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Preliminary studies on the biology of Borna disease virus.

Borna disease virus (BDV) is an unclassified agent that causes neurological disease in a wide range of animal species and possibly in humans. The infectious nature of BDV has been long established but, despite extensive progress on the pathogenesis of the infection, the aetiological agent is still uncharacterized. Recent studies have shown that BDV replicates productively in cultures of foetal rabbit glial cells (FRG) which produce a virus-specific protein that is easily detected immunocytochemically. This provides a marker for BDV infectivity. This cell culture system was used to investigate the replication cycle of BDV. The agent required at least 1 h to bind to and penetrate the cells and the antigen was detected 24 h later. Cycloheximide and actinomycin D inhibited production of the antigen in inoculated cells, indicating that both protein synthesis and a DNA-dependent function were required for the production of viral antigen. Cocultivation of BDV-infected FRG cells with Vero cells resulted in a persistent productive infection in the latter. Use of these cells showed that the infectious agent matured exclusively in the cytoplasm and within the plasma membrane of the cell. Antigen-laden nuclei did not have infectivity. These studies showed that BDV has the physical and replicative properties typical of conventional viruses but its mechanism of replication and site of morphogenesis may be unique.

Animals↗

Nucleotide sequence analysis of the structural gene coding region of the pestivirus border disease virus.

Border disease virus (BDV) of sheep, an important ovine pathogen, is serologically related to the two other well characterized members of the Pestivirus genus of the Flaviviridae family, namely bovine viral diarrhea virus (BVDV) and hog cholera virus (HoCV). To determine its genetic relationship to BVDV and HoCV, the genome of BDV strain, BD-78 encompassing the 5' untranslated region (UTR) and structural gene coding region was molecularly cloned and the nucleotide sequence determined. The sequenced region of 3,567 nucleotides contained one open reading frame encoding 1063 amino acids. The nucleotide and amino acid sequences of BD-78 were compared with those of two BVDV strains NADL and SD-1, and the Alfort and Brescia strains of HoCV. The overall nucleotide sequence homologies of the region sequenced of BD-78 are 68.3% with BVDV-NADL, 67.8% with BVDV-SD-1, 69.0% with HoCV-Brescia, and 65.8% with HoCV-Alfort. The overall amino acid sequence homologies of BD-78 are 76.1% with NADL, 76.5% with SD-1, 74.2% with Brescia, and 72.9% with Alfort. The most conserved nucleotide and amino acid sequences between BD-78 and the other pestivirueses are in the 5' UTR and the capsid protein coding region (p14), where as the most divergent sequences are in the E2 coding region. These findings suggest that BDV is a unique virus in the Pestivirus genus.

Amino Acid Sequence↗

The atypical strategies used for gene expression of Borna disease virus, a nonsegmented, negative-strand RNA virus.

Borna disease virus (BDV) is a neurotropic agent that causes disturbances in movement and behavior in vertebrate host species ranging from birds to primates. Although the virus has not been isolated from human subjects, there is indirect evidence to suggest that humans with neuropsychiatric disorders may be infected with BDV. Recently, virus particles have been isolated and the viral genomic RNA has been cloned. This analysis revealed that BDV is a nonsegmented, negative-strand RNA virus. Unusual features such as RNA splicing, overlap of transcription units and transcription signals, as well as sequence dissimilarity for four of five major open reading frames to genes of other nonsegmented, negative-strand RNA viruses suggest that BDV is likely to represent a new taxon within the order Mononegavirales.

Animals↗

Role of fusion protein cleavage site in the virulence of Newcastle disease virus.

