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1.
Nucleic Acids Res ; 52(9): 5209-5225, 2024 May 22.
Article in English | MEDLINE | ID: mdl-38636948

ABSTRACT

RNA silencing is a post-transcriptional gene-silencing mechanism mediated by microRNAs (miRNAs). However, the regulatory mechanism of RNA silencing during viral infection is unclear. TAR RNA-binding protein (TRBP) is an enhancer of RNA silencing that induces miRNA maturation by interacting with the ribonuclease Dicer. TRBP interacts with a virus sensor protein, laboratory of genetics and physiology 2 (LGP2), in the early stage of viral infection of human cells. Next, it induces apoptosis by inhibiting the maturation of miRNAs, thereby upregulating the expression of apoptosis regulatory genes. In this study, we show that TRBP undergoes a functional conversion in the late stage of viral infection. Viral infection resulted in the activation of caspases that proteolytically processed TRBP into two fragments. The N-terminal fragment did not interact with Dicer but interacted with type I interferon (IFN) signaling modulators, such as protein kinase R (PKR) and LGP2, and induced ER stress. The end results were irreversible apoptosis and suppression of IFN signaling. Our results demonstrate that the processing of TRBP enhances apoptosis, reducing IFN signaling during viral infection.


Subject(s)
Apoptosis , Caspases , RNA-Binding Proteins , Humans , Caspases/metabolism , Cell Line , eIF-2 Kinase/metabolism , eIF-2 Kinase/genetics , Endoplasmic Reticulum Stress/genetics , HEK293 Cells , HeLa Cells , Interferon Type I/metabolism , Interferon Type I/genetics , MicroRNAs/metabolism , MicroRNAs/genetics , Ribonuclease III/metabolism , Ribonuclease III/genetics , RNA-Binding Proteins/metabolism , RNA-Binding Proteins/genetics , Signal Transduction , Virus Diseases/genetics , Virus Diseases/metabolism
3.
Sci Rep ; 13(1): 6318, 2023 04 18.
Article in English | MEDLINE | ID: mdl-37072508

ABSTRACT

Retinoic acid-inducible gene I (RIG-I) is the most front-line cytoplasmic viral RNA sensor and induces antiviral immune responses. RIG-I recognizes short double-stranded (dsRNA) (< 500 bp), but not long dsRNA (> 500 bp) to trigger antiviral signaling. Since RIG-I is capable of binding with dsRNA irrespective of size, length-dependent RIG-I signaling remains elusive. Here, we demonstrated that RIG-I bound to long dsRNA with slow kinetics. Remarkably, RIG-I/short dsRNA complex efficiently dissociated in an ATP hydrolysis-dependent manner, whereas RIG-I/long dsRNA was stable and did not dissociate. Our study suggests that the dissociation of RIG-I from RIG-I/dsRNA complex could be a step for efficient antiviral signaling. Dissociated RIG-I exhibited homo-oligomerization, acquiring ability to physically associate with MAVS, and biological activity upon introduction into living cells. We herein discuss common and unique mechanisms of viral dsRNA recognition by RIG-I and MDA5.


Subject(s)
DEAD-box RNA Helicases , RNA, Double-Stranded , DEAD Box Protein 58/metabolism , DEAD-box RNA Helicases/genetics , Interferon-Induced Helicase, IFIH1/genetics , RNA, Viral/metabolism , Signal Transduction , Humans
4.
J Virol ; 96(18): e0081022, 2022 09 28.
Article in English | MEDLINE | ID: mdl-36069552

