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Complete nucleotide sequence and genome organization of a dsRNA partitivirus infecting Pleurotus ostreatus.

The nucleotide sequences of the genomic dsRNA mycovirus infecting Pleurotus ostreatus (P. ostreatus virus 1; PoV1) were determined and compared to the sequences of the other mycoviruses belonging to partitiviruses and totivirues. PoV1 dsRNA-1 and dsRNA-2 had genomes of 2296 and 2223 nucleotides, respectively. The purified virus preparations contained isometric particles of 28-30 nm in diameter, and also the same two dsRNAs were isolated from purified virus preparations. The sequences of PoV1 dsRNA-1 and dsRNA-2 had GC contents of 48.4 and 51.5%, respectively. dsRNA-1 had 78 and 97 nucleotides of 5'- and 3'-untranslated region (UTR) while dsRNA-2 had 114 and 198 nucleotides of 5'- and 3'-UTR, respectively. Computer analysis of putative open reading frame (ORF) shows that dsRNA-1 and dsRNA-2 contain a single ORF encoding proteins of 82.2 and 71.1 kDa that show high sequence identity with RNA-dependent RNA polymerase and capsid protein of partitiviruses, respectively. When compared to other dsRNA mycoviruses in a phylogenetic analysis they were found to form a distinct virus clade with partitiviruses, and were more distantly related to totiviruses.

3' Untranslated Regions↗

Mechanism of genome transcription in segmented dsRNA viruses.

Genome transcription is a critical stage in the life cycle of a virus, as this is the process by which the viral genetic information is presented to the host cell protein synthesis machinery for the production of the viral proteins needed for genome replication and progeny virion assembly. Viruses with dsRNA genomes face a particular challenge in that host cells do not produce proteins which can transcribe from a dsRNA template. Therefore, dsRNA viruses contain all of the necessary enzymatic machinery to synthesize complete mRNA transcripts within the core without the need for disassembly. Indeed one of the more striking observations about genome transcription in dsRNA viruses is that this process occurs efficiently only when the transcriptionally competent particle is fully intact. This observation suggests that all of the components of the TCP, including the viral genome, the transcription enzymes, and the viral capsid, function together to produce and release mRNA transcripts and that each component has a specific and critical role to play in promoting the efficiency of this process. This review has examined the process of genome transcription in dsRNA viruses from the perspective of rotavirus as a model system. However, despite numerous architectural and organizational differences among the families of dsRNA viruses, numerous studies suggest that the basic mechanism of mRNA production may be similar in most, if not all, viruses having dsRNA genomes. Important functional similarities include (1) the presence of a capsid-bound RNA-dependent RNA polymerase, which produces single-stranded mRNA transcripts from the dsRNA genome and regenerates the dsRNA genome from single-stranded RNA templates; (2) in viruses infecting eukaryotic hosts, the presence of all the enzymatic activities needed to generate the 5' cap required by the eukaryotic translation machinery; (3) the high degree of structural order present in the packaged genome, suggesting the requirement for organization in the viral core; (4) the role of the innermost capsid protein as a scaffold on which the core components of the transcription apparatus are assembled; and (5) the release of nascent mRNA transcripts through channels at the icosahedral vertices. The process of genome transcription in dsRNA viruses will become better understood as structural studies progress to higher resolution and as more viruses become amenable to study using site-directed mutagenesis coupled with viral reconstitution to generate recombinant particles having precise functional and structural changes. Future studies will dissect important intermolecular interactions required for efficient mRNA synthesis and will shed further light on the reasons for which the viral core must be structurally intact in order for transcription to occur efficiently. Structural studies of the capping enzymes at atomic resolution will reveal how multiple enzyme activities reside within a single polypeptide and how they act in concert to synthesize the 5' cap on the end of each mature transcript. Perhaps most interestingly, high resolution structural studies of actively transcribing virions will provide insight into the conformational changes that occur within the core during mRNA synthesis. Together, these studies will clarify the function of this complex macromolecular machine and will also shed additional light on the basic principles of virus architecture and assembly, as well as provide avenues for the design of antiviral therapies.

Animals↗

CXCR2 is critical for dsRNA-induced lung injury: relevance to viral lung infection.

