Author:
Bravi Barbara,Tubiana Jérôme,Cocco Simona,Monasson Rémi,Mora Thierry,Walczak Aleksandra M.
Abstract
SummaryThe recent increase of immunopeptidomic data, obtained by mass spectrometry or binding assays, opens unprecedented possibilities for investigating endogenous antigen presentation by the highly polymorphic human leukocyte antigen class I (HLA-I) protein. We introduce a flexible and easily interpretable peptide presentation prediction method, RBM-MHC. We validate its performance as a predictor of cancer neoantigens and viral epitopes and we use it to reconstruct peptide motifs presented on specific HLA-I molecules. By benchmarking RBM-MHC performance on a wide range of HLA-I alleles, we show its importance to improve prediction accuracy for rarer alleles.
Publisher
Cold Spring Harbor Laboratory
Cited by
1 articles.
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1. AI and Immunoinformatics;Artificial Intelligence in Medicine;2022