Search results for "Viral protein"

showing 10 items of 182 documents

Immune evasion proteins gpUS2 and gpUS11 of human cytomegalovirus incompletely protect infected cells from CD8 T cell recognition

2009

AbstractHuman cytomegalovirus (HCMV) encodes four glycoproteins, termed gpUS2, gpUS3, gpUS6 and gpUS11 that interfere with MHC class I biosynthesis and antigen presentation. Despite gpUS2–11 expression, however, HCMV infection is efficiently controlled by cytolytic CD8 T lymphocytes (CTL). To address the role of gpUS2 and gpUS11 in antigen presentation during viral infection, HCMV mutants were generated that expressed either gpUS2 or gpUS11 alone without coexpression of the three other proteins. Fibroblasts infected with these viruses showed reduced HLA-A2 and HLA-B7 surface expression. Surprisingly, however, CTL directed against the tegument protein pp65 and the regulatory IE1 protein stil…

Human cytomegalovirusvirusesAntigen presentationIE1CytomegalovirusCD8-Positive T-LymphocytesVirus ReplicationMajor histocompatibility complexpp65US2Immediate-Early ProteinsViral Matrix ProteinsHLA-B7 AntigenInterferon-gammaViral ProteinsImmune systemViral Envelope ProteinsVirologyHLA-A2 AntigenMHC class ImedicineHumansCytotoxic T cellCells CulturedAntigen PresentationbiologyImmune evasionRNA-Binding Proteinsvirus diseasesbiochemical phenomena metabolism and nutritionPhosphoproteinsmedicine.diseaseVirologyCTL*MutagenesisCTLCytomegalovirus InfectionsMHC class Ibiology.proteinUS11CD8Virology
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SARS-CoV-2 in patients with cancer: possible role of mimicry of human molecules by viral proteins and the resulting anti-cancer immunity

2021

AbstractA few reports suggest that molecular mimicry can have a role in determining the more severe and deadly forms of COVID-19, inducing endothelial damage, disseminated intravascular coagulation, and multiorgan failure. Heat shock proteins/molecular chaperones can be involved in these molecular mimicry phenomena. However, tumor cells can display on their surface heat shock proteins/molecular chaperones that are mimicked by SARS-CoV-2 molecules (including the Spike protein), similarly to what happens in other bacterial or viral infections. Since molecular mimicry between SARS-CoV-2 and tumoral proteins can elicit an immune reaction in which antibodies or cytotoxic cells produced against t…

Immunological cross-reactionMini ReviewShared epitopesmedicine.disease_causeBiochemistryVirusViral ProteinsImmunityNeoplasmsHeat shock proteinmedicineHumansCytotoxic T cellCancerDisseminated intravascular coagulationbiologySARS-CoV-2Molecular MimicryfungiImmunityCOVID-19CancerCell Biologymedicine.diseaseMolecular mimicrybiology.proteinCancer researchAntibodyCOVID-19 . SARS-CoV-2 . Cancer . Molecularmimicry . Shared epitopes . Immunological cross-reaction
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Stalemating a clever opportunist: lessons from murine cytomegalovirus.

2003

Abstract Cytomegaloviruses and their specific hosts have come to an arrangement that avoids disease but allows the viruses to persist in the individual host and to spread in the host species. Recent work has uncovered some of the molecular details of this evolutionary “contract for mutual survival.” Cytomegaloviruses encode proteins, referred to as “immunoevasins,” which are specifically committed to subvert the immune defense of the host for evading virus elimination. In reply, the hosts have evolved countermeasures to overcome the viral immunoevasins and present antigenic peptides to an extent that is sufficient for confining virus replication to below a harmful level. Accordingly, cytome…

ImmunologyAntigen presentationCongenital cytomegalovirus infectionDown-RegulationDiseaseImmunodominanceBiologyCD8-Positive T-LymphocytesMajor histocompatibility complexInterferon-gammaMiceViral ProteinsViral Envelope ProteinsmedicineImmunology and AllergyCytotoxic T cellAnimalsImmunologic SurveillanceGlycoproteinsAntigen PresentationMembrane GlycoproteinsCytomegalic inclusion diseaseHistocompatibility Antigens Class IModels ImmunologicalGeneral Medicinemedicine.diseaseVirologyPeptide FragmentsProtein TransportViral replicationCytomegalovirus Infectionsbiology.proteinCarrier ProteinsHuman immunology
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Macrophages Escape Inhibition of Major Histocompatibility Complex Class I-Dependent Antigen Presentation by Cytomegalovirus

2000

ABSTRACTThe mouse cytomegalovirus (MCMV)m152- andm06-encoded glycoproteins gp40 and gp48, respectively, independently downregulate major histocompatibility complex (MHC) class I surface expression during the course of productive MCMV infection in fibroblasts. As a result, presentation of an immediate-early protein pp89-derived nonapeptide toH-2Ld-restricted CD8+cytotoxic T cells is completely prevented in fibroblasts. Here we demonstrate that MCMV-infected primary bone marrow macrophages and the macrophage cell line J774 constitutively present pp89 peptides during permissive MCMV infection to cytotoxic T lymphocytes (CTL). In contrast to fibroblasts, expression of them152andm06genes in macr…

