Targeting highly pathogenic coronavirus-induced apoptosis reduces viral pathogenesis and disease severity
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Jian-Piao Cai | J. Chan | K. Yuen | S. Perlman | Jie Zhou | H. Chu | Cun Li | Bosco Ho-Yin Wong | Shuofeng Yuan | K. Kok | V. Poon | D. Jin | M. Yeung | Xi Zhang | Lei Wen | H. Shuai | Dong Yang | Yixin Wang | Yuxin Hou | Bingjie Hu | Xiner Huang | K. K. Wong | R. Au-Yeung | Xiaoyu Zhao | Chaemin Yoon | Hin Chu
[1] Host and viral determinants for efficient SARS-CoV-2 infection of the human lung , 2021, Nature communications.
[2] K. To,et al. SARS-CoV-2 Induces a More Robust Innate Immune Response and Replicates Less Efficiently Than SARS-CoV in the Human Intestines: An Ex Vivo Study With Implications on Pathogenesis of COVID-19 , 2020, Cellular and Molecular Gastroenterology and Hepatology.
[3] Xinwen Chen,et al. Human Embryonic Stem Cell-derived Lung Organoids: a Model for SARS-CoV-2 Infection and Drug Test , 2020 .
[4] Wenling Wang,et al. Morphogenesis and cytopathic effect of SARS-CoV-2 infection in human airway epithelial cells , 2020, Nature Communications.
[5] Jian-Piao Cai,et al. Differential immune activation profile of SARS-CoV-2 and SARS-CoV infection in human lung and intestinal cells: Implications for treatment with IFN-β and IFN inducer , 2020, Journal of Infection.
[6] Yang Han,et al. The ORF3a protein of SARS-CoV-2 induces apoptosis in cells , 2020, Cellular & Molecular Immunology.
[7] Fang Lin,et al. Clinical and pathological investigation of patients with severe COVID-19 , 2020, JCI Insight.
[8] O. Tsang,et al. Comparative tropism, replication kinetics, and cell damage profiling of SARS-CoV-2 and SARS-CoV with implications for clinical manifestations, transmissibility, and laboratory studies of COVID-19: an observational study , 2020, The Lancet Microbe.
[9] Dong Yang,et al. Comparative replication and immune activation profiles of SARS-CoV-2 and SARS-CoV in human lungs: an ex vivo study with implications for the pathogenesis of COVID-19 , 2020, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[10] K. To,et al. Simulation of the clinical and pathological manifestations of Coronavirus Disease 2019 (COVID-19) in golden Syrian hamster model: implications for disease pathogenesis and transmissibility , 2020, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[11] G. Gao,et al. A Novel Coronavirus from Patients with Pneumonia in China, 2019 , 2020, The New England journal of medicine.
[12] S. Lo,et al. A familial cluster of pneumonia associated with the 2019 novel coronavirus indicating person-to-person transmission: a study of a family cluster , 2020, The Lancet.
[13] Elizabeth J. Osterlund,et al. BCL-2 family proteins: changing partners in the dance towards death , 2017, Cell Death and Differentiation.
[14] C. Hetz,et al. The Unfolded Protein Response and Cell Fate Control. , 2017, Molecular cell.
[15] Z. Memish,et al. Human intestinal tract serves as an alternative infection route for Middle East respiratory syndrome coronavirus , 2017, Science Advances.
[16] C. Hetz,et al. BCL-2 family: integrating stress responses at the ER to control cell demise , 2017, Cell Death and Differentiation.
[17] H. Fearnhead,et al. Viral hijacking of host caspases: an emerging category of pathogen–host interactions , 2017, Cell Death and Differentiation.
[18] David K. Meyerholz,et al. Mouse-adapted MERS coronavirus causes lethal lung disease in human DPP4 knockin mice , 2017, Proceedings of the National Academy of Sciences.
[19] Damian Szklarczyk,et al. The STRING database in 2017: quality-controlled protein–protein association networks, made broadly accessible , 2016, Nucleic Acids Res..
[20] W. Parks,et al. Syndecan-1 Attenuates Lung Injury during Influenza Infection by Potentiating c-Met Signaling to Suppress Epithelial Apoptosis. , 2016, American journal of respiratory and critical care medicine.
[21] Chuan Qin,et al. MERS coronavirus induces apoptosis in kidney and lung by upregulating Smad7 and FGF2 , 2016, Nature Microbiology.
[22] D. Swerdlow,et al. Clinicopathologic, Immunohistochemical, and Ultrastructural Findings of a Fatal Case of Middle East Respiratory Syndrome Coronavirus Infection in the United Arab Emirates, April 2014 , 2016, The American Journal of Pathology.
[23] K. Yuen,et al. Middle East respiratory syndrome coronavirus M protein suppresses type I interferon expression through the inhibition of TBK1-dependent phosphorylation of IRF3 , 2016, Emerging Microbes & Infections.
[24] Chuan Qin,et al. Middle East Respiratory Syndrome Coronavirus Efficiently Infects Human Primary T Lymphocytes and Activates the Extrinsic and Intrinsic Apoptosis Pathways , 2015, The Journal of infectious diseases.
