986 resultados para Virus assembly
Resumo:
The assembly of HIV is relatively poorly investigated when compared with the process of virus entry. Yet a detailed understanding of the mechanism of assembly is fundamental to our knowledge of the complete life cycle of this virus and also has the potential to inform the development of new antiviral strategies. The repeated multiple interaction of the basic structural unit, Gag, might first appear to be little more than concentration dependent self-assembly but the precise mechanisms emerging for HIV are far from simple. Gag interacts not only with itself but also with host cell lipids and proteins in an ordered and stepwise manner. It binds both the genomic RNA and the virus envelope protein and must do this at an appropriate time and place within the infected cell. The assembled virus particle must successfully release from the cell surface and, whilst being robust enough for transmission between hosts, must nonetheless be primed for rapid disassembly when infection occurs. Our current understanding of these processes and the domains of Gag involved at each stage is the subject of this review. Copyright (C) 2004 John Wiley Sons, Ltd.
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We show that most isolates of influenza A induce filamentous changes in infected cells in contrast to A/WSN/33 and A/PR8/34 strains which have undergone extensive laboratory passage and are mouse-adapted. Using reverse genetics, we created recombinant viruses in the naturally filamentous genetic background of A/Victoria/3/75 and established that this property is regulated by the M1 protein sequence, but that the phenotype is complex and several residues are involved. The filamentous phenotype was lost when the amino acid at position 41 was switched from A to V, at the same time, this recombinant virus also became insensitive to the antibody 14C2. On the other hand, the filamentous phenotype could be fully transferred to a virus containing RNA segment 7 of the A/WSN/33 virus by a combination of three mutations in both the amino and carboxy regions of the M1 protein. This observation suggests that an interaction among these regions of M1 may occur during assembly. (C) 2004 Elsevier Inc. All rights reserved.
Resumo:
Recent biochemical studies have identified high molecular complexes of the HIV Gag precursor in the cytosol of infected cells. Using immunoelectron microscopy we studied the time course of the synthesis and assembly of a HIV Gag precursor protein (pr55gag) in Sf9 cells infected with recombinant baculovirus expressing the HIV gag gene. We also immunolabeled for pr55gag human T4 cells acutely or chronically infected with HIV-1. In Sf9 cells, the time course study showed that the first Gag protein appeared in the cytoplasm at 28-30 h p.i. and that budding started 6-8 h later. Colloidal gold particles, used to visualize the Gag protein, were first scattered randomly throughout the cytoplasm, but soon clusters representing 100 to 1000 copies of pr55gag were also observed. By contrast, in cells with budding or released virus-like particles the cytoplasm was virtually free of gold particles while the released virus-like particles were heavily labeled. Statistical analysis showed that between 80 and 90% of the gold particles in the cytoplasm were seen as singles, as doublets, or in small groups of up to five particles probably representing small oligomers. Clusters of gold particles were also observed in acutely infected lymphocytes as well as in multinuclear cells of chronically infected cultures of T4 cells. In a few cases small aggregates of gold particles were found in the nuclei of T4 lymphocytes. These observations suggest that the Gag polyprotein forms small oligomers in the cytoplasm of expressing cells but that assembly into multimeric complexes takes place predominantly at the plasma membrane. Large accumulations of Gag protein in the cytoplasm may represent misfolded molecules destined for degradation.
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Foot-and-mouth disease virus (FMDV) is a significant economically and distributed globally pathogen of Artiodactyla. Current vaccines are chemically inactivated whole virus particles that require large-scale virus growth in strict bio-containment with the associated risks of accidental release or incomplete inactivation. Non-infectious empty capsids are structural mimics of authentic particles with no associated risk and constitute an alternate vaccine candidate. Capsids self-assemble from the processed virus structural proteins, VP0, VP3 and VP1, which are released from the structural protein precursor P1-2A by the action of the virus-encoded 3C protease. To date recombinant empty capsid assembly has been limited by poor expression levels, restricting the development of empty capsids as a viable vaccine. Here expression of the FMDV structural protein precursor P1-2A in insect cells is shown to be efficient but linkage of the cognate 3C protease to the C-terminus reduces expression significantly. Inactivation of the 3C enzyme in a P1-2A-3C cassette allows expression and intermediate levels of 3C activity resulted in efficient processing of the P1-2A precursor into the structural proteins which assembled into empty capsids. Expression was independent of the insect host cell background and leads to capsids that are recognised as authentic by a range of anti-FMDV bovine sera suggesting their feasibility as an alternate vaccine.
