Using long, sequence-specific dsRNA to knockdown inducible protein expression and virus production via an RNAi-like

Sarah K W Au1, Iliana V Portelli2, Stephanie J DeWitte-Orr1

  • 1Department of Biology, Wilfrid Laurier University, Waterloo, ON, Canada; Department of Health Sciences, Wilfrid Laurier University, Waterloo, ON, Canada.

Insights

This study shows that long, sequence-specific dsRNA can trigger RNA interference (RNAi) for gene silencing and antiviral defense in fish cells, even in the presence of interferon responses.

Area of Science:

  • Molecular Biology
  • Immunology
  • Virology

Background:

  • RNA interference (RNAi) is a conserved mechanism for gene silencing.
  • While microRNA (miRNA)-mediated RNAi is understood in vertebrates, the role of long dsRNA in RNAi is debated due to potential interferon (IFN) induction.
  • Interferon-competent cells are thought to be incapable of using long dsRNA for RNAi.

Purpose of the Study:

  • To investigate the potential of long, sequence-specific dsRNA to induce gene silencing and antiviral responses in IFN-competent rainbow trout cells.
  • To determine the optimal dsRNA concentration for RNAi without triggering the IFN response.
  • To evaluate the efficacy of dsRNA in targeting host gene expression and viral replication.

Main Methods:

  • Rainbow trout cells (RTG-P1) were used to assess dsRNA effects.
  • Optimal dsRNA concentration was determined to avoid IFN response.
  • Sequence-specific dsRNA targeting luciferase, chum salmon reovirus (CSV), frog virus 3 (FV3), and viral hemorrhagic septicemia virus (VHSV) were tested.
  • Gene knockdown was measured by luminescence, viral titration, and RT-qPCR.

Main Results:

  • Long, sequence-specific dsRNA effectively silenced host gene expression (luciferase) without inducing IFN response at optimal concentrations.
  • dsRNA targeting CSV segments 7 and 10 showed potent antiviral activity, including a combined dsRNA targeting both segments.
  • The efficacy of dsRNA varied depending on the target virus and specific sequence (e.g., dsRNA-FV3MCP was ineffective, dsRNA-VHSV-N was effective).

Conclusions:

  • Sequence-specific long dsRNA can induce potent gene expression silencing in fish cells via an RNAi-like mechanism.
  • This study provides the first evidence in fish that long dsRNA can elicit antiviral responses in vitro, independent of an IFN-dependent pathway.
  • Target sequence specificity is crucial for effective dsRNA-mediated gene silencing and antiviral activity in fish.

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