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Discovery of α-l-Glucosidase Raises the Possibility of α-l-Glucosides in Nature

[Image: see text] Glucose, a common monosaccharide in nature, is dominated by the d-enantiomer. Meanwhile, the discovery of l-glucose-utilizing bacteria and the elucidation of their metabolic pathways 10 years ago suggests that l-glucose exists naturally. Most carbohydrates exist as glycosides rathe...

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Autores principales: Shishiuchi, Rikako, Kang, Hyejin, Tagami, Takayoshi, Ueda, Yoshitaka, Lang, Weeranuch, Kimura, Atsuo, Okuyama, Masayuki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9774334/
https://www.ncbi.nlm.nih.gov/pubmed/36570207
http://dx.doi.org/10.1021/acsomega.2c06991
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author Shishiuchi, Rikako
Kang, Hyejin
Tagami, Takayoshi
Ueda, Yoshitaka
Lang, Weeranuch
Kimura, Atsuo
Okuyama, Masayuki
author_facet Shishiuchi, Rikako
Kang, Hyejin
Tagami, Takayoshi
Ueda, Yoshitaka
Lang, Weeranuch
Kimura, Atsuo
Okuyama, Masayuki
author_sort Shishiuchi, Rikako
collection PubMed
description [Image: see text] Glucose, a common monosaccharide in nature, is dominated by the d-enantiomer. Meanwhile, the discovery of l-glucose-utilizing bacteria and the elucidation of their metabolic pathways 10 years ago suggests that l-glucose exists naturally. Most carbohydrates exist as glycosides rather than monosaccharides; therefore, we expected that nature also contains l-glucosides. Sequence analysis within glycoside hydrolase family 29 led us to identify two α-l-glucosidases, ClAgl29A and ClAgl29B, derived from Cecembia lonarensis LW9. ClAgl29A and ClAgl29B exhibited higher K(m), k(cat), and k(cat)/K(m) values for p-nitrophenyl α-l-glucoside than that for p-nitrophenyl α-l-fucoside. Structural analysis of ClAgl29B in complex with l-glucose showed that these enzymes have an active-site pocket that preferentially binds α-l-glucoside, but excludes α-l-fucoside. These results suggest that ClAgl29A and ClAgl29B evolved to hydrolyze α-l-glucoside, implying the existence of α-l-glucoside in nature. Furthermore, α-l-glucosidic linkages (α-l-Glc-(1 → 3)-l-Glc, α-l-Glc-(1 → 2)-l-Glc, and α-l-Glc-(1 → 6)-l-Glc) were synthesized by the transglucosylation activity of ClAgl29A and ClAgl29B. We believe that this study will lead to new research on α-l-glucosides, including determining the physiological effects on humans, and the discovery of novel α-l-glucoside-related enzymes.
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spelling pubmed-97743342022-12-23 Discovery of α-l-Glucosidase Raises the Possibility of α-l-Glucosides in Nature Shishiuchi, Rikako Kang, Hyejin Tagami, Takayoshi Ueda, Yoshitaka Lang, Weeranuch Kimura, Atsuo Okuyama, Masayuki ACS Omega [Image: see text] Glucose, a common monosaccharide in nature, is dominated by the d-enantiomer. Meanwhile, the discovery of l-glucose-utilizing bacteria and the elucidation of their metabolic pathways 10 years ago suggests that l-glucose exists naturally. Most carbohydrates exist as glycosides rather than monosaccharides; therefore, we expected that nature also contains l-glucosides. Sequence analysis within glycoside hydrolase family 29 led us to identify two α-l-glucosidases, ClAgl29A and ClAgl29B, derived from Cecembia lonarensis LW9. ClAgl29A and ClAgl29B exhibited higher K(m), k(cat), and k(cat)/K(m) values for p-nitrophenyl α-l-glucoside than that for p-nitrophenyl α-l-fucoside. Structural analysis of ClAgl29B in complex with l-glucose showed that these enzymes have an active-site pocket that preferentially binds α-l-glucoside, but excludes α-l-fucoside. These results suggest that ClAgl29A and ClAgl29B evolved to hydrolyze α-l-glucoside, implying the existence of α-l-glucoside in nature. Furthermore, α-l-glucosidic linkages (α-l-Glc-(1 → 3)-l-Glc, α-l-Glc-(1 → 2)-l-Glc, and α-l-Glc-(1 → 6)-l-Glc) were synthesized by the transglucosylation activity of ClAgl29A and ClAgl29B. We believe that this study will lead to new research on α-l-glucosides, including determining the physiological effects on humans, and the discovery of novel α-l-glucoside-related enzymes. American Chemical Society 2022-12-09 /pmc/articles/PMC9774334/ /pubmed/36570207 http://dx.doi.org/10.1021/acsomega.2c06991 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Shishiuchi, Rikako
Kang, Hyejin
Tagami, Takayoshi
Ueda, Yoshitaka
Lang, Weeranuch
Kimura, Atsuo
Okuyama, Masayuki
Discovery of α-l-Glucosidase Raises the Possibility of α-l-Glucosides in Nature
title Discovery of α-l-Glucosidase Raises the Possibility of α-l-Glucosides in Nature
title_full Discovery of α-l-Glucosidase Raises the Possibility of α-l-Glucosides in Nature
title_fullStr Discovery of α-l-Glucosidase Raises the Possibility of α-l-Glucosides in Nature
title_full_unstemmed Discovery of α-l-Glucosidase Raises the Possibility of α-l-Glucosides in Nature
title_short Discovery of α-l-Glucosidase Raises the Possibility of α-l-Glucosides in Nature
title_sort discovery of α-l-glucosidase raises the possibility of α-l-glucosides in nature
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9774334/
https://www.ncbi.nlm.nih.gov/pubmed/36570207
http://dx.doi.org/10.1021/acsomega.2c06991
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