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Mutational events in consecutive passages of hepatitis A virus strain GBM during cell culture adaptation.

In order to study the adaptation of hepatitis A virus (HAV) in cell culture, we examined the mutational events of the genome in early passages of HAV strain GBM propagated either in FRhK-4 cells (fetal rhesus monkey kidney-derived) or in human embryonic kidney (HEK) and human embryonic fibroblast cells (HFS) in relation to their growth characteristics. Sequence analysis of the nucleotide region encoding 2B, 2C, and the beginning of 3A as well as the nucleotide region encompassing the 5' noncoding region (5'NCR) of the genome was performed on consecutive virus passages after amplification of the viral RNA from the cell culture supernatant by antigen-capture PCR. By the 2nd passage of the GBM variants cultured in FRhK-4 or in HEK cells we found a mutation at nucleotide position 3889 (2B coding region) which results in an amino acid substitution from alanine to valine. Further mutations present in the 2B/2C region of the cell culture-adapted GBM variants differ from each other and occur after the 10th or even the 40th virus passage. Another early change, an in frame deletion of nine nucleotides in the 3A region, appeared in the 5th virus passage only in GBM cultured on FRhK-4 cells. This genome region showed different mutations in the virus passages on HEK and HFS cells. The 5'NCR of the cell culture-adapted GBM variants, in contrast, did not show any mutations before the 8th virus passage. The faster and more efficient growth of the HAV strain GBM during successive propagation on cell cultures seems to correlate with the appearance of mutations in the investigated genome regions.

Adaptation, Physiological↗

Interaction of hepatitis A virus (HAV) precursor proteins 3AB and 3ABC with the 5' and 3' termini of the HAV RNA.

RNA secondary structures within the terminal nontranslated regions of entero- and rhinoviral genomes interact specifically with viral nonstructural proteins and are required in cis for viral RNA replication. Here we show that recombinant hepatitis A virus (HAV) polypeptide 3ABC specifically interacts in vitro with secondary RNA structures formed at both the 5' and 3' terminus of the viral genome. Similar to protein 3AB, HAV 3ABC bound to the 3' terminal RNA structure which did not interact with the mature proteinase 3C. In contrast to 3AB, 3ABC interacted with RNA stem-loop IIa and combinations of individual secondary structure elements of the 5' noncoding region. RNA binding of the precursor polypeptide 3ABC was 50 times stronger than that of 3AB and 3C, implicating a specific role of this stable processing intermediate in viral genome replication.

3C Viral Proteases↗

Participation of 5'-terminal leader sequences in in vitro translation of Rous sarcoma virus RNA.

The cell-free translation of genome RNA from Rous sarcoma virus was examined following hybridization to selected fragments of viral DNA. Single-stranded fragments, generated by t-RNATrp primed transcription of 70 S RNA from the Schmidt-Ruppin D strain, were isolated and purified by electrophoresis. These included DNA complementary to the 5'-terminal 101 nucleotides (DNA100) of virion 38 S RNA and a collection of prematurely terminated transcripts which lack the complement to the extreme 5'-terminal 7-20 nucleotides (DNA less than 100). In addition, DNA encompassing the viral leader sequences was purified from a cloned copy of proviral DNA. Under hybrid-arrested translation conditions, the leader DNA as well as DNA100 inhibited translation of all protein products generated from the 70 S RNA, while hybridization to the shorter transcripts (DNA less than 100) did not affect in vitro protein synthesis. All single-stranded DNAs were shown to hybridize with equal efficiency to viral RNA under hybrid-arrested translation conditions and inhibition of protein synthesis by DNA100 was concentration-dependent. These results document the participation of noncoding leader RNA in Rous sarcoma virus protein synthesis and demonstrate that a free, single-stranded 5' terminus is necessary for cell free translation of 70 S RNA.

Animals↗

Moloney murine sarcoma virus MuSVts110 DNA: cloning, nucleotide sequence, and gene expression.

