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. 2018 Jul 25;7(1):129-132.e4.
doi: 10.1016/j.cels.2018.05.014. Epub 2018 Jun 27.

MHCflurry: Open-Source Class I MHC Binding Affinity Prediction

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Free article

MHCflurry: Open-Source Class I MHC Binding Affinity Prediction

Timothy J O'Donnell et al. Cell Syst. .
Free article

Abstract

Predicting the binding affinity of major histocompatibility complex I (MHC I) proteins and their peptide ligands is important for vaccine design. We introduce an open-source package for MHC I binding prediction, MHCflurry. The software implements allele-specific neural networks that use a novel architecture and peptide encoding scheme. When trained on affinity measurements, MHCflurry outperformed the standard predictors NetMHC 4.0 and NetMHCpan 3.0 overall and particularly on non-9-mer peptides in a benchmark of ligands identified by mass spectrometry. The released predictor, MHCflurry 1.2.0, uses mass spectrometry datasets for model selection and showed competitive accuracy with standard tools, including the recently released NetMHCpan 4.0, on a small benchmark of affinity measurements. MHCflurry's prediction speed exceeded 7,000 predictions per second, 396 times faster than NetMHCpan 4.0. MHCflurry is freely available to use, retrain, or extend, includes Python library and command line interfaces, may be installed using package managers, and applies software development best practices.

Keywords: HLA; MHC; epitope prediction; neural network.

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