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PMID: 19002680 Published · ppublish English Comparative Study Journal Article Research Support, N.I.H., Extramural Validation Study

NetMHCpan, a method for MHC class I binding prediction beyond humans.

Immunogenetics ·Vol. 61 ·No. 1 ·2009-01-00 ·Pages 1-13

Hoof I, Peters B, Sidney J, Pedersen LE, Sette A, Lund O, Buus S, Nielsen M

Abstract

Binding of peptides to major histocompatibility complex (MHC) molecules is the single most selective step in the recognition of pathogens by the cellular immune system. The human MHC genomic region (called HLA) is extremely polymorphic comprising several thousand alleles, each encoding a distinct MHC molecule. The potentially unique specificity of the majority of HLA alleles that have been identified to date remains uncharacterized. Likewise, only a limited number of chimpanzee and rhesus macaque MHC class I molecules have been characterized experimentally. Here, we present NetMHCpan-2.0, a method that generates quantitative predictions of the affinity of any peptide-MHC class I interaction. NetMHCpan-2.0 has been trained on the hitherto largest set of quantitative MHC binding data available, covering HLA-A and HLA-B, as well as chimpanzee, rhesus macaque, gorilla, and mouse MHC class I molecules. We show that the NetMHCpan-2.0 method can accurately predict binding to uncharacterized HLA molecules, including HLA-C and HLA-G. Moreover, NetMHCpan-2.0 is demonstrated to accurately predict peptide binding to chimpanzee and macaque MHC class I molecules. The power of NetMHCpan-2.0 to guide immunologists in interpreting cellular immune responses in large out-bred populations is demonstrated. Further, we used NetMHCpan-2.0 to predict potential binding peptides for the pig MHC class I molecule SLA-1*0401. Ninety-three percent of the predicted peptides were demonstrated to bind stronger than 500 nM. The high performance of NetMHCpan-2.0 for non-human primates documents the method's ability to provide broad allelic coverage also beyond human MHC molecules. The method is available at http://www.cbs.dtu.dk/services/NetMHCpan.

MeSH Terms
Algorithms Amino Acid Sequence Animals Computer Simulation Epitopes, T-Lymphocyte/chemistry,immunology,metabolism Genes, MHC Class I Gorilla gorilla/genetics,immunology HLA Antigens/genetics,immunology,metabolism Histocompatibility Antigens Class I/immunology,metabolism Humans Immunity, Cellular Macaca mulatta/genetics,immunology Mice Models, Biological Neural Networks, Computer Oligopeptides/immunology,metabolism Pan troglodytes/genetics,immunology Protein Binding Protein Interaction Domains and Motifs Protein Interaction Mapping Species Specificity Sus scrofa/genetics,immunology
Chemicals
Epitopes, T-Lymphocyte HLA Antigens Histocompatibility Antigens Class I Oligopeptides
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Hoof Ilka
Center for Biological Sequence Analysis, Department of Systems Biology, Technical University of Denmark, Building 208, 2800, Lyngby, Denmark. ilka@cbs.dtu.dk
Peters Bjoern
Sidney John
Pedersen Lasse Eggers
Sette Alessandro
Lund Ole
Buus Søren
Nielsen Morten
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Article Info
Journal
Immunogenetics
Abbr.
Immunogenetics
ISSN
1432-1211
Published
2009-01-00
Epub
2008-00-12
Pages
1-13
Language
English
Region
United States
NLM ID
0420404
PMCID
PMC3319061
Subset
IM
Grants
NIAID NIH HHS · HHSH266200400006C · United States
PHS HHS · HHSN26620040006C · United States
PHS HHS · HHSN266200400083C · United States
PHS HHS · HHSN266200400025C · United States
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