PANoptosome signaling and therapeutic implications in infection: central role for ZBP1 to activate the inflammasome and PANoptosis.
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[1] E. Lien,et al. MLKL-Driven Inflammasome Activation and Caspase-8 Mediate Inflammatory Cell Death in Influenza A Virus Infection , 2023, mBio.
[2] A. Oberst,et al. ADAR1 mutation causes ZBP1-dependent immunopathology , 2022, Nature.
[3] M. Pasparakis,et al. ADAR1 averts fatal type I interferon induction by ZBP1 , 2022, Nature.
[4] P. Vandenabeele,et al. ADAR1 prevents autoinflammation by suppressing spontaneous ZBP1 activation , 2022, Nature.
[5] Yan Xu,et al. ADAR1 masks the cancer immunotherapeutic promise of ZBP1-driven necroptosis , 2022, Nature.
[6] Shondra M. Pruett-Miller,et al. ZBP1-dependent inflammatory cell death, PANoptosis, and cytokine storm disrupt IFN therapeutic efficacy during coronavirus infection , 2022, Science Immunology.
[7] M. Diamond,et al. Innate immunity: the first line of defense against SARS-CoV-2 , 2022, Nature Immunology.
[8] T. Jin,et al. Molecular and structural aspects of gasdermin family pores and insights into gasdermin-elicited programmed cell death , 2021, Biochemical Society transactions.
[9] G. Neale,et al. ADAR1 restricts ZBP1-mediated immune response and PANoptosis to promote tumorigenesis. , 2021, Cell reports.
[10] T. Kanneganti,et al. AIM2 forms a complex with Pyrin and ZBP1 to drive PANoptosis and host defense , 2021, Nature.
[11] T. Kanneganti,et al. Inflammatory Cell Death, PANoptosis, Mediated by Cytokines in Diverse Cancer Lineages Inhibits Tumor Growth , 2021, ImmunoHorizons.
[12] D. Kalman,et al. Vaccinia virus E3 prevents sensing of Z-RNA to block ZBP1-dependent necroptosis. , 2021, Cell host & microbe.
[13] M. Rapala-Kozik,et al. Extracellular Nucleic Acids Present in the Candida albicans Biofilm Trigger the Release of Neutrophil Extracellular Traps , 2021, Frontiers in Cellular and Infection Microbiology.
[14] T. Vanden Berghe,et al. Viral dosing of influenza A infection reveals involvement of RIPK3 and FADD, but not MLKL , 2021, Cell Death & Disease.
[15] T. Kanneganti,et al. RIPK1 Distinctly Regulates Yersinia-Induced Inflammatory Cell Death, PANoptosis. , 2020, ImmunoHorizons.
[16] R. Webby,et al. Synergism of TNF-α and IFN-γ Triggers Inflammatory Cell Death, Tissue Damage, and Mortality in SARS-CoV-2 Infection and Cytokine Shock Syndromes , 2020, Cell.
[17] T. Kanneganti,et al. ZBP1 promotes fungi-induced inflammasome activation and pyroptosis, apoptosis, and necroptosis (PANoptosis) , 2020, The Journal of Biological Chemistry.
[18] T. Kanneganti. Intracellular innate immune receptors: Life inside the cell , 2020, Immunological reviews.
[19] David F. Boyd,et al. Necroptosis restricts influenza A virus as a stand-alone cell death mechanism , 2020, The Journal of experimental medicine.
[20] R. Webby,et al. Impaired NLRP3 inflammasome activation/pyroptosis leads to robust inflammatory cell death via caspase-8/RIPK3 during coronavirus infection , 2020, The Journal of Biological Chemistry.
[21] Eric Song,et al. Longitudinal analyses reveal immunological misfiring in severe COVID-19 , 2020, Nature.
[22] A. Strasser,et al. Flexible Usage and Interconnectivity of Diverse Cell Death Pathways Protect against Intracellular Infection , 2020, Immunity.
