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Updated: Aug 14, 2026

Generation of a Novel Dendritic-cell Vaccine Using Melanoma and Squamous Cancer Stem Cells
Published on: January 6, 2014
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
Purpose:
Immunization of mice with xenogeneic DNA encoding human tyrosinase-related proteins 1 and 2 breaks tolerance to these self-antigens and leads to tumor rejection. Viral vectors used alone or in heterologous DNA prime/viral boost combinations have shown improved responses to certain infectious diseases. The purpose of this study was to compare viral and plasmid DNA in combination vaccination strategies in the context of a tumor antigen.
Experimental Design:
Using tyrosinase as a prototypical differentiation antigen, we determined the optimal regimen for immunization with plasmid DNA. Then, using propagation-incompetent alphavirus vectors (virus-like replicon particles, VRP) encoding tyrosinase, we tested different combinations of priming with DNA or VRP followed by boosting with VRP. We subsequently followed antibody production, T-cell response, and tumor rejection.
Results:
T-cell responses to newly identified mouse tyrosinase epitopes were generated in mice immunized with plasmid DNA encoding human (xenogeneic) tyrosinase. In contrast, when VRP encoding either mouse or human tyrosinase were used as single agents, antibody and T-cell responses and a significant delay in tumor growth in vivo were observed. Similarly, a heterologous vaccine regimen using DNA prime and VRP boost showed a markedly stronger response than DNA vaccination alone.
Conclusions:
Alphavirus replicon particle vectors encoding the melanoma antigen tyrosinase (self or xenogeneic) induce immune responses and tumor protection when administered either alone or in the heterologous DNA prime/VRP boost approaches that are superior to the use of plasmid DNA alone.
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.
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