Cargando…

Analysis of the diversity of the glycoside hydrolase family 130 in mammal gut microbiomes reveals a novel mannoside-phosphorylase function

Mannoside phosphorylases are involved in the intracellular metabolization of mannooligosaccharides, and are also useful enzymes for the in vitro synthesis of oligosaccharides. They are found in glycoside hydrolase family GH130. Here we report on an analysis of 6308 GH130 sequences, including 4714 fr...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Ao, Laville, Elisabeth, Tarquis, Laurence, Lombard, Vincent, Ropartz, David, Terrapon, Nicolas, Henrissat, Bernard, Guieysse, David, Esque, Jeremy, Durand, Julien, Morgavi, Diego P., Potocki-Veronese, Gabrielle
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Microbiology Society 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7660257/
https://www.ncbi.nlm.nih.gov/pubmed/32667876
http://dx.doi.org/10.1099/mgen.0.000404
_version_ 1783608973366132736
author Li, Ao
Laville, Elisabeth
Tarquis, Laurence
Lombard, Vincent
Ropartz, David
Terrapon, Nicolas
Henrissat, Bernard
Guieysse, David
Esque, Jeremy
Durand, Julien
Morgavi, Diego P.
Potocki-Veronese, Gabrielle
author_facet Li, Ao
Laville, Elisabeth
Tarquis, Laurence
Lombard, Vincent
Ropartz, David
Terrapon, Nicolas
Henrissat, Bernard
Guieysse, David
Esque, Jeremy
Durand, Julien
Morgavi, Diego P.
Potocki-Veronese, Gabrielle
author_sort Li, Ao
collection PubMed
description Mannoside phosphorylases are involved in the intracellular metabolization of mannooligosaccharides, and are also useful enzymes for the in vitro synthesis of oligosaccharides. They are found in glycoside hydrolase family GH130. Here we report on an analysis of 6308 GH130 sequences, including 4714 from the human, bovine, porcine and murine microbiomes. Using sequence similarity networks, we divided the diversity of sequences into 15 mostly isofunctional meta-nodes; of these, 9 contained no experimentally characterized member. By examining the multiple sequence alignments in each meta-node, we predicted the determinants of the phosphorolytic mechanism and linkage specificity. We thus hypothesized that eight uncharacterized meta-nodes would be phosphorylases. These sequences are characterized by the absence of signal peptides and of the catalytic base. Those sequences with the conserved E/K, E/R and Y/R pairs of residues involved in substrate binding would target β-1,2-, β-1,3- and β-1,4-linked mannosyl residues, respectively. These predictions were tested by characterizing members of three of the uncharacterized meta-nodes from gut bacteria. We discovered the first known β-1,4-mannosyl-glucuronic acid phosphorylase, which targets a motif of the Shigella lipopolysaccharide O-antigen. This work uncovers a reliable strategy for the discovery of novel mannoside-phosphorylases, reveals possible interactions between gut bacteria, and identifies a biotechnological tool for the synthesis of antigenic oligosaccharides.
format Online
Article
Text
id pubmed-7660257
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Microbiology Society
record_format MEDLINE/PubMed
spelling pubmed-76602572020-11-13 Analysis of the diversity of the glycoside hydrolase family 130 in mammal gut microbiomes reveals a novel mannoside-phosphorylase function Li, Ao Laville, Elisabeth Tarquis, Laurence Lombard, Vincent Ropartz, David Terrapon, Nicolas Henrissat, Bernard Guieysse, David Esque, Jeremy Durand, Julien Morgavi, Diego P. Potocki-Veronese, Gabrielle Microb Genom Research Article Mannoside phosphorylases are involved in the intracellular metabolization of mannooligosaccharides, and are also useful enzymes for the in vitro synthesis of oligosaccharides. They are found in glycoside hydrolase family GH130. Here we report on an analysis of 6308 GH130 sequences, including 4714 from the human, bovine, porcine and murine microbiomes. Using sequence similarity networks, we divided the diversity of sequences into 15 mostly isofunctional meta-nodes; of these, 9 contained no experimentally characterized member. By examining the multiple sequence alignments in each meta-node, we predicted the determinants of the phosphorolytic mechanism and linkage specificity. We thus hypothesized that eight uncharacterized meta-nodes would be phosphorylases. These sequences are characterized by the absence of signal peptides and of the catalytic base. Those sequences with the conserved E/K, E/R and Y/R pairs of residues involved in substrate binding would target β-1,2-, β-1,3- and β-1,4-linked mannosyl residues, respectively. These predictions were tested by characterizing members of three of the uncharacterized meta-nodes from gut bacteria. We discovered the first known β-1,4-mannosyl-glucuronic acid phosphorylase, which targets a motif of the Shigella lipopolysaccharide O-antigen. This work uncovers a reliable strategy for the discovery of novel mannoside-phosphorylases, reveals possible interactions between gut bacteria, and identifies a biotechnological tool for the synthesis of antigenic oligosaccharides. Microbiology Society 2020-07-15 /pmc/articles/PMC7660257/ /pubmed/32667876 http://dx.doi.org/10.1099/mgen.0.000404 Text en © 2020 The Authors http://creativecommons.org/licenses/by-nc/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution NonCommercial License.