Newcastle disease virus (NDV) causes a highly contagious and economically important disease in poultry. Viral determinants of NDV virulence are not completely understood. The amino acid sequence at the protease cleavage site of the fusion (F) protein has been postulated as a major determinant of NDV virulence. In this study, we have examined the role of F protein cleavage site sequence in NDV virulence using reverse genetics technology. The sequence G-R-Q-G-R present at the cleavage site of the F protein of avirulent strain LaSota was mutated to R-R-Q-K-R, which is present in the F cleavage site of neurovirulent strain Beaudette C (BC). The resultant mutated LaSota V.F. virus did not require exogenous protease for infectivity in cell culture, indicating that the F protein was cleaved by intracellular proteases. The virulence of the mutant and parental viruses was evaluated in vivo by intracerebral pathogenicity index (ICPI) and intravenous pathogenicity index (IVPI) tests in chickens. Our results showed that the modification of the F protein cleavage site resulted in a dramatic increase in virulence from an ICPI value of 0.00 for LaSota to a value of 1.12 for LaSota V.F. However, the ICPI value of LaSota V.F. was lower than that of BC, which had a value of 1.58. Interestingly, the IVPI tests showed values of 0.00 for both LaSota and LaSota V.F. viruses, compared to the IVPI value of 1.45 of BC. In vitro characteristics of the viruses were also studied. Our results demonstrate that the efficiency of cleavage of the F protein plays an important role if the NDV is delivered directly into the brains of chicks, but there could be other viral factors that probably affect peripheral replication, viremia, or entry into the central nervous system.

Amino Acid Sequence↗

The mediator of cellular immunity. XII. Inhibition of activated T cells by Newcastle disease virus.

Newcastle disease virus (NDV) can interact in at least two ways with rat T cells. By adsorbing to circulating lymphocytes, the virus can transiently deflect the cells from lymph nodes and inflammatory exudates induced in the peritoneal cavity. T cells are affected regardless of age, state of activation, or position in the mitotic cycle. The effect is reversible and is mediated not only by infectious (I)-NDV, but also by UV-NDV which cannot achieve a complete replication cycle in eggs. But I-NDV has another lasting effect on activated T cells. It is revealed in the failure of virus-treated thoracic duct lymphocytes to transfer cellular resistance to Listeria monocytogenes, delayed-type hypersensitivity to soluble antigens of the parasite, and the permanent exclusion of labeled S-phase lymphocytes from inflammatory foci. Activated T cells are inhibited by virus multiplicites which have little if any effect upon the proliferative potential of antigen-sensitive T cells or localization of labeled small lymphocytes in lymph nodes. The underlying mechanism has not been determined; however, there are reasons for thinking that NDV has a lethal effect upon activated T cells, because the latter are permissive for virus replication.

Animals↗

RNA splicing in Borna disease virus, a nonsegmented, negative-strand RNA virus.

Borna disease virus (BDV) is a nonsegmented, negative-strand RNA virus related to rhabdoviruses and paramyxoviruses. Unlike animal viruses of these two families, BDV transcribes RNAs in the nuclei of infected cells and produces high levels of transcripts containing multiple open reading frames. Previous Northern blot analysis of RNA from BDV-infected rat brain tissue has shown that two viral transcripts, a 6.1-kb RNA and a 1.5-kb RNA, lack regions that are internal to two otherwise identical transcripts, the 7.1-kb RNA and the 2.8-kb RNA, respectively (T. Briese, A. Schneemann, A. Lewis, Y. Park, S. Kim, H. Ludwig, and W. I. Lipkin, Proc. Natl. Acad. Sci. USA 91:4362-4366, 1994). To determine the precise location of this deletion, we performed reverse transcription PCR analysis using total RNA from BDV-infected rat brain tissue. This investigation resulted in the identification of two introns in the 7.1- and 2.8-kb RNAs, which can be alternatively spliced to yield additional RNA species, including the 6.1- and 1.5-kb RNAs. Transient transfection of COS-7 cells with a cDNA clone of the 2.8-kb RNA resulted in the production of both the 2.8-kb RNA and the 1.5-kb RNA, confirming the theory that the 2.8-kb RNA is a sufficient substrate for splicing in mammalian cells. Splicing has not previously been observed in nonsegmented, negative-strand RNA viruses and presumably serves as a mechanism by which expression of BDV proteins is regulated in infected cells.

Animals↗

Reverse-genetic approaches to the study of Borna disease virus.

