Kim Rutherford
University of Cambridge
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Featured researches published by Kim Rutherford.
Nature | 2002
Malcolm J. Gardner; Neil Hall; Eula Fung; Owen White; Matthew Berriman; Richard W. Hyman; Jane M. Carlton; Arnab Pain; Karen E. Nelson; Sharen Bowman; Ian T. Paulsen; Keith D. James; Jonathan A. Eisen; Kim Rutherford; Alister Craig; Sue Kyes; Man Suen Chan; Vishvanath Nene; Shamira Shallom; Bernard B. Suh; Jeremy Peterson; Sam Angiuoli; Mihaela Pertea; Jonathan E. Allen; Jeremy D. Selengut; Daniel H. Haft; Michael W. Mather; Akhil B. Vaidya; David M. A. Martin; Alan H. Fairlamb
The parasite Plasmodium falciparum is responsible for hundreds of millions of cases of malaria, and kills more than one million African children annually. Here we report an analysis of the genome sequence of P. falciparum clone 3D7. The 23-megabase nuclear genome consists of 14 chromosomes, encodes about 5,300 genes, and is the most (A + T)-rich genome sequenced to date. Genes involved in antigenic variation are concentrated in the subtelomeric regions of the chromosomes. Compared to the genomes of free-living eukaryotic microbes, the genome of this intracellular parasite encodes fewer enzymes and transporters, but a large proportion of genes are devoted to immune evasion and host–parasite interactions. Many nuclear-encoded proteins are targeted to the apicoplast, an organelle involved in fatty-acid and isoprenoid metabolism. The genome sequence provides the foundation for future studies of this organism, and is being exploited in the search for new drugs and vaccines to fight malaria.
Bioinformatics | 2000
Kim Rutherford; Julian Parkhill; James Crook; Terry Horsnell; Peter M. Rice; Marie-Adele Rajandream; Bart Barrell
SUMMARY Artemis is a DNA sequence visualization and annotation tool that allows the results of any analysis or sets of analyses to be viewed in the context of the sequence and its six-frame translation. Artemis is especially useful in analysing the compact genomes of bacteria, archaea and lower eukaryotes, and will cope with sequences of any size from small genes to whole genomes. It is implemented in Java, and can be run on any suitable platform. Sequences and annotation can be read and written directly in EMBL, GenBank and GFF format. AVAILABITLTY: Artemis is available under the GNU General Public License from http://www.sanger.ac.uk/Software/Artemis
Nature | 2002
Stephen D. Bentley; K. F. Chater; A.-M. Cerdeño-Tárraga; Gregory L. Challis; Nicholas R. Thomson; Keith D. James; David Harris; M. A. Quail; H. Kieser; D. Harper; Alex Bateman; S. Brown; G. Chandra; Carton W. Chen; Mark O. Collins; Ann Cronin; Audrey Fraser; Arlette Goble; J. Hidalgo; T. Hornsby; S. Howarth; Chih-Hung Huang; T. Kieser; L. Larke; Lee Murphy; K. Oliver; Susan O'Neil; Ester Rabbinowitsch; Marie-Adele Rajandream; Kim Rutherford
Streptomyces coelicolor is a representative of the group of soil-dwelling, filamentous bacteria responsible for producing most natural antibiotics used in human and veterinary medicine. Here we report the 8,667,507 base pair linear chromosome of this organism, containing the largest number of genes so far discovered in a bacterium. The 7,825 predicted genes include more than 20 clusters coding for known or predicted secondary metabolites. The genome contains an unprecedented proportion of regulatory genes, predominantly those likely to be involved in responses to external stimuli and stresses, and many duplicated gene sets that may represent ‘tissue-specific’ isoforms operating in different phases of colonial development, a unique situation for a bacterium. An ancient synteny was revealed between the central ‘core’ of the chromosome and the whole chromosome of pathogens Mycobacterium tuberculosis and Corynebacterium diphtheriae. The genome sequence will greatly increase our understanding of microbial life in the soil as well as aiding the generation of new drug candidates by genetic engineering.