ImmunologyAntigen presentationCytomegalovirusBone Marrow CellsCD8-Positive T-LymphocytesMajor histocompatibility complexMicrobiologyCell LineImmediate-Early ProteinsMiceViral ProteinsViral Envelope ProteinsVirologyMHC class IAnimalsCytotoxic T cellAntigen-presenting cellAntigen PresentationMice Inbred BALB CMembrane GlycoproteinsbiologyAntigen processingMacrophagesHistocompatibility Antigens Class IMHC restrictionMolecular biologyInsect Sciencebiology.proteinPathogenesis and ImmunityCD8Journal of Virology
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Myxoma virus Leukemia-associated protein is responsible for major histocompatibility complex class I and Fas-CD95 down-regulation and defines scrapin…

2002

ABSTRACTDown-modulation of major histocompatibility class I (MHC-I) molecules is a viral strategy for survival in the host.Myxoma virus, a member of thePoxviridaefamily responsible for rabbit myxomatosis, can down-modulate the expression of MHC-I molecules, but the viral factor(s) has not been described. We cloned and characterized a gene coding for an endoplasmic reticulum (ER)-resident protein containing an atypical zinc finger and two transmembrane domains, which we called myxoma virus leukemia-associated protein (MV-LAP). MV-LAP down-regulated surface MHC-I and Fas-CD95 molecules upon transfection; the mechanism probably involves an exacerbation of endocytosis and was lost when the ER r…

ImmunologyMolecular Sequence DataDown-RegulationMyxoma virusReceptors Cell SurfaceMajor histocompatibility complexEndoplasmic ReticulumMicrobiologyVirusCell Line03 medical and health sciencesViral ProteinsMyxomatosis InfectiousVirologymedicineAnimalsFACTEUR VIRALPoxviridaeAGRONOMIEAmino Acid Sequencefas ReceptorComputingMilieux_MISCELLANEOUS030304 developmental biology[SDV.MP.VIR] Life Sciences [q-bio]/Microbiology and Parasitology/Virology0303 health sciencesBIOTECHNOLOGIEMyxomatosisbiologyBase SequenceVirulence030302 biochemistry & molecular biologyHistocompatibility Antigens Class IMyxoma virusMembrane ProteinsER retentionSequence Analysis DNAbiology.organism_classificationmedicine.diseaseVirology3. Good healthCTL*Lytic cycleInsect Science[SDV.MP.VIR]Life Sciences [q-bio]/Microbiology and Parasitology/Virologybiology.proteinPathogenesis and ImmunityReceptors VirusRabbitsT-Lymphocytes Cytotoxic
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Persistent and Transient Replication of Full-Length Hepatitis C Virus Genomes in Cell Culture

2002

ABSTRACT The recently developed subgenomic hepatitis C virus (HCV) replicons were limited by the fact that the sequence encoding the structural proteins was missing. Therefore, important information about a possible influence of these proteins on replication and pathogenesis and about the mechanism of virus formation could not be obtained. Taking advantage of three cell culture-adaptive mutations that enhance RNA replication synergistically, we generated selectable full-length HCV genomes that amplify to high levels in the human hepatoma cell line Huh-7 and can be stably propagated for more than 6 months. The structural proteins are efficiently expressed, with the viral glycoproteins E1 and…

ImmunologyReplicationGenome ViralHepacivirusBiologyVirus ReplicationMicrobiologyVirusViral ProteinsGene FrequencyVirologyTumor Cells CulturedHumansSubgenomic mRNAchemistry.chemical_classificationEndoplasmic reticulumRNAHepatitis CMolecular biologyNS2-3 proteasechemistryViral replicationCell cultureCulture Media ConditionedInsect ScienceRNA ViralGlycoproteinSubcellular FractionsJournal of Virology
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Of mice and models: improved animal models for biomedical research.

2002

The ability to engineer the mouse genome has profoundly transformed biomedical research. During the last decade, conventional transgenic and gene knockout technologies have become invaluable experimental tools for modeling genetic disorders, assigning functions to genes, evaluating drugs and toxins, and by and large helping to answer fundamental questions in basic and applied research. In addition, the growing demand for more sophisticated murine models has also become increasingly evident. Good state-of-principle knowledge about the enormous potential of second-generation conditional mouse technology will be beneficial for any researcher interested in using these experimental tools. In thi…

Isopropyl ThiogalactosideMice KnockoutTranscriptional ActivationReceptors SteroidIntegrasesPhysiologybusiness.industryResearchMice TransgenicBiologyTetracyclineData scienceBiotechnologyMiceViral ProteinsCytochrome P-450 Enzyme SystemDNA NucleotidyltransferasesGene TargetingModels AnimalGeneticsAnimalsApplied researchThe InternetbusinessPhysiological genomics
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Is the Rigidity of SARS-CoV-2 Spike Receptor-Binding Motif the Hallmark for Its Enhanced Infectivity? Insights from All-Atom Simulations

