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Experimental Melanoma Immunotherapy Model Using Tumor Vaccination with a Hematopoietic Cytokine
Published on: February 24, 2023
Eliciting antitumor immunity via therapeutic cancer vaccines
Kun Peng1,2,3, Xiaoxue Zhao1,2, Yang-Xin Fu4,5,6
1Center for Cancer Biology, School of Basic Medical Sciences, Tsinghua University, Beijing, China.
Abstract:
Therapeutic cancer vaccines aim to expand and activate antigen-specific T cells for the targeted elimination of cancer cells. While early clinical trials faced challenges due to suboptimal antigen-specific T-cell activation, recent advancements in antigen discovery and vaccine platform engineering have revitalized the field. This review provides a comprehensive overview of key tumor antigens, including tumor-associated antigens, viral oncoprotein antigens, neoantigens, and cryptic antigens, with a focus on their immunogenicity and therapeutic potential. Advances in our understanding of traditional cancer vaccination targets, in conjunction with the timely identification of novel antigen epitopes, have facilitated the strategic selection of vaccination targets. We also discuss the evolution of cancer vaccine platforms-spanning peptide-based formulations to advanced mRNA vectors-emphasizing innovative strategies to optimize antigen delivery efficiency and adjuvant effects. Efficient antigen delivery and adjuvant selection overcome immune tolerance and tumor-induced immunosuppression. Furthermore, we examine recent clinical trial data and emerging combination approaches that integrate cancer vaccines with other immunotherapies to increase efficacy. While significant progress has been made, challenges remain in improving vaccine-induced T-cell responses, overcoming immune suppression, and translating these advances into effective clinical interventions. Addressing these hurdles will be critical for realizing the full potential of cancer vaccines in immunotherapy.
Insights
Therapeutic cancer vaccines are advancing with new antigen discoveries and improved platforms like mRNA to activate T cells. Overcoming challenges in immune suppression is key to realizing their full potential in cancer immunotherapy.
Area of Science:
- Immunology
- Oncology
- Vaccinology
Background:
- Therapeutic cancer vaccines target cancer cells by activating antigen-specific T cells.
- Early trials faced limitations in T-cell activation, but recent advances have revitalized the field.
- Key tumor antigens include tumor-associated antigens, viral oncoprotein antigens, neoantigens, and cryptic antigens.
Purpose of the Study:
- To provide a comprehensive review of tumor antigens and cancer vaccine platforms.
- To discuss strategies for optimizing antigen delivery and adjuvant effects.
- To examine clinical trial data and combination approaches for enhanced efficacy.
Main Methods:
- Review of key tumor antigens and their immunogenicity.
- Analysis of evolving cancer vaccine platforms from peptide-based to mRNA vectors.
- Examination of clinical trial outcomes and combination immunotherapies.
Main Results:
- Strategic selection of vaccination targets is facilitated by understanding traditional and novel antigen epitopes.
- Innovative strategies optimize antigen delivery and adjuvant effects to overcome immune tolerance and suppression.
- Recent clinical data show promise for combination approaches integrating cancer vaccines with other immunotherapies.
Conclusions:
- Significant progress has been made in cancer vaccine development and platform engineering.
- Challenges remain in enhancing T-cell responses and overcoming tumor-induced immune suppression.
- Addressing these hurdles is crucial for the successful clinical translation of cancer vaccines in immunotherapy.
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