Identification of a new orthonairovirus associated with human febrile illness in China
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W. Wang | QUAN LIU | Xiaolong Lv | Liyan Sui | Zedong Wang | Chen Chen | He-Ting Sun | Jun Qian | Xu Zhang | Liang Li | Yinghua Zhao | Zheng-Lei Cheng | J. Shao | Jun Ma | Lin-Na Liu | Shuzheng Han | Li-Xin Ma
[1] J. Kuhn,et al. ICTV Virus Taxonomy Profile: Nairoviridae , 2020, The Journal of general virology.
[2] N. Jin,et al. A Tentative Tamdy Orthonairovirus Related to Febrile Illness in Northwestern China. , 2020, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[3] D. Leiby,et al. Emerging tick‐borne diseases and blood safety: summary of a public workshop , 2020, Transfusion.
[4] Quan Liu,et al. The discovery of segmented flaviviruses: implications for viral emergence. , 2020, Current opinion in virology.
[5] M. Shi,et al. Tamdy Virus in Ixodid Ticks Infesting Bactrian Camels, Xinjiang, China, 2018 , 2019, Emerging infectious diseases.
[6] Quan Liu,et al. A New Segmented Virus Associated with Human Febrile Illness in China. , 2019, The New England journal of medicine.
[7] C. Spiropoulou,et al. Crimean-Congo hemorrhagic fever and expansion from endemic regions. , 2019, Current opinion in virology.
[8] Xian-min Feng,et al. Isolation and genomic characterization of lymphocytic choriomeningitis virus in ticks from northeastern China , 2018, Transboundary and Emerging Diseases.
[9] H. Doğan,et al. Evaluation of the associations between endothelial dysfunction, inflammation and coagulation in Crimean-Congo hemorrhagic fever patients , 2018, Archives of Virology.
[10] Aneta J. Gubala,et al. Genomic Characterisation of Vinegar Hill Virus, An Australian Nairovirus Isolated in 1983 from Argas Robertsi Ticks Collected from Cattle Egrets , 2017, Viruses.
[11] B. Roca,et al. Increased homocysteine plasma level is associated with shortened prothrombin time in HIV-infected patients , 2016, HIV clinical trials.
[12] H. Guzmán,et al. Genomic Characterization of the Genus Nairovirus (Family Bunyaviridae) , 2016, Viruses.
[13] Jia-Fu Jiang,et al. Human infection with a novel tick-borne Anaplasma species in China: a surveillance study. , 2015, The Lancet. Infectious diseases.
[14] S. E. Rezatofighi,et al. Mechanism of Preferential Packaging of Negative Sense Genomic RNA by Viral Nucleoproteins in Crimean-Congo Hemorrhagic Fever Virus , 2015, The Protein Journal.
[15] M. Shi,et al. Unprecedented genomic diversity of RNA viruses in arthropods reveals the ancestry of negative-sense RNA viruses , 2015, eLife.
[16] Kunihiko Sadakane,et al. MEGAHIT: an ultra-fast single-node solution for large and complex metagenomics assembly via succinct de Bruijn graph , 2014, Bioinform..
[17] Björn Usadel,et al. Trimmomatic: a flexible trimmer for Illumina sequence data , 2014, Bioinform..
[18] M. Baron,et al. The molecular biology of nairoviruses, an emerging group of tick-borne arboviruses , 2013, Archives of Virology.
[19] W. Cao,et al. Rickettsia sibirica subspecies sibirica BJ-90 as a cause of human disease. , 2013, The New England journal of medicine.
[20] K. Katoh,et al. MAFFT Multiple Sequence Alignment Software Version 7: Improvements in Performance and Usability , 2013, Molecular biology and evolution.
[21] M. Baron,et al. Ganjam virus/Nairobi sheep disease virus induces a pro-inflammatory response in infected sheep , 2012, Veterinary Research.
[22] F. Hufert,et al. Genetic characterization of Erve virus, a European Nairovirus distantly related to Crimean-Congo hemorrhagic fever virus , 2012, Virus Genes.
[23] F. Rohwer,et al. Metagenomics and future perspectives in virus discovery , 2012, Current Opinion in Virology.
[24] Ramón Doallo,et al. ProtTest 3: fast selection of best-fit models of protein evolution , 2011, Bioinform..
[25] Qianjun Li,et al. Modulation of apoptosis and immune signaling pathways by the Hantaan virus nucleocapsid protein. , 2010, Virology.
[26] L. Kramer,et al. Quantitation of flaviviruses by fluorescent focus assay. , 2006, Journal of virological methods.
[27] Ö. Ergönül. Crimean-Congo haemorrhagic fever , 2006, The Lancet Infectious Diseases.
[28] S. Nichol,et al. Crimean-Congo hemorrhagic fever virus genome L RNA segment and encoded protein. , 2004, Virology.
[29] H. Feldmann,et al. Sequence determination of the Crimean-Congo hemorrhagic fever virus L segment. , 2004, Virology.
[30] O. Gascuel,et al. A simple, fast, and accurate algorithm to estimate large phylogenies by maximum likelihood. , 2003, Systematic biology.
[31] S. Nichol,et al. Characterization of the Glycoproteins of Crimean-Congo Hemorrhagic Fever Virus , 2002, Journal of Virology.
[32] R. Swanepoel,et al. Investigation of tick-borne viruses as pathogens of humans in South Africa and evidence of Dugbe virus infection in a patient with prolonged thrombocytopenia , 1996, Epidemiology and Infection.
[33] C. Feare,et al. Soldado virus (Hughes group) from Ornithodoros (Alectorobius) capensis (Ixodoidea: Argasidae) infesting Sooty Tern colonies in the Seychelles, Indian Ocean. , 1975, The American journal of tropical medicine and hygiene.
[34] K. Shah,et al. Isolation of Ganjam virus from a human case of febrile illness: a report of a laboratory infection and serological survey of human sera from three different states of India. , 1969, The Indian journal of medical research.
[35] V. Holíková,et al. Tick-borne viruses. , 2017, Acta virologica.
[36] C. Chastel. [Erve and Eyach: two viruses isolated in France, neuropathogenic for man and widely distributed in Western Europe]. , 1998, Bulletin de l'Academie nationale de medecine.
[37] V. L. Gromashevskiĭ,et al. [Isolation of Tamdy virus (Bunyaviridae) pathogenic for man from natural sources in Central Asia, Kazakhstan and Transcaucasia]. , 1984, Voprosy virusologii.
[38] M. Korolev,et al. Physicochemical characteristics, morphology and morphogenesis of virions of the causative agent of Crimean hemorrhagic fever. , 1977, Intervirology.