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The complete conformational free energy landscape of β-xylose reveals a two-fold catalytic itinerary for β-xylanases

Unraveling the conformational catalytic itinerary of glycoside hydrolases (GHs) is a growing topic of interest in glycobiology, with major impact in the design of GH inhibitors. β-xylanases are responsible for the hydrolysis of glycosidic bonds in β-xylans, a group of hemicelluloses of high biotechn...

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Autores principales: Iglesias-Fernández, Javier, Raich, Lluís, Ardèvol, Albert, Rovira, Carme
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5811086/
https://www.ncbi.nlm.nih.gov/pubmed/29560204
http://dx.doi.org/10.1039/c4sc02240h
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author Iglesias-Fernández, Javier
Raich, Lluís
Ardèvol, Albert
Rovira, Carme
author_facet Iglesias-Fernández, Javier
Raich, Lluís
Ardèvol, Albert
Rovira, Carme
author_sort Iglesias-Fernández, Javier
collection PubMed
description Unraveling the conformational catalytic itinerary of glycoside hydrolases (GHs) is a growing topic of interest in glycobiology, with major impact in the design of GH inhibitors. β-xylanases are responsible for the hydrolysis of glycosidic bonds in β-xylans, a group of hemicelluloses of high biotechnological interest that are found in plant cell walls. The precise conformations followed by the substrate during catalysis in β-xylanases have not been unambiguously resolved, with three different pathways being proposed from structural analyses. In this work, we compute the conformational free energy landscape (FEL) of β-xylose to predict the most likely catalytic itineraries followed by β-xylanases. The calculations are performed by means of ab initio metadynamics, using the Cremer–Pople puckering coordinates as collective variables. The computed FEL supports only two of the previously proposed itineraries, (2)S(O) → [(2,5)B](ǂ) → (5)S(1) and (1)S(3) → [(4)H(3)](ǂ) → (4)C(1), which clearly appear in low energy regions of the FEL. Consistently, (2)S(O) and (1)S(3) are conformations preactivated for catalysis in terms of free energy/anomeric charge and bond distances. The results however exclude the (O)E → [(O)S(2)](ǂ) → B(2,5) itinerary that has been recently proposed for a family 11 xylanase. Classical and ab initio QM/MM molecular dynamics simulations reveal that, in this case, the observed (O)E conformation has been enforced by enzyme mutation. These results add a word of caution on using modified enzymes to inform on catalytic conformational itineraries of glycoside hydrolases.
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spelling pubmed-58110862018-03-20 The complete conformational free energy landscape of β-xylose reveals a two-fold catalytic itinerary for β-xylanases Iglesias-Fernández, Javier Raich, Lluís Ardèvol, Albert Rovira, Carme Chem Sci Chemistry Unraveling the conformational catalytic itinerary of glycoside hydrolases (GHs) is a growing topic of interest in glycobiology, with major impact in the design of GH inhibitors. β-xylanases are responsible for the hydrolysis of glycosidic bonds in β-xylans, a group of hemicelluloses of high biotechnological interest that are found in plant cell walls. The precise conformations followed by the substrate during catalysis in β-xylanases have not been unambiguously resolved, with three different pathways being proposed from structural analyses. In this work, we compute the conformational free energy landscape (FEL) of β-xylose to predict the most likely catalytic itineraries followed by β-xylanases. The calculations are performed by means of ab initio metadynamics, using the Cremer–Pople puckering coordinates as collective variables. The computed FEL supports only two of the previously proposed itineraries, (2)S(O) → [(2,5)B](ǂ) → (5)S(1) and (1)S(3) → [(4)H(3)](ǂ) → (4)C(1), which clearly appear in low energy regions of the FEL. Consistently, (2)S(O) and (1)S(3) are conformations preactivated for catalysis in terms of free energy/anomeric charge and bond distances. The results however exclude the (O)E → [(O)S(2)](ǂ) → B(2,5) itinerary that has been recently proposed for a family 11 xylanase. Classical and ab initio QM/MM molecular dynamics simulations reveal that, in this case, the observed (O)E conformation has been enforced by enzyme mutation. These results add a word of caution on using modified enzymes to inform on catalytic conformational itineraries of glycoside hydrolases. Royal Society of Chemistry 2015-02-01 2014-10-27 /pmc/articles/PMC5811086/ /pubmed/29560204 http://dx.doi.org/10.1039/c4sc02240h Text en This journal is © The Royal Society of Chemistry 2014 http://creativecommons.org/licenses/by/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution 3.0 Unported License (http://creativecommons.org/licenses/by/3.0/) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Chemistry
Iglesias-Fernández, Javier
Raich, Lluís
Ardèvol, Albert
Rovira, Carme
The complete conformational free energy landscape of β-xylose reveals a two-fold catalytic itinerary for β-xylanases
title The complete conformational free energy landscape of β-xylose reveals a two-fold catalytic itinerary for β-xylanases
title_full The complete conformational free energy landscape of β-xylose reveals a two-fold catalytic itinerary for β-xylanases
title_fullStr The complete conformational free energy landscape of β-xylose reveals a two-fold catalytic itinerary for β-xylanases
title_full_unstemmed The complete conformational free energy landscape of β-xylose reveals a two-fold catalytic itinerary for β-xylanases
title_short The complete conformational free energy landscape of β-xylose reveals a two-fold catalytic itinerary for β-xylanases
title_sort complete conformational free energy landscape of β-xylose reveals a two-fold catalytic itinerary for β-xylanases
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5811086/
https://www.ncbi.nlm.nih.gov/pubmed/29560204
http://dx.doi.org/10.1039/c4sc02240h
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