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A determinant of disease symptom severity is located in the 3'-terminal noncoding region of the RNA of a plant virus.

Inoculation of Nicotiana tabacum plants with RNA transcribed in vitro from a variant (pXBS8) of a cloned full-length DNA copy of tobacco vein mottling virus (TVMV) RNA resulted in attenuation of the vein mottling and blotching symptoms typically produced by transcripts of cloned wild-type cDNA (pXBS7). Similar amounts of virus were detected by ELISA (using anti-TVMV coat protein serum) in systemically infected leaves of plants inoculated with pXBS7 or pXBS8 transcripts. pXBS8 was shown to contain a 58-nucleotide segment in the sequence corresponding to the 3'-terminal untranslated region of TVMV RNA that was not present in pXBS7. This segment resulted in the appearance in pXBS8 transcripts of four adjacent direct repeats of a 14-nucleotide sequence, AUAAUUAUAUAUAU, that is present in the 3'-untranslated region of TVMV RNA, with two additional nucleotides (AU) between the first and second repeats. Insertion of restriction fragments containing the segment into pXBS7 and inoculation of plants with transcripts of the chimeric construct (pXBS78) resulted in the attenuated-symptom phenotype and was not accompanied by a reduced accumulation of virus in the plant as determined by ELISA and Northern blot analysis. When the extra nucleotides were removed from the variant clone, symptoms induced by transcripts of the cDNA (pXBS87) resembled those induced by wild-type transcripts. The results indicate that a noncoding region of the genome can have a direct effect on the induction of disease symptoms by an RNA virus.

Base Sequence↗

An ultraviolet-sensitive RNA structural element in a viroid-like domain of the hepatitis delta virus.

The RNA genome of the hepatitis delta virus (HDV) appears to be made up of two parts: a small domain with a high degree of sequence conservation and structural features likely to promote replication; plus a second, larger domain that is less conserved and encodes the delta antigen. This report focuses on one of the several sets of data that have led to the proposal of this model: the existence of a novel structural element in HDV genomic RNA. This structural element lies within the highly conserved domain of HDV RNA and may be related to the local tertiary structure previously mapped to the central conserved region of the plant viroid genome. Both elements occur in regions with no apparent coding capacity and are distinctively responsive to ultraviolet (UV) light. Transcripts containing partial and full-length genomic sequences of HDV readily undergo a UV-induced crosslinking reaction, which establishes a covalent bond between two noncontiguous segments. By locking two segments of the overall structure into place, this crosslink has permitted the unbranched, rodlike model of HDV RNA to be examined and confirmed in the portion of the RNA analyzed. The clustering of the novel tertiary structure and the recently discovered self-cleavage sites into a highly conserved, but apparently noncoding, portion of the genome defines a viroid-like domain in HDV RNA and raises questions about the possible events leading up to the association of free-living RNAs with messenger RNAs and other RNA molecules.

DNA↗

Splice site requirement for the efficient accumulation of polyoma virus late mRNAs.

Polyoma virus late nuclear primary transcripts are giant and heterogeneous, containing tandem repeats of the late strand of the circular viral genome. Late pre-mRNA processing involves the splicing of noncoding 'leader' exons to each other (removing genome-length introns), with the joining of the last leader to a coding 'body' exon. We have constructed a number of mutants blocked only in leader-leader splicing, or blocked in both leader-leader and leader-body splicing. We examined the accumulation of both nuclear and cytoplasmic late-strand RNAs in NIH3T3 cells. Consistent with our previous results, mutants lacking the 3' splice site of the late leader (leader-leader splicing blocked) showed a 10-20 fold defect in late RNA accumulation. Mutants which lacked the leader 5' splice site (leader-body splicing blocked) had a more profound defect, exhibiting virtually no late-strand cytoplasmic or nuclear RNA. This result was unexpected as a substantial proportion of wild type late cytoplasmic messages are unspliced. A mutant with no intron, but having functional 3' and 5' splice sites bordering the leader exon, is capable of producing large amounts of unspliced late mRNA. This demonstrates that an excisable intron is not a requirement for late mRNA accumulation. The accumulation of polyoma late mRNAs requires the presence of leader exons bordered by functional 3' and 5' splice sites, whether or not these sites are used during pre-mRNA processing.

