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Functional evaluation of TCR-pMHC pairs at scale allows in silico TCR reactivity prediction.

Marius Messemaker ,
Bjørn P Y Kwee ,
Živa Moravec ,
Sam de Paauw ,
Jos Urbanus ,
Daniel Álvarez-Salmoral ,
Jeroen Geerligs ,
Ren Xie ,
Rhianne Voogd ,
Ben Morris ,
Aurélie Guislain ,
Yaël Winkler ,
Connor A Richterich ,
Maike Mussmann ,
Marijn Bakker ,
Maxime Steinmetz ,
Matyas Iras ,
Eric Marcus ,
Jonas Teuwen ,
Anastassis Perrakis ,
Roderick L Beijersbergen ,
Wouter Scheper ,
Ton N Schumacher

Abstract

Accurate prediction of T cell receptor (TCR) reactivity is a long-standing goal in immunology. Here, we asked whether functional validation of TCR-peptide-major histocompatibility complex (MHC) (TCR-pMHC) pairs at scale alters performance estimates of TCR-pMHC reactivity prediction models. We developed a TCR rapid assembly platform (T-RAP) that allowed the generation of large and uniform TCR libraries. T-RAP enabled evaluation of TCR signaling or MHC multimer binding of thousands of previously reported TCR-pMHC pairs under standardized conditions. In this setting of systematic standardized evaluation, only ∼50% of these TCRs showed the previously reported TCR reactivity. Notably, AlphaFold3 structural predictions showed good performance in identifying reactive TCR-pMHC pairs within the set of TCRs that experimentally validated without any task-specific training. AlphaFold3 structural predictions could likewise be used to shortlist TCRs reactive to patient-specific cancer neoantigens. In silico prediction of TCR-pMHC reactivity thus has greater feasibility than previously assumed, with implications for basic research and clinical application.

More about this publication

Immunity

Publication date 01-10-2026

Full text links

Publisher website (DOI) 10.1016/j.immuni.2026.09.007
Europe PubMed Central 42822443
Pubmed 42822443

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