Search results for "Recombinant Fusion Proteins"

showing 10 items of 260 documents

Efficient expression of a Paenibacillus barcinonensis endoglucanase in Saccharomyces cerevisiae.

2011

Abstract The endoglucanase coded by celA (GenBank Access No. Y12512) from Paenibacillus barcinonensis, an enzyme with good characteristics for application on paper manufacture from agricultural fibers, was expressed in Saccharomyces cerevisiae by using different domains of the cell wall protein Pir4 as translational fusion partners, to achieve either secretion or cell wall retention of the recombinant enzyme. Given the presence of five potential N-glycosylation sites in the amino acid sequence coded by celA, the effect of glycosylation on the enzymatic activity of the recombinant enzyme was investigated by expressing the recombinant fusion proteins in both, standard and glycosylation-defici…

GlycosylationGlycosylationSaccharomyces cerevisiae ProteinsRecombinant Fusion ProteinsSaccharomyces cerevisiaeBioengineeringCellulaseSaccharomyces cerevisiaeApplied Microbiology and Biotechnologylaw.inventionchemistry.chemical_compoundBacterial ProteinsCellulaselawPeptide sequencechemistry.chemical_classificationbiologybiology.organism_classificationFusion proteinYeastEnzymeBiochemistrychemistryBatch Cell Culture TechniquesRecombinant DNAbiology.proteinPaenibacillusBiotechnologyJournal of industrial microbiologybiotechnology
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A novel cytotoxin from Clostridium difficile serogroup F is a functional hybrid between two other large clostridial cytotoxins.

1999

Abstract The large clostridial cytotoxins (LCTs) constitute a group of high molecular weight clostridial cytotoxins that inactivate cellular small GTP-binding proteins. We demonstrate that a novel LCT (TcdB-1470) from Clostridium difficile strain 1470 is a functional hybrid between “reference” TcdB-10463 andClostridium sordellii TcsL-1522. It bound to the same specific receptor as TcdB-10463 but glucosylated the same GTP-binding proteins as TcsL-1522. All three toxins had equal enzymatic potencies but were equally cytotoxic only when microinjected. When applied extracellularly TcdB-1470 and TcdB-10463 were considerably more potent cytotoxins than TcsL-1522. The small GTP-binding protein R-R…

GlycosylationRecombinant Fusion ProteinsCellBacterial ToxinsGTPasemedicine.disease_causeBiochemistryMiceClostridiummedicineCell AdhesionCytotoxic T cellAnimalsReceptorCytotoxicityMolecular BiologyDNA Primerschemistry.chemical_classificationbiologyBase SequenceToxinClostridioides difficileCytotoxinsCell Biology3T3 Cellsbiology.organism_classificationmedicine.anatomical_structureEnzymeBiochemistrychemistryMicroscopy Electron ScanningThe Journal of biological chemistry
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Membrane-insertion fragments of Bcl-xL, Bax, and Bid.

2004

Apoptosis regulators of the Bcl-2 family associate with intracellular membranes from mitochondria and the endoplasmic reticulum, where they perform their function. The activity of these proteins is related to the release of apoptogenic factors, sequestered in the mitochondria, to the cytoplasm, probably through the formation of ion and/or protein transport channels. Most of these proteins contain a C-terminal putative transmembrane (TM) fragment and a pair of hydrophobic alpha helices (alpha5-alpha6) similar to the membrane insertion fragments of the ion-channel domain of diphtheria toxin and colicins. Here, we report on the membrane-insertion properties of different segments from antiapopt…

GlycosylationStereochemistryRecombinant Fusion ProteinsMolecular Sequence Databcl-X ProteinBcl-xLApoptosisBiochemistryProtein Structure SecondaryMembrane LipidsMiceProtein structureBcl-2-associated X proteinPredictive Value of TestsProto-Oncogene ProteinsProtein Interaction MappingAnimalsHumansAmino Acid SequencePeptide sequencebcl-2-Associated X ProteinbiologyIntracellular MembranesTransmembrane proteinPeptide FragmentsTransport proteinProtein TransportProto-Oncogene Proteins c-bcl-2Multigene FamilyHelixbiology.proteinBiophysicsCarrier ProteinsHydrophobic and Hydrophilic InteractionsAlpha helixBH3 Interacting Domain Death Agonist ProteinBiochemistry
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Expression ofYWP1,a Gene That Encodes a SpecificYarrowia lipolyticaMycelial Cell Wall Protein, inSaccharomyces cerevisiae