Base Sequence↗

Trapped water molecules are essential to structural dynamics and function of a ribozyme.

Ribozymes are catalytically competent examples of highly structured noncoding RNAs, which are ubiquitous in the processing and regulation of genetic information. Combining explicit-solvent molecular dynamics simulation and single molecule fluorescence spectroscopy approaches, we find that a ribozyme from a subviral plant pathogen exhibits a coupled hydrogen bonding network that communicates dynamic structural rearrangements throughout the catalytic core in response to site-specific chemical modification. Trapped long-residency water molecules are critical for this network and only occasionally exchange with bulk solvent as they pass through a breathing interdomain base stack. These highly structured water molecules line up in a string that may potentially also be involved in specific base catalysis. Our observations suggest important, still underappreciated roles for specifically bound water molecules in the structural dynamics and function of noncoding RNAs.

Base Pairing↗

Intercistronic as well as terminal sequences are required for efficient amplification of brome mosaic virus RNA3.

The genome of brome mosaic virus (BMV) is divided among messenger polarity RNA1, RNA2, and RNA3 (3.2, 2.9, and 2.1 kilobases, respectively). cis-Acting sequences required for BMV RNA amplification were investigated with RNA3. By using expressible cDNA clones, deletions were constructed throughout RNA3 and tested in barley protoplasts coinoculated with RNA1 and RNA2. In contrast to requirements for 5'- and 3'-terminal noncoding sequences, either of the two RNA3 coding regions can be deleted individually and both can be simultaneously inactivated by N-terminal frameshift mutations without significantly interfering with amplification of RNA3 or production of its subgenomic mRNA. However, simultaneous major deletions in both coding regions greatly attenuate RNA3 accumulation. RNA3 levels can be largely restored by insertion of a heterologous, nonviral sequence in such mutants, suggesting that RNA3 requires physical separation of its terminal domains or a minimum overall size for normal replication or stability. Unexpectedly, deletions in a 150-base segment of the intercistronic noncoding region drastically reduce RNA3 accumulation. This segment contains a sequence element homologous to sequences found near the 5' ends of BMV RNA1 and RNA2 and in analogous positions in the three genomic RNAs of the related cucumber mosaic virus, suggesting a possible role in plus-strand synthesis.

Chromosome Deletion↗

Tick-borne encephalitis virus (TBEV)-specific RT-PCR for characterization of natural foci of TBE and for other applications.

An effective detection system for TBEV-RNA sequences using a RT-PCR technique has been developed. In our system, specific oligonucleotide primers corresponding to the 5'-terminal noncoding region were successfully used to identify TBEV sequences in ticks. To prove the specificity of the PCR products, Southern blot hybridization with an internal digoxigenin-labelled probe was carried out. In this paper, we present some potential applications of this technique. The primers were used to identify 21 TBEV strains isolated in different years, in different geographic regions and from different sources. 22313 Ixodes ricinus ticks from north-east Germany were analyzed for TBEV-specific sequences in order to characterize the viral activity in natural foci of TBE. In the new Federal Länder, only 6 samples gave positive PCR-results, showing that the natural foci of TBE had not been extinguished but remained in a state of endemic latency. We also used the RT-PCR to develop an animal model to investigate the temporal pattern of viraemia in the Mongolian gerbil (Meriones unguiculatus) through xenodiagnosis (sequential tick feeding on an infected host and subsequent RT-PCR testing of the resultant engorged ticks).

Animals↗

Porcine reproductive and respiratory syndrome virus comparison: divergent evolution on two continents.

