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Dysregulation of RIG-I activation by picornavirus 3A protein

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Retinoic acid-inducible gene I (RIG-I)-like receptors, including RIG-I and MDA5, are key cytoplasmic pattern-recognition receptors that detect viral RNA in the cytoplasm and trigger the production of interferon (IFN). Among them, MDA5, rather than RIG-I, is considered the primary sensor during picornavirus infection due to the unique features of picornaviral RNA. However, previous studies have indicated that RIG-I also possesses antiviral activity against several picornaviruses, suggesting its potential importance during viral replication. Here, we found that 3A proteins from various picornaviruses, including Senecavirus A (SVA), Enterovirus 71 (EV71), Encephalomyocarditis virus (EMCV), foot-and-mouth disease virus (FMDV), and Coxsackievirus A16 (CA16), directly target RIG-I to suppress RIG-I-like receptor-mediated IFN-β production. Mechanistically, these picornaviral 3A proteins partially share the following similar strategies to dysregulate RIG-I activation: (i) all interact with RIG-I, (ii) EMCV and FMDV 3A reduce RIG-I expression, and (iii) SVA, EV71, EMCV, and FMDV 3A impair the interaction between RIG-I and MAVS by diminishing K63-linked ubiquitination of RIG-I. These findings broaden our understanding of how picornaviruses employ nonstructural proteins to evade innate immune responses during early infection.IMPORTANCEPicornaviruses cause a broad spectrum of human and animal diseases; however, the mechanisms by which they counteract host antiviral defenses remain incompletely understood. Owing to the distinct structural features of picornaviral RNA, MDA5 is widely regarded as the primary sensor mediating antiviral responses during picornavirus infection. However, accumulating evidence suggests that RIG-I also contributes to antiviral defense. Picornaviruses have evolved various means to suppress RIG-I and MDA5 activity, thereby facilitating evasion of the innate immune response and underscoring the importance of RIG-I during picornavirus infection. This study identifies RIG-I as a conserved target of the nonstructural protein 3A from multiple picornaviruses, including Senecavirus A, Enterovirus 71, Encephalomyocarditis virus, foot-and-mouth disease virus, and Coxsackievirus A16, and uncovers both shared and virus-specific strategies that dysregulate RIG-I-mediated interferon production. Collectively, these findings expand our understanding of the antagonistic mechanisms of how picornaviruses manipulate the host innate immune system.

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  • Cite Count Icon 45
  • 10.1016/s0021-9258(17)49923-6
The influenza NS1 protein modulates RIG-I activation via a strain-specific direct interaction with the second CARD of RIG-I
  • Jan 1, 2020
  • Journal of Biological Chemistry
  • Alexander S Jureka + 4 more