Resumo:
Grapevine virus A (GVA), a flexible filament of approximately 800 nm in length is composed of capsid subunits that spontaneously assembles around a positive sense genomic RNA. In addition to encapsidation, plant viruses capsid proteins (CPs) participate in other processes throughout infection and GVA CP is involved in cell-to-cell translocation of the virus. A protocol was developed to obtain low-molecular weight GVA-CP that is not prone to aggregation and spontaneous assembly and this was characterized by circular dichroism and dynamic light scattering. These results indicate the suitably of GVA-CP for X-ray crystallographic and NMR studies that should lead to the elucidation of the first three-dimensional structure of a flexible filamentous virus from the Betaflexiviridae family.
Resumo:
Untersuchungen zur posttranslationalen präS-Translokation des großen Hüllproteins des Hepatitis-B-Virus. Das große (L) Hüllprotin des Hepatitis-B-Virus (HBV) besitzt die ungewöhnliche Eigenschaft, mittels partieller, posttranslationaler Translokation seiner präS-Domäne durch intrazelluläre Membranen zwei unterschiedliche Transmembrantopologieen auszubilden. Unter Berücksichtigung der Hypothese eines HBV-spezifischen Transmembrankanals, der sich möglicherweise während der Virusmorphogenese bilden und die präS-Translokation ermöglichen könnte, wurden Parameter untersucht, welche die L-Topologie beeinflussen. Dazu wurden Wildtyp-L-Proteine und L-Mutanten in Säugerzellen synthetisiert und deren Topologie mittels Proteaseschutzversuchen untersucht. Ich konnte zeigen, daß alle Faktoren, für die angenommen wurde, daß sie für die Ausbildung einer HBV-spezifischen Pore und die damit verbundene präS-Reorientierung wichtig seien, entbehrlich sind. Im einzelnen konnte nachgewiesen werden, daß die posttranslationale präS-Translokation weder die Helferfunktion der HBV S und M Proteine, noch die kovalente Dimerausbildung der Hüllproteine benötigt. Weiterhin ergaben die Untersuchungen, daß keine der amphipathischen Transmembrandomänen des L-Proteins an der präS-Reorientierung beteiligt ist. Vielmehr wurde die hydrophobe Transmembrandomäne 2 (TM2) als ausreichend und essentiell für diesen Prozeß identifiziert. Zellfraktionierungsstudien ergaben weiterhin, daß die präS-Reorientierung und damit die duale Topologie des L-Proteins innerhalb des Endoplasmatischen Retikulums (ER) herbeigeführt wird. Letztlich konnte eine Interaktion des L-Proteins mit zellulären Chaperonen (Hsc70, Hsp40, BiP) gezeigt werden, was eine Beteiligung dieser Proteine am Translokationsprozeß nahelegt.
Resumo:
Mit etwa 350 Millionen chronisch-infizierten Menschen gehört die Hepatitis-B neben der Tuberkulose und AIDS zu den häufigsten Infektionskrankheiten der Welt. Der einzig sichere Schutz vor dem bis zur Leberzirrhose persistierenden Virus bietet eine vorbeugende Impfung. Eine angemessene Therapie chronisch-erkrankter Patienten ist durch die Unkenntnis über viele Bereiche des HBV-Lebenszyklus nur eingeschränkt möglich. Gegenstand dieser Arbeit war vor allem etwas Licht in das Wechselspiel zwischen HBV und der Wirtszelle zu bringen und zelluläre Komponenten und Mechanismen zu identifizieren, die am Sortierungs- und Transportmechanismus viraler Substrukturen zur sogenannten Assembly-Plattform beteiligt sind, um dort die Freisetzung des Virus zu initiieren. Mit der vorliegenden Arbeit habe ich Methoden der Zellbiologie, Mikrobiologie, Molekularbiologie und Virologie vereint, um neue Einblicke in den HBV-Lebenszyklus zu gewinnen. Für die Ausschleusung von HBV wird seither der konstitutive Weg der Sekretion angenommen. In Anlehnung an