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Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
An oncolytic HSV-1 vector induces a therapeutic adaptive immune response against glioblastoma
Alberto Reale1, Andrea Gatta2, Amruth Kaleem Basha Shaik2
1Department of Molecular Medicine, University of Padua, Padua, 35131, Italy.
Background:
Glioblastoma (GBM) is the most frequent and aggressive brain tumor in adults with the lowest survival rates five years post-diagnosis. Oncolytic viruses (OVs) selectively target and damage cancer cells, and for this reason they are being investigated as new therapeutic tools also against GBM.
Methods:
An oncolytic herpes simplex virus type 1 (oHSV-1) with deletions in the γ34.5 neurovirulence gene and the US12 gene, expressing enhanced green fluorescent protein (EGFP-oHSV-1) as reporter gene was generated and tested for its capacity to infect and kill the murine GL261 glioblastoma (GBM) cell line. Syngeneic mice were orthotopically injected with GL261cells. Seven days post-implantation, EGFP-oHSV-1 was administered intratumorally. Twenty-one days after parental tumor challenge in the opposite brain hemisphere, mice were sacrified and their brains were analysed by immunohistochemistry to assess tumor presence and cell infiltrate.
Results:
oHSV-1 replicates and induces cell death of GL261 cells in vitro. A single intracranial injection of EGFP-oHSV-1 in established GL261 tumors significantly prolongs survival in all treated mice compared to placebo treatment. Notably, 45% of treated mice became long-term survivors, and rejected GL261 cells upon rechallenge in the contralateral brain hemisphere, indicating an anamnestic antitumoral immune response. Post-mortem analysis revealed a profound modification of the tumor microenvironment with increased infiltration of CD4 + and CD8 + T lymphocytes, intertumoral vascular collapse and activation and redistribution of macrophage, microglia, and astroglia in the tumor area, with the formation of intense fibrotic tissue suggestive of complete rejection in long-term survivor mice.
Conclusions:
EGFP-oHSV1 demonstrates potent antitumoral activity in an immunocompetent GBM model as a monotherapy, resulting from direct cell killing combined with the stimulation of a protective adaptive immune response. These results open the way to possible application of our strategy in clinical setting.
Insights
Oncolytic herpes simplex virus type 1 (oHSV-1) effectively targets glioblastoma (GBM) cells, prolonging survival and inducing an immune response. This therapy shows potent antitumor activity, paving the way for clinical applications against this aggressive brain tumor.
Area of Science:
- Oncolytic virotherapy
- Immunooncology
- Neuro-oncology
Background:
- Glioblastoma (GBM) is an aggressive brain tumor with poor prognosis.
- Oncolytic viruses (OVs) are emerging as potential therapeutics for GBM due to their selective cancer-targeting capabilities.
Purpose of the Study:
- To evaluate the efficacy of a modified oncolytic herpes simplex virus type 1 (oHSV-1) expressing enhanced green fluorescent protein (EGFP-oHSV-1) against murine GL261 glioblastoma (GBM) in an immunocompetent model.
- To assess the direct antitumor effects and the induced immune response.
Main Methods:
- Generation of EGFP-oHSV-1 with deletions in neurovirulence genes.
- In vitro testing on GL261 GBM cell line.
- Intratumoral administration of EGFP-oHSV-1 in mice with established GL261 tumors.
- Immunohistochemical analysis of tumor microenvironment and immune cell infiltration.
Main Results:
- EGFP-oHSV-1 demonstrated in vitro replication and induced GL261 cell death.
- A single intratumoral injection significantly prolonged survival in all treated mice.
- 45% of treated mice achieved long-term survival and rejected tumor rechallenge, indicating an adaptive immune response.
- Treatment led to increased CD4+ and CD8+ T cell infiltration, vascular collapse, and activation of myeloid and glial cells, with fibrotic tissue formation.
Conclusions:
- EGFP-oHSV1 exhibits potent monotherapy antitumor activity in an immunocompetent GBM model.
- The efficacy results from direct tumor cell killing and the stimulation of a protective adaptive immune response.
- This strategy holds promise for clinical application in GBM treatment.
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