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Updated: Jun 19, 2026

Stereotactic Adoptive Transfer of Cytotoxic Immune Cells in Murine Models of Orthotopic Human Glioblastoma Multiforme Xenografts
Published on: September 1, 2018
Cellular effects of oncolytic viral therapy on the glioblastoma microenvironment
P C Huszthy1, H Immervoll, J Wang
1NorLux Neuro-oncology Laboratory, Department of Biomedicine, University of Bergen, Bergen, Norway.
Abstract:
The objective of the present study was to evaluate the cellular effects of the oncolytic HSV-1 based vector, G207, on the tumor microenvironment. We established progressively growing intracerebral xenografts in athymic nude rats generated from three different human GBM surgical specimens. The lesions were identified by MRI and subsequently injected with a concentrated vector stock. The animals were killed 10 or 30 days after G207 injection and the tumors were quantitatively evaluated for virus-induced changes in proliferation, apoptosis and vascularity. Moreover, we assessed vector spread as well as the infiltration pattern of CD68-positive inflammatory cells. In all G207-injected lesions, immunostaining identified widespread regions of viral infection and replication (plaques). Proliferation indices were significantly lower, whereas apoptotic counts were significantly elevated in plaques as compared with that in non-infected areas of the same lesions, as well as in corresponding control xenografts. Furthermore, there was a significant decline in the number of blood vessels in the plaques and the vascular area fractions were reduced. CD68-positive inflammatory cells accumulated in the plaques. The present study highlights the favorable cellular responses to G207 treatment seen from a clinical viewpoint, such as reduced tumor cell proliferation, more frequent events of tumor cell death and a strongly attenuated tumor vascular compartment. However, our results suggest that transduction of a significant volume of tumor tissue is essential, as these beneficial changes were only observed in areas of active viral replication, leaving non-transduced tumor tissues unaffected.
Insights
The oncolytic herpes simplex virus-1 (HSV-1) vector G207 effectively reduced tumor cell proliferation and vascularity while increasing apoptosis in glioblastoma xenografts. However, significant tumor transduction is crucial for these beneficial cellular effects.
Area of Science:
- Oncology
- Virology
- Gene Therapy
Background:
- Glioblastoma (GBM) remains a significant challenge in neuro-oncology.
- Oncolytic viruses are being investigated as a novel therapeutic strategy for GBM.
- G207 is an oncolytic herpes simplex virus type 1 (HSV-1) based vector with potential anti-tumor activity.
Purpose of the Study:
- To evaluate the cellular effects of the oncolytic HSV-1 vector G207 on the tumor microenvironment in GBM xenografts.
- To assess G207's impact on tumor cell proliferation, apoptosis, and vascularity.
- To investigate vector spread and inflammatory cell infiltration following G207 treatment.
Main Methods:
- Establishment of human GBM xenografts in athymic nude rats.
- Intracerebral injection of G207 vector into established xenografts.
- Quantitative evaluation of tumor tissues via MRI and immunostaining for proliferation, apoptosis, vascularity, and CD68-positive inflammatory cells at 10 and 30 days post-injection.
Main Results:
- Widespread viral infection and replication (plaques) observed in G207-injected lesions.
- Significantly reduced proliferation indices and elevated apoptotic counts within G207 plaques compared to non-infected areas and controls.
- Significant reduction in blood vessel density and vascular area fraction within plaques.
- Accumulation of CD68-positive inflammatory cells within the plaques.
Conclusions:
- G207 treatment induced favorable cellular responses, including decreased proliferation, increased apoptosis, and attenuated tumor vascularity.
- These beneficial effects were confined to areas of active viral replication.
- Transduction of a significant tumor volume is essential for G207 to exert its therapeutic effects on the tumor microenvironment.
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