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Novel thermostable GH5_34 arabinoxylanase with an atypical CBM6 displays activity on oat fiber xylan for prebiotic production

Carbohydrate active enzymes are valuable tools in cereal processing to valorize underutilized side streams. By solubilizing hemicellulose and modifying the fiber structure, novel food products with increased nutritional value can be created. In this study, a novel GH5_34 subfamily arabinoxylanase fr...

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Autores principales: Norlander, Siri, Jasilionis, Andrius, Ara, Zubaida Gulshan Kazi, Grey, Carl, Adlercreutz, Patrick, Karlsson, Eva Nordberg
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10284105/
https://www.ncbi.nlm.nih.gov/pubmed/36504389
http://dx.doi.org/10.1093/glycob/cwac080
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author Norlander, Siri
Jasilionis, Andrius
Ara, Zubaida Gulshan Kazi
Grey, Carl
Adlercreutz, Patrick
Karlsson, Eva Nordberg
author_facet Norlander, Siri
Jasilionis, Andrius
Ara, Zubaida Gulshan Kazi
Grey, Carl
Adlercreutz, Patrick
Karlsson, Eva Nordberg
author_sort Norlander, Siri
collection PubMed
description Carbohydrate active enzymes are valuable tools in cereal processing to valorize underutilized side streams. By solubilizing hemicellulose and modifying the fiber structure, novel food products with increased nutritional value can be created. In this study, a novel GH5_34 subfamily arabinoxylanase from Herbinix hemicellulosilytica, HhXyn5A, was identified, produced and extensively characterized, for the intended exploitation in cereal processing to solubilize potential prebiotic fibers: arabinoxylo-oligosaccharides. The purified two-domain HhXyn5A (catalytic domain and CBM6) demonstrated high storage stability, showed a melting temperature T(m) of 61°C and optimum reaction conditions were determined to 55°C and pH 6.5 on wheat arabinoxylan. HhXyn5A demonstrated activity on various commercial cereal arabinoxylans and produced prebiotic AXOS, whereas the sole catalytic domain of HhXyn5A did not demonstrate detectable activity. HhXyn5A demonstrated no side activity on oat β-glucan. In contrast to the commercially available homolog CtXyn5A, HhXyn5A gave a more specific HPAEC–PAD oligosaccharide product profile when using wheat arabinoxylan and alkali extracted oat bran fibers as the substrate. Results from multiple sequence alignment of GH5_34 enzymes, homology modeling of HhXyn5A and docking simulations with ligands XXXA(3), XXXA(3)XX and X(5) concluded that the active site of HhXyl5A catalytic domain is highly conserved and can accommodate both shorter and longer ligands. However, significant structural dissimilarities between HhXyn5A and CtXyn5A in the binding cleft of CBM6, due to the lack of important ligand-interacting residues, is suggested to cause the observed differences in substrate specificity and product formation.
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spelling pubmed-102841052023-06-22 Novel thermostable GH5_34 arabinoxylanase with an atypical CBM6 displays activity on oat fiber xylan for prebiotic production Norlander, Siri Jasilionis, Andrius Ara, Zubaida Gulshan Kazi Grey, Carl Adlercreutz, Patrick Karlsson, Eva Nordberg Glycobiology Original Article Carbohydrate active enzymes are valuable tools in cereal processing to valorize underutilized side streams. By solubilizing hemicellulose and modifying the fiber structure, novel food products with increased nutritional value can be created. In this study, a novel GH5_34 subfamily arabinoxylanase from Herbinix hemicellulosilytica, HhXyn5A, was identified, produced and extensively characterized, for the intended exploitation in cereal processing to solubilize potential prebiotic fibers: arabinoxylo-oligosaccharides. The purified two-domain HhXyn5A (catalytic domain and CBM6) demonstrated high storage stability, showed a melting temperature T(m) of 61°C and optimum reaction conditions were determined to 55°C and pH 6.5 on wheat arabinoxylan. HhXyn5A demonstrated activity on various commercial cereal arabinoxylans and produced prebiotic AXOS, whereas the sole catalytic domain of HhXyn5A did not demonstrate detectable activity. HhXyn5A demonstrated no side activity on oat β-glucan. In contrast to the commercially available homolog CtXyn5A, HhXyn5A gave a more specific HPAEC–PAD oligosaccharide product profile when using wheat arabinoxylan and alkali extracted oat bran fibers as the substrate. Results from multiple sequence alignment of GH5_34 enzymes, homology modeling of HhXyn5A and docking simulations with ligands XXXA(3), XXXA(3)XX and X(5) concluded that the active site of HhXyl5A catalytic domain is highly conserved and can accommodate both shorter and longer ligands. However, significant structural dissimilarities between HhXyn5A and CtXyn5A in the binding cleft of CBM6, due to the lack of important ligand-interacting residues, is suggested to cause the observed differences in substrate specificity and product formation. Oxford University Press 2022-12-06 /pmc/articles/PMC10284105/ /pubmed/36504389 http://dx.doi.org/10.1093/glycob/cwac080 Text en © The Author(s) 2022. Published by Oxford University Press. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
Norlander, Siri
Jasilionis, Andrius
Ara, Zubaida Gulshan Kazi
Grey, Carl
Adlercreutz, Patrick
Karlsson, Eva Nordberg
Novel thermostable GH5_34 arabinoxylanase with an atypical CBM6 displays activity on oat fiber xylan for prebiotic production
title Novel thermostable GH5_34 arabinoxylanase with an atypical CBM6 displays activity on oat fiber xylan for prebiotic production
title_full Novel thermostable GH5_34 arabinoxylanase with an atypical CBM6 displays activity on oat fiber xylan for prebiotic production
title_fullStr Novel thermostable GH5_34 arabinoxylanase with an atypical CBM6 displays activity on oat fiber xylan for prebiotic production
title_full_unstemmed Novel thermostable GH5_34 arabinoxylanase with an atypical CBM6 displays activity on oat fiber xylan for prebiotic production
title_short Novel thermostable GH5_34 arabinoxylanase with an atypical CBM6 displays activity on oat fiber xylan for prebiotic production
title_sort novel thermostable gh5_34 arabinoxylanase with an atypical cbm6 displays activity on oat fiber xylan for prebiotic production
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10284105/
https://www.ncbi.nlm.nih.gov/pubmed/36504389
http://dx.doi.org/10.1093/glycob/cwac080
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