Analysis of the Legionella longbeachae Genome and Transcriptome Uncovers Unique Strategies to Cause Legionnaires' Disease
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C. Buchrieser | L. Gomez-Valero | J. Etienne | C. Rusniok | C. Bouchier | Laurence Ma | C. Cazalet | N. Zidane | E. Hartland | H. Newton | S. Jarraud | F. M. Sansom | Hayley J. Newton | M. Lomma | D. Dervins-Ravault | Delphine Dervins-Ravault | Christel Cazalet
[1] S. Engelmann,et al. Proteomic analysis of Legionella-containing phagosomes isolated from Dictyostelium. , 2009, International journal of medical microbiology : IJMM.
[2] B. Birren,et al. Genome Project Standards in a New Era of Sequencing , 2009, Science.
[3] J. Weissenbach,et al. Acinetobacter baylyi ADP1 as a model for metabolic system biology. , 2009, Current opinion in microbiology.
[4] N. Cianciotto. Many substrates and functions of type II secretion: lessons learned from Legionella pneumophila. , 2009, Future microbiology.
[5] C. Buchrieser,et al. Molecular mimicry: an important virulence strategy employed by Legionella pneumophila to subvert host functions. , 2009, Future microbiology.
[6] Tal Pupko,et al. Genome-Scale Identification of Legionella pneumophila Effectors Using a Machine Learning Approach , 2009, PLoS pathogens.
[7] M. Šuša,et al. Experimental Legionella longbeachae infection in intratracheally inoculated mice. , 2009, Journal of medical microbiology.
[8] K. Aktories,et al. Region of Elongation Factor 1A1 Involved in Substrate Recognition by Legionella pneumophila Glucosyltransferase Lgt1 , 2009, The Journal of Biological Chemistry.
[9] M. Rasis,et al. The LetA‐RsmYZ‐CsrA regulatory cascade, together with RpoS and PmrA, post‐transcriptionally regulates stationary phase activation of Legionella pneumophila Icm/Dot effectors , 2009, Molecular microbiology.
[10] M. Jules,et al. Two small ncRNAs jointly govern virulence and transmission in Legionella pneumophila , 2009, Molecular microbiology.
[11] H. Hilbi,et al. Endosomal and secretory markers of the Legionella-containing vacuole , 2009, Communicative & integrative biology.
[12] H. Hilbi,et al. The inositol polyphosphate 5‐phosphatase OCRL1 restricts intracellular growth of Legionella, localizes to the replicative vacuole and binds to the bacterial effector LpnE , 2009, Cellular microbiology.
[13] H. Hilbi,et al. Rab1 Guanine Nucleotide Exchange Factor SidM Is a Major Phosphatidylinositol 4-Phosphate-binding Effector Protein of Legionella pneumophila , 2009, Journal of Biological Chemistry.
[14] R. Isberg,et al. Legionella pneumophila Dot/Icm translocated substrates: a sum of parts. , 2009, Current opinion in microbiology.
[15] M. Heidtman,et al. Large‐scale identification of Legionella pneumophila Dot/Icm substrates that modulate host cell vesicle trafficking pathways , 2009, Cellular microbiology.
[16] Lukas N. Mueller,et al. Proteome Analysis of Legionella Vacuoles Purified by Magnetic Immunoseparation Reveals Secretory and Endosomal GTPases , 2009, Traffic.
[17] I. Small,et al. Pentatricopeptide repeat proteins: a socket set for organelle gene expression. , 2008, Trends in plant science.
[18]
R. Durbin,et al.
Mapping Quality Scores Mapping Short Dna Sequencing Reads and Calling Variants Using P ,
2022
.
[19]
Sky W. Brubaker,et al.
Critical function for Naip5 in inflammasome activation by a conserved carboxy-terminal domain of flagellin
,
2008,
Nature Immunology.
[20]
C. Buchrieser,et al.
Synergistic Contribution of the Legionella pneumophila lqs Genes to Pathogen-Host Interactions
,
2008,
Journal of bacteriology.
[21]
C. Buchrieser,et al.
The Legionella Autoinducer Synthase LqsA Produces an α-Hydroxyketone Signaling Molecule*
,
2008,
Journal of Biological Chemistry.
[22]
C. Roy,et al.
Ankyrin Repeat Proteins Comprise a Diverse Family of Bacterial Type IV Effectors
,
2008,
Science.
