Cargando…

Galactomannan Catabolism Conferred by a Polysaccharide Utilization Locus of Bacteroides ovatus: ENZYME SYNERGY AND CRYSTAL STRUCTURE OF A β-MANNANASE

A recently identified polysaccharide utilization locus (PUL) from Bacteroides ovatus ATCC 8483 is transcriptionally up-regulated during growth on galacto- and glucomannans. It encodes two glycoside hydrolase family 26 (GH26) β-mannanases, BoMan26A and BoMan26B, and a GH36 α-galactosidase, BoGal36A....

Descripción completa

Detalles Bibliográficos
Autores principales: Bågenholm, Viktoria, Reddy, Sumitha K., Bouraoui, Hanene, Morrill, Johan, Kulcinskaja, Evelina, Bahr, Constance M., Aurelius, Oskar, Rogers, Theresa, Xiao, Yao, Logan, Derek T., Martens, Eric C., Koropatkin, Nicole M., Stålbrand, Henrik
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5217682/
https://www.ncbi.nlm.nih.gov/pubmed/27872187
http://dx.doi.org/10.1074/jbc.M116.746438
_version_ 1782492155031322624
author Bågenholm, Viktoria
Reddy, Sumitha K.
Bouraoui, Hanene
Morrill, Johan
Kulcinskaja, Evelina
Bahr, Constance M.
Aurelius, Oskar
Rogers, Theresa
Xiao, Yao
Logan, Derek T.
Martens, Eric C.
Koropatkin, Nicole M.
Stålbrand, Henrik
author_facet Bågenholm, Viktoria
Reddy, Sumitha K.
Bouraoui, Hanene
Morrill, Johan
Kulcinskaja, Evelina
Bahr, Constance M.
Aurelius, Oskar
Rogers, Theresa
Xiao, Yao
Logan, Derek T.
Martens, Eric C.
Koropatkin, Nicole M.
Stålbrand, Henrik
author_sort Bågenholm, Viktoria
collection PubMed
description A recently identified polysaccharide utilization locus (PUL) from Bacteroides ovatus ATCC 8483 is transcriptionally up-regulated during growth on galacto- and glucomannans. It encodes two glycoside hydrolase family 26 (GH26) β-mannanases, BoMan26A and BoMan26B, and a GH36 α-galactosidase, BoGal36A. The PUL also includes two glycan-binding proteins, confirmed by β-mannan affinity electrophoresis. When this PUL was deleted, B. ovatus was no longer able to grow on locust bean galactomannan. BoMan26A primarily formed mannobiose from mannan polysaccharides. BoMan26B had higher activity on galactomannan with a high degree of galactosyl substitution and was shown to be endo-acting generating a more diverse mixture of oligosaccharides, including mannobiose. Of the two β-mannanases, only BoMan26B hydrolyzed galactoglucomannan. A crystal structure of BoMan26A revealed a similar structure to the exo-mannobiohydrolase CjMan26C from Cellvibrio japonicus, with a conserved glycone region (−1 and −2 subsites), including a conserved loop closing the active site beyond subsite −2. Analysis of cellular location by immunolabeling and fluorescence microscopy suggests that BoMan26B is surface-exposed and associated with the outer membrane, although BoMan26A and BoGal36A are likely periplasmic. In light of the cellular location and the biochemical properties of the two characterized β-mannanases, we propose a scheme of sequential action by the glycoside hydrolases encoded by the β-mannan PUL and involved in the β-mannan utilization pathway in B. ovatus. The outer membrane-associated BoMan26B initially acts on the polysaccharide galactomannan, producing comparably large oligosaccharide fragments. Galactomanno-oligosaccharides are further processed in the periplasm, degalactosylated by BoGal36A, and subsequently hydrolyzed into mainly mannobiose by the β-mannanase BoMan26A.
format Online
Article
Text
id pubmed-5217682
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher American Society for Biochemistry and Molecular Biology
record_format MEDLINE/PubMed
spelling pubmed-52176822017-01-13 Galactomannan Catabolism Conferred by a Polysaccharide Utilization Locus of Bacteroides ovatus: ENZYME SYNERGY AND CRYSTAL STRUCTURE OF A β-MANNANASE Bågenholm, Viktoria Reddy, Sumitha K. Bouraoui, Hanene Morrill, Johan Kulcinskaja, Evelina Bahr, Constance M. Aurelius, Oskar Rogers, Theresa Xiao, Yao Logan, Derek T. Martens, Eric C. Koropatkin, Nicole M. Stålbrand, Henrik J Biol Chem Enzymology A recently identified polysaccharide utilization locus (PUL) from Bacteroides ovatus ATCC 8483 is transcriptionally up-regulated during growth on galacto- and glucomannans. It encodes two glycoside hydrolase family 26 (GH26) β-mannanases, BoMan26A and BoMan26B, and a GH36 α-galactosidase, BoGal36A. The PUL also includes two glycan-binding proteins, confirmed by β-mannan affinity electrophoresis. When this PUL was deleted, B. ovatus was no longer able to grow on locust bean galactomannan. BoMan26A primarily formed mannobiose from mannan polysaccharides. BoMan26B had higher activity on galactomannan with a high degree of galactosyl substitution and was shown to be endo-acting generating a more diverse mixture of oligosaccharides, including mannobiose. Of the two β-mannanases, only BoMan26B hydrolyzed galactoglucomannan. A