Search results for "Globin"

showing 10 items of 734 documents

Pore-forming toxins trigger shedding of receptors for interleukin 6 and lipopolysaccharide.

1996

Cleavage of membrane-associated proteins with the release of biologically active macromolecules is an emerging theme in biology. However, little is known about the nature and regulation of the involved proteases or about the physiological inducers of the shedding process. We here report that rapid and massive shedding of the interleukin 6 receptor (IL-6R) and the lipopolysaccharide receptor (CD14) occurs from primary and transfected cells attacked by two prototypes of pore-forming bacterial toxins, streptolysin O and Escherichia coli hemolysin. Shedding is not induced by an streptolysin O toxin mutant which retains cell binding capacity but lacks pore-forming activity. The toxin-dependent c…

ProteasesCD14Lipopolysaccharide ReceptorsEnzyme-Linked Immunosorbent AssayBiologyTransfectionHemolysin ProteinsMonocytesCell LineHemolysin ProteinsBacterial ProteinsAntigens CDChlorocebus aethiopsEscherichia coliTumor Cells CulturedAnimalsHumansEnzyme InhibitorsReceptorCells CulturedMultidisciplinaryHaptoglobinsMacrophagesReceptors InterleukinTransfectionStaurosporineReceptors Interleukin-6Recombinant ProteinsKineticsBiochemistryStreptolysinsInterleukin-6 receptorTetradecanoylphorbol AcetateStreptolysinSignal transductionSignal TransductionResearch ArticleProceedings of the National Academy of Sciences
researchProduct

Bishistidyl heme hexacoordination, a key structural property in Drosophila melanogaster hemoglobin

2005

Hemoglobins at high concentration have been isolated long ago from some insect larvae living in hypoxic environments. Conversely, a monomeric hemoglobin has been discovered recently in the fruit fly Drosophila melanogaster as intracellular protein expressed both in larvae and in the adult fly. Such a finding indicates that the oxygen supply in insects may be more complex than previously thought, relying not only on O2 diffusion through the tubular tracheal system, but also on carrier-mediated transport and storage. We present here the crystal structure of recombinant D. melanogaster hemoglobin at 1.20 A resolution. Spectroscopic data show that the protein displays a hexacoordinated heme, wh…

Protein ConformationHemeMatrix (biology)BiologyCrystallography X-RayLigandsBiochemistrylaw.inventionchemistry.chemical_compoundHemoglobinslawMelanogasterAnimalsDrosophila ProteinsHistidineMolecular BiologyHemeCyclohexylaminesBinding SitesSpectrum AnalysisfungiCell BiologyHEXAbiology.organism_classificationOxygenMyoglobinchemistryBiochemistryAlkanesulfonic AcidsBiophysicsRecombinant DNAHemoglobinDrosophila melanogaster
researchProduct

Human Brain Neuroglobin Structure Reveals a Distinct Mode of Controlling Oxygen Affinity

2003

Neuroglobin, mainly expressed in vertebrate brain and retina, is a recently identified member of the globin superfamily. Augmenting O(2) supply, neuroglobin promotes survival of neurons upon hypoxic injury, potentially limiting brain damage. In the absence of exogenous ligands, neuroglobin displays a hexacoordinated heme. O(2) and CO bind to the heme iron, displacing the endogenous HisE7 heme distal ligand. Hexacoordinated human neuroglobin displays a classical globin fold adapted to host the reversible bis-histidyl heme complex and an elongated protein matrix cavity, held to facilitate O(2) diffusion to the heme. The neuroglobin structure suggests that the classical globin fold is endowed …

Protein ConformationNeuroglobinNerve Tissue ProteinsBiologyProtein Structure Secondarychemistry.chemical_compoundProtein structureStructural BiologyHumansAmino Acid SequenceGlobinHemeMolecular BiologyBrain ChemistryCytoglobinOxygen transportGlobinsProtein Structure TertiaryGlobin foldOxygenMyoglobinchemistryBiochemistryNeuroglobinBiophysicsSequence AlignmentProtein BindingStructure
researchProduct

Conformational substates and dynamic properties of carbonmonoxy hemoglobin.

