Cargando…

Unveiling molecular details behind improved activity at neutral to alkaline pH of an engineered DyP-type peroxidase

DyP-type peroxidases (DyPs) are microbial enzymes that catalyze the oxidation of a wide range of substrates, including synthetic dyes, lignin-derived compounds, and metals, such as Mn(2+) and Fe(2+), and have enormous biotechnological potential in biorefineries. However, many questions on the molecu...

Descripción completa

Detalles Bibliográficos
Autores principales: Borges, Patrícia T., Silva, Diogo, Silva, Tomás F.D., Brissos, Vânia, Cañellas, Marina, Lucas, Maria Fátima, Masgrau, Laura, Melo, Eduardo P., Machuqueiro, Miguel, Frazão, Carlos, Martins, Lígia O.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Research Network of Computational and Structural Biotechnology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9334217/
https://www.ncbi.nlm.nih.gov/pubmed/35950185
http://dx.doi.org/10.1016/j.csbj.2022.07.032
_version_ 1784759054177927168
author Borges, Patrícia T.
Silva, Diogo
Silva, Tomás F.D.
Brissos, Vânia
Cañellas, Marina
Lucas, Maria Fátima
Masgrau, Laura
Melo, Eduardo P.
Machuqueiro, Miguel
Frazão, Carlos
Martins, Lígia O.
author_facet Borges, Patrícia T.
Silva, Diogo
Silva, Tomás F.D.
Brissos, Vânia
Cañellas, Marina
Lucas, Maria Fátima
Masgrau, Laura
Melo, Eduardo P.
Machuqueiro, Miguel
Frazão, Carlos
Martins, Lígia O.
author_sort Borges, Patrícia T.
collection PubMed
description DyP-type peroxidases (DyPs) are microbial enzymes that catalyze the oxidation of a wide range of substrates, including synthetic dyes, lignin-derived compounds, and metals, such as Mn(2+) and Fe(2+), and have enormous biotechnological potential in biorefineries. However, many questions on the molecular basis of enzyme function and stability remain unanswered. In this work, high-resolution structures of PpDyP wild-type and two engineered variants (6E10 and 29E4) generated by directed evolution were obtained. The X-ray crystal structures revealed the typical ferredoxin-like folds, with three heme access pathways, two tunnels, and one cavity, limited by three long loops including catalytic residues. Variant 6E10 displays significantly increased loops’ flexibility that favors function over stability: despite the considerably higher catalytic efficiency, this variant shows poorer protein stability compared to wild-type and 29E4 variants. Constant-pH MD simulations revealed a more positively charged microenvironment near the heme pocket of variant 6E10, particularly in the neutral to alkaline pH range. This microenvironment affects enzyme activity by modulating the pK(a) of essential residues in the heme vicinity and should account for variant 6E10 improved activity at pH 7–8 compared to the wild-type and 29E4 that show optimal enzymatic activity close to pH 4. Our findings shed light on the structure–function relationships of DyPs at the molecular level, including their pH-dependent conformational plasticity. These are essential for understanding and engineering the catalytic properties of DyPs for future biotechnological applications.
format Online
Article
Text
id pubmed-9334217
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Research Network of Computational and Structural Biotechnology
record_format MEDLINE/PubMed
spelling pubmed-93342172022-08-09 Unveiling molecular details behind improved activity at neutral to alkaline pH of an engineered DyP-type peroxidase Borges, Patrícia T. Silva, Diogo Silva, Tomás F.D. Brissos, Vânia Cañellas, Marina Lucas, Maria Fátima Masgrau, Laura Melo, Eduardo P. Machuqueiro, Miguel Frazão, Carlos Martins, Lígia O. Comput Struct Biotechnol J Research Article DyP-type peroxidases (DyPs) are microbial enzymes that catalyze the oxidation of a wide range of substrates, including synthetic dyes, lignin-derived compounds, and metals, such as Mn(2+) and Fe(2+), and have enormous biotechnological potential in biorefineries. However, many questions on the molecular basis of enzyme function and stability remain unanswered. In