Mutations in the glycoprotein of vesicular stomatitis virus affect cytopathogenicity: potential for oncolytic

Valérie Janelle1, Frédérick Brassard, Pascal Lapierre

  • 1Immunovirology Laboratory, Institut National de la Recherche Scientifique, INRS-Institut Armand-Frappier, Laval, Quebec, Canada H7V 1B7.

Journal of Virology
|May 13, 2011
PubMed

Insights

Vesicular stomatitis virus (VSV) G protein mutants show promise for oncolytic virotherapy. These mutants effectively kill tumor cells and induce type I interferon, offering a potential new strategy for cancer treatment.

Area of Science:

  • Virology
  • Oncology
  • Immunology

Background:

  • Vesicular stomatitis virus (VSV) is utilized in cellular studies and oncolytic virotherapy.
  • VSV matrix (M) protein mutants are preferred for oncolysis due to type I interferon (IFN) induction, despite weaker cytopathic effects.
  • Diverse cancers necessitate varied oncolytic virus strategies and combinations.

Purpose of the Study:

  • To characterize the cytopathogenic profiles of four replicative envelope glycoprotein (G) VSV mutants.
  • To evaluate their potential for oncolytic virotherapy applications.

Main Methods:

  • Characterization of VSV G mutants' cytopathogenicity.
  • Assessment of inhibition of cellular transcription and host protein translation.
  • Evaluation of type I interferon secretion and tumor cell killing in vitro via apoptosis induction.

Main Results:

  • VSV G mutants exhibit high cytopathogenicity, comparable to wild-type VSV, inhibiting transcription and translation.
  • The G(6R) mutant efficiently triggers type I IFN secretion, similar to M mutants.
  • Most VSV G mutants demonstrate superior in vitro killing of B16 and MC57 tumor cells compared to M mutants or wild-type VSV, inducing apoptosis.

Conclusions:

  • VSV G mutants retain high cytopathogenicity and induce type I IFN, making them valuable for oncolysis.
  • These mutants offer a promising avenue for developing safe and effective oncolytic virotherapy strategies for various cancers.

Related Concept Videos

Inhibitors of Virion Maturation and Assembly01:19

Inhibitors of Virion Maturation and Assembly

As part of their replication cycle, certain viruses synthesize long precursor proteins called polyproteins within infected host cells. In human immunodeficiency virus (HIV), two major polyproteins are produced: Gag and Gag-Pol. The Gag polyprotein supplies the structural components of the virus, while Gag-Pol includes essential viral enzymes such as reverse transcriptase, integrase, and protease. After synthesis, these polyproteins move to the host cell membrane, where they assemble into an...
Rous Sarcoma Virus (RSV) and Cancer01:03

Rous Sarcoma Virus (RSV) and Cancer

Rous Sarcoma virus or RSV was discovered by F. Peyton Rous in the year 1911 as a filterable transmissible agent that could cause tumors in chickens. He won a Nobel Prize for this discovery in 1966. His experiments clearly demonstrated that some cancers could be caused by infectious agents and led to the discovery of many more cancer-causing viruses in animals as well as humans.
RSV is a retrovirus that contains two copies of a plus-strand  RNA genome. Its genome consists of four main open...
Viral Mutations00:36

Viral Mutations

A mutation is a change in the sequence of bases of DNA or RNA in a genome. Some mutations occur during replication of the genome due to errors made by the polymerase enzymes that replicate DNA or RNA. Unlike DNA polymerase, RNA polymerase is prone to errors because it is not capable of “proofreading” its work. Viruses with RNA-based genomes, like HIV, therefore accrue mutations faster than viruses with DNA-based genomes. Because mutation and recombination provide the raw material for adaptive...
Mechanisms of Retrovirus-induced Cancers01:51

Mechanisms of Retrovirus-induced Cancers

Retroviruses are RNA viruses that have been shown to cause cancers in diverse species, including chickens, mice, cats, and monkeys. The RNA genomes of these viruses are first reverse-transcribed into single and then double-stranded DNA (dsDNA) copies. This dsDNA called proviral DNA then integrates into the host genome. Subsequently, the host cell transcribes the proviral DNA in concert with the chromosomal DNA. This leads to the production of viral RNA and proteins that assemble at the host...
Mechanisms of Retrovirus-induced Cancers01:51

Mechanisms of Retrovirus-induced Cancers

Retroviruses are RNA viruses that have been shown to cause cancers in diverse species, including chickens, mice, cats, and monkeys. The RNA genomes of these viruses are first reverse-transcribed into single and then double-stranded DNA (dsDNA) copies. This dsDNA called proviral DNA then integrates into the host genome. Subsequently, the host cell transcribes the proviral DNA in concert with the chromosomal DNA. This leads to the production of viral RNA and proteins that assemble at the host...
Inhibitors Of Virion Release01:25

Inhibitors Of Virion Release

Viral replication and dissemination rely on efficient mechanisms for host cell entry, genome replication, assembly, and release. Influenza viruses, such as types A and B, are negative-sense single-stranded RNA viruses with a segmented genome, that depend on two critical surface glycoproteins to carry out these processes: hemagglutinin (HA) and neuraminidase (NA). HA initiates infection by binding to sialic acid residues on the surface of host epithelial cells, facilitating receptor-mediated...