Nature | 2001
Stewart T. Cole; Karin Eiglmeier; Julian Parkhill; K. D. James; Nicholas R. Thomson; Paul R. Wheeler; Nadine Honoré; Thierry Garnier; Carol Churcher; David Harris; Karen Mungall; D. Basham; D. Brown; Tracey Chillingworth; R. Connor; Robert Davies; K. Devlin; S. Duthoy; Theresa Feltwell; A. Fraser; N. Hamlin; S. Holroyd; T. Hornsby; Kay Jagels; Céline Lacroix; J. Maclean; Sharon Moule; Lee Murphy; Karen Oliver; Michael A. Quail
Leprosy, a chronic human neurological disease, results from infection with the obligate intracellular pathogen Mycobacterium leprae, a close relative of the tubercle bacillus. Mycobacterium leprae has the longest doubling time of all known bacteria and has thwarted every effort at culture in the laboratory. Comparing the 3.27-megabase (Mb) genome sequence of an armadillo-derived Indian isolate of the leprosy bacillus with that of Mycobacterium tuberculosis (4.41 Mb) provides clear explanations for these properties and reveals an extreme case of reductive evolution. Less than half of the genome contains functional genes but pseudogenes, with intact counterparts in M. tuberculosis, abound. Genome downsizing and the current mosaic arrangement appear to have resulted from extensive recombination events between dispersed repetitive sequences. Gene deletion and decay have eliminated many important metabolic activities including siderophore production, part of the oxidative and most of the microaerophilic and anaerobic respiratory chains, and numerous catabolic systems and their regulatory circuits.
Bioinformatics | 2005
Tim Carver; Kim Rutherford; Matthew Berriman; Marie-Adele Rajandream; Barclay G. Barrell; Julian Parkhill
The Artemis Comparison Tool (ACT) allows an interactive visualisation of comparisons between complete genome sequences and associated annotations. The comparison data can be generated with several different programs; BLASTN, TBLASTX or Mummer comparisons between genomic DNA sequences, or orthologue tables generated by reciprocal FASTA comparison between protein sets. It is possible to identify regions of similarity, insertions and rearrangements at any level from the whole genome to base-pair differences. ACT uses Artemis components to display the sequences and so inherits powerful searching and analysis tools. ACT is part of the Artemis distribution and is similarly open source, written in Java and can run on any Java enabled platform, including UNIX, Macintosh and Windows.
Nature | 2001
Julian Parkhill; Brendan W. Wren; Nicholas R. Thomson; Richard W. Titball; Matthew T. G. Holden; Michael B. Prentice; Mohammed Sebaihia; K. D. James; Carol Churcher; Karen Mungall; Stephen Baker; D. Basham; Stephen D. Bentley; Karen Brooks; Ana Cerdeño-Tárraga; Tracey Chillingworth; A. Cronin; Robert Davies; Paul Davis; Gordon Dougan; Theresa Feltwell; N. Hamlin; S. Holroyd; Kay Jagels; Andrey V. Karlyshev; S. Leather; Sharon Moule; Petra C. F. Oyston; Michael A. Quail; Kim Rutherford
The Gram-negative bacterium Yersinia pestis is the causative agent of the systemic invasive infectious disease classically referred to as plague, and has been responsible for three human pandemics: the Justinian plague (sixth to eighth centuries), the Black Death (fourteenth to nineteenth centuries) and modern plague (nineteenth century to the present day). The recent identification of strains resistant to multiple drugs and the potential use of Y. pestis as an agent of biological warfare mean that plague still poses a threat to human health. Here we report the complete genome sequence of Y. pestis strain CO92, consisting of a 4.65-megabase (Mb) chromosome and three plasmids of 96.2 kilobases (kb), 70.3 kb and 9.6 kb. The genome is unusually rich in insertion sequences and displays anomalies in GC base-composition bias, indicating frequent intragenomic recombination. Many genes seem to have been acquired from other bacteria and viruses (including adhesins, secretion systems and insecticidal toxins). The genome contains around 150 pseudogenes, many of which are remnants of a redundant enteropathogenic lifestyle. The evidence of ongoing genome fluidity, expansion and decay suggests Y. pestis is a pathogen that has undergone large-scale genetic flux and provides a unique insight into the ways in which new and highly virulent pathogens evolve.
