Immunotherapeutic potential of DISC-HSV and OX40L in cancer

Deepak P Assudani1, Murrium Ahmad, Geng Li

  • 1School of Biomedical and Natural Sciences, Nottingham Trent University, Clifton Lane, Nottingham, NG118NS, UK.

Insights

Disabled infectious single cycle-herpes simplex virus (DISC-HSV) shows promise in cancer immunotherapy. This viral vector, encoding granulocyte macrophage colony stimulating factor (GM-CSF), effectively regressed tumors in mice, especially when combined with other therapies.

Area of Science:

  • Oncology
  • Virology
  • Immunology

Background:

  • Viral and bacterial vectors are explored for antitumor immune responses.
  • Disabled infectious single cycle-herpes simplex virus (DISC-HSV) is a novel viral vector for cancer immunotherapy.

Purpose of the Study:

  • To evaluate the immunotherapeutic potential of DISC-HSV encoding granulocyte macrophage colony stimulating factor (GM-CSF) in murine carcinoma models.
  • To investigate combination therapies to enhance DISC-HSV-GM-CSF efficacy.
  • To elucidate the mechanisms of tumor rejection and immune escape in a DISC-HSV immunotherapy model.

Main Methods:

  • DISC-HSV vector development and characterization.
  • In vivo studies in murine carcinoma models.
  • Assessment of tumor regression, immune cell infiltration, and antigen expression (MTA-1).
  • Combination therapy with OX40L or dendritic cells (DC).

Main Results:

  • DISC-HSV-GM-CSF achieved complete tumor regression in up to 70% of mice.
  • Combination therapy with OX40L or DC significantly enhanced therapeutic effects.
  • Mechanisms of immune suppression identified include MHC class I downregulation and myeloid cell accumulation.
  • The CTL response targeted the AH-1 peptide of gp70.

Conclusions:

  • DISC-HSV is a promising vector for cancer immunotherapy due to its safety, broad tumor cell transduction, and ability to accept large gene inserts.
  • Combination strategies significantly boost immunotherapy outcomes, even in poorly immunogenic tumors.
  • Understanding immune escape mechanisms is crucial for optimizing cancer treatments.