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Dive into the research topics where Danielle Walker is active.

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Featured researches published by Danielle Walker.


Nature | 2005

The genome of the social amoeba Dictyostelium discoideum

Ludwig Eichinger; J. A. Pachebat; G. Glöckner; Marie-Adele Rajandream; Richard Sucgang; Matthew Berriman; J. Song; Rolf Olsen; Karol Szafranski; Qikai Xu; Budi Tunggal; Sarah K. Kummerfeld; B. A. Konfortov; Francisco Rivero; Alan Thomas Bankier; R. Lehmann; N. Hamlin; Robert Davies; Pascale Gaudet; Petra Fey; Karen E Pilcher; Guokai Chen; David L. Saunders; Erica Sodergren; Paul Davis; Arnaud Kerhornou; X. Nie; Neil Hall; Christophe Anjard; Lisa Hemphill

The social amoebae are exceptional in their ability to alternate between unicellular and multicellular forms. Here we describe the genome of the best-studied member of this group, Dictyostelium discoideum. The gene-dense chromosomes of this organism encode approximately 12,500 predicted proteins, a high proportion of which have long, repetitive amino acid tracts. There are many genes for polyketide synthases and ABC transporters, suggesting an extensive secondary metabolism for producing and exporting small molecules. The genome is rich in complex repeats, one class of which is clustered and may serve as centromeres. Partial copies of the extrachromosomal ribosomal DNA (rDNA) element are found at the ends of each chromosome, suggesting a novel telomere structure and the use of a common mechanism to maintain both the rDNA and chromosomal termini. A proteome-based phylogeny shows that the amoebozoa diverged from the animal–fungal lineage after the plant–animal split, but Dictyostelium seems to have retained more of the diversity of the ancestral genome than have plants, animals or fungi.


Genome Research | 2008

Insights from the complete genome sequence of Mycobacterium marinum on the evolution of Mycobacterium tuberculosis

Timothy P. Stinear; Torsten Seemann; Paul F. Harrison; Grant A. Jenkin; John K. Davies; Paul D. R. Johnson; Zahra Abdellah; Claire Arrowsmith; Tracey Chillingworth; Carol Churcher; Kay Clarke; Ann Cronin; Paul Davis; Ian Goodhead; Nancy Holroyd; Kay Jagels; Angela Lord; Sharon Moule; Karen Mungall; Halina Norbertczak; Michael A. Quail; Ester Rabbinowitsch; Danielle Walker; Brian R. White; Sally Whitehead; Pamela L. C. Small; Roland Brosch; Lalita Ramakrishnan; Michael A. Fischbach; Julian Parkhill

Mycobacterium marinum, a ubiquitous pathogen of fish and amphibia, is a near relative of Mycobacterium tuberculosis, the etiologic agent of tuberculosis in humans. The genome of the M strain of M. marinum comprises a 6,636,827-bp circular chromosome with 5424 CDS, 10 prophages, and a 23-kb mercury-resistance plasmid. Prominent features are the very large number of genes (57) encoding polyketide synthases (PKSs) and nonribosomal peptide synthases (NRPSs) and the most extensive repertoire yet reported of the mycobacteria-restricted PE and PPE proteins, and related-ESX secretion systems. Some of the NRPS genes comprise a novel family and seem to have been acquired horizontally. M. marinum is used widely as a model organism to study M. tuberculosis pathogenesis, and genome comparisons confirmed the close genetic relationship between these two species, as they share 3000 orthologs with an average amino acid identity of 85%. Comparisons with the more distantly related Mycobacterium avium subspecies paratuberculosis and Mycobacterium smegmatis reveal how an ancestral generalist mycobacterium evolved into M. tuberculosis and M. marinum. M. tuberculosis has undergone genome downsizing and extensive lateral gene transfer to become a specialized pathogen of humans and other primates without retaining an environmental niche. M. marinum has maintained a large genome so as to retain the capacity for environmental survival while becoming a broad host range pathogen that produces disease strikingly similar to M. tuberculosis. The work described herein provides a foundation for using M. marinum to better understand the determinants of pathogenesis of tuberculosis.


