ArticleParasites & vectors2021
Exploration of binary protein-protein interactions between tick-borne flaviviruses and Ixodes ricinus.
Article in Parasites & vectors, 2021. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 11 papers.
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Who cites it
11 citing papers in PubMed, 14 citations in OpenAlex.
- Tissue tropism and mRNA expression profiles of selected innate immunity-related genes following experimental tick-borne encephalitis virus and louping ill virus infection of sheep.Journal of virology · 2026Article
- Vectorial dynamics underpinning current and future tick-borne virus emergence in Europe.The Journal of general virology · 2024Review
- Tick-borne flavivirus NS5 antagonizes interferon signaling by inhibiting the catalytic activity of TYK2.EMBO reports · 2023Article
- Systems Biology of Virus-Host Protein Interactions: From Hypothesis Generation to Mechanisms of Replication and Pathogenesis.Annual review of virology · 2022Review
- New Cell Lines Derived from European Tick Species.Microorganisms · 2022Article
- Flavivirus-host interactions: an expanding network of proviral and antiviral factors.Current opinion in virology · 2022Review
- Let's Get Physical: Flavivirus-Host Protein-Protein Interactions in Replication and Pathogenesis.Frontiers in microbiology · 2022Review
- Potential Mechanisms of Transmission of Tick-Borne Viruses at the Virus-Tick Interface.Frontiers in microbiology · 2022Review
- What do we know about the microbiome ofFrontiers in cellular and infection microbiology · 2022Review
- Development and Validation of an ELISA for the Detection of Bluetongue Virus Serotype 4-Specific Antibodies.Viruses · 2021Article
- Tick Importin-α Is Implicated in the Interactome and Regulome of the Cofactor Subolesin.Pathogens (Basel, Switzerland) · 2021Article
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Authors and funding
11 authors at 4 institutions in 2 countries.
Funding
Abstract
backgroundLouping ill virus (LIV) and tick-borne encephalitis virus (TBEV) are tick-borne flaviviruses that are both transmitted by the major European tick, Ixodes ricinus. Despite the importance of I. ricinus as an arthropod vector, its capacity to acquire and subsequently transmit viruses, known as vector competence, is poorly understood. At the molecular scale, vector competence is governed in part by binary interactions established between viral and cellular proteins within infected tick cells.
methodsTo investigate virus-vector protein-protein interactions (PPIs), the entire set of open reading frames for LIV and TBEV was screened against an I. ricinus cDNA library established from three embryonic tick cell lines using yeast two-hybrid methodology (Y2H). PPIs revealed for each viral bait were retested in yeast by applying a gap repair (GR) strategy, and notably against the cognate protein of both viruses, to determine whether the PPIs were specific for a single virus or common to both. The interacting tick proteins were identified by automatic BLASTX, and in silico analyses were performed to expose the biological processes targeted by LIV and TBEV.
resultsFor each virus, we identified 24 different PPIs involving six viral proteins and 22 unique tick proteins, with all PPIs being common to both viruses. According to our data, several viral proteins (pM, M, NS2A, NS4A, 2K and NS5) target multiple tick protein modules implicated in critical biological pathways. Of note, the NS5 and pM viral proteins establish PPI with several tumor necrosis factor (TNF) receptor-associated factor (TRAF) proteins, which are essential adaptor proteins at the nexus of multiple signal transduction pathways.
conclusionWe provide the first description of the TBEV/LIV-I. ricinus PPI network, and indeed of any PPI network involving a tick-borne virus and its tick vector. While further investigation will be needed to elucidate the role of each tick protein in the replication cycle of tick-borne flaviviruses, our study provides a foundation for understanding the vector competence of I. ricinus at the molecular level. Indeed, certain PPIs may represent molecular determinants of vector competence of I. ricinus for TBEV and LIV, and potentially for other tick-borne flaviviruses.
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