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Biology subjects

Caval, V.

Publications and source records attributed to Caval, V..

3 recordsLinked to original sources

Powassan Virus NS5 Antagonizes TYK2-Mediated Immune Signaling Pathways

Powassan virus (POWV) is an emerging neurotropic tick-borne flavivirus, yet the mechanisms by which POWV evades host antiviral immunity remain poorly defined. Here, we identify multiple mechanisms of POWV innate immune antagonism with the viral polymerase NS5 protein as a central inhibitor of cytokine signaling. Both POWV lineages potently inhibited type I interferon (IFN) signaling, and NS5 expression suppressed signaling and downstream interferon-stimulated gene expression. Affinity purification-mass spectrometry identified the host kinase TYK2 as a conserved NS5 interactor. POWV NS5 binds the TYK2 kinase domain through a discrete interface within the RNA-dependent RNA polymerase (RdRp) region between catalytic motifs B and C and inhibits TYK2 phosphorylation. Disruption of this interface abrogated TYK2 binding and reduced NS5-mediated IFN antagonism, while revealing additional TYK2-independent mechanisms of immune suppression. POWV NS5 also inhibited TYK2-dependent IFN-{lambda} and IL-12 signaling, demonstrating that its immune antagonism extends beyond type I IFN. Together, these findings identify TYK2 as a central target of POWV immune evasion and implicate the variable RdRp B-C region as an interface for flavivirus-host interactions. More broadly, our results reveal how POWV can coordinately suppress multiple antiviral cytokine pathways and provide insight into mechanisms that may shape tick-borne flavivirus host adaptation and pathogenesis.

microbiology↗

The type I and III interferon responses restrict infection with tick-borne orthoflaviviruses through IFI6

Tick-borne orthoflaviviruses (TBOVs) are a growing global health concern. Several representatives of this viral family cause fatal disease in humans with increasing case numbers throughout the last decades. The innate immune response, especially interferon (IFN)-dependent signaling, is an essential part of the human defense system that counteracts infection with TBOVs and other viruses. Even though they activate the same signaling cascade, IFNs belonging to the type I and III families trigger differing gene expression patterns. Which genes the two IFN families induce to restrict infection with TBOVs remains poorly characterized. Here we show that type I and III IFNs are both capable of restricting TBOV infection of human cell lines in a cell type-specific manner. Infection of C57BL/6J mice with knockouts for either IFN type I or III receptors further underscored the critical role of IFN signaling in controlling TBOV replication in vivo. To assess the contribution of single genes to controlling TBOV infection in human cells, we used a CRISPR/Cas9-KO-based screening approach. This strategy identified IFI6 as a central player for IFN type I- and III-driven responses against TBOVs. We further defined IFI6 as an ER-resident protein that restricts TBOV replication at a post-entry step. Our work thus opens new perspectives for targeting weak points in the life cycle of TBOVs and other orthoflaviviruses, potentially paving the way for the development of new antiviral therapeutics. One Sentence SummaryType I and III interferons are crucial for protection against tick-borne orthoflavivirus infection in vitro and in vivo, both relying on IFI6 as a main antiviral effector.

microbiology↗

Tick-borne flavivirus NS5 antagonizes interferon signaling by inhibiting the catalytic activity of TYK2

The mechanisms utilized by different flaviviruses to evade antiviral functions of interferons are varied and incompletely understood. Using virological approaches, biochemical assays and mass spectrometry analysis, we report here that the NS5 protein of tick-borne encephalitis virus (TBEV) and Louping Ill virus (LIV), two related tick-borne flaviviruses, antagonize JAK-STAT signaling through interactions with tyrosine kinase 2 (TYK2). Co-immunoprecipitation (co-IP) experiments, yeast gap-repair assays, computational protein-protein docking and functional studies identified a stretch of 10 residues of the RNA dependent RNA polymerase domain of tick-borne flavivirus NS5, but not mosquito-borne NS5, that is critical for interaction with the TYK2 kinase domain. Additional co-IP assays performed with several TYK2 orthologs revealed that the interaction was conserved across mammal species. In vitro kinase assays showed that TBEV and LIV NS5 reduced the catalytic activity of TYK2. Our results thus illustrate a novel mechanism by which viruses suppress the interferon response. TeaserInhibition of the catalytic activity of a key kinase of the JAK/STAT pathway by a viral protein

microbiology↗