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Three Molecular Modification Strategies to Improve the Thermostability of Xylanase XynA from Streptomyces rameus L2001

Glycoside hydrolase family 11 (GH11) xylanases are the preferred candidates for the production of functional oligosaccharides. However, the low thermostability of natural GH11 xylanases limits their industrial applications. In this study, we investigated the following three strategies to modify the...

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Autores principales: Zhu, Weijia, Qin, Liqin, Xu, Youqiang, Lu, Hongyun, Wu, Qiuhua, Li, Weiwei, Zhang, Chengnan, Li, Xiuting
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9957083/
https://www.ncbi.nlm.nih.gov/pubmed/36832954
http://dx.doi.org/10.3390/foods12040879
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author Zhu, Weijia
Qin, Liqin
Xu, Youqiang
Lu, Hongyun
Wu, Qiuhua
Li, Weiwei
Zhang, Chengnan
Li, Xiuting
author_facet Zhu, Weijia
Qin, Liqin
Xu, Youqiang
Lu, Hongyun
Wu, Qiuhua
Li, Weiwei
Zhang, Chengnan
Li, Xiuting
author_sort Zhu, Weijia
collection PubMed
description Glycoside hydrolase family 11 (GH11) xylanases are the preferred candidates for the production of functional oligosaccharides. However, the low thermostability of natural GH11 xylanases limits their industrial applications. In this study, we investigated the following three strategies to modify the thermostability of xylanase XynA from Streptomyces rameus L2001 mutation to reduce surface entropy, intramolecular disulfide bond construction, and molecular cyclization. Changes in the thermostability of XynA mutants were analyzed using molecular simulations. All mutants showed improved thermostability and catalytic efficiency compared with XynA, except for molecular cyclization. The residual activities of high-entropy amino acid-replacement mutants Q24A and K104A increased from 18.70% to more than 41.23% when kept at 65 °C for 30 min. The catalytic efficiencies of Q24A and K143A increased to 129.99 and 92.26 mL/s/mg, respectively, compared with XynA (62.97 mL/s/mg) when using beechwood xylan as the substrate. The mutant enzyme with disulfide bonds formed between Val3 and Thr30 increased the t(1/2)(60 °C) by 13.33-fold and the catalytic efficiency by 1.80-fold compared with the wild-type XynA. The high thermostabilities and hydrolytic activities of XynA mutants will be useful for enzymatic production of functional xylo-oligosaccharides.
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spelling pubmed-99570832023-02-25 Three Molecular Modification Strategies to Improve the Thermostability of Xylanase XynA from Streptomyces rameus L2001 Zhu, Weijia Qin, Liqin Xu, Youqiang Lu, Hongyun Wu, Qiuhua Li, Weiwei Zhang, Chengnan Li, Xiuting Foods Article Glycoside hydrolase family 11 (GH11) xylanases are the preferred candidates for the production of functional oligosaccharides. However, the low thermostability of natural GH11 xylanases limits their industrial applications. In this study, we investigated the following three strategies to modify the thermostability of xylanase XynA from Streptomyces rameus L2001 mutation to reduce surface entropy, intramolecular disulfide bond construction, and molecular cyclization. Changes in the thermostability of XynA mutants were analyzed using molecular simulations. All mutants showed improved thermostability and catalytic efficiency compared with XynA, except for molecular cyclization. The residual activities of high-entropy amino acid-replacement mutants Q24A and K104A increased from 18.70% to more than 41.23% when kept at 65 °C for 30 min. The catalytic efficiencies of Q24A and K143A increased to 129.99 and 92.26 mL/s/mg, respectively, compared with XynA (62.97 mL/s/mg) when using beechwood xylan as the substrate. The mutant enzyme with disulfide bonds formed between Val3 and Thr30 increased the t(1/2)(60 °C) by 13.33-fold and the catalytic efficiency by 1.80-fold compared with the wild-type XynA. The high thermostabilities and hydrolytic activities of XynA mutants will be useful for enzymatic production of functional xylo-oligosaccharides. MDPI 2023-02-18 /pmc/articles/PMC9957083/ /pubmed/36832954 http://dx.doi.org/10.3390/foods12040879 Text en © 2023 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
Zhu, Weijia
Qin, Liqin
Xu, Youqiang
Lu, Hongyun
Wu, Qiuhua
Li, Weiwei
Zhang, Chengnan
Li, Xiuting
Three Molecular Modification Strategies to Improve the Thermostability of Xylanase XynA from Streptomyces rameus L2001
title Three Molecular Modification Strategies to Improve the Thermostability of Xylanase XynA from Streptomyces rameus L2001
title_full Three Molecular Modification Strategies to Improve the Thermostability of Xylanase XynA from Streptomyces rameus L2001
title_fullStr Three Molecular Modification Strategies to Improve the Thermostability of Xylanase XynA from Streptomyces rameus L2001
title_full_unstemmed Three Molecular Modification Strategies to Improve the Thermostability of Xylanase XynA from Streptomyces rameus L2001
title_short Three Molecular Modification Strategies to Improve the Thermostability of Xylanase XynA from Streptomyces rameus L2001
title_sort three molecular modification strategies to improve the thermostability of xylanase xyna from streptomyces rameus l2001
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9957083/
https://www.ncbi.nlm.nih.gov/pubmed/36832954
http://dx.doi.org/10.3390/foods12040879
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