A critical role of influenza A virus nonstructural protein 1 (NS1) is to antagonize the host cellular antiviral response. NS1 accomplishes this role through numerous interactions with host proteins, including the cytoplasmic pathogen recognition receptor, retinoic acid–inducible gene I (RIG-I). Although the consequences of this interaction have been studied, the complete mechanism by which NS1 antagonizes RIG-I signaling remains unclear. We demonstrated previously that the NS1 RNA-binding domain (NS1RBD) interacts directly with the second caspase activation and recruitment domain (CARD) of RIG-I. We also identified that a single strain-specific polymorphism in the NS1RBD (R21Q) completely abrogates this interaction. Here we investigate the functional consequences of an R21Q mutation on NS1's ability to antagonize RIG-I signaling. We observed that an influenza virus harboring the R21Q mutation in NS1 results in significant up-regulation of RIG-I signaling. In support of this, we determined that an R21Q mutation in NS1 results in a marked deficit in NS1's ability to antagonize TRIM25-mediated ubiquitination of the RIG-I CARDs, a critical step in RIG-I activation. We also observed that WT NS1 is capable of binding directly to the tandem RIG-I CARDs, whereas the R21Q mutation in NS1 significantly inhibits this interaction. Furthermore, we determined that the R21Q mutation does not impede the interaction between NS1 and TRIM25 or NS1RBD's ability to bind RNA. The data presented here offer significant insights into NS1 antagonism of RIG-I and illustrate the importance of understanding the role of strain-specific polymorphisms in the context of this specific NS1 function. A critical role of influenza A virus nonstructural protein 1 (NS1) is to antagonize the host cellular antiviral response. NS1 accomplishes this role through numerous interactions with host proteins, including the cytoplasmic pathogen recognition receptor, retinoic acid–inducible gene I (RIG-I). Although the consequences of this interaction have been studied, the complete mechanism by which NS1 antagonizes RIG-I signaling remains unclear. We demonstrated previously that the NS1 RNA-binding domain (NS1RBD) interacts directly with the second caspase activation and recruitment domain (CARD) of RIG-I. We also identified that a single strain-specific polymorphism in the NS1RBD (R21Q) completely abrogates this interaction. Here we investigate the functional consequences of an R21Q mutation on NS1's ability to antagonize RIG-I signaling. We observed that an influenza virus harboring the R21Q mutation in NS1 results in significant up-regulation of RIG-I signaling. In support of this, we determined that an R21Q mutation in NS1 results in a marked deficit in NS1's ability to antagonize TRIM25-mediated ubiquitination of the RIG-I CARDs, a critical step in RIG-I activation. We also observed that WT NS1 is capable of binding directly to the tandem RIG-I CARDs, whereas the R21Q mutation in NS1 significantly inhibits this interaction. Furthermore, we determined that the R21Q mutation does not impede the interaction between NS1 and TRIM25 or NS1RBD's ability to bind RNA. The data presented here offer significant insights into NS1 antagonism of RIG-I and illustrate the importance of understanding the role of strain-specific polymorphisms in the context of this specific NS1 function.

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  • Research Article
  • Cite Count Icon 53
  • 10.1128/jvi.02086-19
Foot-and-Mouth Disease Virus 3A Protein Causes Upregulation of Autophagy-Related Protein LRRC25 To Inhibit the G3BP1-Mediated RIG-Like Helicase-Signaling Pathway
  • Mar 31, 2020
  • Journal of Virology
  • Wenping Yang + 8 more

Foot-and-mouth disease virus (FMDV) is one of the most notorious pathogens in the global livestock industry. To establish an infection, FMDV needs to counteract host antiviral responses. Several studies have shown how FMDV suppresses the type I interferon (IFN) response; however, whether FMDV modulates the integrated autophagy and innate immunity remains largely unknown. Here, the porcine Ras-GAP SH3-binding protein 1 (G3BP1) was shown to promote the retinoic acid-inducible gene I (RIG-I)-like helicase (RLH) signaling by upregulating the expression of RIG-I and melanoma differentiation-associated gene 5 (MDA5). FMDV nonstructural protein 3A interacted with G3BP1 to inhibit G3BP1 expression and G3BP1-mediated RLH signaling by upregulating the expression of autophagy-related protein LRRC25. In addition, 3A proteins of other picornaviruses, including Seneca Valley virus (SVV) 3A, enterovirus 71 (EV71) 3A, and encephalomyocarditis virus (EMCV) 3A, also showed similar actions. Taking the data together, we elucidated, for the first time, a novel mechanism by which FMDV has evolved to inhibit IFN signaling and counteract host innate antiviral responses by autophagy.IMPORTANCE We show that foot-and-mouth disease virus (FMDV) 3A inhibits retinoic acid-inducible gene I (RIG-I)-like helicase signaling by degrading G3BP1 protein. Furthermore, FMDV 3A reduces G3BP1 by upregulating the expression of autophagy-related protein LRRC25. Additionally, other picornavirus 3A proteins, such as Seneca Valley virus (SVV) 3A, enterovirus 71 (EV71) 3A, and encephalomyocarditis virus (EMCV) 3A, also degrade G3BP1 by upregulating LRRC25 expression. This study will help us improve the design of current vaccines and aid the development of novel control strategies to combat FMD.