[23] T. Kanneganti,et al. Identification of the PANoptosome: A Molecular Platform Triggering Pyroptosis, Apoptosis, and Necroptosis (PANoptosis) , 2020, Frontiers in Cellular and Infection Microbiology.
[24] Shondra M. Pruett-Miller,et al. The Zα2 domain of ZBP1 is a molecular switch regulating influenza-induced PANoptosis and perinatal lethality during development , 2020, The Journal of Biological Chemistry.
[25] P. Vogel,et al. Caspase-6 Is a Key Regulator of Innate Immunity, Inflammasome Activation, and Host Defense , 2020, Cell.
[26] M. Sunde,et al. Varicella zoster virus encodes a viral decoy RHIM to inhibit cell death , 2020, bioRxiv.
[27] David F. Boyd,et al. Influenza Virus Z-RNAs Induce ZBP1-Mediated Necroptosis , 2020, Cell.
[28] P. Vogel,et al. Innate immune priming in the absence of TAK1 drives RIPK1 kinase activity–independent pyroptosis, apoptosis, necroptosis, and inflammatory disease , 2019, The Journal of experimental medicine.
[29] Patrick M. Lelliott,et al. ZBP1 governs the inflammasome-independent IL-1α and neutrophil inflammation that play a dual role in anti-influenza virus immunity , 2019, International immunology.
[30] H. Rothan,et al. Z-DNA-Binding Protein 1 Is Critical for Controlling Virus Replication and Survival in West Nile Virus Encephalitis , 2019, Front. Microbiol..
[31] Jiahuai Han,et al. ZBP1 mediates interferon-induced necroptosis , 2019, Cellular & Molecular Immunology.
[32] J. Locasale,et al. The Nucleotide Sensor ZBP1 and Kinase RIPK3 Induce the Enzyme IRG1 to Promote an Antiviral Metabolic State in Neurons , 2019, Immunity.
[33] J. Carette,et al. Species-independent contribution of ZBP1/DAI/DLM-1-triggered necroptosis in host defense against HSV1 , 2018, Cell Death & Disease.
[34] D. Kalman,et al. Inhibition of DAI-dependent necroptosis by the Z-DNA binding domain of the vaccinia virus innate immune evasion protein, E3 , 2017, Proceedings of the National Academy of Sciences.
[35] T. Kanneganti,et al. ZBP1/DAI ubiquitination and sensing of influenza vRNPs activate programmed cell death , 2017, The Journal of experimental medicine.
[36] W. Kaiser,et al. Murine cytomegalovirus IE3‐dependent transcription is required for DAI/ZBP1‐mediated necroptosis , 2017, EMBO reports.
[37] David F. Boyd,et al. DAI Senses Influenza A Virus Genomic RNA and Activates RIPK3-Dependent Cell Death. , 2016, Cell host & microbe.
[38] Si Ming Man,et al. ZBP1/DAI is an innate sensor of influenza virus triggering the NLRP3 inflammasome and programmed cell death pathways , 2016, Science Immunology.
[39] Oliver E. Sturm,et al. RIPK3 Activates Parallel Pathways of MLKL-Driven Necroptosis and FADD-Mediated Apoptosis to Protect against Influenza A Virus. , 2016, Cell host & microbe.
[40] Qin Chen,et al. Herpes Simplex Virus 1 (HSV-1) and HSV-2 Mediate Species-Specific Modulations of Programmed Necrosis through the Viral Ribonucleotide Reductase Large Subunit R1 , 2015, Journal of Virology.
[41] S. Kummerfeld,et al. Caspase-11 cleaves gasdermin D for non-canonical inflammasome signalling , 2015, Nature.
[42] T. Cai,et al. Cleavage of GSDMD by inflammatory caspases determines pyroptotic cell death , 2015, Nature.
[43] W. Kaiser,et al. Suppression of RIP3-dependent Necroptosis by Human Cytomegalovirus , 2015, The Journal of Biological Chemistry.
[44] Chuan-Qi Zhong,et al. RIP1/RIP3 binding to HSV-1 ICP6 initiates necroptosis to restrict virus propagation in mice. , 2015, Cell host & microbe.
