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bioRxiv · 10.1101/2024.05.31.596913

Peptide sequencing via reverse translation of peptides into DNA

Abstract

Scalable methods that can accurately sequence peptides at single-amino acid resolution could significantly advance proteomic studies. We present a protein sequencing method based on the "reverse translation" of peptide sequence information into DNA barcodes that document the identity, position, and the originating peptide of each amino acid. We employ a modified Edman degradation process that converts peptides into DNA-barcoded amino acids, which are subsequently detected by proximity extension assay, yielding multi-barcoded DNA outputs that can be PCR amplified and sequenced. Using our method, we sequenced multiple consecutive amino acids within a model peptide. This method also enables the differentiation of single amino acid substitutions, and the identification of post-translational modifications and their positions within multiple peptides simultaneously. With further development, we anticipate that this method will enable highly parallel de novo protein sequencing with single-molecule sensitivity.

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Zheng, L., Sun, Y., Eisenstein, M., Soh, H. T.. 2024-06-03. Peptide sequencing via reverse translation of peptides into DNA. https://doi.org/10.1101/2024.05.31.596913

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