Fitness of mCherry Reporter Tick-Borne Encephalitis Virus in Tick Experimental Models
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D. Růžek | Martin Palus | E. Nováková | B. Klempa | M. Sláviková | Jan Haviernik | J. Koči | V. Hönig | Veronika Pranclova | Ádám Kevély
[1] J. Hobson-Peters,et al. Reporter Flaviviruses as Tools to Demonstrate Homologous and Heterologous Superinfection Exclusion , 2022, Viruses.
[2] B. Klempa,et al. Alimentary Infections by Tick-Borne Encephalitis Virus , 2021, Viruses.
[3] C. Salata,et al. How relevant are in vitro culture models for study of tick-pathogen interactions? , 2021, Pathogens and global health.
[4] Jorge L. Arias-Arias,et al. Fluorescence Imaging Approaches in Flavivirus Research , 2021 .
[5] E. Gould,et al. Development and characterization of recombinant tick-borne encephalitis virus expressing mCherry reporter protein: a new tool for high-throughput screening of antiviral compounds, and neutralizing antibody assays. , 2020, Antiviral research.
[6] M. Bloom,et al. Characterization of flavivirus infection in salivary gland cultures from male Ixodes scapularis ticks , 2020, PLoS neglected tropical diseases.
[7] Chenglin Deng,et al. Generation and characterization of Japanese encephalitis virus expressing GFP reporter gene for high throughput drug screening , 2020, Antiviral Research.
[8] Michael E. Woolley,et al. Development, Characterization, and Application of Two Reporter-Expressing Recombinant Zika Viruses , 2020, Viruses.
[9] J. Drexler,et al. Dermacentor reticulatus is a vector of tick-borne encephalitis virus. , 2020, Ticks and tick-borne diseases.
[10] Y. Matsuura,et al. In Vivo Dynamics of Reporter Flaviviridae Viruses , 2019, Journal of Virology.
[11] M. Beer,et al. Exploring the Reservoir Hosts of Tick-Borne Encephalitis Virus , 2019, Viruses.
[12] D. Osolodkin,et al. Tick-borne encephalitis in Europe and Russia: Review of pathogenesis, clinical features, therapy, and vaccines. , 2019, Antiviral research.
[13] E. Fischer,et al. Dissecting Flavivirus Biology in Salivary Gland Cultures from Fed and Unfed Ixodes scapularis (Black-Legged Tick) , 2019, mBio.
[14] D. Růžek,et al. Kyasanur Forest disease virus infection activates human vascular endothelial cells and monocyte-derived dendritic cells , 2018, Emerging Microbes & Infections.
[15] X. de Lamballerie,et al. SuPReMe: a rapid reverse genetics method to generate clonal populations of recombinant RNA viruses , 2018, Emerging Microbes & Infections.
[16] Bunpote Siridechadilok,et al. Multi-color fluorescent reporter dengue viruses with improved stability for analysis of a multi-virus infection , 2018, PloS one.
[17] X. de Lamballerie,et al. Haiku: New paradigm for the reverse genetics of emerging RNA viruses , 2018, PloS one.
[18] L. Bell-Sakyi,et al. Properties of the tick-borne encephalitis virus population during persistent infection of ixodid ticks and tick cell lines. , 2017, Ticks and tick-borne diseases.
[19] T. Schwan,et al. Flavivirus Infection of Ixodes scapularis (Black-Legged Tick) Ex Vivo Organotypic Cultures and Applications for Disease Control , 2017, mBio.
[20] E. Gould,et al. Utilisation of ISA Reverse Genetics and Large-Scale Random Codon Re-Encoding to Produce Attenuated Strains of Tick-Borne Encephalitis Virus within Days , 2016, PloS one.
[21] E. Gould,et al. Tick-Borne Encephalitis Virus Structural Proteins Are the Primary Viral Determinants of Non-Viraemic Transmission between Ticks whereas Non-Structural Proteins Affect Cytotoxicity , 2016, PloS one.
[22] M. Bloom,et al. Stability of a Tick-Borne Flavivirus in Milk , 2016, Front. Bioeng. Biotechnol..
[23] D. Růžek,et al. Electron Tomography Analysis of Tick-Borne Encephalitis Virus Infection in Human Neurons , 2015, Scientific Reports.
[24] Vladislav V. Verkhusha,et al. A palette of fluorescent proteins optimized for diverse cellular environments , 2015, Nature Communications.
[25] F. Strle,et al. Tick-borne encephalitis: A review of epidemiology, clinical characteristics, and management. , 2015, World journal of clinical cases.
[26] E. Gould,et al. Single-stranded positive-sense RNA viruses generated in days using infectious subgenomic amplicons , 2014, The Journal of general virology.
[27] E. Gould,et al. Survival dynamics of tick-borne encephalitis virus in Ixodes ricinus ticks. , 2014, Ticks and tick-borne diseases.
[28] B. Klempa,et al. Non-viraemic transmission of tick-borne viruses. , 2013, Acta virologica.
[29] P. Shi,et al. Development and characterization of a stable luciferase dengue virus for high-throughput screening. , 2011, Antiviral research.
[30] E. Gould,et al. Cell lines from the soft tick Ornithodoros moubata , 2009, Experimental and Applied Acarology.
[31] J. Kopecký,et al. Growth of tick-borne encephalitis virus (European subtype) in cell lines from vector and non-vector ticks. , 2008, Virus research.
[32] O. Vapalahti,et al. Tick-borne encephalitis , 2008, The Lancet.
[33] Atsushi Miyawaki,et al. GFP-like proteins stably accumulate in lysosomes. , 2008, Cell structure and function.
[34] E. Gould,et al. Tick cell lines: tools for tick and tick-borne disease research. , 2007, Trends in parasitology.
[35] U. Munderloh,et al. Rickettsia monacensis sp. nov., a Spotted Fever Group Rickettsia, from Ticks (Ixodes ricinus) Collected in a European City Park , 2002, Applied and Environmental Microbiology.
[36] Y. Liu,et al. Establishment, maintenance and description of cell lines from the tick Ixodes scapularis. , 1994, The Journal of parasitology.
[37] P. Nuttall,et al. Amplification of tick‐borne encephalitis virus infection during co‐feeding of ticks , 1993, Medical and veterinary entomology.