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Differential Antagonism of Human Innate Immune Responses by Tick-Borne Phlebovirus Nonstructural Proteins
Veronica V Rezelj1, Ping Li1, Vidyanath Chaudhary2
1MRC-University of Glasgow Centre for Virus Research, Glasgow, Scotland, United Kingdom.
Abstract:
In recent years, several newly discovered tick-borne viruses causing a wide spectrum of diseases in humans have been ascribed to the Phlebovirus genus of the Bunyaviridae family. The nonstructural protein (NSs) of bunyaviruses is the main virulence factor and interferon (IFN) antagonist. We studied the molecular mechanisms of IFN antagonism employed by the NSs proteins of human apathogenic Uukuniemi virus (UUKV) and those of Heartland virus (HRTV) and severe fever with thrombocytopenia syndrome virus (SFTSV), both of which cause severe disease. Using reporter assays, we found that UUKV NSs weakly inhibited the activation of the beta interferon (IFN-β) promoter and response elements. UUKV NSs weakly antagonized human IFN-β promoter activation through a novel interaction with mitochondrial antiviral-signaling protein (MAVS), confirmed by coimmunoprecipitation and confocal microscopy studies. HRTV NSs efficiently antagonized both IFN-β promoter activation and type I IFN signaling pathways through interactions with TBK1, preventing its phosphorylation. HRTV NSs exhibited diffused cytoplasmic localization. This is in comparison to the inclusion bodies formed by SFTSV NSs. HRTV NSs also efficiently interacted with STAT2 and impaired IFN-β-induced phosphorylation but did not affect STAT1 or its translocation to the nucleus. Our results suggest that a weak interaction between STAT1 and HRTV or SFTSV NSs may explain their inability to block type II IFN signaling efficiently, thus enabling the activation of proinflammatory responses that lead to severe disease. Our findings offer insights into how pathogenicity may be linked to the capacity of NSs proteins to block the innate immune system and illustrate the plethora of viral immune evasion strategies utilized by emerging phleboviruses. IMPORTANCE Since 2011, there has been a large expansion in the number of emerging tick-borne viruses that have been assigned to the Phlebovirus genus. Heartland virus (HRTV) and SFTS virus (SFTSV) were found to cause severe disease in humans, unlike other documented tick-borne phleboviruses such as Uukuniemi virus (UUKV). Phleboviruses encode nonstructural proteins (NSs) that enable them to counteract the human innate antiviral defenses. We assessed how these proteins interacted with the innate immune system. We found that UUKV NSs engaged with innate immune factors only weakly, at one early step. However, the viruses that cause more severe disease efficiently disabled the antiviral response by targeting multiple components at several stages across the innate immune induction and signaling pathways. Our results suggest a correlation between the efficiency of the virus protein/host interaction and severity of disease.
Insights
Emerging tick-borne phleboviruses use nonstructural NSs proteins to evade the innate immune system. Viruses causing severe disease, like Heartland virus (HRTV) and SFTSV, more effectively disable antiviral responses than less pathogenic viruses like Uukuniemi virus (UUKV).
Area of Science:
- Virology
- Immunology
- Molecular Biology
Background:
- Several newly discovered tick-borne viruses belong to the Phlebovirus genus, causing diverse human diseases.
- The nonstructural protein (NSs) of bunyaviruses acts as a key virulence factor and interferon (IFN) antagonist.
Purpose of the Study:
- To investigate the molecular mechanisms of IFN antagonism by NSs proteins from Uukuniemi virus (UUKV), Heartland virus (HRTV), and severe fever with thrombocytopenia syndrome virus (SFTSV).
- To correlate the efficiency of NSs protein interactions with host innate immune factors to disease severity.
Main Methods:
- Reporter assays to assess IFN-β promoter activation.
- Coimmunoprecipitation and confocal microscopy to study protein interactions.
- Analysis of STAT1 and STAT2 phosphorylation and nuclear translocation.
Main Results:
- UUKV NSs showed weak antagonism of IFN-β promoter activation via interaction with MAVS.
- HRTV NSs efficiently antagonized IFN-β promoter and type I IFN signaling by inhibiting TBK1 phosphorylation and interacting with STAT2.
- SFTSV NSs formed inclusion bodies, while HRTV NSs showed diffused cytoplasmic localization; both viruses weakly interacted with STAT1, potentially limiting type II IFN signaling blockade.
Conclusions:
- The efficiency of NSs proteins in blocking innate immune pathways correlates with the severity of disease caused by emerging phleboviruses.
- Distinct NSs protein interactions with host factors like MAVS, TBK1, and STATs contribute to varied pathogenic potentials.
- Understanding these viral immune evasion strategies is crucial for addressing emerging tick-borne phlebovirus threats.

