Comprehensive profiling of cancer neoantigens from aberrant RNA splicing

Daniel P Wickland1, Colton McNinch2,3, Erik Jessen3

  • 1Department of Quantitative Health Sciences, Mayo Clinic, Jacksonville, Florida, USA.

Abstract

Insights

SPLICE-neo identifies novel cancer neoantigens from aberrant RNA transcripts, enhancing immuno-oncology by analyzing splice-site mutations and de novo splicing events for potent tumor antigen discovery.

Area of Science:

  • Oncology
  • Immunology
  • Bioinformatics

Background:

  • Cancer neoantigens are crucial for next-generation immuno-oncology therapies.
  • Previous computational frameworks like REAL-neo identified neoantigens from mutations and gene fusions.
  • Aberrant RNA transcripts present a novel source of neoantigens.

Purpose of the Study:

  • To develop SPLICE-neo, a computational tool for identifying neoantigens from aberrant RNA transcripts.
  • To analyze neoantigens arising from both DNA splice-site mutations and de novo RNA splicing events.
  • To prioritize and evaluate the neoantigen potential of identified splicing neoantigens.

Main Methods:

  • Profiling splice-site mutations in 11,892 TCGA tumors to identify splicing profiles.
  • Utilizing novel logic models to compute transcript isoforms from splice-site mutations.
  • Identifying de novo RNA splicing events through RNA sequencing reads mapped to novel exon junctions.
  • Ranking aberrant transcripts by expression levels and z-scores.
  • Translating top-ranked isoforms into protein and evaluating neoantigen potential with REAL-neo.
  • Validating top splicing neoantigen candidates binding to HLA-A*02:01 using in vitro T2 binding assays.

Main Results:

  • Abundant splicing neoantigens were identified in BRCA, LUAD, LUSC, and LIHC.
  • Splicing neoantigens significantly contributed to the overall neoantigen load.
  • Several splicing neoantigens demonstrated potent tumor antigenicity with strong HLA binding, exceeding influenza virus controls.

Conclusions:

  • SPLICE-neo is the first comprehensive tool for identifying and prioritizing splicing neoantigens from both DNA splice-site mutations and de novo RNA aberrant splicings.
  • Novel logic models enable the assembly and prioritization of full-length aberrant transcripts from splice-site mutations.
  • SPLICE-neo effectively identifies complex exon-skipping events involving multiple exons.

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