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The Chase for the RIG-I Ligand—Recent Advances
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  • Martin Schlee + 1 more

The Chase for the RIG-I Ligand—Recent Advances

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  • Cite Count Icon 54
  • 10.1074/jbc.m111.229856
Retinoic Acid-inducible Gene I-inducible miR-23b Inhibits Infections by Minor Group Rhinoviruses through Down-regulation of the Very Low Density Lipoprotein Receptor
  • Jul 1, 2011
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  • Ryota Ouda + 6 more

In mammals, viral infections are detected by innate immune receptors, including Toll-like receptor and retinoic acid inducible gene I (RIG-I)-like receptor (RLR), which activate the type I interferon (IFN) system. IFN essentially activates genes encoding antiviral proteins that inhibit various steps of viral replication as well as facilitate the subsequent activation of acquired immune responses. In this study, we investigated the expression of non-coding RNA upon viral infection or RLR activation. Using a microarray, we identified several microRNAs (miRNA) specifically induced to express by RLR signaling. As suggested by Bioinformatics (miRBase Target Data base), one of the RLR-inducible miRNAs, miR-23b, actually knocked down the expression of very low density lipoprotein receptor (VLDLR) and LDLR-related protein 5 (LRP5). Transfection of miR-23b specifically inhibited infection of rhinovirus 1B (RV1B), which utilizes the low density lipoprotein receptor (LDLR) family for viral entry. Conversely, introduction of anti-miRNA-23b enhanced the viral yield. Knockdown experiments using small interfering RNA (siRNA) revealed that VLDLR, but not LRP5, is critical for an efficient infection by RV1B. Furthermore, experiments with the transfection of infectious viral RNA revealed that miR-23b did not affect post-entry viral replication. Our results strongly suggest that RIG-I signaling results in the inhibitions of infections of RV1B through the miR-23b-mediated down-regulation of its receptor VLDLR.

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Rigging Innate Immunity against the Flu
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  • Arthur M Krieg

Rigging Innate Immunity against the Flu

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  • Cite Count Icon 122
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IFI16 directly senses viral RNA and enhances RIG-I transcription and activation to restrict influenza virus infection.
  • May 13, 2021
  • Nature Microbiology
  • Zhimin Jiang + 13 more

The retinoic acid-inducible gene I (RIG-I) receptor senses cytoplasmic viral RNA and activates type I interferons (IFN-I) and downstream antiviral immune responses. How RIG-I binds to viral RNA and how its activation is regulated remains unclear. Here, using IFI16 knockout cells and p204-deficient mice, we demonstrate that the DNA sensor IFI16 enhances IFN-I production to inhibit influenza A virus (IAV) replication. IFI16 positively upregulates RIG-I transcription through direct binding to and recruitment of RNA polymerase II to the RIG-I promoter. IFI16 also binds to influenza viral RNA via its HINa domain and to RIG-I protein with its PYRIN domain, thus promoting IAV-induced K63-linked polyubiquitination and RIG-I activation. Our work demonstrates that IFI16 is a positive regulator of RIG-I signalling during influenza virus infection, highlighting its role in the RIG-I-like-receptor-mediated innate immune response to IAV and other RNA viruses, and suggesting its possible exploitation to modulate the antiviral response.

  • Abstract
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  • Aug 14, 2013
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  • Cite Count Icon 1
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Influenza A Virus NS1 Inhibits RIPLET Activation of Duck RIG-I Signaling.
  • Feb 20, 2026
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  • Mirzabek J Kazbekov + 4 more

Retinoic acid-inducible gene I (RIG-I) is a crucial pattern recognition receptor for detecting viral RNA and initiating an immune response against influenza A viruses (IAVs). The activation of RIG-I in mammalian cells requires ubiquitination by two E3 ubiquitin ligases: TRIM25 and RIPLET. Using dual luciferase assays, we demonstrate that duck RIPLET enhances the activation of RIG-I, driving the IFN-β promoter activity in chicken DF-1 fibroblasts. qPCR analyses show that the co-expression of duck RIG-I and RIPLET significantly upregulates key immune genes and reduces viral RNA transcripts in DF-1 cells challenged with low pathogenic avian influenza (LPAI) H6N2. Co-immunoprecipitation and confocal microscopy studies suggest the interaction and confirm the colocalization of duck RIG-I and RIPLET in the cytoplasm. Further, we show that the non-structural protein 1 (NS1) of IAV, known for its role in immune evasion, suppression, and pathogenicity, from five different strains of IAV (PR8, BC500, CA431, D4AT, and VN1203) can all inhibit duck RIPLET activation of RIG-I, with NS1 from avian strains showing the greatest decrease in IFN-β promoter activity in chicken DF-1 cells. Overall, our research provides valuable insight into the E3 ubiquitin ligases required for RIG-I activation and susceptibility of this pathway to IAV interference across species.

