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Jansen, P. W.

Publications and source records attributed to Jansen, P. W..

2 recordsLinked to original sources

Induction and suppression of NF-κB signalling by a DNA virus of Drosophila

Interactions between the insect immune system and RNA viruses have been best studied in Drosophila, where RNA interference, NF-O_SCPLOWKC_SCPLOWB and JAK-STAT pathways underlie antiviral immunity. In response to these immune mechanisms, insect viruses have convergently evolved suppressors of RNA interference that act by diverse mechanisms to permit viral replication. However, interactions between the insect immune system and DNA viruses have received less attention, primarily because few Drosophila-infecting DNA virus isolates are available. Here, we use a recently-isolated DNA virus of Drosophila melanogaster, Kallithea virus, to probe known antiviral immune responses and virus evasion tactics in the context of DNA virus infection. We find that fly mutants for RNA interference and Immune deficiency (Imd), but not Toll, pathways are more susceptible to Kallithea virus infection. We identify the Kallithea virus-encoded protein gp83 as a potent inhibitor of Toll signalling, strongly suggesting that Toll mediates antiviral responses during Kallithea virus infection, but that it is suppressed by the virus. Further, we find that Kallithea gp83 inhibits Toll signalling either through NF-O_SCPLOWKC_SCPLOWB transcription factor regulation, or transcriptionally. Together, these results provide a broad description of known antiviral pathways in the context of DNA virus infection and identify the first Toll pathway inhibitor in a Drosophila virus, extending the known diversity of insect virus-encoded immune inhibitors.

microbiology

The Tudor protein Veneno assembles the ping-pong amplification complex that produces viral piRNAs in Aedes mosquitoes

TUDOR-domain containing proteins facilitate PIWI interacting (pi)RNA biogenesis in Drosophila melanogaster and other model organisms. In Aedes aegypti mosquitoes, a somatically active piRNA pathway generates piRNAs from viral RNA during acute infection with cytoplasmic RNA viruses. Viral piRNA biogenesis requires ping-pong amplification by the PIWI proteins Ago3 and Piwi5. We hypothesized that Tudor proteins are required for viral piRNA production and performed a knockdown screen targeting all Ae. aegypti Tudor genes. Knockdown of several Tudor genes resulted in reduced viral piRNA levels, with silencing of AAEL012437 having the strongest effect. This protein, which we named Veneno, associates directly with Ago3 in an sDMA-dependent manner and localizes in cytoplasmic foci reminiscent of piRNA processing granules of Drosophila. Veneno-interactome analyses reveal a network of co-factors including the orthologs of the Drosophila piRNA pathway components Vasa and Yb, which in turn interacts directly with Piwi5. We propose that Veneno assembles a multi-protein complex for ping-pong dependent piRNA production from exogenous viral RNA.

microbiology