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Heat-shock protein 70 can replace viral protein R of HIV-1 during nuclear import of the viral preintegration complex.

Heat-shock proteins (Hsp's) are a family of molecular chaperones that contribute to protection from environmental stress. In this report, we demonstrate that a member of this family, Hsp70, facilitates nuclear import of HIV-1 preintegration complexes (PICs). The mechanism of this activity appears to be similar to the one used by Vpr, an HIV-1 protein regulating viral nuclear import and replication in macrophages. Indeed Hsp70 stimulated binding of HIV-1 matrix antigen to GST-karyopherin alpha fusion protein and rescued nuclear import of a Vpr-defective HIV-1 strain in vitro. Binding studies with truncated forms of GST-karyopherin alpha demonstrated that both Vpr and Hsp70 bind to a region in the amino-terminal part of the karyopherin alpha molecule. This region appears to be distinct from the binding sites for two other karyopherin alpha cargoes, basic-type NLS-containing proteins and transcription factor STAT-1. Vpr competed with Hsp70 for binding to karyopherin alpha. These results suggest the presence of a novel regulatory site on karyopherin alpha which is used by Hsp70 and Vpr to stimulate interaction between the HIV-1 PIC and karyopherin alpha and thus promote viral nuclear import.

Antigens, Polyomavirus Transforming↗

The human immunodeficiency virus type 1 Vif protein modulates the postpenetration stability of viral nucleoprotein complexes.

The vif gene of human immunodeficiency virus type 1 is absolutely required for productive infection of primary cells derived from human blood and certain immortalized T lymphoid cells, for example, H9. Cells with this restrictive phenotype are termed nonpermissive, whereas cell lines in which vif-deficient virus can replicate efficiently are known as permissive. In this paper, we describe experiments in which virus stocks derived from single-cycle infections of strictly nonpermissive H9 cells were used to determine the fate of vif-deficient infections. By PCR-based approaches, it was found that Vif has no significant impact on the biosynthetic capability of the virion reverse transcriptase in infected C8166 T cells. Specifically, the initial appearance of all DNA species up to and including initiated second (plus) strands as well as the early accumulation of these replicative intermediates is equivalent for wild-type and vif-deficient infections. However, whereas these viral DNAs are stably maintained in wild-type infections and can proceed to establish proviruses, they are largely degraded by the later time points of vif-deficient infections and, as a result, are prevented from forming proviruses. Subcellular fractionation analyses indicated that the majority of viral DNA is localized to the nucleus within 2 h of infection and that the turnover of reverse transcripts that occurs in these vif-deficient infections presumably takes place in the nucleus. Given that the ultimate infection phenotype of the virions is determined during virus production, we propose that Vif is required for an aspect of virus assembly and/or maturation that endows penetrating viral nucleoprotein cores with the ability to mature into functional preintegration complexes that can proceed to provirus establishment. In contrast, viruses that are produced in the absence of Vif give rise to nucleoprotein complexes that disassemble prematurely in challenged cells and fail to protect their RNA/DNA contents from nucleolytic destruction.

Cell Nucleus↗

Self-organization: making complex infectious viral particles from purified precursors.

Viruses have served as excellent model systems in which to study biological self-organization. Purified virion structural constituents have been shown to self-assemble into particles that can initiate a productive infection in the host cell resulting in the release of progeny virions. Accumulating information on virus structures and assembly principles has revealed unexpected similarities between viruses that infect hosts as diverse as bacteria and humans, suggesting that these viruses had an early common ancestor. I will describe, in more detail, the assembly pathway of a complex double-stranded RNA bacterial virus. In this system, infectious viral particles are produced starting from purified protein and nucleic acid constituents through an elaborate self-assembly, RNA-packaging and synthesis pathway.

Biological Evolution↗

Mapping of the major histocompatibility complex and viral antigens on the plasma membrane of a measles virus-infected cell.