2003

Heme pocket dynamics of human carbonmonoxy hemoglobin (HbCO) is studied by Fourier transform infrared spectroscopy. The CO stretching band at various temperatures in the interval 300-10 K is analyzed in terms of three taxonomic A substates; however, in HbCO the band attributed to the A(1) taxonomic substate accounts for approximately 90% of the total intensity in the pH range 8.8-4.5. Two different regimes as a function of temperature are observed: below 160 K, the peak frequency and the bandwidth of the A(1) band have constant values whereas, above this temperature, a linear temperature dependence is observed, suggesting the occurrence of transitions between statistical substates within th…

Protein ConformationProtein dynamicsOrganic ChemistryAnharmonicityBiophysicsAnalytical chemistryTemperatureHemeHydrogen-Ion ConcentrationLigandsBiochemistryAmidesSolventchemistry.chemical_compoundCrystallographychemistryCarboxyhemoglobinAmideSpectroscopy Fourier Transform InfraredSolventsHumansHemoglobinFourier transform infrared spectroscopyGlass transitionHemeBiophysical chemistry
researchProduct

Molecular mass of macromolecules and subunits and the quaternary structure of hemoglobin from the microcrustacean Daphnia magna

2006

The molecular masses of macromolecules and subunits of the extracellular hemoglobin from the fresh-water crustacean Daphnia magna were determined by analytical ultracentrifugation, multiangle laser light scattering and electrospray ionization mass spectrometry. The hemoglobins from hypoxia-incubated, hemoglobin-rich and normoxia-incubated, hemoglobin-poor Daphnia magna were analyzed separately. The sedimentation coefficient of the macromolecule was 17.4 +/- 0.1 S, and its molecular mass was 583 kDa (hemoglobin-rich animals) determined by AUC and 590.4 +/- 11.1 kDa (hemoglobin-rich animals) and 597.5 +/- 49 kDa (hemoglobin-poor animals), respectively, determined by multiangle laser light sca…

Protein DenaturationChromatography GasGlycosylationLightMacromolecular SubstancesProtein ConformationElectrospray ionizationProtein subunitDaphnia magnaMultiangle light scatteringBiologyBiochemistryHemoglobinsImaging Three-DimensionalAnimalsScattering RadiationProtein Structure QuaternaryMolecular BiologyChromatography High Pressure LiquidChromatographyMolecular massLasersfungiCell BiologyHemoglobin Subunitsbiology.organism_classificationMolecular WeightProtein SubunitsDaphniaFemaleProtein quaternary structureHemoglobinFEBS Journal
researchProduct

Thermal denaturation of myoglobin in water--disaccharide matrixes: relation with the glass transition of the system.

2009

Proteins embedded in glassy saccharide systems are protected against adverse environmental conditions [Crowe et al. Annu. Rev. Physiol. 1998, 60, 73-103]. To further characterize this process, we studied the relationship between the glass transition temperature of the protein-containing saccharide system (T(g)) and the temperature of thermal denaturation of the embedded protein (T(den)). To this end, we studied by differential scanning calorimetry the thermal denaturation of ferric myoglobin in water/disaccharide mixtures containing nonreducing (trehalose, sucrose) or reducing (maltose, lactose) disaccharides. All the samples studied are, at room temperature, liquid systems whose viscosity …

Protein DenaturationDifferential Scanning Calorimetry trehalose protein hydrationHot TemperatureCalorimetry Differential ScanningChemistryMyoglobinAnalytical chemistryDisaccharideWaterMaltoseDisaccharidesTrehaloseSurfaces Coatings and FilmsMaillard Reactionchemistry.chemical_compoundDifferential scanning calorimetryMyoglobinMaterials ChemistryOrganic chemistryDenaturation (biochemistry)GlassPhysical and Theoretical ChemistryLactoseGlass transitionThe journal of physical chemistry. B
researchProduct

A reduction of protein specific motions in co-ligated myoglobin embedded in a trehalose glass

2000

Protein DenaturationProtein FoldingMyoglobinProtein ConformationChemistryTemperatureBiophysicsMembrane biologyTrehaloseGeneral MedicineTrehaloseReduction (complexity)Spectroscopy Mossbauerchemistry.chemical_compoundBiochemistryMyoglobinAnimalsGlassHorsesLeast-Squares AnalysisEuropean Biophysics Journal
researchProduct