[25] K. Yuen,et al. Title Middle East respiratory syndrome coronavirus M protein suppresses type I interferon expression through the inhibition of TBK 1-dependent phosphorylation of IRF 3 , 2016 .
[26] Z. Liu,et al. Protein kinase R-like ER kinase and its role in endoplasmic reticulum stress-decided cell fate , 2015, Cell Death and Disease.
[27] B. Hogue,et al. Coronavirus envelope (E) protein remains at the site of assembly , 2015, Virology.
[28] Li Li,et al. The SARS-coronavirus membrane protein induces apoptosis via interfering with PDK1-PKB/Akt signalling. , 2014, The Biochemical journal.
[29] Christian Drosten,et al. Emerging human middle East respiratory syndrome coronavirus causes widespread infection and alveolar damage in human lungs. , 2013, American journal of respiratory and critical care medicine.
[30] C. Morimoto,et al. Bilateral Entry and Release of Middle East Respiratory Syndrome Coronavirus Induces Profound Apoptosis of Human Bronchial Epithelial Cells , 2013, Journal of Virology.
[31] T. Fung,et al. Upregulation of CHOP/GADD153 during Coronavirus Infectious Bronchitis Virus Infection Modulates Apoptosis by Restricting Activation of the Extracellular Signal-Regulated Kinase Pathway , 2013, Journal of Virology.
[32] R. Kaufman,et al. ER-stress-induced transcriptional regulation increases protein synthesis leading to cell death , 2013, Nature Cell Biology.
[33] A. Osterhaus,et al. Isolation of a novel coronavirus from a man with pneumonia in Saudi Arabia. , 2012, The New England journal of medicine.
[34] D. Tulasne,et al. Caspase cleavage of viral proteins, another way for viruses to make the best of apoptosis , 2012, Cell Death and Disease.
[35] M. Matthay,et al. The acute respiratory distress syndrome: pathogenesis and treatment. , 2011, Annual review of pathology.
[36] Dong-Yan Jin,et al. Severe Acute Respiratory Syndrome Coronavirus M Protein Inhibits Type I Interferon Production by Impeding the Formation of TRAF3·TANK·TBK1/IKKϵ Complex* , 2009, The Journal of Biological Chemistry.
[37] Matthias Mack,et al. Lung epithelial apoptosis in influenza virus pneumonia: the role of macrophage-expressed TNF-related apoptosis-inducing ligand , 2008, The Journal of experimental medicine.
[38] J. Peiris,et al. The M, E, and N Structural Proteins of the Severe Acute Respiratory Syndrome Coronavirus Are Required for Efficient Assembly, Trafficking, and Release of Virus-Like Particles , 2008, Journal of Virology.
[39] Julian Druce,et al. Induction of Apoptosis by the Severe Acute Respiratory Syndrome Coronavirus 7a Protein Is Dependent on Its Interaction with the Bcl-XL Protein , 2007, Journal of Virology.
[40] David K. Meyerholz,et al. Lethal Infection of K18-hACE2 Mice Infected with Severe Acute Respiratory Syndrome Coronavirus , 2006, Journal of Virology.
[41] P. Palese,et al. 7a Protein of Severe Acute Respiratory Syndrome Coronavirus Inhibits Cellular Protein Synthesis and Activates p38 Mitogen-Activated Protein Kinase , 2006, Journal of Virology.
[42] Ching-lung Lai,et al. SARS‐associated viral hepatitis caused by a novel coronavirus: Report of three cases , 2004, Hepatology.
[43] Xin Li,et al. The clinical pathology of severe acute respiratory syndrome (SARS): a report from China , 2003, The Journal of pathology.
[44] S. Pleschka,et al. Caspase 3 activation is essential for efficient influenza virus propagation , 2003, The EMBO journal.
[45] Y. Guan,et al. Coronavirus as a possible cause of severe acute respiratory syndrome , 2003, The Lancet.
[46] C. Benedict,et al. To kill or be killed: viral evasion of apoptosis , 2002, Nature Immunology.
[47] H. Kong. The Government of the Hong Kong Special Administrative Region , 2002 .
[48] B. Thomson. Viruses and apoptosis , 2001, International journal of experimental pathology.
[49] Anne Bertolotti,et al. Dynamic interaction of BiP and ER stress transducers in the unfolded-protein response , 2000, Nature Cell Biology.
[50] H. Vennema,et al. Coronavirus Particle Assembly: Primary Structure Requirements of the Membrane Protein , 1998, Journal of Virology.
[51] H. Vennema,et al. Nucleocapsid-independent assembly of coronavirus-like particles by co-expression of viral envelope protein genes. , 1996, The EMBO journal.
[52] Marian C. Horzinek,et al. Membrane assembly of the triple-spanning coronavirus M protein. Individual transmembrane domains show preferred orientation. , 1992, Journal of Biological Chemistry.
[53] Willis J. Tompkins,et al. Report from China , 1984, IEEE Engineering in Medicine and Biology Magazine.
[54] J. Bogdanowicz,et al. REPORT OF THREE CASES. , 1963, American journal of diseases of children.