ABSTRACT

Stress granules (SGs) are dynamic structures that store cytosolic messenger ribonucleoproteins. SGs have recently been shown to serve as a platform for activating antiviral innate immunity; however, several pathogenic viruses suppress SG formation to evade innate immunity. In this study, we investigated the relationship between rabies virus (RABV) virulence and SG formation, using viral strains with different levels of virulence. We found that the virulent Nishigahara strain did not induce SG formation, but its avirulent offshoot, the Ni-CE strain, strongly induced SG formation. Furthermore, we demonstrated that the amino acid at position 95 in the RABV matrix protein (M95), a pathogenic determinant for the Nishigahara strain, plays a key role in inhibiting SG formation, followed by protein kinase R (PKR)-dependent phosphorylation of the α subunit of eukaryotic initiation factor 2α (eIF2α). M95 was also implicated in the accumulation of RIG-I, a viral RNA sensor protein, in SGs and in the subsequent acceleration of interferon induction. Taken together, our findings strongly suggest that M95-related inhibition of SG formation contributes to the pathogenesis of RABV by allowing the virus to evade the innate immune responses of the host. IMPORTANCE Rabies virus (RABV) is a neglected zoonotic pathogen that causes lethal infections in almost all mammalian hosts, including humans. Recently, RABV has been reported to induce intracellular formation of stress granules (SGs), also known as platforms that activate innate immune responses. However, the relationship between SG formation capacity and pathogenicity of RABV has remained unclear. In this study, by comparing two RABV strains with completely different levels of virulence, we found that the amino acid mutation from valine to alanine at position 95 of matrix protein (M95), which is known to be one of the amino acid mutations that determine the difference in virulence between the strains, plays a major role in SG formation. Importantly, M95 was involved in the accumulation of RIG-I in SGs and in promoting interferon induction. These findings are the first report of the effect of a single amino acid substitution associated with SGs on viral virulence.


Subject(s)
Rabies virus , Stress Granules , Viral Matrix Proteins , Amino Acids/metabolism , Animals , Eukaryotic Initiation Factor-2/metabolism , Humans , Interferons/immunology , Protein Kinases/immunology , RNA, Viral/metabolism , Rabies virus/genetics , Rabies virus/pathogenicity , Ribonucleoproteins/metabolism , Stress Granules/genetics , Stress Granules/immunology , Viral Matrix Proteins/genetics , Viral Matrix Proteins/immunology , Viral Proteins/genetics , Viral Proteins/metabolism
5.
PLoS One ; 16(11): e0260443, 2021.
Article in English | MEDLINE | ID: mdl-34843580

ABSTRACT

Although sensorineural hearing loss (SHL) is relatively common, its cause has not been identified in most cases. Previous studies have suggested that viral infection is a major cause of SHL, especially sudden SHL, but the system that protects against pathogens in the inner ear, which is isolated by the blood-labyrinthine barrier, remains poorly understood. We recently showed that, as audiosensory receptor cells, cochlear hair cells (HCs) are protected by surrounding accessory supporting cells (SCs) and greater epithelial ridge (GER or Kölliker's organ) cells (GERCs) against viral infections. Here, we found that virus-infected SCs and GERCs induce HC death via production of the tumour necrosis factor-related apoptosis-inducing ligand (TRAIL). Notably, the HCs expressed the TRAIL death receptors (DR) DR4 and DR5, and virus-induced HC death was suppressed by TRAIL-neutralizing antibodies. TRAIL-induced HC death was not caused by apoptosis, and was inhibited by necroptosis inhibitors. Moreover, corticosteroids, the only effective drug for SHL, inhibited the virus-induced transformation of SCs and GERCs into macrophage-like cells and HC death, while macrophage depletion also inhibited virus-induced HC death. These results reveal a novel mechanism underlying virus-induced HC death in the cochlear sensory epithelium and suggest a possible target for preventing virus-induced SHL.


Subject(s)
Hair Cells, Auditory/virology , Hearing Loss, Sensorineural/virology , Necroptosis , TNF-Related Apoptosis-Inducing Ligand/immunology , Virus Diseases/complications , Animals , Cells, Cultured , Hair Cells, Auditory/immunology , Hair Cells, Auditory/pathology , Hearing Loss, Sensorineural/immunology , Hearing Loss, Sensorineural/pathology , Mice, Inbred ICR , Virus Diseases/immunology , Virus Diseases/pathology
6.
Cell Mol Immunol ; 18(3): 539-555, 2021 03.
Article in English | MEDLINE | ID: mdl-33462384

