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Immunoinformatics - A New Technique for MHC Class-II Epitope Prediction

English, German · Paperback / Softback

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Identification of Major Histocompatibility Complex (MHC) binding peptides is an important step in the selection of T-Cell epitope candidates that are suitable for usage in new vaccines. The binding groove of the MHC Class-II molecule is opened at both sides, which allows for high variability in length of the peptides that bind to this molecule and consequently; complicates the prediction of the binding core motif. An accurate and efficient computational approach for the prediction of such peptides can greatly reduce the time and cost required for the design of new vaccines. EpiGASVM, a new approach for the in silico prediction of MHC Class-II epitopes was developed by combining Genetic Algorithms and Support Vector Machines. Nine variations of EpiGASVM were applied to two sets of similarity-reduced benchmark data. The prediction accuracy and area under the receiver operating characteristic curve were calculated as measures of performance. The technique is compared with some state-of-the-art techniques in this area (e.g. ARB, SMM-Align, PROPRED, NN-Align). Results shows that EpiGASVM is a promising new technique for the solution of the MHC Class-II epitope prediction problem.

About the author










Mostafa Omara is a researcher in Arab Academy for Science and Technology, Cairo. Amr Badr and Emad Nabil work in department on Computer Science, faculty of Computers and Information, Cairo University, Egypt. The author¿s research interests include Soft Computing, Machine Learning, P systems and Bioinformatics.

Product details

Authors Am Badr, Amr Badr, Emad Nabil, Mostaf Omara, Mostafa Omara
Publisher LAP Lambert Academic Publishing
 
Languages English, German
Product format Paperback / Softback
Released 30.09.2015
 
EAN 9783659778001
ISBN 978-3-659-77800-1
No. of pages 116
Subjects Guides
Natural sciences, medicine, IT, technology > IT, data processing

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