Application of a High-Throughput Targeted Sequence AmpliSeq Procedure to Assess the Presence and Variants of Virulence Genes in Salmonella
暂无分享,去创建一个
[1] Zhengzheng Cao,et al. Virulence Comparison of Salmonella enterica Subsp. enterica Isolates from Chicken and Whole Genome Analysis of the High Virulent Strain S. Enteritidis 211 , 2021, Microorganisms.
[2] P. Banerjee,et al. Association of Virulence and Antibiotic Resistance in Salmonella—Statistical and Computational Insights into a Selected Set of Clinical Isolates , 2020, Microorganisms.
[3] C. Greenwood,et al. Combining Whole-Genome Sequencing and Multimodel Phenotyping To Identify Genetic Predictors of Salmonella Virulence , 2020, mSphere.
[4] Mengyao Wang,et al. Salmonella Virulence and Immune Escape , 2020, Microorganisms.
[5] R. Gao,et al. Virulence Determinants of Non-typhoidal Salmonellae , 2019, Microorganisms.
[6] M. Wiedmann,et al. Embracing Diversity: Differences in Virulence Mechanisms, Disease Severity, and Host Adaptations Contribute to the Success of Nontyphoidal Salmonella as a Foodborne Pathogen , 2019, Front. Microbiol..
[7] Alexey V. Rakov,et al. Association of Salmonella virulence factor alleles with intestinal and invasive serovars , 2019, BMC Genomics.
[8] S. M. Jajere. A review of Salmonella enterica with particular focus on the pathogenicity and virulence factors, host specificity and antimicrobial resistance including multidrug resistance , 2019, Veterinary world.
[9] Denise N. Bronner,et al. Endogenous Enterobacteriaceae underlie variation in susceptibility to Salmonella infection , 2019, Nature Microbiology.
[10] E. Franz,et al. Phenotypic Prediction: Linking in vitro Virulence to the Genomics of 59 Salmonella enterica Strains , 2019, Front. Microbiol..
[11] M. Cormican,et al. Genomic approaches used to investigate an atypical outbreak of Salmonella Adjame , 2019, Microbial genomics.
[12] M. Hossain,et al. Inhibition of Salmonella Typhimurium adhesion, invasion, and intracellular survival via treatment with methyl gallate alone and in combination with marbofloxacin , 2018, Veterinary Research.
[13] Timothy P. L. Smith,et al. Comparative genomics of Salmonella enterica serovar Montevideo reveals lineage-specific gene differences that may influence ecological niche association , 2018, Microbial genomics.
[14] Z. Al-Hassnan,et al. Validation of Ion TorrentTM Inherited Disease Panel with the PGMTM Sequencing Platform for Rapid and Comprehensive Mutation Detection , 2018, Genes.
[15] M. Mitne-Neto,et al. Development and validation of a variant detection workflow for BRCA1 and BRCA2 genes and its clinical application based on the Ion Torrent technology , 2017, Human Genomics.
[16] Ismail Fliss,et al. A Syst-OMICS Approach to Ensuring Food Safety and Reducing the Economic Burden of Salmonellosis , 2017, Front. Microbiol..
[17] K. Amoako,et al. Draft Genome Sequences of Two Strains of Salmonella enterica Serovar Typhimurium Displaying Different Virulence in an Experimental Chicken Model , 2017, Genome Announcements.
[18] Eduardo N. Taboada,et al. The Salmonella In Silico Typing Resource (SISTR): An Open Web-Accessible Tool for Rapidly Typing and Subtyping Draft Salmonella Genome Assemblies , 2016, PloS one.
[19] Sky W. Brubaker,et al. Cutting Edge: Inflammasome Activation in Primary Human Macrophages Is Dependent on Flagellin , 2015, The Journal of Immunology.
[20] Jianhua Shi,et al. Truncation and Activation of Dual Specificity Tyrosine Phosphorylation-regulated Kinase 1A by Calpain I , 2015, The Journal of Biological Chemistry.
[21] S. Bustin,et al. The reproducibility of biomedical research: Sleepers awake! , 2014, Biomolecular detection and quantification.
[22] G. Grassl,et al. Same species, different diseases: how and why typhoidal and non-typhoidal Salmonella enterica serovars differ , 2014, Front. Microbiol..
[23] Brendan R. Jackson,et al. Outbreak-associated Salmonella enterica Serotypes and Food Commodities, United States, 1998–2008 , 2013, Emerging infectious diseases.
[24] J. Vila,et al. Salmonella enterica Serovar Typhimurium Skills To Succeed in the Host: Virulence and Regulation , 2013, Clinical Microbiology Reviews.
[25] C. Gabel,et al. Interleukin-36 (IL-36) Ligands Require Processing for Full Agonist (IL-36α, IL-36β, and IL-36γ) or Antagonist (IL-36Ra) Activity , 2011, The Journal of Biological Chemistry.
[26] M. Anjum,et al. Rapid Genoserotyping Tool for Classification of Salmonella Serovars , 2011, Journal of Clinical Microbiology.
[27] A. Vieira,et al. WHO Global Foodborne Infections Network Country Databank – a resource to link human and non-human sources of Salmonella. , 2009 .
[28] P. Freemont,et al. SseL, a Salmonella deubiquitinase required for macrophage killing and virulence , 2007, Proceedings of the National Academy of Sciences.
[29] Karl A. Bettelheim,et al. Comparison of Virulence Gene Profiles of Escherichia coli Strains Isolated from Healthy and Diarrheic Swine , 2006, Applied and Environmental Microbiology.
[30] J. V. van Dijk,et al. Distribution of "classic" virulence factors among Salmonella spp. , 2005, FEMS immunology and medical microbiology.
[31] J. Fierer,et al. Diverse virulence traits underlying different clinical outcomes of Salmonella infection. , 2001, The Journal of clinical investigation.
[32] I. Kukavica-Ibrulj,et al. Salmonella enterica subsp. enterica virulence potential can be linked to higher survival within a dynamic in vitro human gastrointestinal model. , 2022, Food microbiology.