Differential Type I IFN-Inducing Abilities of Wild-Type versus Vaccine Strains of Measles Virus1
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A. Kato | T. Seya | M. Matsumoto | M. Shingai | T. Ebihara | Kenji Matsumoto | H. Saito | N. Begum | H. Ogura | T. Honma
[1] S. Longhi,et al. Cytosolic 5′-Triphosphate Ended Viral Leader Transcript of Measles Virus as Activator of the RIG I-Mediated Interferon Response , 2007, PloS one.
[2] J. Miyoshi,et al. Antitumor NK activation induced by the Toll-like receptor 3-TICAM-1 (TRIF) pathway in myeloid dendritic cells , 2007, Proceedings of the National Academy of Sciences.
[3] M. Yoneyama,et al. NAK-Associated Protein 1 Participates in Both the TLR3 and the Cytoplasmic Pathways in Type I IFN Induction1 , 2006, The Journal of Immunology.
[4] J. Trapani,et al. Ligation of the cell surface receptor, CD46, alters T cell polarity and response to antigen presentation , 2006, Proceedings of the National Academy of Sciences.
[5] Gunther Hartmann,et al. 5'-Triphosphate RNA Is the Ligand for RIG-I , 2006, Science.
[6] A. Pichlmair,et al. RIG-I-Mediated Antiviral Responses to Single-Stranded RNA Bearing 5'-Phosphates , 2006, Science.
[7] K. Fitzgerald. Viral targeting of interferon regulatory factor-3 and type I interferon gene transcription , 2006 .
[8] Kenya Honda,et al. Type I Interferon Gene Induction by the Interferon Regulatory Factor Family of Transcription Factors (DOI:10.1016/j.immuni.2006.08.009) , 2006 .
[9] C. Horvath,et al. A Novel Role for Viral-Defective Interfering Particles in Enhancing Dendritic Cell Maturation1 , 2006, The Journal of Immunology.
[10] M. Takeda,et al. Measles virus: cellular receptors, tropism and pathogenesis. , 2006, The Journal of general virology.
[11] M. Takeda,et al. Translational Inhibition and Increased Interferon Induction in Cells Infected with C Protein-Deficient Measles Virus , 2006, Journal of Virology.
[12] K. Honda,et al. Type I Inteferon Gene Induction by the Interferon Regulatory Factor Family of Transcription Factors , 2006 .
[13] D. Garcin,et al. Sendai virus defective-interfering genomes and the activation of interferon-beta. , 2006, Virology.
[14] T. Seya,et al. The kinase complex responsible for IRF-3-mediated IFN-beta production in myeloid dendritic cells (mDC). , 2006, Journal of biochemistry.
[15] Ralf Bartenschlager,et al. Cardif is an adaptor protein in the RIG-I antiviral pathway and is targeted by hepatitis C virus , 2005, Nature.
[16] Osamu Takeuchi,et al. IPS-1, an adaptor triggering RIG-I- and Mda5-mediated type I interferon induction , 2005, Nature Immunology.
[17] Z. Zhai,et al. VISA Is an Adapter Protein Required for Virus-Triggered IFN-β Signaling , 2005 .
[18] Zhijian J. Chen,et al. Identification and Characterization of MAVS, a Mitochondrial Antiviral Signaling Protein that Activates NF-κB and IRF3 , 2005, Cell.
[19] K. Honda,et al. Wild-Type Measles Virus Infection in Human CD46/CD150-Transgenic Mice: CD11c-Positive Dendritic Cells Establish Systemic Viral Infection1 , 2005, The Journal of Immunology.
[20] K. Conzelmann,et al. Viruses know it all: new insights into IFN networks. , 2005, Trends in immunology.
[21] S. Goodbourn,et al. The V proteins of paramyxoviruses bind the IFN-inducible RNA helicase, mda-5, and inhibit its activation of the IFN-beta promoter. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[22] Shizuo Akira,et al. The RNA helicase RIG-I has an essential function in double-stranded RNA-induced innate antiviral responses , 2004, Nature Immunology.
[23] Shizuo Akira,et al. Innate Antiviral Responses by Means of TLR7-Mediated Recognition of Single-Stranded RNA , 2004, Science.
[24] S. Akira,et al. Species-Specific Recognition of Single-Stranded RNA via Toll-like Receptor 7 and 8 , 2004, Science.
[25] A. Yamamoto,et al. Subcellular Localization of Toll-Like Receptor 3 in Human Dendritic Cells , 2003, The Journal of Immunology.
[26] K. Nagata,et al. Measles virus V protein blocks interferon (IFN)‐α/β but not IFN‐γ signaling by inhibiting STAT1 and STAT2 phosphorylation , 2003 .
[27] Guo-Ping Zhou,et al. Triggering the Interferon Antiviral Response Through an IKK-Related Pathway , 2003, Science.
[28] T. Maniatis,et al. IKKε and TBK1 are essential components of the IRF3 signaling pathway , 2003, Nature Immunology.
[29] T. Akazawa,et al. TICAM-1, an adaptor molecule that participates in Toll-like receptor 3–mediated interferon-β induction , 2003, Nature Immunology.
[30] S. Akira,et al. Cutting Edge: A Novel Toll/IL-1 Receptor Domain-Containing Adapter That Preferentially Activates the IFN-β Promoter in the Toll-Like Receptor Signaling1 , 2002, The Journal of Immunology.
[31] Kenji Takeuchi,et al. Paramyxovirus strategies for evading the interferon response , 2002, Reviews in medical virology.
