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Effects of double-stranded RNA viruses on the reproduction of Phaffia rhodozyma.

DsRNA viruses were transferred from a virus-containing strain to a virus-free strain of Phaffia rhodozyma by protoplast fusion. The resulting new strain carried all three types of dsRNA of the virus-containing strain and had the electrophoretic karyotype of the virus-free strain. The effects of the dsRNA viruses on the host fitness were checked by following the asexual and the sexual reproductivity. The results demonstrated that viruses have no effect on the growth rate during the lag and log phases of the vegetative reproduction, but the maximum cell numbers in the stationary phase differ significantly. Inconclusive results were obtained as concerns the effects of viruses on the sexual reproduction.

Basidiomycota↗

Factors affecting the spread of double-stranded RNA viruses in Aspergillus nidulans.

Viruses are common in asexual Aspergilli but not in sexual Aspergilli. We found no viruses in 112 isolates of the sexual Aspergillus nidulans. We have investigated factors that could play a role in preventing the spread of mycoviruses through populations of A. nidulans. Experiments were performed with A. nidulans strains infected with viruses originating from A. niger. Horizontal virus transmission was restricted but not prevented by somatic incompatibility. Viruses were transmitted vertically via conidiospores but not via ascospores. Competition experiments revealed no effect of virus infection on host fitness. Outcrossing was found to limit the spread of viruses significantly more than selfing. It is concluded that the exclusion of viruses from sexual Aspergilli could be due to the formation of new somatic incompatibility groups by sexual recombination.

Aspergillus nidulans↗

Double-stranded RNA viruses in a mycocinogenic strain of Cystofilobasidium infirmominiatum.

The viral particles (about 30 nm in diameter) that contain dsRNAs (2.0 and 6.3 kbp) encapsidated by a coat of protein were detected in a mycocin-secreting strain of Cystofilobasidium infirmominiatum isolated from plants in an oak forest (Moscow region). The mycocin with a molecular mass above 15 kDa is fungicidal (maximum activity at pH 4.5) and active mainly against some species of the Cystofilobasidiales and Filobasidiales ('Cryptococcus aerius' clade). Curing by incubation at elevated temperature resulted in the concomitant loss of dsRNAs and mycocinogenic activity, and cured derivatives became sensitive to the mycocin produced by the parent strain.

Basidiomycota↗

In vitro assembly of infectious nucleocapsids of bacteriophage phi 6: formation of a recombinant double-stranded RNA virus.

A system is described for assembling infectious bacteriophage phi 6 nucleocapsids in vitro. Procapsids encoded by cDNA copies of genomic segment L in Escherichia coli were used to package and replicate viral RNA segments. The resulting filled particles were shown to be capable of infecting host cell spheroplasts after incubation with purified nucleocapsid shell protein P8. The infected spheroplasts yielded infectious virions. A modified cDNA-derived RNA segment was inserted into virions by this method. The resulting infectious virions contained the same 4-base-pair deletion as the modified cDNA. These findings support the contention that the preformed procapsids are the "machine" that replicates the phi 6 genome, by showing that the cDNA-derived procapsids are competent to package and replicate RNA properly.

Bacteriophages↗

Packaging in a yeast double-stranded RNA virus.

The yeast virus ScV-L1 has only two genes, cap and pol, which encode the capsid polypeptide and the viral polymerase, respectively. The second gene is translated only as a cap-pol fusion protein. This fusion protein is responsible for recognition of a specific small stem and loop region of the viral plus strands, of 19 to 31 bases in length, ensuring packaging specificity. We have used a related virus, ScV-La, which has about 29% codon identity with ScV-L1 in the most conserved region of the pol gene, to map the region in pol that is responsible for packaging L1. Characterization of a number of chimeric viral proteins that recognize L1 but have the La capsid region delimits the region necessary for recognition of L1 to a 76- to 82-codon portion of pol. In addition, we show that overproduction of the La capsid polypeptide results in curing of the ScV-La virus, analogous to the production of plants resistant to RNA viruses by virtue of systemic production of viral coat protein.

Amino Acid Sequence↗

Purification and characterization of the Giardia lamblia double-stranded RNA virus.