We have cloned Moloney murine sarcoma virus (MuSV) MuSVts110 DNA by assembly of polymerase chain reaction (PCR)-amplified segments of integrated viral DNA from infected NRK cells (6m2 cells) and determined its complete sequence. Previously, by direct sequencing of MuSVts110 RNA transcribed in 6m2 cells, we established that the thermosensitive RNA splicing phenotype uniquely characteristic of MuSVts110 results from a deletion of 1,487 nucleotides of progenitor MuSV-124 sequences. As anticipated, the sequence obtained in this study contained precisely this same deletion. In addition, several other unexpected sequence differences were found between MuSVts110 and MuSV-124. For example, in the noncoding region upstream of the gag gene, MuSVts110 DNA contained a 52-nucleotide tract typical of murine leukemia virus rather than MuSV-124, suggesting that MuSVts110 originated as a MuSV-helper murine leukemia virus recombinant during reverse transcription rather than from a straightforward deletion within MuSV-124. In addition, both MuSVts110 long terminal repeats contained head-to-tail duplications of eight nucleotides in the U3 region. Finally, seven single-nucleotide substitutions were found scattered throughout MuSVts110 DNA. Three of the nucleotide substitutions were in the gag gene, resulting in one coding change in p15 and one in p30. All of the remaining nucleotide changes were found in the noncoding region between the 5' long terminal repeat and the gag gene. In NIH 3T3 cells transfected with the cloned MuSVts110 DNA, the pattern of viral RNA expression conformed with that observed in cells infected with authentic MuSVts110 virus in that viral RNA splicing was 30 to 40% efficient at growth temperatures between 28 and 33 degrees C but reduced to trace levels above 37 degrees C.

3T3 Cells↗

A replication-defective variant of Sabin 3 poliovirus.

A variant of Sabin type 3 poliovirus, 265B, only produces 2-3% of the yields of control virus and has a protracted growth cycle in HeLa cells. Attachment and penetration do not appear to account for defective growth of 265B. Viral protein and RNA syntheses are reduced, and blockage of cell protein synthesis is delayed considerably as compared with the parent virus. Nucleotide sequence analysis failed to detect mutations in protein 2AProt or changes in the 5'-noncoding region that could account for growth properties of the virus. However, a Thr-to-Ala substitution was found in viral peptide 2B of 265B, and this alteration is probably responsible for the replication defect.

Base Sequence↗

A mutant of human immunodeficiency virus with reduced RNA packaging and abnormal particle morphology.

A deletion of 30 bases was created in the noncoding region of the human immunodeficiency virus type 1 genome that extends between the 5' splice donor and the start of the gag gene. Viral particles produced after transfection of this mutant provirus had a normal protein pattern but a reduced RNA content. The infectivity of the mutant virus was also markedly reduced but not completely abolished. Electron-microscopic examination of the mutant virions revealed major abnormalities of the nucleoid structure, mostly related to the dense material characteristic of mature particles, suggesting that the presence of RNA is essential to the normal structure of the nucleoid.

Base Sequence↗

Specific inhibition of hepatitis C viral gene expression by antisense phosphorothioate oligodeoxynucleotides.