1997

Abstract The YWP1 gene encoding a specific mycelial cell wall protein of Yarrowia lipolytica has been cloned and expressed in Saccharomyces cerevisiae using different episomal plasmids. Because the plasmids pYAE35BB and pYAE35ES carrying the YWP1 gene (including the 5′ noncoding promoter sequences) failed to express it, the YWP1 gene was cloned under the control of GAL/CYC or ACT S. cerevisiae promoters. A main band with an apparent molecular mass of 70 kDa was detected by immunoblotting in the cell wall fraction of transformants. Ywp1 processing and incorporation to the cell wall were similar in both Y. lipolytica and S. cerevisiae but not in its final localization in the cell wall. In Y. …

GlycosylationbiologyMolecular massGlucan Endo-13-beta-D-GlucosidaseRecombinant Fusion ProteinsSaccharomyces cerevisiaeGene ExpressionSodium Dodecyl SulfateRNA FungalPromoterYarrowiaSaccharomyces cerevisiaebiology.organism_classificationMicrobiologyFungal ProteinsMolecular WeightCell wallPlasmidAscomycotaBiochemistryCell WallGeneticsRNA MessengerGeneMyceliumFungal Genetics and Biology
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The designer cytokine hyper-IL-6 mediates growth inhibition and GM-CSF-dependent rejection of B16 melanoma cells.

2000

The low immunogenic B16 melanoma cell line was transfected with a mammalian expression vector containing the complementary DNA for a sIL-6R/IL-6 fusion protein, termed Hyper-IL-6 (H-IL-6), which was shown to have biological activities at 100-1000-fold lower concentrations than IL-6 in combination with sIL-6R. The secreted p84 glycoprotein was detected in the supernatant of transfected cells and was fully active on BAF3/gp130 cells, which respond to IL-6/sIL-6R but not to IL-6 alone. Administration of recombinant H-IL-6 to C57BL/6 mice resulted in a prolonged acute phase protein gene expression indicating long systemic persistence of the fusion protein. Transfected B16 cells (B16/H-IL6 cells…

Graft RejectionCancer ResearchTumor suppressor geneRatónmedicine.medical_treatmentRecombinant Fusion ProteinsMelanoma ExperimentalMice TransgenicTransfectionchemistry.chemical_compoundMiceGene expressionGeneticsmedicineAnimalsDrug InteractionsInterleukin 6neoplasmsMolecular BiologybiologyInterleukin-6MelanomaGranulocyte-Macrophage Colony-Stimulating FactorReceptors Interleukinmedicine.diseaseReceptors Interleukin-6Growth Inhibitorsrespiratory tract diseasesCytokinechemistryCell cultureReceptors Granulocyte-Macrophage Colony-Stimulating FactorImmunologybiology.proteinCancer researchGrowth inhibitionImmunosuppressive AgentsOncogene
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Isolation of carcinoembryonic antigen N-terminal domains (N-A1) from soluble aggregates

2011

Abstract Carcinoembryonic antigen (CEA) was identified as a prominent tumor-associated antigen in human colorectal cancer and it is still intensively investigated. However, its physiological role remains unclear. The CEA molecule is composed of seven highly hydrophobic, immunoglobulin-like domains, six of which contain a single disulphide bridge. The production of recombinant protein containing Ig-like domains in bacterial expression systems often results in partial degradation or insolubility due to aggregation hampering the analysis of their native structure and function. Here, we present a new method of expression and purification of CEA N-terminal domains (N-A1) fused to MBP in Escheric…

Guanidinium chlorideCircular dichroismRecombinant Fusion Proteinsmedicine.disease_causeMaltose-Binding Proteinslaw.inventionchemistry.chemical_compoundCarcinoembryonic antigenlawProtein purificationEscherichia colimedicineTEV proteaseHumansDisulfidesEscherichia coliGuanidinebiologyProtein StabilityCircular DichroismFusion proteinCarcinoembryonic AntigenProtein Structure TertiarySolubilitychemistryBiochemistryChromatography GelRecombinant DNAbiology.proteinElectrophoresis Polyacrylamide GelBiotechnologyProtein Expression and Purification
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Behavior of a Short preS1 Epitope on the Surface of Hepatitis B Core Particles

1999

The major immunodominant region of hepatitis B core particles is widely recognized as the most prospective target for the insertion of foreign epitopes, ensuring their maximal antigenicity and immunogenicity. This region was mapped around amino acid residues 79-81, which were shown by electron cryo-microscopy to be located on the tips of the spikes protruding from the surface of hepatitis B core shells. Here we tried to expose a model sequence, the short immunodominant hepatitis B preS1 epitope 31-DPAFR-35, onto the tip of the spike, with simultaneous deletion of varying stretches from the major immunodominant region of the HBc molecule. Accessibility to the monoclonal anti-preS1 antibody M…

