Vesicular stomatitis virus oncolysis of T lymphocytes requires cell cycle entry and translation initiation

Stephanie Oliere1, Meztli Arguello, Thibault Mesplede

  • 1Molecular Oncology Group, Lady Davis Institute, Jewish General Hospital, McGill University, Montreal, Canada H3T 1E2.

Journal of Virology
|April 18, 2008
PubMed

Insights

Vesicular stomatitis virus (VSV) oncolysis in T lymphocytes requires cell cycle entry from G(0) to G(1). This transition enhances protein synthesis, which is crucial for efficient VSV replication and cell death induction.

Area of Science:

  • Virology
  • Immunology
  • Cancer Biology

Background:

  • Vesicular stomatitis virus (VSV) is an oncolytic virus candidate effective against cancer cells.
  • VSV oncolysis is influenced by host factors, including interferon response, translational, and growth regulatory mechanisms.
  • VSV infection induces apoptosis in proliferating T lymphocytes but not in resting T lymphocytes.

Purpose of the Study:

  • To investigate the host factors influencing VSV replication and oncolysis in T lymphocytes.
  • To determine the role of cell cycle progression and protein synthesis in VSV permissiveness.

Main Methods:

  • Activation of primary CD4(+) T lymphocytes using anti-CD3/CD28.
  • Inhibition of specific cell signaling pathways (MEK1/2, JNK, PI3K, p38).
  • Treatment with cell cycle inhibitors (olomoucine, rapamycin, aphidicolin, Taxol).
  • Assessment of VSV replication and protein production.
  • Knockdown of eukaryotic initiation factor 4E (eIF4E) using small interfering RNA.

Main Results:

  • VSV replication and cell death in activated T lymphocytes depend on MEK1/2, JNK, or PI3K pathways.
  • VSV replication is impaired by inhibitors causing G(1) arrest but not by those blocking later cell cycle phases.
  • Impaired VSV replication correlates with absent mTOR and/or eIF4E phosphorylation.
  • eIF4E knockdown reduces VSV protein production in activated T cells.

Conclusions:

  • VSV replication in primary T lymphocytes is critically dependent on cell cycle transition from G(0) to G(1).
  • The G(0)/G(1) transition, marked by increased protein synthesis, is essential for VSV permissiveness.
  • Targeting cell cycle and translational machinery could enhance oncolytic virus therapy.

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