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.

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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