Hepatitis B virusAntigenicityRecombinant Fusion ProteinsGenetic VectorsMolecular Sequence DataClinical BiochemistryAntigen presentationmedicine.disease_causeBiochemistryEpitopeMicemedicineAnimalsHumansAmino Acid SequenceProtein PrecursorsMolecular BiologyPeptide sequenceHepatitis B virusAntigen PresentationMice Inbred BALB CHepatitis B Surface AntigensbiologyImmunodominant EpitopesChemistryImmunogenicityHepatitis B Core AntigensVirologyPolyclonal antibodiesbiology.proteinEpitopes B-LymphocyteFemaleRabbitsAntibodyPlasmidsBiological Chemistry
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Sequence-Specific Repression of Cotranslational Translocation of the Hepatitis B Virus Envelope Proteins Coincides with Binding of Heat Shock Protein…

1997

AbstractThe large L envelope protein of the hepatitis B virus has the peculiar capacity to adopt two transmembrane topologies. The N-terminal preS domain of L initially remains in the cytosol while the S domain is cotranslationally inserted into the endoplasmic reticulum membrane. The preS region of about half of the L molecules is posttranslationally translocated to the lumenal space. We now demonstrate that the repression of cotranslational translocation of preS is conferred by a preS1-specific sequence. By analysis of L deletion mutants, the cytosolic anchorage determinant was mapped to amino acid sequence 70 to 94 of L. The intrinsic potential of this determinant to suppress cotranslati…

Hepatitis B virusHSC70 Heat-Shock ProteinsRecombinant Fusion ProteinsPlasma protein bindingBiologyGenes envCytosolViral Envelope ProteinsHeat shock proteinVirologyHumansHSP70 Heat-Shock ProteinsBinding sitePromoter Regions GeneticPeptide sequenceBinding SitesBase SequenceCell-Free SystemEndoplasmic reticulumHSC70 Heat-Shock ProteinsOligonucleotides AntisenseMolecular biologyTransmembrane proteinChaperone (protein)Protein Biosynthesisbiology.proteinMutagenesis Site-DirectedMetallothioneinCarrier ProteinsProtein BindingVirology
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Stop codon insertion restores the particle formation ability of hepatitis B virus core-hantavirus nucleocapsid protein fusions.

2003

In recent years, epitopes of various origin have been inserted into the core protein of hepatitis B virus (HBc), allowing the formation of chimeric HBc particles. Although the C-terminus of a C-terminally truncated HBc (HBcΔ) tolerates the insertion of extended foreign sequences, the insertion capacity is still a limiting factor for the construction of multivalent vaccines. Previously, we described a new system to generate HBcΔ mosaic particles based on a read-through mechanism in an <i>Escherichia coli</i> suppressor strain [J Gen Virol 1997;78:2049–2053]. Those mosaic particles allowed the insertion of a 114-amino acid (aa)-long segment of a Puumala hantavirus (PUUV) nucleocap…

Hepatitis B virusHepatitis B virus DNA polymerasevirusesRecombinant Fusion ProteinsMolecular Sequence Datamedicine.disease_causeEpitopeHepatitis B virus PRE betaMiceVirologyparasitic diseasesmedicineAnimalsNucleocapsidHantavirusHepatitis B virusMice Inbred BALB CBase SequenceChemistryHepatitis B virus coreVirionvirus diseasesNucleocapsid ProteinsVirologyMolecular biologyHepatitis B Core Antigensdigestive system diseasesStop codonNS2-3 proteaseInfectious DiseasesCodon TerminatorImmunizationIntervirology
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Functional incorporation of green fluorescent protein into hepatitis B virus envelope particles

2004

AbstractThe envelope of hepatitis B virus (HBV), containing the L, M, and S proteins, is essential for virus entry and maturation. For direct visualization of HBV, we determined whether envelope assembly could accommodate the green fluorescent protein (GFP). While the C-terminal addition of GFP to S trans-dominant negatively inhibited empty envelope particle secretion, the N-terminal GFP fusion to S (GFP.S) was co-integrated into the envelope, giving rise to fluorescent particles. Microscopy and topogenesis analyses demonstrated that the proper intracellular distribution and folding of GFP.S, required for particle export were rescued by interprotein interactions with wild-type S. Thereby, a…

Hepatitis B virusRecombinant Fusion ProteinsGreen Fluorescent ProteinsRestriction MappingEnzyme-Linked Immunosorbent AssayBiologyTransfectionmedicine.disease_causeHBsAg particlesArticleViral envelopeGreen fluorescent proteinViral Envelope ProteinsViral envelopeViral entryVirologyChlorocebus aethiopsmedicineAnimalsHumansGreen fluorescent proteinSecretionPromoter Regions GeneticHepatitis B virusCOS cellsfungiTransfectionMolecular biologyCell biologyKineticsCOS CellsMetallothioneinVirus assembly and secretionProtein KinasesIntracellularVirology
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