[23]
Sunny Shin,et al.
Host cell processes that influence the intracellular survival of Legionella pneumophila
,
2008,
Cellular microbiology.
[24]
E. Birney,et al.
Velvet: algorithms for de novo short read assembly using de Bruijn graphs.
,
2008,
Genome research.
[25]
C. Buchrieser,et al.
Significant Role for ladC in Initiation of Legionella pneumophila Infection
,
2008,
Infection and Immunity.
[26]
Hiroki Nagai,et al.
Legionella translocates an E3 ubiquitin ligase that has multiple U‐boxes with distinct functions
,
2008,
Molecular microbiology.
[27]
N. Alto,et al.
Mimicking small G‐proteins: an emerging theme from the bacterial virulence arsenal
,
2008,
Cellular microbiology.
[28]
C. Buchrieser,et al.
Multigenome analysis identifies a worldwide distributed epidemic Legionella pneumophila clone that emerged within a highly diverse species.
,
2008,
Genome research.
[29]
K. Aktories,et al.
Lgt: a Family of Cytotoxic Glucosyltransferases Produced by Legionella pneumophila
,
2008,
Journal of bacteriology.
[30]
G. Segal,et al.
The Response Regulator CpxR Directly Regulates Expression of Several Legionella pneumophila icm/dot Components as Well as New Translocated Substrates
,
2008,
Journal of bacteriology.
[31]
S. Dowell,et al.
Epidemiology of severe pneumonia caused by Legionella longbeachae, Mycoplasma pneumoniae, and Chlamydia pneumoniae: 1-year, population-based surveillance for severe pneumonia in Thailand.
,
2007,
Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[32]
C. Buchrieser,et al.
The Legionella pneumophila response regulator LqsR promotes host cell interactions as an element of the virulence regulatory network controlled by RpoS and LetA
,
2007,
Cellular microbiology.
[33]
C. Buchrieser,et al.
Legionella pathogenicity: genome structure, regulatory networks and the host cell response.
,
2007,
International journal of medical microbiology : IJMM.
[34]
N. Cianciotto,et al.
Sel1 Repeat Protein LpnE Is a Legionella pneumophila Virulence Determinant That Influences Vacuolar Trafficking
,
2007,
Infection and Immunity.
[35]
C. Roy,et al.
Effector proteins translocated by Legionella pneumophila: strength in numbers.
,
2007,
Trends in microbiology.
[36]
P. Vandenabeele,et al.
The Nod-Like Receptor Family Member Naip5/Birc1e Restricts Legionella pneumophila Growth Independently of Caspase-1 Activation1
,
2007,
The Journal of Immunology.
[37]
Y. Abu Kwaik,et al.
Early trafficking and intracellular replication of Legionella longbeachaea within an ER‐derived late endosome‐like phagosome
,
2007,
Cellular microbiology.
[38]
A. Steinbüchel,et al.
Analysis of genome sequences for genes of cyanophycin metabolism: identifying putative cyanophycin metabolizing prokaryotes.
,
2007,
Macromolecular bioscience.
[39]
T. Zusman,et al.
The response regulator PmrA is a major regulator of the icm/dot type IV secretion system in Legionella pneumophila and Coxiella burnetii
,
2007,
Molecular microbiology.
[40]
C. D. Price,et al.
Genetic Susceptibility and Caspase Activation in Mouse and Human Macrophages Are Distinct for Legionella longbeachae and L. pneumophila
,
2007,
Infection and Immunity.
[41]
N. Cianciotto,et al.
Legionella pneumophila type II secretome reveals unique exoproteins and a chitinase that promotes bacterial persistence in the lung
,
2006,
Proceedings of the National Academy of Sciences.
[42]
V. Sourjik,et al.
Spatial organization of the bacterial chemotaxis system.
,
2006,
Current opinion in microbiology.
[43]
M. Wilm,et al.
Legionella pneumophila glucosyltransferase inhibits host elongation factor 1A
,
2006,
Proceedings of the National Academy of Sciences.
[44]
D. Toomre,et al.
The Legionella pneumophila effector protein DrrA is a Rab1 guanine nucleotide-exchange factor
,
2006,
Nature Cell Biology.
[45]
M. Jules,et al.
Virulence strategies for infecting phagocytes deduced from the in vivo transcriptional program of Legionella pneumophila
,
2006,
Cellular microbiology.
