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Updated: Apr 30, 2026

Generating De Novo Antigen-specific Human T Cell Receptors by Retroviral Transduction of Centric Hemichain
Published on: October 25, 2016
Computational design of orthogonal TCR α/β interfaces for dual-TCR therapeutics
Tomoaki Kinjo1,2, Shawn Yu2,3, Nathan Nicely4
1Department of Biochemistry and Biophysics, University of North Carolina at Chapel Hill, Chapel Hill, NC, USA.
Abstract:
T-cell receptors (TCRs) recognize peptides presented by MHC, enabling access to intracellular targets that are largely inaccessible to antibodies and difficult to target with small molecules. Despite this potential, their inherent cross-reactivity limits tumor specificity, while single-antigen targeting provides limited coverage of intratumoral heterogeneity. Dual-TCR therapeutics comprising two distinct TCRs could enhance tumor specificity via combinatorial recognition while broadening coverage across heterogeneous antigens. However, practical development of dual-TCR therapeutics has been limited by α/β subunit mispairing that prevents efficient production and creates undesired binding properties. Here, we develop orthogonal TCR α/β interfaces that prevent subunit mispairing. Using computational multistate design and second-site suppressor strategies implemented in Rosetta, we identified over 250 TCR variants for experimental screening to assess protein stability and pairing fidelity. The top-performing designs achieved approximately 95% correct pairing, as validated by mass spectrometry and X-ray crystallography. Focusing mutations on constant domains and conserved framework regions of variable domains enabled broad applicability across diverse TCRs while preserving antigen recognition. Using these orthogonal interfaces, we developed trispecific T-cell engagers (TriTEs) that target two cancer-testis antigens and CD3 on T cells, demonstrating enhanced potency under dual-antigen engagement (EC50 of 380 fM) while maintaining high activity when targeting cells displaying a single antigen (EC50s of 48 pM and 20 pM). This orthogonal TCR interface technology establishes a generalizable platform for engineering multi-specific immune therapeutics targeting diverse cancer antigens.
Insights
Scientists engineered novel T-cell receptors (TCRs) to overcome pairing issues, creating more specific and effective dual-TCR cancer therapies. This breakthrough enables better targeting of heterogeneous tumors with improved immune therapeutics.
Area of Science:
- Immunology
- Protein Engineering
- Computational Biology
Background:
- T-cell receptors (TCRs) offer potential for targeting intracellular cancer antigens inaccessible to other therapies.
- Current TCR therapies face limitations due to cross-reactivity, impacting tumor specificity and antigen coverage.
- Developing dual-TCR therapeutics is challenging due to T-cell receptor alpha/beta subunit mispairing, hindering production and function.
Purpose of the Study:
- To engineer orthogonal T-cell receptor (TCR) alpha/beta interfaces to prevent subunit mispairing.
- To develop a generalizable platform for creating multi-specific immune therapeutics with enhanced tumor targeting and broader antigen coverage.
Main Methods:
- Utilized computational multistate design and second-site suppressor strategies in Rosetta to identify TCR variants.
- Screened over 250 TCR variants for protein stability and pairing fidelity.
- Validated TCR pairing using mass spectrometry and X-ray crystallography.
Main Results:
- Achieved approximately 95% correct TCR subunit pairing in top-performing designs.
- Demonstrated broad applicability of mutations across diverse TCRs without compromising antigen recognition.
- Developed trispecific T-cell engagers (TriTEs) showing enhanced potency against dual-antigen-expressing cells and high activity against single-antigen cells.
Conclusions:
- The developed orthogonal TCR interface technology effectively prevents subunit mispairing, enabling efficient production of dual-TCR therapeutics.
- This platform facilitates the engineering of potent and specific multi-specific immune therapeutics for targeting diverse cancer antigens.
- The technology holds promise for advancing cancer immunotherapy by improving targeting specificity and addressing tumor heterogeneity.
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Published on: February 6, 2017
11:21Streamlined Single Cell TCR Isolation and Generation of Retroviral Vectors for In Vitro and In Vivo Expression of Human TCRs
Published on: September 10, 2017
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