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Updated: Jul 7, 2026

Viral Tracing of Genetically Defined Neural Circuitry
Published on: October 17, 2012
Systemic vesicular stomatitis virus selectively destroys multifocal glioma and metastatic carcinoma in brain
Koray Ozduman1, Guido Wollmann, Joseph M Piepmeier
1Department of Neurosurgery, Yale University School of Medicine, New Haven, Connecticut 06520, USA.
Abstract:
Metastatic tumors and malignant gliomas make up the majority of cancers in the brain. They are invariably fatal and there is currently no cure. From in vitro comparisons of a number of viruses, we selected one that appeared the best in selectively killing glioblastoma cells. This replication-competent virus, the glioma-adapted vesicular stomatis virus strain VSVrp30a, was used for in vivo tests with the underlying view that infection of tumor cells will lead to an increase in the number of viruses subsequently released to kill additional tumor cells. Intravenous injection of VSVrp30a expressing a green fluorescent protein reporter, rapidly targeted and destroyed multiple types of human and mouse tumors implanted in the mouse brain, including glioblastoma and mammary tumors. When tumors were implanted both in the brain and peripherally, emulating systemic cancer metastasis, tumors inside and outside the brain were simultaneously infected. Intranasal inoculation, leading to olfactory nerve transport of the virus into the brain, selectively infected and killed olfactory bulb tumors. Neither control cortical wounds nor transplanted normal mouse or human cells were targeted, indicating viral tumor selectivity. Control viruses, including pseudorabies, adeno-associated, or replication-deficient VSV, did not infect the brain tumor. Confocal laser time-lapse imaging through a cranial window showed that intravenous VSV infects the tumor at multiple sites and kills migrating tumor cells. Disrupted tumor vasculature, suggested by dye leakage, may be the port of entry for intravenously delivered VSV. Quantitative PCR analysis of how VSVrp30a selectively infected tumor cells suggested multiple mechanisms, including cell surface binding and internalization.
Insights
A novel vesicular stomatis virus strain (VSVrp30a) effectively targets and destroys brain tumors, including glioblastoma, in mice. This replication-competent virus shows significant tumor selectivity, offering a potential new therapy for brain cancers.
Area of Science:
- Oncology
- Virology
- Neuroscience
Background:
- Malignant gliomas and metastatic brain tumors are fatal with no current cure.
- Developing effective therapies for brain cancers remains a critical challenge.
Purpose of the Study:
- To evaluate the efficacy of a replication-competent vesicular stomatis virus strain (VSVrp30a) as a potential oncolytic virotherapy for brain tumors.
- To assess the tumor-targeting and cell-killing capabilities of VSVrp30a in vivo.
Main Methods:
- In vitro screening identified VSVrp30a for selective glioblastoma cell killing.
- In vivo studies involved intravenous and intranasal administration of VSVrp30a in tumor-bearing mouse models.
- Confocal laser time-lapse imaging and quantitative PCR were used to track viral infection and tumor cell interaction.
Main Results:
- Intravenous VSVrp30a rapidly targeted and destroyed human and mouse tumors in the brain and periphery.
- Intranasal VSVrp30a selectively infected and killed olfactory bulb tumors via olfactory nerve transport.
- VSVrp30a demonstrated selectivity, sparing normal cells and control cortical wounds, with evidence of disrupted tumor vasculature facilitating entry.
Conclusions:
- VSVrp30a exhibits potent oncolytic activity against diverse brain tumors, including glioblastoma.
- The virus shows remarkable tumor selectivity and the ability to target both primary and metastatic brain tumors.
- VSVrp30a represents a promising candidate for developing novel virotherapies for brain cancers.
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