Inhibition of Ongoing Influenza A Virus Replication Reveals Different Mechanisms of RIG-I Activation
Author(s) -
Guanqun Liu,
Yao Lu,
Qiang Liu,
Yan Zhou
Publication year - 2019
Publication title -
journal of virology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.617
H-Index - 292
eISSN - 1070-6321
pISSN - 0022-538X
DOI - 10.1128/jvi.02066-18
Subject(s) - biology , viral replication , rig i , influenza a virus , rna , polymerase , viral structural protein , virology , microbiology and biotechnology , nucleoprotein , rna silencing , viral entry , ribonucleoprotein , rna polymerase , small interfering rna , rna dependent rna polymerase , virus , rna interference , gene , genetics
The induction of an IFN response by IAV is mainly mediated by the RNA sensor RIG-I. The physiological RIG-I ligands produced during IAV infection are not fully elucidated. Cellular constraints leading to the inhibition of ongoing viral replication likely potentiate an erroneous viral polymerase producing aberrant viral RNA species activating RIG-I. Here, we demonstrate that RIG-I activation during chemical inhibition of continuous viral protein synthesis is attributable to the incoming DI genomes. Erroneous viral replication driven by NP deprivation promotes the generation of RIG-I-activating aberrant viral RNA, but their nature is likely to be distinct from that of DI RNA. Our results thus reveal distinct mechanisms of RIG-I activation by IAV under cellular constraints impeding ongoing viral replication. A better understanding of RIG-I sensing of IAV infection provides insight into the development of novel interventions to combat influenza virus infection.
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