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Updated: Apr 24, 2026

Immunopeptidomics: Isolation of Mouse and Human MHC Class I- and II-Associated Peptides for Mass Spectrometry Analysis
Published on: October 15, 2021
Characterization of binding specificities of bovine leucocyte class I molecules: impacts for rational epitope
Andreas M Hansen1, Michael Rasmussen, Nicholas Svitek
1Laboratory of Experimental Immunology, Department of International Health, Immunology and Microbiology, Faculty of Health Sciences, University of Copenhagen, Copenhagen, Denmark.
Insights
Characterizing bovine leucocyte antigen class I (BoLA-I) peptide-binding specificity is crucial for cattle immunology. This study combined high-throughput assays and bioinformatics to reveal BoLA-I specificity, improving prediction accuracy for cattle immune responses.
Area of Science:
- Immunology
- Veterinary Science
- Bioinformatics
Background:
- Peptide binding to Major Histocompatibility Complex (MHC) class I is critical for antigen presentation.
- The peptide-binding specificity of cattle MHC (bovine leucocyte antigen, BoLA) class I (BoLA-I) molecules is poorly understood.
- Understanding BoLA-I specificity is vital for cattle health and disease research.
Purpose of the Study:
- To characterize the peptide-binding specificity of BoLA-I molecules.
- To improve the accuracy of peptide-MHC binding prediction tools for cattle.
- To facilitate rational epitope discovery in cattle.
Main Methods:
- Utilized high-throughput assays including positional scanning combinatorial peptide libraries and peptide dissociation assays.
- Combined biochemical data with bioinformatics analyses for comprehensive characterization.
- Refined existing peptide-MHC binding prediction algorithms (NetMHC, NetMHCpan) using BoLA-specific data.
Main Results:
- Characterized the peptide specificity of eight BoLA-I molecules, revealing similarities to human MHC-I with primary anchors at P2 and P9.
- Confirmed stable and high-affinity binding for eight out of nine reported cattle CTL epitopes.
- Demonstrated significant improvement in prediction accuracy for cattle CTL epitopes using refined prediction methods.
- Identified high-affinity nested minimal epitopes for previously poorly binding epitopes, experimentally validated.
Conclusions:
- A combined approach of high-throughput biochemical assays and immunoinformatics effectively characterizes BoLA-I peptide-binding motifs.
- The refined prediction methods enhance the accuracy of identifying cattle-specific T-cell epitopes.
- This study provides a powerful framework for epitope discovery and understanding cattle immune responses.
Abstract:
The binding of peptides to classical major histocompatibility complex (MHC) class I proteins is the single most selective step in antigen presentation. However, the peptide-binding specificity of cattle MHC (bovine leucocyte antigen, BoLA) class I (BoLA-I) molecules remains poorly characterized. Here, we demonstrate how a combination of high-throughput assays using positional scanning combinatorial peptide libraries, peptide dissociation, and peptide-binding affinity binding measurements can be combined with bioinformatics to effectively characterize the functionality of BoLA-I molecules. Using this strategy, we characterized eight BoLA-I molecules, and found the peptide specificity to resemble that of human MHC-I molecules with primary anchors most often at P2 and P9, and occasional auxiliary P1/P3/P5/P6 anchors. We analyzed nine reported CTL epitopes from Theileria parva, and in eight cases, stable and high affinity binding was confirmed. A set of peptides were tested for binding affinity to the eight BoLA proteins and used to refine the predictors of peptide-MHC binding NetMHC and NetMHCpan. The inclusion of BoLA-specific peptide-binding data led to a significant improvement in prediction accuracy for reported T. parva CTL epitopes. For reported CTL epitopes with weak or no predicted binding, these refined prediction methods suggested presence of nested minimal epitopes with high-predicted binding affinity. The enhanced affinity of the alternative peptides was in all cases confirmed experimentally. This study demonstrates how biochemical high-throughput assays combined with immunoinformatics can be used to characterize the peptide-binding motifs of BoLA-I molecules, boosting performance of MHC peptide-binding prediction methods, and empowering rational epitope discovery in cattle.
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