Search results for "Capsid"

showing 10 items of 248 documents

Identification of a Ligand on the Wip1 Bacteriophage Highly Specific for a Receptor on Bacillus anthracis

2013

ABSTRACT Tectiviridae is a family of tailless bacteriophages with Gram-negative and Gram-positive hosts. The family model PRD1 and its close relatives all infect a broad range of enterobacteria by recognizing a plasmid-encoded conjugal transfer complex as a receptor. In contrast, tectiviruses with Gram-positive hosts are highly specific to only a few hosts within the same bacterial species. The cellular determinants that account for the observed specificity remain unknown. Here we present the genome sequence of Wip1, a tectivirus that infects the pathogen Bacillus anthracis . The Wip1 genome is related to other tectiviruses with Gram-positive hosts, notably, AP50, but displays some interest…

Gene Expression Regulation ViralMolecular Sequence DataGenome ViralBiologyLigandsMicrobiologyGenomeBacteriophageSpecies SpecificityCloning MolecularMolecular BiologyGenomic organizationGeneticsTectivirusGene Expression Regulation BacterialArticlesLigand (biochemistry)biology.organism_classificationBacillus anthracisMicroscopy FluorescenceCapsidBacillus anthracisDNA ViralReceptors VirusTectiviridaeTectiviridaeJournal of Bacteriology
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Analysis of the ORF2 of human astroviruses reveals lineage diversification, recombination and rearrangement and provides the basis for a novel sub-cl…

2014

Canonical human astroviruses (HAstVs) are important enteric pathogens that can be classified genetically and antigenically into eight types. Sequence analysis of small diagnostic regions at either the 5' or 3' end of ORF2 (capsid precursor) is a good proxy for prediction of HAstV types and for distinction of intratypic genetic lineages (subtypes), although lineage diversification/classification has not been investigated systematically. Upon sequence and phylogenetic analysis of the full-length ORF2 of 86 HAstV strains selected from the databases, a detailed classification of HAstVs into lineages was established. Three main lineages could be defined in HAstV-1, four in HAstV-2, two in HAstV-…

Gene RearrangementRecombination GeneticGeneticsSettore MED/07 - Microbiologia E Microbiologia ClinicaGenotypePhylogenetic treeSequence analysisComputational BiologySequence HomologyRNASequence Analysis DNAGeneral MedicineGene rearrangementBiologyAstrovirus classification recombination rearrangementHypervariable regionViral ProteinsCapsidPhylogeneticsVirologyGenotypeCluster AnalysisHumansPhylogenyMamastrovirus
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Disassembly of structurally modified viral nanoparticles: characterization by fluorescence correlation spectroscopy.

2005

Abstract Analysis of the breakdown products of engineered viral particles can give useful information on the particle structure. We used various methods to breakdown both a recombinant enveloped virus and virus-like particles (VLPs) from two non-enveloped viruses and analysed the resulting subunits by fluorescence correlation spectroscopy (FCS). Analysis of the enveloped baculovirus, Autographa californica multicapsid nucleopolyhedrovirus (AcMNPV), displaying the green fluorescent protein (GFP) fused to its envelope protein gp64 was performed in the presence and absence of 5 mM SDS and 25 mM DTT. Without treatment, the viral particle showed a diffusion time of 3.3 ms. In the presence of SDS…

General Immunology and MicrobiologyChemistryvirusesRecombinant Fusion ProteinsGreen Fluorescent ProteinsTrimerFluorescence correlation spectroscopyGeneral MedicineMothsSpodopteraFluorescenceMolecular biologyGeneral Biochemistry Genetics and Molecular BiologyGreen fluorescent proteinCell LineKineticsViral ProteinsVirus-like particleViral envelopeCapsidParticleAnimalsGeneral Agricultural and Biological SciencesBaculoviridaeComptes rendus biologies
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Chasing the Origin of Viruses: Capsid-Forming Genes as a Life-Saving Preadaptation within a Community of Early Replicators