The dsRNA virus which infects some strains of Giardia lamblia has been purified and characterized with respect to its effect on growth of the parasite. Extensive purification of the virus from G. lamblia growth medium was accomplished by Millipore filtration and two successive CsCl gradient centrifugations. The purified virus possessed a single major protein species of 100,000 molecular weight. Effects of the extensively purified virus on growth of the virus-free parasite were studied. A cloned WB strain, sensitive to the viral infection, and a cloned E-9/M strain, resistant to the infection, were studied. With the WB strain, infection can occur at a ratio as low as 10 viral particles per organism. As the virus to parasite ratio increased, the rate of growth of the parasite decreased and the percentage of parasites not adhering to the culture tube wall also increased. These nonadhering cells, which differed from the nonadhering cells under normal growth conditions, were unable to divide. They contained an average number of 500,000 viral particles per cell which may be the threshold intracellular density of viral particles arresting the growth of G. lamblia. The results also suggest that the specific consequence of viral infection, even at extremely high multiplicity of infection, is not lysis of G. lamblia trophozoites but cessation of growth.

Animals↗

Detection and characterization of a novel bisegmented double-stranded RNA virus (picobirnavirus) from rabbit faeces.

In two separate studies rabbits were fed orally with human and rabbit "picobirnaviruses". Polyacrylamide gel electrophoresis (PAGE) of nucleic acid extracted from faecal samples collected from inoculated rabbits revealed the presence of discrete equimolar bands, typical of picobirnaviruses, in several specimens. The genome profiles detected in both studies differed significantly from that of the inoculum suggesting that passage of the inoculated picobirnaviruses had not taken place and that the bands were a co-incidental finding. The presence of rabbit picobirnaviruses was confirmed by characterization of the genome bands, as dsRNA by enzyme digestion and by their co-sedimentation in caesium chloride (CsCl) gradients with 32 nm virus particles at a buoyant density of 1.39 g/ml. Picobirnavirus genome segments varied in size in a range between 2.3-2.6 kilo base pairs (kbp) and 1.6-1.9 kbp for the slow and fast migrating bands, respectively. Immune electron microscopy of the picobirnavirus particles revealed round or slightly hexagonal particles with a smooth surface and a mean diameter of 30.7 nm. In one rabbit, an immune response, temporally associated with picobirnaviruses excretion, was demonstrated by immune electron microscopy (IEM) supporting the view that picobirnaviruses may be vertebrate viruses. Two antigenically distinct picobirnavirus strains were defined by IEM.

Animals↗

Reconstitution of template-dependent in vitro transcriptase activity of a yeast double-stranded RNA virus.

Isolated mature L-A viral particles from yeast have a transcriptase activity that uses endogenous L-A double-stranded RNA (dsRNA) as template. We have previously demonstrated that empty particles derived from mature L-A viral particles have replicase activity capable of synthesizing minus strand single-stranded RNA (ssRNA) on an added plus strand ssRNA template to form dsRNA. We report here that empty particles also have transcriptase activity that uses added viral dsRNA as template. The newly synthesized ssRNA was the plus strand, and some of these transcripts were converted to the dsRNA form by the replicase activity associated with the empty particles. This transcriptase activity, however, required a much higher concentration of polyethylene glycol than that used previously for the replicase activity. The mode of transcription was conservative. The enzyme transcribed ssRNA from L-A, M1, or X (a deletion mutant of L-A) dsRNAs but not from other yeast dsRNAs (L-BC, T, or W), bacteriophage Phi6 dsRNAs, or animal rotavirus dsRNAs, indicating the same template specificity as that expected for the in vivo reaction. This assay system, and the replicase assay system, will allow us to study in vitro all the enzymatic reactions essential for the viral replication cycle.

Base Sequence↗

Site-specific binding of polymerase-containing particles of the Giardia lamblia double-stranded RNA virus to the viral plus-strand RNA.

The non-segmented, double-stranded RNA genome of the Giardia lamblia virus (GLV) contains two genes encoding the major capsid protein (gag) and a fusion of gag with the viral RNA-dependent RNA polymerase (pol). Computer analysis of the viral RNA genome revealed three putative stem-loop structures that were predicted to mediate replication, transcription and packaging of the GLV genomic RNA by binding to the pol domain of the virus-encoded fusion protein. To provide evidence of these postulated RNA/protein interactions, gel retardation assays were employed to examine the potential binding capacity of various viral RNA genome-related sequences to native GLV protein(s). Viral proteins were obtained by disrupting purified GLV particles under low-ionic-strength conditions. The resulting viral protein particles maintained their RNA polymerase activity in the presence of GLV genomic RNA and thus appeared to be suitable tools for the analyses of GLV-protein-mediated binding reactions. A 72-nt short single-stranded in vitro transcript containing a putative stem-loop structure predicted to participate in the packaging of GLV (+)-strand RNA bound specifically to the disrupted virus particles. RNAs containing modified motifs of this stem-loop structure failed to bind to the GLV capsid.