Porcine reproductive and respiratory syndrome virus (PRRSV) is a recently described arterivirus responsible for disease in swine worldwide. Comparative sequence analysis of 3'-terminal structural genes of the single-stranded RNA viral genome revealed the presence of two genotypic classes of PRRSV, represented by the prototype North American and European strains, VR-2332 and Lelystad virus (LV), respectively. To better understand the evolution and pathogenicity of PRRSV, we obtained the 12,066-base 5'-terminal nucleotide sequence of VR-2332, encoding the viral replication activities, and compared it to those of LV and other arteriviruses. VR-2332 and LV differ markedly in the 5' leader and sections of the open reading frame (ORF) 1a region. The ORF 1b sequence was nearly colinear but varied in similarity of proteins encoded in identified regions. Furthermore, molecular and biochemical analysis of subgenomic mRNA (sgmRNA) processing revealed extensive variation in the number of sgmRNAs which may be generated during infection and in the lengths of noncoding sequence between leader-body junctions and the translation-initiating codon AUG. In addition, VR-2332 and LV select different leader-body junction sites from a pool of similar candidate sites to produce sgmRNA 7, encoding the viral nucleocapsid protein. The presence of substantial variations across the entire genome and in sgmRNA processing indicates that PRRSV has evolved independently on separate continents. The near-simultaneous global emergence of a new swine disease caused by divergently evolved viruses suggests that changes in swine husbandry and management may have contributed to the emergence of PRRS.

5' Untranslated Regions↗

Enteroviral RNA and virus-like particles in the skeletal muscle of patients with idiopathic dilated cardiomyopathy.

The role of chronic viral infection in the etiopathogenesis of idiopathic dilated cardiomyopathy (IDC) has generated considerable research. Enteroviruses were the favorite candidates as etiologic agents of IDC. However, enteroviruses were rarely demonstrated in affected hearts. We investigated whether enteroviral infection persists in the heart and in extracardiac sites, particularly in skeletal muscle, in patients with IDC. Blood and myocardial and skeletal muscle samples were collected at cardiac transplantation from 31 IDC patients, 24 non-IDC heart disease patients, and 3 heart donors. Samples underwent ultrastructural studies and ribonucleic acid (RNA) extraction. RNA was reverse-transcribed, and 2 nested fragments (bps 179 and 126) were amplified in the highly conserved 5' noncoding region of enteroviral genomic RNA. Enteroviral RNA was found in the skeletal muscle of 12 cases, whereas only 4 hearts (2 of which with positive skeletal muscle) were positive. Of the 24 controls, 2 were positive (1 muscle and heart, 1 muscle only). Automated sequencing confirmed the enteroviral nature of the amplified products. Ultrastructural study showed enterovirus-like particles in 4 of the enterovirus-positive muscles, and myopathic changes in all enterovirus-positive cases. Skeletal muscle hosts chronic enteroviral infection in more than one third of patients with sporadic IDC. Two hypotheses may explain this link. Myocardial damage may derive directly from recurrent subclinical heart infections caused by enteroviruses harbored in skeletal muscle. Alternatively, enterovirus-related myopathy may trigger an autoimmune response to antigens shared by muscle and myocardium. Further studies are needed to assess the importance of these, non-mutually exclusive mechanisms in IDC pathogenesis.

Adult↗

Role of La autoantigen and polypyrimidine tract-binding protein in HCV replication.

To determine if the cellular factors La autoantigen (La) and polypyrimidine tract-binding protein (PTB) are required for hepatitis C virus (HCV) replication, we used siRNAs to silence these factors and then monitored their effect on HCV replication using quantitative RT-PCR. In addition, we determined the influence of PTB on the activity of the 3' noncoding region (NCR) of HCV and investigated its interaction with the components of the HCV replicase complex. We found that La is essential for efficient HCV replication while PTB appears to partially repress replication. PTB does, however, block the binding of HCV RNA-dependent RNA polymerase (RdRp, NS5B) to the 3'NCR. Indirect immunofluorescence microscopy showed co-localization of cytoplasmic PTB with the HCV RdRp in hepatoma cells (Huh-7) expressing HCV proteins, while in vitro translation of viral proteins from the HCV replicon revealed the interaction of PTB isoforms with NS5B polymerase and NS3.

3' Untranslated Regions↗

Intronic microRNA (miRNA).

