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Novel Glycosylation by Amylosucrase to Produce Glycoside Anomers

SIMPLE SUMMARY: All livings are composed of cells, which contain lipid, proteins, nuclei acids, and saccharides. Saccharides include polysaccharides, oligo saccharides, disaccharides, which are linked by monosaccharides. Monosaccharides such as glucose exist in two forms, named α and β anomer, in so...

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Autores principales: Wu, Jiumn-Yih, Ding, Hsiou-Yu, Luo, Shun-Yuan, Wang, Tzi-Yuan, Tsai, Yu-Li, Chang, Te-Sheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9220500/
https://www.ncbi.nlm.nih.gov/pubmed/35741343
http://dx.doi.org/10.3390/biology11060822
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author Wu, Jiumn-Yih
Ding, Hsiou-Yu
Luo, Shun-Yuan
Wang, Tzi-Yuan
Tsai, Yu-Li
Chang, Te-Sheng
author_facet Wu, Jiumn-Yih
Ding, Hsiou-Yu
Luo, Shun-Yuan
Wang, Tzi-Yuan
Tsai, Yu-Li
Chang, Te-Sheng
author_sort Wu, Jiumn-Yih
collection PubMed
description SIMPLE SUMMARY: All livings are composed of cells, which contain lipid, proteins, nuclei acids, and saccharides. Saccharides include polysaccharides, oligo saccharides, disaccharides, which are linked by monosaccharides. Monosaccharides such as glucose exist in two forms, named α and β anomer, in solution. In addition, monosaccharides could be linked with lipid, proteins, nuclei acids or other saccharide to form glycosides through glycosylation. In nature, glycosylation is catalyzed by enzymes. Until now, all enzymes catalyzed glycosylation to form glycosides with either α or β form but not both. This study found an enzyme, amylosucrase from Deinococcus geothermalis (DgAS), could catalyze glycosylation of a kind of lipid named ganoderic acids triterpenoids from a medicinal fungus Ganoderma lucidum to form both α and β anomer of glycosides. This is the first report that enzymes could catalyze such glycosylation and a possible reaction mechanism was proposed. ABSTRACT: Glycosylation occurring at either lipids, proteins, or sugars plays important roles in many biological systems. In nature, enzymatic glycosylation is the formation of a glycosidic bond between the anomeric carbon of the donor sugar and the functional group of the sugar acceptor. This study found novel glycoside anomers without an anomeric carbon linkage of the sugar donor. A glycoside hydrolase (GH) enzyme, amylosucrase from Deinococcus geothermalis (DgAS), was evaluated to glycosylate ganoderic acid F (GAF), a lanostane triterpenoid from medicinal fungus Ganoderma lucidum, at different pH levels. The results showed that GAF was glycosylated by DgAS at acidic conditions pH 5 and pH 6, whereas the activity dramatically decreased to be undetectable at pH 7 or pH 8. The biotransformation product was purified by preparative high-performance liquid chromatography and identified as unusual α-glucosyl-(2→26)-GAF and β-glucosyl-(2→26)-GAF anomers by mass and nucleic magnetic resonance (NMR) spectroscopy. We further used DgAS to catalyze another six triterpenoids. Under the acidic conditions, two of six compounds, ganoderic acid A (GAA) and ganoderic acid G (GAG), could be converted to α–glucosyl-(2→26)-GAA and β–glucosyl-(2→26)-GAA anomers and α-glucosyl-(2→26)-GAG and β-glucosyl-(2→26)-GAG anomers, respectively. The glycosylation of triterpenoid aglycones was first confirmed to be converted via a GH enzyme, DgAS. The novel enzymatic glycosylation-formed glycoside anomers opens a new bioreaction in the pharmaceutical industry and in the biotechnology sector.
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spelling pubmed-92205002022-06-24 Novel Glycosylation by Amylosucrase to Produce Glycoside Anomers Wu, Jiumn-Yih Ding, Hsiou-Yu Luo, Shun-Yuan Wang, Tzi-Yuan Tsai, Yu-Li Chang, Te-Sheng Biology (Basel) Article SIMPLE SUMMARY: All livings are composed of cells, which contain lipid, proteins, nuclei acids, and saccharides. Saccharides include polysaccharides, oligo saccharides, disaccharides, which are linked by monosaccharides. Monosaccharides such as glucose exist in two forms, named α and β anomer, in solution. In addition, monosaccharides could be linked with lipid, proteins, nuclei acids or other saccharide to form glycosides through glycosylation. In nature, glycosylation is catalyzed by enzymes. Until now, all enzymes catalyzed glycosylation to form glycosides with either α or β form but not both. This study found an enzyme, amylosucrase from Deinococcus geothermalis (DgAS), could catalyze glycosylation of a kind of lipid named ganoderic acids triterpenoids from a medicinal fungus Ganoderma lucidum to form both α and β anomer of glycosides. This is the first report that enzymes could catalyze such glycosylation and a possible reaction mechanism was proposed. ABSTRACT: Glycosylation occurring at either lipids, proteins, or sugars plays important roles in many biological systems. In nature, enzymatic glycosylation is the formation of a glycosidic bond between the anomeric carbon of the donor sugar and the functional group of the sugar acceptor. This study found novel glycoside anomers without an anomeric carbon linkage of the sugar donor. A glycoside hydrolase (GH) enzyme, amylosucrase from Deinococcus geothermalis (DgAS), was evaluated to glycosylate ganoderic acid F (GAF), a lanostane triterpenoid from medicinal fungus Ganoderma lucidum, at different pH levels. The results showed that GAF was glycosylated by DgAS at acidic conditions pH 5 and pH 6, whereas the activity dramatically decreased to be undetectable at pH 7 or pH 8. The biotransformation product was purified by preparative high-performance liquid chromatography and identified as unusual α-glucosyl-(2→26)-GAF and β-glucosyl-(2→26)-GAF anomers by mass and nucleic magnetic resonance (NMR) spectroscopy. We further used DgAS to catalyze another six triterpenoids. Under the acidic conditions, two of six compounds, ganoderic acid A (GAA) and ganoderic acid G (GAG), could be converted to α–glucosyl-(2→26)-GAA and β–glucosyl-(2→26)-GAA anomers and α-glucosyl-(2→26)-GAG and β-glucosyl-(2→26)-GAG anomers, respectively. The glycosylation of triterpenoid aglycones was first confirmed to be converted via a GH enzyme, DgAS. The novel enzymatic glycosylation-formed glycoside anomers opens a new bioreaction in the pharmaceutical industry and in the biotechnology sector. MDPI 2022-05-27 /pmc/articles/PMC9220500/ /pubmed/35741343 http://dx.doi.org/10.3390/biology11060822 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wu, Jiumn-Yih
Ding, Hsiou-Yu
Luo, Shun-Yuan
Wang, Tzi-Yuan
Tsai, Yu-Li
Chang, Te-Sheng
Novel Glycosylation by Amylosucrase to Produce Glycoside Anomers
title Novel Glycosylation by Amylosucrase to Produce Glycoside Anomers
title_full Novel Glycosylation by Amylosucrase to Produce Glycoside Anomers
title_fullStr Novel Glycosylation by Amylosucrase to Produce Glycoside Anomers
title_full_unstemmed Novel Glycosylation by Amylosucrase to Produce Glycoside Anomers
title_short Novel Glycosylation by Amylosucrase to Produce Glycoside Anomers
title_sort novel glycosylation by amylosucrase to produce glycoside anomers
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9220500/
https://www.ncbi.nlm.nih.gov/pubmed/35741343
http://dx.doi.org/10.3390/biology11060822
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