A Mechanism of Unidirectional Transformation, Leading to Antibiotic Resistance, Occurs within Nasopharyngeal Pneumococcal Biofilm Consortia
暂无分享,去创建一个
K. Klugman | Jennifer A. N. Brophy | J. Vidal | Fuminori Sakai | Xueqing Wu | S. Lattar | Santiago M. Lattar
[1] S. Kaplan,et al. Invasive Serotype 35B Pneumococci Including an Expanding Serotype Switch Lineage , 2018, Emerging infectious diseases.
[2] K. Klugman,et al. Development and characterization of a synthetic DNA, NUversa, to be used as a standard in quantitative polymerase chain reactions for molecular pneumococcal serotyping , 2017, FEMS microbiology letters.
[3] B. Levin,et al. Competitive Dominance within Biofilm Consortia Regulates the Relative Distribution of Pneumococcal Nasopharyngeal Density , 2017, Applied and Environmental Microbiology.
[4] L. McGee,et al. Invasive Serotype 35B Pneumococci Including an Expanding Serotype Switch Lineage, United States, 2015–2016 , 2017, Emerging infectious diseases.
[5] Cheryl P. Andam,et al. Recombination in Streptococcus pneumoniae Lineages Increase with Carriage Duration and Size of the Polysaccharide Capsule , 2016, mBio.
[6] J. Hinds,et al. Impact of the 13-valent pneumococcal conjugate vaccine on Streptococcus pneumoniae multiple serotype carriage. , 2016, Vaccine.
[7] L. McGee,et al. Biological and Epidemiological Features of Antibiotic-Resistant Streptococcus pneumoniae in Pre- and Post-Conjugate Vaccine Eras: a United States Perspective , 2016, Clinical Microbiology Reviews.
[8] W. Wholey,et al. Coordinated Bacteriocin Expression and Competence in Streptococcus pneumoniae Contributes to Genetic Adaptation through Neighbor Predation , 2016, PLoS pathogens.
[9] M. Blokesch,et al. The DNA-Uptake Process of Naturally Competent Vibrio cholerae. , 2016, Trends in microbiology.
[10] R. Singleton,et al. Impact of the 13-valent pneumococcal conjugate vaccine (pcv13) on invasive pneumococcal disease and carriage in Alaska. , 2015, Vaccine.
[11] Cheryl P. Andam,et al. Mechanisms of genome evolution of Streptococcus. , 2015, Infection, genetics and evolution : journal of molecular epidemiology and evolutionary genetics in infectious diseases.
[12] L. Håvarstein,et al. Natural transformation and genome evolution in Streptococcus pneumoniae. , 2015, Infection, genetics and evolution : journal of molecular epidemiology and evolutionary genetics in infectious diseases.
[13] K. Mulholland,et al. Single-Plex Quantitative Assays for the Detection and Quantification of Most Pneumococcal Serotypes , 2015, PloS one.
[14] H. Tettelin,et al. Composite mobile genetic elements disseminating macrolide resistance in Streptococcus pneumoniae , 2015, Front. Microbiol..
[15] M. Blokesch,et al. The type VI secretion system of Vibrio cholerae fosters horizontal gene transfer , 2015, Science.
[16] Stephen D. Bentley,et al. Diversification of bacterial genome content through distinct mechanisms over different timescales , 2014, Nature Communications.
[17] Anne L. Wyllie,et al. Streptococcus pneumoniae in Saliva of Dutch Primary School Children , 2014, PloS one.
[18] C. Fraser,et al. Heterogeneity in the Frequency and Characteristics of Homologous Recombination in Pneumococcal Evolution , 2014, PLoS genetics.
[19] Jukka Corander,et al. Dense genomic sampling identifies highways of pneumococcal recombination , 2014, Nature Genetics.
[20] S. Normark,et al. Secretion of a pneumococcal type II secretion system pilus correlates with DNA uptake during transformation , 2014, Proceedings of the National Academy of Sciences.
[21] L. McGee,et al. Mutations within the rplD Gene of Linezolid-Nonsusceptible Streptococcus pneumoniae Strains Isolated in the United States , 2014, Antimicrobial Agents and Chemotherapy.
[22] H. Yi,et al. Novel Role for the Streptococcus pneumoniae Toxin Pneumolysin in the Assembly of Biofilms , 2013, mBio.
[23] K. Klugman,et al. Expression of Streptococcus pneumoniae Virulence-Related Genes in the Nasopharynx of Healthy Children , 2013, PloS one.
[24] E. Le Cam,et al. A Type IV Pilus Mediates DNA Binding during Natural Transformation in Streptococcus pneumoniae , 2013, PLoS pathogens.
[25] K. Klugman,et al. Influence of bacterial interactions on pneumococcal colonization of the nasopharynx. , 2013, Trends in microbiology.
[26] K. Klugman,et al. Quorum-Sensing Systems LuxS/Autoinducer 2 and Com Regulate Streptococcus pneumoniae Biofilms in a Bioreactor with Living Cultures of Human Respiratory Cells , 2013, Infection and Immunity.
[27] A. Hakansson,et al. High Levels of Genetic Recombination during Nasopharyngeal Carriage and Biofilm Formation in Streptococcus pneumoniae , 2012, mBio.
[28] Huamei Wei,et al. Fratricide Is Essential for Efficient Gene Transfer between Pneumococci in Biofilms , 2012, Applied and Environmental Microbiology.
