Search results for "TERT"

showing 10 items of 1210 documents

The NMR structure of the sensory domain of the membranous two-component fumarate sensor (histidine protein kinase) DcuS of Escherichia coli

2003

The structure of the water-soluble, periplasmic domain of the fumarate sensor DcuS (DcuS-pd) has been determined by NMR spectroscopy in solution. DcuS is a prototype for a sensory histidine kinase with transmembrane signal transfer. DcuS belongs to the CitA family of sensors that are specific for sensing di- and tricarboxylates. The periplasmic domain is folded autonomously and shows helices at the N and the C terminus, suggesting direct linking or connection to helices in the two transmembrane regions. The structure constitutes a novel fold. The nearest structural neighbor is the Per-Arnt-Sim domain of the photoactive yellow protein that binds small molecules covalently. Residues Arg107, H…

Models MolecularProtein FoldingMagnetic Resonance SpectroscopyProtein ConformationStereochemistryMolecular Sequence DataReceptors Cell SurfaceBiologyArginineBiochemistryProtein Structure SecondaryBacterial ProteinsFumaratesEscherichia coliTransferaseHistidineAmino Acid SequenceProtein kinase AMolecular BiologyHistidineBinding SitesEscherichia coli ProteinsC-terminusCell MembraneHistidine kinaseCell BiologyNuclear magnetic resonance spectroscopyPeriplasmic spaceChemoreceptor CellsTransmembrane proteinProtein Structure TertiaryCrystallographyMutationPeriplasmProtein KinasesSignal Transduction
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Mutational analysis of disulfide bonds in the trypsin-reactive subdomain of a Bowman-Birk-type inhibitor of trypsin and chymotrypsin--cooperative ver…

1998

It is widely believed that protein folding is a hierarchical process proceeding from secondary structure via subdomains and domains towards the complete tertiary structure. Accordingly, protein subdomains should behave as independent folding units. However, this prediction would underestimate the well-established structural significance of tertiary context and domain interfaces in proteins. The principal objective of this work was to distinguish between autonomous and cooperative refolding of protein subdomains by means of mutational analysis. The double-headed Bowman-Birk inhibitor of trypsin and chymotrypsin of known crystal structure was selected for study. The relative orientation of th…

Models MolecularProtein FoldingProtein ConformationTrypsin inhibitorMolecular Sequence DataContext (language use)BiochemistryProtein Structure SecondaryProtein structureDrug StabilityEscherichia coliChymotrypsinTrypsinAmino Acid SequenceDisulfidesCloning MolecularProtein secondary structureTrypsin Inhibitor Bowman-Birk SoybeanChymotrypsinbiologyBase SequenceChemistryGenetic VariationDNAProtein tertiary structureRecombinant ProteinsProtein Structure TertiaryFolding (chemistry)Crystallographybiology.proteinBiophysicsMutagenesis Site-DirectedProtein foldingEuropean journal of biochemistry
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Design of a bivalent peptide with two independent elements of secondary structure able to fold autonomously.

2008

This article describes a strategy to develop, starting from a de novo design, bivalent peptides containing two different (alpha-helix and beta-hairpin) and independent secondary-structure elements. The design was based on the use of conformationally restricted peptide libraries. Structural characterization by NMR revealed that the peptides were stable and did not show any long-range NOE interactions between the N-terminal beta-hairpin and the C-terminal alpha-helix. These results suggest that the two elements of secondary structure are stable and well folded. Copyright (C) 2008 European Peptide Society and John Wiley & Sons. Ltd.

Models MolecularProtein FoldingStereochemistryMolecular Sequence DataPeptideBiochemistryBivalent (genetics)Protein Structure Secondarybivalent peptidesNMR spectroscopyStructural BiologyDrug DiscoveryAmino Acid SequenceMolecular BiologyProtein secondary structureNuclear Magnetic Resonance BiomolecularPharmacologychemistry.chemical_classificationconformationally definedChemistrypeptide librariesOrganic ChemistryGeneral MedicineNuclear magnetic resonance spectroscopyCombinatorial chemistryProtein Structure Tertiarypeptide designMolecular MedicinePeptidesJournal of peptide science : an official publication of the European Peptide Society
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Evidence for Water-Tuned Structural Differences in Proteins: An Approach Emphasizing Variations in Local Hydrophilicity