den Mechanismus umhüllter RNA-Viren kann die Hypothese aufgestellt werden, dass das MVB (Multivesicular Body) im Prozess der HBV-Freisetzung beteiligt sein könnte. Die Freisetzung des Hepatitis-B-Virus aus einer infizierten Zelle ist ein streng organisierter Prozess, der sowohl das HBV-Coreprotein als auch die HBV-Hüllproteine zu benötigen scheint. (max. 5.000 Zeichen)Inhaltszusammenfassung in einer weiteren Sprache deutschenglischfranzösischrussischmehrsprachigsonst.Ausgangspunkt der Arbeit war eine spezifische Interaktion des großen HBV-Hüllproteins (L) mit einem neuen Mitglied der Adaptor-Protein-Komplex-Familie (AP-Komplex), dem g2?Adaptin (Hartmann-Stühler und Prange, 2001), das mutmaßlich an endosomalen Sortierungs- und Transportprozessen beteiligt ist. In Analogie zur Funktionsweise von Adaptin-Molekülen wurde vom g2-Adaptin eine Rolle in der Initiation und Steuerung der Sprossung und Freisetzung von HBV vermutet. Die im Rahmen dieser Arbeit erweiterte Charakterisierung der g2/L-Interaktion zeigte zum einen, dass die Ohrdomäne des Adaptins für die Interaktion essentiell ist und zum anderen, dass die Rekrutierung des Adaptins durch das L-Protein zu cis-Golgi-Strukturen innerhalb kleiner Transportvesikel entlang des Nukleus (perinukleär) erfolgt. Erste Ergebnisse dieser Arbeit deuteten bereits an, dass das virale Coreprotein mit demselben Adaptorprotein zu interagieren vermag. Für die g2/Core-Interaktion erwies sich in Folgearbeiten die Kopfregion des g2-Adaptins als die entscheidende Bindungsdomäne (Rost et al., 2006). Sowohl eine funktionelle Inaktivierung des g2-Adaptins durch RNA-Interferenz als auch eine g2-Adaptin- Überexpression störten die Virusmontage in späten Phasen der Morphogenese. Während ein g2-Adaptin-Überschuss die HBV-Produktion indirekt durch die Induktion dysfunktioneller endosomaler Kompartimente blockierte, verhinderte der siRNA-induzierte g2-Adaptin-Verlust die späte Ausschleusung des Virus aus der Zelle. Das Silencing von g2-Adaptin zeigte dabei weder einen Einfluss auf endosomale Strukturen noch auf die Freisetzung subviraler Partikel (Viren ohne Genom). Demzufolge scheinen sich die Mechanismen der Produktion von subviralen und viralen HBV-Partikeln bezüglich ihrer Anforderungen an Zellfunktionen und Transportwegen deutlich voneinander zu unterscheiden. Es konnten erste Hinweise darauf gefunden werden, dass die Virusmontage an endosomalen Kompartimenten (zum Beispiel dem MVB) erfolgen könnte, was durch bereits weitergeführte Untersuchungen bestätigt werden konnte (Lambert et al., J Virol, epub ahead of print). Darüber hinaus ist inzwischen bekannt, dass das Hepatitis-B-Virus für den Zusammenbau und die Freisetzung nicht nur das Adaptor-verwandte g2-Adaptin, sondern auch die endosomale Ubiquitin Ligase Nedd4, wahrscheinlich in Zusammenhang mit Ubiquitin selbst (Rost et al., 2006), benötigt. Eine Untersuchung dieser weiterführenden Aspekte war jedoch nicht mehr Inhalt dieser Arbeit. Insgesamt weisen die Daten darauf hin, dass die Sortierung und der Transport der Substrukturen des Hepatitis-B-Virus durch den MVB-Komplex zu erfolgen scheint. Dabei könnte das g2-Adaptin mit Hilfe einer Reihe von Kofaktoren (wie zum Beispiel Nedd4, Ubiquitin, etc.) eine entscheidende Rolle an der Sortierung und Anbindung des viralen L- und Coreproteins an die Assembly-Plattform spielen. Doch der genaue Mechanismus, welcher große Ähnlichkeit mit dem umhüllter RNA-Viren (wie zum Beispiel HIV-1) aufweist, bleibt noch ungeklärt. Ob weitere zelluläre Kofaktoren an der HBV-Sprossung und Freisetzung beteiligt sind, bleibt ebenfalls unbekannt und bedarf weiterer Untersuchungen.
