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Improvement in catalytic activity and thermostability of a GH10 xylanase and its synergistic degradation of biomass with cellulase

BACKGROUND: Xylanase is one of the most extensively used biocatalysts for biomass degradation. However, its low catalytic efficiency and poor thermostability limit its applications. Therefore, improving the properties of xylanases to enable synergistic degradation of lignocellulosic biomass with cel...

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Autores principales: You, Shuai, Xie, Chen, Ma, Rui, Huang, Huo-qing, Herman, Richard Ansah, Su, Xiao-yun, Ge, Yan, Cai, Hui-yi, Yao, Bin, Wang, Jun, Luo, Hui-ying
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6892236/
https://www.ncbi.nlm.nih.gov/pubmed/31827606
http://dx.doi.org/10.1186/s13068-019-1620-7
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author You, Shuai
Xie, Chen
Ma, Rui
Huang, Huo-qing
Herman, Richard Ansah
Su, Xiao-yun
Ge, Yan
Cai, Hui-yi
Yao, Bin
Wang, Jun
Luo, Hui-ying
author_facet You, Shuai
Xie, Chen
Ma, Rui
Huang, Huo-qing
Herman, Richard Ansah
Su, Xiao-yun
Ge, Yan
Cai, Hui-yi
Yao, Bin
Wang, Jun
Luo, Hui-ying
author_sort You, Shuai
collection PubMed
description BACKGROUND: Xylanase is one of the most extensively used biocatalysts for biomass degradation. However, its low catalytic efficiency and poor thermostability limit its applications. Therefore, improving the properties of xylanases to enable synergistic degradation of lignocellulosic biomass with cellulase is of considerable significance in the field of bioenergy. RESULTS: Using fragment replacement, we improved the catalytic performance and thermostability of a GH10 xylanase, XylE. Of the ten hybrid enzymes obtained, seven showed xylanase activity. Substitution of fragments, M3, M6, M9, and their combinations enhanced the catalytic efficiency (by 2.4- to fourfold) as well as the specific activity (by 1.2- to 3.3-fold) of XylE. The hybrids, XylE-M3, XylE-M3/M6, XylE-M3/M9, and XylE-M3/M6/M9, showed enhanced thermostability, as observed by the increase in the T(50) (3–4.7 °C) and T(m) (1.1–4.7 °C), and extended t(1/2) (by 1.8–2.3 h). In addition, the synergistic effect of the mutant xylanase and cellulase on the degradation of mulberry bark showed that treatment with both XylE-M3/M6 and cellulase exhibited the highest synergistic effect. In this case, the degree of synergy reached 1.3, and the reducing sugar production and dry matter reduction increased by 148% and 185%, respectively, compared to treatment with only cellulase. CONCLUSIONS: This study provides a successful strategy to improve the catalytic properties and thermostability of enzymes. We identified several xylanase candidates for applications in bioenergy and biorefinery. Synergistic degradation experiments elucidated a possible mechanism of cellulase inhibition by xylan and xylo-oligomers. [Image: see text]
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spelling pubmed-68922362019-12-11 Improvement in catalytic activity and thermostability of a GH10 xylanase and its synergistic degradation of biomass with cellulase You, Shuai Xie, Chen Ma, Rui Huang, Huo-qing Herman, Richard Ansah Su, Xiao-yun Ge, Yan Cai, Hui-yi Yao, Bin Wang, Jun Luo, Hui-ying Biotechnol Biofuels Research BACKGROUND: Xylanase is one of the most extensively used biocatalysts for biomass degradation. However, its low catalytic efficiency and poor thermostability limit its applications. Therefore, improving the properties of xylanases to enable synergistic degradation of lignocellulosic biomass with cellulase is of considerable significance in the field of bioenergy. RESULTS: Using fragment replacement, we improved the catalytic performance and thermostability of a GH10 xylanase, XylE. Of the ten hybrid enzymes obtained, seven showed xylanase activity. Substitution of fragments, M3, M6, M9, and their combinations enhanced the catalytic efficiency (by 2.4- to fourfold) as well as the specific activity (by 1.2- to 3.3-fold) of XylE. The hybrids, XylE-M3, XylE-M3/M6, XylE-M3/M9, and XylE-M3/M6/M9, showed enhanced thermostability, as observed by the increase in the T(50) (3–4.7 °C) and T(m) (1.1–4.7 °C), and extended t(1/2) (by 1.8–2.3 h). In addition, the synergistic effect of the mutant xylanase and cellulase on the degradation of mulberry bark showed that treatment with both XylE-M3/M6 and cellulase exhibited the highest synergistic effect. In this case, the degree of synergy reached 1.3, and the reducing sugar production and dry matter reduction increased by 148% and 185%, respectively, compared to treatment with only cellulase. CONCLUSIONS: This study provides a successful strategy to improve the catalytic properties and thermostability of enzymes. We identified several xylanase candidates for applications in bioenergy and biorefinery. Synergistic degradation experiments elucidated a possible mechanism of cellulase inhibition by xylan and xylo-oligomers. [Image: see text] BioMed Central 2019-12-03 /pmc/articles/PMC6892236/ /pubmed/31827606 http://dx.doi.org/10.1186/s13068-019-1620-7 Text en © The Author(s) 2019 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research
You, Shuai
Xie, Chen
Ma, Rui
Huang, Huo-qing
Herman, Richard Ansah
Su, Xiao-yun
Ge, Yan
Cai, Hui-yi
Yao, Bin
Wang, Jun
Luo, Hui-ying
Improvement in catalytic activity and thermostability of a GH10 xylanase and its synergistic degradation of biomass with cellulase
title Improvement in catalytic activity and thermostability of a GH10 xylanase and its synergistic degradation of biomass with cellulase
title_full Improvement in catalytic activity and thermostability of a GH10 xylanase and its synergistic degradation of biomass with cellulase
title_fullStr Improvement in catalytic activity and thermostability of a GH10 xylanase and its synergistic degradation of biomass with cellulase
title_full_unstemmed Improvement in catalytic activity and thermostability of a GH10 xylanase and its synergistic degradation of biomass with cellulase
title_short Improvement in catalytic activity and thermostability of a GH10 xylanase and its synergistic degradation of biomass with cellulase
title_sort improvement in catalytic activity and thermostability of a gh10 xylanase and its synergistic degradation of biomass with cellulase
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6892236/
https://www.ncbi.nlm.nih.gov/pubmed/31827606
http://dx.doi.org/10.1186/s13068-019-1620-7
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