2012

We present experimental evidence for the significant effect that water can have on the functional structure of proteins in solution. Human (HSA) and Bovine Serum Albumin (BSA) have an amino acid sequence identity of 75.52% and are chosen as model proteins. We employ EPR-based nanoscale distance measurements using double electron-electron resonance (DEER) spectroscopy and both albumins loaded with long chain fatty acids (FAs) in solution to globally (yet indirectly) characterize the tertiary protein structures from the bound ligands' points of view. The complete primary structures and crystal structures of HSA and as of recently also BSA are available. We complement the picture as we have re…

Models MolecularProtein StructureMedical PhysicsNon-Clinical MedicineProtein ConformationMaterials ScienceBiophysicsMolecular Conformationlcsh:MedicineElectronsLigandsBiochemistryPhysical ChemistryAnalytical ChemistryMacromolecular Structure AnalysisAnimalsHumanslcsh:ScienceBiologySerum AlbuminQuantum MechanicsPhysicslcsh:RFatty AcidsElectron Spin Resonance SpectroscopyProteinsComputational BiologyWaterSerum Albumin BovineProtein Structure Tertiarybody regionsChemistrySpectrophotometryInterdisciplinary PhysicsMedicinelcsh:QMaterials CharacterizationCattleMedicinal ChemistryHydrophobic and Hydrophilic InteractionsResearch ArticleProtein BindingPLoS ONE
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Theoretical Study of the Catalytic Mechanism of DNA-(N4-Cytosine)-Methyltransferase from the Bacterium Proteus vulgaris

2010

In this paper the reaction mechanism for methylation of cytosine at the exocyclic N4 position catalyzed by M.PvuII has been explored by means of hybrid quantum mechanics/molecular mechanics (QM/MM) methods. A reaction model was prepared by placing a single cytosine base in the active site of the enzyme. In this model the exocyclic amino group of the base establishes hydrogen bond interactions with the hydroxyl oxygen atom of Ser53 and the carbonyl oxygen atom of Pro54. The reaction mechanism involves a direct methyl transfer from AdoMet to the N4 atom and a proton transfer from this atom to Ser53, which in turn transfers a proton to Asp96. Different timings for the proton transfers and meth…

Models MolecularReaction mechanismProtonbiologyHydrogen bondStereochemistrySite-Specific DNA-Methyltransferase (Cytosine-N4-Specific)Active siteMethylationDNA MethylationPhotochemistryProtein Structure TertiarySurfaces Coatings and FilmsCatalysischemistry.chemical_compoundchemistryBiocatalysisMaterials Chemistrybiology.proteinProteus vulgarisQuantum TheoryPhysical and Theoretical ChemistryCytosineDNAThe Journal of Physical Chemistry B
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Structural requirements for V2 vasopressin receptor proteolytic cleavage.

1999

The ligand-induced proteolytic cleavage of the V2 vasopressin receptor transiently expressed in COS cells was investigated. After incubation of the cell membranes with a photoreactive ligand possessing full agonistic properties for V2 receptors, approximately 90% of the porcine and bovine V2 vasopressin receptors were cleaved in the upper part of transmembrane helix 2 at a heptapeptide sequence conserved in both vasopressin and oxytocin receptors. The oxytocin receptor was completely resistant to proteolysis after binding the same photoreactive ligand, which is only a partial agonist for this receptor. Chimeric V2/oxytocin receptors obtained by transfer of extracellular domains of the oxyto…

Models MolecularReceptors VasopressinDNA ComplementaryTime FactorsProtein ConformationSwineMolecular Sequence DataBiologyLigandsTransfectionBiochemistryArginine vasopressin receptor 2Enzyme-linked receptorCyclic AMPAnimalsHumansPoint Mutation5-HT5A receptorAmino Acid SequenceCloning MolecularReceptorProtease-activated receptor 2Vasopressin receptorArginine vasopressin receptor 1BDose-Response Relationship DrugSequence Homology Amino AcidProteinsOxytocin receptorProtein Structure TertiaryEnzyme ActivationBiochemistryMicroscopy FluorescenceReceptors OxytocinType C PhospholipasesCOS CellsMutagenesis Site-DirectedCattlehormones hormone substitutes and hormone antagonistsAdenylyl CyclasesProtein BindingEuropean journal of biochemistry
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Small-angle X-ray scattering reveals compact domain-domain interactions in the N-terminal region of filamin C

2014

Filamins are multi-domain, actin cross-linking, and scaffolding proteins. In addition to the actin cross-linking function, filamins have a role in mechanosensor signaling. The mechanosensor function is mediated by domain-domain interaction in the C-terminal region of filamins. Recently, we have shown that there is a three-domain interaction module in the Nterminal region of filamins, where the neighboring domains stabilize the structure of the middle domain and thereby regulate its interaction with ligands. In this study, we have used small-angle X-ray scattering as a tool to screen for potential domain-domain interactions in the N-terminal region. We found evidence of four domain-domain in…

