Adaptation to host cell environment during experimental evolution of Zika virus
暂无分享,去创建一个
T. Höfer | B. Boussau | A. Kohl | Mathilde Paris | M. Dreux | L. Sherry | E. Décembre | K. Kobert | Soheil Rastgou Talemi | Vincent Grass | S. Muñoz-González | Coralie Guy | A. Böckmann | P. V. Markov | Emilie Hardy | Elodie Décembre | Kassian Kobert
[1] G. Ebel,et al. Genome Number and Size Polymorphism in Zika Virus Infectious Units , 2020, Journal of Virology.
[2] Marion C Lanteri,et al. Zika virus RNA and IgM persistence in blood compartments and body fluids: a prospective observational study. , 2020, The Lancet. Infectious diseases.
[3] Z. Zhou,et al. Structural basis for STAT2 suppression by flavivirus NS5 , 2020, Nature Structural & Molecular Biology.
[4] J. Bloom,et al. Deep Mutational Scanning to Map How Zika Envelope Protein Mutations Affect Viral Growth and Antibody Escape , 2020, Proceedings.
[5] Patrick T. Dolan,et al. Principles of dengue virus evolvability derived from genotype-fitness maps in human and mosquito cells , 2020, bioRxiv.
[6] E. Domingo,et al. Broad and Dynamic Diversification of Infectious Hepatitis C Virus in a Cell Culture Environment , 2019, Journal of Virology.
[7] Michaela U. Gack,et al. Evasion of Innate and Intrinsic Antiviral Pathways by the Zika Virus , 2019, Viruses.
[8] M. Diamond,et al. Zika Virus NS3 Mimics a Cellular 14-3-3-Binding Motif to Antagonize RIG-I- and MDA5-Mediated Innate Immunity. , 2019, Cell host & microbe.
[9] C. Rice,et al. Risk of Zika microcephaly correlates with features of maternal antibodies , 2019, The Journal of experimental medicine.
[10] J. Bloom,et al. Deep Mutational Scanning Comprehensively Maps How Zika Envelope Protein Mutations Affect Viral Growth and Antibody Escape , 2019, Journal of Virology.
[11] M. Dreux,et al. Plasmacytoid Dendritic Cells and Infected Cells Form an Interferogenic Synapse Required for Antiviral Responses. , 2019, Cell host & microbe.
[12] B. Pulendran,et al. STAT5: a Target of Antagonism by Neurotropic Flaviviruses , 2019, Journal of Virology.
[13] G. Ebel,et al. Mutations present in a low-passage Zika virus isolate result in attenuated pathogenesis in mice. , 2019, Virology.
[14] M. Diamond,et al. Interferon lambda protects the female reproductive tract against Zika virus infection , 2019, Nature Communications.
[15] I. Molina,et al. Persistence of Zika Virus in Body Fluids — Final Report. , 2019, The New England journal of medicine.
[16] G. Paz-Bailey,et al. Persistence of Zika Virus in Body Fluids - Final Report. , 2019, The New England journal of medicine.
[17] B. Pickett,et al. Growth and adaptation of Zika virus in mammalian and mosquito cells , 2018, PLoS neglected tropical diseases.
[18] C. Glass,et al. Deconvolution of pro- and antiviral genomic responses in Zika virus-infected and bystander macrophages , 2018, Proceedings of the National Academy of Sciences.
[19] Daniel L. Vera,et al. An hPSC-Derived Tissue-Resident Macrophage Model Reveals Differential Responses of Macrophages to ZIKV and DENV Infection , 2018, Stem cell reports.
[20] F. Rovida,et al. Virus and Antibody Dynamics in Travelers With Acute Zika Virus Infection , 2018, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[21] M. Zazzi,et al. Comparative analysis of different cell systems for Zika virus (ZIKV) propagation and evaluation of anti-ZIKV compounds in vitro. , 2018, Virus research.
[22] T. Horvath,et al. Type I interferons instigate fetal demise after Zika virus infection , 2018, Science Immunology.
[23] J. Muñoz-Jordán,et al. Persistence of Zika Virus in Body Fluids — Final Report , 2017, New England journal of medicine.
