Search results for "Recombinant Fusion Protein"

showing 10 items of 260 documents

Major histocompatibility complex class II binding site for streptococcal pyrogenic (erythrogenic) toxin A.

1994

Streptococcal pyrogenic exotoxin A (SPEA) is an important pathogenicity factor of group A streptococci. It is a member of the family of „superantigens” produced by Staphylococcus aureus and Streptococcus pyogenes and its T lymphocyte stimulating activity is involved into the pathogenesis of certain diseases caused by pyogenic streptococci. In this study we have produced and characterized recombinant SPEA molecules in Escherichia coli. These molecules are indistinguishable from natural SPEA in both T cell stimulatory and HLA class II binding activities. Human class II molecules are more efficient than mouse class II molecules in presenting SPEA to T cells. In binding tests to major histocomp…

Microbiology (medical)Recombinant Fusion ProteinsT-LymphocytesImmunologyAntigen presentationErythrogenic toxinBacterial ToxinsMolecular Sequence DataExotoxinsEnterotoxinmedicine.disease_causeMajor histocompatibility complexLymphocyte ActivationMicrobiologyCell LineMajor Histocompatibility ComplexEnterotoxinsMicestomatognathic systemBacterial ProteinsmedicineEscherichia coliImmunology and AllergyAnimalsHumansCells CulturedMice Inbred BALB CBinding SitesSuperantigensbiologyBase SequencePyrogensToxic shock syndromeMembrane ProteinsStreptococcusGeneral MedicineGene Expression Regulation BacterialHLA-DR Antigensmedicine.diseasebiology.organism_classificationSpeaStreptococcus pyogenesbiology.proteinExotoxinMedical microbiology and immunology
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Design and construction of highly stable, protease-resistant chimeric avidins.

2005

The chicken avidin gene family consists of avidin and seven separate avidin-related genes (AVRs) 1-7. Avidin protein is a widely used biochemical tool, whereas the other family members have only recently been produced as recombinant proteins and characterized. In our previous study, AVR4 was found to be the most stable biotin binding protein thus far characterized (T(m) = 106.4 degrees C). In this study, we studied further the biotin-binding properties of AVR4. A decrease in the energy barrier between the biotin-bound and unbound state of AVR4 was observed when compared with that of avidin. The high resolution structure of AVR4 facilitated comparison of the structural details of avidin and …

Models MolecularBiotin bindingInsectaProtein familyProtein subunitRecombinant Fusion ProteinsMolecular Sequence DataBiotinBiosensing TechniquesBiologyProtein EngineeringBiochemistryProtein Structure SecondaryProtein structureAnimalsAmino Acid SequenceMolecular BiologyThermostabilityCalorimetry Differential ScanningSequence Homology Amino AcidTemperatureCell BiologyProtein engineeringAvidinRecombinant ProteinsProtein Structure TertiaryKineticsBiochemistryMicroscopy FluorescenceMutagenesisBiotinylationMutationbiology.proteinChromatography GelThermodynamicsElectrophoresis Polyacrylamide GelEndopeptidase KBaculoviridaeChickensAvidinChromatography LiquidPeptide HydrolasesProtein BindingThe Journal of biological chemistry
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The Escherichia coli Envelope Stress Sensor CpxA Responds to Changes in Lipid Bilayer Properties

2015

The Cpx stress response system is induced by various environmental and cellular stimuli. It is also activated in Escherichia coli strains lacking the major phospholipid, phosphatidylethanolamine (PE). However, it is not known whether CpxA directly senses changes in the lipid bilayer or the presence of misfolded proteins due to the lack of PE in their membranes. To address this question, we used an in vitro reconstitution system and vesicles with different lipid compositions to track modulations in the activity of CpxA in different lipid bilayers. Moreover, the Cpx response was validated in vivo by monitoring expression of a PcpxP-gfp reporter in lipid-engineered strains of E. coli. Our comb…

Models MolecularCardiolipinsSurface PropertiesRecombinant Fusion ProteinsGreen Fluorescent ProteinsLipid BilayersArabidopsisPhospholipidBiologymedicine.disease_causeBiochemistrychemistry.chemical_compoundBacterial ProteinsGenes ReportermedicineAcholeplasma laidlawiiPhosphorylationLipid bilayerEscherichia coliPlant ProteinsPhosphatidylethanolamineEscherichia coli ProteinsPhosphatidylethanolaminesVesicleGlycosyltransferasesMembrane ProteinsPhosphatidylglycerolsCell biologychemistryMembrane proteinlipids (amino acids peptides and proteins)Protein foldingSignal transductionProtein KinasesProtein Processing Post-TranslationalSignal TransductionBiochemistry
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Molecular dissection of human Argonaute proteins by DNA shuffling.