ABSTRACT

Retinoic acid-inducible gene I (RIG-I)-like receptors (RLRs) are RNA sensor molecules that play essential roles in innate antiviral immunity. Among the three RLRs encoded by the human genome, RIG-I and melanoma differentiation-associated gene 5, which contain N-terminal caspase recruitment domains, are activated upon the detection of viral RNAs in the cytoplasm of virus-infected cells. Activated RLRs induce downstream signaling via their interactions with mitochondrial antiviral signaling proteins and activate the production of type I and III interferons and inflammatory cytokines. Recent studies have shown that RLR-mediated signaling is regulated by interactions with endogenous RNAs and host proteins, such as those involved in stress responses and posttranslational modifications. Since RLR-mediated cytokine production is also involved in the regulation of acquired immunity, the deregulation of RLR-mediated signaling is associated with autoimmune and autoinflammatory disorders. Moreover, RLR-mediated signaling might be involved in the aberrant cytokine production observed in coronavirus disease 2019. Since the discovery of RLRs in 2004, significant progress has been made in understanding the mechanisms underlying the activation and regulation of RLR-mediated signaling pathways. Here, we review the recent advances in the understanding of regulated RNA recognition and signal activation by RLRs, focusing on the interactions between various host and viral factors.


Subject(s)
DEAD Box Protein 58/immunology , Mitochondria/immunology , Receptors, Immunologic/immunology , Signal Transduction , Virus Diseases/immunology , Viruses/immunology , Animals , Humans , Immunologic Factors , Interferon Type I/immunology , Interferons/immunology , Interferon Lambda
7.
Sci Rep ; 10(1): 6740, 2020 04 21.
Article in English | MEDLINE | ID: mdl-32317718

ABSTRACT

To protect the audiosensory organ from tissue damage from the immune system, the inner ear is separated from the circulating immune system by the blood-labyrinth barrier, which was previously considered an immune-privileged site. Recent studies have shown that macrophages are distributed in the cochlea, especially in the spiral ligament, spiral ganglion, and stria vascularis; however, the direct pathogen defence mechanism used by audiosensory receptor hair cells (HCs) has remained obscure. Here, we show that HCs are protected from pathogens by surrounding accessory supporting cells (SCs) and greater epithelial ridge (GER or Kölliker's organ) cells (GERCs). In isolated murine cochlear sensory epithelium, we established Theiler's murine encephalomyelitis virus, which infected the SCs and GERCs, but very few HCs. The virus-infected SCs produced interferon (IFN)-α/ß, and the viruses efficiently infected the HCs in the IFN-α/ß receptor-null sensory epithelium. Interestingly, the virus-infected SCs and GERCs expressed macrophage marker proteins and were eliminated from the cell layer by cell detachment. Moreover, lipopolysaccharide induced phagocytosis of the SCs without cell detachment, and the SCs phagocytosed the bacteria. These results reveal that SCs function as macrophage-like cells, protect adjacent HCs from pathogens, and provide a novel anti-infection inner ear immune system.


Subject(s)
Hair Cells, Auditory, Inner/physiology , Hair Cells, Auditory, Outer/physiology , Labyrinth Supporting Cells/immunology , Macrophages/immunology , Spiral Ganglion/physiology , Stria Vascularis/physiology , Animals , Animals, Newborn , Escherichia coli/immunology , Hair Cells, Auditory, Inner/cytology , Hair Cells, Auditory, Outer/cytology , Immunity, Innate , Interferon-alpha/biosynthesis , Interferon-alpha/immunology , Interferon-beta/biosynthesis , Interferon-beta/immunology , Labyrinth Supporting Cells/cytology , Labyrinth Supporting Cells/drug effects , Labyrinth Supporting Cells/virology , Lipopolysaccharides/pharmacology , Macrophages/cytology , Macrophages/drug effects , Macrophages/virology , Mice , Mice, Inbred ICR , Organ Culture Techniques , Phagocytosis/drug effects , Saccharomyces cerevisiae/immunology , Spiral Ganglion/cytology , Stria Vascularis/cytology , Theilovirus/growth & development , Theilovirus/pathogenicity
8.
Nucleic Acids Res ; 48(3): 1494-1507, 2020 02 20.
Article in English | MEDLINE | ID: mdl-31799626

