Frankenbacteriosis targeting interactions between pathogen and symbiont to control infection in the tick vector
暂无分享,去创建一个
E. Fikrig | G. Neelakanta | M. Villar | M. Contreras | S. Díaz-Sánchez | L. Šimo | A. Cabezas-Cruz | S. Bonnet | P. Alberdi | Lorena Mazuecos | J. de la Fuente | A. Hernández-Jarguín | Almudena González-García | Girish Neelakanta
[1] U. Munderloh,et al. The Ixodes scapularis Symbiont Rickettsia buchneri Inhibits Growth of Pathogenic Rickettsiaceae in Tick Cells: Implications for Vector Competence , 2022, Frontiers in Veterinary Science.
[2] J. de la Fuente. Translational biotechnology for the control of ticks and tick-borne diseases. , 2021, Ticks and tick-borne diseases.
[3] Zeinab H. Helal,et al. Ixodes scapularis microbiome correlates with life stage, not the presence of human pathogens, in ticks submitted for diagnostic testing , 2020, PeerJ.
[4] D. Gauthier,et al. Factors affecting the microbiome of Ixodes scapularis and Amblyomma americanum , 2020, PloS one.
[5] M. Villar,et al. Allergic Reactions and Immunity in Response to Tick Salivary Biogenic Substances and Red Meat Consumption in the Zebrafish Model , 2020, Frontiers in Cellular and Infection Microbiology.
[6] J. Drewnowska,et al. First metagenomic report of Borrelia americana and Borrelia carolinensis in Poland - a preliminary study. , 2020, Annals of agricultural and environmental medicine : AAEM.
[7] J. de la Fuente,et al. Evolutionary Insights into the Tick Hologenome. , 2019, Trends in parasitology.
[8] M. Oshaghi,et al. Delivery of a Genetically Marked Serratia AS1 to Medically Important Arthropods for Use in RNAi and Paratransgenic Control Strategies , 2018, Microbial Ecology.
[9] J. de la Fuente,et al. Tick galactosyltransferases are involved in α-Gal synthesis and play a role during Anaplasma phagocytophilum infection and Ixodes scapularis tick vector development , 2018, Scientific Reports.
[10] A. Fauci,et al. Tickborne Diseases - Confronting a Growing Threat. , 2018, The New England journal of medicine.
[11] M. Villar,et al. Integrated metatranscriptomics and metaproteomics for the characterization of bacterial microbiota in unfed Ixodes ricinus. , 2018, Ticks and tick-borne diseases.
[12] J. de la Fuente. Controlling ticks and tick-borne diseases…looking forward. , 2018, Ticks and tick-borne diseases.
[13] Alexander W. Gofton,et al. Recent insights into the tick microbiome gained through next-generation sequencing , 2018, Parasites & Vectors.
[14] M. Radey,et al. Ixodes scapularis does not harbor a stable midgut microbiome , 2017, bioRxiv.
[15] P. Agre,et al. Driving mosquito refractoriness to Plasmodium falciparum with engineered symbiotic bacteria , 2017, Science.
[16] J. de la Fuente,et al. Targeting a global health problem: Vaccine design and challenges for the control of tick-borne diseases. , 2017, Vaccine.
[17] C. Gortázar,et al. Anaplasma phagocytophilum MSP4 and HSP70 Proteins Are Involved in Interactions with Host Cells during Pathogen Infection , 2017, Front. Cell. Infect. Microbiol..
[18] D. Wood,et al. Engineering of obligate intracellular bacteria: progress, challenges and paradigms , 2017, Nature Reviews Microbiology.
[19] O. Duron,et al. The Tick Microbiome: Why Non-pathogenic Microorganisms Matter in Tick Biology and Pathogen Transmission , 2017, Front. Cell. Infect. Microbiol..
[20] N. Johnson,et al. Tick-Pathogen Interactions and Vector Competence: Identification of Molecular Drivers for Tick-Borne Diseases , 2017, Front. Cell. Infect. Microbiol..
