Comparison of two cancer vaccines targeting tyrosinase: plasmid DNA and recombinant alphavirus replicon particles

Stacie M Goldberg1, Shirley M Bartido, Jason P Gardner

  • 1Department of Medicine, Memorial Sloan-Kettering Cancer Center, New York, New York 10021, USA. goldber3@mskcc.org

Abstract

Insights

Alphavirus replicon particle vectors encoding the melanoma antigen tyrosinase, when used alone or in DNA prime/VRP boost strategies, induce superior immune responses and tumor protection compared to plasmid DNA alone.

Area of Science:

  • Immunology
  • Vaccinology
  • Oncology

Background:

  • Immunization with xenogeneic DNA encoding tyrosinase-related proteins can break self-tolerance and induce tumor rejection.
  • Viral vectors and heterologous prime-boost strategies show promise for enhanced immune responses in infectious diseases.
  • Tyrosinase is a prototypical differentiation antigen relevant to tumor immunology.

Purpose of the Study:

  • To compare the efficacy of viral vectors versus plasmid DNA in combination vaccination strategies for tumor antigens.
  • To evaluate different prime-boost regimens using DNA and alphavirus replicon particle vectors (VRP) encoding tyrosinase.

Main Methods:

  • Determined optimal plasmid DNA immunization regimen for tyrosinase.
  • Utilized propagation-incompetent alphavirus vectors (VRP) encoding tyrosinase.
  • Tested DNA prime/VRP boost and VRP-alone strategies, assessing antibody and T-cell responses, and tumor rejection.

Main Results:

  • Plasmid DNA encoding xenogeneic tyrosinase induced T-cell responses to mouse tyrosinase epitopes.
  • VRP (mouse or human tyrosinase) as single agents elicited antibody and T-cell responses, delaying tumor growth.
  • Heterologous DNA prime/VRP boost demonstrated a significantly stronger response than DNA vaccination alone.

Conclusions:

  • Alphavirus replicon particle vectors encoding tyrosinase induce robust immune responses and tumor protection.
  • Both VRP alone and heterologous DNA prime/VRP boost strategies are superior to plasmid DNA alone.
  • These findings support VRP-based vaccines for cancer immunotherapy.