Computational design of the affinity and specificity of a therapeutic T cell receptor
Brian G Pierce1, Lance M Hellman2, Moushumi Hossain2
1Program in Bioinformatics and Integrative Biology, University of Massachusetts Medical School, Worcester, Massachusetts, United States of America.
Abstract:
T cell receptors (TCRs) are key to antigen-specific immunity and are increasingly being explored as therapeutics, most visibly in cancer immunotherapy. As TCRs typically possess only low-to-moderate affinity for their peptide/MHC (pMHC) ligands, there is a recognized need to develop affinity-enhanced TCR variants. Previous in vitro engineering efforts have yielded remarkable improvements in TCR affinity, yet concerns exist about the maintenance of peptide specificity and the biological impacts of ultra-high affinity. As opposed to in vitro engineering, computational design can directly address these issues, in theory permitting the rational control of peptide specificity together with relatively controlled increments in affinity. Here we explored the efficacy of computational design with the clinically relevant TCR DMF5, which recognizes nonameric and decameric epitopes from the melanoma-associated Melan-A/MART-1 protein presented by the class I MHC HLA-A2. We tested multiple mutations selected by flexible and rigid modeling protocols, assessed impacts on affinity and specificity, and utilized the data to examine and improve algorithmic performance. We identified multiple mutations that improved binding affinity, and characterized the structure, affinity, and binding kinetics of a previously reported double mutant that exhibits an impressive 400-fold affinity improvement for the decameric pMHC ligand without detectable binding to non-cognate ligands. The structure of this high affinity mutant indicated very little conformational consequences and emphasized the high fidelity of our modeling procedure. Overall, our work showcases the capability of computational design to generate TCRs with improved pMHC affinities while explicitly accounting for peptide specificity, as well as its potential for generating TCRs with customized antigen targeting capabilities.
Insights
Computational design enhances T cell receptor (TCR) affinity for cancer immunotherapy. This method precisely controls specificity and affinity, improving therapeutic potential for targeting cancer antigens.
Area of Science:
- Immunology
- Structural Biology
- Computational Biology
Background:
- T cell receptors (TCRs) are crucial for antigen-specific immunity and cancer immunotherapy.
- Current TCR therapeutics often require enhanced affinity for peptide/MHC (pMHC) ligands.
- In vitro engineering has limitations regarding specificity and biological impact of ultra-high affinity.
Purpose of the Study:
- To evaluate computational design for enhancing TCR affinity and specificity.
- To investigate the clinically relevant TCR DMF5 targeting Melan-A/MART-1 pMHC ligands.
- To refine computational modeling algorithms using experimental data.
Main Methods:
- Utilized flexible and rigid computational modeling protocols to select TCR mutations.
- Assessed the impact of mutations on TCR affinity and peptide specificity.
- Characterized the structure, affinity, and binding kinetics of engineered TCR variants.
Main Results:
- Identified multiple mutations that significantly improved TCR binding affinity.
- A double mutant showed a 400-fold affinity increase for the decameric pMHC ligand.
- The high-affinity mutant maintained specificity, showing no detectable binding to non-cognate ligands.
- Structural analysis revealed minimal conformational changes in the high-affinity mutant.
Conclusions:
- Computational design can effectively generate TCRs with enhanced pMHC affinity and controlled specificity.
- This approach offers a rational strategy for developing customized TCR therapeutics.
- The study validates the high fidelity of computational modeling for TCR engineering.
More Related Videos
06:10Non-Viral Engineering of Primary Human T Cells via Homology-Mediated End-Joining Targeted Integration of Large DNA Templates
Published on: May 9, 2025
11:31High-Efficiency Generation of Antigen-Specific Primary Mouse Cytotoxic T Cells for Functional Testing in an Autoimmune Diabetes Model
Published on: August 16, 2019
Related Concept Videos
T Cell Activation and Clonal Selection
Naive T cells that have not yet encountered an antigen express two primary CD...
Diversity of Antigen Receptors
Before encountering any antigen, lymphocytes express these receptors. On B cells, the antigen receptor is a membrane-bound antibody molecule called BCR; on T cells, it is a T cell receptor or TCR. B and T cell receptors are composed of two...