[32] H. Lewicki,et al. One, two, or three step: measles virus receptor dance. , 2002, Virology.
[33] T. Seya,et al. Susceptibility of human dendritic cells (DCs) to measles virus (MV) depends on their activation stages in conjunction with the level of CDw150: role of Toll stimulators in DC maturation and MV amplification. , 2002, Microbes and infection.
[34] T. Seya,et al. Ligation of human CD46 with purified complement C3b or F(ab')(2) of monoclonal antibodies enhances isoform-specific interferon gamma-dependent nitric oxide production in macrophages. , 2002, Journal of biochemistry.
[35] K. Miyake,et al. Establishment of a monoclonal antibody against human Toll-like receptor 3 that blocks double-stranded RNA-mediated signaling. , 2002, Biochemical and biophysical research communications.
[36] J. Hiscott,et al. Recognition of the Measles Virus Nucleocapsid as a Mechanism of IRF-3 Activation , 2002, Journal of Virology.
[37] K. Toyoshima,et al. Molecular assembly of CD46 with CD9, alpha3-beta1 integrin and protein tyrosine phosphatase SHP-1 in human macrophages through differentiation by GM-CSF. , 2002, Molecular immunology.
[38] R. Flavell,et al. Recognition of double-stranded RNA and activation of NF-κB by Toll-like receptor 3 , 2001, Nature.
[39] C. Biron,et al. NK cells and NKT cells in innate defense against viral infections. , 2001, Current opinion in immunology.
[40] Y. Yanagi,et al. Measles Viruses on Throat Swabs from Measles Patients Use Signaling Lymphocytic Activation Molecule (CDw150) but Not CD46 as a Cellular Receptor , 2001, Journal of Virology.
[41] S. Akira,et al. Mycoplasma fermentans Lipoprotein M161Ag-Induced Cell Activation Is Mediated by Toll-Like Receptor 2: Role of N-Terminal Hydrophobic Portion in its Multiple Functions1 , 2001, The Journal of Immunology.
[42] S. Akira,et al. A Toll-like receptor recognizes bacterial DNA , 2000, Nature.
[43] T. Seya,et al. Functional Modulation of Human Macrophages Through CD46 (Measles Virus Receptor): Production of IL-12 p40 and Nitric Oxide in Association with Recruitment of Protein-Tyrosine Phosphatase SHP-1 to CD461 , 2000, The Journal of Immunology.
[44] Y. Yanagi,et al. SLAM (CDw150) is a cellular receptor for measles virus , 2000, Nature.
[45] R. Friedman,et al. Evasion of Host Defenses by Measles Virus: Wild-Type Measles Virus Infection Interferes with Induction of Alpha/Beta Interferon Production , 2000, Journal of Virology.
[46] Y. Nagai,et al. Recovery of Pathogenic Measles Virus from Cloned cDNA , 2000, Journal of Virology.
[47] A. Hirano,et al. Human Receptor for Measles Virus (CD46) Enhances Nitric Oxide Production and Restricts Virus Replication in Mouse Macrophages by Modulating Production of Alpha/Beta Interferon , 2000, Journal of Virology.
[48] T. Seto,et al. Nucleotide sequences of the matrix protein gene of subacute sclerosing panencephalitis viruses compared with local contemporary isolates from patients with acute measles. , 1998, Virus research.
[49] W. Bellini,et al. Generation of defective interfering particles by two vaccine strains of measles virus. , 1996, Virology.
[50] A. Aguzzi,et al. Deficient signaling in mice devoid of double‐stranded RNA‐dependent protein kinase. , 1995, The EMBO journal.
[51] M. Sidhu,et al. Defective measles virus in human subacute sclerosing panencephalitis brain. , 1994, Virology.
[52] D. Kolakofsky,et al. Molecular cloning of natural paramyxovirus copy-back defective interfering RNAs and their expression from DNA. , 1992, Virology.
[53] T. Seya,et al. Quantitative analysis of membrane cofactor protein (MCP) of complement. High expression of MCP on human leukemia cell lines, which is down-regulated during cell differentiation. , 1990, Journal of immunology.
[54] A. Sugiura,et al. Marmoset lymphoblastoid cells as a sensitive host for isolation of measles virus , 1990, Journal of virology.
[55] J. Mosca,et al. Transcriptional and posttranscriptional regulation of exogenous human beta interferon gene in simian cells defective in interferon synthesis , 1986, Molecular and cellular biology.
[56] J. Keene,et al. The origins of defective interfering particles of the negative-strand RNA viruses , 1981, Cell.
[57] S. Makino,et al. Studies on the modification of the live AIK measles vaccine. II. Development and evaluation of the live AIK-C measles vaccine. , 1974, The Kitasato archives of experimental medicine.
[58] S. Ueda,et al. Studies on further attenuated live measles vaccine. 3. Selection of less reactive variants of CAM measles vaccine virus. , 1970, Biken journal.
[59] T. Kurimura,et al. Studies on further attenuated live measles vaccine. IV. Clinical and serological evaluation of a clone of CAM-CEF measles vaccine virus. , 1970, Biken journal.
[60] J. Verbsky,et al. T-Cell stimulation and regulation: With complements from CD46 , 2005, Immunologic research.
[61] M. van den Broek,et al. DC infection promotes antiviral CTL priming: the 'Winkelried' strategy. , 2005, Trends in immunology.
[62] Zhijian J. Chen,et al. Identification and characterization of MAVS, a mitochondrial antiviral signaling protein that activates NF-kappaB and IRF 3. , 2005, Cell.