The two measles virus glycoproteins, the hemagglutinin and fusion protein, are expressed on the surfaces of infected cells. Although the two molecules are chemically distinct, they associate on the cell surface, judging from their ability to comigrate (co-cap). However, neither is directly complexed with the major histocompatibility (MHC) gene products, HLA-A, -B, -C or -D, on the plasma membrane, based on results from three distinct assays. First, in tests of capping, these viral glycoproteins failed to comigrate with any HLA determinant. Second, electron microscopy showed that the viral glycoproteins occupied domains on the plasma membrane distinct from MHC gene products; 125I labeling of cell surface determinants and subsequent analysis by immune precipitation and PAGE confirmed this result. Third, incubation of measles virus-infected cells in the presence of monoclonal or polyclonal antibodies to measles virus glycoproteins removed the viral glycoproteins from the cells' surfaces but did not cause a corresponding decrease in amounts of HLA molecules. These results indicate that the hemagglutinin and fusion polypeptides of measles virus lie in close association on the plasma membrane; however, neither is linked with MHC gene products.

Antigens, Viral↗

The regulatory chain in the p36-kd substrate complex of viral tyrosine-specific protein kinases is related in sequence to the S-100 protein of glial cells.

The major cytoplasmic target of various tyrosine-specific protein kinases is a 36-kd protein (p36). This protein can exist as a monomer or as a complex with a small subunit which seems to have a regulatory function. Amino acid sequence analysis of the small subunit from porcine intestine documents a unique polypeptide of 95 residues with a calculated mol. wt. close to 11 kd (p11). Since an immunologically related subunit of the same electrophoretic mobility is also found in the corresponding complex of chicken intestine p11 is well conserved across species. Unexpectedly, the sequence of p11 shows a high homology with the glia-specific protein S-100 whose biological function is not known. Although both proteins are dimers of rather small polypeptides we have not been able to detect in our preparations of p11 the moderate Ca2+ binding known for S-100. Certain implications of this sequence relation are discussed.

Amino Acid Sequence↗

The herpes simplex virus type 1 transactivator ICPO mediates aberrant intracellular localization of the viral helicase/primase complex subunits.

The infected cell polypeptide 0 (ICP0) protein of herpes simplex virus type 1 (HSV-1) is a promiscuous transactivator. When expressed by transfection, ICP0 forms spherical structures in the nucleus. Using a double-label immunofluorescence assay, we have found that the HSV-1 helicase/primase complex subunits accumulate within ICP0 structures in cotransfected cells. This phenomenon was also observed in cells coexpressing ICP0 and UL6, a protein thought to be involved in the cleavage and/or packaging of viral genomes. ICP0 structures were found to be proteinaceous by immunoelectron microscopy. These results suggest that ICP0 may interact nonspecifically with a variety of viral proteins.

Animals↗

The C-terminal proline-rich tail of human immunodeficiency virus type 2 Vpx is necessary for nuclear localization of the viral preintegration complex in nondividing cells.

Human immunodeficiency virus type 2 (HIV-2), like other lentiviruses, is capable of infecting nondividing T cells and macrophages. The present work shows that in HIV-2-infected cells, Vpx is necessary for efficient nuclear import of the preintegration complex. In agreement with this finding, the subcellular localization of a GFP-Vpx fusion protein was found to be predominantly nuclear. However, deletion of the proline-rich C-terminal 11 residues of Vpx resulted in a shift of the fusion protein to the cytoplasm. Furthermore, the same deletion in the context of the provirus resulted in a decrease in nuclear import of the preintegration complex and attenuated replication in macrophages.

Cell Division↗

IFN-Stimulated transcription through a TBP-free acetyltransferase complex escapes viral shutoff.

