The small non-coding RNA B11 regulates multiple facets of Mycobacterium abscessus virulence
暂无分享,去创建一个
Scarlet S. Shell | M. Jackson | D. Cirillo | H. Johansen | N. Loré | D. Barkan | J. Xiao | P. Miotto | S. K. Angala | Huaming Sun | Michal Meir | C. Riva | M. C. Martini | Maria-Anna Misiakou | M. N. Alonso | Catherine S. Masiello | Justin K. Moy | Michal Bar-Oz
[1] K. Arnvig,et al. Premature termination of transcription is shaped by Rho and translated uORFS in Mycobacterium tuberculosis. , 2023, iScience.
[2] S. Cole,et al. Rho-dependent transcription termination is the dominant mechanism in Mycobacterium tuberculosis. , 2023, Biochimica et biophysica acta. Gene regulatory mechanisms.
[3] A. Adler,et al. Glycopeptidolipid Defects Leading to Rough Morphotypes of Mycobacterium abscessus Do Not Confer Clinical Antibiotic Resistance , 2023, Microbiology spectrum.
[4] Jamie Richards,et al. Graded impact of obstacle size on scanning by RNase E , 2023, Nucleic acids research.
[5] A. Spitaleri,et al. The aminoglycoside-modifying enzyme Eis2 represents a new potential in vivo target for reducing antimicrobial drug resistance in Mycobacterium abscessus complex , 2022, European Respiratory Journal.
[6] S. Niemann,et al. Delineating Mycobacterium abscessus population structure and transmission employing high-resolution core genome multilocus sequence typing , 2022, Nature Communications.
[7] L. Kremer,et al. The ESX-4 substrates, EsxU and EsxT, modulate Mycobacterium abscessus fitness , 2022, PLoS pathogens.
[8] T. Dutta,et al. MTS1338 in Mycobacterium tuberculosis promotes detoxification of reactive oxygen species under oxidative stress. , 2021, Tuberculosis.
[9] R. Lin,et al. Molecular epidemiology and phylogenomic analysis of Mycobacterium abscessus clinical isolates in an Asian population , 2021, Microbial genomics.
[10] T. Azhikina,et al. Small Noncoding RNAs and Their Role in the Pathogenesis of Mycobacterium tuberculosis Infection , 2021, Biochemistry. Biokhimiia.
[11] Jamie Richards,et al. Widespread Protection of RNA Cleavage Sites by a Riboswitch Aptamer that Folds as a Compact Obstacle to Scanning by RNase E. , 2020, Molecular cell.
[12] Daniel Barkan,et al. A Simplified and Efficient Method for Himar-1 Transposon Sequencing in Bacteria, Demonstrated by Creation and Analysis of a Saturated Transposon-Mutant Library in Mycobacterium abscessus , 2020, mSystems.
[13] M. Hogardt,et al. Antimicrobial Susceptibility and Phylogenetic Relations in a German Cohort Infected with Mycobacterium abscessus , 2020, Journal of Clinical Microbiology.
[14] A. Bragonzi,et al. A New Model of Chronic Mycobacterium abscessus Lung Infection in Immunocompetent Mice , 2020, bioRxiv.
[15] M. Shimoda,et al. The rough colony morphotype of Mycobacterium avium exhibits high virulence in human macrophages and mice. , 2020, Journal of medical microbiology.
[16] Gene-Wei Li,et al. Functionally uncoupled transcription-translation in Bacillus subtilis , 2020, Nature.
[17] T. Rogers,et al. Genomic analysis of an Irish population of Mycobacterium abscessus complex collected between 2006 and 2017. , 2020, Journal of clinical microbiology.
[18] A. Jayaprakash,et al. Transposon mutagenesis in Mycobacterium kansasii links a small RNA gene to colony morphology and biofilm formation and identifies 9,885 intragenic insertions that do not compromise colony outgrowth , 2020, MicrobiologyOpen.
[19] S. R. Hegde,et al. Genome-wide identification of the context-dependent sRNA expression in Mycobacterium tuberculosis , 2020, BMC Genomics.
[20] M. Laub,et al. A Simple, Cost-Effective, and Robust Method for rRNA Depletion in RNA-Sequencing Studies , 2020, mBio.
[21] K. McDonough,et al. Small RNA Mcr11 requires the transcription factor AbmR for stable expression and regulates genes involved in the central metabolism of Mycobacterium tuberculosis , 2019, Molecular microbiology.
