Personalized deep learning of individual immunopeptidomes to identify neoantigens for cancer vaccines

preprint · bioRxiv · 2019

preprint · bioRxiv · 2019. Ngoc Hieu Tran et al. Tumor-specific neoantigens play the main role for developing personal vaccines in cancer immunotherapy. We…
Date 2019-04-26
Type preprint
Venue bioRxiv
Publisher Cold Spring Harbor Laboratory
Contribution downstream-application
DOI 10.1101/620468
Citations (OpenAlex) 8

Abstract

Tumor-specific neoantigens play the main role for developing personal vaccines in cancer immunotherapy. We propose, for the first time, a personalized de novo sequencing workflow to identify HLA-I and HLA-II neoantigens directly and solely from mass spectrometry data. Our workflow trains a personal deep learning model on the immunopeptidome of an individual patient and then uses it to predict mutated neoantigens of that patient. This personalized learning and mass spectrometry-based approach enables comprehensive and accurate identification of neoantigens. We applied the workflow to datasets of five melanoma patients and substantially improved the accuracy and identification rate of de novo HLA peptides by 14.3% and 38.9%, respectively. This subsequently led to the identification of 10,440 HLA-I and 1,585 HLA-II new peptides that were not presented in existing databases. Most importantly, our workflow successfully discovered 17 neoantigens of both HLA-I and HLA-II, including those with validated T cell responses and those novel neoantigens that had not been reported in previous studies.

Authors

  1. Ngoc Hieu Tran · Bioinformatics Solutions Inc., University of Waterloo
  2. Rui Qiao · Bioinformatics Solutions Inc., University of Waterloo
  3. Lei Xin · Bioinformatics Solutions Inc.
  4. Xin Chen · Bioinformatics Solutions Inc.
  5. Baozhen Shan · Bioinformatics Solutions Inc.
  6. Ming Li · Bioinformatics Solutions Inc., Peng Cheng Laboratory, University of Waterloo, University of Western Ontario

Methods and tools

  • DeepNovoAA: Immunopeptidome neoantigen discovery

Cites (2)

Cited by (1)

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