ABSTRACT

During viral infection, viral nucleic acids are detected by virus sensor proteins including toll-like receptor 3 or retinoic acid-inducible gene I-like receptors (RLRs) in mammalian cells. Activation of these virus sensor proteins induces type-I interferon production and represses viral replication. Recently, we reported that an RLR family member, laboratory of genetics and physiology 2 (LGP2), modulates RNA silencing by interacting with an RNA silencing enhancer, TAR-RNA binding protein (TRBP). However, the biological implications remained unclear. Here, we show that LGP2 enhances apoptosis by upregulating apoptosis regulatory genes during viral infection. Sendai virus (SeV) infection increased LGP2 expression approximately 900 times compared to that in non-virus-infected cells. Then, the induced LGP2 interacted with TRBP, resulting in the inhibition of maturation of the TRBP-bound microRNA (miRNA) and its subsequent RNA silencing activity. Gene expression profiling revealed that apoptosis regulatory genes were upregulated during SeV infection: caspases-2, -8, -3 and -7, four cysteine proteases with key roles in apoptosis, were upregulated directly or indirectly through the repression of a typical TRBP-bound miRNA, miR-106b. Our findings may shed light on the mechanism of apoptosis, induced by the TRBP-bound miRNAs through the interaction of TRBP with LGP2, as an antiviral defense system in mammalian cells.


Subject(s)
MicroRNAs/genetics , Nuclear Receptor Coactivators/genetics , RNA Helicases/genetics , Virus Diseases/genetics , Animals , Apoptosis/genetics , Apoptosis Regulatory Proteins/genetics , Caspases/genetics , Gene Expression Regulation/genetics , HeLa Cells , Humans , RNA Interference , Signal Transduction/genetics , Toll-Like Receptor 3/genetics , Virus Diseases/virology , Virus Replication/genetics
9.
Biochem Biophys Res Commun ; 517(4): 662-669, 2019 10 01.
Article in English | MEDLINE | ID: mdl-31395337

ABSTRACT

Upon viral infection, retinoic acid-inducible gene-I (RIG-I)-like receptors detect viral foreign RNAs and transmit anti-viral signals via direct interaction with the downstream mitochondrial adaptor molecule, interferon (IFN)-ß promoter stimulator-1 (IPS-1), to inhibit viral replication. Although IPS-1 is known to form prion-like oligomers on mitochondria to activate signaling, the mechanisms that regulate oligomer formation remain unclear. Here, we identified an autoinhibitory domain (AD) at amino acids 180-349 to suppress oligomerization of IPS-1 in a resting state and regulate activation of downstream signaling. Size exclusion chromatography (SEC) analysis demonstrated that AD was required to suppress auto-oligomerization of the caspase recruitment domain (CARD) of IPS-1 via intramolecular interactions. This was supported by the observation that cleavage of a peptide bond between IPS-1 CARD and AD by Tobacco Etch virus (TEV) protease relieved autoinhibition. Conversely, deletion of this domain from IPS-1 enhanced signal activation in IFN-reporter assays, suggesting that IPS-1 AD played a critical role in the regulation of IPS-1-mediated anti-viral signal activation. These findings revealed novel molecular interactions involved in the tight regulation of innate anti-viral immunity.


Subject(s)
Adaptor Proteins, Signal Transducing/chemistry , Adaptor Proteins, Signal Transducing/metabolism , Protein Multimerization , Signal Transduction , Amino Acid Sequence , Animals , Interferon Type I/metabolism , Mice , Mutant Proteins/chemistry , Mutant Proteins/metabolism , Protein Binding , Protein Domains , Sequence Deletion , Structure-Activity Relationship , Up-Regulation
10.
Biol Pharm Bull ; 42(2): 299-302, 2019.
Article in English | MEDLINE | ID: mdl-30713260

ABSTRACT

While the use of in vitro-transcribed mRNA (IVT-mRNA) in therapeutics is a rapidly expanding area, the transfection of the exogenous IVT-mRNA is accompanied by a risk of immune activation. This immunological defense mechanism suppresses cellular translation process and can reduce transfection efficiency to a considerable extent. In the present study, we investigated the in vitro effects of Integrated Stress Response Inhibitor (ISRIB), and dexamethasone, a steroidal anti-inflammatory drug, on the transfection activity of a lipid nanoparticle (LNP) that was composed of ionizable lipids and IVT-mRNA. In the case of transfection to mouse embryonic fibroblast (MEF) cells, ISRIB mainly enhanced the transfection activity at an early stage of transfection (0-6 h). In contrast, dexamethasone caused an increase in transfection activity at intermediate-late stages of transfection (4-48 h). We also investigated the in vivo effects of dexamethasone using an LNP on that the IVT-mRNA and lipid-conjugated dexamethasone (Dex-Pal) were co-loaded. The intravenous administration of the LNP successfully enhanced the protein expression in a mouse liver by up to 6.6-fold. Collectively, the co-delivery of an anti-inflammatory drug is a promising approach for enhancing transfection efficiency of IVT-mRNA.