Resumo:
Directed release of human immunodeficiency virus type 1 (HIV-1) into the cleft of the virological synapse that can form between infected and uninfected T cells, for example, in lymph nodes, is thought to contribute to the systemic spread of this virus. In contrast, influenza virus, which causes local infections, is shed into the airways of the respiratory tract from free surfaces of epithelial cells. We now demonstrate that such differential release of HIV-1 and influenza virus is paralleled, at the subcellular level, by viral assembly at different microsegments of the plasma membrane of HeLa cells. HIV-1, but not influenza virus, buds through microdomains containing the tetraspanins CD9 and CD63. Consequently, the anti-CD9 antibody K41, which redistributes its antigen and also other tetraspanins to cell-cell adhesion sites, interferes with HIV-1 but not with influenza virus release. Altogether, these data strongly suggest that the bimodal egress of these two pathogenic viruses, like their entry into target cells, is guided by specific sets of host cell proteins.
Resumo:
Repeated, specific interactions between capsid protein (CP) subunits direct virus capsid assembly and exemplify regulated protein–protein interactions. The results presented here reveal a striking in vivo switch in CP assembly. Using cryoelectron microscopy, three-dimensional image reconstruction, and molecular modeling, we show that brome mosaic virus (BMV) CP can assemble in vivo two remarkably distinct capsids that selectively package BMV-derived RNAs in the absence of BMV RNA replication: a 180-subunit capsid indistinguishable from virions produced in natural infections and a previously unobserved BMV capsid type with 120 subunits arranged as 60 CP dimers. Each such dimer contains two CPs in distinct, nonequivalent environments, in contrast to the quasi-equivalent CP environments throughout the 180-subunit capsid. This 120-subunit capsid utilizes most of the CP interactions of the 180-subunit capsid plus nonequivalent CP–CP interactions. Thus, the CP of BMV, and perhaps other viruses, can encode CP–CP interactions that are not apparent from mature virions and may function in assembly or disassembly. Shared structural features suggest that the 120- and 180-subunit capsids share assembly steps and that a common pentamer of CP dimers may be an important assembly intermediate. The ability of a single CP to switch between distinct capsids by means of alternate interactions also implies reduced evolutionary barriers between different capsid structures. The in vivo switch between alternate BMV capsids is controlled by the RNA packaged: a natural BMV genomic RNA was packaged in 180-subunit capsids, whereas an engineered mRNA containing only the BMV CP gene was packaged in 120-subunit capsids. RNA features can thus direct the assembly of a ribonucleoprotein complex between alternate structural pathways.
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We have tested the impact of tags on the structure and function of indirect flight muscle (IFM)-specific Act88F actin by transforming mutant Drosophila melanogaster, which do not express endogenous actin in their IFMs, with tagged Act88F constructs. Epitope tagging is often the method of choice to monitor the fate of a protein when a specific antibody is not available. Studies addressing the functional significance of the closely related actin isoforms rely almost exclusively on tagged exogenous actin, because only few antibodies exist that can discriminate between isoforms. Thereby it is widely presumed that the tag does not significantly interfere with protein function. However, in most studies the tagged actin is expressed in a background of endogenous actin and, as a rule, represents only a minor fraction of the total actin. The Act88F gene encodes the only Drosophila actin isoform exclusively expressed in the highly ordered IFM. Null mutations in this gene do not affect viability, but phenotypic effects in transformants can be directly attributed to the transgene. Transgenic flies that express Act88F with either a 6x histidine tag or an 11-residue peptide derived from vesicular stomatitis virus G protein at the C terminus were flightless. Overall, the ultrastructure of the IFM resembled that of the Act88F null mutant, and only low amounts of C-terminally tagged actins were found. In contrast, expression of N-terminally tagged Act88F at amounts comparable with that of wild-type flies yielded fairly normal-looking myofibrils and partially reconstituted flight ability in the transformants. Our findings suggest that the N terminus of actin is less sensitive to modifications than the C terminus, because it can be tagged and still polymerize into functional thin filaments.
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Here we describe the first instances to our knowledge of animal virus genome replication, and of de novo synthesis of infectious virions by a nonendogenous virus, in the yeast Saccharomyces cerevisiae, whose versatile genetics offers significant advantages for studying viral replication and virus-host interactions. Flock house virus (FHV) is the most extensively studied member of the Nodaviridae family of (+) strand RNA animal viruses. Transfection of yeast with FHV genomic RNA induced viral RNA replication, transcription, and assembly of infectious virions. Genome replication and virus synthesis were robust: all replicating FHV RNA species were readily detected in yeast by Northern blot analysis and yields of virions per cell were similar to those from Drosophila cells. We also describe in vivo expression and maintenance of a selectable yeast marker gene from an engineered FHV RNA derivative dependent on FHV-directed RNA replication. Use of these approaches with FHV and their possible extension to other viruses should facilitate identification and characterization of host factors required for genomic replication, gene expression, and virion assembly.
