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Updated: Nov 28, 2025

A High Throughput MHC II Binding Assay for Quantitative Analysis of Peptide Epitopes
Published on: March 25, 2014
ProTECT-Prediction of T-Cell Epitopes for Cancer Therapy
Arjun A Rao1,2,3, Ada A Madejska2,4, Jacob Pfeil1,2,3
1Department of Biomolecular Engineering, University of California, Santa Cruz, Santa Cruz, CA, United States.
Abstract:
Somatic mutations in cancers affecting protein coding genes can give rise to potentially therapeutic neoepitopes. These neoepitopes can guide Adoptive Cell Therapies and Peptide- and RNA-based Neoepitope Vaccines to selectively target tumor cells using autologous patient cytotoxic T-cells. Currently, researchers have to independently align their data, call somatic mutations and haplotype the patient's HLA to use existing neoepitope prediction tools. We present ProTECT, a fully automated, reproducible, scalable, and efficient end-to-end analysis pipeline to identify and rank therapeutically relevant tumor neoepitopes in terms of potential immunogenicity starting directly from raw patient sequencing data, or from pre-processed data. The ProTECT pipeline encompasses alignment, HLA haplotyping, mutation calling (single nucleotide variants, short insertions and deletions, and gene fusions), peptide:MHC binding prediction, and ranking of final candidates. We demonstrate the scalability, efficiency, and utility of ProTECT on 326 samples from the TCGA Prostate Adenocarcinoma cohort, identifying recurrent potential neoepitopes from TMPRSS2-ERG fusions, and from SNVs in SPOP. We also compare ProTECT with results from published tools. ProTECT can be run on a standalone computer, a local cluster, or on a compute cloud using a Mesos backend. ProTECT is highly scalable and can process TCGA data in under 30 min per sample (on average) when run in large batches. ProTECT is freely available at https://www.github.com/BD2KGenomics/protect.
Insights
ProTECT is a new pipeline that automates the identification of potential cancer neoepitopes from sequencing data. This tool aids in developing targeted cancer therapies like Adoptive Cell Therapies and Neoepitope Vaccines.
Area of Science:
- Oncology
- Bioinformatics
- Immunology
Background:
- Somatic mutations in cancer can create neoepitopes for targeted therapies.
- Current neoepitope identification requires multiple independent bioinformatics tools.
- Existing methods are not fully automated, hindering efficient neoepitope discovery.
Purpose of the Study:
- To present ProTECT, an automated end-to-end pipeline for identifying and ranking neoepitopes.
- To streamline the process of neoepitope discovery from raw sequencing data.
- To facilitate the development of neoepitope-based cancer immunotherapies.
Main Methods:
- ProTECT integrates data alignment, HLA haplotyping, and mutation calling (SNVs, indels, gene fusions).
- The pipeline predicts peptide:MHC binding and ranks neoepitope candidates by immunogenicity.
- It processes raw or pre-processed sequencing data, offering flexibility.
Main Results:
- ProTECT was validated on 326 TCGA Prostate Adenocarcinoma samples.
- The pipeline identified recurrent neoepitopes from TMPRSS2-ERG fusions and SPOP SNVs.
- Performance was benchmarked against existing neoepitope prediction tools.
Conclusions:
- ProTECT provides a scalable, efficient, and reproducible solution for neoepitope identification.
- The pipeline significantly reduces the time and complexity of preparing data for neoepitope-based therapies.
- ProTECT is available as open-source software for broader research application.
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