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Biosynthetic access to the rare antiarose sugar via an unusual reductase-epimerase

Rubrolones, isatropolones, and rubterolones are recently isolated glycosylated tropolonids with notable biological activity. They share similar aglycone skeletons but differ in their sugar moieties, and rubterolones in particular have a rare deoxysugar antiarose of unknown biosynthetic provenance. D...

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Autores principales: Yan, Yijun, Yang, Jing, Wang, Li, Xu, Dongdong, Yu, Zhiyin, Guo, Xiaowei, Horsman, Geoff P., Lin, Shuangjun, Tao, Meifeng, Huang, Sheng-Xiong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8152690/
https://www.ncbi.nlm.nih.gov/pubmed/34122866
http://dx.doi.org/10.1039/c9sc05766h
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author Yan, Yijun
Yang, Jing
Wang, Li
Xu, Dongdong
Yu, Zhiyin
Guo, Xiaowei
Horsman, Geoff P.
Lin, Shuangjun
Tao, Meifeng
Huang, Sheng-Xiong
author_facet Yan, Yijun
Yang, Jing
Wang, Li
Xu, Dongdong
Yu, Zhiyin
Guo, Xiaowei
Horsman, Geoff P.
Lin, Shuangjun
Tao, Meifeng
Huang, Sheng-Xiong
author_sort Yan, Yijun
collection PubMed
description Rubrolones, isatropolones, and rubterolones are recently isolated glycosylated tropolonids with notable biological activity. They share similar aglycone skeletons but differ in their sugar moieties, and rubterolones in particular have a rare deoxysugar antiarose of unknown biosynthetic provenance. During our previously reported biosynthetic elucidation of the tropolone ring and pyridine moiety, gene inactivation experiments revealed that RubS3 is involved in sugar moiety biosynthesis. Here we report the in vitro characterization of RubS3 as a bifunctional reductase/epimerase catalyzing the formation of TDP-d-antiarose by epimerization at C3 and reduction at C4 of the key intermediate TDP-4-keto-6-deoxy-d-glucose. These new findings not only explain the biosynthetic pathway of deoxysugars in rubrolone-like natural products, but also introduce RubS3 as a new family of reductase/epimerase enzymes with potential to supply the rare antiarose unit for expanding the chemical space of glycosylated natural products.
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spelling pubmed-81526902021-06-11 Biosynthetic access to the rare antiarose sugar via an unusual reductase-epimerase Yan, Yijun Yang, Jing Wang, Li Xu, Dongdong Yu, Zhiyin Guo, Xiaowei Horsman, Geoff P. Lin, Shuangjun Tao, Meifeng Huang, Sheng-Xiong Chem Sci Chemistry Rubrolones, isatropolones, and rubterolones are recently isolated glycosylated tropolonids with notable biological activity. They share similar aglycone skeletons but differ in their sugar moieties, and rubterolones in particular have a rare deoxysugar antiarose of unknown biosynthetic provenance. During our previously reported biosynthetic elucidation of the tropolone ring and pyridine moiety, gene inactivation experiments revealed that RubS3 is involved in sugar moiety biosynthesis. Here we report the in vitro characterization of RubS3 as a bifunctional reductase/epimerase catalyzing the formation of TDP-d-antiarose by epimerization at C3 and reduction at C4 of the key intermediate TDP-4-keto-6-deoxy-d-glucose. These new findings not only explain the biosynthetic pathway of deoxysugars in rubrolone-like natural products, but also introduce RubS3 as a new family of reductase/epimerase enzymes with potential to supply the rare antiarose unit for expanding the chemical space of glycosylated natural products. The Royal Society of Chemistry 2020-03-27 /pmc/articles/PMC8152690/ /pubmed/34122866 http://dx.doi.org/10.1039/c9sc05766h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Yan, Yijun
Yang, Jing
Wang, Li
Xu, Dongdong
Yu, Zhiyin
Guo, Xiaowei
Horsman, Geoff P.
Lin, Shuangjun
Tao, Meifeng
Huang, Sheng-Xiong
Biosynthetic access to the rare antiarose sugar via an unusual reductase-epimerase
title Biosynthetic access to the rare antiarose sugar via an unusual reductase-epimerase
title_full Biosynthetic access to the rare antiarose sugar via an unusual reductase-epimerase
title_fullStr Biosynthetic access to the rare antiarose sugar via an unusual reductase-epimerase
title_full_unstemmed Biosynthetic access to the rare antiarose sugar via an unusual reductase-epimerase
title_short Biosynthetic access to the rare antiarose sugar via an unusual reductase-epimerase
title_sort biosynthetic access to the rare antiarose sugar via an unusual reductase-epimerase
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8152690/
https://www.ncbi.nlm.nih.gov/pubmed/34122866
http://dx.doi.org/10.1039/c9sc05766h
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