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Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Peptides-Coated Oncolytic Vaccines for Cancer Personalized Medicine
Sara Feola1,2,3,4, Salvatore Russo1,2,3,4, Beatriz Martins1,2,3,4
1Drug Research Program (DRP) ImmunoViroTherapy Lab (IVT), Division of Pharmaceutical Biosciences, Faculty of Pharmacy, University of Helsinki, Helsinki, Finland.
Abstract:
Oncolytic Viruses (OVs) work through two main mechanisms of action: the direct lysis of the virus-infected cancer cells and the release of tumor antigens as a result of the viral burst. In this sc.enario, the OVs act as in situ cancer vaccines, since the immunogenicity of the virus is combined with tumor antigens, that direct the specificity of the anti-tumor adaptive immune response. However, this mechanism in some cases fails in eliciting a strong specific T cell response. One way to overcome this problem and enhance the priming efficiency is the production of genetically modified oncolytic viruses encoding one or more tumor antigens. To avoid the long and expensive process related to the engineering of the OVs, we have exploited an approach based on coating OVs (adenovirus and vaccinia virus) with tumor antigens. In this work, oncolytic viruses encoding tumor antigens and tumor antigen decorated adenoviral platform (PeptiCRAd) have been used as cancer vaccines and evaluated both for their prophylactic and therapeutic efficacy. We have first tested the oncolytic vaccines by exploiting the OVA model, moving then to TRP2, a more clinically relevant tumor antigen. Finally, both approaches have been investigated in tumor neo-antigens settings. Interestingly, both genetically modified oncolytic adenovirus and PeptiCRAd elicited T cells-specific anti-tumor responses. However, in vitro cross-representation experiments, showed an advantage of PeptiCRAd as regards the fast presentation of the model epitope SIINFEKL from OVA in an immunogenic rather than tolerogenic fashion. Here two approaches used as cancer oncolytic vaccines have been explored and characterized for their efficacy. Although the generation of specific anti-tumor T cells was elicited in both approaches, PeptiCRAd retains the advantage of being rapidly adaptable by coating the adenovirus with a different set of tumor antigens, which is crucial in personalized cancer vaccines clinical setting.
Insights
Oncolytic viruses (OVs) can be engineered or coated with tumor antigens to enhance anti-tumor immune responses. PeptiCRAd offers a faster, adaptable approach for personalized cancer vaccines, effectively eliciting T cell responses.
Area of Science:
- Oncology
- Immunology
- Virology
Background:
- Oncolytic viruses (OVs) induce anti-tumor immunity via direct lysis and tumor antigen release, acting as in situ cancer vaccines.
- Current strategies for enhancing OV efficacy include genetic modification or antigen coating to improve T cell responses.
- Engineering OVs can be time-consuming and costly, necessitating alternative approaches.
Purpose of the Study:
- To evaluate and compare the prophylactic and therapeutic efficacy of genetically modified OVs and a tumor antigen-coated adenoviral platform (PeptiCRAd) as cancer vaccines.
- To investigate the ability of both approaches to elicit T cell-specific anti-tumor responses.
- To assess the antigen presentation kinetics and immunogenicity of PeptiCRAd compared to genetically modified OVs.
Main Methods:
- Utilized oncolytic adenovirus and vaccinia virus platforms, both genetically modified and coated with tumor antigens (OVA, TRP2, and neo-antigens).
- Evaluated prophylactic and therapeutic efficacy in the OVA mouse model and subsequently in more clinically relevant tumor antigen settings.
- Conducted in vitro cross-presentation experiments to compare antigen presentation efficiency and immunogenicity.
Main Results:
- Both genetically modified OVs and PeptiCRAd successfully elicited T cell-specific anti-tumor responses.
- PeptiCRAd demonstrated an advantage in the rapid and immunogenic presentation of model epitopes (SIINFEKL from OVA) compared to tolerogenic presentation.
- Both approaches showed efficacy in eliciting anti-tumor immune responses in various tumor antigen settings.
Conclusions:
- Genetically modified OVs and PeptiCRAd are effective cancer vaccines that elicit specific anti-tumor T cell responses.
- PeptiCRAd offers a significant advantage due to its rapid adaptability for coating with diverse tumor antigens, crucial for personalized cancer vaccine development.
- The PeptiCRAd platform holds promise for clinical applications in personalized cancer therapy.
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