[46]
R. Isberg,et al.
Targeting of host Rab GTPase function by the intravacuolar pathogen Legionella pneumophila.
,
2006,
Developmental cell.
[47]
H. Hilbi,et al.
Legionella pneumophila Exploits PI(4)P to Anchor Secreted Effector Proteins to the Replicative Vacuole
,
2006,
PLoS pathogens.
[48]
M. Swanson,et al.
Cytosolic recognition of flagellin by mouse macrophages restricts Legionella pneumophila infection
,
2006,
The Journal of experimental medicine.
[49]
W. Dietrich,et al.
Flagellin-Deficient Legionella Mutants Evade Caspase-1- and Naip5-Mediated Macrophage Immunity
,
2006,
PLoS pathogens.
[50]
C. Buchrieser,et al.
Adaptation of Legionella pneumophila to the host environment: role of protein secretion, effectors and eukaryotic-like proteins.
,
2006,
Current opinion in microbiology.
[51]
W. Dietrich,et al.
The Birc1e cytosolic pattern-recognition receptor contributes to the detection and control of Legionella pneumophila infection
,
2006,
Nature Immunology.
[52]
C. Médigue,et al.
MaGe: a microbial genome annotation system supported by synteny results
,
2006,
Nucleic acids research.
[53]
C. Pericone,et al.
Evidence for Acquisition of Legionella Type IV Secretion Substrates via Interdomain Horizontal Gene Transfer
,
2005,
Journal of bacteriology.
[54]
Michael T Laub,et al.
Two-Component Signal Transduction Pathways Regulating Growth and Cell Cycle Progression in a Bacterium: A System-Level Analysis
,
2005,
PLoS biology.
[55]
T. Zusman,et al.
Coevolution between nonhomologous but functionally similar proteins and their conserved partners in the Legionella pathogenesis system.
,
2005,
Proceedings of the National Academy of Sciences of the United States of America.
[56]
Jean-Jacques Daudin,et al.
VarMixt: efficient variance modelling for the differential analysis of replicated gene expression data
,
2005,
Bioinform..
[57]
Hiroki Nagai,et al.
A C-terminal translocation signal required for Dot/Icm-dependent delivery of the Legionella RalF protein to host cells.
,
2005,
Proceedings of the National Academy of Sciences of the United States of America.
[58]
C. Buchrieser,et al.
Evidence in the Legionella pneumophila genome for exploitation of host cell functions and high genome plasticity
,
2004,
Nature Genetics.
[59]
I. Chou,et al.
The Genomic Sequence of the Accidental Pathogen Legionella pneumophila
,
2004,
Science.
[60]
T. Nakamura,et al.
Chloroplast RNA-binding and pentatricopeptide repeat proteins.
,
2004,
Biochemical Society transactions.
[61]
Frédérique Bitton,et al.
Genome-Wide Analysis of Arabidopsis Pentatricopeptide Repeat Proteins Reveals Their Essential Role in Organelle Biogenesis
,
2004,
The Plant Cell Online.
[62]
G. Segal,et al.
A Specific Genomic Location within the icm/dot Pathogenesis Region of Different Legionella Species Encodes Functionally Similar but Nonhomologous Virulence Proteins
,
2004,
Infection and Immunity.
[63]
M. Swanson,et al.
Differentiate to thrive: lessons from the Legionella pneumophila life cycle
,
2004,
Molecular microbiology.
[64]
F. Blattner,et al.
Mauve: multiple alignment of conserved genomic sequence with rearrangements.
,
2004,
Genome research.
[65]
D. Raoult,et al.
Legionella drancourtii sp. nov., a strictly intracellular amoebal pathogen.
,
2004,
International journal of systematic and evolutionary microbiology.
[66]
Philippe Glaser,et al.
CAAT-Box, contigs-Assembly and Annotation Tool-Box for genome sequencing projects
,
2004,
Bioinform..
[67]
J. Russo,et al.
Comparative sequence analysis of the icm/dot genes in Legionella.
,
2004,
Plasmid.
[68]
A. Danchin,et al.
The genome sequence of the entomopathogenic bacterium Photorhabdus luminescens
,
2003,
Nature Biotechnology.
[69]
G. Segal,et al.
Identification of CpxR as a Positive Regulator of icm and dot Virulence Genes of Legionella pneumophila
,
2003,
Journal of bacteriology.
