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5′-triphosphate RNA requires base-paired structures to activate antiviral signaling via RIG-I

2009/07/02 by Andreas Schmidt, Tobias Schwerd, Wolfgang Hamm +9 · 2 citations
Immunology and Microbiology · Medicine · #interferon and immune responses #Immune Response and Inflammation #Cytokine Signaling Pathways and Interactions

paper · doi:10.1073/pnas.0900971106

openalex publication_date 2009/07/02 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/02

Abstract

The ATPase retinoid acid-inducible gene (RIG)-I senses viral RNA in the cytoplasm of infected cells and subsequently activates cellular antiviral defense mechanisms. RIG-I recognizes molecular structures that discriminate viral from host RNA. Here, we show that RIG-I ligands require base-paired structures in conjunction with a free 5'-triphosphate to trigger antiviral signaling. Hitherto unavailable chemically synthesized 5'-triphosphate RNA ligands do not trigger RIG-I-dependent IFN production in cells, and they are unable to trigger the ATPase activity of RIG-I without a base-paired stretch. Consistently, immunostimulatory RNA from cells infected with a virus recognized by RIG-I is sensitive to double-strand, but not single-strand, specific RNases. In vitro, base-paired stretches and the 5'-triphosphate bind to distinct sites of RIG-I and synergize to trigger the induction of signaling competent RIG-I multimers. Strengthening our model of a bipartite molecular pattern for RIG-I activation, we show that the activity of supposedly "single-stranded" 5'-triphosphate RNAs generated by in vitro transcription depends on extended and base-paired by-products inadvertently, but commonly, produced by this method. Together, our findings accurately define a minimal molecular pattern sufficient to activate RIG-I that can be found in viral genomes or transcripts.

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