Nearly 97% of the human genome is composed of noncoding DNA, which varies from one species to another. Changes in these sequences often manifest themselves in clinical and circumstantial malfunction. Numerous genes in these non-protein-coding regions encode microRNAs, which are responsible for RNA-mediated gene silencing through RNA interference (RNAi)-like pathways. MicroRNAs (miRNAs), small single-stranded regulatory RNAs capable of interfering with intracellular messenger RNAs (mRNAs) with complete or partial complementarity, are useful for the design of new therapies against cancer polymorphisms and viral mutations. Currently, many varieties of miRNA are widely reported in plants, animals, and even microbes. Intron-derived microRNA (Id-miRNA) is a new class of miRNA derived from the processing of gene introns. The intronic miRNA requires type-II RNA polymerases (Pol-II) and spliceosomal components for their biogenesis. Several kinds of Id-miRNA have been identified in C elegans, mouse, and human cells; however, neither function nor application has been reported. Here, we show for the first time that intron-derived miRNAs are able to induce RNA interference in not only human and mouse cells, but in also zebrafish, chicken embryos, and adult mice, demonstrating the evolutionary preservation of intron-mediated gene silencing via functional miRNA in cell and in vivo. These findings suggest an intracellular miRNA-mediated gene regulatory system, fine-tuning the degradation of protein-coding messenger RNAs.

Journal Article↗

Deletion mutagenesis downstream of the 5' long terminal repeat of human immunodeficiency virus type 1 is compensated for by point mutations in both the U5 region and gag gene.

We have studied the role of an RNA region at nucleotides (nt) +200 to +233, just downstream of the 5' long terminal repeat, in encapsidation of human immunodeficiency virus type 1 genomic RNA. Three deletion mutations, namely, BH-D0, BH-D1, and BH-D2, were generated to eliminate sequences at positions nt +200 to +219, +200 to +226, and +200 to +233. The result in each case was decreased levels of packaging of viral RNA into the mutated viruses, with the BH-D2 virus being the most severely affected. Consistently, all three deletions resulted in impaired viral infectiousness and the BH-D2 mutation showed the most dramatic impact in this regard. Further analysis revealed additional defects in Gag precursor processing and in the extension efficiency of the tRNA(3)(Lys) primer in reverse transcription reactions performed with these mutated viruses. To shed further light on the function of these deleted sequences in viral replication, the mutated viruses were cultured in MT-2 cells over prolonged periods to enable them to reacquire wild-type replication kinetics. Sequencing of the reverted viruses revealed point mutations in both the noncoding region and the gag gene. In the case of the BH-D0 revertant, two mutations were observed at positions G112A in the U5 region, termed M1, and T24I in the nucleocapsid protein, termed MNC, respectively. Either of these two mutations was able to confer wild-type replication capacity on BH-D0. In the case of BH-D1, each of the M1 mutations, a mutation termed M2, i.e., C227T, just downstream of the primer binding site, a mutation termed MP2 (T12I) in the p2 protein, and the MNC mutation were observed. A combination of either M1 and M2 or MP2 and MNC was able to rescue BH-D1. In the case of the BH-D2 deletion-containing viruses, three point mutations, i.e., M1, MP2, and MNC, were observed and the presence of all three was required to restore viral replication to wild-type levels.

Animals↗

Peanut stunt virus satellite RNA: analysis of sequences that affect symptom attenuation in tobacco.

The V-satellite RNA (V-satRNA) of peanut stunt virus (PSV) has no effect on symptoms produced in tobacco by PSV. In contast, the G-satRNA induced complete or nearly complete suppression of systemic symptom development. Because G-satRNA differs from V-satRNA in only five nucleotide positions, these two satRNAs provide excellent material for investigating the molecular basis of satRNA-mediated symptom attenuation. For this purpose, we constructed transcription vectors containing full-length cDNA clones from which infectious RNA transcripts can be synthesized in vitro, and produced chimeric and mutant satRNA molecules. Although an A----C substitution at position 362 of the V-satRNA molecule delayed systemic symptom development and reduced symptom severity, changes at both nucleotide positions 226 (C----U) and 362 (A----C) of V-satRNA were required for suppression of systemic symptom development. Our results are consistent with the idea that PSV satRNAs are noncoding molecules that exert their biological activities by directly interacting with host/viral components.

Base Sequence↗

Segment-specific and common nucleotide sequences in the noncoding regions of influenza B virus genome RNAs.

