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bioRxiv · 10.1101/2025.11.06.687013

Non-Enzymatic Structural Modifications Reshape Peptide Presentation and Antigen Recognition

Abstract

Cytotoxic T lymphocytes recognize infected and transformed cells through peptide antigens presented by MHC-I. Peptide sequence is assumed to dictate recognition, yet non-enzymatic post-translational modifications (PTMs) installed by reactive electrophiles can render a peptide chemically distinct from the form against which tolerance was established. Here we show that non-enzymatic PTMs arising from oxidative, inflammatory, metabolic, and carbonyl stress alter peptide-MHC-I stability and frequently disrupt recognition by a cognate TCR despite preserved MHC-I binding. Using a thioester probe, we demonstrate proof-of-concept capture of acylation-susceptible MHC-I ligands from the cellular immunopeptidome. Environmental chemicals, pharmaceuticals, and dietary isothiocyanates likewise modify antigenic peptides and impair T cell activation, and chemically distinct adducts at a single residue span the range from complete loss to full retention. Finally, methylglyoxal glycation impairs antigen-specific activation, and scavenging by creatine prevents it. Antigenic identity therefore reflects not only sequence but a peptides cumulative chemical history.

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Kelly, J., Newkirk, S., Singh, S., Ocius, K., Zhang, T., Pires, M.. 2025-11-07. Non-Enzymatic Structural Modifications Reshape Peptide Presentation and Antigen Recognition. https://doi.org/10.1101/2025.11.06.687013

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