The inhibitory effect of antisense phosphorothioate oligodeoxynucleotides (S-ODN) on hepatitis C viral gene expression and analyzed in an in vitro test system and in cell culture. S-ODN were directed against different stem loop structures in the 5'noncoding region (NCR) of the hepatitis C virus, (HCV) RNA and against a nucleotide stretch, including the start codon of the polyprotein precursor. The inhibitory effect of these S-ODN was quantified employing a viral RNA consisting of the first 407 nucleotides of a HCV type 1b genome fused to the coding sequence of the firefly luciferase gene. For in vitro assays this RNA was generated by in vitro transcription and used as a template in a rabbit reticulocyte lysate in vitro translation system. The production of active luciferase in the absence or presence of S-ODN was monitored using an enzymatic assay. The best results were obtained with S-ODN 4 directed against nucleotides 326 to 348, comprising the start AUG of the polyprotein coding sequence. With this oligonucleotide, a specific and dose-dependent effect was observed with a maximal inhibition of 96 +/- 1% at a S-ODN concentration of 4.14 mumol/L. For cell culture experiments, the hepatoblastoma cell line HepG2 was transfected with a plasmid expressing the HCV-luciferase fusion RNA. In this assay system S-ODN 2, complementary to nucleotides 264 to 282 of the HCV RNA, and S-ODN 4 were most efficient and reduced the viral translation by 96 +/- 0.4% and 94 +/- 0.7%, respectively, at a concentration of 0.3 mumol/L. The inhibition was specific (1) because the expression of the HCV-luciferase fusion RNA was not significantly impaired by the control S-ODN and (2) because the expression of an unrelated messenger RNA was not or only slightly downregulated. These data suggest that HCV gene expression can be inhibited effectively by antisense S-ODN. Therefore, this approach represents a promising perspective for the treatment of hepatitis C.

Base Sequence↗

Noncoding region between the env and src genes of Rous sarcoma virus influences splicing efficiency at the src gene 3' splice site.

Viral RNA and proteins in chicken embryo fibroblasts infected with different cloned variants of the Prague strain Rous sarcoma virus (RSV) were analyzed. The ratio of immunoprecipitated pp60src to the gag gene product p27 in Prague A (PrA) and Prague B (PrB) RSV-infected cells was two to three times that in Prague C (PrC) RSV-infected cells. A significant increase in the steady-state ratio of spliced 2.7-kilobase src gene mRNA to unspliced 9.3-kilobase genome-size RNA was observed in PrA- and PrB- compared with PrC-infected cells, consistent with the differences in the ratios of the gag to src gene protein products. Similar results were obtained when hybrid-selected RNA, which had been labeled for 3 h with [3H]uridine, was analyzed on formaldehyde-agarose gels, suggesting that the observed differences were due to splicing rather than RNA stability. Recombinant plasmids from infectious molecular clones of PrA and PrC were constructed to localize the regions responsible for the effects on src gene splicing. The substitution in place of the corresponding PrA region of the 262-base-pair region between the env gene and the src gene coding sequences from the PrC clone into the infectious PrA plasmid conferred the low src splicing efficiency of the PrC strain. The nucleotide sequence of this region of the PrA plasmid was determined and compared with the sequence of the PrC strain. Only four nucleotide differences were found; two changes were within the intron sequence, and two were in the exon sequence. The possible role of these differences in determining the extent of viral RNA splicing is discussed.

Animals↗

Molecular characterization of the 3' terminus of the simian hemorrhagic fever virus genome.

The 3' end of the simian hemorrhagic fever virus (SHFV) single-stranded RNA genome was cloned and sequenced. Adjacent to the 3' poly(A) tract, we identified a 76-nucleotide noncoding region preceded by two overlapping reading frames (ORFs). The ultimate 3' ORF of the viral genome encodes the capsid protein, and the penultimate ORF encodes the smallest SHFV envelope protein. These two ORFs overlap each other by 26 nucleotides. Northern (RNA) blot hybridization analyses of cytoplasmic RNA extracts from SHFV-infected MA-104 cells with gene-specific probes revealed the presence of full-length genomic RNA as well as six subgenomic SHFV-specific mRNA species. The subgenomic mRNAs are 3' coterminal. In its virion morphology and size, genome structure and length, and replication strategy, SHFV is most similar to lactate dehydrogenase-elevating virus, equine arteritis virus, and porcine reproductive and respiratory syndrome virus.

Amino Acid Sequence↗

Orthomyxovirus replication, transcription, and polyadenylation.