Borna disease virus (BDV) is an enveloped virus that has a non-segmented, negative-strand RNA genome with the characteristic organization of the mononegaviruses. However, based on its unique genetic and biological features, BDV is considered to be the prototypic member of a new mononegavirus family, the Bornaviridae. BDV causes central nervous system (CNS) disease in a wide variety of mammals. This article discusses the recently developed reverse-genetics systems for BDV, and the implications for the elucidation of the molecular mechanisms underlying BDV-host interactions, including the basis of BDV persistence in the CNS and its associated diseases.

Animals↗

Fine structure and morphogenesis of Borna disease virus.

Borna disease virus (BDV), a negative nonsegmented single-stranded RNA virus, has not been fully characterized morphologically. Here we present what is to our knowledge the first data on the fine ultrastructure and morphogenesis of BDV. The supernatant of MDCK cells persistently infected with BDV treated with n-butyrate contained many virus-like particles and more BDV-specific RNA than that of untreated samples. The particles were spherical, enveloped, and approximately 130 nm in diameter; had spikes 7 nm in length; and reacted with BDV p40 antibody. A thin nucleocapsid, 4 nm in width, was present peripherally in contrast to the thick nucleocapsid of hemagglutinating virus of Japan. The BDV particles reproduced by budding on the cell surface.

Animals↗

A reverse genetics system for Borna disease virus.

Borna disease virus (BDV) is an enveloped virus. Its non-segmented, negative-stranded RNA genome has the coding capability for six main polypeptides and has an organization characteristic of members of the order Mononegavirales. However, based on its unique genetics and biological features, BDV is considered to be the prototypic member of a new virus family, Bornaviridae. Here, the establishment of a reverse genetics system for BDV is described. Intracellular synthesis of a BDV RNA analogue or minigenome (MG) from a plasmid was driven by RNA polymerase I. Co-transfection with plasmids expressing the BDV polymerase (L), nucleoprotein (N) and phosphoprotein (P) under the control of RNA polymerase II allowed for BDV MG replication and expression. This process depended on a delicate N:P ratio, whereas the L:P ratio was less critical. Two isoforms of N, Np40 and Np38, are present in BDV-infected cells but only Np40 was strictly required for virus polymerase activity. BDV p10 polypeptide encoded by the P gene exhibited a strong inhibitory effect on BDV MG expression.

Animals↗

Retinoic acid enhances killing of neuroblastoma cells by Newcastle disease virus.

Newcastle disease virus (NDV), an avian pathogen, selectively replicates in and kills neuroblastoma (NB) cells, but not normal fibroblasts in vitro and in vivo in nude mice. NDV cytotoxicity towards NB cells is enhanced by N-myc oncogene amplification. To further define the antineoplastic effects of NDV, we examined NDV's interaction with NB cells following short-term exposure to the differentiating agent, all-trans retinoic acid (RA), and to neuraminidase. The human NB cell line IMR-32, after treatment with 50 mumol/L RA, became eight times more sensitive to NDV in a cytotoxicity assay. A time course study to determine the optimal incubation period of IMR-32 cells with RA indicated that a fourfold increase in sensitivity towards NDV killing occurred after only 8 hours of RA incubation prior to addition of virus. Maximal sensitivity was achieved at 24 hours of RA incubation and remained constant for longer incubation periods (up to 72 hours). The sensitization of IMR-32 NB cells to NDV was constant for RA doses between 3 mumol/L and 50 mumol/L. Plaque formation, which indicates replication, virus spread and cytotoxicity by a single infectious virus particle, was also enhanced by RA. This effect does not appear to require N-myc amplification in the target NB cells since RA had similar effects upon the high N-myc (IMR-32) and the low N-myc expressing cells (SK-N-SH). Enhanced sialylation has been shown by others to mediate the growth inhibitory effects of RA on a variety of tumor lines. Removal of sialic acid from the IMR-32 NB cell surface using Clostridium neuraminidase (2.7 mg/mL) inhibited 75% of NDV plaque formation. These results demonstrate that NDV killing of two NB cell lines is enhanced using clinically achievable levels of RA and that sialylation of the NB cell surface is important for virus binding and cytotoxicity.

Cytopathogenic Effect, Viral↗

Cell-mediated immune response and IL-2 production in white-tailed deer experimentally infected with hemorrhagic disease viruses.

