Exopeptidase-assisted nanopore peptide sequence identification.

Fu, Ying-Huan; Wei, Nan-Nan; Xin, Kai-Li; Li, Xinyi; Zhang, Li-Min; Yang, Cheng; Yan, Feng; Long, Yi-Tao et al. · Nat Commun · 2026

basic_science · Level V

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Abstract

Despite substantial progress in nanopore sensing, residue-by-residue peptide sequencing remains a major challenge. Herein, we present EANPSeq, an exopeptidase-assisted nanopore peptide identification strategy based on peptide libraries to decode the peptide sequence. By continuously recognizing the resulting fragments from digesting peptides stepwise through a nanopore, this approach could achieve the identification of peptide sequence based on the comparison of fragment data with libraries of shortened and mutated peptides, with the assistance of machine learning. Notably, compared with previously reported nanopore peptide sensing strategies, EANPSeq shows sufficient resolution to recognize the continuous sequence of peptides containing adjacent identical residues and to precisely localize post-translational modification (PTM) sites within consecutive residues. These proof-of-concept results highlight our nanopore-based strategy as a new avenue for single-molecule protein sequencing.

Medical subject headings