2015

Virus capsids mediate the transfer of viral genetic information from one cell to another, thus the origin of the first viruses arguably coincides with the origin of the viral capsid. Capsid genes are evolutionarily ancient and their emergence potentially predated even the origin of first free-living cells. But does the origin of the capsid coincide with the origin of viruses, or is it possible that capsid-like functionalities emerged before the appearance of true viral entities? We set to investigate this question by using a computational simulator comprising primitive replicators and replication parasites within a compartment matrix. We observe that systems with no horizontal gene transfer…

Genes ViralSciencevirusesorigin of virusesBiologyVirus Physiological PhenomenaVirus ReplicationEvolution Molecularvirus capsids03 medical and health sciencesCompartment (development)Gene030304 developmental biologyGenetics0303 health sciencesMultidisciplinaryModels Genetic030306 microbiologyHuman evolutionary geneticsta1184ta1183QRBiological Evolutioncapsid genesCapsidViral replicationViral evolutionHorizontal gene transferMedicineCapsid ProteinsResearch ArticleVirus Physiological Phenomena
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Yeast dsRNA viruses: replication and killer phenotypes

1991

The cytoplasmic L-A dsRNA virus of Saccharomyces cerevisiae consists of a 4.5 kb dsRNA and the two gene products it encodes; the capsid (cap) and at least one copy of the capsid-polymerase (cap-pol) fusion protein. Virion cap-pol catalyses transcription of the plus (sense)-strand; this is extruded from the virus and serves as messenger for synthesis of cap and cap-pol. Nascent cap-pol binds to a specific domain in the plus strand to initiate encapsidation and then catalyses minus-strand synthesis to complete the replication cycle. Products of at least three host genes are required for replication, and virus copy number is kept at tolerable levels by the SKI antivirus system. S. cerevisiae k…

Genes ViralbiologyDNA synthesisvirusesSaccharomyces cerevisiaeRNA virusSaccharomyces cerevisiaeSpheroplastsVirus Replicationbiology.organism_classificationModels BiologicalMicrobiologyVirologyVirusPhenotypeDNA Topoisomerases Type ICapsidViral replicationTranscription (biology)VirusesRNA ViralMolecular BiologyGeneRNA Double-StrandedVirus Physiological PhenomenaMolecular Microbiology
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Fixation of mutations at the VP1 gene of foot-and-mouth disease virus. Can quasispecies define a transient molecular clock?

1991

The number of nucleotide (nt) substitutions found in the VP1 gene (encoding viral capsid protein) between any two of 16 closely related isolates of foot-and-mouth disease virus (FMDV) has been quantified as a function of the time interval between isolations [Villaverde et al.,J. Mol. Biol. 204(1988)771-776]. One of them (isolate C-S12) includes some replacements found in isolates that preceded it and other replacements found in later isolates. The study has revealed alternating periods of rapid evolution and of relative genetic stability of VP1. During a defined period of acute disease, the rate of fixation of replacements at the VP1 coding segment was 6 × 10-3 substitutions per nt per year…

GeneticsAphthovirusbiologyBase SequencevirusesMolecular Sequence DataGeneral MedicineViral quasispeciesbiology.organism_classificationVirologyBiological EvolutionVirusFixation (population genetics)KineticsAphthovirusCapsidMolecular evolutionViral evolutionMutationGeneticsRate of evolutionCapsid ProteinsAmino Acid SequenceFoot-and-mouth disease virusSequence AlignmentGene
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Rapid evolution of translational control mechanisms in RNA genomes

1997

We have introduced 13 base substitutions into the coat protein gene of RNA bacteriophage MS2. The mutations, which are clustered ahead of the overlapping lysis cistron, do not change the amino acid sequence of the coat protein, but they disrupt a local hairpin, which is needed to control translation of the lysis gene. The mutations decreased the phage titer by four orders of magnitude but, upon passaging, the virus accumulated suppressor mutations that raised the fitness to almost wild-type level. Analysis of the pseudorevertants showed that the disruption of the local hairpin, controlling expression of the lysis gene, had apparently been so complete that its restoration by chance mutations…