[22] A. Kaprelyants,et al. MTS1338, A Small Mycobacterium tuberculosis RNA, Regulates Transcriptional Shifts Consistent With Bacterial Adaptation for Entering Into Dormancy and Survival Within Host Macrophages , 2019, Front. Cell. Infect. Microbiol..
[23] F. Vandenesch,et al. RsaC sRNA modulates the oxidative stress response of Staphylococcus aureus during manganese starvation , 2019, Nucleic acids research.
[24] Scarlet S. Shell,et al. mRNA Degradation Rates Are Coupled to Metabolic Status in Mycobacterium smegmatis , 2019, mBio.
[25] C. K. Vanderpool,et al. The Small RNA PinT Contributes to PhoP-Mediated Regulation of the Salmonella Pathogenicity Island 1 Type III Secretion System in Salmonella enterica Serovar Typhimurium , 2019, Journal of bacteriology.
[26] Jamie Richards,et al. Obstacles to Scanning by RNase E Govern Bacterial mRNA Lifetimes by Hindering Access to Distal Cleavage Sites. , 2019, Molecular cell.
[27] David Bogumil,et al. A proteomics approach for the identification of species-specific immunogenic proteins in the Mycobacterium abscessus complex. , 2019, Microbes and infection.
[28] Scarlet S. Shell,et al. Defining the Transcriptional and Post-transcriptional Landscapes of Mycobacterium smegmatis in Aerobic Growth and Hypoxia , 2019, Front. Microbiol..
[29] Jun Liu,et al. Mycobacterium tuberculosis 6C sRNA binds multiple mRNA targets via C-rich loops independent of RNA chaperones , 2019, Nucleic acids research.
[30] B. Kallipolitis,et al. The LhrC sRNAs control expression of T cell-stimulating antigen TcsA in Listeria monocytogenes by decreasing tcsA mRNA stability , 2019, RNA biology.
[31] Konrad U. Förstner,et al. The Major RNA-Binding Protein ProQ Impacts Virulence Gene Expression in Salmonella enterica Serovar Typhimurium , 2019, mBio.
[32] P. Bifani,et al. The addition of avibactam renders piperacillin an effective treatment for Mycobacterium abscessus infection in an in vivo model , 2018, Antimicrobial Resistance & Infection Control.
[33] M. Chase,et al. Small RNA profiling in Mycobacterium tuberculosis identifies MrsI as necessary for an anticipatory iron sparing response , 2018, Proceedings of the National Academy of Sciences.
[34] P. Flume,et al. Nontuberculous Mycobacteria in Cystic Fibrosis , 2018, Seminars in Respiratory and Critical Care Medicine.
[35] Michael T Laub,et al. Global Analysis of the E. coli Toxin MazF Reveals Widespread Cleavage of mRNA and the Inhibition of rRNA Maturation and Ribosome Biogenesis. , 2018, Molecular cell.
[36] D. Barkan,et al. Establishment and Validation of Galleria mellonella as a Novel Model Organism To Study Mycobacterium abscessus Infection, Pathogenesis, and Treatment , 2018, Antimicrobial Agents and Chemotherapy.
[37] Sze Yan Liu,et al. Mycobacterium abscessus Complex Infections: A Retrospective Cohort Study , 2018, Open forum infectious diseases.
[38] J. Pritchard,et al. Identification of genes required for Mycobacterium abscessus growth in vivo with a prominent role of the ESX-4 locus , 2018, Proceedings of the National Academy of Sciences.
[39] C. Condon,et al. Initiating ribosomes and a 5′/3′-UTR interaction control ribonuclease action to tightly couple B. subtilis hbs mRNA stability with translation , 2017, Nucleic acids research.
[40] P. Rancoita,et al. Mycobacterium abscessus in patients with cystic fibrosis: low impact of inter-human transmission in Italy , 2017, European Respiratory Journal.
[41] J. Parkhill,et al. Genomic epidemiology of a national outbreak of post-surgical Mycobacterium abscessus wound infections in Brazil , 2017, Microbial genomics.
[42] C. Condon,et al. sRNA-mediated activation of gene expression by inhibition of 5'-3’ exonucleolytic mRNA degradation , 2017, eLife.
[43] J. Livny,et al. Depleting Mycobacterium tuberculosis of the transcription termination factor Rho causes pervasive transcription and rapid death , 2017, Nature Communications.
[44] Brendan J. Loftus,et al. Functional characterization of the Mycobacterium abscessus genome coupled with condition specific transcriptomics reveals conserved molecular strategies for host adaptation and persistence , 2016, BMC Genomics.
[45] E. Groisman,et al. Learning from the Leaders: Gene Regulation by the Transcription Termination Factor Rho. , 2016, Trends in biochemical sciences.