Subject(s)
Anti-Inflammatory Agents/pharmacology , Lipids/administration & dosage , Nanoparticles/administration & dosage , RNA, Messenger/administration & dosage , Transfection/methods , Acetamides/pharmacology , Animals , Cell Line , Cyclohexylamines/pharmacology , Dexamethasone/pharmacology , Fibroblasts , Lipids/chemistry , Mice , Mice, Inbred BALB C , Mice, Inbred C57BL , Nanoparticles/chemistry
11.
Genes (Basel) ; 9(10)2018 Oct 19.
Article in English | MEDLINE | ID: mdl-30347765

ABSTRACT

Exogenous double-stranded RNAs (dsRNAs) similar to viral RNAs induce antiviral RNA silencing or RNA interference (RNAi) in plants or invertebrates, whereas interferon (IFN) response is induced through activation of virus sensor proteins including Toll like receptor 3 (TLR3) or retinoic acid-inducible gene I (RIG-I) like receptors (RLRs) in mammalian cells. Both RNA silencing and IFN response are triggered by dsRNAs. However, the relationship between these two pathways has remained unclear. Laboratory of genetics and physiology 2 (LGP2) is one of the RLRs, but its function has remained unclear. Recently, we reported that LGP2 regulates endogenous microRNA-mediated RNA silencing by interacting with an RNA silencing enhancer, TAR-RNA binding protein (TRBP). Here, we investigated the contribution of other RLRs, RIG-I and melanoma-differentiation-associated gene 5 (MDA5), in the regulation of RNA silencing. We found that RIG-I, but not MDA5, also represses short hairpin RNA (shRNA)-induced RNAi by type-I IFN. Our finding suggests that RIG-I, but not MDA5, interacts with TRBP indirectly through LGP2 to function as an RNAi modulator in mammalian cells.

12.
Nucleic Acids Res ; 46(17): 9134-9147, 2018 09 28.
Article in English | MEDLINE | ID: mdl-29939295

ABSTRACT

Here we show that laboratory of genetics and physiology 2 (LGP2) virus sensor protein regulates gene expression network of endogenous genes mediated by TAR-RNA binding protein (TRBP)-bound microRNAs (miRNAs). TRBP is an enhancer of RNA silencing, and functions to recruit precursor-miRNAs (pre-miRNAs) to Dicer that processes pre-miRNA into mature miRNA. Viral infection activates the antiviral innate immune response in mammalian cells. Retinoic acid-inducible gene I (RIG-I)-like receptors (RLRs), including RIG-I, melanoma-differentiation-associated gene 5 (MDA5), and LGP2, function as cytoplasmic virus sensor proteins during viral infection. RIG-I and MDA5 can distinguish between different types of RNA viruses to produce antiviral cytokines, including type I interferon. However, the role of LGP2 is controversial. We found that LGP2 bound to the double-stranded RNA binding sites of TRBP, resulting in inhibition of pre-miRNA binding and recruitment by TRBP. Furthermore, although it is unclear whether TRBP binds to specific pre-miRNA, we found that TRBP bound to particular pre-miRNAs with common structural characteristics. Thus, LGP2 represses specific miRNA activities by interacting with TRBP, resulting in selective regulation of target genes. Our findings show that a novel function of LGP2 is to modulate RNA silencing, indicating the crosstalk between RNA silencing and RLR signaling in mammalian cells.


Subject(s)
Gene Regulatory Networks/genetics , MicroRNAs/metabolism , RNA Helicases/physiology , RNA-Binding Proteins/metabolism , CRISPR-Cas Systems , Gene Editing , Gene Expression Regulation/genetics , Gene Knockdown Techniques , HeLa Cells , Humans , MicroRNAs/physiology , RNA Interference , RNA Viruses/genetics , RNA Viruses/metabolism , RNA-Binding Proteins/physiology , Signal Transduction
14.
PLoS Pathog ; 12(2): e1005444, 2016 Feb.
Article in English | MEDLINE | ID: mdl-26862753