[24] B. Jiang,et al. AXL promotes Zika virus infection in astrocytes by antagonizing type I interferon signalling , 2018, Nature Microbiology.
[25] A. Merits,et al. Reverse genetic system, genetically stable reporter viruses and packaged subgenomic replicon based on a Brazilian Zika virus isolate. , 2017, The Journal of general virology.
[26] Larry N. Singh,et al. The landscape of transcription errors in eukaryotic cells , 2017, Science Advances.
[27] M. Diamond,et al. Gestational Stage and IFN-λ Signaling Regulate ZIKV Infection In Utero. , 2017, Cell host & microbe.
[28] B. Duncan,et al. Infection-related microcephaly after the 2015 and 2016 Zika virus outbreaks in Brazil: a surveillance-based analysis , 2017, The Lancet.
[29] Andrew S. Miller,et al. Structure of the immature Zika virus at 9 Å resolution , 2016, Nature Structural &Molecular Biology.
[30] Marta Elena Losa-Iglesias,et al. Footwear used by older people and a history of hyperkeratotic lesions on the foot , 2017, Medicine.
[31] K. Eggan,et al. Genetic Ablation of AXL Does Not Protect Human Neural Progenitor Cells and Cerebral Organoids from Zika Virus Infection. , 2016, Cell stem cell.
[32] Zhiheng Xu,et al. Zika Virus Disrupts Neural Progenitor Development and Leads to Microcephaly in Mice. , 2016, Cell stem cell.
[33] Jordan J. Clark,et al. Full Genome Sequence and sfRNA Interferon Antagonist Activity of Zika Virus from Recife, Brazil , 2016, PLoS neglected tropical diseases.
[34] T. Pierson,et al. Zika Virus Is Not Uniquely Stable at Physiological Temperatures Compared to Other Flaviviruses , 2016, mBio.
[35] B. Lindenbach,et al. Zika virus productively infects primary human placenta-specific macrophages. , 2016, JCI insight.
[36] T. Rana,et al. Zika Virus Depletes Neural Progenitors in Human Cerebral Organoids through Activation of the Innate Immune Receptor TLR3. , 2016, Cell stem cell.
[37] B. Pulendran,et al. Zika Virus Infects Human Placental Macrophages. , 2016, Cell host & microbe.
[38] Zhiheng Xu,et al. Zika Virus Disrupts Neural Progenitor Development and Leads to Microcephaly in Mice. , 2016, Cell stem cell.
[39] S. Wilbanks. The Zika Virus , 2016 .
[40] M. Diamond,et al. Zika Virus Infection during Pregnancy in Mice Causes Placental Damage and Fetal Demise , 2016, Cell.
[41] Amadou A. Sall,et al. The Brazilian Zika virus strain causes birth defects in experimental models , 2016, Nature.
[42] Victor A. Kostyuchenko,et al. Structure of the thermally stable Zika virus , 2016, Nature.
[43] Emmanuel Fournier,et al. Guillain-Barré Syndrome outbreak associated with Zika virus infection in French Polynesia: a case-control study , 2016, The Lancet.
[44] Marilia Sá Carvalho,et al. Zika Virus Outbreak in Rio de Janeiro, Brazil: Clinical Characterization, Epidemiological and Virological Aspects , 2016, PLoS neglected tropical diseases.
[45] K. Ikuta,et al. Novel Polymerase Gene Mutations for Human Adaptation in Clinical Isolates of Avian H5N1 Influenza Viruses , 2016, PLoS pathogens.
[46] T. Pierson,et al. The 3.8 Å resolution cryo-EM structure of Zika virus , 2016, Science.
[47] Michael G. Rossmann,et al. The 3.8 angstrom resolution cryo-EM structure of Zika virus. , 2016 .
[48] J. Neyts,et al. The Viral Polymerase Inhibitor 7-Deaza-2’-C-Methyladenosine Is a Potent Inhibitor of In Vitro Zika Virus Replication and Delays Disease Progression in a Robust Mouse Infection Model , 2016, bioRxiv.