[46] L. Kremer,et al. The distinct fate of smooth and rough Mycobacterium abscessus variants inside macrophages , 2016, Open Biology.
[47] Peter J. Diggle,et al. Comparing the harmful effects of nontuberculous mycobacteria and Gram negative bacteria on lung function in patients with cystic fibrosis☆ , 2016, Journal of cystic fibrosis : official journal of the European Cystic Fibrosis Society.
[48] P. Polgreen,et al. Treatment of Mycobacterium abscessus Infection , 2016, Emerging infectious diseases.
[49] P. Flume. US Cystic Fibrosis Foundation and European Cystic Fibrosis Society consensus recommendations for the management of non-tuberculous mycobacteria in individuals with cystic fibrosis. , 2016, Journal of cystic fibrosis : official journal of the European Cystic Fibrosis Society.
[50] Gaetano T. Montelione,et al. Codon influence on protein expression in E. coli correlates with mRNA levels , 2016, Nature.
[51] M. Chase,et al. Leaderless Transcripts and Small Proteins Are Common Features of the Mycobacterial Translational Landscape , 2015, PLoS genetics.
[52] W. Huber,et al. Moderated estimation of fold change and dispersion for RNA-seq data with DESeq2 , 2014, Genome Biology.
[53] L. Krásný,et al. Ms1, a novel sRNA interacting with the RNA polymerase core in mycobacteria , 2014, Nucleic acids research.
[54] C. Vilchèze,et al. Enhanced Specialized Transduction Using Recombineering in Mycobacterium tuberculosis , 2014, mBio.
[55] J. Rougemont,et al. The PhoP-Dependent ncRNA Mcr7 Modulates the TAT Secretion System in Mycobacterium tuberculosis , 2014, PLoS pathogens.
[56] A. Bragonzi,et al. Long term chronic Pseudomonas aeruginosa airway infection in mice. , 2014, Journal of visualized experiments : JoVE.
[57] C. Fraser,et al. High-level Relatedness among Mycobacterium abscessus subsp. massiliense Strains from Widely Separated Outbreaks , 2014, Emerging infectious diseases.
[58] K. Kissa,et al. Mycobacterium abscessus cording prevents phagocytosis and promotes abscess formation , 2014, Proceedings of the National Academy of Sciences.
[59] Olga T. Schubert,et al. Genome-wide Mapping of Transcriptional Start Sites Defines an Extensive Leaderless Transcriptome in Mycobacterium tuberculosis , 2013, Cell reports.
[60] J. Coppee,et al. Identification and characterization of the genetic changes responsible for the characteristic smooth‐to‐rough morphotype alterations of clinically persistent Mycobacterium abscessus , 2013, Molecular microbiology.
[61] J. Herrmann,et al. Molecular Longitudinal Tracking of Mycobacterium abscessus spp. during Chronic Infection of the Human Lung , 2013, PloS one.
[62] Wei Shi,et al. featureCounts: an efficient general purpose program for assigning sequence reads to genomic features , 2013, Bioinform..
[63] J. Parkhill,et al. Whole-genome sequencing to identify transmission of Mycobacterium abscessus between patients with cystic fibrosis: a retrospective cohort study , 2013, The Lancet.
[64] Diogo F. Veiga,et al. Genome-Wide Discovery of Small RNAs in Mycobacterium tuberculosis , 2012, PloS one.
[65] Pan‐Chyr Yang,et al. Risk factors for Mycobacterium chelonae-abscessus pulmonary disease persistence and deterioration. , 2012, The Journal of infection.
[66] Matthew Berriman,et al. Artemis: an integrated platform for visualization and analysis of high-throughput sequence-based experimental data , 2011, Bioinform..
[67] Lisa B. Davidson,et al. Mycobacterium abscessus Glycopeptidolipid Prevents Respiratory Epithelial TLR2 Signaling as Measured by HβD2 Gene Expression and IL-8 Release , 2011, PloS one.
[68] G. Dougan,et al. Sequence-Based Analysis Uncovers an Abundance of Non-Coding RNA in the Total Transcriptome of Mycobacterium tuberculosis , 2011, PLoS pathogens.
[69] Marcel Martin. Cutadapt removes adapter sequences from high-throughput sequencing reads , 2011 .
[70] J. Belisle,et al. Lipidomic analyses of Mycobacterium tuberculosis based on accurate mass measurements and the novel “Mtb LipidDB”[S] , 2011, Journal of Lipid Research.