2013

A paramount task in RNA interference research is to decipher the complex biology of cellular effectors, exemplified in humans by four pleiotropic Argonaute proteins (Ago1-Ago4). Here, we exploited DNA family shuffling, a molecular evolution technology, to generate chimeric Ago protein libraries for dissection of intricate phenotypes independently of prior structural knowledge. Through shuffling of human Ago2 and Ago3, we discovered two N-terminal motifs that govern RNA cleavage in concert with the PIWI domain. Structural modeling predicts an impact on protein rigidity and/or RNA-PIWI alignment, suggesting new mechanistic explanations for Ago3's slicing deficiency. Characterization of hybrid…

Models MolecularDNA ComplementaryProtein ConformationRecombinant Fusion ProteinsMolecular Sequence DataDNA RecombinantPiwi-interacting RNASequence alignmentComputational biologyBiologyStructural BiologyMolecular evolutionRNA interferenceConsensus SequenceConsensus sequenceHumansAmino Acid SequenceEukaryotic Initiation FactorsRNA Processing Post-TranscriptionalRNA Small InterferingMolecular BiologyGene LibraryGeneticsSequence Homology Amino AcidRNADNA ShufflingArgonauteDNA shufflingProtein Structure TertiaryMicroRNAsPhenotypeArgonaute ProteinsRNA InterferenceDirected Molecular EvolutionSequence AlignmentNature structuralmolecular biology
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Molecular and structural characterization of fluorescent human parvovirus B19 virus-like particles

2005

Although sharing a T = 1 icosahedral symmetry with other members of the Parvoviridae family, it has been suggested that the fivefold channel of the human parvovirus B19 VP2 capsids is closed at its outside end. To investigate the possibility of placing a relatively large protein moiety at this site of B19, fluorescent virus-like particles (fVLPs) of B19 were developed. The enhanced green fluorescent protein (EGFP) was inserted at the N-terminus of the structural protein VP2 and assembly of fVLPs from this fusion protein was obtained. Electron microscopy revealed that these fluorescent protein complexes were very similar in size when compared to wild-type B19 virus. Further, fluorescence cor…

Models MolecularImmunoprecipitationRecombinant Fusion ProteinsvirusesGreen Fluorescent ProteinsBiophysicsFluorescence correlation spectroscopyEndosomesSpodopteraBiologyMicroscopy Atomic ForceBiochemistryFluorescenceCell LineGreen fluorescent proteinParvoviridae InfectionsBimolecular fluorescence complementationCell Line Tumorhemic and lymphatic diseasesParvovirus B19 HumanAnimalsHumansImmunoprecipitationMolecular BiologyParvoviridaeImmune SeraVirus AssemblyVirionvirus diseasesCell Biologybiology.organism_classificationFusion proteinMolecular biologyNanostructuresCell biologyTransport proteinProtein TransportCapsidCapsid Proteins
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The Nature of the Stimulus and of the Fumarate Binding Site of the Fumarate Sensor DcuS of Escherichia coli

2005

DcuS is a membrane-associated sensory histidine kinase of Escherichia coli specific for C(4) -dicarboxylates. The nature of the stimulus and its structural prerequisites were determined by measuring the induction of DcuS-dependent dcuB'-'lacZ gene expression. C(4)-dicarboxylates without or with substitutions at C2/C3 by hydrophilic (hydroxy, amino, or thiolate) groups stimulated gene expression in a similar way. When one carboxylate was replaced by sulfonate, methoxy, or nitro groups, only the latter (3-nitropropionate) was active. Thus, the ligand of DcuS has to carry two carboxylate or carboxylate/nitro groups 3.1-3.8 A apart from each other. The effector concentrations for half-maximal i…

Models MolecularMagnetic Resonance SpectroscopyHistidine KinaseRecombinant Fusion ProteinsMolecular Sequence Datamedicine.disease_causeBiochemistryCitric AcidStructure-Activity Relationshipchemistry.chemical_compoundFumaratesEscherichia colimedicineDicarboxylic AcidsAmino Acid SequenceCarboxylatePhosphorylationBinding siteKinase activityTartratesMolecular BiologyEscherichia coliPeptide sequenceDicarboxylic Acid TransportersBinding SitesChemistryEscherichia coli ProteinsAutophosphorylationHistidine kinaseGene Expression Regulation BacterialCell BiologyNitro CompoundsPeptide FragmentsEnzyme ActivationLac OperonBiochemistryMutagenesis Site-DirectedPropionatesProtein KinasesSequence AlignmentBinding domainJournal of Biological Chemistry
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Structure of rat odorant-binding protein OBP1 at 1.6 angstrom resolution

2009

The nasal mucosa is a specialist interfacial region sandwiched between the olfactory system and the gaseous chemical milieu. In mammals and insects, this region is rich in odorant-binding proteins that are thought to aid olfaction by assisting mass transfer of the many different organoleptic compounds that make up the olfactory landscape. However, in mammals at least, our grasp on the exact function of odorant-binding proteins is tentative and better insight into the role of these proteins is warranted, not least because of their apparent significance in the olfactory systems of insects. Here, the crystal structure of rat odorant-binding protein 1 is reported at 1.6 Å resolution. This prote…

