Cargando…

Increased efficiency of Campylobacter jejuni N-oligosaccharyltransferase PglB by structure-guided engineering

Conjugate vaccines belong to the most efficient preventive measures against life-threatening bacterial infections. Functional expression of N-oligosaccharyltransferase (N-OST) PglB of Campylobacter jejuni in Escherichia coli enables a simplified production of glycoconjugate vaccines in prokaryotic c...

Descripción completa

Detalles Bibliográficos
Autores principales: Ihssen, Julian, Haas, Jürgen, Kowarik, Michael, Wiesli, Luzia, Wacker, Michael, Schwede, Torsten, Thöny-Meyer, Linda
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4422122/
https://www.ncbi.nlm.nih.gov/pubmed/25833378
http://dx.doi.org/10.1098/rsob.140227
_version_ 1782370009176080384
author Ihssen, Julian
Haas, Jürgen
Kowarik, Michael
Wiesli, Luzia
Wacker, Michael
Schwede, Torsten
Thöny-Meyer, Linda
author_facet Ihssen, Julian
Haas, Jürgen
Kowarik, Michael
Wiesli, Luzia
Wacker, Michael
Schwede, Torsten
Thöny-Meyer, Linda
author_sort Ihssen, Julian
collection PubMed
description Conjugate vaccines belong to the most efficient preventive measures against life-threatening bacterial infections. Functional expression of N-oligosaccharyltransferase (N-OST) PglB of Campylobacter jejuni in Escherichia coli enables a simplified production of glycoconjugate vaccines in prokaryotic cells. Polysaccharide antigens of pathogenic bacteria can be covalently coupled to immunogenic acceptor proteins bearing engineered glycosylation sites. Transfer efficiency of PglB(Cj) is low for certain heterologous polysaccharide substrates. In this study, we increased glycosylation rates for Salmonella enterica sv. Typhimurium LT2 O antigen (which lacks N-acetyl sugars) and Staphylococcus aureus CP5 polysaccharides by structure-guided engineering of PglB. A three-dimensional homology model of membrane-associated PglB(Cj), docked to the natural C. jejuni N-glycan attached to the acceptor peptide, was used to identify potential sugar-interacting residues as targets for mutagenesis. Saturation mutagenesis of an active site residue yielded the enhancing mutation N311V, which facilitated fivefold to 11-fold increased in vivo glycosylation rates as determined by glycoprotein-specific ELISA. Further rounds of in vitro evolution led to a triple mutant S80R-Q287P-N311V enabling a yield improvement of S. enterica LT2 glycoconjugates by a factor of 16. Our results demonstrate that bacterial N-OST can be tailored to specific polysaccharide substrates by structure-guided protein engineering.
format Online
Article
Text
id pubmed-4422122
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher The Royal Society
record_format MEDLINE/PubMed
spelling pubmed-44221222015-05-18 Increased efficiency of Campylobacter jejuni N-oligosaccharyltransferase PglB by structure-guided engineering Ihssen, Julian Haas, Jürgen Kowarik, Michael Wiesli, Luzia Wacker, Michael Schwede, Torsten Thöny-Meyer, Linda Open Biol Research Conjugate vaccines belong to the most efficient preventive measures against life-threatening bacterial infections. Functional expression of N-oligosaccharyltransferase (N-OST) PglB of Campylobacter jejuni in Escherichia coli enables a simplified production of glycoconjugate vaccines in prokaryotic cells. Polysaccharide antigens of pathogenic bacteria can be covalently coupled to immunogenic acceptor proteins bearing engineered glycosylation sites. Transfer efficiency of PglB(Cj) is low for certain heterologous polysaccharide substrates. In this study, we increased glycosylation rates for Salmonella enterica sv. Typhimurium LT2 O antigen (which lacks N-acetyl sugars) and Staphylococcus aureus CP5 polysaccharides by structure-guided engineering of PglB. A three-dimensional homology model of membrane-associated PglB(Cj), docked to the natural C. jejuni N-glycan attached to the acceptor peptide, was used to identify potential sugar-interacting residues as targets for mutagenesis. Saturation mutagenesis of an active site residue yielded the enhancing mutation N311V, which facilitated fivefold to 11-fold increased in vivo glycosylation rates as determined by glycoprotein-specific ELISA. Further rounds of in vitro evolution led to a triple mutant S80R-Q287P-N311V enabling a yield improvement of S. enterica LT2 glycoconjugates by a factor of 16. Our results demonstrate that bacterial N-OST can be tailored to specific polysaccharide substrates by structure-guided protein engineering. The Royal Society 2015-04-01 /pmc/articles/PMC4422122/ /pubmed/25833378 http://dx.doi.org/10.1098/rsob.140227 Text en http://creativecommons.org/licenses/by/4.0/ © 2015 The Authors. Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/, which permits unrestricted use, provided the original author and source are credited.
spellingShingle Research
Ihssen, Julian
Haas, Jürgen
Kowarik, Michael
Wiesli, Luzia
Wacker, Michael
Schwede, Torsten
Thöny-Meyer, Linda
Increased efficiency of Campylobacter jejuni N-oligosaccharyltransferase PglB by structure-guided engineering
title Increased efficiency of Campylobacter jejuni N-oligosaccharyltransferase PglB by structure-guided engineering
title_full Increased efficiency of Campylobacter jejuni N-oligosaccharyltransferase PglB by structure-guided engineering
title_fullStr Increased efficiency of Campylobacter jejuni N-oligosaccharyltransferase PglB by structure-guided engineering
title_full_unstemmed Increased efficiency of Campylobacter jejuni N-oligosaccharyltransferase PglB by structure-guided engineering
title_short Increased efficiency of Campylobacter jejuni N-oligosaccharyltransferase PglB by structure-guided engineering
title_sort increased efficiency of campylobacter jejuni n-oligosaccharyltransferase pglb by structure-guided engineering
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4422122/
https://www.ncbi.nlm.nih.gov/pubmed/25833378
http://dx.doi.org/10.1098/rsob.140227
work_keys_str_mv AT ihssenjulian increasedefficiencyofcampylobacterjejuninoligosaccharyltransferasepglbbystructureguidedengineering
AT haasjurgen increasedefficiencyofcampylobacterjejuninoligosaccharyltransferasepglbbystructureguidedengineering
AT kowarikmichael increasedefficiencyofcampylobacterjejuninoligosaccharyltransferasepglbbystructureguidedengineering
AT wiesliluzia increasedefficiencyofcampylobacterjejuninoligosaccharyltransferasepglbbystructureguidedengineering
AT wackermichael increasedefficiencyofcampylobacterjejuninoligosaccharyltransferasepglbbystructureguidedengineering
AT schwedetorsten increasedefficiencyofcampylobacterjejuninoligosaccharyltransferasepglbbystructureguidedengineering
AT thonymeyerlinda increasedefficiencyofcampylobacterjejuninoligosaccharyltransferasepglbbystructureguidedengineering