Animals↗

Identification of infectious bursal disease virus quasispecies in commercial vaccines and field isolates of this double-stranded RNA virus.

Quasispecies of infectious bursal disease virus (IBDV) vaccine and wild-type strains were identified using real-time RT-PCR at a region of the viral genome known for sequence variability. The LightCycler (Idaho Technology, Inc.) and hybridization probe system (Roche, Molecular Biochemicals) were used. An anchor probe labeled with LightCycler Red 640 and mutation probe labeled with fluorescein were designed using the Del-E IBDV sequence. The sequence of the mutation probe included nucleotides in the hydrophilic B region of VP2 that are important to a viral neutralizing epitope. This Del-E mutation probe was allowed to hybridize to the RT-PCR products following amplification and its temperature of dissociation (T(m)) from each viral template was determined using the LightCycler melting peak analysis. The observed T(m) for the Del-E mutation probe with its homologous virus, Del-E, was usually 65.5 degrees C but ranged from 65 to 66.4 degrees C. Peak melting temperatures for the test viruses were inversely proportional to the number of mutations observed between the Del-E mutation probe and target virus sequence. All the IBDV vaccine strains tested and all but two of the wild-type strains exhibited more than one melting peak, indicating that genetic subpopulations or quasispecies of the viruses were present in the samples. Since the mutation probe was located at a site which encodes a neutralizing epitope of the virus, it is possible that the genetic differences observed are translated into antigenic changes in this VP2 epitope and contribute to antigenic diversity in the quasispecies cloud.

Commerce↗

Variability and inheritance of double-stranded RNA viruses in Phaffia rhodozyma.

The present survey demonstrates polymorphism in both the length and the number of double-stranded RNAs (dsRNAs) among six Phaffia rhodozyma strains. Strains with one-, three- and four-types of dsRNA molecules were found, while two strains proved to be dsRNA-free. Elongated icosahedral virus-like particles (VLPs) 34x26 nm in size were detected in strains carrying four- or three-types of dsRNAs. One 3.7-kb dsRNA molecule was found not to form part of the VLP genome. Transmission of the VLPs of strain ATCC 24203 was followed through the basidiospores during the sexual cycle. Cytoplasmic inheritance was observed.

Basidiomycota↗

Identification of an RNA silencing suppressor from a plant double-stranded RNA virus.

RNA silencing is a mechanism which higher plants and animals have evolved to defend against viral infection in addition to regulation of gene expression for growth and development. As a counterdefense, many plant and some animal viruses studied to date encode RNA silencing suppressors (RSS) that interfere with various steps of the silencing pathway. In this study, we report the first identification of an RSS from a plant double-stranded RNA (dsRNA) virus. Pns10, encoded by S10 of Rice dwarf phytoreovirus (RDV), exhibited RSS activity in coinfiltration assays with the reporter green fluorescent protein (GFP) in transgenic Nicotiana benthamiana line 16c carrying GFP. The other gene segments of the RDV genome did not have such a function. Pns10 suppressed local and systemic silencing induced by sense RNA but did not interfere with local and systemic silencing induced by dsRNA. Expression of Pns10 also increased the expression of beta-glucuronidase in transient assays and enhanced Potato virus X pathogenicity in N. benthamiana. Collectively, our results establish Pns10 as an RSS encoded by a plant dsRNA virus and further suggest that Pns10 targets an upstream step of dsRNA formation in the RNA silencing pathway.

Plant Diseases↗

Detection and characterisation of bisegmented double-stranded RNA viruses (picobirnaviruses) in human faecal specimens.

The prevalence of picobirnaviruses (PBVs) in human stools was investigated by polyacrylamide gel electrophoresis (PAGE) analysis of 832 faecal specimens collected between 1982 and 1993 from patients in various clinical groups. Similar prevalences (9-13%) were detected in patients with or without gastroenteritis and throughout the age range of 3 to > 65 years. Two methods for the extraction of nucleic acid, a phenol/chloroform method and a guanidinium thiocynate (GTC)/silica method, were compared. Detection of PBVs by PAGE was three times more sensitive following RNA extraction by the GTC/silica method. Characterisation of three strains was carried out. Segment sizes ranged from 1.625 to 1.95 kilo base pairs (Kbp) and 2.2 to 2.5 Kbp for the fast and slow migrating bands, respectively. The nuclic acid was shown to be double-stranded RNA (dsRNA) by nuclease digestion. PBV-like particles were detected by electron microscopy in two PAGE-positive stools. Virion diameters ranged from 35 to 41 nm and a buoyant density of 1.38-1.4 g/ml in caesium chloride (CsCl) was demonstrated. These findings suggest that PBVs are widespread in humans in the United Kingdom. However, no disease association could be demonstrated.