Nature | 2008

The genome of the simian and human malaria parasite Plasmodium knowlesi.

Arnab Pain; Ulrike Böhme; Andrew Berry; Karen Mungall; Robert D. Finn; Andrew P. Jackson; T. Mourier; J. Mistry; E. M. Pasini; Martin Aslett; S. Balasubrammaniam; Karsten M. Borgwardt; Karen Brooks; Celine Carret; Tim Carver; Inna Cherevach; Tracey Chillingworth; Taane G. Clark; M. R. Galinski; Neil Hall; D. Harper; David Harris; Heidi Hauser; A. Ivens; C. S. Janssen; Thomas M. Keane; N. Larke; S. Lapp; M. Marti; S. Moule

Plasmodium knowlesi is an intracellular malaria parasite whose natural vertebrate host is Macaca fascicularis (the ‘kra’ monkey); however, it is now increasingly recognized as a significant cause of human malaria, particularly in southeast Asia. Plasmodium knowlesi was the first malaria parasite species in which antigenic variation was demonstrated, and it has a close phylogenetic relationship to Plasmodium vivax, the second most important species of human malaria parasite (reviewed in ref. 4). Despite their relatedness, there are important phenotypic differences between them, such as host blood cell preference, absence of a dormant liver stage or ‘hypnozoite’ in P. knowlesi, and length of the asexual cycle (reviewed in ref. 4). Here we present an analysis of the P. knowlesi (H strain, Pk1(A+) clone) nuclear genome sequence. This is the first monkey malaria parasite genome to be described, and it provides an opportunity for comparison with the recently completed P. vivax genome and other sequenced Plasmodium genomes. In contrast to other Plasmodium genomes, putative variant antigen families are dispersed throughout the genome and are associated with intrachromosomal telomere repeats. One of these families, the KIRs, contains sequences that collectively match over one-half of the host CD99 extracellular domain, which may represent an unusual form of molecular mimicry.


Nature | 2010

Antagonistic coevolution accelerates molecular evolution

Steve Paterson; Tom Vogwill; Angus Buckling; Rebecca Benmayor; Andrew J. Spiers; Nicholas R. Thomson; Michael A. Quail; Frances Smith; Danielle Walker; Ben Libberton; Andy Fenton; Neil Hall; Michael A. Brockhurst

The Red Queen hypothesis proposes that coevolution of interacting species (such as hosts and parasites) should drive molecular evolution through continual natural selection for adaptation and counter-adaptation. Although the divergence observed at some host-resistance and parasite-infectivity genes is consistent with this, the long time periods typically required to study coevolution have so far prevented any direct empirical test. Here we show, using experimental populations of the bacterium Pseudomonas fluorescens SBW25 and its viral parasite, phage Φ2 (refs 10, 11), that the rate of molecular evolution in the phage was far higher when both bacterium and phage coevolved with each other than when phage evolved against a constant host genotype. Coevolution also resulted in far greater genetic divergence between replicate populations, which was correlated with the range of hosts that coevolved phage were able to infect. Consistent with this, the most rapidly evolving phage genes under coevolution were those involved in host infection. These results demonstrate, at both the genomic and phenotypic level, that antagonistic coevolution is a cause of rapid and divergent evolution, and is likely to be a major driver of evolutionary change within species.


