4.7 Article

Self-assembling short immunostimulatory duplex RNAs with broad-spectrum antiviral activity

Journal

MOLECULAR THERAPY-NUCLEIC ACIDS
Volume 29, Issue -, Pages 923-940

Publisher

CELL PRESS
DOI: 10.1016/j.omtn.2022.08.031

Keywords

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Funding

  1. NIH [NCATS UH3-HL-141797]
  2. Defense Advanced Research Projects Agency [HR00111920008, HR0011-20-2-0040]

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This study describes a new class of immunostimulatory short duplex RNAs that can induce the production of interferons and exhibit broad-spectrum inhibition against respiratory viruses with pandemic potential. These short double-stranded RNAs are easily manufacturable and have the potential to serve as broad-spectrum antiviral therapeutics.
The current coronavirus disease 2019 (COVID-19) pandemic highlights the need for broad-spectrum antiviral therapeutics. Here we describe a new class of self-assembling immunostimulatory short duplex RNAs that potently induce production of type I and type III interferon (IFN-I and IFN-III). These RNAs require a minimum of 20 base pairs, lack any sequence or structural characteristics of known immunostimulatory RNAs, and instead require a unique sequence motif (sense strand, 5 ' -C; antisense strand, 3 ' -GGG) that mediates end-to -end dimer self-assembly. The presence of terminal hydroxyl or monophosphate groups, blunt or overhanging ends, or terminal RNA or DNA bases did not affect their ability to induce IFN. Unlike previously described immunostimulatory small interfering RNAs (siRNAs), their activity is independent of Toll-like receptor (TLR) 7/8, but requires the RIG-I/IRF3 pathway that induces a more restricted antiviral response with a lower proinflammatory signature compared with immunostimulant poly(I:C). Immune stimulation mediated by these duplex RNAs results in broad-spectrum inhibition of infections by many respiratory viruses with pandemic potential, including severe acute respiratory syndrome coronavirus (SARS-CoV)-2, SARS-CoV, Middle East respiratory syndrome coronavirus (MERS-CoV), human coronavirus (HCoV)-NL63, and influenza A virus in cell lines, human lung chips that mimic organ-level lung pathophysiology, and a mouse SARS-CoV-2 infection model. These short double-stranded RNAs (dsRNAs) can be manufactured easily, and thus potentially could be harnessed to produce broad-spectrum antiviral therapeutics.

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