crystal structure of BoMan26A revealed a similar structure to the exo-mannobiohydrolase CjMan26C from Cellvibrio japonicus, with a conserved glycone region (−1 and −2 subsites), including a conserved loop closing the active site beyond subsite −2. Analysis of cellular location by immunolabeling and fluorescence microscopy suggests that BoMan26B is surface-exposed and associated with the outer membrane, although BoMan26A and BoGal36A are likely periplasmic. In light of the cellular location and the biochemical properties of the two characterized β-mannanases, we propose a scheme of sequential action by the glycoside hydrolases encoded by the β-mannan PUL and involved in the β-mannan utilization pathway in B. ovatus. The outer membrane-associated BoMan26B initially acts on the polysaccharide galactomannan, producing comparably large oligosaccharide fragments. Galactomanno-oligosaccharides are further processed in the periplasm, degalactosylated by BoGal36A, and subsequently hydrolyzed into mainly mannobiose by the β-mannanase BoMan26A. American Society for Biochemistry and Molecular Biology 2017-01-06 2016-11-21 /pmc/articles/PMC5217682/ /pubmed/27872187 http://dx.doi.org/10.1074/jbc.M116.746438 Text en © 2017 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version free via Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle Enzymology
Bågenholm, Viktoria
Reddy, Sumitha K.
Bouraoui, Hanene
Morrill, Johan
Kulcinskaja, Evelina
Bahr, Constance M.
Aurelius, Oskar
Rogers, Theresa
Xiao, Yao
Logan, Derek T.
Martens, Eric C.
Koropatkin, Nicole M.
Stålbrand, Henrik
Galactomannan Catabolism Conferred by a Polysaccharide Utilization Locus of Bacteroides ovatus: ENZYME SYNERGY AND CRYSTAL STRUCTURE OF A β-MANNANASE
title Galactomannan Catabolism Conferred by a Polysaccharide Utilization Locus of Bacteroides ovatus: ENZYME SYNERGY AND CRYSTAL STRUCTURE OF A β-MANNANASE
title_full Galactomannan Catabolism Conferred by a Polysaccharide Utilization Locus of Bacteroides ovatus: ENZYME SYNERGY AND CRYSTAL STRUCTURE OF A β-MANNANASE
title_fullStr Galactomannan Catabolism Conferred by a Polysaccharide Utilization Locus of Bacteroides ovatus: ENZYME SYNERGY AND CRYSTAL STRUCTURE OF A β-MANNANASE
title_full_unstemmed Galactomannan Catabolism Conferred by a Polysaccharide Utilization Locus of Bacteroides ovatus: ENZYME SYNERGY AND CRYSTAL STRUCTURE OF A β-MANNANASE
title_short Galactomannan Catabolism Conferred by a Polysaccharide Utilization Locus of Bacteroides ovatus: ENZYME SYNERGY AND CRYSTAL STRUCTURE OF A β-MANNANASE
title_sort galactomannan catabolism conferred by a polysaccharide utilization locus of bacteroides ovatus: enzyme synergy and crystal structure of a β-mannanase
topic Enzymology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5217682/
https://www.ncbi.nlm.nih.gov/pubmed/27872187
http://dx.doi.org/10.1074/jbc.M116.746438
work_keys_str_mv AT bagenholmviktoria galactomannancatabolismconferredbyapolysaccharideutilizationlocusofbacteroidesovatusenzymesynergyandcrystalstructureofabmannanase
AT reddysumithak galactomannancatabolismconferredbyapolysaccharideutilizationlocusofbacteroidesovatusenzymesynergyandcrystalstructureofabmannanase
AT bouraouihanene galactomannancatabolismconferredbyapolysaccharideutilizationlocusofbacteroidesovatusenzymesynergyandcrystalstructureofabmannanase
AT morrilljohan galactomannancatabolismconferredbyapolysaccharideutilizationlocusofbacteroidesovatusenzymesynergyandcrystalstructureofabmannanase
AT kulcinskajaevelina galactomannancatabolismconferredbyapolysaccharideutilizationlocusofbacteroidesovatusenzymesynergyandcrystalstructureofabmannanase
AT bahrconstancem galactomannancatabolismconferredbyapolysaccharideutilizationlocusofbacteroidesovatusenzymesynergyandcrystalstructureofabmannanase
AT aureliusoskar galactomannancatabolismconferredbyapolysaccharideutilizationlocusofbacteroidesovatusenzymesynergyandcrystalstructureofabmannanase
AT rogerstheresa galactomannancatabolismconferredbyapolysaccharideutilizationlocusofbacteroidesovatusenzymesynergyandcrystalstructureofabmannanase
AT xiaoyao galactomannancatabolismconferredbyapolysaccharideutilizationlocusofbacteroidesovatusenzymesynergyandcrystalstructureofabmannanase
AT loganderekt galactomannancatabolismconferredbyapolysaccharideutilizationlocusofbacteroidesovatusenzymesynergyandcrystalstructureofabmannanase
AT martensericc galactomannancatabolismconferredbyapolysaccharideutilizationlocusofbacteroidesovatusenzymesynergyandcrystalstructureofabmannanase
AT koropatkinnicolem galactomannancatabolismconferredbyapolysaccharideutilizationlocusofbacteroidesovatusenzymesynergyandcrystalstructureofabmannanase
AT stalbrandhenrik galactomannancatabolismconferredbyapolysaccharideutilizationlocusofbacteroidesovatusenzymesynergyandcrystalstructureofabmannanase