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Updated: Mar 12, 2026

Analysis of Group IV Viral SSHHPS Using In Vitro and In Silico Methods
Published on: December 21, 2019
Conserved non-coding RNA motifs influence the neuropathogenicity of Simbuviruses: Molecular dissection in the
Laura Bonil1, Laetitia Wiggers1, Hélène Dumont1
1Department of Veterinary Medicine, Namur Research Institute for Life Sciences (NARILIS), Integrated Veterinary Research Unit, University of Namur, Namur, Belgium.
Abstract:
The Simbu serogroup, part of the Peribunyaviridae family, includes arboviruses associated with febrile illnesses in humans and fetal congenital malformations due to viral neurotropism in ruminants. These viruses possess a tripartite, negative-sense RNA genome lacking the poly(A) tail. Notably, the 5' untranslated region (UTR) of the small (S) genomic segment contains conserved RNA elements, including a stem-loop (SL) structure and a sequence-based motif (GC signal) flanking the messenger RNA (mRNA) termination site. Although their functions remain unclear, their conservation and specific location suggest a potential role in mRNA transcription termination and translation initiation. A reverse genetics system for Schmallenberg virus (SBV) was used to create a viral recombinant library bearing deliberate mutations in both motifs. Replication kinetics, S segment transcription termination, and Nucleocapsid protein (N) abundance of rescued virus mutants were evaluated in mammalian and insect cell culture. Virulence was assessed in an immunocompetent mouse model. Characterization of the mutant viruses indicated that the SL structure is essential for viral production, with the stem length as a key feature; more than three complementary base pairs between the stem arms are necessary for replication. A shorter stem length impaired replicative fitness, N protein abundance and altered the mRNA to genomic RNA ratio. Point mutations in the GC signal disrupted proper mRNA termination, thereby limiting viral N protein synthesis and, thus, virion assembly. In vivo, attenuated viruses resulted in lower viral loads, reduced dissemination in mice brains, and improved survival rates compared to wild-type SBV. The GC signal mutants exhibited strong attenuation while still maintaining active transcription. Overall, these findings indicate that the SL and GC signal serve as cis-regulatory elements and are indirect determinants of SBV virulence, regulating viral replication and influencing neuropathogenesis.
Insights
The stem-loop structure and GC signal in Schmallenberg virus are crucial for viral replication and production. Mutations in these elements attenuate the virus, reducing virulence and neuropathogenesis.
Area of Science:
- Virology
- Molecular Biology
- Genetics
Background:
- Simbu serogroup viruses, including Schmallenberg virus (SBV), are arboviruses causing febrile illness and congenital malformations.
- These viruses have a tripartite, negative-sense RNA genome without a poly(A) tail.
- The 5' UTR of the small genomic segment contains conserved RNA elements like the stem-loop (SL) structure and GC signal, potentially regulating transcription and translation.
Purpose of the Study:
- To investigate the function of the SL structure and GC signal in SBV replication, transcription termination, and virulence.
- To elucidate the role of these cis-regulatory elements in viral neuropathogenesis.
Main Methods:
- A reverse genetics system was employed to create SBV mutants with alterations in the SL structure and GC signal.
- Replication kinetics, transcription termination, and Nucleocapsid (N) protein abundance were assessed in cell culture.
- Virulence and neuropathogenesis were evaluated in an immunocompetent mouse model.
Main Results:
- The SL structure, particularly stem length, is essential for SBV production; at least three base pairs are required for replication.
- Shorter SL stems reduced viral fitness, N protein levels, and altered the mRNA/genomic RNA ratio.
- GC signal mutations impaired mRNA termination, limiting N protein synthesis and virion assembly.
- Mutant viruses showed reduced viral loads, brain dissemination, and increased survival rates in mice.
- GC signal mutants were attenuated yet maintained active transcription.
Conclusions:
- The SL structure and GC signal are critical cis-regulatory elements in SBV.
- These elements indirectly determine SBV virulence by regulating viral replication and neuropathogenesis.
- Targeting these elements offers potential strategies for controlling SBV and related viruses.
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