Search results for "Protein Subunits"

showing 10 items of 77 documents

Tetravalent single-chain avidin: from subunits to protein domains via circularly permuted avidins

2005

scAvd (single-chain avidin, where two dcAvd are joined in a single polypeptide chain), having four biotin-binding domains, was constructed by fusion of topologically modified avidin units. scAvd showed similar biotin binding and thermal stability properties as chicken avidin. The DNA construct encoding scAvd contains four circularly permuted avidin domains, plus short linkers connecting the four domains into a single polypeptide chain. In contrast with wild-type avidin, which contains four identical avidin monomers, scAvd enables each one of the four avidin domains to be independently modified by protein engineering. Therefore the scAvd scaffold can be used to construct spatially and stoich…

Models MolecularBiotin bindingProtein domainMolecular Sequence DataProtein EngineeringBiochemistrychemistry.chemical_compoundMoleculeAnimalsMolecular BiologyCells CulturedBinding SitesbiologyChemistryCell BiologyProtein engineeringCircular permutation in proteinsAvidinProtein Structure TertiaryCrystallographyProtein SubunitsMonomerBiophysicsbiology.proteinDNA constructChickensAvidinResearch ArticleProtein Binding
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Insights into the catalytic mechanism of human sEH phosphatase by site-directed mutagenesis and LC-MS/MS analysis

2008

We have recently reported that human soluble epoxide hydrolase (sEH) is a bifunctional enzyme with a novel phosphatase enzymatic activity. Based on a structural relationship with other members of the haloacid dehalogenase superfamily, the sEH N-terminal phosphatase domain revealed four conserved sequence motifs, including the proposed catalytic nucleophile D9, and several other residues potentially implicated in substrate turnover and/or Mg(2+) binding. To enlighten the catalytic mechanism of dephosphorylation, we constructed sEH phosphatase active-site mutants by site-directed mutagenesis. A total of 18 mutants were constructed and recombinantly expressed in Escherichia coli as soluble pro…

Models MolecularEpoxide hydrolase 2Molecular Sequence DataPhosphatase10050 Institute of Pharmacology and Toxicology610 Medicine & healthMass SpectrometryPhosphatesDephosphorylation1315 Structural BiologyProtein structureStructural Biology1312 Molecular BiologyHumansPhosphofructokinase 2Amino Acid SequenceBinding siteProtein Structure QuaternarySite-directed mutagenesisMolecular BiologyEpoxide HydrolasesBinding SitesChemistrySubstrate (chemistry)Phosphoric Monoester HydrolasesRecombinant ProteinsProtein Structure TertiaryProtein SubunitsBiochemistryMutagenesis Site-Directed570 Life sciences; biologyDimerizationSequence AlignmentChromatography Liquid
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Structural Mechanism of SDS-Induced Enzyme Activity of Scorpion Hemocyanin Revealed by Electron Cryomicroscopy

2009

Summary Phenoloxidases (POs) occur in all organisms and are involved in skin and hair coloring in mammals, and initiating melanization in wound healing. Mutation or overexpression of PO can cause albinism or melanoma, respectively. SDS can convert inactive PO and the oxygen carrier hemocyanin (Hc) into enzymatically active PO. Here we present single-particle cryo-EM maps at subnanometer resolution and pseudoatomic models of the 24-oligomeric Hc from scorpion Pandinus imperator in resting and SDS-activated states. Our structural analyses led to a plausible mechanism of Hc enzyme PO activation: upon SDS activation, the intrinsically flexible Hc domain I twists away from domains II and III in …

Models MolecularPROTEINSCopper proteinProtein Conformationmedicine.medical_treatmentProtein subunitArticleScorpions03 medical and health sciencesEnzyme activatorSurface-Active AgentsProtein structureStructural BiologyCatalytic DomainmedicineAnimalsBinding siteMolecular Biology030304 developmental biology0303 health sciencesBinding SitesbiologyChemistryMonophenol Monooxygenase030302 biochemistry & molecular biologyCryoelectron MicroscopyActive siteSodium Dodecyl SulfateHemocyaninEnzyme ActivationProtein SubunitsBiochemistryHemocyaninsbiology.proteinOxygen bindingStructure
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Quaternary structure of the European spiny lobster (Palinurus elephas) 1x6-mer hemocyanin from cryoEM and amino acid sequence data.

