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PMID: 12725795 Published · ppublish English Journal Article Review

The use of bioinformatics for identifying class II-restricted T-cell epitopes.

Methods (San Diego, Calif.) ·Vol. 29 ·No. 3 ·2003-03-00 ·Pages 299-309

Bian H, Reidhaar-Olson JF, Hammer J

Abstract

An important step in the design of subunit vaccines is the identification of promiscuous T helper cell epitopes in sets of disease-specific gene products. Most of the epitope prediction models are based on HLA-II peptide binding, which constitutes a major bottleneck in the natural selection of epitopes. Here we describe a computer model, TEPITOPE, that enables the systematic prediction of promiscuous peptide ligands for a broad range of HLA binding specificity. We show how to apply the TEPITOPE prediction model to identify T-cell epitopes, and provide examples of its successful application in the context of oncology, allergy, and infectious and autoimmune diseases.

MeSH Terms
Computational Biology/methods Epitope Mapping/methods Epitopes, T-Lymphocyte/analysis Histocompatibility Antigens Class II/analysis Humans Vaccines
Chemicals
Epitopes, T-Lymphocyte Histocompatibility Antigens Class II Vaccines
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Bian Hongjin
Section of Bioinformatics, Genetics and Genomics, Hoffmann-La Roche Inc., 340 Kingsland Street, Nutley, NJ 07110-1199, USA. hongjin.bian@roche.com
Reidhaar-Olson John F
Hammer Juergen
Article Info
Journal
Methods (San Diego, Calif.)
Abbr.
Methods
ISSN
1046-2023
Published
2003-03-00
Pages
299-309
Language
English
Region
United States
NLM ID
9426302
Subset
IM
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