[71] Lisa B. Davidson,et al. Deletion of the mmpL4b gene in the Mycobacterium abscessus glycopeptidolipid biosynthetic pathway results in loss of surface colonization capability, but enhanced ability to replicate in human macrophages and stimulate their innate immune response. , 2011, Microbiology.
[72] Jeanette Treviño,et al. The group A Streptococcus small regulatory RNA FasX enhances streptokinase activity by increasing the stability of the ska mRNA transcript , 2010, Molecular microbiology.
[73] M. Glickman,et al. Redundant Function of cmaA2 and mmaA2 in Mycobacterium tuberculosis cis Cyclopropanation of Oxygenated Mycolates , 2010, Journal of bacteriology.
[74] G. Dougan,et al. Cooperation Between Translating Ribosomes and RNA Polymerase in Transcription Elongation , 2010, Science.
[75] D. van Soolingen,et al. Clinical relevance of Mycobacterium chelonae-abscessus group isolation in 95 patients. , 2009, The Journal of infection.
[76] J. Gaillard,et al. Multicenter Study of Prevalence of Nontuberculous Mycobacteria in Patients with Cystic Fibrosis in France , 2009, Journal of Clinical Microbiology.
[77] T. Byrd,et al. Mycobacterium abscessus Glycopeptidolipids Mask Underlying Cell Wall Phosphatidyl-myo-Inositol Mannosides Blocking Induction of Human Macrophage TNF-α by Preventing Interaction with TLR21 , 2009, The Journal of Immunology.
[78] D. Young,et al. Identification of small RNAs in Mycobacterium tuberculosis , 2009, Molecular microbiology.
[79] V. Barbe,et al. Non Mycobacterial Virulence Genes in the Genome of the Emerging Pathogen Mycobacterium abscessus , 2009, PloS one.
[80] Gonçalo R. Abecasis,et al. The Sequence Alignment/Map format and SAMtools , 2009, Bioinform..
[81] W. Alkema,et al. BioVenn – a web application for the comparison and visualization of biological lists using area-proportional Venn diagrams , 2008, BMC Genomics.
[82] J. Risler,et al. Genomics of glycopeptidolipid biosynthesis in Mycobacterium abscessus and M. chelonae , 2007, BMC Genomics.
[83] G. Hatfull,et al. Recombineering in Mycobacterium tuberculosis , 2007, Nature Methods.
[84] M. Ciampi,et al. Rho-dependent terminators and transcription termination. , 2006, Microbiology.
[85] F. Gao,et al. Trans-cyclopropanation of mycolic acids on trehalose dimycolate suppresses Mycobacterium tuberculosis -induced inflammation and virulence. , 2006, The Journal of clinical investigation.
[86] R. Kolter,et al. Spontaneous reversion of Mycobacterium abscessus from a smooth to a rough morphotype is associated with reduced expression of glycopeptidolipid and reacquisition of an invasive phenotype. , 2006, Microbiology.
[87] J. Belasco,et al. Lost in translation: the influence of ribosomes on bacterial mRNA decay. , 2005, Genes & development.
[88] D. Bechhofer,et al. Effect of Translational Signals on mRNA Decay in Bacillus subtilis , 2003, Journal of bacteriology.
[89] Ji‐Hyun Lee,et al. Nontuberculous mycobacteria. I: multicenter prevalence study in cystic fibrosis. , 2003, American journal of respiratory and critical care medicine.
[90] G. Hambraeus,et al. A 5' stem-loop and ribosome binding but not translation are important for the stability of Bacillus subtilis aprE leader mRNA. , 2002, Microbiology.
[91] M. Hecker,et al. The stability of mRNA from the gsiB gene of Bacillus subtilis is dependent on the presence of a strong ribosome binding site , 1998, Molecular and General Genetics MGG.
[92] J. Richardson. Preventing the synthesis of unused transcripts by rho factor , 1991, Cell.
[93] K. von Meyenburg,et al. Messenger Ribonucleic Acid Synthesis and Degradation in Escherichia coli During Inhibition of Translation , 1973, Journal of bacteriology.
[94] H. Varmus,et al. Regulation of lac transcription in antibiotic-treated E. coli. , 1971, Nature: New biology.
[95] C. Olveira,et al. Prevalence and factors associated with nontuberculous mycobacteria in non-cystic fibrosis bronchiectasis: a multicenter observational study. , 2016, BMC infectious diseases.
[96] S. Tsui,et al. Identification of small RNAs in Mycobacterium smegmatis using heterologous Hfq. , 2013, RNA.
[97] Claude-Alain H. Roten,et al. Fast and accurate short read alignment with Burrows–Wheeler transform , 2009, Bioinform..