Hemorrhagic disease, caused by various serotypes of two closely related orbivirus serogroups, the epizootic hemorrhagic disease viruses (EHDV) and the bluetongue viruses (BTV), is a major cause of morbidity and mortality in white-tailed deer (WTD) in the United States. Despite the importance of hemorrhagic disease in WTD, little is known about host defense mechanisms triggered by infection with either causative virus or how that immune response is modulated by challenge with closely related orbiviruses, as can occur under natural conditions. Initial experimental data from our laboratory showed WTD infected with EHDV serotype 2 (EHDV-2) had responded serologically but often became lymphopenic and had a reduced lymphocyte proliferative response in vitro to T-cell mitogens, suggesting possible suppression of cell-mediated immunity. The primary objective of this study was to more closely examine cell-mediated immunity of WTD when experimentally infected with EHDV-2 and subsequently challenged with BTV serotype 10 (BTV-10). The cell-mediated response was evaluated via in vitro lymphocyte proliferation and interleukin-2 (IL-2) production assays, and in vivo delayed type hypersensitivity tests. Deer infected with either EHDV-2 or BTV-10 responded similarly in all assays. Infected deer had decreased lymphocyte counts between post-infection days (PID) 6 and 10, with concurrent diminished lymphocytic response to concanavalin A in lymphocyte proliferation assays and phytohemagglutinin in delayed, type hypersensitivity tests. However, IL-2 production by peripheral blood lymphocytes of infected deer was comparable with that of non-infected control deer as measured using a IL-2-dependent bovine cell line (BT2). This suppression of T-cell proliferation, but not IL-2 production suggests selective inhibition of T-cells probably via altered signal transduction for either expression of the IL-2 receptor or for IL-2 receptor signal-induced T-cell proliferation.

Animals↗

Neuropharmacological sequelae of persistent CNS viral infections: lessons from Borna disease virus.

Borna Disease Virus (BDV) is a neurotropic RNA virus that is worldwide in distribution, causing movement and behavior disorders in a wide range of animal species. BDV has also been reported to be associated with neuropsychiatric diseases of humans by serologic study and by recovery of nucleic acid or virus from blood or brain. Natural infections of horses and sheep produce encephalitis with erratic excited behaviors, hyperkinetic movement or gait abnormalities; naturally infected cats have ataxic "staggering disease." Experimentally infected primates develop hyperactivity, aggression, disinhibition, then apathy; prosimians (lower primates) have hyperactivity, circadian disruption, abnormal social and dominance behaviors, and postural disorders. However, the neuropharmacological determinants of BD phenotypes in laboratory and natural hosts are incompletely understood. Here we review how experimentally infected rodents have provided models for examining behavioral, pharmacologic, and biochemical responses to viral challenge, and how rodents experimentally infected as neonates or as adolescents are providing models for examining age-specific neuropharmacological adaptations to viral injury.

Animals↗

Immunohistochemical studies on the interaction between Ehrlich ascites tumor cells and Newcastle disease virus.

Newcastle disease virus infection of Ehrlich ascites tumor cells resulted, after a period of time, in the appearance of intracellular viral antigen which could be demonstrated by the fluorescent antibody technique. This antigen appeared in the cytoplasm of infected cells only after inoculation of cell-virus mixtures into the peritoneal cavities of mice. The latent period prior to the appearance of antigen depended inversely on the number of viral particles adsorbed onto the cells prior to inoculation. The final intensity of staining appeared not to be proportionate to the number of viral particles adsorbed to each cell. The appearance of this antigen was not correlated with a rise of titer of infectious, hemagglutinating, or complement-fixing virus. Viral antigen was demonstrated on the surface of tumor cells after adsorption of NDV onto these cells at 0 degrees C. At appropriate virus:cell ratios, antigen was noted to disappear from the surface at 37 degrees C. in vitro, and in vivo, in the absence of demonstrable elution of virus. The appearance of intracellular viral antigen could not be detected in vitro when tumor cell-NDV mixtures were incubated at 37 degrees C., even when an average of 1550 "infectious particles" had adsorbed to each cell.

Animals↗

The role of interferon in interference and auto-interference elicited by Newcastle disease virus.