[21] Alison J. Scott,et al. Infection-derived lipids elicit an immune deficiency circuit in arthropods , 2017, Nature Communications.
[22] E. Fikrig,et al. Pathogen-mediated manipulation of arthropod microbiota to promote infection , 2017, Proceedings of the National Academy of Sciences.
[23] R. Prill,et al. Microbiome changes through ontogeny of a tick pathogen vector , 2016, Molecular ecology.
[24] D. Goodlett,et al. Human symbionts inject and neutralize antibacterial toxins to persist in the gut , 2016, Proceedings of the National Academy of Sciences.
[25] M. Vayssier-Taussat,et al. Co-infection of Ticks: The Rule Rather Than the Exception , 2016, PLoS neglected tropical diseases.
[26] S. Caracappa,et al. Evidence of co-infection with Mycobacterium bovis and tick-borne pathogens in a naturally infected sheep flock. , 2016, Ticks and tick-borne diseases.
[27] Robert M. Waterhouse,et al. Genomic insights into the Ixodes scapularis tick vector of Lyme disease , 2016, Nature Communications.
[28] M. Waldor,et al. A cell wall damage response mediated by a sensor kinase/response regulator pair enables beta-lactam tolerance , 2015, Proceedings of the National Academy of Sciences.
[29] M. Villar,et al. Integrated Metabolomics, Transcriptomics and Proteomics Identifies Metabolic Pathways Affected by Anaplasma phagocytophilum Infection in Tick Cells* , 2015, Molecular & Cellular Proteomics.
[30] E. Bonzón-Kulichenko,et al. Identification and Characterization of Anaplasma phagocytophilum Proteins Involved in Infection of the Tick Vector, Ixodes scapularis , 2015, PloS one.
[31] J. de la Fuente,et al. Infection of Ixodes spp. tick cells with different Anaplasma phagocytophilum isolates induces the inhibition of apoptotic cell death. , 2015, Ticks and tick-borne diseases.
[32] J. Bailey,et al. Variation in the Microbiota of Ixodes Ticks with Regard to Geography, Species, and Sex , 2015, Applied and Environmental Microbiology.
[33] E. Fikrig,et al. Tick microbiome: the force within. , 2015, Trends in parasitology.
[34] J. Wasmuth,et al. Does the Arthropod Microbiota Impact the Establishment of Vector-Borne Diseases in Mammalian Hosts? , 2015, PLoS pathogens.
[35] M. Villar,et al. Systems Biology of Tissue-Specific Response to Anaplasma phagocytophilum Reveals Differentiated Apoptosis in the Tick Vector Ixodes scapularis , 2015, PLoS genetics.
[36] S. B. Peterson,et al. Type VI secretion system effectors: poisons with a purpose , 2014, Nature Reviews Microbiology.
[37] Massimo Deligios,et al. Evaluating the Impact of Different Sequence Databases on Metaproteome Analysis: Insights from a Lab-Assembled Microbial Mixture , 2013, PloS one.
[38] Koichiro Tamura,et al. MEGA6: Molecular Evolutionary Genetics Analysis version 6.0. , 2013, Molecular biology and evolution.
[39] Michael Börsch,et al. Twisting and subunit rotation in single FOF1-ATP synthase , 2013, Philosophical Transactions of the Royal Society B: Biological Sciences.
[40] A. E. Senior. Two ATPases , 2012, The Journal of Biological Chemistry.
[41] Ravi Durvasula,et al. Paratransgenic Control of Vector Borne Diseases , 2011, International journal of biological sciences.
[42] K. Walldén,et al. Type IV secretion systems: versatility and diversity in function , 2010, Cellular microbiology.
[43] A. Matlow,et al. A novel selective growth medium-PCR assay to isolate and detect Sphingomonas in environmental samples. , 2010, Journal of microbiological methods.
