African swine fever virus pA104R protein acts as a suppressor of type I interferon signaling
暂无分享,去创建一个
Qichao Chen | Xiangru Wang | Chen Tan | Liang Li | Shibang Guo | Zhankui Liu | Lixin Liu | Huanchun Chen
[1] Huanchun Chen,et al. African Swine Fever Virus pI215L Inhibits Type I Interferon Signaling by Targeting Interferon Regulatory Factor 9 for Autophagic Degradation , 2022, Journal of virology.
[2] Hainan Yu,et al. African Swine Fever Virus M1249L Protein Antagonizes Type I Interferon Production via Suppressing Phosphorylation of TBK1 and Degrading IRF3. , 2022, Virus research.
[3] M. Borca,et al. Deletion of African Swine Fever Virus Histone-like Protein, A104R from the Georgia Isolate Drastically Reduces Virus Virulence in Domestic Pigs , 2022, Viruses.
[4] Xiao‐Tong Zheng,et al. Regulation of antiviral immune response by African swine fever virus (ASFV) , 2022, Virologica Sinica.
[5] Zixiang Zhu,et al. MGF360-9L Is a Major Virulence Factor Associated with the African Swine Fever Virus by Antagonizing the JAK/STAT Signaling Pathway , 2022, mBio.
[6] A. García-Sastre,et al. African Swine Fever Virus Induces STAT1 and STAT2 Degradation to Counteract IFN-I Signaling , 2021, Frontiers in Microbiology.
[7] Jianguo Wu,et al. Human Cytomegalovirus UL23 Attenuates Signal Transducer and Activator of Transcription 1 Phosphorylation and Type I Interferon Response , 2021, Frontiers in Microbiology.
[8] Jingjing Ren,et al. African Swine Fever Virus MGF-505-7R Negatively Regulates cGAS–STING-Mediated Signaling Pathway , 2021, The Journal of Immunology.
[9] G. Ippolito,et al. Zika virus NS2A inhibits interferon signaling by degradation of STAT1 and STAT2 , 2021, Virulence.
[10] Lihua He,et al. African Swine Fever Virus MGF360-12L Inhibits Type I Interferon Production by Blocking the Interaction of Importin α and NF-κB Signaling Pathway , 2020, Virologica Sinica.
[11] Jin-ding Chen,et al. Current State of Global African Swine Fever Vaccine Development under the Prevalence and Transmission of ASF in China , 2020, Vaccines.
[12] H. Qiu,et al. Multifaceted Immune Responses to African Swine Fever Virus: Implications for Vaccine Development. , 2020, Veterinary microbiology.
[13] J. Richt,et al. African Swine Fever Virus: An Emerging DNA Arbovirus , 2020, Frontiers in Veterinary Science.
[14] F. Gao,et al. The structural basis of African swine fever virus pA104R binding to DNA and its inhibition by stilbene derivatives , 2020, Proceedings of the National Academy of Sciences.
[15] Xin Shi,et al. Insights into African swine fever virus immunoevasion strategies , 2020 .
[16] Pengfei Zhang,et al. Porcine circovirus 3 Cap inhibits type I interferon signaling through interaction with STAT2. , 2019, Virus research.
[17] Z. Rao,et al. Architecture of African swine fever virus and implications for viral assembly , 2019, Science.
[18] A. Leitão,et al. African Swine Fever Virus replication events and cell nucleus: new insights and perspectives. , 2019, Virus research.
[19] F. Freitas,et al. Towards the Generation of an ASFV-pA104R DISC Mutant and a Complementary Cell Line—A Potential Methodology for the Production of a Vaccine Candidate , 2019, Vaccines.
[20] S. Xiao,et al. Porcine Reproductive and Respiratory Syndrome Virus nsp11 Antagonizes Type I Interferon Signaling by Targeting IRF9 , 2019, Journal of Virology.
[21] D. Pérez-Núñez,et al. Development of vaccines against African swine fever virus. , 2019, Virus research.
[22] J. Richt,et al. African Swine Fever Virus Armenia/07 Virulent Strain Controls Interferon Beta Production through the cGAS-STING Pathway , 2019, Journal of Virology.
[23] Bei Huang,et al. PCV2 infection activates the cGAS/STING signaling pathway to promote IFN-β production and viral replication in PK-15 cells. , 2018, Veterinary microbiology.
[24] Jinxiang Li,et al. Inhibition of cGAS-STING-TBK1 signaling pathway by DP96R of ASFV China 2018/1. , 2018, Biochemical and biophysical research communications.
[25] G. Andrés,et al. A Proteomic Atlas of the African Swine Fever Virus Particle , 2018, Journal of Virology.
[26] Xiangdong Li,et al. Emergence of African Swine Fever in China, 2018. , 2018, Transboundary and emerging diseases.
[27] Jun Han,et al. Bclaf1 critically regulates the type I interferon response and is degraded by alphaherpesvirus US3 , 2018, bioRxiv.
[28] L. Dixon,et al. ICTV Virus Taxonomy Profile: Asfarviridae. , 2018, The Journal of general virology.