Newcastle disease virus (NDV) strains interfere in different degree with the growth of the velogenic NDV strain Texas GB (homologous interference) and Sindbis virus (heterologous interference) in chick embryo fibroblast cells. Homologous interference was elicited by interferon-producing live or UV-inactivated strains and non-interferon-producing live or beta-propiolactone-inactivated strains and it was not influenced by actinomycin D. Thus, interferon had apparently no role in homologous interference of NDV. The growth of Sindbis virus was, however, much more inhibited by interferon-producing live or UV-inactivated NDV strains than with non-inducing ones and the interference was reversible by actinomycin D. Thus heterologous interference is apparently mediated by interferon. In chicken cells infected with the mesogenic NDV strain H, virus yields were 50 to 100 times lower at multiplicities of infection above 0.1 p.f.u./cell than below it. The interferon formed during infection played no role in auto-interference, but may well be held responsible for the mild cytopathic effect observed.

Animals↗

Identification of signal sequences that control transcription of borna disease virus, a nonsegmented, negative-strand RNA virus.

Borna disease virus (BDV) is a nonsegmented, negative-strand RNA virus that causes neurologic disorders in a wide range of animal species. Although the virus is unclassified, sequence analysis of the 8.9-kb viral genome has shown that it is related to rhabdoviruses and paramyxoviruses. We have mapped subgenomic RNAs of BDV strain He80-1 to the viral genome by determining the precise sequences at their 5' and 3' termini. This analysis showed that the genome contains three transcription initiation sites and four termination sites. A 14- to 16-nucleotide semiconserved sequence was present at the gene start sites and partially copied into the subgenomic RNAs. The termination sites contained a U-rich motif reminiscent of termination signals in rhabdoviruses and paramyxoviruses. In contrast to the genomes of other nonsegmented, negative-strand RNA viruses, the BDV genome lacked the typical configuration of termination signal, intergenic region, and initiation signal at the gene boundaries. Instead, transcription units and transcription signals frequently overlapped. These differences have implications for our understanding of the control of viral transcription and may relate to the low-level replication and persistence of BDV.

Animals↗

Isolation and biological properties of some Moroccan strains of Newcastle disease virus.

Newcastle disease virus was isolated from six field cases in Morocco. On the basis of the mean death time of chicken embryos, the intracerebral pathogenicity index, and plaque formation on chicken embryo fibroblast monolayers, five isolates were determined to be of the velogenic pathotype. One of these differed from the others in that it agglutinated equine erythrocytes. The sixth isolate was found to be of low virulence but differed from the vaccinal strain tested.

Animals↗

Molecular basis for the differential subcellular localization of the 38- and 39-kilodalton structural proteins of Borna disease virus.

Borna disease virus (BDV) is a nonsegmented negative-strand (NNS) RNA virus that is unusual because it replicates in the nucleus. The most abundant viral protein in infected cells is a 38/39-kDa doublet that is presumed to represent the nucleocapsid. Infectious particles also contain high levels of this protein, accounting for at least 50% of the viral proteins. The two forms of the protein differ by an additional 13 amino acids that are present at the amino terminus of the 39-kDa form and missing from the 38-kDa form. To examine whether this difference in amino acid content affects the localization of this protein in cells, the 39- and 38-kDa proteins were expressed in transfected cells. The 39-kDa form was concentrated in the nucleus, whereas the 38-kDa form was found in both the nucleus and cytoplasm. Inspection of the extra 13 amino acids present in the 39-kDa form revealed a sequence (Pro-Lys-Arg-Arg) that is very similar to the nuclear localization signals (in both sequence homology and amino-terminal location) of the VP1 proteins of simian virus 40 and polyomavirus. Primer extension analysis of total RNA from infected cells suggests that there are two mRNA species encoding the two forms of the nucleocapsid protein. In infected cells, the 39-kDa form is expressed at about twofold-higher levels than the 38-kDa form at both the RNA and protein levels. The novel nuclear localization of the 39-kDa nucleocapsid-like protein suggests that this form of the protein is targeted to the nucleus, the site for viral RNA replication, and that it may associate with genomic RNA.

Animals↗