Cargando…

Targeted Mutation of a Non-catalytic Gating Residue Increases the Rate of Pseudomonas aeruginosad-Arginine Dehydrogenase Catalytic Turnover

[Image: see text] Commercial food and l-amino acid industries rely on bioengineered d-amino acid oxidizing enzymes to detect and remove d-amino acid contaminants. However, the bioengineering of enzymes to generate faster biological catalysts has proven difficult as a result of the failure to target...

Descripción completa

Detalles Bibliográficos
Autores principales: Quaye, Joanna Afokai, Ouedraogo, Daniel, Gadda, Giovanni
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10655190/
https://www.ncbi.nlm.nih.gov/pubmed/37933126
http://dx.doi.org/10.1021/acs.jafc.3c05328
_version_ 1785147899877785600
author Quaye, Joanna Afokai
Ouedraogo, Daniel
Gadda, Giovanni
author_facet Quaye, Joanna Afokai
Ouedraogo, Daniel
Gadda, Giovanni
author_sort Quaye, Joanna Afokai
collection PubMed
description [Image: see text] Commercial food and l-amino acid industries rely on bioengineered d-amino acid oxidizing enzymes to detect and remove d-amino acid contaminants. However, the bioengineering of enzymes to generate faster biological catalysts has proven difficult as a result of the failure to target specific kinetic steps that limit enzyme turnover, k(cat), and the poor understanding of loop dynamics critical for catalysis. Pseudomonas aeruginosad-arginine dehydrogenase (PaDADH) oxidizes most d-amino acids and is a good candidate for application in the l-amino acid and food industries. The side chain of the loop L2 E(246) residue located at the entrance of the PaDADH active site pocket potentially favors the closed active site conformation and secures the substrate upon binding. This study used site-directed mutagenesis, steady-state, and rapid reaction kinetics to generate the glutamine, glycine, and leucine variants and investigate whether increasing the rate of product release could translate to an increased enzyme turnover rate. Upon E(246) mutation to glycine, there was an increased rate of d-arginine turnover k(cat) from 122 to 500 s(–1). Likewise, the k(cat) values increased 2-fold for the glutamine or leucine variants. Thus, we have engineered a faster biocatalyst for industrial applications by selectively increasing the rate of the PaDADH product release.
format Online
Article
Text
id pubmed-10655190
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-106551902023-11-17 Targeted Mutation of a Non-catalytic Gating Residue Increases the Rate of Pseudomonas aeruginosad-Arginine Dehydrogenase Catalytic Turnover Quaye, Joanna Afokai Ouedraogo, Daniel Gadda, Giovanni J Agric Food Chem [Image: see text] Commercial food and l-amino acid industries rely on bioengineered d-amino acid oxidizing enzymes to detect and remove d-amino acid contaminants. However, the bioengineering of enzymes to generate faster biological catalysts has proven difficult as a result of the failure to target specific kinetic steps that limit enzyme turnover, k(cat), and the poor understanding of loop dynamics critical for catalysis. Pseudomonas aeruginosad-arginine dehydrogenase (PaDADH) oxidizes most d-amino acids and is a good candidate for application in the l-amino acid and food industries. The side chain of the loop L2 E(246) residue located at the entrance of the PaDADH active site pocket potentially favors the closed active site conformation and secures the substrate upon binding. This study used site-directed mutagenesis, steady-state, and rapid reaction kinetics to generate the glutamine, glycine, and leucine variants and investigate whether increasing the rate of product release could translate to an increased enzyme turnover rate. Upon E(246) mutation to glycine, there was an increased rate of d-arginine turnover k(cat) from 122 to 500 s(–1). Likewise, the k(cat) values increased 2-fold for the glutamine or leucine variants. Thus, we have engineered a faster biocatalyst for industrial applications by selectively increasing the rate of the PaDADH product release. American Chemical Society 2023-11-07 /pmc/articles/PMC10655190/ /pubmed/37933126 http://dx.doi.org/10.1021/acs.jafc.3c05328 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Quaye, Joanna Afokai
Ouedraogo, Daniel
Gadda, Giovanni
Targeted Mutation of a Non-catalytic Gating Residue Increases the Rate of Pseudomonas aeruginosad-Arginine Dehydrogenase Catalytic Turnover
title Targeted Mutation of a Non-catalytic Gating Residue Increases the Rate of Pseudomonas aeruginosad-Arginine Dehydrogenase Catalytic Turnover
title_full Targeted Mutation of a Non-catalytic Gating Residue Increases the Rate of Pseudomonas aeruginosad-Arginine Dehydrogenase Catalytic Turnover
title_fullStr Targeted Mutation of a Non-catalytic Gating Residue Increases the Rate of Pseudomonas aeruginosad-Arginine Dehydrogenase Catalytic Turnover
title_full_unstemmed Targeted Mutation of a Non-catalytic Gating Residue Increases the Rate of Pseudomonas aeruginosad-Arginine Dehydrogenase Catalytic Turnover
title_short Targeted Mutation of a Non-catalytic Gating Residue Increases the Rate of Pseudomonas aeruginosad-Arginine Dehydrogenase Catalytic Turnover
title_sort targeted mutation of a non-catalytic gating residue increases the rate of pseudomonas aeruginosad-arginine dehydrogenase catalytic turnover
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10655190/
https://www.ncbi.nlm.nih.gov/pubmed/37933126
http://dx.doi.org/10.1021/acs.jafc.3c05328
work_keys_str_mv AT quayejoannaafokai targetedmutationofanoncatalyticgatingresidueincreasestherateofpseudomonasaeruginosadargininedehydrogenasecatalyticturnover
AT ouedraogodaniel targetedmutationofanoncatalyticgatingresidueincreasestherateofpseudomonasaeruginosadargininedehydrogenasecatalyticturnover
AT gaddagiovanni targetedmutationofanoncatalyticgatingresidueincreasestherateofpseudomonasaeruginosadargininedehydrogenasecatalyticturnover