GeneticsGenomeBase SequenceGenes ViralbiologyMolecular Sequence DataRNAMutagenesis (molecular biology technique)RNA virusbiology.organism_classificationNucleic acid secondary structureEvolution MolecularCapsidCistronMutagenesisStructural BiologyProtein BiosynthesisBacteriophage MS2Protein biosynthesisNucleic Acid ConformationRNA ViralMolecular BiologyGeneLevivirusJournal of Molecular Biology
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Does the VP1 gene of foot-and-mouth disease virus behave as a molecular clock?

1992

We have carried out a phylogenetic study of the evolution of the VP1 gene sequence from different serological types and subtypes of foot-and-mouth disease virus (FMDV). The maximum-likelihood method developed by Hasegawa and co-workers (Hasegawa et al. 1985) for the estimation of evolutionary parameters and branching dates has been used to decide between alternative models of evolution: constant versus variable rates. The results obtained indicate that a constant rate model, i.e., a molecular clock, seems to be the most plausible one. However, additional information suggests the possibility that the appearance of serotype CS has been accompanied by an episode of rapid evolution (Villaverde …

GeneticsNatural selectionBase SequenceGenes ViralMolecular Sequence DataStatistics as TopicNucleic acid sequenceBiologybiology.organism_classificationBiological EvolutionHomology (biology)VirusAphthovirusCapsidPhylogeneticsMolecular evolutionGeneticsCapsid ProteinsFoot-and-mouth disease virusMolecular clockMolecular BiologyEcology Evolution Behavior and SystematicsPhylogenyJournal of molecular evolution
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The haplotype distribution of two genes of citrus tristeza virus is altered after host change or aphid transmission.

1999

Genetic variability of citrus tristeza virus (CTV) was studied using the haplotypes detected by single-strand conformation polymorphism (SSCP) analysis of genes p18 and p20 in six virus populations of two origins. The Spanish group included a CTV isolate and subisolates obtained by graft-transmission to different host species. The other included two subisolates aphid-transmitted from a single Japanese isolate. The homozygosity observed for gene p20 was always significantly higher than that expected under neutral evolution, whereas only three populations showed high homozygosity for p18, suggesting stronger host constraints for p20 than for p18. Sequential transmissions of a Spanish isolate …

Geneticseducation.field_of_studyAnalysis of VarianceCitrusClosterovirusGenes ViralHost (biology)PopulationHaplotypeCitrus tristeza virusSingle-strand conformation polymorphismBiologybiology.organism_classificationAnalysis of molecular varianceCapsidHaplotypesVirologyAphidsAnimalsClosterovirusGenetic variabilityeducationMathematical ComputingPolymorphism Single-Stranded ConformationalVirology
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Gene encoding capsid protein VP1 of foot-and-mouth disease virus A quasispecies model of molecular evolution

1988

A phylogenetic tree relating the VP1 gene of 15 isolates of foot-and-mouth disease virus (FMDV) of serotypes A, C, and O has been constructed. The most parsimonious tree shows that FMDV subtypes and isolates within subtypes constitute sets of related, nonidentical genomes, in agreement with a quasispecies mode of evolution of this virus. The average number of nucleotide replacements per site for all possible pairs of VP1 coding segments is higher among representatives of serotype A than serotype C or O. In comparing amino acid sequences, the values of dispersion index (variance/mean value) are greater than 1, with the highest values scored when all sequences are considered. This indicates a…

Geneticseducation.field_of_studyMultidisciplinaryPhylogenetic treebiologyNucleotidesvirusesPopulationQuasispecies modelViral quasispeciesbiology.organism_classificationViral ProteinsAphthovirusCapsidPhylogeneticsMolecular evolutionMutationAmino AcidsFoot-and-mouth disease viruseducationGenePhylogenyResearch Article
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