Adolescent↗

Identification of a bisegmented double-stranded RNA virus (picobirnavirus) in calf faeces.

To determine the incidence of rotavirus infection among dairy herds in the State of São Paulo, Brazil, 576 faecal samples obtained from calves aged 1-45 days with and without diarrhoea, reared on 63 dairy cattle farms, were analyzed. Polyacrylamide gel electrophoresis (PAGE) identified 28 samples positive for group A rotavirus, while four samples, two diarrhoeic and two non-diarrhoeic, showed a bisegmented genome with a typical picobirnavirus pattern. Electron microscopy revealed spherical virus particles with a diameter of 37 nm and without a defined surface structure. The present study is the first report of a bisegmented virus identified in cattle in Brazil.

Animals↗

Portable encapsidation signal of the L-A double-stranded RNA virus of S. cerevisiae.

The (+) single-stranded RNA (ssRNA) of the L-A virus is the species packaged to form new viral particles. Empty L-A viral particles specifically bind viral (+) ssRNA, and a sequence 400 bases from the 3' end is necessary for this activity. We show that its stem-loop structure, the A residue protruding from the stem, and the loop sequence are all important for the binding, and that this 34 base region is sufficient for the binding. M1, a satellite virus of L-A, has a similar structure on its (+) strand that is likewise sufficient for the binding. Heterologous RNA with the binding sequence from L-A or M1, when expressed in vivo, was packaged in L-A viral particles. Thus, the sites necessary to bind to empty particles are encapsidation signals for the L-A virus. Since the pol domain of the 180 kd minor coat protein appears to be responsible for the binding, this result suggests that the RNA polymerase molecule recognizes the viral genome for packaging.

Base Sequence↗

Structural polymorphism of the major capsid protein of a double-stranded RNA virus: an amphipathic alpha helix as a molecular switch.

The infectious bursal disease virus T=13 viral particle is composed of two major proteins, VP2 and VP3. Here, we show that the molecular basis of the conformational flexibility of the major capsid protein precursor, pVP2, is an amphipatic alpha helix formed by the sequence GFKDIIRAIR. VP2 containing this alpha helix is able to assemble into the T=13 capsid only when expressed as a chimeric protein with an N-terminal His tag. An amphiphilic alpha helix, which acts as a conformational switch, is thus responsible for the inherent structural polymorphism of VP2. The His tag mimics the VP3 C-terminal region closely and acts as a molecular triggering factor. Using cryo-electron microscopy difference imaging, both polypeptide elements were detected on the capsid inner surface. We propose that electrostatic interactions between these two morphogenic elements are transmitted to VP2 to acquire the competent conformations for capsid assembly.

Amino Acid Sequence↗

Solution structure of the SL1 RNA of the M1 double-stranded RNA virus of Saccharomyces cerevisiae.

The 20-nucleotide SL1 VBS RNA, 5'-GGAGACGC[GAUUC]GCGCUCC (bulged A underlined and loop bases in brackets), plays a crucial role in viral particle binding to the plus strand and packaging of the RNA. Its structure was determined by NMR spectroscopy. Structure calculations gave a precisely defined structure, with an average pairwise root mean square deviation (RMSD) of 1.28 A for the entire molecule, 0.57 A for the loop region (C8-G14), and 0.46 A for the bulge region (G4-G7, C15-C17). Base stacking continues for three nucleotides on the 5' side of the loop. The final structure contains a single hydrogen bond involving the guanine imino proton and the carbonyl O(2) of the cytosine between the nucleotides on the 5' and 3' ends of the loop, although they do not form a Watson-Crick base pair. All three pyrimidine bases in the loop point toward the major groove, which implies that Cap-Pol protein may recognize the major groove of the SL1 loop region. The bulged A5 residue is stacked in the stem, but nuclear Overhauser enhancements (NOEs) suggest that A5 spends part of the time in the bulged-out conformation. The rigid conformation of the upper stem and loop regions may allow the SL1 VBS RNA to interact with Cap-Pol protein without drastically changing its own conformation.

Base Sequence↗