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Tannerella forsythia strains display different cell-surface nonulosonic acids: biosynthetic pathway characterization and first insight into biological implications

Tannerella forsythia is an anaerobic, Gram-negative periodontal pathogen. A unique O-linked oligosaccharide decorates the bacterium's cell surface proteins and was shown to modulate the host immune response. In our study, we investigated the biosynthesis of the nonulosonic acid (NulO) present a...

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Autores principales: Friedrich, Valentin, Janesch, Bettina, Windwarder, Markus, Maresch, Daniel, Braun, Matthias L, Megson, Zoë A, Vinogradov, Evgeny, Goneau, Marie-France, Sharma, Ashu, Altmann, Friedrich, Messner, Paul, Schoenhofen, Ian C, Schäffer, Christina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5378307/
https://www.ncbi.nlm.nih.gov/pubmed/27986835
http://dx.doi.org/10.1093/glycob/cww129
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author Friedrich, Valentin
Janesch, Bettina
Windwarder, Markus
Maresch, Daniel
Braun, Matthias L
Megson, Zoë A
Vinogradov, Evgeny
Goneau, Marie-France
Sharma, Ashu
Altmann, Friedrich
Messner, Paul
Schoenhofen, Ian C
Schäffer, Christina
author_facet Friedrich, Valentin
Janesch, Bettina
Windwarder, Markus
Maresch, Daniel
Braun, Matthias L
Megson, Zoë A
Vinogradov, Evgeny
Goneau, Marie-France
Sharma, Ashu
Altmann, Friedrich
Messner, Paul
Schoenhofen, Ian C
Schäffer, Christina
author_sort Friedrich, Valentin
collection PubMed
description Tannerella forsythia is an anaerobic, Gram-negative periodontal pathogen. A unique O-linked oligosaccharide decorates the bacterium's cell surface proteins and was shown to modulate the host immune response. In our study, we investigated the biosynthesis of the nonulosonic acid (NulO) present at the terminal position of this glycan. A bioinformatic analysis of T. forsythia genomes revealed a gene locus for the synthesis of pseudaminic acid (Pse) in the type strain ATCC 43037 while strains FDC 92A2 and UB4 possess a locus for the synthesis of legionaminic acid (Leg) instead. In contrast to the NulO in ATCC 43037, which has been previously identified as a Pse derivative (5-N-acetimidoyl-7-N-glyceroyl-3,5,7,9-tetradeoxy-l-glycero-l-manno-NulO), glycan analysis of strain UB4 performed in this study indicated a 350-Da, possibly N-glycolyl Leg (3,5,7,9-tetradeoxy-d-glycero-d-galacto-NulO) derivative with unknown C5,7 N-acyl moieties. We have expressed, purified and characterized enzymes of both NulO pathways to confirm these genes’ functions. Using capillary electrophoresis (CE), CE–mass spectrometry and NMR spectroscopy, our studies revealed that Pse biosynthesis in ATCC 43037 essentially follows the UDP-sugar route described in Helicobacter pylori, while the pathway in strain FDC 92A2 corresponds to Leg biosynthesis in Campylobacter jejuni involving GDP-sugar intermediates. To demonstrate that the NulO biosynthesis enzymes are functional in vivo, we created knockout mutants resulting in glycans lacking the respective NulO. Compared to the wild-type strains, the mutants exhibited significantly reduced biofilm formation on mucin-coated surfaces, suggestive of their involvement in host-pathogen interactions or host survival. This study contributes to understanding possible biological roles of bacterial NulOs.
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spelling pubmed-53783072017-04-03 Tannerella forsythia strains display different cell-surface nonulosonic acids: biosynthetic pathway characterization and first insight into biological implications Friedrich, Valentin Janesch, Bettina Windwarder, Markus Maresch, Daniel Braun, Matthias L Megson, Zoë A Vinogradov, Evgeny Goneau, Marie-France Sharma, Ashu Altmann, Friedrich Messner, Paul Schoenhofen, Ian C Schäffer, Christina Glycobiology Original articles Tannerella forsythia is an anaerobic, Gram-negative periodontal pathogen. A unique O-linked oligosaccharide decorates the bacterium's cell surface proteins and was shown to modulate the host immune response. In our study, we investigated the biosynthesis of the nonulosonic acid (NulO) present at the terminal position of this glycan. A bioinformatic analysis of T. forsythia genomes revealed a gene locus for the synthesis of pseudaminic acid (Pse) in the type strain ATCC 43037 while strains FDC 92A2 and UB4 possess a locus for the synthesis of legionaminic acid (Leg) instead. In contrast to the NulO in ATCC 43037, which has been previously identified as a Pse derivative (5-N-acetimidoyl-7-N-glyceroyl-3,5,7,9-tetradeoxy-l-glycero-l-manno-NulO), glycan analysis of strain UB4 performed in this study indicated a 350-Da, possibly N-glycolyl Leg (3,5,7,9-tetradeoxy-d-glycero-d-galacto-NulO) derivative with unknown C5,7 N-acyl moieties. We have expressed, purified and characterized enzymes of both NulO pathways to confirm these genes’ functions. Using capillary electrophoresis (CE), CE–mass spectrometry and NMR spectroscopy, our studies revealed that Pse biosynthesis in ATCC 43037 essentially follows the UDP-sugar route described in Helicobacter pylori, while the pathway in strain FDC 92A2 corresponds to Leg biosynthesis in Campylobacter jejuni involving GDP-sugar intermediates. To demonstrate that the NulO biosynthesis enzymes are functional in vivo, we created knockout mutants resulting in glycans lacking the respective NulO. Compared to the wild-type strains, the mutants exhibited significantly reduced biofilm formation on mucin-coated surfaces, suggestive of their involvement in host-pathogen interactions or host survival. This study contributes to understanding possible biological roles of bacterial NulOs. Oxford University Press 2017-04 2017-01-19 /pmc/articles/PMC5378307/ /pubmed/27986835 http://dx.doi.org/10.1093/glycob/cww129 Text en © The Author 2017. Published by Oxford University Press. http://creativecommons.org/licenses/by-nc/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Original articles
Friedrich, Valentin
Janesch, Bettina
Windwarder, Markus
Maresch, Daniel
Braun, Matthias L
Megson, Zoë A
Vinogradov, Evgeny
Goneau, Marie-France
Sharma, Ashu
Altmann, Friedrich
Messner, Paul
Schoenhofen, Ian C
Schäffer, Christina
Tannerella forsythia strains display different cell-surface nonulosonic acids: biosynthetic pathway characterization and first insight into biological implications
title Tannerella forsythia strains display different cell-surface nonulosonic acids: biosynthetic pathway characterization and first insight into biological implications
title_full Tannerella forsythia strains display different cell-surface nonulosonic acids: biosynthetic pathway characterization and first insight into biological implications
title_fullStr Tannerella forsythia strains display different cell-surface nonulosonic acids: biosynthetic pathway characterization and first insight into biological implications
title_full_unstemmed Tannerella forsythia strains display different cell-surface nonulosonic acids: biosynthetic pathway characterization and first insight into biological implications
title_short Tannerella forsythia strains display different cell-surface nonulosonic acids: biosynthetic pathway characterization and first insight into biological implications
title_sort tannerella forsythia strains display different cell-surface nonulosonic acids: biosynthetic pathway characterization and first insight into biological implications
topic Original articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5378307/
https://www.ncbi.nlm.nih.gov/pubmed/27986835
http://dx.doi.org/10.1093/glycob/cww129
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