Efficient in vitro and in vivo systems are now in place to study the role of viral proteins in replication and/or transcription, the regulation of these processes, polyadenylation of viral mRNAs, the viral promoter structures, or the significance of noncoding regions for virus replication. In this chapter, we review the status of current knowledge of the orthomyxovirus RNA synthesis.

DNA-Directed RNA Polymerases↗

Genetic organization and diversity of the 3' noncoding region of the hepatitis C virus genome.

The 3' noncoding region (3' NCR) of the hepatitis C virus (HCV) genome contained in viral particles was analyzed by an RNA linker ligation followed by reverse transcription-polymerase chain reaction. Sequence analysis of the amplified fragment from four strains, including different genotypes 1b, 2b, 3a, and 3b indicated that the 3' NCR is composed of between 200 and 235 nts. The sequence of the 3' NCR consists of a type-specific region (immediately following the termination codon), a poly(U) stretch, a C(U)n-repeat, and highly conserved region termed the core element. The poly(U) stretch and C(U)n-repeat regions varied in length and in sequence among different genotypes. Core elements having putative secondary structure consisted of 98 or 100 nts and were highly conserved in all genotypes. Most of the nt changes found in different genotypes did not affect the secondary structure of the core elements, suggesting that this region may play an important role in replication, stabilization of the HCV RNA, and/or packaging of the genome. Most of the HCV-1b strains carried two U residues at the 3' end of the core element, while the minor HCV-1b strains had no U residues, demonstrating that there are two variants in type 1b strains. Amplification of the core element using linker-primed cDNA was comparable with that using the 3' proximal core element-primed cDNA, indicating that the 3' end of HCV genome was terminated by an OH group.

Base Sequence↗

Initiation of encephalomyocarditis virus RNA translation: the authentic initiation site is not selected by a scanning mechanism.

The authentic initiation site on encephalomyocarditis virus (strain R) RNA is the 11th AUG codon (at nt. 834) from the 5' end of the viral RNA, the downstream of the two AUGs in the sequence....ACGAUGAUAAUAUGGCC... In order to assess the role of ribosome scanning in the selection of the correct initiation site, transcripts of a construct comprising the viral 5' noncoding sequence fused to a reporter gene were translated in vitro and the relative frequency of initiation at these two AUG codons, AUG-10 and AUG-11, was assayed. When deletions from the 5' end were made that retained less than 100 nucleotides of the viral 5'-noncoding sequence, initiation was highly cap-dependent and AUG-10 was utilized in preference to AUG-11, consistent with the scanning ribosome model. On the other hand, when the constructs included the entire 574 nt. segment of the 5' noncoding region situated between the poly(C) tract of the virion RNA and nt. 834, initiation was cap-independent and occurred exclusively at AUG-11, with negligible use of AUG-10. These results suggest that structural features of the 574 nucleotide segment cause initiating ribosomes to bind directly to AUG-11, without scanning the immediate upstream sequences that include AUG-10.

Base Sequence↗

Spontaneous and engineered deletions in the 3' noncoding region of tick-borne encephalitis virus: construction of highly attenuated mutants of a flavivirus.

The flavivirus genome is a positive-strand RNA molecule containing a single long open reading frame flanked by noncoding regions (NCR) that mediate crucial processes of the viral life cycle. The 3' NCR of tick-borne encephalitis (TBE) virus can be divided into a variable region that is highly heterogeneous in length among strains of TBE virus and in certain cases includes an internal poly(A) tract and a 3'-terminal conserved core element that is believed to fold as a whole into a well-defined secondary structure. We have now investigated the genetic stability of the TBE virus 3' NCR and its influence on viral growth properties and virulence. We observed spontaneous deletions in the variable region during growth of TBE virus in cell culture and in mice. These deletions varied in size and location but always included the internal poly(A) element of the TBE virus 3' NCR and never extended into the conserved 3'-terminal core element. Subsequently, we constructed specific deletion mutants by using infectious cDNA clones with the entire variable region and increasing segments of the core element removed. A virus mutant lacking the entire variable region was indistinguishable from wild-type virus with respect to cell culture growth properties and virulence in the mouse model. In contrast, even small extensions of the deletion into the core element led to significant biological effects. Deletions extending to nucleotides 10826, 10847, and 10870 caused distinct attenuation in mice without measurable reduction of cell culture growth properties, which, however, were significantly restricted when the deletion was extended to nucleotide 10919. An even larger deletion (to nucleotide 10994) abolished viral viability. In spite of their high degree of attenuation, these mutants efficiently induced protective immune responses even at low inoculation doses. Thus, 3'-NCR deletions represent a useful technique for achieving stable attenuation of flaviviruses that can be included in the rational design of novel flavivirus live vaccines.