Models MolecularScaffold proteinProtein StructureProtein ConformationFilaminslcsh:Medicinemacromolecular substancesBiologyFilaminBiochemistryProtein–protein interactionProtein structureX-Ray Diffractioncompact domain-domain interactionsScattering Small AngleMacromolecular Structure AnalysisProtein InteractionsCytoskeletonlcsh:ScienceMolecular BiologyActinMultidisciplinarySmall-angle X-ray scatteringlcsh:Rta1182Biology and Life SciencesProteinsComputational BiologyRecombinant ProteinsProtein Structure TertiaryCell biologyCytoskeletal Proteinssmall-angle X-ray scatteringDomain (ring theory)Biophysicslcsh:QGlobular ProteinsStructural ProteinsResearch Articlefilamin CPloS One
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Glutamate 270 plays an essential role in K+-activation and domain closure ofThermus thermophilusisopropylmalate dehydrogenase

2014

The mutant E270A of Thermus thermophilus 3-isopropylmalate dehydrogenase exhibits largely reduced (∼1%) catalytic activity and negligible activation by K(+) compared to the wild-type enzyme. A 3-4 kcal/mol increase in the activation energy of the catalysed reaction upon this mutation could also be predicted by QM/MM calculations. In the X-ray structure of the E270A mutant a water molecule was observed to take the place of K(+). SAXS and FRET experiments revealed the essential role of E270 in stabilisation of the active domain-closed conformation of the enzyme. In addition, E270 seems to position K(+) into close proximity of the nicotinamide ring of NAD(+) and the electron-withdrawing effect…

Models MolecularStereochemistry030303 biophysicsMutantBiophysicsGlutamic AcidLarge scale facilities for research with photons neutrons and ionsSmall angle X-ray scatteringDehydrogenaseBiochemistry3-Isopropylmalate Dehydrogenase03 medical and health scienceschemistry.chemical_compoundIsopropylmalate dehydrogenaseFluorescence resonance energy transferStructural BiologyOxidoreductaseGeneticsMolecular BiologyX-ray crystallography030304 developmental biologychemistry.chemical_classificationSite-directed mutagenesis0303 health sciencesNicotinamidebiologyThermus thermophilusActivation by K+Cell BiologyThermus thermophilusbiology.organism_classificationProtein Structure TertiaryMOPSEnzyme ActivationKineticsCrystallographyEnzymechemistryMutationNAD+ kinaseFEBS Letters
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Saccharide-induced peptide conformation in glycopeptides of the recognition region of LI-cadherin.

2006

Models MolecularStereochemistryChemistryCadherinMolecular Sequence DataGlycopeptidesGeneral ChemistryCadherinsCrystallography X-RayCatalysisGlycopeptidePeptide ConformationProtein Structure TertiaryLI-CADHERINSolid-phase synthesisBiochemistryCarbohydrate ConformationCarbohydrate conformationAmino Acid SequencePeptide sequenceNuclear Magnetic Resonance BiomolecularAngewandte Chemie (International ed. in English)
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Crystal structure of vinorine synthase, the first representative of the BAHD superfamily.

2005

Vinorine synthase is an acetyltransferase that occupies a central role in the biosynthesis of the antiarrhythmic monoterpenoid indole alkaloid ajmaline in the plant Rauvolfia. Vinorine synthase belongs to the benzylalcohol acetyl-, anthocyanin-O-hydroxy-cinnamoyl-, anthranilate-N-hydroxy-cinnamoyl/benzoyl-, deacetylvindoline acetyltransferase (BAHD) enzyme superfamily, members of which are involved in the biosynthesis of several important drugs, such as morphine, Taxol, or vindoline, a precursor of the anti-cancer drugs vincaleucoblastine and vincristine. The x-ray structure of vinorine synthase is described at 2.6-angstrom resolution. Despite low sequence identity, the two-domain structure…

Models MolecularStereochemistryMolecular Sequence DataSequence alignmentBiologyCrystallography X-RayBiochemistryIndole AlkaloidsProtein structureAcetyltransferasesTransferaseCoenzyme AAmino Acid SequenceDihydrolipoyl transacetylaseMolecular BiologyPlant ProteinsAjmalineATP synthaseMolecular StructureActive siteCell BiologyProtein Structure TertiaryBiochemistryAcyltransferasesAcetyltransferasebiology.proteinAnti-Arrhythmia AgentsSequence AlignmentThe Journal of biological chemistry
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