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The heat shock protein Hsp90 is known as an essential component of several signal transduction pathways and has now been identified as an essential host factor for hepatitis B virus replication. Hsp90 interacts with the viral reverse transcriptase to facilitate the formation of a ribonucleoprotein (RNP) complex between the polymerase and an RNA ligand. This RNP complex is required early in replication for viral assembly and initiation of DNA synthesis through a protein-priming mechanism. These results thus invoke a role for the Hsp90 pathway in the formation of an RNP.
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ICSBP is a member of the interferon (IFN) regulatory factor (IRF) family that regulates expression of type I interferon (IFN) and IFN-regulated genes. To study the role of the IRF family in viral infection, a cDNA for the DNA-binding domain (DBD) of ICSBP was stably transfected into U937 human monocytic cells. Clones that expressed DBD exhibited a dominant negative phenotype and did not elicit antiviral activity against vesicular stomatitis virus (VSV) infection upon IFN treatment. Most notably, cells expressing DBD were refractory to infection by vaccinia virus (VV) and human immunodeficiency virus type 1 (HIV-1). The inhibition of VV infection was attributed to defective virion assembly, and that of HIV-1 to low CD4 expression and inhibition of viral transcription in DBD clones. HIV-1 and VV were found to have sequences in their regulatory regions similar to the IFN-stimulated response element (ISRE) to which IRF family proteins bind. Accordingly, these viral sequences and a cellular ISRE bound a shared factor(s) expressed in U937 cells. These observations suggest a novel host-virus relationship in which the productive infection of some viruses is regulated by the IRF-dependent transcription pathway through the ISRE.
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To ascertain the mechanism by which nucleosomes are assembled by factors derived from Drosophila embryos, two proteins termed Drosophila chromatin assembly factors (CAFs) 1 and 4 (dCAF-1 and dCAF-4) were fractionated and purified from a Drosophila embryo extract. The assembly of chromatin by dCAF-1, dCAF-4, purified histones, ATP, and DNA is a process that generates regularly spaced nucleosomal arrays with a repeat length that resembles that of bulk native Drosophila chromatin and is not obligatorily coupled to DNA replication. The assembly of chromatin by dCAF-1 and dCAF-4 is nearly complete within 10 min. The dCAF-1 activity copurified with the Drosophila version of chromatin assembly factor-1 (CAF-1), a factor that has been found to be required for the assembly of chromatin during large tumor (T) antigen-mediated, simian virus 40 (SV40) origin-dependent DNA replication. The dCAF-4 activity copurified with a 56-kDa core-histone-binding protein that was purified to > 90% homogeneity.
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Initial studies suggested that major histocompatibility complex class I-restricted viral epitopes could be predicted by the presence of particular residues termed anchors. However, recent studies showed that nonanchor positions of the epitopes are also significant for class I binding and recognition by cytotoxic T lymphocytes (CTLs). We investigated if changing nonanchor amino acids could increase class I affinity, complex stability, and T-cell recognition of a natural viral epitope. This concept was tested by using the HLA-A 0201-restricted human immunodeficiency virus type 1 epitope from reverse transcriptase (pol). Position 1 (P1) amino acid substitutions were emphasized because P1 alterations may not alter the T-cell receptor interaction. The peptide with the P1 substitution of tyrosine for isoleucine (I1Y) showed a binding affinity for HLA-A 0201 similar to that of the wild-type pol peptide in a cell lysate assembly assay. Surprisingly, I1Y significantly increased the HLA-A 0201-peptide complex stability at the cell surface. I1Y sensitized HLA-A 0201-expressing target cells for wild-type pol-specific CTL lysis as well as wild-type pol. Peripheral blood lymphocytes from three HLA-A2 HIV-seropositive individuals were stimulated in vitro with I1Y and wild-type pol. I1Y stimulated a higher wild-type pol-specific CTL response than wild-type pol in all three donors. Thus, I1Y may be an "improved" epitope for use as a CTL-based human immunodeficiency virus vaccine component. The design of improved epitopes has important ramifications for prophylaxis and therapeutic vaccine development.