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dsRNA sensing during viral infection: lessons from plants, worms, insects, and mammals
Isaque João da Silva de Faria1, Roenick Proveti Olmo, Emanuele Guimarães Silva
1Department of Biochemistry and Immunology, Universidade Federal de Minas Gerais, Belo Horizonte, Brazil.
Abstract:
Host defense systems often rely on direct and indirect pattern recognition to sense the presence of invading pathogens. Patterns can be molecules directly produced by the pathogen or indirectly generated by changes in host parameters as a consequence of infection. Viruses are intracellular pathogens that hijack the cellular machinery to synthesize their own molecules making direct recognition of viral molecules a great challenge. Antiviral systems in prokaryotes and eukaryotes commonly exploit aberrant nucleic acid sensing to recognize virus infection as host and viral nucleic acid metabolism can greatly differ. Indeed, the generation of dsRNA is often associated with viral infection. In this review, we discuss current knowledge on the mechanisms of viral dsRNA sensing utilized by 2 important antiviral defense systems, RNA interference (RNAi) and the vertebrate immune system. The major viral sensors of the vertebrate immune systems are RIG-like receptors, while RNAi pathways depend on Dicer proteins. These 2 families of sensors share a similar helicase domain with high specificity for dsRNA, which is necessary, but not sufficient for efficient recognition by these receptors. Additional intrinsic features to the dsRNA molecule are also necessary for activation of antiviral systems. Studies utilizing synthetic ligands, in vitro biochemistry and reporter systems have greatly helped increase our knowledge on intrinsic features of dsRNA recognition. However, characteristics such as subcellular localization are extrinsic to the dsRNA itself, but certainly influence the recognition in vivo. Thus, mechanisms of viral dsRNA recognition must address how cellular sensors are recruited to nucleic acids or vice versa. Accessory proteins are likely important for in vivo recognition of extrinsic features of viral RNA, but have mostly remained undiscovered due to the limitations of previous strategies. Hence, the identification of novel components of antiviral systems must take into account the complexities involved in viral recognition in vivo.
Insights
Viral infections are detected by sensing double-stranded RNA (dsRNA). Both RNA interference (RNAi) and vertebrate immune systems use specific sensors like Dicer and RIG-like receptors to identify viral dsRNA, crucial for antiviral defense.
Area of Science:
- Immunology
- Molecular Biology
- Virology
Background:
- Host defense relies on pathogen pattern recognition.
- Viruses, as intracellular pathogens, present challenges for direct molecular recognition.
- Aberrant nucleic acid sensing, particularly of double-stranded RNA (dsRNA), is a key antiviral strategy.
Purpose of the Study:
- To review mechanisms of viral dsRNA sensing in RNA interference (RNAi) and vertebrate immune systems.
- To highlight similarities and differences in dsRNA recognition by Dicer proteins and RIG-like receptors.
- To discuss the importance of intrinsic and extrinsic features of dsRNA for recognition.
Main Methods:
- Review of current knowledge on dsRNA sensing pathways.
- Analysis of studies using synthetic ligands, in vitro biochemistry, and reporter systems.
- Discussion of in vivo recognition complexities, including subcellular localization and accessory proteins.
Main Results:
- Both RNAi and vertebrate immune systems utilize dsRNA sensors with a conserved helicase domain.
- Efficient dsRNA recognition requires both the helicase domain and specific intrinsic features of the dsRNA molecule.
- Subcellular localization and accessory proteins are critical extrinsic factors influencing in vivo dsRNA recognition.
Conclusions:
- Viral dsRNA recognition involves complex interactions between sensors and nucleic acids.
- Novel antiviral components require consideration of in vivo recognition complexities.
- Understanding these mechanisms is vital for developing effective antiviral strategies.
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