Structures suggest an approach for converting weak self-peptide tumor antigens into superagonists for CD8 T cells in
Pengcheng Wei1,2, Kimberly R Jordan2,3, Jonathan D Buhrman2,3
1Key Laboratory of Virology, Hubei Key Laboratory of Cell Homeostasis, College of Life Sciences, Wuhan University, 430072 Wuhan, China.
Abstract:
Tumors frequently express unmutated self-tumor-associated antigens (self-TAAs). However, trial results using self-TAAs as vaccine targets against cancer are mixed, often attributed to deletion of T cells with high-affinity receptors (TCRs) for self-TAAs during T cell development. Mutating these weak self-TAAs to produce higher affinity, effective vaccines is challenging, since the mutations may not benefit all members of the broad self-TAA-specific T cell repertoire. We previously identified a common weak murine self-TAA that we converted to a highly effective antitumor vaccine by a single amino acid substitution. In this case the modified and natural self-TAAs still raised very similar sets of CD8 T cells. Our structural studies herein show that the modification of the self-TAA resulted in a subtle change in the major histocompatibility complex I-TAA structure. This amino acid substitution allowed a dramatic conformational change in the peptide during subsequent TCR engagement, creating a large increase in TCR affinity and accounting for the efficacy of the modified self-TAA as a vaccine. These results show that carefully selected, well-characterized modifications to a poorly immunogenic self-TAA can rescue the immune response of the large repertoire of weakly responding natural self-TAA-specific CD8 T cells, driving them to proliferate and differentiate into functional effectors. Subsequently, the unmodified self-TAA on the tumor cells, while unable to drive this response, is nevertheless a sufficient target for the CD8 cytotoxic effectors. Our results suggest a pathway for more efficiently identifying variants of common self-TAAs, which could be useful in vaccine development, complementing other current nonantigen-specific immunotherapies.
Insights
Modifying a weak self-tumor-associated antigen (TAA) with a single amino acid change created a potent cancer vaccine. This strategy enhances T cell receptor affinity, effectively targeting tumors with natural self-TAAs.
Area of Science:
- Immunology
- Cancer Research
- Vaccine Development
Background:
- Tumors often express self-tumor-associated antigens (self-TAAs), but cancer vaccine trials using them yield mixed results.
- T cell deletion of high-affinity receptors for self-TAAs during development limits vaccine efficacy.
- Modifying weak self-TAAs for higher affinity is difficult without excluding parts of the T cell repertoire.
Purpose of the Study:
- To investigate if a single amino acid substitution in a weak self-TAA could create an effective antitumor vaccine.
- To understand the structural and molecular mechanisms behind the enhanced vaccine efficacy.
Main Methods:
- Identified a common weak murine self-TAA and modified it via a single amino acid substitution.
- Performed structural studies to analyze the interaction between the modified self-TAA, MHC I, and T cell receptors (TCRs).
- Assessed the resulting CD8 T cell responses and their effector functions.
Main Results:
- A single amino acid substitution converted a weak self-TAA into a highly effective antitumor vaccine.
- Structural analysis revealed a subtle change in the MHC I-TAA complex, causing a conformational change upon TCR engagement.
- This conformational change significantly increased TCR affinity, leading to robust CD8 T cell proliferation and differentiation.
Conclusions:
- Carefully selected modifications of poorly immunogenic self-TAAs can overcome T cell tolerance and generate effective anti-tumor immunity.
- The unmodified self-TAA on tumor cells serves as a sufficient target for the generated CD8 cytotoxic effectors.
- This approach offers a promising strategy for developing self-TAA variants for cancer vaccines, complementing other immunotherapies.
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