Molecular Rules Underpinning Enhanced Affinity Binding of Human T Cell Receptors Engineered for Immunotherapy
Rory M Crean1,2, Bruce J MacLachlan3, Florian Madura3
1Department of Biology and Biochemistry, University of Bath, Bath, BA2 7AY, UK.
Abstract:
Immuno-oncology approaches that utilize T cell receptors (TCRs) are becoming highly attractive because of their potential to target virtually all cellular proteins, including cancer-specific epitopes, via the recognition of peptide-human leukocyte antigen (pHLA) complexes presented at the cell surface. However, because natural TCRs generally recognize cancer-derived pHLAs with very weak affinities, efforts have been made to enhance their binding strength, in some cases by several million-fold. In this study, we investigated the mechanisms underpinning human TCR affinity enhancement by comparing the crystal structures of engineered enhanced affinity TCRs with those of their wild-type progenitors. Additionally, we performed molecular dynamics simulations to better understand the energetic mechanisms driving the affinity enhancements. These data demonstrate that supra-physiological binding affinities can be achieved without altering native TCR-pHLA binding modes via relatively subtle modifications to the interface contacts, often driven through the addition of buried hydrophobic residues. Individual energetic components of the TCR-pHLA interaction governing affinity enhancements were distinct and highly variable for each TCR, often resulting from additive, or knock-on, effects beyond the mutated residues. This comprehensive analysis of affinity-enhanced TCRs has important implications for the future rational design of engineered TCRs as efficacious and safe drugs for cancer treatment.
Insights
Researchers studied engineered T-cell receptors (TCRs) to understand how they achieve higher binding affinity to cancer targets. Subtle modifications, like adding hydrophobic residues, enhance TCR binding strength for improved immuno-oncology cancer therapies.
Area of Science:
- Immunology
- Structural Biology
- Computational Biology
Background:
- Immuno-oncology utilizes T-cell receptors (TCRs) to target cancer cells via peptide-human leukocyte antigen (pHLA) complexes.
- Natural TCRs often exhibit weak binding affinity to cancer-derived pHLAs, necessitating affinity enhancement strategies.
Purpose of the Study:
- To investigate the structural and energetic mechanisms behind human TCR affinity enhancement.
- To compare engineered enhanced-affinity TCRs with their wild-type counterparts.
Main Methods:
- X-ray crystallography was used to determine and compare the structures of wild-type and engineered TCRs bound to pHLA.
- Molecular dynamics simulations were performed to analyze the energetic contributions to affinity enhancement.
Main Results:
- Supra-physiological binding affinities were achieved through subtle interface modifications, often involving buried hydrophobic residues.
- Native TCR-pHLA binding modes were generally preserved despite significant affinity increases.
- Energetic contributions to affinity enhancement were highly variable between individual TCRs, often involving additive or 'knock-on' effects.
Conclusions:
- Rational design of enhanced-affinity TCRs can be achieved without altering natural binding modes.
- Subtle interface modifications are key drivers of enhanced TCR binding strength.
- Understanding these mechanisms is crucial for developing efficacious and safe engineered TCR-based cancer therapeutics.
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