Proceedings of the National Academy of Sciences of the United States of America | 2010

Evolutionary dynamics of Clostridium difficile over short and long time scales

Miao He; Mohammed Sebaihia; Trevor D. Lawley; Richard A. Stabler; Lisa F. Dawson; Melissa J. Martin; Kathryn E. Holt; Helena M. B. Seth-Smith; Michael A. Quail; Richard Rance; Karen Brooks; Carol Churcher; David J. Harris; Stephen D. Bentley; Christine Burrows; Louise Clark; Craig Corton; Vicky Murray; Graham Rose; Scott Thurston; Andries J. van Tonder; Danielle Walker; Brendan W. Wren; Gordon Dougan; Julian Parkhill

Clostridium difficile has rapidly emerged as the leading cause of antibiotic-associated diarrheal disease, with the transcontinental spread of various PCR ribotypes, including 001, 017, 027 and 078. However, the genetic basis for the emergence of C. difficile as a human pathogen is unclear. Whole genome sequencing was used to analyze genetic variation and virulence of a diverse collection of thirty C. difficile isolates, to determine both macro and microevolution of the species. Horizontal gene transfer and large-scale recombination of core genes has shaped the C. difficile genome over both short and long time scales. Phylogenetic analysis demonstrates C. difficile is a genetically diverse species, which has evolved within the last 1.1–85 million years. By contrast, the disease-causing isolates have arisen from multiple lineages, suggesting that virulence evolved independently in the highly epidemic lineages.


Journal of Bacteriology | 2009

The Genome of Burkholderia cenocepacia J2315, an Epidemic Pathogen of Cystic Fibrosis Patients

Matthew T. G. Holden; Helena M. B. Seth-Smith; Lisa Crossman; Mohammed Sebaihia; Stephen D. Bentley; Ana Cerdeño-Tárraga; Nicholas R. Thomson; Nathalie Bason; Michael A. Quail; Sarah Sharp; Inna Cherevach; Carol Churcher; Ian Goodhead; Heidi Hauser; Nancy Holroyd; Karen Mungall; P. D. Scott; Danielle Walker; Brian R. White; Helen Rose; Pernille Iversen; Dalila Mil-Homens; Eduardo P. C. Rocha; Arsenio M. Fialho; Adam Baldwin; Christopher G. Dowson; Bart Barrell; John R. W. Govan; Peter Vandamme; C. Anthony Hart

Bacterial infections of the lungs of cystic fibrosis (CF) patients cause major complications in the treatment of this common genetic disease. Burkholderia cenocepacia infection is particularly problematic since this organism has high levels of antibiotic resistance, making it difficult to eradicate; the resulting chronic infections are associated with severe declines in lung function and increased mortality rates. B. cenocepacia strain J2315 was isolated from a CF patient and is a member of the epidemic ET12 lineage that originated in Canada or the United Kingdom and spread to Europe. The 8.06-Mb genome of this highly transmissible pathogen comprises three circular chromosomes and a plasmid and encodes a broad array of functions typical of this metabolically versatile genus, as well as numerous virulence and drug resistance functions. Although B. cenocepacia strains can be isolated from soil and can be pathogenic to both plants and man, J2315 is representative of a lineage of B. cenocepacia rarely isolated from the environment and which spreads between CF patients. Comparative analysis revealed that ca. 21% of the genome is unique in comparison to other strains of B. cenocepacia, highlighting the genomic plasticity of this species. Pseudogenes in virulence determinants suggest that the pathogenic response of J2315 may have been recently selected to promote persistence in the CF lung. The J2315 genome contains evidence that its unique and highly adapted genetic content has played a significant role in its success as an epidemic CF pathogen.


PLOS ONE | 2008

Telomeric Expression Sites Are Highly Conserved in Trypanosoma brucei

Christiane Hertz-Fowler; Luisa M. Figueiredo; Michael A. Quail; Marion Becker; Andrew C Jackson; Nathalie Bason; Karen Brooks; Carol Churcher; Samah Fahkro; Ian Goodhead; Paul Trafford Heath; Magdalena Kartvelishvili; Karen Mungall; David K. Harris; Heidi Hauser; Mandy Sanders; David L. Saunders; Kathy Seeger; Sarah Sharp; Jesse E. Taylor; Danielle Walker; Brian R. White; Rosanna Young; George A.M. Cross; Gloria Rudenko; J. David Barry; Edward J. Louis; Matthew Berriman

