Structure elucidation of the elusive Enzyme I monomer reveals the molecular mechanisms linking oligomerization and enzymatic activity

dc.contributor.author Nguyen, Trang
dc.contributor.author Ghirlando, Rodolfo
dc.contributor.author Roche, Julien
dc.contributor.author Venditti, Vincenzo
dc.contributor.department Department of Chemistry
dc.contributor.department Biochemistry, Biophysics and Molecular Biology, Roy J. Carver Department of
dc.date 2021-05-21T04:54:52.000
dc.date.accessioned 2021-08-14T03:02:49Z
dc.date.available 2021-08-14T03:02:49Z
dc.date.issued 2021-05-18
dc.description.abstract <p>Enzyme I (EI) is a phosphotransferase enzyme responsible for converting phosphoenolpyruvate (PEP) into pyruvate. This reaction initiates a five-step phosphorylation cascade in the bacterial phosphotransferase (PTS) transduction pathway. Under physiological conditions, EI exists in an equilibrium between a functional dimer and an inactive monomer. The monomer–dimer equilibrium is a crucial factor regulating EI activity and the phosphorylation state of the overall PTS. Experimental studies of EI’s monomeric state have yet been hampered by the dimer’s high thermodynamic stability, which prevents its characterization by standard structural techniques. In this study, we modified the dimerization domain of EI (EIC) by mutating three amino acids involved in the formation of intersubunit salt bridges. The engineered variant forms an active dimer in solution that can bind and hydrolyze PEP. Using hydrostatic pressure as an additional perturbation, we were then able to study the complete dissociation of the variant from 1 bar to 2.5 kbar in the absence and the presence of EI natural ligands. Backbone residual dipolar couplings collected under high-pressure conditions allowed us to determine the conformational ensemble of the isolated EIC monomeric state in solution. Our calculations reveal that three catalytic loops near the dimerization interface become unstructured upon monomerization, preventing the monomeric enzyme from binding its natural substrate. This study provides an atomic-level characterization of EI’s monomeric state and highlights the role of the catalytic loops as allosteric connectors controlling both the activity and oligomerization of the enzyme.</p>
dc.description.comments <p>This article is published as Nguyen, Trang T., Rodolfo Ghirlando, Julien Roche, and Vincenzo Venditti. "Structure elucidation of the elusive Enzyme I monomer reveals the molecular mechanisms linking oligomerization and enzymatic activity." <em>Proceedings of the National Academy of Sciences</em> 118, no. 20 (2021): e2100298118. DOI: <a href="https://doi.org/10.1073/pnas.2100298118" target="_blank">10.1073/pnas.2100298118</a>.</p>
dc.format.mimetype application/pdf
dc.identifier archive/lib.dr.iastate.edu/chem_pubs/1312/
dc.identifier.articleid 2317
dc.identifier.contextkey 23020177
dc.identifier.s3bucket isulib-bepress-aws-west
dc.identifier.submissionpath chem_pubs/1312
dc.identifier.uri https://dr.lib.iastate.edu/handle/20.500.12876/KrZJlNAr
dc.language.iso en
dc.source.bitstream archive/lib.dr.iastate.edu/chem_pubs/1312/2021_VendittiVincenzo_StructureEludication.pdf|||Fri Jan 14 19:45:07 UTC 2022
dc.source.uri 10.1073/pnas.2100298118
dc.subject.disciplines Biochemistry
dc.subject.disciplines Medicinal-Pharmaceutical Chemistry
dc.subject.disciplines Molecular Biology
dc.subject.keywords phosphotransferase system
dc.subject.keywords carbon metabolism
dc.subject.keywords solution NMR
dc.subject.keywords enzyme regulation
dc.subject.keywords high pressure
dc.title Structure elucidation of the elusive Enzyme I monomer reveals the molecular mechanisms linking oligomerization and enzymatic activity
dc.type article
dc.type.genre article
dspace.entity.type Publication
relation.isAuthorOfPublication 275c368b-2994-4c2e-98ae-c5c0af97640a
relation.isOrgUnitOfPublication 42864f6e-7a3d-4be3-8b5a-0ae3c3830a11
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