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Non-Structured Amino-Acid Impact on GH11 Differs from GH10 Xylanase

The Aspergillus niger xylanase (Xyn) was used as a model to investigate impacts of un-structured residues on GH11 family enzyme, because the β-jelly roll structure has five residues (Ser1Ala2Gly3Ile4Asn5) at N-terminus and two residues (Ser183Ser184) at C-terminus that do not form to helix or strand...

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Autores principales: Liu, Liangwei, Sun, Xiaofeng, Yan, Pengfei, Wang, Linmin, Chen, Hongge
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3448673/
https://www.ncbi.nlm.nih.gov/pubmed/23029229
http://dx.doi.org/10.1371/journal.pone.0045762
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author Liu, Liangwei
Sun, Xiaofeng
Yan, Pengfei
Wang, Linmin
Chen, Hongge
author_facet Liu, Liangwei
Sun, Xiaofeng
Yan, Pengfei
Wang, Linmin
Chen, Hongge
author_sort Liu, Liangwei
collection PubMed
description The Aspergillus niger xylanase (Xyn) was used as a model to investigate impacts of un-structured residues on GH11 family enzyme, because the β-jelly roll structure has five residues (Ser1Ala2Gly3Ile4Asn5) at N-terminus and two residues (Ser183Ser184) at C-terminus that do not form to helix or strand. The N- or/and C-terminal residues were respectively deleted to construct three mutants. The optimal temperatures of XynΔN, XynΔC, and XynΔNC were 46, 50, and 46°C, and the thermostabilities were 15.7, 73.9, 15.5 min at 50°C, respectively, compared to 48°C and 33.9 min for the Xyn. After kinetic analysis, the substrate-binding affinities for birch-wood xylan decreased in the order XynΔC>Xyn>XynΔNC>XynΔN, while the K(cat) values increased in the order XynΔC<XynΔNC<Xyn<XynΔN. The C-terminal deletion increased the GH11 xylanase thermostability and T(opt), while the N- and NC-terminal deletions decreased its thermostability and optimal temperature. The C-terminal residues created more impact on enzyme thermal property, while the N-terminal residues created more impact on its catalytic efficiency and substrate-binding affinity. The impact of non-structured residues on GH11 xylanase was different from that of similar residues on GH10 xylanase, and the difference is attributed to structural difference between GH11 jelly-roll and GH10 (β/α)(8).
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spelling pubmed-34486732012-10-01 Non-Structured Amino-Acid Impact on GH11 Differs from GH10 Xylanase Liu, Liangwei Sun, Xiaofeng Yan, Pengfei Wang, Linmin Chen, Hongge PLoS One Research Article The Aspergillus niger xylanase (Xyn) was used as a model to investigate impacts of un-structured residues on GH11 family enzyme, because the β-jelly roll structure has five residues (Ser1Ala2Gly3Ile4Asn5) at N-terminus and two residues (Ser183Ser184) at C-terminus that do not form to helix or strand. The N- or/and C-terminal residues were respectively deleted to construct three mutants. The optimal temperatures of XynΔN, XynΔC, and XynΔNC were 46, 50, and 46°C, and the thermostabilities were 15.7, 73.9, 15.5 min at 50°C, respectively, compared to 48°C and 33.9 min for the Xyn. After kinetic analysis, the substrate-binding affinities for birch-wood xylan decreased in the order XynΔC>Xyn>XynΔNC>XynΔN, while the K(cat) values increased in the order XynΔC<XynΔNC<Xyn<XynΔN. The C-terminal deletion increased the GH11 xylanase thermostability and T(opt), while the N- and NC-terminal deletions decreased its thermostability and optimal temperature. The C-terminal residues created more impact on enzyme thermal property, while the N-terminal residues created more impact on its catalytic efficiency and substrate-binding affinity. The impact of non-structured residues on GH11 xylanase was different from that of similar residues on GH10 xylanase, and the difference is attributed to structural difference between GH11 jelly-roll and GH10 (β/α)(8). Public Library of Science 2012-09-21 /pmc/articles/PMC3448673/ /pubmed/23029229 http://dx.doi.org/10.1371/journal.pone.0045762 Text en © 2012 Liu et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Liu, Liangwei
Sun, Xiaofeng
Yan, Pengfei
Wang, Linmin
Chen, Hongge
Non-Structured Amino-Acid Impact on GH11 Differs from GH10 Xylanase
title Non-Structured Amino-Acid Impact on GH11 Differs from GH10 Xylanase
title_full Non-Structured Amino-Acid Impact on GH11 Differs from GH10 Xylanase
title_fullStr Non-Structured Amino-Acid Impact on GH11 Differs from GH10 Xylanase
title_full_unstemmed Non-Structured Amino-Acid Impact on GH11 Differs from GH10 Xylanase
title_short Non-Structured Amino-Acid Impact on GH11 Differs from GH10 Xylanase
title_sort non-structured amino-acid impact on gh11 differs from gh10 xylanase
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3448673/
https://www.ncbi.nlm.nih.gov/pubmed/23029229
http://dx.doi.org/10.1371/journal.pone.0045762
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