Models MolecularOlfactory systemCristallographyProtein ConformationRecombinant Fusion ProteinsMolecular Sequence DataOlfactionOBP1Crystallography X-RayReceptors Odorant010402 general chemistry01 natural sciencesPheromonesPichia pastoris03 medical and health sciences[ CHIM.CRIS ] Chemical Sciences/CristallographyProtein structureSpecies SpecificityStructural BiologyODORANT-BINDING PROTEINS[CHIM.CRIS]Chemical Sciences/CristallographyAnimalsAmino Acid SequencePeptide sequence030304 developmental biology0303 health sciencesBinding SitesSequence Homology Amino AcidbiologyProteinsGeneral MedicineLigand (biochemistry)biology.organism_classificationLipocalinsRatsCristallographie0104 chemical sciencesTransport proteinDNA-Binding ProteinsBiochemistryOdorant-binding proteinbiology.proteinODORANT-BINDING PROTEINS;OBP1Sequence Alignment
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Influence of proline residues in transmembrane helix packing

2003

Integral membrane proteins often contain proline residues in their alpha-helical transmembrane (TM) fragments, which may strongly influence their folding and association. Pro-scanning mutagenesis of the helical domain of glycophorin A (GpA) showed that replacement of the residues located at the center abrogates helix packing while substitution of the residues forming the ending helical turns allows dimer formation. Synthetic TM peptides revealed that a point mutation of one of the residues of the dimerization motif (L75P) located at the N-terminal helical turn of the GpA TM fragment, adopts a secondary structure and oligomeric state similar to the wild-type sequence in detergents. In additi…

Models MolecularProtein FoldingGlycosylationProlineStereochemistryProtein ConformationCollagen helixRecombinant Fusion ProteinsMolecular Sequence DataEndoplasmic ReticulumProtein Structure SecondaryComputers MolecularProtein structureStructural BiologyAmino Acid SequenceGlycophorinsMolecular BiologyIntegral membrane proteinProtein secondary structureChemistryCell MembraneProteïnes de membranaWaterLipidsTransmembrane proteinPeptide FragmentsCrystallographyTransmembrane domainMembrane proteinHelixMutagenesis Site-DirectedDimerization
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Topology and accessibility of the transmembrane helices and the sensory site in the bifunctional transporter DcuB of Escherichia coli.

2011

C(4)-Dicarboxylate uptake transporter B (DcuB) of Escherichia coli is a bifunctional transporter that catalyzes fumarate/succinate antiport and serves as a cosensor of the sensor kinase DcuS. Sites and domains of DcuB were analyzed for their topology relative to the cytoplasmic or periplasmic side of the membrane and their accessibility to the water space. For the topology studies, DcuB was fused at 33 sites to the reporter enzymes PhoA and LacZ that are only active when located in the periplasm or the cytoplasm, respectively. The ratios of the PhoA and LacZ activities suggested the presence of 10 or 11 hydrophilic loops, and 11 or 12 α-helical transmembrane domains (TMDs). The central part…

Models MolecularRecombinant Fusion ProteinsMolecular Sequence Datalac operonTopologyBiochemistryProtein Structure SecondaryPolyethylene GlycolsProtein structureBacterial ProteinsCatalytic DomainStilbenesAmino Acid SequenceCysteineBinding sitePeptide sequenceDicarboxylic Acid TransportersEscherichia coli K12ChemistryEscherichia coli ProteinsCell MembranePeriplasmic spaceAlkaline PhosphataseTransmembrane domainMembrane proteinBiochemistryLac OperonEthylmaleimideSulfonic AcidsHydrophobic and Hydrophilic InteractionsCysteineBiochemistry
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Six amino acids define a minimal dimerization sequence and stabilize a transmembrane helix dimer by close packing and hydrogen bonding

2013

AbstractDistinct amino acid sequences have been described to mediate oligomerization of transmembrane α-helices. However, as the sequence context is crucial to determine specificity in transmembrane helix–helix interaction, the question arises how small a sequence can be without losing specificity. In the present analysis, six amino acids have been identified in the PsbF transmembrane helix dimer, which form the contact region of two interacting helices and are directly involved in helix–helix interactions. However, individual amino acids within the complex sequence pattern only together ensure sequence specificity of the analyzed transmembrane helix–helix interactions by mediating close pa…

Models MolecularStereochemistryDimerRecombinant Fusion ProteinsMolecular Sequence DataBiophysicsCytochrome b559Sequence (biology)Context (language use)Cytochrome b559BiologyBiochemistryProtein Structure Secondarychemistry.chemical_compoundBacterial ProteinsStructural BiologyGeneticsEscherichia coliProtein Interaction Domains and MotifsAmino Acid SequenceDimerization motifMolecular Biologychemistry.chemical_classificationSequence contextHydrogen bondProtein StabilityCell MembraneMembrane ProteinsHelix–helix interactionHydrogen BondingCell BiologyCytochrome b GroupTransmembrane proteinTransmembraneAmino acidTransmembrane domainchemistryDimerizationProtein BindingFEBS Letters
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