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Dual Substrate Specificity of the Rutinosidase from Aspergillus niger and the Role of Its Substrate Tunnel

Rutinosidases (α-l-rhamnopyranosyl-(1-6)-β-d-glucopyranosidases, EC 3.2.1.168, CAZy GH5) are diglycosidases that cleave the glycosidic bond between the disaccharide rutinose and the respective aglycone. Similar to many retaining glycosidases, rutinosidases can also transfer the rutinosyl moiety onto...

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Autores principales: Brodsky, Katerina, Kutý, Michal, Pelantová, Helena, Cvačka, Josef, Rebroš, Martin, Kotik, Michael, Kutá Smatanová, Ivana, Křen, Vladimír, Bojarová, Pavla
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7460883/
https://www.ncbi.nlm.nih.gov/pubmed/32784723
http://dx.doi.org/10.3390/ijms21165671
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author Brodsky, Katerina
Kutý, Michal
Pelantová, Helena
Cvačka, Josef
Rebroš, Martin
Kotik, Michael
Kutá Smatanová, Ivana
Křen, Vladimír
Bojarová, Pavla
author_facet Brodsky, Katerina
Kutý, Michal
Pelantová, Helena
Cvačka, Josef
Rebroš, Martin
Kotik, Michael
Kutá Smatanová, Ivana
Křen, Vladimír
Bojarová, Pavla
author_sort Brodsky, Katerina
collection PubMed
description Rutinosidases (α-l-rhamnopyranosyl-(1-6)-β-d-glucopyranosidases, EC 3.2.1.168, CAZy GH5) are diglycosidases that cleave the glycosidic bond between the disaccharide rutinose and the respective aglycone. Similar to many retaining glycosidases, rutinosidases can also transfer the rutinosyl moiety onto acceptors with a free –OH group (so-called transglycosylation). The recombinant rutinosidase from Aspergillus niger (AnRut) is selectively produced in Pichia pastoris. It can catalyze transglycosylation reactions as an unpurified preparation directly from cultivation. This enzyme exhibits catalytic activity towards two substrates; in addition to rutinosidase activity, it also exhibits β-d-glucopyranosidase activity. As a result, new compounds are formed by β-glucosylation or rutinosylation of acceptors such as alcohols or strong inorganic nucleophiles (NaN(3)). Transglycosylation products with aliphatic aglycones are resistant towards cleavage by rutinosidase, therefore, their side hydrolysis does not occur, allowing higher transglycosylation yields. Fourteen compounds were synthesized by glucosylation or rutinosylation of selected acceptors. The products were isolated and structurally characterized. Interactions between the transglycosylation products and the recombinant AnRut were analyzed by molecular modeling. We revealed the role of a substrate tunnel in the structure of AnRut, which explained the unusual catalytic properties of this glycosidase and its specific transglycosylation potential. AnRut is attractive for biosynthetic applications, especially for the use of inexpensive substrates (rutin and isoquercitrin).
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spelling pubmed-74608832020-09-14 Dual Substrate Specificity of the Rutinosidase from Aspergillus niger and the Role of Its Substrate Tunnel Brodsky, Katerina Kutý, Michal Pelantová, Helena Cvačka, Josef Rebroš, Martin Kotik, Michael Kutá Smatanová, Ivana Křen, Vladimír Bojarová, Pavla Int J Mol Sci Article Rutinosidases (α-l-rhamnopyranosyl-(1-6)-β-d-glucopyranosidases, EC 3.2.1.168, CAZy GH5) are diglycosidases that cleave the glycosidic bond between the disaccharide rutinose and the respective aglycone. Similar to many retaining glycosidases, rutinosidases can also transfer the rutinosyl moiety onto acceptors with a free –OH group (so-called transglycosylation). The recombinant rutinosidase from Aspergillus niger (AnRut) is selectively produced in Pichia pastoris. It can catalyze transglycosylation reactions as an unpurified preparation directly from cultivation. This enzyme exhibits catalytic activity towards two substrates; in addition to rutinosidase activity, it also exhibits β-d-glucopyranosidase activity. As a result, new compounds are formed by β-glucosylation or rutinosylation of acceptors such as alcohols or strong inorganic nucleophiles (NaN(3)). Transglycosylation products with aliphatic aglycones are resistant towards cleavage by rutinosidase, therefore, their side hydrolysis does not occur, allowing higher transglycosylation yields. Fourteen compounds were synthesized by glucosylation or rutinosylation of selected acceptors. The products were isolated and structurally characterized. Interactions between the transglycosylation products and the recombinant AnRut were analyzed by molecular modeling. We revealed the role of a substrate tunnel in the structure of AnRut, which explained the unusual catalytic properties of this glycosidase and its specific transglycosylation potential. AnRut is attractive for biosynthetic applications, especially for the use of inexpensive substrates (rutin and isoquercitrin). MDPI 2020-08-07 /pmc/articles/PMC7460883/ /pubmed/32784723 http://dx.doi.org/10.3390/ijms21165671 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Brodsky, Katerina
Kutý, Michal
Pelantová, Helena
Cvačka, Josef
Rebroš, Martin
Kotik, Michael
Kutá Smatanová, Ivana
Křen, Vladimír
Bojarová, Pavla
Dual Substrate Specificity of the Rutinosidase from Aspergillus niger and the Role of Its Substrate Tunnel
title Dual Substrate Specificity of the Rutinosidase from Aspergillus niger and the Role of Its Substrate Tunnel
title_full Dual Substrate Specificity of the Rutinosidase from Aspergillus niger and the Role of Its Substrate Tunnel
title_fullStr Dual Substrate Specificity of the Rutinosidase from Aspergillus niger and the Role of Its Substrate Tunnel
title_full_unstemmed Dual Substrate Specificity of the Rutinosidase from Aspergillus niger and the Role of Its Substrate Tunnel
title_short Dual Substrate Specificity of the Rutinosidase from Aspergillus niger and the Role of Its Substrate Tunnel
title_sort dual substrate specificity of the rutinosidase from aspergillus niger and the role of its substrate tunnel
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7460883/
https://www.ncbi.nlm.nih.gov/pubmed/32784723
http://dx.doi.org/10.3390/ijms21165671
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