BACKGROUND: Respiratory viral infections are characterized by the infiltration of leukocytes, including activated neutrophils into the lung that can lead to sustained lung injury and potentially contribute to chronic lung disease. Specific mechanisms recruiting neutrophils to the lung during virus-induced lung inflammation and injury have not been fully elucidated. Since CXCL1 and CXCL2/3, acting through CXCR2, are potent neutrophil chemoattractants, we investigated their role in dsRNA-induced lung injury, where dsRNA (Poly IC) is a well-described synthetic agent mimicking acute viral infection. METHODS: We used 6-8 week old female BALB/c mice to intratracheally inject either single-stranded (ssRNA) or double-stranded RNA (dsRNA) into the airways. The lungs were then harvested at designated timepoints to characterize the elicited chemokine response and resultant lung injury following dsRNA exposure as demonstrated qualititatively by histopathologic analysis, and quantitatively by FACS, protein, and mRNA analysis of BAL fluid and tissue samples. We then repeated the experiments by first pretreating mice with an anti-PMN or corresponding control antibody, and then subsequently pretreating a separate cohort of mice with an anti-CXCR2 or corresponding control antibody prior to dsRNA exposure. RESULTS: Intratracheal dsRNA led to significant increases in neutrophil infiltration and lung injury in BALB/c mice at 72 h following dsRNA, but not in response to ssRNA (Poly C; control) treatment. Expression of CXCR2 ligands and CXCR2 paralleled neutrophil recruitment to the lung. Neutrophil depletion studies significantly reduced neutrophil infiltration and lung injury in response to dsRNA when mice were pretreated with an anti-PMN monoclonal Ab. Furthermore, inhibition of CXCR2 ligands/CXCR2 interaction by pretreating dsRNA-exposed mice with an anti-CXCR2 neutralizing Ab also significantly attenuated neutrophil sequestration and lung injury. CONCLUSION: These findings demonstrate that CXC chemokine ligand/CXCR2 biological axis is critical during the pathogenesis of dsRNA-induced lung injury relevant to acute viral infections.

Journal Article↗

Translation of the L-species dsRNA genome of the killer-associated virus-like particles of Saccharomyces cerevisiae.

Virus-like particles containing the L (P1)-species of double-stranded RNA (dsRNA) were isolated from Saccharomyces cerevisiae, and the translational activity of the virus-like particle-derived dsRNA was analyzed in the wheat germ cell-free system. Denaturation of the dsRNA immediately prior to in vitro translation resulted in the synthesis of one major and at least three minor polypeptides, whereas undenatured dsRNA, as expected, did not stimulate [35S]methionine incorporation into polypeptides, but actually slightly inhibited endogenous activity. The major in vitro translation product of the denatured L-dsRNA was shown to be identical with the major L-dsRNA containing virus-like particle capsid polypeptide on the basis of three criteria: co-electrophoresis on sodium dodecyl sulfate polyacrylamide gels, immunoprecipitation, and tryptic peptide analysis. We have therefore established that the L-dsRNA genome encodes the major virus-like particle capsid polypeptide. This result adds considerable support to the hypothesis that the L-dsRNA genome acts as a helper genome to the smaller (1.6 x 10(6) dalton) M-dsRNA genome in killer strains of yeast by providing the M-dsRNA containing virus-like particles with their major coat protein.

Capsid↗

The adjuvant effects of mycoviral dsRNA and polyinosinic:polycytidylic acid on the murine immune response.

By comparing, under the same experimental conditions, the effects of naturally occurring mycoviral dsRNA with those of the synthetic dsRNA, polyinosinic:polycytidylic acid, we were able to determine if the source of the dsRNA would modify its immunomodulating properties. Mycoviral dsRNA, but not the synthetic dsRNA, significantly enhanced the hemagglutinating antibody response to sRBC in C57B1/6 mice. Although both dsRNA preparations significantly increased the rate of rejection of heterologous skin grafts by recipient mice when compared to controls, mycoviral dsRNA induced higher interferon titers than the synthetic dsRNA. This study showed that mycoviral dsRNA was a more potent adjuvant than polyinosinic:polycytidylic acid for both humoral and cellular immune responses.

Adjuvants, Immunologic↗

YHV-protease dsRNA inhibits YHV replication in Penaeus monodon and prevents mortality.