Protein Thermal Denaturation and Matrix Glass Transition in Different Protein−Trehalose−Water Systems

2011

Biopreservation by saccharides is a widely studied issue due to its scientific and technological importance; in particular, ternary amorphous protein-saccharide-water systems are extensively exploited to model the characteristics of the in vivo biopreservation process. We present here a differential scanning calorimetry (DSC) study on amorphous trehalose-water systems with embedded different proteins (myoglobin, lysozyme, BSA, hemoglobin), which differ for charge, surface, and volume properties. In our study, the protein/trehalose molar ratio is kept constant at 1/40, while the water/sugar molar ratio is varied between 2 and 300; results are compared with those obtained for binary trehalose…

Protein DenaturationdenaturationMolecular Dynamics SimulationPhase TransitionDSCMatrix (chemical analysis)Hemoglobinschemistry.chemical_compoundDifferential scanning calorimetryMaterials ChemistryAnimalsglass transitionPhysical and Theoretical ChemistrytrehaloseSettore CHIM/02 - Chimica FisicaChromatographyCalorimetry Differential ScanningMyoglobinTemperatureProteinsWaterSerum Albumin BovineTrehaloseSettore FIS/07 - Fisica Applicata(Beni Culturali Ambientali Biol.e Medicin)Surfaces Coatings and FilmsAmorphous solidchemistryChemical engineeringMyoglobinconfinementCattleMuramidaseLysozymeTernary operationGlass transitionThe Journal of Physical Chemistry B
researchProduct

The human brain hexacoordinated neuroglobin three-dimensional structure

2004

Neuroglobin, mainly expressed in vertebrate brain and retina, is a recently identified member of the globin superfamily. Augmenting O2 supply, neuroglobin promotes survival of neurons upon hypoxic injury, potentially limiting brain damage. In the absence of exogenous ligands, neuroglobin displays a six-coordinated heme. O2 and CO bind to the heme-iron, displacing the endogenous HisE7 heme distal ligand. Hexacoordinated human neuroglobin displays a classical globin fold, adapted to host the reversible bis-histidyl heme complex, and an elongated protein matrix cavity, held to facilitate O2 diffusion to the heme. The structure of neuroglobin suggests that the classical globin fold is endowed w…

Protein FoldingProtein ConformationNeuroglobinGeneral Physics and AstronomyNerve Tissue ProteinsCell BiologyBiologyGlobinsGlobin foldCell biologychemistry.chemical_compoundProtein structureBiochemistrychemistryMyoglobinStructural BiologyNeuroglobinGlobin fold; Heme hexacoordination; Neuroglobin; Oxygen affinity; Protein cavitiesHumansGeneral Materials ScienceProtein foldingGlobinHemoglobinHeme
researchProduct

A Membrane-Bound Vertebrate Globin

2011

The family of vertebrate globins includes hemoglobin, myoglobin, and other O(2)-binding proteins of yet unclear functions. Among these, globin X is restricted to fish and amphibians. Zebrafish (Danio rerio) globin X is expressed at low levels in neurons of the central nervous system and appears to be associated with the sensory system. The protein harbors a unique N-terminal extension with putative N-myristoylation and S-palmitoylation sites, suggesting membrane-association. Intracellular localization and transport of globin X was studied in 3T3 cells employing green fluorescence protein fusion constructs. Both myristoylation and palmitoylation sites are required for correct targeting and m…

Protein StructureLipoylationGreen Fluorescent ProteinsMolecular Sequence Datalcsh:MedicineHemeBiochemistryCell membranechemistry.chemical_compoundModel OrganismsPalmitoylationhemic and lymphatic diseasesmedicineAnimalsRespiratory functionAmino Acid SequenceGlobinlcsh:ScienceProtein InteractionsBiologyZebrafishZebrafishMyristoylationHemoproteinsMultidisciplinarySequence Homology Amino Acidbiologylcsh:RCell MembraneMembrane ProteinsProteinsGene Expression Regulation DevelopmentalAnimal Modelsbiology.organism_classificationRecombinant ProteinsGlobinsGlobin foldOxygenmedicine.anatomical_structureBiochemistryMyoglobinchemistryImmunoglobulin GCytochemistrylcsh:QRabbitsResearch ArticleSubcellular FractionsPLoS ONE
researchProduct