2020

The severe acute respiratory syndrome coronavirus (SARS-CoV-2) pandemic is setting the global health crisis of our time, causing a devastating societal and economic burden. An idiosyncratic trait of coronaviruses is the presence of spike glycoproteins on the viral envelope, which mediate the virus binding to specific host receptor, enabling its entry into the human cells. In spite of the high sequence identity of SARS-CoV-2 with its closely related SARS-CoV emerged in 2002, the atomic-level determinants underlining the molecular recognition of SARS-CoV-2 to the angiotensin-converting enzyme 2 (ACE2) receptor and, thus, the rapid virus spread into human body, remain unresolved. Here, multi-m…

LettervirusesAmino Acid MotifsPneumonia ViralVirus Attachment02 engineering and technologyPlasma protein bindingBiologyPeptidyl-Dipeptidase AMolecular Dynamics SimulationVirus03 medical and health sciencesBetacoronavirusViral ProteinsProtein structureViral envelopeGlobal healthHumansGeneral Materials SciencePhysical and Theoretical ChemistryReceptorProtein Structure QuaternaryPandemics030304 developmental biologyGlycoproteinschemistry.chemical_classificationGeneticsInfectivity0303 health sciencesSARS-CoV-2virus diseasesCOVID-19Hydrogen Bonding021001 nanoscience & nanotechnologySARS VirusProtein Structure TertiarySevere acute respiratory syndrome-related coronaviruschemistrySettore CHIM/03 - Chimica Generale E InorganicaQuantum TheoryAngiotensin-Converting Enzyme 20210 nano-technologyGlycoproteinCoronavirus InfectionsProtein Binding
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Random, asynchronous, and asymmetric transcriptional activity of enhancer-flanking major immediate-early genes ie1/3 and ie2 during murine cytomegalo…

2001

ABSTRACT The lungs are a major organ site of cytomegalovirus (CMV) pathogenesis, latency, and recurrence. Previous work on murine CMV latency has documented a high load and an even distribution of viral genomes in the lungs after the resolution of productive infection. Initiation of the productive cycle requires expression of the ie1/3 transcription unit, which is driven by the immediate-early (IE) promoter P 1/3 and generates IE1 and IE3 transcripts by differential splicing. Latency is molecularly defined by the absence of IE3 transcripts specifying the essential transactivator protein IE3. In contrast, IE1 transcripts were found to be generated focally and randomly, reflecting sporadic P …

Lung DiseasesMuromegalovirusTranscription GeneticvirusesImmunologyReplicationEnhancer RNAsBiologyMicrobiologyImmediate early proteinImmediate-Early ProteinsTransactivationMiceViral ProteinsViral Envelope ProteinsTranscription (biology)VirologyVirus latencymedicineAnimalsEnhancerTranscription factorGenes Immediate-EarlyLungGeneticsMice Inbred BALB CMembrane Glycoproteinsvirus diseasesHerpesviridae Infectionsmedicine.diseaseUpstream EnhancerVirus LatencyEnhancer Elements GeneticInsect ScienceTrans-ActivatorsFemaleJournal of virology
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Genetics for Pseudoalteromonas provides tools to manipulate marine bacterial virus PM2

2008

ABSTRACT The genetic manipulation of marine double-stranded DNA (dsDNA) bacteriophage PM2 ( Corticoviridae ) has been limited so far. The isolation of an autonomously replicating DNA element of Pseudoalteromonas haloplanktis TAC125 and construction of a shuttle vector replicating in both Escherichia coli and Pseudoalteromonas enabled us to design a set of conjugative shuttle plasmids encoding tRNA suppressors for amber mutations. Using a host strain carrying a suppressor plasmid allows the introduction and analysis of nonsense mutations in PM2. Here, we describe the isolation and characterization of a suppressor-sensitive PM2 sus2 mutant deficient in the structural protein P10. To infect an…

MESH: Corticoviridae[SDV]Life Sciences [q-bio]Bacteriophages Transposons and PlasmidsMutantPlasmidPseudoalteromonasRNA TransferMESH: Genetic VectorsMESH: Models GeneticMESH: Capsid ProteinsGenetics0303 health sciencesbiologyMESH: Escherichia coliPseudoalteromonasMESH: Mutagenesis Site-DirectedPhenotypeMESH: DNA CircularElectrophoresis Polyacrylamide GelDNA CircularMESH: Genome ViralPlasmidsMESH: MutationGenetic VectorsGenome ViralMESH: PhenotypeMicrobiologyPseudoalteromonas haloplanktisViral Proteins03 medical and health sciencesShuttle vectorMESH: PlasmidsHost outer membraneEscherichia coliSeawaterMolecular Biology030304 developmental biologyModels Genetic030306 microbiologyMESH: PseudoalteromonasCorticoviridaeMESH: SeawaterViral membranebiology.organism_classificationMESH: RNA TransferMESH: Viral Proteins[SDV.MP.BAC]Life Sciences [q-bio]/Microbiology and Parasitology/BacteriologyMutationMutagenesis Site-DirectedCapsid ProteinsBacterial virusMESH: Electrophoresis Polyacrylamide Gel
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