Type I interferon (IFN) stimulates transcription through a heteromeric transcription factor that contains tyrosine-phosphorylated STAT2. We show that STAT2 recruits histone acetyltransferases (HAT) through its transactivation domain, resulting in localized transient acetylation of histones. GCN5, but not p300/CBP or PCAF, is required for STAT2 function. However, GCN5 function is impaired by the transcriptional antagonist, adenovirus E1A oncoprotein. The TFIID component TAF(II)130 potentiates STAT2 function, but TAF(II)28 or the HAT activity of TAF(II)250 do not, and transcriptional induction can proceed independently of the TATA-binding protein, TBP. Moreover, IFN-stimulated transcription was resistant to poliovirus-targeted degradation by TBP, and continued despite host-cell transcriptional shutoff during poliovirus infection. We conclude that a non-classical transcriptional mechanism combats an anticellular action of poliovirus, through a TBP-free TAF-containing complex and GCN5.

3C Viral Proteases↗

Keratinocytes immortalized by human papillomavirus-18 exhibit alterations dependent upon host genetic background and complexity of viral genes transfected.

Keratinocytes immortalized by the human papillomaviruses (HPVs) vary in cell morphology, growth properties, resistance to inducers of terminal differentiation, and karyotype. To determine the contribution of the host cell genetic background and the HPV genes to these cellular alterations, we have generated and characterized 6 human keratinocyte lines from two different newborn foreskins (A and B) using either the full-length HPV18 genome or the isolated HPV18 E6/E7 genes. The growth properties of the immortalized lines were found to correlate with the complexity of HPV genes present in the transfected vector. Interestingly, cell lines established from foreskin A revealed common chromosomal alterations regardless of the HPV construct utilized for immortalization, and these karyotypic changes differed from those observed in cell lines established from foreskin B, which exhibited their own characteristic aneuploid profile. Thus, chromosomal alterations of HPV-immortalized cells are in part determined by the host genetic background.

Cell Line↗

Intracellular complexes of viral spike and cellular receptor accumulate during cytopathic murine coronavirus infections.

Murine hepatitis virus (MHV) infections exhibit remarkable variability in cytopathology, ranging from acutely cytolytic to essentially asymptomatic levels. In this report, we assess the role of the MHV receptor (MHVR) in controlling this variable virus-induced cytopathology. We developed human (HeLa) cell lines in which the MHVR was produced in a regulated fashion by placing MHVR cDNA under the control of an inducible promoter. Depending on the extent of induction, MHVR levels ranged from less than approximately 1,500 molecules per cell (designated R(lo)) to approximately 300,000 molecules per cell (designated R(hi)). Throughout this range, the otherwise MHV-resistant HeLa cells were rendered susceptible to infection. However, infection in the R(lo) cells occurred without any overt evidence of cytopathology, while the corresponding R(hi) cells died within 14 h after infection. When the HeLa-MHVR cells were infected with vaccinia virus recombinants encoding MHV spike (S) proteins, the R(hi) cells succumbed within 12 h postinfection; R(lo) cells infected in parallel were intact, as judged by trypan blue exclusion. This acute cytopathology was not due solely to syncytium formation between the cells producing S and MHVR, because fusion-blocking antiviral antibodies did not prevent it. These findings raised the possibility of an intracellular interaction between S and MHVR in the acute cell death. Indeed, we identified intracellular complexes of S and MHVR via coimmunoprecipitation of endoglycosidase H-sensitive forms of the two proteins. We suggest that MHV infections can become acutely cytopathic once these intracellular complexes rise above a critical threshold level.

Animals↗

Enzymatic properties of viral replication complexes isolated from adenovirus type 2-infected HeLa cell nuclei.

When HeLa cell nuclei, isolated 17 h after infection with adenovirus type 2 (Ad2), were extracted with 200 mM ammonium sulfate, Ad2 nucleoprotein complexes were selectively released. These complexes contained a DNA polymerase activity that corresponded to DNA polymerase molecules actively engaged in Ad2 DNA replication. Under our high-salt (200 mM ammonium sulfate) incubation conditions, where no reinitiation occurred, full-length Ad2 DNA chains were synthesized by elongation of chains that had been initiated in vivo. This conclusion was further supported by density labeling experiments indicating that the in vitro DNA synthesis was semiconservative. Evidence is presented suggesting that at least part of the DNA polymerase molecules engaged in Ad2 DNA replication belong to the gamma class.

Adenoviridae↗