ABSTRACT

RIG-I triggers antiviral responses by recognizing viral RNA (vRNA) in the cytoplasm. However, the spatio-temporal dynamics of vRNA sensing and signal transduction remain elusive. We investigated the time course of events in cells infected with Newcastle disease virus (NDV), a non-segmented negative-strand RNA virus. RIG-I was recruited to viral replication complexes (vRC) and triggered minimal primary type I interferon (IFN) production. RIG-I subsequently localized to antiviral stress granules (avSG) induced after vRC formation. The inhibition of avSG attenuated secondary IFN production, suggesting avSG as a platform for efficient vRNA detection. avSG selectively captured positive-strand vRNA, and poly(A)+ RNA induced IFN production. Further investigations suggested that uncapped vRNA derived from read-through transcription was sensed by RIG-I in avSG. These results highlight how viral infections stimulate host stress responses, thereby selectively recruiting uncapped vRNA to avSG, in which RIG-I and other components cooperate in an efficient antiviral program.


Subject(s)
DEAD-box RNA Helicases/metabolism , Signal Transduction/drug effects , Animals , DEAD Box Protein 58 , Humans , Influenza A virus/genetics , Interferon Regulatory Factor-3/metabolism , Interferon Type I/metabolism , Interferon-beta/drug effects , Interferon-beta/genetics , Mice , Newcastle disease virus/genetics , RNA, Viral/drug effects , Receptors, Immunologic , Stress, Physiological
15.
J Biochem ; 159(3): 279-86, 2016 Mar.
Article in English | MEDLINE | ID: mdl-26748340

ABSTRACT

Activation of antiviral innate immunity is triggered by cellular pattern recognition receptors. Retinoic acid inducible gene-I (RIG-I)-like receptors (RLRs) detect viral non-self RNA in cytoplasm of virus-infected cells and play a critical role in the clearance of the invaded viruses through production of antiviral cytokines. Among the three known RLRs, RIG-I and melanoma differentiation-associated gene 5 recognize distinct non-self signatures of viral RNA and activate antiviral signaling. Recent reports have clearly described the molecular machinery underlying the activation of RLRs and interactions with the downstream adaptor, mitochondrial antiviral signaling protein (MAVS). RLRs and MAVS are thought to form large multimeric filaments around cytoplasmic organelles depending on the presence of Lys63-linked ubiquitin chains. Furthermore, RLRs have been shown to localize to stress-induced ribonucleoprotein aggregate known as stress granules and utilize them as a platform for recognition/activation of signaling. In this review, we will focus on the current understanding of RLR-mediated signal activation and the interactions with stress-induced RNA granules.


Subject(s)
Cytoplasmic Granules/immunology , DNA Virus Infections/immunology , Immunity, Innate , RNA Virus Infections/immunology , RNA, Viral/immunology , Receptors, Pattern Recognition/immunology , Adaptor Proteins, Signal Transducing/immunology , Adaptor Proteins, Signal Transducing/metabolism , Animals , Cytoplasmic Granules/virology , DEAD Box Protein 58 , DEAD-box RNA Helicases/immunology , DEAD-box RNA Helicases/metabolism , Humans , Interferon-Induced Helicase, IFIH1 , Mice , Polyubiquitin/metabolism , RNA Helicases/immunology , RNA Helicases/metabolism , Receptors, Immunologic , Receptors, Pattern Recognition/metabolism , Ribonucleoproteins/metabolism , Signal Transduction , Stress, Physiological/immunology
16.
PLoS One ; 10(2): e0118000, 2015.
Article in English | MEDLINE | ID: mdl-25706116

ABSTRACT

The levels of expression of interferon-stimulated genes (ISGs) in liver are associated with response to treatment with pegylated interferon (PEG-IFN) plus ribavirin (RBV). However, associations between the responses of ISGs to IFN-based therapy and treatment efficacy or interleukin-28B (IL28B) genotype have not yet been determined. Therefore, we investigated the early responses of ISGs and interferon-lambdas (IFN-λs) in peripheral blood mononuclear cells (PBMCs) during PEG-IFN/RBV plus NS3/4 protease inhibitor (PI) therapy. We prospectively enrolled 50 chronic hepatitis C patients with HCV genotype 1, and collected PBMCs at baseline, 8 and 24 h after the initial administration of PEG-IFN/RBV/PI. Levels of mRNAs for selected ISGs and IFN-λs were evaluated by real-time PCR. All 31 patients with a favorable IL28B genotype and 13 of 19 with an unfavorable genotype achieved sustained virological responses (SVR). Levels of mRNA for A20, SOCS1, and SOCS3, known to suppress antiviral activity by interfering with the IFN signaling pathway, as well as IRF1 were significantly higher at 8 h in patients with an unfavorable IL28B genotype than in those with a favorable one (P = 0.007, 0.026, 0.0004, 0.0006, respectively), especially in the non-SVR group. Particularly, the fold-change of IRF1 at 8 h relative to baseline was significantly higher in non-SVR than in SVR cases with an unfavorable IL28B genotype (P = 0.035). In conclusion, levels of several mRNAs of genes suppressing antiviral activity in PBMCs during PEG-IFN/RBV/PI differed according to IL28B genotypes, paralleling treatment efficacy.