Subtelomeric regions are often under-represented in genome sequences of eukaryotes. One of the best known examples of the use of telomere proximity for adaptive purposes are the bloodstream expression sites (BESs) of the African trypanosome Trypanosoma brucei. To enhance our understanding of BES structure and function in host adaptation and immune evasion, the BES repertoire from the Lister 427 strain of T. brucei were independently tagged and sequenced. BESs are polymorphic in size and structure but reveal a surprisingly conserved architecture in the context of extensive recombination. Very small BESs do exist and many functioning BESs do not contain the full complement of expression site associated genes (ESAGs). The consequences of duplicated or missing ESAGs, including ESAG9, a newly named ESAG12, and additional variant surface glycoprotein genes (VSGs) were evaluated by functional assays after BESs were tagged with a drug-resistance gene. Phylogenetic analysis of constituent ESAG families suggests that BESs are sequence mosaics and that extensive recombination has shaped the evolution of the BES repertoire. This work opens important perspectives in understanding the molecular mechanisms of antigenic variation, a widely used strategy for immune evasion in pathogens, and telomere biology.


Nature Genetics | 2013

Genomic analysis of smooth tubercle bacilli provides insights into ancestry and pathoadaptation of Mycobacterium tuberculosis

Philip Supply; Michael Marceau; Sophie Mangenot; David Roche; Carine Rouanet; Varun Khanna; Laleh Majlessi; Alexis Criscuolo; Julien Tap; Alexandre Pawlik; Laurence Fiette; Mickael Orgeur; Michel Fabre; Cécile Parmentier; Wafa Frigui; Roxane Simeone; Eva C. Boritsch; Anne-Sophie Debrie; Eve Willery; Danielle Walker; Michael A. Quail; Laurence Ma; Christiane Bouchier; Grégory Salvignol; Fadel Sayes; Alessandro Cascioferro; Torsten Seemann; Valérie Barbe; Camille Locht; Maria-Cristina Gutierrez

Global spread and limited genetic variation are hallmarks of M. tuberculosis, the agent of human tuberculosis. In contrast, Mycobacterium canettii and related tubercle bacilli that also cause human tuberculosis and exhibit unusual smooth colony morphology are restricted to East Africa. Here, we sequenced and analyzed the whole genomes of five representative strains of smooth tubercle bacilli (STB) using Sanger (4–5× coverage), 454/Roche (13–18× coverage) and/or Illumina DNA sequencing (45–105× coverage). We show that STB isolates are highly recombinogenic and evolutionarily early branching, with larger genome sizes, higher rates of genetic variation, fewer molecular scars and distinct CRISPR-Cas systems relative to M. tuberculosis. Despite the differences, all tuberculosis-causing mycobacteria share a highly conserved core genome. Mouse infection experiments showed that STB strains are less persistent and virulent than M. tuberculosis. We conclude that M. tuberculosis emerged from an ancestral STB-like pool of mycobacteria by gain of persistence and virulence mechanisms, and we provide insights into the molecular events involved.


Journal of Bacteriology | 2008

Complete Genome Sequence of Uropathogenic Proteus mirabilis, a Master of both Adherence and Motility

Melanie M. Pearson; Mohammed Sebaihia; Carol Churcher; Michael A. Quail; Aswin Sai Narain Seshasayee; Nicholas M. Luscombe; Zahra Abdellah; Claire Arrosmith; Becky Atkin; Tracey Chillingworth; Heidi Hauser; Kay Jagels; Sharon Moule; Karen Mungall; Halina Norbertczak; Ester Rabbinowitsch; Danielle Walker; Sally Whithead; Nicholas R. Thomson; Philip N. Rather; Julian Parkhill; Harry L. T. Mobley

