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Confident Assignment of Site-Specific Glycosylation in Complex Glycoproteins in a Single Step

[Image: see text] A glycoprotein may contain several sites of glycosylation, each of which is heterogeneous. As a consequence of glycoform diversity and signal suppression from nonglycosylated peptides that ionize more efficiently, typical reversed-phase LC–MS and bottom–up proteomics database searc...

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Autores principales: Khatri, Kshitij, Staples, Gregory O., Leymarie, Nancy, Leon, Deborah R., Turiák, Lilla, Huang, Yu, Yip, Shun, Hu, Han, Heckendorf, Christian F., Zaia, Joseph
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4184449/
https://www.ncbi.nlm.nih.gov/pubmed/25153361
http://dx.doi.org/10.1021/pr500506z
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author Khatri, Kshitij
Staples, Gregory O.
Leymarie, Nancy
Leon, Deborah R.
Turiák, Lilla
Huang, Yu
Yip, Shun
Hu, Han
Heckendorf, Christian F.
Zaia, Joseph
author_facet Khatri, Kshitij
Staples, Gregory O.
Leymarie, Nancy
Leon, Deborah R.
Turiák, Lilla
Huang, Yu
Yip, Shun
Hu, Han
Heckendorf, Christian F.
Zaia, Joseph
author_sort Khatri, Kshitij
collection PubMed
description [Image: see text] A glycoprotein may contain several sites of glycosylation, each of which is heterogeneous. As a consequence of glycoform diversity and signal suppression from nonglycosylated peptides that ionize more efficiently, typical reversed-phase LC–MS and bottom–up proteomics database searching workflows do not perform well for identification of site-specific glycosylation for complex glycoproteins. We present an LC–MS system for enrichment, separation, and analysis of glycopeptides from complex glycoproteins (>4 N-glycosylation sequons) in a single step. This system uses an online HILIC enrichment trap prior to reversed-phase C18-MS analysis. We demonstrated the effectiveness of the system using a set of glycoproteins including human transferrin (2 sequons), human alpha-1-acid glycoprotein (5 sequons), and influenza A virus hemagglutinin (9 sequons). The online enrichment renders glycopeptides the most abundant ions detected, thereby facilitating the generation of high-quality data-dependent tandem mass spectra. The tandem mass spectra exhibited product ions from both glycan and peptide backbone dissociation for a majority of the glycopeptides tested using collisionally activated dissociation that served to confidently assign site-specific glycosylation. We demonstrated the value of our system to define site-specific glycosylation using a hemagglutinin containing 9 N-glycosylation sequons from a single HILIC-C18-MS acquisition.
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spelling pubmed-41844492015-08-25 Confident Assignment of Site-Specific Glycosylation in Complex Glycoproteins in a Single Step Khatri, Kshitij Staples, Gregory O. Leymarie, Nancy Leon, Deborah R. Turiák, Lilla Huang, Yu Yip, Shun Hu, Han Heckendorf, Christian F. Zaia, Joseph J Proteome Res [Image: see text] A glycoprotein may contain several sites of glycosylation, each of which is heterogeneous. As a consequence of glycoform diversity and signal suppression from nonglycosylated peptides that ionize more efficiently, typical reversed-phase LC–MS and bottom–up proteomics database searching workflows do not perform well for identification of site-specific glycosylation for complex glycoproteins. We present an LC–MS system for enrichment, separation, and analysis of glycopeptides from complex glycoproteins (>4 N-glycosylation sequons) in a single step. This system uses an online HILIC enrichment trap prior to reversed-phase C18-MS analysis. We demonstrated the effectiveness of the system using a set of glycoproteins including human transferrin (2 sequons), human alpha-1-acid glycoprotein (5 sequons), and influenza A virus hemagglutinin (9 sequons). The online enrichment renders glycopeptides the most abundant ions detected, thereby facilitating the generation of high-quality data-dependent tandem mass spectra. The tandem mass spectra exhibited product ions from both glycan and peptide backbone dissociation for a majority of the glycopeptides tested using collisionally activated dissociation that served to confidently assign site-specific glycosylation. We demonstrated the value of our system to define site-specific glycosylation using a hemagglutinin containing 9 N-glycosylation sequons from a single HILIC-C18-MS acquisition. American Chemical Society 2014-08-25 2014-10-03 /pmc/articles/PMC4184449/ /pubmed/25153361 http://dx.doi.org/10.1021/pr500506z Text en Copyright © 2014 American Chemical Society Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html)
spellingShingle Khatri, Kshitij
Staples, Gregory O.
Leymarie, Nancy
Leon, Deborah R.
Turiák, Lilla
Huang, Yu
Yip, Shun
Hu, Han
Heckendorf, Christian F.
Zaia, Joseph
Confident Assignment of Site-Specific Glycosylation in Complex Glycoproteins in a Single Step
title Confident Assignment of Site-Specific Glycosylation in Complex Glycoproteins in a Single Step
title_full Confident Assignment of Site-Specific Glycosylation in Complex Glycoproteins in a Single Step
title_fullStr Confident Assignment of Site-Specific Glycosylation in Complex Glycoproteins in a Single Step
title_full_unstemmed Confident Assignment of Site-Specific Glycosylation in Complex Glycoproteins in a Single Step
title_short Confident Assignment of Site-Specific Glycosylation in Complex Glycoproteins in a Single Step
title_sort confident assignment of site-specific glycosylation in complex glycoproteins in a single step
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4184449/
https://www.ncbi.nlm.nih.gov/pubmed/25153361
http://dx.doi.org/10.1021/pr500506z
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