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(Ebook) Immunoinformatics: Predicting Immunogenicity In Silico by Darren R. Flower (auth.), Darren R. Flower (eds.) ISBN 9781588296993, 1588296997

  • SKU: EBN-1315416
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Authors:Darren R. Flower (auth.), Darren R. Flower (eds.)
Pages:438 pages.
Year:2007
Editon:1
Publisher:Humana Press
Language:english
File Size:13.69 MB
Format:pdf
ISBNS:9781588296993, 1588296997
Categories: Ebooks

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(Ebook) Immunoinformatics: Predicting Immunogenicity In Silico by Darren R. Flower (auth.), Darren R. Flower (eds.) ISBN 9781588296993, 1588296997

Immunoinformatics: Predicting Immunogenicity In Silico is a primer for researchers interested in this emerging and exciting technology and provides examples in the major areas within the field of immunoinformatics. This volume both engages the reader and provides a sound foundation for the use of immunoinformatics techniques in immunology and vaccinology.

The volume is conveniently divided into four sections. The first section, Databases, details various immunoinformatic databases, including IMGT/HLA, IPD, and SYEPEITHI. In the second section, Defining HLA Supertypes, authors discuss supertypes of GRID/CPCA and hierarchical clustering methods, Hla-Ad supertypes, MHC supertypes, and Class I Hla Alleles. The third section, Predicting Peptide-MCH Binding, includes discussions of MCH binders, T-Cell epitopes, Class I and II Mouse Major Histocompatibility, and HLA-peptide binding. Within the fourth section, Predicting Other Properties of Immune Systems, investigators outline TAP binding, B-cell epitopes, MHC similarities, and predicting virulence factors of immunological interest.

Immunoinformatics: Predicting Immunogenicity In Silico merges skill sets of the lab-based and the computer-based science professional into one easy-to-use, insightful volume.

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