  • Research Article
  • Cite Count Icon 51
  • 10.1074/jbc.ra119.011410
The influenza NS1 protein modulates RIG-I activation via a strain-specific direct interaction with the second CARD of RIG-I.
  • Dec 16, 2019
  • Journal of Biological Chemistry
  • Alexander S Jureka + 4 more

A critical role of influenza A virus nonstructural protein 1 (NS1) is to antagonize the host cellular antiviral response. NS1 accomplishes this role through numerous interactions with host proteins, including the cytoplasmic pathogen recognition receptor, retinoic acid-inducible gene I (RIG-I). Although the consequences of this interaction have been studied, the complete mechanism by which NS1 antagonizes RIG-I signaling remains unclear. We demonstrated previously that the NS1 RNA-binding domain (NS1RBD) interacts directly with the second caspase activation and recruitment domain (CARD) of RIG-I. We also identified that a single strain-specific polymorphism in the NS1RBD (R21Q) completely abrogates this interaction. Here we investigate the functional consequences of an R21Q mutation on NS1's ability to antagonize RIG-I signaling. We observed that an influenza virus harboring the R21Q mutation in NS1 results in significant up-regulation of RIG-I signaling. In support of this, we determined that an R21Q mutation in NS1 results in a marked deficit in NS1's ability to antagonize TRIM25-mediated ubiquitination of the RIG-I CARDs, a critical step in RIG-I activation. We also observed that WT NS1 is capable of binding directly to the tandem RIG-I CARDs, whereas the R21Q mutation in NS1 significantly inhibits this interaction. Furthermore, we determined that the R21Q mutation does not impede the interaction between NS1 and TRIM25 or NS1RBD's ability to bind RNA. The data presented here offer significant insights into NS1 antagonism of RIG-I and illustrate the importance of understanding the role of strain-specific polymorphisms in the context of this specific NS1 function.

  • Peer Review Report
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Decision letter: Identification of an LGP2-associated MDA5 agonist in picornavirus-infected cells
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  • Zhijian J Chen

Decision letter: Identification of an LGP2-associated MDA5 agonist in picornavirus-infected cells

  • Abstract
  • 10.1136/jitc-2024-sitc2024.0789
789 Mechanistic divergence in RIG-I activation by Ac-NM600 and EBRT: exploring STING-Dependent and independent routes for cancer immunotherapy
  • Nov 1, 2024
  • Journal for ImmunoTherapy of Cancer
  • Yujuan Wang + 12 more

BackgroundExternal beam radiation therapy (EBRT) and targeted radiopharmaceutical therapy (RPT) are important in cancer treatment. They cause DNA damage, leading to the accumulation of dsDNA and dsRNA in the cytoplasm....

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  • Research Article
  • Cite Count Icon 40
  • 10.1371/journal.pone.0086968
Activation of Duck RIG-I by TRIM25 Is Independent of Anchored Ubiquitin
  • Jan 23, 2014
  • PLoS ONE
  • Domingo Miranzo-Navarro + 1 more

Retinoic acid inducible gene I (RIG-I) is a viral RNA sensor crucial in defense against several viruses including measles, influenza A and hepatitis C. RIG-I activates type-I interferon signalling through the adaptor for mitochondrial antiviral signaling (MAVS). The E3 ubiquitin ligase, tripartite motif containing protein 25 (TRIM25), activates human RIG-I through generation of anchored K63-linked polyubiquitin chains attached to lysine 172, or alternatively, through the generation of unanchored K63-linked polyubiquitin chains that interact non-covalently with RIG-I CARD domains. Previously, we identified RIG-I of ducks, of interest because ducks are the host and natural reservoir of influenza viruses, and showed it initiates innate immune signaling leading to production of interferon-beta (IFN-β). We noted that K172 is not conserved in RIG-I of ducks and other avian species, or mouse. Because K172 is important for both mechanisms of activation of human RIG-I, we investigated whether duck RIG-I was activated by TRIM25, and if other residues were the sites for attachment of ubiquitin. Here we show duck RIG-I CARD domains are ubiquitinated for activation, and ubiquitination depends on interaction with TRIM25, as a splice variant that cannot interact with TRIM25 is not ubiquitinated, and cannot be activated. We expressed GST-fusion proteins of duck CARD domains and characterized TRIM25 modifications of CARD domains by mass spectrometry. We identified two sites that are ubiquitinated in duck CARD domains, K167 and K193, and detected K63 linked polyubiquitin chains. Site directed mutagenesis of each site alone, does not alter the ubiquitination profile of the duck CARD domains. However, mutation of both sites resulted in loss of all attached ubiquitin and polyubiquitin chains. Remarkably, the double mutant duck RIG-I CARD still interacts with TRIM25, and can still be activated. Our results demonstrate that anchored ubiquitin chains are not necessary for TRIM25 activation of duck RIG-I.