The gram-negative enteric bacterium Proteus mirabilis is a frequent cause of urinary tract infections in individuals with long-term indwelling catheters or with complicated urinary tracts (e.g., due to spinal cord injury or anatomic abnormality). P. mirabilis bacteriuria may lead to acute pyelonephritis, fever, and bacteremia. Most notoriously, this pathogen uses urease to catalyze the formation of kidney and bladder stones or to encrust or obstruct indwelling urinary catheters. Here we report the complete genome sequence of P. mirabilis HI4320, a representative strain cultured in our laboratory from the urine of a nursing home patient with a long-term (> or =30 days) indwelling urinary catheter. The genome is 4.063 Mb long and has a G+C content of 38.88%. There is a single plasmid consisting of 36,289 nucleotides. Annotation of the genome identified 3,685 coding sequences and seven rRNA loci. Analysis of the sequence confirmed the presence of previously identified virulence determinants, as well as a contiguous 54-kb flagellar regulon and 17 types of fimbriae. Genes encoding a potential type III secretion system were identified on a low-G+C-content genomic island containing 24 intact genes that appear to encode all components necessary to assemble a type III secretion system needle complex. In addition, the P. mirabilis HI4320 genome possesses four tandem copies of the zapE metalloprotease gene, genes encoding six putative autotransporters, an extension of the atf fimbrial operon to six genes, including an mrpJ homolog, and genes encoding at least five iron uptake mechanisms, two potential type IV secretion systems, and 16 two-component regulators.


Nature Genetics | 2013

Genome analysis of smooth tubercle bacilli provides insights into ancestry and pathoadaptation of the etiologic agent of tuberculosis

Philip Supply; Michael Marceau; Sophie Mangenot; David Roche; Carine Rouanet; Varun Khanna; Laleh Majlessi; Alexis Criscuolo; Julien Tap; Alexandre Pawlik; Laurence Fiette; Mickael Orgeur; Michel Fabre; Cécile Parmentier; Wafa Frigui; Roxane Simeone; Eva C. Boritsch; Anne-Sophie Debrie; Eve Willery; Danielle Walker; Michael A. Quail; Laurence Ma; Christiane Bouchier; Grégory Salvignol; Fadel Sayes; Alessandro Cascioferro; Torsten Seemann; Valérie Barbe; Camille Locht; Maria-Cristina Gutierrez

Global spread and limited genetic variation are hallmarks of M. tuberculosis, the agent of human tuberculosis. In contrast, Mycobacterium canettii and related tubercle bacilli that also cause human tuberculosis and exhibit unusual smooth colony morphology are restricted to East Africa. Here, we sequenced and analyzed the whole genomes of five representative strains of smooth tubercle bacilli (STB) using Sanger (4–5× coverage), 454/Roche (13–18× coverage) and/or Illumina DNA sequencing (45–105× coverage). We show that STB isolates are highly recombinogenic and evolutionarily early branching, with larger genome sizes, higher rates of genetic variation, fewer molecular scars and distinct CRISPR-Cas systems relative to M. tuberculosis. Despite the differences, all tuberculosis-causing mycobacteria share a highly conserved core genome. Mouse infection experiments showed that STB strains are less persistent and virulent than M. tuberculosis. We conclude that M. tuberculosis emerged from an ancestral STB-like pool of mycobacteria by gain of persistence and virulence mechanisms, and we provide insights into the molecular events involved.

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Michael A. Quail

Wellcome Trust Sanger Institute

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Julian Parkhill

Wellcome Trust Sanger Institute

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Karen Mungall

University of British Columbia

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Carol Churcher

Wellcome Trust Sanger Institute

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Halina Norbertczak

Wellcome Trust Sanger Institute

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Heidi Hauser

Wellcome Trust Sanger Institute

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Nathalie Bason

Wellcome Trust Sanger Institute

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Stephen D. Bentley

Wellcome Trust Sanger Institute

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Brian R. White

Washington University in St. Louis

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