[45] P. A. Harris,et al. Herpes simplex virus suppresses necroptosis in human cells. , 2015, Cell host & microbe.
[46] Huanxiang Liu,et al. Understanding the recognition mechanisms of Zα domain of human editing enzyme ADAR1 (hZαADAR1) and various Z-DNAs from molecular dynamics simulation , 2014, Journal of Molecular Modeling.
[47] Qin Chen,et al. Direct activation of RIP3/MLKL-dependent necrosis by herpes simplex virus 1 (HSV-1) protein ICP6 triggers host antiviral defense , 2014, Proceedings of the National Academy of Sciences.
[48] Ling-gang Wu,et al. Plasma membrane translocation of trimerized MLKL protein is required for TNF-induced necroptosis , 2013, Nature Cell Biology.
[49] K. Kim,et al. DNA Sensing-Independent Inhibition of Herpes Simplex Virus 1 Replication by DAI/ZBP1 , 2013, Journal of Virology.
[50] W. Kaiser,et al. DAI/ZBP1/DLM-1 complexes with RIP3 to mediate virus-induced programmed necrosis that is targeted by murine cytomegalovirus vIRA. , 2012, Cell host & microbe.
[51] J. Tschopp,et al. DAI/ZBP1 recruits RIP1 and RIP3 through RIP homotypic interaction motifs to activate NF‐κB , 2009, EMBO reports.
[52] R. Webby,et al. The intracellular sensor NLRP3 mediates key innate and healing responses to influenza A virus via the regulation of caspase-1. , 2009, Immunity.
[53] J. Ting,et al. The NLRP3 inflammasome mediates in vivo innate immunity to influenza A virus through recognition of viral RNA. , 2009, Immunity.
[54] Akiko Iwasaki,et al. Inflammasome recognition of influenza virus is essential for adaptive immune responses , 2009, The Journal of experimental medicine.
[55] W. Kaiser,et al. Receptor-Interacting Protein Homotypic Interaction Motif-Dependent Control of NF-κB Activation via the DNA-Dependent Activator of IFN Regulatory Factors1 , 2008, The Journal of Immunology.
[56] V. Vlassov,et al. Extracellular nucleic acids , 2007, BioEssays : news and reviews in molecular, cellular and developmental biology.
[57] David Miller,et al. Critical Role for Cryopyrin/Nalp3 in Activation of Caspase-1 in Response to Viral Infection and Double-stranded RNA*> , 2006, Journal of Biological Chemistry.
[58] F. Koch-Nolte,et al. ZBP1 subcellular localization and association with stress granules is controlled by its Z-DNA binding domains , 2006, Nucleic acids research.
[59] Hong Thanh Pham,et al. Intracellular localization of human ZBP1: Differential regulation by the Z-DNA binding domain, Zalpha, in splice variants. , 2006, Biochemical and biophysical research communications.
[60] F. Martinon,et al. Gout-associated uric acid crystals activate the NALP3 inflammasome , 2006, Nature.
[61] S. Akira,et al. Bacterial RNA and small antiviral compounds activate caspase-1 through cryopyrin/Nalp3 , 2006, Nature.
[62] V. Dixit,et al. Cryopyrin activates the inflammasome in response to toxins and ATP , 2006, Nature.
[63] G. Cohen,et al. Caspase-7 Is Directly Activated by the ∼700-kDa Apoptosome Complex and Is Released as a Stable XIAP-Caspase-7 ∼200-kDa Complex* , 2006, Journal of Biological Chemistry.
[64] A. Rich,et al. A role for Z-DNA binding in vaccinia virus pathogenesis , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[65] T. Schwartz,et al. Complex regulation of the human gene for the Z-DNA binding protein DLM-1. , 2002, Nucleic acids research.
[66] H. Dvorak,et al. Cloning of DLM-1, a novel gene that is up-regulated in activated macrophages, using RNA differential display. , 1999, Gene.
[67] Patrick R. Griffin,et al. Identification and inhibition of the ICE/CED-3 protease necessary for mammalian apoptosis , 1995, Nature.