MV-resistant (n = 3) and -permissive (n = 2) tumors derived from resected human glioblastoma (GBM) specimens and propagated as xenografts (PDX). Using a unique gene signature we identified, we generated a diagonal linear discriminant analysis (DLDA) classification algorithm to predict MV responders and nonresponders, which was validated in additional randomly selected GBM and ovarian cancer PDX and 10 GBM patients treated with MV in a phase I trial. GBM PDX lines were also treated with the US Food and Drug Administration-approved JAK inhibitor, ruxolitinib, for 48 hours prior to MV infection and virus production, STAT1/3 signaling and interferon stimulated gene expression was assessed. All statistical tests were two-sided.
Results:
Constitutive interferon pathway activation, as reflected in the DLDA algorithm, was identified as the key determinant for MV replication, independent of virus receptor expression, in MV-permissive and -resistant GBM PDXs. Using these lines as the training data for the DLDA algorithm, we confirmed the accuracy of our algorithm in predicting MV response in randomly selected GBM PDX ovarian cancer PDXs. Using the DLDA prediction algorithm, we demonstrate that virus replication in patient tumors is inversely correlated with expression of this resistance gene signature (ρ = -0.717, P = .03). In vitro inhibition of the interferon response pathway with the JAK inhibitor ruxolitinib was able to overcome resistance and increase virus production (1000-fold, P = .03) in GBM PDX lines.
Conclusions:
These findings document a key mechanism of tumor resistance to oncolytic MV therapy and describe for the first time the development of a prediction algorithm to preselect for oncolytic treatment or combinatorial strategies.
Insights
Tumor resistance to measles virus (MV) oncolytic virotherapy is linked to interferon pathway activation. A new algorithm predicts MV response, and JAK inhibitors can overcome resistance, improving virus production.
Area of Science:
- Oncology
- Virology
- Immunology
Background:
- Attenuated measles virus (MV) shows promise for oncolytic virotherapy against various cancers.
- Understanding tumor resistance mechanisms is crucial for optimizing MV treatment success.
Purpose of the Study:
- To identify pathways determining resistance or permissiveness to MV in glioblastoma (GBM) xenografts.
- To develop a predictive algorithm for MV response in cancer patients.
- To investigate strategies for overcoming MV resistance.
Main Methods:
- RNA sequencing and gene set enrichment analysis on MV-resistant and -permissive GBM patient-derived xenografts (PDX).
- Development and validation of a diagonal linear discriminant analysis (DLDA) classification algorithm for MV response prediction.
- In vitro treatment of GBM PDX with JAK inhibitor ruxolitinib prior to MV infection.
Main Results:
- Constitutive interferon pathway activation is a key determinant of MV replication, independent of virus receptor expression.
- The DLDA algorithm accurately predicted MV response in independent GBM and ovarian cancer PDX models and in a phase I clinical trial.
- In vitro inhibition of the interferon pathway with ruxolitinib increased MV production 1000-fold in resistant GBM PDX lines.
Conclusions:
- Identified a key mechanism of tumor resistance to oncolytic MV therapy.
- Developed a novel prediction algorithm to preselect patients for MV treatment.
- Demonstrated that targeting the interferon pathway can overcome MV resistance and enhance oncolytic virotherapy efficacy.
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