spellingShingle Research Article
Li, Ao
Laville, Elisabeth
Tarquis, Laurence
Lombard, Vincent
Ropartz, David
Terrapon, Nicolas
Henrissat, Bernard
Guieysse, David
Esque, Jeremy
Durand, Julien
Morgavi, Diego P.
Potocki-Veronese, Gabrielle
Analysis of the diversity of the glycoside hydrolase family 130 in mammal gut microbiomes reveals a novel mannoside-phosphorylase function
title Analysis of the diversity of the glycoside hydrolase family 130 in mammal gut microbiomes reveals a novel mannoside-phosphorylase function
title_full Analysis of the diversity of the glycoside hydrolase family 130 in mammal gut microbiomes reveals a novel mannoside-phosphorylase function
title_fullStr Analysis of the diversity of the glycoside hydrolase family 130 in mammal gut microbiomes reveals a novel mannoside-phosphorylase function
title_full_unstemmed Analysis of the diversity of the glycoside hydrolase family 130 in mammal gut microbiomes reveals a novel mannoside-phosphorylase function
title_short Analysis of the diversity of the glycoside hydrolase family 130 in mammal gut microbiomes reveals a novel mannoside-phosphorylase function
title_sort analysis of the diversity of the glycoside hydrolase family 130 in mammal gut microbiomes reveals a novel mannoside-phosphorylase function
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7660257/
https://www.ncbi.nlm.nih.gov/pubmed/32667876
http://dx.doi.org/10.1099/mgen.0.000404
work_keys_str_mv AT liao analysisofthediversityoftheglycosidehydrolasefamily130inmammalgutmicrobiomesrevealsanovelmannosidephosphorylasefunction
AT lavilleelisabeth analysisofthediversityoftheglycosidehydrolasefamily130inmammalgutmicrobiomesrevealsanovelmannosidephosphorylasefunction
AT tarquislaurence analysisofthediversityoftheglycosidehydrolasefamily130inmammalgutmicrobiomesrevealsanovelmannosidephosphorylasefunction
AT lombardvincent analysisofthediversityoftheglycosidehydrolasefamily130inmammalgutmicrobiomesrevealsanovelmannosidephosphorylasefunction
AT ropartzdavid analysisofthediversityoftheglycosidehydrolasefamily130inmammalgutmicrobiomesrevealsanovelmannosidephosphorylasefunction
AT terraponnicolas analysisofthediversityoftheglycosidehydrolasefamily130inmammalgutmicrobiomesrevealsanovelmannosidephosphorylasefunction
AT henrissatbernard analysisofthediversityoftheglycosidehydrolasefamily130inmammalgutmicrobiomesrevealsanovelmannosidephosphorylasefunction
AT guieyssedavid analysisofthediversityoftheglycosidehydrolasefamily130inmammalgutmicrobiomesrevealsanovelmannosidephosphorylasefunction
AT esquejeremy analysisofthediversityoftheglycosidehydrolasefamily130inmammalgutmicrobiomesrevealsanovelmannosidephosphorylasefunction
AT durandjulien analysisofthediversityoftheglycosidehydrolasefamily130inmammalgutmicrobiomesrevealsanovelmannosidephosphorylasefunction
AT morgavidiegop analysisofthediversityoftheglycosidehydrolasefamily130inmammalgutmicrobiomesrevealsanovelmannosidephosphorylasefunction
AT potockiveronesegabrielle analysisofthediversityoftheglycosidehydrolasefamily130inmammalgutmicrobiomesrevealsanovelmannosidephosphorylasefunction