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  • Research Article
  • Cite Count Icon 105
  • 10.1128/jvi.01310-16
Foot-and-Mouth Disease Virus Viroporin 2B Antagonizes RIG-I-Mediated Antiviral Effects by Inhibition of Its Protein Expression
  • Nov 28, 2016
  • Journal of Virology
  • Zixiang Zhu + 12 more

ABSTRACTThe role of retinoic acid-inducible gene I (RIG-I) in foot-and-mouth disease virus (FMDV)-infected cells remains unknown. Here, we showed that RIG-I inhibits FMDV replication in host cells. FMDV infection increased the transcription of RIG-I, while it decreased RIG-I protein expression. A detailed analysis revealed that FMDV leader proteinase (Lpro), as well as 3C proteinase (3Cpro) and 2B protein, decreased RIG-I protein expression. Lpro and 3Cpro are viral proteinases that can cleave various host proteins and are responsible for several of the viral polyprotein cleavages. However, for the first time, we observed 2B-induced reduction of host protein. Further studies showed that 2B-mediated reduction of RIG-I is specific to FMDV, but not other picornaviruses, including encephalomyocarditis virus, enterovirus 71, and coxsackievirus A16. Moreover, we found the decreased protein level of RIG-I is independent of the cleavage of eukaryotic translation initiation factor 4 gamma, the induction of cellular apoptosis, or the association of proteasome, lysosome, and caspase pathways. A direct interaction was observed between RIG-I and 2B. The carboxyl-terminal amino acids 105 to 114 and amino acids 135 to 144 of 2B were essential for the reduction of RIG-I, while residues 105 to 114 were required for the interaction. These data suggest the antiviral role of RIG-I against FMDV and a novel antagonistic mechanism of FMDV that is mediated by 2B protein.IMPORTANCE This study demonstrated that RIG-I could suppress FMDV replication during virus infection. FMDV infection increased the transcriptional expression of RIG-I, while it decreased RIG-I protein expression. FMDV 2B protein interacted with RIG-I and induced reduction of RIG-I. 2B-induced reduction of RIG-I was independent of the induction of the cleavage of eukaryotic translation initiation factor 4 gamma or cellular apoptosis. In addition, proteasome, lysosome, and caspase pathways were not involved in this process. This study provides new insight into the immune evasion mediated by FMDV and identifies 2B as an antagonistic factor for FMDV to evade the antiviral response.

  • Abstract
  • Cite Count Icon 1
  • 10.1016/j.cyto.2014.07.120
113: Deacetylation-dependent regulation of RIG-I activation by the HDAc6 deacetylase mediates innate anti-viral immunity
  • Sep 16, 2014
  • Cytokine
  • Helene Minyi Liu + 5 more

113: Deacetylation-dependent regulation of RIG-I activation by the HDAc6 deacetylase mediates innate anti-viral immunity

  • Research Article
  • Cite Count Icon 75
  • 10.1016/j.ebiom.2016.06.015
Regulation of Retinoic Acid Inducible Gene-I (RIG-I) Activation by the Histone Deacetylase 6
  • Jun 11, 2016
  • EBioMedicine
  • Helene Minyi Liu + 6 more

Regulation of Retinoic Acid Inducible Gene-I (RIG-I) Activation by the Histone Deacetylase 6

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