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AOUADI, w.

Publications and source records attributed to AOUADI, w..

2 recordsLinked to original sources

RABV L protein plays a role in immune escape through its methyltransferase activity

Viruses in the Mononegavirales order encode a large protein that orchestrates replication, transcription, and the capping of viral RNA. This protein, comprising over 2.000 amino acids, contains an RNA-dependent RNA polymerase, a capping domain, and a methyltransferase (MTase) domain involved in methylating the cap structure. The MTase domain features a conserved K-D-K-E catalytic tetrad -typical of 2'O-methyltransferases-which is essential for methylating viral mRNA caps at both the N7 and 2'O positions. However, the role of these residues in other epitranscriptomic modifications of rabies virus (RABV) RNAs remains poorly characterized. To further explore the role of mRNA cap methylation in the immune evasion strategies of RABV, we investigated the functional contribution of the K-D-K-E motif within the MTase domain, using the Thai isolate as a model. Using reverse genetics, we demonstrated that the mutation K1830R in the K-D-K-E tetrad of the Tha MTase domain induces changes in the methylation landscape of viral mRNAs and, intriguingly, of host mRNAs. In addition, viruses harbouring the K1830R mutation are more sensitive to interferon- and exhibit a less pathogenic phenotype in vitro and in vivo compared to the wild-type virus. Overall, these results suggest that the regulation of viral and cellular RNA methylation landscapes plays a crucial role in controlling RABV infection. Although the exact role of these epitranscriptomic modifications is not yet fully understood, some of these methylations appear to have proviral effects and enhance viral propagation by allowing RABV to efficiently evade the hosts antiviral response. ImportanceThis study highlights the pivotal role of the K-D-K-E catalytic domain included in the methyltransferase domain of the large protein of Rabies virus, by modelling viral RNAs with epitranscriptomic changes. For the first time, we identify specific methylations on the viral RNA, such as 2-O and m6A methylations, which seem to enable the virus to mask its RNA and evade detection by the hosts pattern recognition receptors. These epitranscriptomic modifications affect not only viral RNAs but also cellular RNAs, underscoring a complex interplay between viral and host mechanisms. We further demonstrate that RABV harbouring an altered K-D-R-E catalytic domain, exhibit differential methylation patterns correlated with increased sensitivity to IFN and lower pathogenicity. This emphasizes the importance of this domain in virulence and immune evasion.

microbiology↗

Recognition of copy-back defective interfering rabies virus genomes by RIG-I triggers the antiviral response against vaccine strains

Rabies virus (RABV) is a lethal neurotropic virus that causes 60,000 human deaths every year around the world. A typical feature of RABV infection is the suppression of type I and III interferon (IFN)-mediated antiviral response. However, molecular mechanisms leading to RABV sensing by RIG-I-like receptors (RLR) to initiate IFN signaling remain elusive. Here, we showed that RABV RNAs are recognized by RIG-I (retinoic acid-inducible gene I) sensor resulting in an IFN response of the infected cells but that this global feature was differently modulated according to the type of RABV used. RNAs from pathogenic RABV strain, THA, were poorly detected in the cytosol by RIG-I and therefore mediated a weak antiviral response. On the opposite, we revealed a strong interferon activity triggered by the RNAs of the attenuated RABV vaccine SAD strain mediated by RIG-I. Using next-generation sequencing (NGS) combined with bioinformatics tools, we characterized two major 5copy-back defective interfering (5cb DI) genomes generated during SAD replication. Furthermore, we identified a specific interaction of 5cb DI genomes and RIG-I that correlated with a high stimulation of the type I IFN signaling. This study indicates that RNAs from a wild-type RABV poorly activate the RIG-I pathway, while the presence of 5cb DIs in vaccine SAD strain serves as an intrinsic adjuvant that strengthens its efficiency by enhancing RIG-I detection and therefore strongly stimulates the IFN response. HighlightsO_LIRABV pathogenic strain replication in vitro is characterized by the absence of defective interfering genomes thus induces a weak RLR-mediated innate immunity antiviral response. C_LIO_LIRABV vaccine attenuated strain shows a high release of 5 copy-back defective interfering genomes during replication in vitro and therefore enhances a strong antiviral response upon infection. C_LIO_LIRIG-I is the main sensor for RABV RNA detection within cells. C_LI

microbiology↗