Animals↗

An internal duplication in the 5' noncoding region of strain H: a bovine viral diarrhoea virus (BVDV) isolated from pigs.

A pig pestivirus isolate, strain H, was characterized by using reverse transcription-PCR (RT-PCR) and direct sequencing of the amplicons. A duplication of 74 nucleotides was found at the 5' terminus of the 5' noncoding (NC) region, which was also found in RNA isolates from tonsils from two other pigs from the same farm. When the duplication was omitted, the 5' NC region showed 97.8% similarity to bovine viral diarrhoea virus (BVDV) strain Korevaar and 94% to BVDV strain Osloss. Furthermore, the rearrangement of the 5' NC region of strain H was maintained after passaging in different cell lines and is not common for ruminant-like pestivirus isolated from pigs. Phylogenetic analysis based on the deduced amino acid sequence of the E2 gene of strain H confirmed the findings of the 5' NC region and show that this strain belongs to the BVDVIb subgroup. These results show for the first time rearrangements in the 5' NC region of a pestivirus.

5' Untranslated Regions↗

Reverse genetics for crimean-congo hemorrhagic fever virus.

The widespread geographical distribution of Crimean-Congo hemorrhagic fever (CCHF) virus (more than 30 countries) and its ability to produce severe human disease with high mortality rates (up to 60%) make CCHF a major public health concern worldwide. We describe here the successful establishment of a reverse genetics technology for CCHF virus, a member of the genus Nairovirus, family BUNYAVIRIDAE: The RNA polymerase I (pol I) system was used to generate artificial viral RNA genome segments (minigenomes), which contained different reporter genes in antisense (virus RNA) or sense (virus-complementary RNA) orientation flanked by the noncoding regions of the CCHF virus S segment. Reporter gene expression was observed in different eukaryotic cell lines following transfection and subsequent superinfection with CCHF virus, confirming encapsidation, transcription, and replication of the pol I-derived minigenomes. The successful transfer of reporter gene activity to fresh cells demonstrated the generation of recombinant CCHF viruses, thereby confirming the packaging of the pol I-derived minigenomes into progeny viruses. The system offers a unique opportunity to study the biology of nairoviruses and to develop therapeutic and prophylactic measures against CCHF infections. In addition, we demonstrated for the first time that the human pol I system can be used to develop reverse genetics approaches for viruses in the family BUNYAVIRIDAE: This is important since it might facilitate the manipulation of bunyaviruses with cell and host tropisms restricted to primates.

Animals↗

Host cell proteins binding to domain IV of the 5' noncoding region of poliovirus RNA.

Translation of poliovirus RNA occurs by the binding of ribosomes to an internal segment of RNA sequence within the 5' untranslated region of the viral RNA. This region is predicted to consist of six domains (I to VI) that possess complex secondary and tertiary structures. Domain IV is a large region in which alterations in the sequence or structure markedly reduce translational efficiency. In this study, we employed RNA mobility shift assays to demonstrate that a protein(s) from uninfected HeLa cell extracts, as well as from neuroblastoma extracts, interacts with the domain IV structure. A mutation in domain IV caused reduced binding of HeLa cell proteins and reduced translation both in vitro and in vivo, suggesting that the binding of at least one of these proteins plays a role in the mechanism of viral translation. UV cross-linking indicated that a protein(s) with a size of approximately 40 kDa interacted directly with the RNA. Using streptavidin beads to capture biotinylated RNA bound to proteins, we were able to visualize a number of HeLa and neuroblastoma cell proteins that interact with domain IV. These proteins have molecular masses of approximately 39, approximately 40, and approximately 42 kDa.