Yellow head virus infects cultured shrimps and causes severe mortality resulting in a great economic loss. Haemolymph injection of dsRNA(pro) corresponding to the protease motif of YHV genome resulted in a complete inhibition of YHV replication. The effect of dsRNA lasted for at least 5 days. Injecting sequence-unrelated dsRNA(gfp) or dsRNA(TSV-pol) also resulted in an inhibition of YHV replication but at a comparatively much less extent. Shrimp mortality was monitored for 10 days when more than 90% shrimps receiving no dsRNA died within 8 dpi. However, those receiving dsRNA(pro) showed no mortality. A partial mortality was observed among the shrimps receiving dsRNA(gfp) or dsRNA(TSV-pol). Thus, Penaeus monodon possesses the sequence-specific protection to YHV infection, most likely through the RNAi pathway, in addition to sequence-independent protection. It gives a new notion that dsRNA induction of antiviral immunity in shrimp goes through two pathways, sequence-independent and sequence-dependent.

Animals↗

Ectopic expression of toll-like receptor-3 (TLR-3) overcomes the double-stranded RNA (dsRNA) signaling defects of P2.1 cells.

Cells respond to viral infection through induction of discrete, innate immune response pathways that lead to induction of interferons (IFNs) and other proinflammatory cytokines, as well as the direct induction of some IFN-responsive genes that mediate specific antiviral or immunomodulatory responses. To assess the classes of genes induced directly upon treatment of cells with double-stranded RNA (dsRNA), a mimic of viral infection, we made use of a mutant human cell line defective in responsiveness to dsRNA and IFN. P2.1 mutant cells were generated from a Jak1-minus, HT1080 fibrosarcoma-derived cell line (U4C) after extensive mutagenesis with the intercalating agent ICR191. We now demonstrate that P2.1 cells are defective in basal and induced expression of toll-like receptor-3 (TLR-3), which may contribute to their dsRNA-unresponsive phenotype. After transfection with a wild-type TLR-3 gene, P2.1 cells were largely responsive to a dsRNA challenge, as assessed by activation of NF-kappaB and IFN regulatory factors (IRFs) and induction of IFN-beta and other genes. Untransfected and TLR-3-transfected P2.1 cells were assessed for global dsRNA responsiveness in oligonucleotide gene array studies alongside parental U4C and HT1080 cells. Several distinct patterns of gene induction in response to dsRNA challenge were identified, including genes expressed in a TLR-3-dependent manner, genes that required an intact IFN feedback for expression, and dsRNA-responsive genes that appeared not to require TLR-3 for induction. These data support the hypothesis that TLR-3 is an important determinant of cellular responses to external dsRNA and demonstrate distinctions in the repertoires of dsRNA-regulated genes induced when the IFN-feedback loop is present or absent in cells.

Apoptosis↗

Diversity of citrus tristeza virus isolates indicated by dsRNA analysis.

One major dsRNA of molecular weight (MW) 13.3 X 10(6) and two others (MW 1.9 X 10(6) and 0.8 X 10(6] were routinely detected by polyacrylamide gel electrophoresis in extracts from sweet orange (Citrus sinensis) or citron (Citrus medica) infected with each of 66 isolates of citrus tristeza virus (CTV). Several additional dsRNA were also commonly detected, usually as weakly stained bands in reproducible positions in gels, but some were very prominent, e.g., a dsRNA of MW 1.7 X 10(6) associated with a seedling yellows isolate (sy-1). No dsRNA was detected in equivalent extracts from noninoculated sweet orange and citron. End-labeled [32P] probes were made from purified full-length viral RNA or polyacrylamide gel-purified full-length dsRNA of a nonseedling yellows (nsy-1) and a seedling yellows (sy-1) isolate of CTV. Each of the four probes was able to hybridize to all major and most minor dsRNAs of both isolates in composite polyacrylamide/agrarose gels, including the 1.7 X 10(6) dsRNA specific to the seedling yellows isolate, and could readily detect CTV nucleic acid sequences in extracts from bark of infected sweet orange plants spotted onto nitrocellulose membranes. One dsRNA (MW 0.5 X 10(6] was very prominent in some isolates and much less so, or undetectable, in other isolates and 66 isolates have been screened for the presence of this dsRNA. There was a strong correlation between inability to detect the 0.5 X 10(6) dsRNA and the designation of an isolate as neither a seedling yellows type nor a stem pitting isolate of grapefruit; these properties were typical for isolates of CTV from southern California.

Citrus↗

Chitosan-dsRNA improves tissue stability and delivery for RNAi-mediated Varroa destructor control.