[44] D. Fish,et al. Niche partitioning of Borrelia burgdorferi and Borrelia miyamotoi in the same tick vector and mammalian reservoir species. , 2009, The American journal of tropical medicine and hygiene.
[45] J. de la Fuente,et al. Anaplasma phagocytophilum and Anaplasma marginale Elicit Different Gene Expression Responses in Cultured Tick Cells , 2009, Comparative and functional genomics.
[46] S. Stuen. Anaplasma Phagocytophilum - the Most Widespread Tick-Borne Infection in Animals in Europe , 2007, Veterinary Research Communications.
[47] C. Almazán,et al. Experimental Infection of C3H/HeJ Mice with the NY18 Isolate of Anaplasma phagocytophilum , 2007, Veterinary pathology.
[48] H. Ohta,et al. Genetic Transformation System for Members of the Genera, Sphingomonas, Sphingobium, Novosphingobium and Sphingopyxis , 2006 .
[49] J. Fuente,et al. Reduction of tick infections with Anaplasma marginale and A. phagocytophilum by targeting the tick protective antigen subolesin , 2006, Parasitology Research.
[50] R. Massung,et al. Multiplex Real-Time PCR for Detection of Anaplasma phagocytophilum and Borrelia burgdorferi , 2004, Journal of Clinical Microbiology.
[51] W. Verstraete,et al. Occurrence and Phylogenetic Diversity of Sphingomonas Strains in Soils Contaminated with Polycyclic Aromatic Hydrocarbons , 2004, Applied and Environmental Microbiology.
[52] J. de la Fuente,et al. Identification of protective antigens for the control of Ixodes scapularis infestations using cDNA expression library immunization. , 2003, Vaccine.
[53] R. Ostfeld,et al. Climate Warming and Disease Risks for Terrestrial and Marine Biota , 2002, Science.
[54] J. L. Goodman,et al. Invasion and Intracellular Development of the Human Granulocytic Ehrlichiosis Agent in Tick Cell Culture , 1999, Journal of Clinical Microbiology.
[55] C. Beard,et al. Bacterial symbiosis in arthropods and the control of disease transmission. , 1998, Emerging infectious diseases.
[56] C. Beard,et al. Prevention of insect-borne disease: an approach using transgenic symbiotic bacteria. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[57] E. Myers,et al. Basic local alignment search tool. , 1990, Journal of molecular biology.
[58] T. Ezaki,et al. Proposals of Sphingomonas paucimobilis gen. nov. and comb. nov., Sphingomonas parapaucimobilis sp. nov., Sphingomonas yanoikuyae sp. nov., Sphingomonas adhaesiva sp. nov., Sphingomonas capsulata comb, nov., and Two Genospecies of the Genus Sphingomonas , 1990, Microbiology and immunology.
[59] L. Baddour,et al. Adherence of coagulase-negative staphylococci to plastic tissue culture plates: a quantitative model for the adherence of staphylococci to medical devices , 1985, Journal of clinical microbiology.
[60] J. Felsenstein. CONFIDENCE LIMITS ON PHYLOGENIES: AN APPROACH USING THE BOOTSTRAP , 1985, Evolution; international journal of organic evolution.
[61] P. Krause,et al. Coinfection by Ixodes Tick-Borne Pathogens: Ecological, Epidemiological, and Clinical Consequences. , 2016, Trends in parasitology.
[62] M. Villar,et al. Vaccinomics Approach to Tick Vaccine Development. , 2016, Methods in molecular biology.
[63] L. Šimo,et al. Validation of Internal Reference Genes for Real-Time Quantitative Polymerase Chain Reaction Studies in the Tick, Ixodes scapularis (Acari: Ixodidae) , 2013, Journal of medical entomology.
[64] C. Fuqua,et al. Bacterial competition: surviving and thriving in the microbial jungle , 2010, Nature Reviews Microbiology.