The nucleotide sequences of the 3' noncoding regions of all eight segments of influenza B virus RNA and the sequences of the 5' noncoding regions of segments 4-8 were determined in virus strains isolated over a period of 40 years. Nearly complete conservation of the noncoding sequences was found. Nine nucleotides at the 3' termini and 11 nucleotides at the 5' termini were common to all segments examined. In the region immediately adjacent to the common 3' terminal region, the nucleotides were specific for each segment and these segment-specific sequences were conserved in all strains examined. In each of the five segments in which both termini were examined, the segment-specific 3' sequences exhibited perfect inverted complementarity to a segment-specific sequence adjacent to the common 5' terminus. In addition, in the 3' noncoding region of RNA segments 1-3, which encode proteins involved in RNA synthesis, a single nucleotide substitution at position 10 was found that distinguishes these segments from segments 4-8. Comparison of these data with published reports has revealed that some of the features found in the noncoding regions of influenza B virus are also present in influenza A and C virus RNAs. In the RNAs of all three virus types, there is a segment-specific sequence of nucleotides near the 3' terminus that shows inverted complementarity to a sequence near the 5' terminus. This segment-specific sequence may play a role in the transcription of individual segments or in sorting of segments during virion assembly.

Animals↗

Cymbidium mosaic potexvirus RNA: complete nucleotide sequence and phylogenetic analysis.

The complete nucleotide sequence of the genomic RNA of cymbidium mosaic potexvirus (CymMV) was determined to be 6227 nucleotides in length, excluding the poly (A) tail at the 3' terminus. Similar to other potexviruses, its genome organisation is comprised of five major open reading frames (ORFs 1 to 5), encoding a Mr 160 KDa putative RNA-dependent RNA polymerase (RdRp); a Mr 26KDa/13KDa/10KDa triple-gene-block (TGB) and a Mr 24 KDa coat protein. The CymMV encoded proteins shared a high degree of homology to their corresponding proteins of other members of the potexvirus group. The nucleotide sequence of the 5' noncoding region (NCR) of CymMV and all other potexviruses initiates with GAAAA. CymMV possesses the shortest 5' NCR among all potexviruses. Based on phylogenetic comparisons of RdRp and coat protein, CymMV shares a close relationship to PAMV, NMV, WClMV and SMYEaV. This is believed to be the first record of the complete nucleotide sequence of CymMV.

Amino Acid Sequence↗

Nucleotide and amino acid sequence analysis of the rotavirus nonstructural RNA-binding protein NS35.

NS35, a basic protein encoded by gene 8 of SA11 rotavirus, possesses RNA-binding activity and is essential for genome replication. To identify conserved regions in the NS35 gene and its protein product, we determined the nucleotide sequences of the NS35 gene for the mammalian and avian rotaviruses Wa, DS1, SA11 (Patton and Ramig strains), NCDV, and Ty-1 and compared them and their deduced amino acid sequences to those reported for SA11 (Both strain), OSU, and UK. The results indicated that the NS35 genes of the mammalian rotaviruses are 1058-1059 bases in length and encode proteins of 317 amino acids that exhibit high levels of sequence conservation (> or = 83%). The NS35 gene of the turkey rotavirus Ty-1 differed from those of the mammalian rotaviruses with respect to size of the predicted protein (315 amino acids) and of the gene (1042 bases). NS35 of Ty-1 exhibited a relatively low degree of amino acid homology (52-57%) with NS35 of the mammalian viruses. Phylogenetic analysis of the NS35 gene indicated that avian (TY-1) and mammalian rotaviruses are distantly related. Comparison of the predicted sequences of NS35 showed that all possessed a conserved basic domain of 37 amino acids at residues 205-241 that may serve as the RNA-binding domain. Electrophoretic examination showed that NS35 contains a disulfide bond probably located in the amino-terminal half of the protein. Comparison of NS35 genes at the nucleotide level revealed two regions of extensive conservation, (i) a 75-base (b) sequence that includes the 35-base 5'-noncoding region and the first 30 bases of the open reading frame for NS35, and (ii) a 28-b sequence in the 3'-noncoding region of the gene. Secondary structure predictions for the NS35 mRNA suggest that the 75-base sequence can fold to produce a stem double-loop structure. Such a structure may serve as a packaging signal for the assortment of NS35 mRNA into replicase particles.