BACKGROUND: Varroa destructor is an ectoparasitic mite and a major threat to honey-bee colony health worldwide. RNA interference (RNAi) offers a potentially species-specific approach for mite control, but practical application is limited by double-stranded RNA (dsRNA) degradation and inefficient delivery to mites. This study evaluated coatomer protein I (COPI) complex subunits as RNAi targets and tested whether chitosan-based dsRNA formulation could improve dsRNA stability, tissue uptake, and delivery from honey-bees to mites. RESULTS: Direct microinjection of dsRNAs targeting COPB, COPD, and COPE significantly reduced target-gene expression and mite survival compared with the double-stranded green fluorescent protein (dsGFP) control, with 72-h survival rates of 8.0%, 12.7%, and 5.3%, respectively, compared with 40.7% in the control group (all log-rank P&#x2009;<&#x2009;0.0001). Chitosan-conjugated dsRNA remained detectable for longer periods than naked dsRNA in honey-bee tissue fluids, and CNP-Cy3-dsGFP was detected in the honey-bee midgut and fat body. A qualitative fluorescence observation in V. destructor was consistent with host-to-mite dsRNA transfer. Ingestion of COP-targeted chitosan-dsRNAs reduced mite survival, whereas honey-bee survival and expression of honey-bee COP orthologs were not affected. In silico analysis detected no contiguous &#x2265;19-nt matches between Varroa COP dsRNAs and the honey-bee transcriptome or genome. CONCLUSION: COPI subunits are promising RNAi targets in V. destructor, and chitosan formulation may improve dsRNA persistence and uptake while supporting honey-bee-mediated delivery to mites. These laboratory findings support further evaluation of chitosan-formulated dsRNA as a potentially species-selective strategy for Varroa management, while broader safety assessment and field validation remain necessary. &#xa9; 2026 Society of Chemical Industry.

COPI complex↗

Recruitment of TRADD, FADD, and caspase 8 to double-stranded RNA-triggered death inducing signaling complexes (dsRNA-DISCs).

Rapid elimination of virus-infected cells by apoptosis is an efficient anti-viral strategy. Double-stranded RNA (dsRNA), a viral product, is potently and rapidly apoptogenic in susceptible cells. Caspase 8 plays an important role in the dsRNA-induced apoptosis; however, the mechanisms of caspase 8 activation in response to dsRNA are unknown. We demonstrate here that, in HeLa cells, the dsRNA-triggered activation of caspase 8 is independent of ongoing proteins synthesis (and is, therefore, independent of changes in pro- and anti-apoptotic gene expression) and involves the formation of multiprotein dsRNA-triggered death inducing signaling complexes (dsRNA-DISCs). DsRNA-DISCs contain FADD, TRADD, and caspase 8; however, several experimental approaches suggest that death ligands and death receptors (such as Fas/Apo1 and DR4/Apo2) are not involved in the formation of dsRNA-DISCs.

Adaptor Proteins, Signal Transducing↗

Double-stranded (ds) RNA binding and not dimerization correlates with the activation of the dsRNA-dependent protein kinase (PKR).

Upon binding to double-stranded (ds) RNA, the dsRNA-dependent protein kinase (PKR) sequentially undergoes autophosphorylation and activation. Activated PKR may exist as a dimer and phosphorylates the eukaryotic translation initiation factor 2 alpha subunit (cIF-2 alpha) to inhibit polypeptide chain initiation. Transfection of COS-1 cells with a plasmid cDNA expression vector encoding a marker gene, activates endogenous PKR, and selectively inhibits translation of the marker mRNA, dihydrofolate reductase (DHFR). This system was used to study the dsRNA binding and dimerization requirements for over-expressed PKR mutants and subdomains to affect DHFR translation. DHFR translation was rescued by expression of either an ATP hydrolysis defective mutant PKR K296P, the amino-terminal 1-243 fragment containing two dsRNA binding motifs, or the isolated first RNA binding motif (amino acids 1-123). Mutation of K64E within the dsRNA binding motif 1 destroyed dsRNA binding and the ability to rescue DHFR translation. Immunoprecipitation of T7 epitope-tagged PKR derivatives from cell lysates detected interaction between intact PKR and the amino-terminal 1-243 fragment as well as a 1-243 fragment harboring the K64E mutation. Expression of adenovirus VAI RNA, a potent inhibitor of PKR activity, did not disrupt this interaction. In contrast, intact PKR did not interact with fragments containing the first dsRNA binding motif (1-123), the second dsRNA binding motif (98-243), or the isolated PKR kinase catalytic domain (228-551). These results demonstrate that the translational stimulation mediated by the dominant negative PKR mutant does not require dimerization, but requires the ability to bind dsRNA and indicate these mutants act by competition for binding to activators.

