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Crystal structure of a novel homodimeric l‐ribulose 3‐epimerase from Methylomonus sp.

d‐Allulose has potential as a low‐calorie sweetener which can suppress fat accumulation. Several enzymes capable of d‐allulose production have been isolated, including d‐tagatose 3‐epimerases. Here, we report the isolation of a novel protein from Methylomonas sp. expected to be a putative enzyme bas...

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Autores principales: Yoshida, Hiromi, Yoshihara, Akihide, Kato, Shiro, Mochizuki, Susumu, Akimitsu, Kazuya, Izumori, Ken, Kamitori, Shigehiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8167858/
https://www.ncbi.nlm.nih.gov/pubmed/33838083
http://dx.doi.org/10.1002/2211-5463.13159
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author Yoshida, Hiromi
Yoshihara, Akihide
Kato, Shiro
Mochizuki, Susumu
Akimitsu, Kazuya
Izumori, Ken
Kamitori, Shigehiro
author_facet Yoshida, Hiromi
Yoshihara, Akihide
Kato, Shiro
Mochizuki, Susumu
Akimitsu, Kazuya
Izumori, Ken
Kamitori, Shigehiro
author_sort Yoshida, Hiromi
collection PubMed
description d‐Allulose has potential as a low‐calorie sweetener which can suppress fat accumulation. Several enzymes capable of d‐allulose production have been isolated, including d‐tagatose 3‐epimerases. Here, we report the isolation of a novel protein from Methylomonas sp. expected to be a putative enzyme based on sequence similarity to ketose 3‐epimerase. The synthesized gene encoding the deduced ketose 3‐epimerase was expressed as a recombinant enzyme in Escherichia coli, and it exhibited the highest enzymatic activity toward l‐ribulose, followed by d‐ribulose and d‐allulose. The X‐ray structure analysis of l‐ribulose 3‐epimerase from Methylomonas sp. (MetLRE) revealed a homodimeric enzyme, the first reported structure of dimeric l‐ribulose 3‐epimerase. The monomeric structure of MetLRE is similar to that of homotetrameric l‐ribulose 3‐epimerases, but the short C‐terminal α‐helix of MetLRE is unique and different from those of known l‐ribulose 3 epimerases. The length of the C‐terminal α‐helix was thought to be involved in tetramerization and increasing stability; however, the addition of residues to MetLRE at the C terminus did not lead to tetramer formation. MetLRE is the first dimeric l‐ribulose 3‐epimerase identified to exhibit high relative activity toward d‐allulose.
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spelling pubmed-81678582021-06-05 Crystal structure of a novel homodimeric l‐ribulose 3‐epimerase from Methylomonus sp. Yoshida, Hiromi Yoshihara, Akihide Kato, Shiro Mochizuki, Susumu Akimitsu, Kazuya Izumori, Ken Kamitori, Shigehiro FEBS Open Bio Research Articles d‐Allulose has potential as a low‐calorie sweetener which can suppress fat accumulation. Several enzymes capable of d‐allulose production have been isolated, including d‐tagatose 3‐epimerases. Here, we report the isolation of a novel protein from Methylomonas sp. expected to be a putative enzyme based on sequence similarity to ketose 3‐epimerase. The synthesized gene encoding the deduced ketose 3‐epimerase was expressed as a recombinant enzyme in Escherichia coli, and it exhibited the highest enzymatic activity toward l‐ribulose, followed by d‐ribulose and d‐allulose. The X‐ray structure analysis of l‐ribulose 3‐epimerase from Methylomonas sp. (MetLRE) revealed a homodimeric enzyme, the first reported structure of dimeric l‐ribulose 3‐epimerase. The monomeric structure of MetLRE is similar to that of homotetrameric l‐ribulose 3‐epimerases, but the short C‐terminal α‐helix of MetLRE is unique and different from those of known l‐ribulose 3 epimerases. The length of the C‐terminal α‐helix was thought to be involved in tetramerization and increasing stability; however, the addition of residues to MetLRE at the C terminus did not lead to tetramer formation. MetLRE is the first dimeric l‐ribulose 3‐epimerase identified to exhibit high relative activity toward d‐allulose. John Wiley and Sons Inc. 2021-05-01 /pmc/articles/PMC8167858/ /pubmed/33838083 http://dx.doi.org/10.1002/2211-5463.13159 Text en © 2021 The Authors. FEBS Open Bio published by John Wiley & Sons Ltd on behalf of Federation of European Biochemical Societies https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Yoshida, Hiromi
Yoshihara, Akihide
Kato, Shiro
Mochizuki, Susumu
Akimitsu, Kazuya
Izumori, Ken
Kamitori, Shigehiro
Crystal structure of a novel homodimeric l‐ribulose 3‐epimerase from Methylomonus sp.
title Crystal structure of a novel homodimeric l‐ribulose 3‐epimerase from Methylomonus sp.
title_full Crystal structure of a novel homodimeric l‐ribulose 3‐epimerase from Methylomonus sp.
title_fullStr Crystal structure of a novel homodimeric l‐ribulose 3‐epimerase from Methylomonus sp.
title_full_unstemmed Crystal structure of a novel homodimeric l‐ribulose 3‐epimerase from Methylomonus sp.
title_short Crystal structure of a novel homodimeric l‐ribulose 3‐epimerase from Methylomonus sp.
title_sort crystal structure of a novel homodimeric l‐ribulose 3‐epimerase from methylomonus sp.
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8167858/
https://www.ncbi.nlm.nih.gov/pubmed/33838083
http://dx.doi.org/10.1002/2211-5463.13159
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