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Cell-cell fusion induced by measles virus amplifies the type I interferon response
F Herschke1, S Plumet, T Duhen
1Interactions Virus Cellule-Hôte, CNRS, Université de Lyon 1, FRE3011, IFR 62 Laennec, 69372 Lyon Cedex 08, France.
Abstract:
Measles virus (MeV) infection is characterized by the formation of multinuclear giant cells (MGC). We report that beta interferon (IFN-beta) production is amplified in vitro by the formation of virus-induced MGC derived from human epithelial cells or mature conventional dendritic cells. Both fusion and IFN-beta response amplification were inhibited in a dose-dependent way by a fusion-inhibitory peptide after MeV infection of epithelial cells. This effect was observed at both low and high multiplicities of infection. While in the absence of virus replication, the cell-cell fusion mediated by MeV H/F glycoproteins did not activate any IFN-alpha/beta production, an amplified IFN-beta response was observed when H/F-induced MGC were infected with a nonfusogenic recombinant chimerical virus. Time lapse microscopy studies revealed that MeV-infected MGC from epithelial cells have a highly dynamic behavior and an unexpected long life span. Following cell-cell fusion, both of the RIG-I and IFN-beta gene deficiencies were trans complemented to induce IFN-beta production. Production of IFN-beta and IFN-alpha was also observed in MeV-infected immature dendritic cells (iDC) and mature dendritic cells (mDC). In contrast to iDC, MeV infection of mDC induced MGC, which produced enhanced amounts of IFN-alpha/beta. The amplification of IFN-beta production was associated with a sustained nuclear localization of IFN regulatory factor 3 (IRF-3) in MeV-induced MGC derived from both epithelial cells and mDC, while the IRF-7 up-regulation was poorly sensitive to the fusion process. Therefore, MeV-induced cell-cell fusion amplifies IFN-alpha/beta production in infected cells, and this indicates that MGC contribute to the antiviral immune response.
Insights
Measles virus (MeV) infection forms multinuclear giant cells (MGC) that amplify beta interferon (IFN-beta) production. This MGC-mediated amplification enhances the antiviral immune response, highlighting a novel role for giant cells in innate immunity.
Area of Science:
- Virology
- Immunology
- Cell Biology
Background:
- Measles virus (MeV) infection is known to induce the formation of multinuclear giant cells (MGC).
- The role of these MGC in the host's immune response, particularly in interferon production, remains incompletely understood.
Purpose of the Study:
- To investigate the impact of MeV-induced MGC formation on interferon-alpha/beta (IFN-α/β) production.
- To elucidate the mechanisms by which MGC influence the innate antiviral immune response.
Main Methods:
- In vitro infection of human epithelial cells and dendritic cells (immature and mature) with MeV.
- Use of fusion-inhibitory peptides to block MGC formation.
- Time-lapse microscopy to observe MGC behavior.
- Gene deficiency complementation studies (RIG-I, IFN-β).
- Analysis of interferon regulatory factor (IRF-3, IRF-7) nuclear localization.
Main Results:
- MeV-induced MGC formation significantly amplifies IFN-β production in epithelial cells and mature dendritic cells.
- Fusion inhibition dose-dependently reduces both MGC formation and IFN-β amplification.
- MeV-infected MGC exhibit dynamic behavior and extended lifespan.
- IFN-β production is enhanced in MGC through sustained IRF-3 nuclear localization, independent of IRF-7.
Conclusions:
- MeV-induced cell-cell fusion leading to MGC formation amplifies IFN-α/β production.
- These findings suggest that MGC play a crucial role in bolstering the antiviral immune response against measles virus infection.
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