Adenoviridae↗

The dsRNA binding protein family: critical roles, diverse cellular functions.

The dsRNA binding proteins (DRBPs) comprise a growing family of eukaryotic, prokaryotic, and viral-encoded products that share a common evolutionarily conserved motif specifically facilitating interaction with dsRNA. Proteins harboring dsRNA binding domains (DRBDs) have been reported to interact with as little as 11 bp of dsRNA, an event that is independent of nucleotide sequence arrangement. More than 20 DRBPs have been identified and reportedly function in a diverse range of critically important roles in the cell. Examples include the dsRNA-dependent protein kinase PKR that functions in dsRNA signaling and host defense against virus infection and DICER, which is implicated in RNA interference (RNAi) -mediated gene silencing. Other DRBPs such as Staufen, adenosine deaminase acting on RNA (ADAR), and spermatid perinuclear RNA binding protein (SPNR) are known to play essential roles in development, translation, RNA editing, and stability. In many cases, homozygous and even heterozygous disruption of DRBPs in animal models results in embryonic lethality. These results implicate the recognition of dsRNA as an evolutionarily conserved mechanism important in the regulation of gene expression and in host defense and underscore the diversity of essential biological tasks performed by dsRNA-related processes in the cell.

Amino Acid Motifs↗

Ability of insulin and DsRNA to induce interferon system and Hsp 70 in fibroblast and epithelial cells in relation to their effects on cell growth.

We have examined the ability of insulin and dsRNA, a well-known interferon inducer, in relation to their effects on cell growth, to induce the expression of hsp 70 and the synthesis of interferon in epithelial HT-29 and fibroblast Madin-Darby bovine kidney (MDBK) cells. Insulin was mitogenic in both MDBK and HT-29 cells; MDBK cells nevertheless required much higher concentrations. DsRNA stimulated the growth of MDBK but inhibited that of HT-29 cells. Both substances induced a transient synthesis of hsp 70 in HT-29 and MDBK cells with similar kinetics. However, whereas both insulin and dsRNA efficiently induced 2'5' oligoadenylate synthetase and an antiviral state through interferon synthesis in HT-29 cells, only dsRNA caused these effects in MDBK cells. Thus, insulin cannot, unlike dsRNA, elicit an antiviral state in all cell systems, although, like dsRNA, it can induce hsp 70, thereby suggesting the cell specificity of insulin action. These results reveal that the mitogenic and IFN-inducing effects of insulin and dsRNA are dependent on the cell type and unrelated to hsp 70 expression.

2',5'-Oligoadenylate Synthetase↗

The dsRNA viruses.

The dsRNA viruses represent a large, diverse group of pathogens (affecting a very wide range of host species), several of which are of medical, veterinary or agricultural importance. Many of the icosahedral dsRNA viruses show striking structural and functional similarities that reflect the similar problems that they face replicating their dsRNA genomes while avoiding the dsRNA activated defence mechanisms of their host species. These similarities appear to indicate a common if distant ancestry that is not always evident simply by comparison of nucleotide or amino acid sequences. To facilitate the identification and comparisons of cognate proteins from different species, genera and families of dsRNA viruses, a series of tables were originally constructed for the 7th International Symposium of dsRNA viruses held in Aruba in 2000. These have now been updated and extended (for the 8th Symposium, held in Tuscany 2003) and are available from the dsRNA virus website at.

Animals↗

The endocytic pathway mediates cell entry of dsRNA to induce RNAi silencing.

Many metazoan cells can take up exogenous double-stranded (ds) RNA and use it to initiate an RNA silencing response, however, the mechanism for this uptake is ill-defined. Here, we identify the pathway for dsRNA uptake in Drosophila melanogaster S2 cells. Biochemical and cell biological analyses, and a genome-wide screen for components of the dsRNA-uptake machinery, indicated that dsRNA is taken up by an active process involving receptor-mediated endocytosis. Pharmacological inhibition of endocytic pathways disrupted exogenous dsRNA entry and the induction of gene silencing. This dsRNA uptake mechanism seems to be evolutionarily conserved, as knockdown of orthologues in Caenorhabditis elegans inactivated the RNA interference response in worms. Thus, this entry pathway is required for systemic RNA silencing in whole organisms. In Drosophila cells, pharmacological evidence suggests that dsRNA entry is mediated by pattern-recognition receptors. The possible role of these receptors in dsRNA entry may link RNA interference (RNAi) silencing to other innate immune responses.