[70]
C. Buchrieser,et al.
Transcriptome analysis of Listeria monocytogenes identifies three groups of genes differently regulated by PrfA
,
2003,
Molecular microbiology.
[71]
Yoav Benjamini,et al.
Identifying differentially expressed genes using false discovery rate controlling procedures
,
2003,
Bioinform..
[72]
M. Endrizzi,et al.
Naip5 Affects Host Susceptibility to the Intracellular Pathogen Legionella pneumophila
,
2003,
Current Biology.
[73]
T. File,et al.
Distribution of Legionella species and serogroups isolated by culture in patients with sporadic community-acquired legionellosis: an international collaborative survey.
,
2002,
The Journal of infectious diseases.
[74]
S. Dudoit,et al.
Normalization for cDNA microarray data: a robust composite method addressing single and multiple slide systematic variation.
,
2002,
Nucleic acids research.
[75]
Alexander Steinbüchel,et al.
Evaluation of non-cyanobacterial genome sequences for occurrence of genes encoding proteins homologous to cyanophycin synthetase and cloning of an active cyanophycin synthetase from Acinetobacter sp. strain DSM 587
,
2002,
Archives of Microbiology.
[76]
R. Kahn,et al.
A Bacterial Guanine Nucleotide Exchange Factor Activates ARF on Legionella Phagosomes
,
2002,
Science.
[77]
L. Gautier,et al.
Comparative Genomics of Listeria Species
,
2001,
Science.
[78]
C. Buchrieser,et al.
The 102-Kilobase pgm Locus of Yersinia pestis: Sequence Analysis and Comparison of Selected Regions among Different Yersinia pestis and Yersinia pseudotuberculosis Strains
,
1999,
Infection and Immunity.
[79]
B. Freeman,et al.
Microtubule dysfunction by posttranslational nitrotyrosination of alpha-tubulin: a nitric oxide-dependent mechanism of cellular injury.
,
1999,
Proceedings of the National Academy of Sciences of the United States of America.
[80]
M. Swanson,et al.
Expression of Legionella pneumophilaVirulence Traits in Response to Growth Conditions
,
1998,
Infection and Immunity.
[81]
R. Isberg,et al.
Legionella pneumophila DotA protein is required for early phagosome trafficking decisions that occur within minutes of bacterial uptake
,
1998,
Molecular microbiology.
[82]
H. Shuman,et al.
Host cell killing and bacterial conjugation require overlapping sets of genes within a 22-kb region of the Legionella pneumophila genome.
,
1998,
Proceedings of the National Academy of Sciences of the United States of America.
[83]
R. Isberg,et al.
Conjugative transfer by the virulence system of Legionella pneumophila.
,
1998,
Science.
[84]
R. Isberg,et al.
Two distinct defects in intracellular growth complemented by a single genetic locus in Legionella pneumophila
,
1993,
Molecular microbiology.
[85]
D. Roder,et al.
Epidemiological characteristics of Legionella infection in South Australia: implications for disease control.
,
1991,
Australian and New Zealand journal of medicine.
[86]
T. Steele,et al.
Distribution of Legionella longbeachae serogroup 1 and other legionellae in potting soils in Australia
,
1990,
Applied and environmental microbiology.
[87]
A. Steigerwalt,et al.
Recognition of a second serogroup of Legionella longbeachae
,
1981,
Journal of clinical microbiology.
[88]
R. Schoenfeld,et al.
Comparative Genomics of Listeria Species
,
1976
.
[89]
M. Heidtman,et al.
The Legionella pneumophila replication vacuole: making a cosy niche inside host cells
,
2009,
Nature Reviews Microbiology.
[90]
J. S. Parkinson,et al.
Bacterial chemoreceptors: high-performance signaling in networked arrays.
,
2008,
Trends in biochemical sciences.
[91]
S. Lory,et al.
The multi-talented bacterial adenylate cyclases.
,
2004,
International journal of medical microbiology : IJMM.
[92]
P. Gros,et al.
Birc1e is the gene within the Lgn1 locus associated with resistance to Legionella pneumophila
,
2003,
Nature Genetics.
[93]
Michael William Heuzenroeder,et al.
A mutation in an ompR-like gene on a Legionella longbeachae serogroup 1 plasmid attenuates virulence.
,
2002,
International journal of medical microbiology : IJMM.