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Updated: Aug 8, 2025

Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Polio virotherapy targets the malignant glioma myeloid infiltrate with diffuse microglia activation engulfing the CNS
Yuanfan Yang1,2,3, Michael C Brown2, Gao Zhang1,2
1Department of Pathology, Duke University School of Medicine, Durham, North Carolina, USA.
Background:
Malignant gliomas commandeer dense inflammatory infiltrates with glioma-associated macrophages and microglia (GAMM) promoting immune suppression, evasion, and tumor progression. Like all cells in the mononuclear phagocytic system, GAMM constitutively express the poliovirus receptor, CD155. Besides myeloid cells, CD155 is widely upregulated in the neoplastic compartment of malignant gliomas. Intratumor treatment with the highly attenuated rhino:poliovirus chimera, PVSRIPO, yielded long-term survival with durable radiographic responses in patients with recurrent glioblastoma (Desjardins et al. New England Journal of Medicine, 2018). This scenario raises questions about the contributions of myeloid versus neoplastic cells to polio virotherapy of malignant gliomas.
Methods:
We investigated PVSRIPO immunotherapy in immunocompetent mouse brain tumor models with blinded, board-certified neuropathologist review, a range of neuropathological, immunohistochemical, and immunofluorescence analyses, and RNAseq of the tumor region.
Results:
PVSRIPO treatment caused intense engagement of the GAMM infiltrate associated with substantial, but transient tumor regression. This was accompanied by marked microglia activation and proliferation in normal brain surrounding the tumor, in the ipsilateral hemisphere and extending into the contralateral hemisphere. There was no evidence for lytic infection of malignant cells. PVSRIPO-instigated microglia activation occurred against a backdrop of sustained innate antiviral inflammation, associated with induction of the Programmed Cell Death Ligand 1 (PD-L1) immune checkpoint on GAMM. Combining PVSRIPO with PD1/PD-L1 blockade led to durable remissions.
Conclusions:
Our work implicates GAMM as active drivers of PVSRIPO-induced antitumor inflammation and reveals profound and widespread neuroinflammatory activation of the brain-resident myeloid compartment by PVSRIPO.
Insights
Poliovirus therapy (PVSRIPO) activates brain immune cells (GAMM) to fight malignant gliomas, but combining it with checkpoint blockade is needed for durable remissions.
Area of Science:
- Neuro-oncology
- Immunotherapy
- Virology
Background:
- Malignant gliomas utilize inflammatory cells, including glioma-associated macrophages and microglia (GAMM), to suppress the immune system and advance tumor growth.
- The poliovirus receptor, CD155, is expressed by GAMM and upregulated in malignant glioma cells.
- The poliovirus chimera, PVSRIPO, has shown promise in treating recurrent glioblastoma.
Purpose of the Study:
- To investigate the roles of myeloid and neoplastic cells in the efficacy of PVSRIPO virotherapy for malignant gliomas.
- To explore the neuroinflammatory effects of PVSRIPO in immunocompetent mouse brain tumor models.
Main Methods:
- Utilized immunocompetent mouse brain tumor models.
- Conducted neuropathological, immunohistochemical, and immunofluorescence analyses.
- Performed RNA sequencing of tumor regions.
- Included blinded, board-certified neuropathologist review.
Main Results:
- PVSRIPO treatment led to significant GAMM engagement and transient tumor regression.
- Marked microglia activation and proliferation were observed in tumor-surrounding and contralateral brain hemispheres.
- No evidence of lytic infection in malignant cells was found.
- PVSRIPO induced sustained antiviral inflammation and Programmed Cell Death Ligand 1 (PD-L1) on GAMM.
- Combination therapy with PVSRIPO and PD1/PD-L1 blockade resulted in durable remissions.
Conclusions:
- GAMM are key drivers of PVSRIPO-induced antitumor inflammation.
- PVSRIPO causes widespread neuroinflammatory activation of the brain's myeloid compartment.
- Combining PVSRIPO with PD1/PD-L1 blockade enhances therapeutic outcomes.
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