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Lozier, Z.

Publications and source records attributed to Lozier, Z..

3 recordsLinked to original sources

Changes in the translational landscape during red clover necrotic mosaic virus infection

Viruses alter host gene expression to create a proviral environment while the host simultaneously regulates gene expression to restrict the virus spread. Owing to RNA virus complete reliance on the host translational machinery, it is important to assess the translational control during virus infection. Therefore, we used ribosome profiling (ribo-seq) paired with RNAseq to observe how red clover necrotic mosaic virus (RCNMV) infection of Arabidopsis plants alters cellular gene expression at the levels of mRNA abundance and translation efficiency. We determined that at 5 days post-inoculation (dpi), the translational response to RCNMV infection is enriched in genes of the innate immune system. Expression of a tumor necrosis factor receptor-associated factor (TRAF)-like protein, a regulator of development and immune response, was translationally but not transcriptionally upregulated early in systemic infection. By 8 dpi, many pathways were regulated/dysregulated, and unfolded protein response (UPR) genes were transcriptionally upregulated but with reduced translation efficiency. Ribosome profiling of RCNMV RNAs revealed (i) -1 programmed ribosomal frameshifting at 7.5-8.0%, the first direct measurement of frameshift efficiency in infected cells for any plant virus; (ii) that coat protein is translated at extremely high efficiency, while the RNA-dependent RNA polymerase is translated least efficiently, and (iii) an unexpected extremely strong ribosomal pause site in the open reading frame that encodes the movement protein. To our knowledge, this is the first genome-wide study that assesses the translational control of gene expression in plants infected with a virus from the large and diverse Tombusviridae family. ImportancePositive strand RNA viruses usurp the hosts translation machinery to synthesize viral proteins. Moreover, translation of host mRNAs is altered by virus infection, both as part of the host immune response and by the virus to inhibit host defenses. To assess all these changes globally, we used ribosome profiling of plants infected with a member of the large and ubiquitous Tombusviridae family. We identified key host genes and pathways that were differentially altered in translation efficiency, giving us an understanding of host responses not detectable by conventional RNA sequencing. Moreover, ribosome profiling revealed (i) the most accurate calculation of efficiency of ribosomal frameshifting during infection for any plant virus, (ii) the extremely high level of translation of viral coat protein, and (iii) an unexpected strong ribosomal pause site in the movement protein gene. This work provides understanding of a new dimension of gene expression control in plant-virus interactions.

microbiology↗

ANALYSIS OF RESPIRATORY SYNCYTIAL VIRUS REVEALS CONSERVED RNA SECONDARY STRUCTURAL MOTIFS AND IMPACT VIRAL LIFECYCLE

An analysis that combined bioinformatics, comparative sequence/structural analysis, and experimental assays has been completed on respiratory syncytial virus (RSV). Both the genomic RNA and its reverse complement were studied using the novel bioinformatics pipeline ScanFold, which predicted 49 regions on RSV RNAs that appear to encode functional secondary structures (based on their unusually stable sequence order). Multiple motifs appear to be conserved between RSV and related virus strains, including one region within the F gene, which had a highly favorable overall prediction metric of a paired secondary structure. This motif was subjected to additional experimental analyses using SHAPE analysis to confirm ScanFold predicted secondary structure. In subsequent analysis, RSV F mRNA transcripts were made by in vitro transcription using T7 polymerase and transcripts which relaxed the predicted secondary structure yielded slightly higher mRNA transcripts and protein expression levels as wildtype F. However, using reverse genetics for comparison of viruses containing wildtype or relaxed F suggested that the predicted secondary structures may be critical for RSV replication in cells. To our knowledge, this is the first study to examine conserved RNA structures across multiple RSV strains and may help identify potential therapeutic targets to inhibit.

microbiology↗

A proposed new Tombusviridae genus featuring extremely long 5 prime untranslated regions and a luteo/polerovirus-like gene block

SummaryTombusviridae is a large family of single-stranded, positive-sense RNA plant viruses with uncapped, non-polyadenylated genomes encoding 5-7 open reading frames (ORFs). Previously, we discovered, by high-throughput sequencing of maize and teosinte RNA, a novel genome of a virus we call Maize-associated tombusvirus (MaTV). Here we determined the precise termini of the MaTV genome by using 5 and 3 rapid amplification of cDNA ends (RACE). In GenBank, we discovered eleven other nearly complete viral genomes with MaTV-like genome organizations and related RNA-dependent RNA polymerase (RdRp) sequences. These genomes came from diverse plant, fungal, invertebrate and vertebrate organisms, and some have been found in multiple organisms across the globe. The available 5 untranslated regions (UTRs) of these genomes are remarkably long: at least 438 to 727 nucleotides (nt), in contrast to those of other tombusvirids, which are <150 nt. Moreover these UTRs contain 6 to 12 AUG triplets that are unlikely to be start codons, because - with the possible exception of MaTV - there are no large or conserved ORFs in the 5 UTRs. Such features suggest an internal ribosome entry site (IRES), but we found no conserved secondary structures. In the 50 nt upstream of and adjacent to the ORF1 start codon, the 5 UTR was cytosine-rich and guanosine-poor. As in most tombusvirids, ORF2 (RdRp gene) appears to be translated by in-frame ribosomal readthrough of the ORF1 stop codon. Indeed, in all twelve genomes we identified RNA structures known in other tombusviruses to facilitate this readthrough. ORF5 is predicted to be translated by readthrough of the ORF3 (coat protein gene) stop codon as in genus Luteovirus. The resulting readthrough domains are highly divergent. ORF4 overlaps with ORF3 and may initiate with a non-AUG start codon. We also found no obvious 3 cap-independent translation elements, which are present in other tombusvirids. The twelve genomes diverge sufficiently from other tombusvirids to warrant classification in a new genus. Because they contain two leaky stop codons and a potential leaky start codon, we propose to name this genus Rimosavirus (rimosa = leaky in Latin).

microbiology↗