Animals↗

[Inhibitory effect of hTERT dsRNA on telomerase activity in lung carcinoma cell line A549].

BACKGROUND & OBJECTIVE: RNA interference (RNAi) is a new technology in gene study. The mechanism of RNAi is that double-stranded RNA (dsRNA) can band target mRNA and decompose it. This study was to assess possibility and specificity of dsRNA on suppressing human telomerase reverse transcriptase (hTERT) in lung carcinoma cells, investigate its effect on cell proliferation to confirm whether it has unspecific killing activity on mammalian cells, and explore its application in lung cancer research and treatment. METHODS: Sequences of 2 exons and 1 intron of hTERT gene were amplified by reverse transcription-polymerase chain reaction (RT-PCR) or PCR. The sense and antisense cDNA sequences were connected in a tandem manner, and the whole fragment was inserted into pCI-neo mammalian expression vector to construct the dsRNA expression vector, and then transfected into lung carcinoma cell line A549. The expression of hTERT was detected by RT-PCR and Western blot. Telomerase activity was measured by telomerase repeat amplification protocol (TRAP). Cell morphology was observed, and cell proliferation was assessed under invert microscope. RESULTS: After transfection of 2 exon fragments of hTERT dsRNA, mRNA and protein expression of hTERT and telomerase activity in A549 cells were suppressed, cell proliferation was markedly inhibited. Meanwhile, dsRNA didn't show unspecific toxic activity on A549 cells. CONCLUSIONS: hTERT dsRNA can specifically silent hTERT gene, inhibit telomerase activity and proliferation of A549 cells. hTERT dsRNA might be a potential method of gene therapy for lung cancer.

Adenocarcinoma↗

Site-directed mutagenic analysis of reovirus sigma 3 protein binding to dsRNA.

The S4 gene of reovirus encodes a double-stranded RNA-binding protein, sigma 3, that can inhibit activation of the interferon-induced dsRNA-dependent protein kinase, PKR. In this study, we attempted to localize the region of sigma 3 involved in dsRNA-binding by constructing deletion and point mutations, expressing the mutated proteins in COS cells, and testing the ability of the native mutated proteins to bind dsRNA-agarose. Transfection of S4 into COS cells resulted in expression of two forms of sigma 3, a full-length protein, and a protein containing a small truncation at the amino-terminal end. The truncation is likely due to a proteolytic event. Deletions of as few as 10 amino acids from the amino-terminal end of the protein or 10 amino acids from the carboxyl-terminal end of the protein resulted in loss of dsRNA-binding activity. A putative dsRNA-binding domain has previously been localized to an 85 amino acid region located between amino acids 234 and 297 (Miller, J. E., and Samuel, C. E., J. Virol. 66, 5347-5356 1992). Mutagenesis of basic residues located within two distinct motifs of this region showed that some basic residues are absolutely required for binding to dsRNA while others can be changed with little effect.

Amino Acid Sequence↗

Transcription and in vitro translation of the dsRNA virus isolated from Rhizoctonia solani.

A segmented double-stranded dsRNA virus has been isolated from virulent strains of Rhizoctonia solani. The dsRNA genome has mol. wts. of 1.45 and 1.32 X 10(6). Two full-size transcripts with mol. wts. of 0.74 and 0.66 X 10(6) (2.2 kb and 2 kb, respectively) were synthesized by the virus-associated RNA-dependent RNA polymerase and resolved by denaturing polyacrylamide gel electrophoresis. The transcripts cross-hybridized to the viral dsRNA isolated from a number of strains. The transcripts did not hybridize with the genomic DNA. An unencapsidated species of dsRNA with mol. wt. of 1.6 X 10(6) did not hybridize with the viral transcripts. No cross-hybridization between the two viral dsRNA segments was obtained. The viral-encoded proteins were studied by in vitro translation using the rabbit reticulocyte lysate system. The transcripts served as mRNA for the synthesis of the major capsid protein of 55 kD, and a number of other products. The viral coat protein was immunoprecipitated with antibodies against purified virus particles. Partial proteolysis of the major in vitro product and the authentic capsid protein using Staphylococcus aureus V8 protease produced similar peptide patterns. Denatured viral dsRNA also directed the synthesis of proteins identical to those translated from the transcripts in vitro.

Animals↗