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Functional minigenome system reveals polymerase features of swine orthopneumovirus.

Swine orthopneumovirus (SOV), a recently identified porcine pneumovirus, has been detected in pig farms worldwide; however, its pathogenicity and molecular biology remain poorly understood. To facilitate the study of SOV replication and transcription, we developed a functional minigenome system based on consensus sequences from multiple strains of SOV and related pneumoviruses. Here, we constructed and optimized this system in BSRT7/5 cells, revealing that the RNA-dependent RNA polymerase (RdRp) activity depends on a conserved protein phosphatase 1 (PP1) binding site within the phosphoprotein P, as a single F131A substitution markedly reduced polymerase function. Additionally, we identified and characterized the M2-1 binding site on P, which is essential for viral transcription. These findings provide new insights into SOV polymerase complex requirements and establish a foundation for reverse genetics approaches to rescue infectious viruses, advancing our understanding of SOV biology and its potential role in porcine respiratory disease.IMPORTANCERecently, a newly identified porcine pneumovirus, swine orthopneumovirus (SOV), was detected in pig farms in different countries. Although detected mainly in sick animals, this virus has not been isolated yet and its pathogenicity remains to be determined. We started by setting up a minigenome system with a view to develop reverse genetics and rescue infectious virions. This minigenome system was used to study the functioning of the SOV RNA polymerase and compared it with RSV. Although some similarities exist between SOV and RSV, the RdRp of RSV cannot rescue the SOV minigenome. SOV seems to belong to another genus/genogroup of pneumoviruses, which includes PVM and the canine pneumovirus. Our functional minigenome paves the way for reverse genetics of SOV and determination of its pathogenicity in different host species.

Swine Diseases

Marburg Virus Minigenome Assays.

This chapter describes minigenome systems for Marburg virus (MARV), which reconstitute the viral polymerase complex functions of gene expression and genome replication. Procedures covered herein include passage and seeding of cells, transfection, sample collection, and reporter gene assays.

Marburgvirus

Droplet-Based Single-Cell 3' mRNA Sequencing of Marburg Virus-Infected Samples.

Single-cell technologies are continually evolving with emerging methods that are gradually uncovering the central DNA-RNA-protein dogma. Single-cell RNA sequencing is one arm of a multi-omic approach that achieves an astounding level of granularity to reveal the complexity of virus-host interactions at the transcriptomic level. Cell tropism, virus replication, pathogenesis, and gene expression changes mediated by the virus and the host's immune response to infection are just some areas of study that are gaining better clarity due to the high-resolution analysis afforded by the technology.We describe a single-cell sequencing protocol for Marburg virus infection in vivo using nonhuman primate blood and the 10× Chromium Next GEM single-cell genomics methodology. Working with pathogens of high consequence is logistically complicated, requiring containment in biosafety level (BSL)-4 laboratories and harsh inactivation procedures before samples can safely be removed to lower biosafety conditions. We provide procedural insight into sample isolation and processing conducted in BSL-4 and describe the requirements for safe sample removal without jeopardizing quality for down-stream sequencing and analysis in BSL-2 conditions. Characterization of complicated biological processes mediated by high-containment pathogens, typically restricted to analogous model systems, e.g., minigenome, can be achieved using live virus.

Animals

A bunyamwera virus minireplicon system in mosquito cells.

Artificial minigenomes are powerful tools for studying the replication and transcription of negative-strand RNA viruses. Bunyamwera virus (BUN; genus Orthobunyavirus, family Bunyaviridae) is an arbovirus that shows fundamental biological differences when replicating in mammalian versus mosquito cells. To study BUN RNA synthesis in mosquito cells, we developed a bacteriophage T7 RNA polymerase-based minireplicon system similar to that described previously for mammalian cells. An Aedes albopictus C6/36-derived mosquito cell line stably expressing T7 RNA polymerase was established. Viral proteins and artificial minigenomes (containing Renilla luciferase as a reporter) were transcribed and expressed in these cells from transfected T7 promoter-containing plasmids. Transcription of the minigenome required two viral proteins, the nucleocapsid protein N and the RNA-dependent RNA polymerase L, a situation similar to that in mammalian cells. However, unlike the situation in mammalian cells, the viral polymerase was not inhibited by the viral nonstructural protein NSs. We also report that promoter strength is different for vertebrate versus invertebrate cells. The development of this system opens the way for a detailed comparison of bunyavirus replication in cells of disparate phylogeny.

Aedes

A Respiratory Syncytial Virus trailer sequence modulates viral replication and copy-back defective viral genome generation and propagation kinetics.

Copy-back defective viral genomes (cbDVGs) are key inducers of antiviral responses during negative-sense RNA virus infection. Once considered byproducts of in vitro viral replication, cbDVGs have since been detected in clinical specimens and implicated in affecting infection outcomes. The molecular mechanism of cbDVG generation remains unclear, thereby hindering our ability to manipulate cbDVG production during infection for therapeutic gain. Previous work showed that respiratory syncytial virus (RSV) cbDVG re-initiation sites cluster in trailer-end hotspots R1, R2, and R3, and that a poly-U mutation in R1 selectively reduced cbDVG formation at the mutated region. Here, we reported that a 10U mutation in R2 drastically reduced cbDVGs in this region in both minigenome and recombinant virus systems. Furthermore, during high-MOI passaging of the R2-10U virus, we observed delayed detection of cbDVGs with re-initiation sites in R1-R3 (trailer cbDVGs) compared to WT, while no differences in virus titers were observed. Interestingly, we observed the rapid emergence and accumulation of a viral variant bearing a 2-ribonucleotide deletion (R2-8U) within the R2-10U mutation sequence as early as P0. Compared to R2-10U, the R2-8U virus was stable, displayed faster generation and accumulation of trailer cbDVGs, restored cbDVGs with R2 re-initiation sites, and exhibited enhanced genomic replication. Overall, our data identify a sequence in the RSV trailer whose mutation critically modulates both viral replication and the generation/propagation of trailer cbDVGs. Our data also suggest that cbDVG generation, particularly near the trailer, may be an evolutionary tradeoff for more rapid virus genomic replication.

defective viral genome generation and accumulation

Probing orthobunyavirus reassortment using Bunyamwera and Batai viruses as models.

Reassortment is a critical evolutionary mechanism for segmented viruses, enabling the exchange of intact genome segments during co-infection and driving orthobunyavirus evolution; however, the molecular mechanisms underpinning this process remain unclear. With over 100 orthobunyavirus species, many of which are significant human and veterinary pathogens, understanding how reassortment influences transmissibility and virulence is essential for preempting the emergence of novel pathogens. Here, we use Bunyamwera virus (BUNV) and Batai virus (BATV) as models to explore orthobunyavirus reassortment through reverse genetics. We established the first reverse genetics system for BATV, generated reassortants, and employed minigenome assays to assess replication machinery compatibility. Additionally, we developed a novel hybridization chain reaction assay for high-resolution visualization of viral RNA segments. Our findings revealed that all six reassortants between BUNV and BATV are viable, exhibiting notable phenotypic differences in interferon-deficient (IFNAR-/-) mice. This work introduces essential tools and new insights into orthobunyavirus reassortment and pathogenesis, laying the groundwork for understanding this critical evolutionary process.

Animals

Transcription- and Replication-Competent Virus-like Particle Systems for Marburg Virus.

Here, we describe the transcription- and replication-competent virus-like particle (trVLP) system for Marburg virus (MARV), which recapitulates transcription and replication of the viral genome in addition to viral particle assembly, egress, and entry. This protocol includes instructions for transfections for producer and acceptor cells and the use of trVLPs for infection.

Marburgvirus