Mitigating product inhibition in 2'-hydroxybiphenyl-2-sulfinase (DszB) with synthetic glycosylation

dc.contributor.authorLiang, Junbaoen
dc.contributor.authorZheng, Yien
dc.contributor.authorWelborn, Valerieen
dc.date.accessioned2025-07-07T19:07:48Zen
dc.date.available2025-07-07T19:07:48Zen
dc.date.issued2025-07en
dc.description.abstractThe combustion of sulfur-rich crude oil is toxic to the environment, making the removal of sulfur impurities a priority for the sustainable use of liquid fuels. Biodesulfurization via the 4S pathway is a promising approach due to its C-S bond cleavage specificity and mild operating conditions. However, biodesulfurization is not economically viable due to the slow turnover of 2′-hydroxybiphenyl-2-sulfinate desulfinase (DszB), an enzyme catalyzing the conversion of 2′-hydroxybiphenyl-2-sulfinate to 2-hydroxybiphenyl and sulfite. Previous studies have identified product inhibition as the limiting factor in DszB, whereby solvent-exposed protein loops obstruct the active site after substrate binding. This closed conformation is stabilized by hydrophobic interactions between the loops and the product. Here, we propose an artificial glycosylation strategy to mitigate product inhibition in DszB. We modeled glycated DszB in the apo, ligand-bound, and product-bound states with molecular dynamics based on the AMOEBA polarizable force field, and analyzed the chemical positioning of the reactant and product compared to the wild type (WT). We find that the addition of glucose on three Ser loop residues increases the interaction of the loops with water, overcoming the weaker product–loop interactions, and thereby enabling product release. Importantly, the enhanced flexibility of the loops was subtle enough to not heavily disrupt the chemical positioning of the reactant, which suggests that the rate acceleration would be similar to that of the WT.en
dc.description.versionPublished versionen
dc.format.extent10 page(s)en
dc.format.mimetypeapplication/pdfen
dc.identifierARTN e70187 (Article number)en
dc.identifier.doihttps://doi.org/10.1002/pro.70187en
dc.identifier.eissn1469-896Xen
dc.identifier.issn0961-8368en
dc.identifier.issue7en
dc.identifier.orcidWelborn, Valerie [0000-0003-0834-4441]en
dc.identifier.otherPMC12168087en
dc.identifier.pmid40521625en
dc.identifier.urihttps://hdl.handle.net/10919/135771en
dc.identifier.volume34en
dc.language.isoenen
dc.publisherWileyen
dc.relation.urihttps://www.ncbi.nlm.nih.gov/pubmed/40521625en
dc.rightsCreative Commons Attribution 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/en
dc.subject4S pathwayen
dc.subjectAMOEBAen
dc.subjectDszBen
dc.subjectglycationen
dc.subjectmolecular dynamicsen
dc.subjectpolarizable force fielden
dc.subject.meshCarbon-Sulfur Lyasesen
dc.subject.meshCatalytic Domainen
dc.subject.meshGlycosylationen
dc.subject.meshMolecular Dynamics Simulationen
dc.titleMitigating product inhibition in 2'-hydroxybiphenyl-2-sulfinase (DszB) with synthetic glycosylationen
dc.title.serialProtein Scienceen
dc.typeArticle - Refereeden
dc.type.dcmitypeTexten
dc.type.otherArticleen
dcterms.dateAccepted2025-05-21en
pubs.organisational-groupVirginia Techen
pubs.organisational-groupVirginia Tech/Scienceen
pubs.organisational-groupVirginia Tech/Science/Chemistryen
pubs.organisational-groupVirginia Tech/All T&R Facultyen
pubs.organisational-groupVirginia Tech/Science/COS T&R Facultyen

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