[29] L. Dixon,et al. African swine fever: A re-emerging viral disease threatening the global pig industry , 2018, Veterinary journal.
[30] A. Leitão,et al. Modulation of type I interferon signaling by African swine fever virus (ASFV) of different virulence L60 and NHV in macrophage host cells. , 2018, Veterinary microbiology.
[31] W. Vosloo,et al. Genetic characterization of African swine fever virus isolates from soft ticks at the wildlife/domestic interface in Mozambique and identification of a novel genotype , 2017, Transboundary and emerging diseases.
[32] Yanjin Zhang,et al. Interplay between Janus Kinase/Signal Transducer and Activator of Transcription Signaling Activated by Type I Interferons and Viral Antagonism , 2017, Front. Immunol..
[33] Xuetao Cao,et al. Regulation of type I interferon signaling in immunity and inflammation: A comprehensive review. , 2017, Journal of autoimmunity.
[34] L. Dixon,et al. Investigations of Pro- and Anti-Apoptotic Factors Affecting African Swine Fever Virus Replication and Pathogenesis , 2017, Viruses.
[35] A. García-Sastre. Ten Strategies of Interferon Evasion by Viruses , 2017, Cell Host & Microbe.
[36] Yongguang Zhang,et al. Roles of African Swine Fever Virus Structural Proteins in Viral Infection , 2017, Journal of veterinary research.
[37] A. Leitão,et al. DNA-Binding Properties of African Swine Fever Virus pA104R, a Histone-Like Protein Involved in Viral Replication and Transcription , 2017, Journal of Virology.
[38] M. Peppelenbosch,et al. Transcriptional Regulation of Antiviral Interferon-Stimulated Genes , 2017, Trends in Microbiology.
[39] C. Netherton,et al. Unraveling the Armor of a Killer: Evasion of Host Defenses by African Swine Fever Virus , 2016, Journal of Virology.
[40] K. Schulz,et al. Viral Evasion Strategies in Type I IFN Signaling – A Summary of Recent Developments , 2016, Front. Immunol..
[41] Mario Riera Romo,et al. Innate immunity in vertebrates: an overview , 2016, Immunology.
[42] C. Martins,et al. Early intranuclear replication of African swine fever virus genome modifies the landscape of the host cell nucleus. , 2015, Virus research.
[43] S. Xiao,et al. Porcine bocavirus NP1 negatively regulates interferon signaling pathway by targeting the DNA-binding domain of IRF9 , 2015, Virology.
[44] Y. Matoba,et al. Structural Basis of the Inhibition of STAT1 Activity by Sendai Virus C Protein , 2015, Journal of Virology.
[45] J. Rino,et al. Alterations of Nuclear Architecture and Epigenetic Signatures during African Swine Fever Virus Infection , 2015, Viruses.
[46] C. Rice,et al. Interferons and viruses: an evolutionary arms race of molecular interactions. , 2015, Trends in immunology.
[47] J. Sánchez-Vizcaíno,et al. An update on the epidemiology and pathology of African swine fever. , 2015, Journal of comparative pathology.
[48] Zhijian J. Chen,et al. The cGAS-cGAMP-STING pathway of cytosolic DNA sensing and signaling. , 2014, Molecular cell.
[49] N. Grandvaux,et al. STAT2 and IRF9: Beyond ISGF3. , 2013, JAK-STAT.
[50] D. Levy,et al. The Human RVB Complex Is Required for Efficient Transcription of Type I Interferon-Stimulated Genes , 2013, Molecular and Cellular Biology.
[51] G. Andrés,et al. African swine fever virus morphogenesis. , 2013, Virus research.
[52] D U Pfeiffer,et al. Epidemiology of African swine fever virus. , 2013, Virus research.
[53] R. Parkhouse,et al. Identification and utility of innate immune system evasion mechanisms of ASFV. , 2013, Virus research.
[54] K. Morris,et al. Snapshots: chromatin control of viral infection. , 2013, Virology.
[55] J. Torchia,et al. Adenovirus evasion of interferon-mediated innate immunity by direct antagonism of a cellular histone posttranslational modification. , 2012, Cell host & microbe.
[56] J. Darnell,et al. The JAK-STAT pathway at twenty. , 2012, Immunity.
[57] A. Tarakhovsky,et al. Suppression of the antiviral response by an influenza histone mimic , 2012, Nature.
[58] Dafna M. Abelson,et al. The Ebola Virus Interferon Antagonist VP24 Directly Binds STAT1 and Has a Novel, Pyramidal Fold , 2012, PLoS pathogens.
[59] Ana Rouzaut,et al. Direct Effects of Type I Interferons on Cells of the Immune System , 2011, Clinical Cancer Research.
[60] S. Busby,et al. Effects of nucleoid-associated proteins on bacterial chromosome structure and gene expression. , 2010, Current opinion in microbiology.
[61] G. Kochs,et al. Transcription Factor Redundancy Ensures Induction of the Antiviral State* , 2010, The Journal of Biological Chemistry.
[62] L. Aravind,et al. Diversity and evolution of chromatin proteins encoded by DNA viruses. , 2010, Biochimica et biophysica acta.
