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Updated: Aug 22, 2025

Rearing and Double-stranded RNA-mediated Gene Knockdown in the Hide Beetle, Dermestes maculatus
Published on: December 28, 2016
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.
Abstract:
RNA interference (RNAi) is a powerful innate immune mechanism to knock down translation of specific proteins whose machinery is conserved from plants to mammals. The template used to determine which mRNA's translation is inhibited is dsRNA, whose origin can range from viruses (long dsRNA, ∼100-1000s bp) to host (micro(mi)RNA, ∼20mers). While miRNA-mediated RNAi is well described in vertebrates, the ability of long dsRNA to guide RNAi-mediated translation inhibition in vertebrates is controversial. Indeed, as long dsRNA is so effective at inducing type I interferons (IFNs), and IFNs down-regulate RNAi machinery, it is believed that IFN-competent cells are not capable of using long dsRNA for RNAi. In the present study the ability of long, sequence specific dsRNA to knock down both host protein expression and viral replication is investigated in IFN-competent rainbow trout cells. Before exploring RNAi effects, the optimal dsRNA concentration that would funnel into RNAi without triggering the IFN response was determined. After which, the ability of sequence specific long dsRNA to target knockdown via RNAi was evaluated in: (1) uninfected host cells using inducible luciferase gene expression and (2) host cells infected with chum salmon reovirus (CSV), frog virus 3 (FV3) or viral hemorrhagic septicemia virus genotype IVa (VHSV-IVa). Induced expression studies utilized RTG-P1, a luciferase reporter cell line, and dsRNA containing luciferase sequence (dsRNA-Luc) or a mis-matched sequence (dsRNA-GFP), and subsequent luminescence intensity was measured. Anti-CSV studies used dsRNA-CSVseg7 and dsRNA-CSVseg10 to target CSV segment 7 and CSV segment 10 respectively. Inhibition of virus replication was measured by viral titration and RT-qPCR. Taking advantage of the fact that long dsRNA can accommodate more sequences than miRNAs, the antiviral capability of dsRNA molecules containing both CSV segment 7 and segment 10 simultaneously was also measured. Target sequence appears important, as dsRNA-FV3MCP did not knock down FV3 titres, and while dsRNA-VHSV-N knocked down VHSV-IVa, dsRNA-VHSV-G and dsRNA-VHSV-M did not. This is the first study in fish to provide evidence that sequence specific long dsRNA induces potent gene expression silencing and antiviral responses in vitro via an RNAi-like mechanism instead of an IFN-dependent response.
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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