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Epitope Predictions Indicate the Presence of Two Distinct Types of Epitope-Antibody-Reactivities Determined by Epitope Profiling of Intravenous Immunoglobulins

Epitope-antibody-reactivities (EAR) of intravenous immunoglobulins (IVIGs) determined for 75,534 peptides by microarray analysis demonstrate that roughly 9% of peptides derived from 870 different human protein sequences react with antibodies present in IVIG. Computational prediction of linear B cell...

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Autores principales: Luštrek, Mitja, Lorenz, Peter, Kreutzer, Michael, Qian, Zilliang, Steinbeck, Felix, Wu, Di, Born, Nadine, Ziems, Bjoern, Hecker, Michael, Blank, Miri, Shoenfeld, Yehuda, Cao, Zhiwei, Glocker, Michael O., Li, Yixue, Fuellen, Georg, Thiesen, Hans-Jürgen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3823795/
https://www.ncbi.nlm.nih.gov/pubmed/24244326
http://dx.doi.org/10.1371/journal.pone.0078605
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author Luštrek, Mitja
Lorenz, Peter
Kreutzer, Michael
Qian, Zilliang
Steinbeck, Felix
Wu, Di
Born, Nadine
Ziems, Bjoern
Hecker, Michael
Blank, Miri
Shoenfeld, Yehuda
Cao, Zhiwei
Glocker, Michael O.
Li, Yixue
Fuellen, Georg
Thiesen, Hans-Jürgen
author_facet Luštrek, Mitja
Lorenz, Peter
Kreutzer, Michael
Qian, Zilliang
Steinbeck, Felix
Wu, Di
Born, Nadine
Ziems, Bjoern
Hecker, Michael
Blank, Miri
Shoenfeld, Yehuda
Cao, Zhiwei
Glocker, Michael O.
Li, Yixue
Fuellen, Georg
Thiesen, Hans-Jürgen
author_sort Luštrek, Mitja
collection PubMed
description Epitope-antibody-reactivities (EAR) of intravenous immunoglobulins (IVIGs) determined for 75,534 peptides by microarray analysis demonstrate that roughly 9% of peptides derived from 870 different human protein sequences react with antibodies present in IVIG. Computational prediction of linear B cell epitopes was conducted using machine learning with an ensemble of classifiers in combination with position weight matrix (PWM) analysis. Machine learning slightly outperformed PWM with area under the curve (AUC) of 0.884 vs. 0.849. Two different types of epitope-antibody recognition-modes (Type I EAR and Type II EAR) were found. Peptides of Type I EAR are high in tyrosine, tryptophan and phenylalanine, and low in asparagine, glutamine and glutamic acid residues, whereas for peptides of Type II EAR it is the other way around. Representative crystal structures present in the Protein Data Bank (PDB) of Type I EAR are PDB 1TZI and PDB 2DD8, while PDB 2FD6 and 2J4W are typical for Type II EAR. Type I EAR peptides share predicted propensities for being presented by MHC class I and class II complexes. The latter interaction possibly favors T cell-dependent antibody responses including IgG class switching. Peptides of Type II EAR are predicted not to be preferentially presented by MHC complexes, thus implying the involvement of T cell-independent IgG class switch mechanisms. The high extent of IgG immunoglobulin reactivity with human peptides implies that circulating IgG molecules are prone to bind to human protein/peptide structures under non-pathological, non-inflammatory conditions. A webserver for predicting EAR of peptide sequences is available at www.sysmed-immun.eu/EAR.
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spelling pubmed-38237952013-11-15 Epitope Predictions Indicate the Presence of Two Distinct Types of Epitope-Antibody-Reactivities Determined by Epitope Profiling of Intravenous Immunoglobulins Luštrek, Mitja Lorenz, Peter Kreutzer, Michael Qian, Zilliang Steinbeck, Felix Wu, Di Born, Nadine Ziems, Bjoern Hecker, Michael Blank, Miri Shoenfeld, Yehuda Cao, Zhiwei Glocker, Michael O. Li, Yixue Fuellen, Georg Thiesen, Hans-Jürgen PLoS One Research Article Epitope-antibody-reactivities (EAR) of intravenous immunoglobulins (IVIGs) determined for 75,534 peptides by microarray analysis demonstrate that roughly 9% of peptides derived from 870 different human protein sequences react with antibodies present in IVIG. Computational prediction of linear B cell epitopes was conducted using machine learning with an ensemble of classifiers in combination with position weight matrix (PWM) analysis. Machine learning slightly outperformed PWM with area under the curve (AUC) of 0.884 vs. 0.849. Two different types of epitope-antibody recognition-modes (Type I EAR and Type II EAR) were found. Peptides of Type I EAR are high in tyrosine, tryptophan and phenylalanine, and low in asparagine, glutamine and glutamic acid residues, whereas for peptides of Type II EAR it is the other way around. Representative crystal structures present in the Protein Data Bank (PDB) of Type I EAR are PDB 1TZI and PDB 2DD8, while PDB 2FD6 and 2J4W are typical for Type II EAR. Type I EAR peptides share predicted propensities for being presented by MHC class I and class II complexes. The latter interaction possibly favors T cell-dependent antibody responses including IgG class switching. Peptides of Type II EAR are predicted not to be preferentially presented by MHC complexes, thus implying the involvement of T cell-independent IgG class switch mechanisms. The high extent of IgG immunoglobulin reactivity with human peptides implies that circulating IgG molecules are prone to bind to human protein/peptide structures under non-pathological, non-inflammatory conditions. A webserver for predicting EAR of peptide sequences is available at www.sysmed-immun.eu/EAR. Public Library of Science 2013-11-11 /pmc/articles/PMC3823795/ /pubmed/24244326 http://dx.doi.org/10.1371/journal.pone.0078605 Text en © 2013 Luštrek et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Luštrek, Mitja
Lorenz, Peter
Kreutzer, Michael
Qian, Zilliang
Steinbeck, Felix
Wu, Di
Born, Nadine
Ziems, Bjoern
Hecker, Michael
Blank, Miri
Shoenfeld, Yehuda
Cao, Zhiwei
Glocker, Michael O.
Li, Yixue
Fuellen, Georg
Thiesen, Hans-Jürgen
Epitope Predictions Indicate the Presence of Two Distinct Types of Epitope-Antibody-Reactivities Determined by Epitope Profiling of Intravenous Immunoglobulins
title Epitope Predictions Indicate the Presence of Two Distinct Types of Epitope-Antibody-Reactivities Determined by Epitope Profiling of Intravenous Immunoglobulins
title_full Epitope Predictions Indicate the Presence of Two Distinct Types of Epitope-Antibody-Reactivities Determined by Epitope Profiling of Intravenous Immunoglobulins
title_fullStr Epitope Predictions Indicate the Presence of Two Distinct Types of Epitope-Antibody-Reactivities Determined by Epitope Profiling of Intravenous Immunoglobulins
title_full_unstemmed Epitope Predictions Indicate the Presence of Two Distinct Types of Epitope-Antibody-Reactivities Determined by Epitope Profiling of Intravenous Immunoglobulins
title_short Epitope Predictions Indicate the Presence of Two Distinct Types of Epitope-Antibody-Reactivities Determined by Epitope Profiling of Intravenous Immunoglobulins
title_sort epitope predictions indicate the presence of two distinct types of epitope-antibody-reactivities determined by epitope profiling of intravenous immunoglobulins
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3823795/
https://www.ncbi.nlm.nih.gov/pubmed/24244326
http://dx.doi.org/10.1371/journal.pone.0078605
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