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dc.contributor.authorCoufalova, Dominika
dc.contributor.authorRemnant, Lucy
dc.contributor.authorHernychova, Lenka
dc.contributor.authorMuller, Petr
dc.contributor.authorHealy, Alan
dc.contributor.authorKannan, Srinivasaraghavan
dc.contributor.authorWestwood, Nicholas
dc.contributor.authorVerma, Chandra S.
dc.contributor.authorVojtesek, Borek
dc.contributor.authorHupp, Ted R.
dc.contributor.authorHouston, Douglas R.
dc.date.accessioned2020-03-09T00:31:57Z
dc.date.available2020-03-09T00:31:57Z
dc.date.issued2019-05-15
dc.identifier258239114
dc.identifierd3f9af01-de72-4bab-8c64-fd598722090d
dc.identifier85062972830
dc.identifier000464296800007
dc.identifier.citationCoufalova , D , Remnant , L , Hernychova , L , Muller , P , Healy , A , Kannan , S , Westwood , N , Verma , C S , Vojtesek , B , Hupp , T R & Houston , D R 2019 , ' An inter-subunit protein-peptide interface that stabilizes the specific activity and oligomerization of the AAA+ chaperone Reptin ' , Journal of Proteomics , vol. 199 , pp. 89-101 . https://doi.org/10.1016/j.jprot.2019.02.012en
dc.identifier.issn1874-3919
dc.identifier.otherRIS: urn:81E288DA021E9EFAF27551A44AAC8A6A
dc.identifier.otherORCID: /0000-0003-0630-0138/work/56424193
dc.identifier.urihttps://hdl.handle.net/10023/19618
dc.descriptionThe work was supported by: the Czech Science Foundation 16-20860S (PM, LH) and 16-07321S (BV, TH), the project MEYS – NPS I – LO1413, and MH CZ - DRO (MMCI, 00209805); the BBSRC RASOR consortium (BB/C511599/1; United Kingdom); Cancer Research UK (C21383/A6950); The International Centre for Cancer Vaccine Science project carried out within the International Research Agendas programme of the Foundation for Polish Science co-financed by the European Union under the European Regional Development Fund; A*STAR, Singapore and NSCC, Singapore.en
dc.description.abstractReptin is a member of the AAA+ superfamily whose members can exist in equilibrium between monomeric apo forms and ligand bound hexamers. Inter-subunit protein-protein interfaces that stabilize Reptin in its oligomeric state are not well-defined. A self-peptide binding assay identified a protein-peptide interface mapping to an inter-subunit “rim” of the hexamer bridged by Tyrosine-340. A Y340A mutation reduced ADP-dependent oligomer formation using a gel filtration assay, suggesting that Y340 forms a dominant oligomer stabilizing side chain. The monomeric ReptinY340A mutant protein exhibited increased activity to its partner protein AGR2 in an ELISA assay, further suggesting that hexamer formation can preclude certain protein interactions. Hydrogen-deuterium exchange mass spectrometry (HDX-MS) demonstrated that the Y340A mutation attenuated deuterium suppression of Reptin in this motif in the presence of ligand. By contrast, the tyrosine motif of Reptin interacts with a shallower pocket in the hetero-oligomeric structure containing Pontin and HDX-MS revealed no obvious role of the Y340 side chain in stabilizing the Reptin-Pontin oligomer. Molecular dynamic simulations (MDS) rationalized how the Y340A mutation impacts upon a normally stabilizing inter-subunit amino acid contact. MDS also revealed how the D299N mutation can, by contrast, remove oligomer de-stabilizing contacts. These data suggest that the Reptin interactome can be regulated by a ligand dependent equilibrium between monomeric and hexameric forms through a hydrophobic inter-subunit protein-protein interaction motif bridged by Tyrosine-340. Significance Discovering dynamic protein-protein interactions is a fundamental aim of research in the life sciences. An emerging view of protein-protein interactions in higher eukaryotes is that they are driven by small linear polypeptide sequences; the linear motif. We report on the use of linear-peptide motif screens to discover a relatively high affinity peptide-protein interaction for the AAA+ and pro-oncogenic protein Reptin. This peptide interaction site was shown to form a ‘hot-spot’ protein-protein interaction site, and validated to be important for ligand-induced oligomerization of the Reptin protein. These biochemical data provide a foundation to understand how single point mutations in Reptin can impact on its oligomerization and protein-protein interaction landscape.
dc.format.extent13
dc.format.extent8485660
dc.language.isoeng
dc.relation.ispartofJournal of Proteomicsen
dc.subjectQD Chemistryen
dc.subjectDASen
dc.subject.lccQDen
dc.titleAn inter-subunit protein-peptide interface that stabilizes the specific activity and oligomerization of the AAA+ chaperone Reptinen
dc.typeJournal articleen
dc.contributor.institutionUniversity of St Andrews. School of Chemistryen
dc.contributor.institutionUniversity of St Andrews. EaSTCHEMen
dc.contributor.institutionUniversity of St Andrews. Biomedical Sciences Research Complexen
dc.identifier.doi10.1016/j.jprot.2019.02.012
dc.description.statusPeer revieweden
dc.date.embargoedUntil2020-03-09


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