Amino Acid Sequence↗

Hepatitis C virus genotypes and quasispecies.

Genetic heterogeneity is a hallmark of the hepatitis C virus, as a result largely of the infidelity of viral RNA-dependent RNA polymerase. Random nucleotide substitutions are introduced at a very high rate. The existence of genotypes was confirmed by statistical and mathematical techniques, and the relation of the genotypes to each other has been determined. There are six major genotypes, each with multiple subtypes. Isolates of the same genotype have an average sequence homology of 95%, but different genotypes have sequence similarity of approximately 65% on average. The nucleotide sequence in portions of the hepatitis C viral genome, including the 5' noncoding region, part of the core gene, and other nonstructural proteins, is highly conserved. Genotype analysis typically utilizes these highly conserved regions. There are many techniques for determining viral genotype, and in general, concordance between techniques is good. Methods most commonly used for assigning hepatitis C virus (HCV) genotypes in clinical practice include restriction fragment length polymorphism analysis and the reverse hybridization line probe assay (LiPA; Innogenetics, Ghent, Belgium). The worldwide distribution of HCV genotypes has been determined; some genotypes are highly characteristic of certain areas. The most common subtypes, 1 and 2, are less genetically diverse than the others and are more widely distributed. The impact of genotype on disease course is controversial, but recent data suggest that there is a genotype-dependent differential response to therapy. Quasispecies refers to evolution of a highly related but genetically heterogeneous population of HCV isolates. The pathobiological and clinical implications of HCV quasispecies are poorly understood.

Genome, Viral↗

Multicyclic reverse transcription-polymerase chain reaction assay system for quantification of GB virus-C/hepatitis G virus RNA in serum.

A new quantitative reverse transcription-polymerase chain reaction (RT-PCR) method is described for analyzing the amount of GB virus-C (GBV-C)/hepatitis G virus (HGV) RNA in serum. This multicyclic RT-PCR (MRT-PCR) method used oligonucleotide primers deduced from the 3' noncoding region (3'NCR) that is highly conserved among GBV-C/HGV isolates. Quantitation of GBV-C/HGV RNA using MRT-PCR ranged between 10(2) and 10(10) copies/ml when PCR cycle number was regulated at exponential amplification of the products. Competitive RT-PCR (CRT-PCR) was carried out with mutant RNA and sample that had been measured by MRT-PCR. Quantitation of GBV-C/HGV RNA using both methods agreed. MRT-PCR detected viral RNA in a single step PCR, and demonstrated a high degree of sensitivity that was equal to that of the RT-PCR procedure, which used nested primers deduced from the non-structural (NS) 3 region. The MRT-PCR method for quantitation of GBV-C/HGV RNA in serum may prove useful for diagnosis.

DNA Primers↗

Overlapping retrovirus U5 sequence elements are required for efficient integration and initiation of reverse transcription.

A secondary structure in the 5' noncoding region of avian retrovirus RNA, called the U5-leader stem, was shown previously to have a role in initiation of reverse transcription (D. Cobrinik, L. Soskey, and J. Leis, J. Virol. 62:3622-3630, 1988). We now show that an additional RNA secondary structure near the U5 terminus, called the U5-IR stem, is also important for reverse transcription. Mutations that disrupt the U5-IR stem cause a replication defect associated with both a decrease in synthesis of viral DNA in infected cells and a decrease in initiation of reverse transcription in melittin-permeabilized virions. Structure-compensating base substitutions in the U5-IR restore reverse transcription efficiency. In viral DNA, U5-IR sequences are included in the U5 terminal region that functions as a viral integration donor site. When base substitutions are introduced into these sequences, a reduced efficiency of integration in vitro and in vivo is observed. These observations indicate that U5-IR sequences have a structural role in reverse transcription of viral RNA and a sequence-specific role in the integration of viral DNA.

Avian Sarcoma Viruses↗