Subject(s)
Antiviral Agents/therapeutic use , Gene Expression/drug effects , Hepatitis C, Chronic/drug therapy , Leukocytes, Mononuclear/drug effects , Adult , Aged , Drug Therapy, Combination , Female , Genotype , Hepacivirus/drug effects , Hepacivirus/genetics , Hepatitis C, Chronic/blood , Hepatitis C, Chronic/genetics , Humans , Interferon-alpha/therapeutic use , Interferons , Interleukins/genetics , Leukocytes, Mononuclear/metabolism , Male , Middle Aged , Polyethylene Glycols/therapeutic use , Polymorphism, Single Nucleotide , Prospective Studies , Real-Time Polymerase Chain Reaction , Recombinant Proteins/therapeutic use , Ribavirin/therapeutic use , Suppressor of Cytokine Signaling Proteins/genetics , Treatment Outcome
17.
Curr Opin Immunol ; 32: 48-53, 2015 Feb.
Article in English | MEDLINE | ID: mdl-25594890

ABSTRACT

In higher vertebrates, recognition of the non-self signature of invading viruses by genome-encoded pattern recognition receptors initiates antiviral innate immunity. Retinoic acid-inducible gene I (RIG-I)-like receptors (RLRs) detect viral RNA as a non-self pattern in the cytoplasm and activate downstream signaling. Detection of viral RNA also activates stress responses resulting in stress granule-like aggregates, which facilitate RLR-mediated antiviral immunity. Among the three RLR family members RIG-I and melanoma differentiation-associated gene 5 (MDA5) recognize distinct viral RNA species with differential molecular machinery and activate signaling through mitochondrial antiviral signaling (MAVS, also known as IPS-1/VISA/Cardif), which leads to the expression of cytokines including type I and III interferons (IFNs) to restrict viral propagation. In this review, we summarize recent knowledge regarding RNA recognition and signal transduction by RLRs and MAVS/IPS-1.


Subject(s)
DEAD-box RNA Helicases/metabolism , RNA, Viral/metabolism , Signal Transduction , Animals , Humans , Immunity, Innate , Phosphorylation , Protein Binding , RNA, Viral/immunology , Stress, Physiological , Ubiquitin/metabolism
18.
Trends Immunol ; 35(9): 420-8, 2014 Sep.
Article in English | MEDLINE | ID: mdl-25153707

ABSTRACT

Viral infection triggers the activation of antiviral innate immune responses in mammalian cells. Viral RNA in the cytoplasm activates signaling pathways that result in the production of interferons (IFNs) and IFN-stimulated genes. Some viral infections have been shown to induce cytoplasmic granular aggregates similar to the dynamic ribonucleoprotein aggregates termed stress granules (SGs), suggesting that these viruses may utilize this stress response for their own benefit. By contrast, some viruses actively inhibit SG formation, suggesting an antiviral function for these structures. We review here the relationship between different viral infections and SG formation. We examine the evidence for antiviral functions for SGs and highlight important areas of inquiry towards understanding cellular stress responses to viral infection.