[29] Lars Barquist,et al. A High-Resolution View of Genome-Wide Pneumococcal Transformation , 2012, PLoS pathogens.
[30] A. Hakansson,et al. Pneumococcal Interactions with Epithelial Cells Are Crucial for Optimal Biofilm Formation and Colonization In Vitro and In Vivo , 2012, Infection and Immunity.
[31] K. Klugman,et al. The LuxS-Dependent Quorum-Sensing System Regulates Early Biofilm Formation by Streptococcus pneumoniae Strain D39 , 2011, Infection and Immunity.
[32] S. Bentley,et al. Improved Detection of Nasopharyngeal Cocolonization by Multiple Pneumococcal Serotypes by Use of Latex Agglutination or Molecular Serotyping by Microarray , 2011, Journal of Clinical Microbiology.
[33] J. Burton,et al. Rapid Pneumococcal Evolution in Response to Clinical Interventions , 2011, Science.
[34] M. de Martino,et al. Realtime PCR Is More Sensitive than Multiplex PCR for Diagnosis and Serotyping in Children with Culture Negative Pneumococcal Invasive Disease , 2010, PloS one.
[35] S. Opal,et al. Pathogenesis, treatment, and prevention of pneumococcal pneumonia , 2009, The Lancet.
[36] O. Levine,et al. Editorial: Breathing New Life Into Pneumonia Epidemiology , 2009, American journal of epidemiology.
[37] T. Cherian,et al. Burden of disease caused by Streptococcus pneumoniae in children younger than 5 years: global estimates , 2009, The Lancet.
[38] J. Claverys,et al. The genetic transformation machinery: composition, localization, and mechanism. , 2009, FEMS microbiology reviews.
[39] Jeffrey N. Weiser,et al. The role of Streptococcus pneumoniae virulence factors in host respiratory colonization and disease , 2008, Nature Reviews Microbiology.
[40] A. Steigerwalt,et al. Evaluation and Improvement of Real-Time PCR Assays Targeting lytA, ply, and psaA Genes for Detection of Pneumococcal DNA , 2007, Journal of Clinical Microbiology.
[41] R. Hakenbeck,et al. A new integrative reporter plasmid for Streptococcus pneumoniae. , 2007, FEMS microbiology letters.
[42] J. Glass,et al. Genome Sequence of Avery's Virulent Serotype 2 Strain D39 of Streptococcus pneumoniae and Comparison with That of Unencapsulated Laboratory Strain R6 , 2006, Journal of bacteriology.
[43] R. Gertz,et al. Sequential Multiplex PCR Approach for Determining Capsular Serotypes of Streptococcus pneumoniae Isolates , 2006, Journal of Clinical Microbiology.
[44] G. Schoolnik,et al. Chitin Induces Natural Competence in Vibrio cholerae , 2005, Science.
[45] D. Stephens,et al. Macrolide Resistance in Streptococcus pneumoniae , 2016, Front. Cell. Infect. Microbiol..
[46] Sébastien Guiral,et al. Competence-programmed predation of noncompetent cells in the human pathogen Streptococcus pneumoniae: genetic requirements. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[47] J. Claverys,et al. Release of DNA into the medium by competent Streptococcus pneumoniae: kinetics, mechanism and stability of the liberated DNA , 2004, Molecular microbiology.
[48] S. Roseman,et al. The Vibrio cholerae chitin utilization program. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[49] R. Fleischmann,et al. Identification of competence pheromone responsive genes in Streptococcus pneumoniae by use of DNA microarrays , 2004, Molecular microbiology.
[50] S. Salzberg,et al. Complete Genome Sequence of a Virulent Isolate of Streptococcus pneumoniae , 2001, Science.
[51] R. Rimini,et al. Global analysis of transcription kinetics during competence development in Streptococcus pneumoniae using high density DNA arrays , 2000, Molecular microbiology.
[52] J. M. Smith,et al. Estimating recombinational parameters in Streptococcus pneumoniae from multilocus sequence typing data. , 2000, Genetics.
[53] J. A. Donkersloot,et al. A conservative amino acid mutation in the chromosome-encoded dihydrofolate reductase confers trimethoprim resistance in Streptococcus pneumoniae. , 1998, The Journal of infectious diseases.
[54] D. Morrison,et al. An unmodified heptadecapeptide pheromone induces competence for genetic transformation in Streptococcus pneumoniae. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[55] J. Claverys,et al. DNA processing during entry in transformation of Streptococcus pneumoniae. , 1993, The Journal of biological chemistry.
[56] L. Créancier,et al. The high level streptomycin resistance gene from Streptococcus pneumoniae is a homologue of the ribosomal protein S12 gene from Escherichia coli. , 1992, Nucleic acids research.
[57] R. Hotchkiss,et al. Appearance of genetic transforming activity in pneumococcal cultures. , 1960, Science.
[58] O. Avery,et al. STUDIES ON THE CHEMICAL NATURE OF THE SUBSTANCE INDUCING TRANSFORMATION OF PNEUMOCOCCAL TYPES , 1944, The Journal of experimental medicine.
[59] F. Griffith. The Significance of Pneumococcal Types , 1928, Journal of Hygiene.
[60] A. Tomasz. Streptococcus pneumoniae : molecular biology & mechanisms of disease , 2000 .