[63] S. Goodbourn,et al. The regulation of type I interferon production by paramyxoviruses. , 2009, Journal of interferon & cytokine research : the official journal of the International Society for Interferon and Cytokine Research.
[64] K. Shimotohno,et al. Human T-cell leukemia virus type 1 Tax modulates interferon-alpha signal transduction through competitive usage of the coactivator CBP/p300. , 2008, Virology.
[65] S. Goodbourn,et al. Interferons and viruses: an interplay between induction, signalling, antiviral responses and virus countermeasures. , 2008, The Journal of general virology.
[66] B. Ramratnam,et al. Acetylation-Dependent Signal Transduction for Type I Interferon Receptor , 2007, Cell.
[67] D. Blondel,et al. The Nucleocytoplasmic Rabies Virus P Protein Counteracts Interferon Signaling by Inhibiting both Nuclear Accumulation and DNA Binding of STAT1 , 2007, Journal of Virology.
[68] R. Medzhitov,et al. Type I interferons in host defense. , 2006, Immunity.
[69] L. Platanias. Mechanisms of type-I- and type-II-interferon-mediated signalling , 2005, Nature Reviews Immunology.
[70] J. Bartolomé,et al. Hepatitis C virus core protein down-regulates transcription of interferon-induced antiviral genes. , 2005, The Journal of infectious diseases.
[71] P. Irusta,et al. A structural DNA binding protein of African swine fever virus with similarity to bacterial histone-like proteins , 2005, Archives of Virology.
[72] Kairong Cui,et al. The Chromatin-Remodeling BAF Complex Mediates Cellular Antiviral Activities by Promoter Priming , 2004, Molecular and Cellular Biology.
[73] K. Swinger,et al. IHF and HU: flexible architects of bent DNA. , 2004, Current opinion in structural biology.
[74] C. Horvath,et al. Interferon-stimulated transcription and innate antiviral immunity require deacetylase activity and histone deacetylase 1 , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[75] C. Horvath,et al. STAT Protein Interference and Suppression of Cytokine Signal Transduction by Measles Virus V Protein , 2003, Journal of Virology.
[76] C. Horvath,et al. A Hybrid IRF9-STAT2 Protein Recapitulates Interferon-stimulated Gene Expression and Antiviral Response* , 2003, The Journal of Biological Chemistry.
[77] C. Horvath,et al. Role of Metazoan Mediator Proteins in Interferon-Responsive Transcription , 2003, Molecular and Cellular Biology.
[78] Yuanyu Hu,et al. Chromatin-remodelling factor BRG1 selectively activates a subset of interferon-α-inducible genes , 2002, Nature Cell Biology.
[79] Michael G. Katze,et al. Viruses and interferon: a fight for supremacy , 2002, Nature Reviews Immunology.
[80] K. Zhao,et al. Maximal Induction of a Subset of Interferon Target Genes Requires the Chromatin-Remodeling Activity of the BAF Complex , 2002, Molecular and Cellular Biology.
[81] Yuanyu Hu,et al. Chromatin-remodelling factor BRG1 selectively activates a subset of interferon-alpha-inducible genes. , 2002, Nature cell biology.
[82] C. Horvath,et al. STAT proteins and transcriptional responses to extracellular signals. , 2000, Trends in biochemical sciences.
[83] B. Chait,et al. Ser727‐dependent recruitment of MCM5 by Stat1α in IFN‐γ‐induced transcriptional activation , 1998 .
[84] N. Reich,et al. Distinct STAT Structure Promotes Interaction of STAT2 with the p48 Subunit of the Interferon-α-stimulated Transcription Factor ISGF3* , 1997, The Journal of Biological Chemistry.
[85] S. Bhattacharya,et al. Cooperation of Stat2 and p300/CBP in signalling induced by interferon-α , 1996, Nature.
[86] J. Darnell,et al. Function of Stat2 protein in transcriptional activation by alpha interferon , 1996, Molecular and cellular biology.
[87] J. Darnell,et al. Tyrosine-phosphorylated Stat1 and Stat2 plus a 48-kDa protein all contact DNA in forming interferon-stimulated-gene factor 3. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[88] P. Roberts,et al. An African swine fever virus gene with similarity to bacterial DNA binding proteins, bacterial integration host factors, and the Bacillus phage SPO1 transcription factor, TF1. , 1993, Nucleic acids research.
[89] E. Bonnefoy,et al. HU and IHF, two homologous histone‐like proteins of Escherichia coli, form different protein‐DNA complexes with short DNA fragments. , 1991, The EMBO journal.
[90] D. Levy,et al. Interferon-alpha regulates nuclear translocation and DNA-binding affinity of ISGF3, a multimeric transcriptional activator. , 1990, Genes & development.
[91] M. Ptashne,et al. A vector for expressing GAL4(1-147) fusions in mammalian cells. , 1989, Nucleic acids research.
[92] J. Darnell,et al. Cytoplasmic activation of ISGF3, the positive regulator of interferon-alpha-stimulated transcription, reconstituted in vitro. , 1989, Genes & development.