Animals↗

Herpes simplex virus 1 ICP27 is required for transcription of two viral late (gamma 2) genes in infected cells.

The herpes simplex virus infected cell protein 27 (ICP27) is required for the expression of certain early viral proteins and for many late proteins during productive infection. Expression of at least one late (gamma 2) gene, that encoding glycoprotein C, is severely restricted in the absence of functional ICP27. The exact mode of action by which ICP27 induces late gene expression is not known, but the effect is apparent at the mRNA level as demonstrated by Northern blot analysis. To determine whether ICP27 activates late genes via transcriptional or posttranscriptional mechanisms, we initially used nuclear run-on assays to measure transcription of viral genes in Vero cells infected with wild-type (WT) virus or an ICP27 nonsense mutant virus, n504. We observed a 4-fold reduction in the nuclear run-on signal from the coding strand of the gC gene for n504-infected cells compared to that of WT-infected cells. However, interpretation of the results was complicated by the observation of a significant signal from the noncoding strand in these experiments. To obviate the problem of symmetrical transcription, we utilized in vivo RNA pulse-labeling to measure the amount of transcription of viral genes in cells infected with either WT virus or n504 virus. We found a 5- to 10-fold reduction in the transcription of the gC and U(L)47 genes, two late genes, in cells infected with n504 compared to that in cells infected with WT virus. In contrast, transcription of the ICP8 gene, an early gene, was similar in WT and n504 virus-infected cells. We also examined the stability of the gC and U(L)47 gene transcripts in n504-infected cells, and we found it to be comparable to that in WT virus-infected cells, further supporting an effect on transcription. Transcription of the gC and U(L)47 genes by n504 was normal in a cell line that expresses WT ICP27. From these results we conclude that ICP27 is required for transcription of the late gC and U(L)47 genes during productive infection.

Animals↗

Analysis of the role of brome mosaic virus 1a protein domains in RNA replication, using linker insertion mutagenesis.

Brome mosaic virus (BMV) belongs to a "superfamily" of plant and animal positive-strand RNA viruses that share, among other features, three large domains of conserved sequence in nonstructural proteins involved in RNA replication. Two of these domains reside in the 109-kDa BMV 1a protein. To examine the role of 1a, we used biologically active cDNA clones of BMV RNA1 to construct a series of linker insertion mutants bearing two-codon insertions dispersed throughout the 1a gene. The majority of these mutations blocked BMV RNA replication in protoplasts, indicating that both intervirally conserved domains function in RNA replication. Coinoculation tests with a large number of mutant combinations failed to reveal detectable complementation between mutations in the N- and C-terminal conserved domains, implying that these two domains either function in some directly interdependent fashion or must be present in the same protein. Four widely spaced mutations with temperature-sensitive (ts) defects in RNA replication were identified, including a strongly ts insertion near the nucleotide-binding consensus of the helicaselike C-terminal domain. Temperature shift experiments with this mutant show that 1a protein is required for continued accumulation of all classes of viral RNA (positive strand, negative strand, and subgenomic) and is required for at least the first 10 h of infection. ts mutations were also identified in the 3' noncoding region of RNA1, 5' to conserved sequences previously implicated in cis for replication. Under nonpermissive conditions, the cis-acting partial inhibition of RNA1 accumulation caused by these noncoding mutations was also associated with reduced levels of the other BMV genomic RNAs. Comparison with previous BMV mutant results suggests that RNA replication is more sensitive to reductions in expression of 1a than of 2a, the other BMV-encoded protein involved in replication.

Amino Acid Sequence↗