6533b831fe1ef96bd1299ad8

RESEARCH PRODUCT

TLR7 controls VSV replication in CD169(+) SCS macrophages and associated viral neuroinvasion

Melanie GuderianBjörn E. ClausenMarcela FrancozoVikas DuhanVishal KhairnarFranz PutturMarc LindenbergUlrich KalinkeGulhas SolmazMaxine SwallowHermann WagnerBurkhard LudewigTim SparwasserTim SparwasserKarl S. Lang

subject

lcsh:Immunologic diseases. Allergy0301 basic medicinevirusesImmunologyMedizinDENDRITIC CELLSRIG-IACTIVATION03 medical and health sciences0302 clinical medicinesubcapsular sinus macrophagesSUBCAPSULAR SINUS MACROPHAGESImmunitySIMULIUM-VITTATUM DIPTERAINFECTIONImmunology and Allergyinnate immunityvirus replicationHost factorconditional knock-out miceInnate immune systemScience & TechnologyLYMPH-NODESbiologysubcutaneous infectionPattern recognition receptorpattern recognition receptorsvirus diseasesTLR7VESICULAR STOMATITIS-VIRUSbiology.organism_classificationVirologyddc:Toll-like receptor 7stomatognathic diseases030104 developmental biologyViral replicationVesicular stomatitis virusNEW-JERSEY SEROTYPEINNATE IMMUNITYvesicular stomatitis viruslcsh:RC581-607Viral loadLife Sciences & Biomedicine030215 immunology

description

Vesicular stomatitis virus (VSV) is an insect-transmitted rhabdovirus that is neurovirulent in mice. Upon peripheral VSV infection, CD169+ subcapsular sinus (SCS) macrophages capture VSV in the lymph, support viral replication, and prevent CNS neuroinvasion. To date, the precise mechanisms controlling VSV infection in SCS macrophages remain incompletely understood. Here, we show that Toll-like receptor-7 (TLR7), the main sensing receptor for VSV, is central in controlling lymph-borne VSV infection. Following VSV skin infection, TLR7−/− mice display significantly less VSV titers in the draining lymph nodes (dLN) and viral replication is attenuated in SCS macrophages. In contrast to effects of TLR7 in impeding VSV replication in the dLN, TLR7−/− mice present elevated viral load in the brain and spinal cord highlighting their susceptibility to VSV neuroinvasion. By generating novel TLR7 floxed mice, we interrogate the impact of cell-specific TLR7 function in anti-viral immunity after VSV skin infection. Our data suggests that TLR7 signaling in SCS macrophages supports VSV replication in these cells, increasing LN infection and may account for the delayed onset of VSV-induced neurovirulence observed in TLR7−/− mice. Overall, we identify TLR7 as a novel and essential host factor that critically controls anti-viral immunity to VSV. Furthermore, the novel mouse model generated in our study will be of valuable importance to shed light on cell-intrinsic TLR7 biology in future studies. CA extern

10.3389/fimmu.2019.00466http://hdl.handle.net/10044/1/70804