Insights into the molecular determinants of thermal stability in halohydrin dehalogenase HheD2
dc.contributor.author
dc.date.accessioned
2021-02-22T10:58:13Z
dc.date.available
2021-02-22T10:58:13Z
dc.date.issued
2021-02-19
dc.identifier.issn
1742-464X
dc.identifier.uri
dc.description.abstract
Halohydrin dehalogenases (HHDHs) are promising enzymes for application in biocatalysis due to their promiscuous epoxide ring opening activity with various anionic nucleophiles. So far, 7 different HHDH subtypes A to G have been reported with subtype D containing the by far largest number of enzymes. Moreover, several characterized members of subtype D have been reported to display outstanding characteristics such as high catalytic activity, broad substrate spectra or remarkable thermal stability. Yet, no structure of a D‐type halohydrin dehalogenase has been reported to date that could be used to investigate and understand those features on a molecular level. We therefore solved the crystal structure of HheD2 from gamma proteobacterium HTCC2207 at 1.6 Å resolution, and used it as a starting point for targeted mutagenesis in combination with molecular dynamics (MD) simulation, in order to study the low thermal stability of HheD2 in comparison to other members of subtype D. This revealed a hydrogen bond between conserved residues Q160 and D198 to be connected with a high catalytic activity of this enzyme. Moreover, a flexible surface region containing two α‐helices was identified to impact thermal stability of HheD2. Exchange of this surface region by residues of HheD3 yielded a variant with 10 °C higher melting temperature as well as reaction temperature optimum. Overall, our results provide important insights into the structure‐function relationship of HheD2 and presumably for other D‐type halohydrin dehalogenases
dc.description.sponsorship
This work has received funding from the European Union’s Horizon 2020 research and innovation
programme under grant agreement No 635595 (CARBAZYMES). This work was further supported by
grants PGC2018-101370-B-100 (the Spanish Ministry of Science and Innovation and EU FEDER fonds)
and the Generalitat de Catalunya (2017SGR-1192). We also thank the Generalitat de Catalunya for the
emerging group CompBioLab (2017 SGR-1707) and Spanish MINECO for project PGC2018-102192-BI00. J.I.F. was supported by the European Community for Marie Curie fellowship (H2020-MSCA-IF-2016-
753045) and Juan de la Cierva-Incorporación fellowship (IJCI-2017-34129). S.O. is grateful to the funding
from the European Research Council (ERC) under the European Union’s Horizon 2020 research and
innovation program (ERC-2015-StG-679001)
dc.format.mimetype
application/pdf
dc.language.iso
eng
dc.publisher
Wiley
dc.relation
info:eu-repo/grantAgreement/AEI/Plan Estatal de Investigación Científica y Técnica y de Innovación 2017-2020/PGC2018-102192-B-I00/ES/EVOLUCION COMPUTACIONAL DE ENZIMAS MEDIANTE LA EXPLORACION DE LA SUPERFICIE CONFORMACIONAL/
dc.relation.isformatof
Reproducció digital del document publicat a: https://doi.org/10.1111/febs.15777
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FEBS Journal, 2021, vol. 288, núm. 15, p. 4683-4701
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Articles publicats (D-Q)
dc.rights
Reconeixement 4.0 Internacional
dc.rights.uri
dc.subject
dc.title
Insights into the molecular determinants of thermal stability in halohydrin dehalogenase HheD2
dc.type
info:eu-repo/semantics/article
dc.rights.accessRights
info:eu-repo/semantics/openAccess
dc.relation.projectID
info:eu-repo/grantAgreement/EC/H2020/753045/EU/COMPUTATIONAL EVOLUTION OF ENZYME VARIANTS THROUGH CONFORMATIONAL NETWORKS/EnzVolNet
info:eu-repo/grantAgreement/EC/H2020/679001/EU/Network models for the computational design of proficient enzymes/NetMoDEzyme
dc.type.version
info:eu-repo/semantics/publishedVersion
dc.identifier.doi
dc.identifier.idgrec
033134
dc.contributor.funder
dc.type.peerreviewed
peer-reviewed
dc.relation.FundingProgramme
dc.relation.ProjectAcronym
dc.identifier.eissn
1742-4658