[49] D. Missé,et al. Biology of Zika Virus Infection in Human Skin Cells , 2015, Journal of Virology.
[50] G. Screaton,et al. Sensing of Immature Particles Produced by Dengue Virus Infected Cells Induces an Antiviral Response by Plasmacytoid Dendritic Cells , 2014, PLoS pathogens.
[51] S. Hensley,et al. Recent H3N2 Influenza Virus Clinical Isolates Rapidly Acquire Hemagglutinin or Neuraminidase Mutations When Propagated for Antigenic Analyses , 2014, Journal of Virology.
[52] Raul Andino,et al. Mutational and fitness landscapes of an RNA virus revealed through population sequencing , 2013, Nature.
[53] Jiajie Zhang,et al. PEAR: a fast and accurate Illumina Paired-End reAd mergeR , 2013, Bioinform..
[54] Libin Rong,et al. Mathematical analysis of multiscale models for hepatitis C virus dynamics under therapy with direct-acting antiviral agents. , 2013, Mathematical biosciences.
[55] Harel Dahari,et al. The hepatitis C virus NS5A inhibitor daclatasvir has a dual mode of action and leads to a new virus half-life estimate , 2013, Expert review of gastroenterology & hepatology.
[56] K. Stiasny,et al. The Membrane-Proximal “Stem” Region Increases the Stability of the Flavivirus E Protein Postfusion Trimer and Modulates Its Structure , 2013, Journal of Virology.
[57] E. Domingo,et al. Response of Hepatitis C Virus to Long-Term Passage in the Presence of Alpha Interferon: Multiple Mutations and a Common Phenotype , 2013, Journal of Virology.
[58] Qinfen Zhang,et al. CryoEM structure of the mature dengue virus at 3.5-Å resolution , 2012, Nature Structural &Molecular Biology.
[59] S. Harrison,et al. Structure of a Dengue Virus Envelope Protein Late-Stage Fusion Intermediate , 2012, Journal of Virology.
[60] F. Chisari,et al. Short-range exosomal transfer of viral RNA from infected cells to plasmacytoid dendritic cells triggers innate immunity. , 2012, Cell host & microbe.
[61] David I. Stuart,et al. Structure and functionality in flavivirus NS-proteins: Perspectives for drug design , 2010, Antiviral research.
[62] B. Autran,et al. Persistent Chronic Inflammation and Infection by Chikungunya Arthritogenic Alphavirus in Spite of a Robust Host Immune Response , 2010, The Journal of Immunology.
[63] Ursula Klingmüller,et al. Structural and practical identifiability analysis of partially observed dynamical models by exploiting the profile likelihood , 2009, Bioinform..
[64] Yuqiong Liang,et al. Toll-Like Receptor 3 Mediates Establishment of an Antiviral State against Hepatitis C Virus in Hepatoma Cells , 2009, Journal of Virology.
[65] E. Damonte,et al. Alternative infectious entry pathways for dengue virus serotypes into mammalian cells , 2009, Cellular microbiology.
[66] Mehdi Dehghan,et al. The method of lines for solution of the one-dimensional wave equation subject to an integral conservation condition , 2008, Comput. Math. Appl..
[67] P. Desprès,et al. Human Muscle Satellite Cells as Targets of Chikungunya Virus Infection , 2007, PloS one.
[68] H. Hauser,et al. IFN-type-I-mediated signaling is regulated by modulation of STAT2 nuclear export , 2006, Journal of Cell Science.
[69] S. Lemon,et al. Regulating Intracellular Antiviral Defense and Permissiveness to Hepatitis C Virus RNA Replication through a Cellular RNA Helicase, RIG-I , 2005, Journal of Virology.
[70] M. Burns,et al. Case-Control Study , 2020, Definitions.
[71] J. Hiscott,et al. Transcriptional Profiling of Interferon Regulatory Factor 3 Target Genes: Direct Involvement in the Regulation of Interferon-Stimulated Genes , 2002, Journal of Virology.
[72] R. Flavell,et al. Recognition of double-stranded RNA and activation of NF-κB by Toll-like receptor 3 , 2001, Nature.