2002

Abstract Arthropod hemocyanins are large respiratory proteins that are composed of up to 48 subunits (8×6-mer) in the 75 kDa range. A 3D reconstruction of the 1×6-mer hemocyanin from the European spiny lobster Palinurus elephas has been performed from 9970 single particles using cryoelectron microscopy. An 8 A resolution of the hemocyanin 3D reconstruction has been obtained from about 600 final class averages. Visualisation of structural elements such as α-helices has been achieved. An amino acid sequence alignment shows the high sequence identity (>80%) of the hemocyanin subunits from the European spiny lobster P. elephas and the American spiny lobster Panulirus interruptus . Comparison of…

Models MolecularPanulirusmedicine.medical_treatmentPalinurus elephasMolecular Sequence DataStatic ElectricityCrystallography X-RaySpecies SpecificityStructural BiologymedicineAnimalsAmino Acid SequencePalinuridaeProtein Structure QuaternaryMolecular BiologyPeptide sequencebiologySequence Homology Amino AcidResolution (electron density)Cryoelectron MicroscopyHemocyaninbiology.organism_classificationCrystallographyProtein SubunitsBiochemistryHemocyaninsProtein quaternary structureArthropodSpiny lobsterSequence AlignmentJournal of molecular biology
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Synthesis of GABAA receptor agonists and evaluation of their alpha-subunit selectivity and orientation in the GABA binding site.

2008

Drugs used to treat various disorders target GABA A receptors. To develop alpha subunit selective compounds, we synthesized 5-(4-piperidyl)-3-isoxazolol (4-PIOL) derivatives. The 3-isoxazolol moiety was substituted by 1,3,5-oxadiazol-2-one, 1,3,5-oxadiazol-2-thione, and substituted 1,2,4-triazol-3-ol heterocycles with modifications to the basic piperidine substituent as well as substituents without basic nitrogen. Compounds were screened by [(3)H]muscimol binding and in patch-clamp experiments with heterologously expressed GABA A alpha ibeta 3gamma 2 receptors (i = 1-6). The effects of 5-aminomethyl-3 H-[1,3,4]oxadiazol-2-one 5d were comparable to GABA for all alpha subunit isoforms. 5-pipe…

Models MolecularPatch-Clamp TechniquesStereochemistryAlpha (ethology)gamma-Aminobutyric acidArticleGABAA-rho receptorCell Linechemistry.chemical_compoundStructure-Activity RelationshipXenopus laevisPiperidinesDrug DiscoverymedicineAnimalsHumansGABA-A Receptor AgonistsBinding siteReceptorgamma-Aminobutyric AcidG alpha subunitBinding SitesMolecular StructureChemistryGABAA receptorMuscimolBrainIsoxazolesReceptors GABA-ARatsElectrophysiologyProtein SubunitsBiochemistryMuscimolMutationOocytesMolecular MedicineFemalemedicine.drugJournal of medicinal chemistry
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Ligand-binding domain determines endoplasmic reticulum exit of AMPA receptors.

2010

AMPA receptors (AMPARs) are tetrameric ion channels that mediate rapid glutamate signaling in neurons and many non-neuronal cell types. Endoplasmic reticulum (ER) quality control mechanisms permit only correctly folded functional receptors to be delivered to the cell surface. We analyzed the biosynthetic maturation and transport of all 12 GluA1–4 subunit splice variants as homomeric receptors and observed robust isoform-dependent differences in ER exit competence and surface expression. In contrast to inefficient ER exit of both GluA3 splice forms and the flop variants of GluA1 and GluA4, prominent plasma membrane expression was observed for the other AMPAR isoforms. Surprisingly, deletion …

Models MolecularProtein ConformationImmunoblottingMolecular Sequence DataAMPA receptorBiologymedicine.disease_causeEndoplasmic ReticulumLigandsBiochemistryCell membrane03 medical and health sciences0302 clinical medicineNeurobiologyProtein targetingChlorocebus aethiopsmedicineHomomericAnimalsHumansProtein IsoformsAmino Acid SequenceReceptors AMPAReceptorMolecular BiologyIon channel030304 developmental biology0303 health sciencesBinding SitesSequence Homology Amino AcidEndoplasmic reticulumCell MembraneCell BiologyCell biologyTransport proteinProtein Structure TertiaryAlternative SplicingProtein SubunitsProtein Transportmedicine.anatomical_structureHEK293 CellsMicroscopy FluorescenceCOS CellsProtein Multimerization030217 neurology & neurosurgeryThe Journal of biological chemistry
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Complete subunit sequences, structure and evolution of the 6 x 6-mer hemocyanin from the common house centipede, Scutigera coleoptrata.

2003

Hemocyanins are large oligomeric copper-containing proteins that serve for the transport of oxygen in many arthropod species. While studied in detail in the Chelicerata and Crustacea, hemocyanins had long been considered unnecessary in the Myriapoda. Here we report the complete molecular structure of the hemocyanin from the common house centipede Scutigera coleoptrata (Myriapoda: Chilopoda), as deduced from 2D-gel electrophoresis, MALDI-TOF mass spectrometry, protein and cDNA sequencing, and homology modeling. This is the first myriapod hemocyanin to be fully sequenced, and allows the investigation of hemocyanin structure-function relationship and evolution. S. coleoptrata hemocyanin is a 6…

