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Tailoring the specificity of the type C feruloyl esterase FoFaeC from Fusarium oxysporum towards methyl sinapate by rational redesign based on small molecule docking simulations

The type C feruloyl esterase FoFaeC from Fusarium oxysporum is a newly discovered enzyme with high potential for use in the hydrolysis of lignocellulosic biomass but it shows low activity towards sinapates. In this work, small molecule docking simulations were employed in order to identify important...

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Autores principales: Antonopoulou, Io, Hunt, Cameron, Cerullo, Gabriella, Varriale, Simona, Gerogianni, Alexandra, Faraco, Vincenza, Rova, Ulrika, Christakopoulos, Paul
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5967792/
https://www.ncbi.nlm.nih.gov/pubmed/29795702
http://dx.doi.org/10.1371/journal.pone.0198127
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author Antonopoulou, Io
Hunt, Cameron
Cerullo, Gabriella
Varriale, Simona
Gerogianni, Alexandra
Faraco, Vincenza
Rova, Ulrika
Christakopoulos, Paul
author_facet Antonopoulou, Io
Hunt, Cameron
Cerullo, Gabriella
Varriale, Simona
Gerogianni, Alexandra
Faraco, Vincenza
Rova, Ulrika
Christakopoulos, Paul
author_sort Antonopoulou, Io
collection PubMed
description The type C feruloyl esterase FoFaeC from Fusarium oxysporum is a newly discovered enzyme with high potential for use in the hydrolysis of lignocellulosic biomass but it shows low activity towards sinapates. In this work, small molecule docking simulations were employed in order to identify important residues for the binding of the four model methyl esters of hydroxycinnamic acids, methyl ferulate/caffeate/sinapate/p-coumarate, to the predicted structure of FoFaeC. Subsequently rational redesign was applied to the enzyme’ active site in order to improve its specificity towards methyl sinapate. A double mutation (F230H/T202V) was considered to provide hydrophobic environment for stabilization of the methoxy substitution on sinapate and a larger binding pocket. Five mutant clones and the wild type were produced in Pichia pastoris and biochemically characterized. All clones showed improved activity, substrate affinity, catalytic efficiency and turnover rate compared to the wild type against methyl sinapate, with clone P13 showing a 5-fold improvement in catalytic efficiency. Although the affinity of all mutant clones was improved against the four model substrates, the catalytic efficiency and turnover rate decreased for the substrates containing a hydroxyl substitution.
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spelling pubmed-59677922018-06-08 Tailoring the specificity of the type C feruloyl esterase FoFaeC from Fusarium oxysporum towards methyl sinapate by rational redesign based on small molecule docking simulations Antonopoulou, Io Hunt, Cameron Cerullo, Gabriella Varriale, Simona Gerogianni, Alexandra Faraco, Vincenza Rova, Ulrika Christakopoulos, Paul PLoS One Research Article The type C feruloyl esterase FoFaeC from Fusarium oxysporum is a newly discovered enzyme with high potential for use in the hydrolysis of lignocellulosic biomass but it shows low activity towards sinapates. In this work, small molecule docking simulations were employed in order to identify important residues for the binding of the four model methyl esters of hydroxycinnamic acids, methyl ferulate/caffeate/sinapate/p-coumarate, to the predicted structure of FoFaeC. Subsequently rational redesign was applied to the enzyme’ active site in order to improve its specificity towards methyl sinapate. A double mutation (F230H/T202V) was considered to provide hydrophobic environment for stabilization of the methoxy substitution on sinapate and a larger binding pocket. Five mutant clones and the wild type were produced in Pichia pastoris and biochemically characterized. All clones showed improved activity, substrate affinity, catalytic efficiency and turnover rate compared to the wild type against methyl sinapate, with clone P13 showing a 5-fold improvement in catalytic efficiency. Although the affinity of all mutant clones was improved against the four model substrates, the catalytic efficiency and turnover rate decreased for the substrates containing a hydroxyl substitution. Public Library of Science 2018-05-24 /pmc/articles/PMC5967792/ /pubmed/29795702 http://dx.doi.org/10.1371/journal.pone.0198127 Text en © 2018 Antonopoulou 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Antonopoulou, Io
Hunt, Cameron
Cerullo, Gabriella
Varriale, Simona
Gerogianni, Alexandra
Faraco, Vincenza
Rova, Ulrika
Christakopoulos, Paul
Tailoring the specificity of the type C feruloyl esterase FoFaeC from Fusarium oxysporum towards methyl sinapate by rational redesign based on small molecule docking simulations
title Tailoring the specificity of the type C feruloyl esterase FoFaeC from Fusarium oxysporum towards methyl sinapate by rational redesign based on small molecule docking simulations
title_full Tailoring the specificity of the type C feruloyl esterase FoFaeC from Fusarium oxysporum towards methyl sinapate by rational redesign based on small molecule docking simulations
title_fullStr Tailoring the specificity of the type C feruloyl esterase FoFaeC from Fusarium oxysporum towards methyl sinapate by rational redesign based on small molecule docking simulations
title_full_unstemmed Tailoring the specificity of the type C feruloyl esterase FoFaeC from Fusarium oxysporum towards methyl sinapate by rational redesign based on small molecule docking simulations
title_short Tailoring the specificity of the type C feruloyl esterase FoFaeC from Fusarium oxysporum towards methyl sinapate by rational redesign based on small molecule docking simulations
title_sort tailoring the specificity of the type c feruloyl esterase fofaec from fusarium oxysporum towards methyl sinapate by rational redesign based on small molecule docking simulations
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5967792/
https://www.ncbi.nlm.nih.gov/pubmed/29795702
http://dx.doi.org/10.1371/journal.pone.0198127
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