Subject(s)
Cytoplasmic Granules/metabolism , Interferons/metabolism , Ribonucleoproteins/metabolism , Virus Diseases/immunology , Animals , Humans , Immunity, Innate , Interferons/genetics , Protein Aggregation, Pathological , RNA, Viral/immunology , Signal Transduction , Stress, Physiological/immunology
19.
PLoS Pathog ; 10(3): e1004012, 2014 Mar.
Article in English | MEDLINE | ID: mdl-24651521

ABSTRACT

RIG-I is a DExD/H-box RNA helicase and functions as a critical cytoplasmic sensor for RNA viruses to initiate antiviral interferon (IFN) responses. Here we demonstrate that another DExD/H-box RNA helicase DHX36 is a key molecule for RIG-I signaling by regulating double-stranded RNA (dsRNA)-dependent protein kinase (PKR) activation, which has been shown to be essential for the formation of antiviral stress granule (avSG). We found that DHX36 and PKR form a complex in a dsRNA-dependent manner. By forming this complex, DHX36 facilitates dsRNA binding and phosphorylation of PKR through its ATPase/helicase activity. Using DHX36 KO-inducible MEF cells, we demonstrated that DHX36 deficient cells showed defect in IFN production and higher susceptibility in RNA virus infection, indicating the physiological importance of this complex in host defense. In summary, we identify a novel function of DHX36 as a critical regulator of PKR-dependent avSG to facilitate viral RNA recognition by RIG-I-like receptor (RLR).


Subject(s)
DEAD-box RNA Helicases/immunology , RNA Virus Infections/immunology , Signal Transduction/immunology , eIF-2 Kinase/immunology , Cytoplasmic Granules/immunology , DEAD Box Protein 58 , DEAD-box RNA Helicases/metabolism , Enzyme-Linked Immunosorbent Assay , Fluorescent Antibody Technique , Gene Knockout Techniques , HEK293 Cells , HeLa Cells , Humans , Immunoprecipitation , RNA Viruses/immunology , RNA, Double-Stranded/immunology , RNA, Small Interfering/genetics , RNA, Viral/immunology , Receptors, Immunologic , Reverse Transcriptase Polymerase Chain Reaction , Stress, Physiological , Transfection
20.
J Virol ; 87(17): 9511-22, 2013 Sep.
Article in English | MEDLINE | ID: mdl-23785203

ABSTRACT

In response to stress, cells induce ribonucleoprotein aggregates, termed stress granules (SGs). SGs are transient loci containing translation-stalled mRNA, which is eventually degraded or recycled for translation. Infection of some viruses, including influenza A virus with a deletion of nonstructural protein 1 (IAVΔNS1), induces SG-like protein aggregates. Previously, we showed that IAVΔNS1-induced SGs are required for efficient induction of type I interferon (IFN). Here, we investigated SG formation by different viruses using green fluorescent protein (GFP)-tagged Ras-Gap SH3 domain binding protein 1 (GFP-G3BP1) as an SG probe. HeLa cells stably expressing GFP-G3BP1 were infected with different viruses, and GFP fluorescence was monitored live with time-lapse microscopy. SG formations by different viruses was classified into 4 different patterns: no SG formation, stable SG formation, transient SG formation, and alternate SG formation. We focused on encephalomyocarditis virus (EMCV) infection, which exhibited transient SG formation. We found that EMCV disrupts SGs by cleavage of G3BP1 at late stages of infection (>8 h) through a mechanism similar to that used by poliovirus. Expression of a G3BP1 mutant that is resistant to the cleavage conferred persistent formation of SGs as well as an enhanced induction of IFN and other cytokines at late stages of infection. Additionally, knockdown of endogenous G3BP1 blocked SG formation with an attenuated induction of IFN and potentiated viral replication. Taken together, our findings suggest a critical role of SGs as an antiviral platform and shed light on one of the mechanisms by which a virus interferes with host stress and subsequent antiviral responses.


Subject(s)
Encephalomyocarditis virus/immunology , Encephalomyocarditis virus/pathogenicity , Ribonucleoproteins/metabolism , Carrier Proteins/antagonists & inhibitors , Carrier Proteins/genetics , Carrier Proteins/metabolism , Cytokines/genetics , DNA Helicases , DNA Viruses/pathogenicity , Encephalomyocarditis virus/physiology , Gene Expression , Gene Knockdown Techniques , Green Fluorescent Proteins/genetics , Green Fluorescent Proteins/metabolism , HeLa Cells , Host-Pathogen Interactions/genetics , Host-Pathogen Interactions/immunology , Humans , Immunity, Innate/genetics , Interferons/genetics , Mutation , Poly-ADP-Ribose Binding Proteins , RNA Helicases , RNA Recognition Motif Proteins , RNA Viruses/pathogenicity , Recombinant Fusion Proteins/genetics , Recombinant Fusion Proteins/metabolism , Ribonucleoproteins/immunology , Stress, Physiological , Virus Replication
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