this work, high-resolution structures of PpDyP wild-type and two engineered variants (6E10 and 29E4) generated by directed evolution were obtained. The X-ray crystal structures revealed the typical ferredoxin-like folds, with three heme access pathways, two tunnels, and one cavity, limited by three long loops including catalytic residues. Variant 6E10 displays significantly increased loops’ flexibility that favors function over stability: despite the considerably higher catalytic efficiency, this variant shows poorer protein stability compared to wild-type and 29E4 variants. Constant-pH MD simulations revealed a more positively charged microenvironment near the heme pocket of variant 6E10, particularly in the neutral to alkaline pH range. This microenvironment affects enzyme activity by modulating the pK(a) of essential residues in the heme vicinity and should account for variant 6E10 improved activity at pH 7–8 compared to the wild-type and 29E4 that show optimal enzymatic activity close to pH 4. Our findings shed light on the structure–function relationships of DyPs at the molecular level, including their pH-dependent conformational plasticity. These are essential for understanding and engineering the catalytic properties of DyPs for future biotechnological applications. Research Network of Computational and Structural Biotechnology 2022-07-21 /pmc/articles/PMC9334217/ /pubmed/35950185 http://dx.doi.org/10.1016/j.csbj.2022.07.032 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Borges, Patrícia T.
Silva, Diogo
Silva, Tomás F.D.
Brissos, Vânia
Cañellas, Marina
Lucas, Maria Fátima
Masgrau, Laura
Melo, Eduardo P.
Machuqueiro, Miguel
Frazão, Carlos
Martins, Lígia O.
Unveiling molecular details behind improved activity at neutral to alkaline pH of an engineered DyP-type peroxidase
title Unveiling molecular details behind improved activity at neutral to alkaline pH of an engineered DyP-type peroxidase
title_full Unveiling molecular details behind improved activity at neutral to alkaline pH of an engineered DyP-type peroxidase
title_fullStr Unveiling molecular details behind improved activity at neutral to alkaline pH of an engineered DyP-type peroxidase
title_full_unstemmed Unveiling molecular details behind improved activity at neutral to alkaline pH of an engineered DyP-type peroxidase
title_short Unveiling molecular details behind improved activity at neutral to alkaline pH of an engineered DyP-type peroxidase
title_sort unveiling molecular details behind improved activity at neutral to alkaline ph of an engineered dyp-type peroxidase
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9334217/
https://www.ncbi.nlm.nih.gov/pubmed/35950185
http://dx.doi.org/10.1016/j.csbj.2022.07.032
work_keys_str_mv AT borgespatriciat unveilingmoleculardetailsbehindimprovedactivityatneutraltoalkalinephofanengineereddyptypeperoxidase
AT silvadiogo unveilingmoleculardetailsbehindimprovedactivityatneutraltoalkalinephofanengineereddyptypeperoxidase
AT silvatomasfd unveilingmoleculardetailsbehindimprovedactivityatneutraltoalkalinephofanengineereddyptypeperoxidase
AT brissosvania unveilingmoleculardetailsbehindimprovedactivityatneutraltoalkalinephofanengineereddyptypeperoxidase
AT canellasmarina unveilingmoleculardetailsbehindimprovedactivityatneutraltoalkalinephofanengineereddyptypeperoxidase
AT lucasmariafatima unveilingmoleculardetailsbehindimprovedactivityatneutraltoalkalinephofanengineereddyptypeperoxidase
AT masgraulaura unveilingmoleculardetailsbehindimprovedactivityatneutraltoalkalinephofanengineereddyptypeperoxidase
AT meloeduardop unveilingmoleculardetailsbehindimprovedactivityatneutraltoalkalinephofanengineereddyptypeperoxidase
AT machuqueiromiguel unveilingmoleculardetailsbehindimprovedactivityatneutraltoalkalinephofanengineereddyptypeperoxidase
AT frazaocarlos unveilingmoleculardetailsbehindimprovedactivityatneutraltoalkalinephofanengineereddyptypeperoxidase
AT martinsligiao unveilingmoleculardetailsbehindimprovedactivityatneutraltoalkalinephofanengineereddyptypeperoxidase