Models MolecularProtein Conformationmedicine.medical_treatmentMolecular Sequence DataMyriapodachemical and pharmacologic phenomenaBiochemistryEvolution MolecularMonophylymedicineAnimalsAmino Acid SequenceCloning MolecularArthropodsPhylogenybiologyMandibulatahemic and immune systemsHemocyaninAnatomybiology.organism_classificationProtein SubunitsEvolutionary biologyHemocyaninsChelicerataArthropodCentipedeSequence AlignmentScutigera coleoptrataEuropean journal of biochemistry
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Structure of Mega-Hemocyanin Reveals Protein Origami in Snails

2014

SummaryMega-hemocyanin is a 13.5 MDa oxygen transporter found in the hemolymph of some snails. Similar to typical gastropod hemocyanins, it is composed of 400 kDa building blocks but has additional 550 kDa subunits. Together, they form a large, completely filled cylinder. The structural basis for this highly complex protein packing is not known so far. Here, we report the electron cryomicroscopy (cryo-EM) structure of mega-hemocyanin complexes from two different snail species. The structures reveal that mega-hemocyanin is composed of flexible building blocks that differ in their conformation, but not in their primary structure. Like a protein origami, these flexible blocks are optimally pac…

Models MolecularProtein FoldingCryo-electron microscopymedicine.medical_treatmentGastropodaSnailsNanotechnologySnailBiologyMega-Cylinder (gastropod)Structural Biologybiology.animalHemolymphmedicineAnimalsProtein Structure QuaternaryMolecular BiologyCryoelectron MicroscopyProtein primary structureHemocyaninbiology.organism_classificationProtein SubunitsComplex proteinHemocyaninsBiophysicsProtein MultimerizationStructure
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Structural Characterization of Set1 RNA Recognition Motifs and their Role in Histone H3 Lysine 4 Methylation

2006

Departament de Bioquimica iBiologia Molecular, Universitatde Valencia, C/Dr Moliner 50,46100, Burjassot, SpainThe yeast Set1 histone H3 lysine 4 (H3K4) methyltransferase contains, inaddition to its catalytic SET domain, a conserved RNA recognition motif(RRM1). We present here the crystal structure and the secondary structureassignment in solution of the Set1 RRM1. Although RRM1 has the expectedβαββαβ RRM-fold, it lacks the typical RNA-binding features of thesemodules. RRM1 is not able to bind RNA by itself in vitro, but a constructcombining RRM1 with a newly identified downstream RRM2 specificallybinds RNA. Invivo,H3K4 methylation isnot affectedbyapoint mutation inRRM2 that preserves Set1 s…

Models MolecularRiboswitchHistone H3 Lysine 4Saccharomyces cerevisiae ProteinsRNA-induced transcriptional silencingSurface Properties[SDV]Life Sciences [q-bio]Molecular Sequence DataSaccharomyces cerevisiae[SDV.BC.BC]Life Sciences [q-bio]/Cellular Biology/Subcellular Processes [q-bio.SC]BiologyMethylationHistonesStructure-Activity Relationship03 medical and health sciencesStructural BiologyHistone methylation[SDV.BC.BC] Life Sciences [q-bio]/Cellular Biology/Subcellular Processes [q-bio.SC]Amino Acid SequenceProtein Structure QuaternaryMolecular BiologyConserved Sequence030304 developmental biology0303 health sciencesRNA recognition motifLysine030302 biochemistry & molecular biologyRNARNA FungalHistone-Lysine N-MethyltransferaseNon-coding RNAMolecular biology[SDV] Life Sciences [q-bio]DNA-Binding ProteinsProtein SubunitsBiochemistryHistone methyltransferaseSequence AlignmentProtein BindingTranscription Factors
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Controlling quaternary structure assembly: subunit interface engineering and crystal structure of dual chain avidin.

2006

Dual chain avidin (dcAvd) is an engineered avidin form, in which two circularly permuted chicken avidin monomers are fused into one polypeptide chain. DcAvd can theoretically form two different pseudotetrameric quaternary assemblies because of symmetry at the monomer-monomer interfaces. Here, our aim was to control the assembly of the quaternary structure of dcAvd. We introduced the mutation I117C into one of the circularly permuted domains of dcAvd and scanned residues along the 1-3 subunit interface of the other domain. Interestingly, V115H resulted in a single, disulfide locked quaternary assembly of dcAvd, whereas I117H could not guide the oligomerisation process even though it stabilis…

Models MolecularStereochemistryProtein subunitBiotinGene ExpressionCrystal structureCrystallography X-RayLigandsProtein EngineeringProtein–protein interactionchemistry.chemical_compoundBiotinStructural BiologyAnimalsDisulfidesProtein Structure QuaternaryMolecular BiologyChromatography High Pressure LiquidbiologyProtein engineeringHydrogen-Ion ConcentrationAvidinCrystallographyProtein SubunitsMonomerchemistryMutationbiology.proteinChromatography GelThermodynamicsProtein quaternary structureChickensAvidinJournal of molecular biology
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