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Biology subjects

Lacour, S. A.

Publications and source records attributed to Lacour, S. A..

3 recordsLinked to original sources

An RNA-centric interactomics screen identifies novel proviral and antiviral genome binding interactors for tick-borne encephalitis virus

The tick-borne encephalitis virus (TBEV), which belongs to the Orthoflavivirus genus, is a medically significant arbovirus in Europe and Asia. Despite distinct pathobiological outcomes, arboviruses have evolved specific strategies to co-opt cellular factors for replication and immune evasion, that involve both viral proteins and viral RNA. The RNA genome of TBEV, as both the substrate for genome replication and translation and a designated target for innate antiviral immunity, is a nexus for interactions with the proteome of host cells. Nonetheless, the molecular bases of these interactions and their implications for the replicative cycle of TBEV remain poorly understood. To create an inventory of such interactions and gain understanding of their functional import, we have resolved the set of cellular proteins bound to TBEV RNA in infected human cells using an agnostic RNA-centric approach. Functional annotation of the resulting core interactome of 215 human host factors showed that viral RNA is deeply embedded in multiple cellular pathways, including those related to RNA and protein metabolism, cytoskeletal scaffolding, vesicle trafficking and innate antiviral immunity. For selected human interactors, we addressed their impact on TBEV infection in gene knockdown experiments, thereby identifying multiple restriction and dependency factors. These included sensors and effectors of innate immune pathways, as well as epitranscriptomic modifiers. Among the former, the dynamin-like GTPase MX2 protein, an interferon-stimulated gene with antiviral activity against multiple viruses including mosquito-borne orthoflaviviruses, displayed unexpected proviral activity against TBEV and a second tick-borne orthoflavivirus. Among the latter, WDR4, the non-catalytic component of the METTL1-WDR4 methyltransferase complex, emerged as a restriction factor with broad-spectrum activity against arboviruses belonging to multiple families of positive-strand RNA viruses. In conclusion, this first description of the RNA interactome of a tick-borne orthoflavivirus illuminates the molecular interactions that underpin TBEV infection of human cells, which taken together reflect both the common ancestry of tick- and mosquito-borne orthoflaviviruses and their considerable evolutionary divergence.

molecular biology↗

Molecular dialogue between Orthonairovirus and tick: RNA-protein interactome of Hazara virus, a BSL2 model of Crimean-Congo Hemorrhagic Fever virus, in Hyalomma cells

Climate change and ecosystem collapse promote geographic expansion of vector-borne diseases, as witnessed by the recent incursions into Spain of the virus responsible for Crimean-Congo hemorrhagic fever (CCHFV). CCHFV is maintained in a tick-vertebrate cycle, principally involving ticks of the genus Hyalomma. Faced with the spread of Hyalomma ticks, and therefore the threat of a natural introduction of CCHFV into Western Europe, appropriate surveillance tools and control measures need to be implemented. It is both within and by the tick that CCHFV is maintained and spread in the environment. Despite prolonged portage of the virus, the tick is not overtly affected by CHFV infection. One of the prerequisites in conceiving control strategies is to understand the molecular mechanisms that intimately link the virus to its arthropod host. Despite the central role of the tick in the biology of CCHFV, these mechanisms are ill-defined, owing in part to the constraints associated with handling CCHFV-infected ticks in biosafety level 4 containment. In this study, we established the network of interactions between the S segment of the RNA genome Hazara virus (HAZV), a BSL-2 model of CCHFV, and Hyalomma proteins using ChIRP-MS technique. We identified 166 tick proteins, 21 of which have been described as RNA-binding proteins. Gene ontology and pathway enrichment analyses revealed that the S segment RNA interacts predominantly with mitochondrial proteins that belong to various mitochondrial metabolic pathways.

microbiology↗

Integrated protein-protein interaction and RNA interference screens reveal novel restriction and dependency factors for a tick-borne flavivirus in its human host

In Europe, tick-borne encephalitis virus (TBEV) is responsible for severe neurological disease in humans. Like other viruses, TBEV is an obligate intracellular life form whose survival requires subversion of metabolic processes and evasion of anti-viral pathways. This feat is achieved in no small part by binary interactions between dedicated viral proteins and host proteins. Such protein-protein interactions (PPI) constitute molecular determinants of critical pathobiologic traits of viruses, including host-range, zoonotic potential and virulence, and represent realistic targets for anti-viral therapies. To shed light on the pathobiology of TBEV in human, we have resolved the network of PPI established with its human host by interaction proteomics. A high-throughput screen for virus-host PPI was performed involving the complete set of open reading frames of TBEV and the cDNA libraries of Homo sapiens, by means of yeast two-hybrid methodology. We have discovered a large set of virus-host protein-protein interactions concerning 42 different human proteins directly interacting with nine viral proteins. Many of these human interactors have never been linked in the literature to viral infection. The functional significance of the host interactors in viral infection as viral dependency or restriction factors was then characterized in vitro by RNA interference, and their function inferred by bioinformatic analysis. Approximately 40% of the identified human proteins have a significative impact on TBEV viral replication. These are engaged in many biological processes, whose involvement in viral infection is expected for many, but enigmatic for some. Further work will be necessary to gain molecular understanding of how these biological processes support or restrict TBEV replication, and whether they constitute viral vulnerabilities that can be exploited therapeutically.

microbiology↗