Nature | 2001
Julian Parkhill; Gordon Dougan; K. D. James; Nicholas R. Thomson; Derek Pickard; John Wain; Carol Churcher; Karen Mungall; Stephen D. Bentley; Matthew T. G. Holden; Mohammed Sebaihia; Stephen Baker; D. Basham; Karen Brooks; Tracey Chillingworth; Phillippa L. Connerton; A. Cronin; Paul Davis; Robert Davies; L. Dowd; Nicholas J. White; Jeremy Farrar; Theresa Feltwell; N. Hamlin; Ashraful Haque; Tran Tinh Hien; S. Holroyd; Kay Jagels; Anders Krogh; Tom Larsen
Salmonella enterica serovar Typhi (S. typhi) is the aetiological agent of typhoid fever, a serious invasive bacterial disease of humans with an annual global burden of approximately 16 million cases, leading to 600,000 fatalities. Many S. enterica serovars actively invade the mucosal surface of the intestine but are normally contained in healthy individuals by the local immune defence mechanisms. However, S. typhi has evolved the ability to spread to the deeper tissues of humans, including liver, spleen and bone marrow. Here we have sequenced the 4,809,037-base pair (bp) genome of a S. typhi (CT18) that is resistant to multiple drugs, revealing the presence of hundreds of insertions and deletions compared with the Escherichia coli genome, ranging in size from single genes to large islands. Notably, the genome sequence identifies over two hundred pseudogenes, several corresponding to genes that are known to contribute to virulence in Salmonella typhimurium. This genetic degradation may contribute to the human-restricted host range for S. typhi. CT18 harbours a 218,150-bp multiple-drug-resistance incH1 plasmid (pHCM1), and a 106,516-bp cryptic plasmid (pHCM2), which shows recent common ancestry with a virulence plasmid of Yersinia pestis.
Nature | 2000
Julian Parkhill; Mark Achtman; K. D. James; Stephen D. Bentley; C. Churcher; S. R. Klee; G. Morelli; D. Basham; D. Brown; Tracey Chillingworth; Robert Davies; Paul Davis; K. Devlin; Theresa Feltwell; N. Hamlin; S. Holroyd; Kay Jagels; S. Leather; Sharon Moule; Karen Mungall; Michael A. Quail; Marie-Adele Rajandream; Kim Rutherford; Mark Simmonds; J. Skelton; S. Whitehead; B. G. Spratt; Bart Barrell
Neisseria meningitidis causes bacterial meningitis and is therefore responsible for considerable morbidity and mortality in both the developed and the developing world. Meningococci are opportunistic pathogens that colonize the nasopharynges and oropharynges of asymptomatic carriers. For reasons that are still mostly unknown, they occasionally gain access to the blood, and subsequently to the cerebrospinal fluid, to cause septicaemia and meningitis. N. meningitidis strains are divided into a number of serogroups on the basis of the immunochemistry of their capsular polysaccharides; serogroup A strains are responsible for major epidemics and pandemics of meningococcal disease, and therefore most of the morbidity and mortality associated with this disease. Here we have determined the complete genome sequence of a serogroup A strain of Neisseria meningitidis, Z2491 (ref. 1). The sequence is 2,184,406 base pairs in length, with an overall G+C content of 51.8%, and contains 2,121 predicted coding sequences. The most notable feature of the genome is the presence of many hundreds of repetitive elements, ranging from short repeats, positioned either singly or in large multiple arrays, to insertion sequences and gene duplications of one kilobase or more. Many of these repeats appear to be involved in genome fluidity and antigenic variation in this important human pathogen.
PLOS Genetics | 2005
Burkhard R. Braun; Marco van het Hoog; Christophe d'Enfert; Mikhail Martchenko; Jan Dungan; Alan Kuo; Diane O. Inglis; M. Andrew Uhl; Hervé Hogues; Matthew Berriman; Michael C. Lorenz; Anastasia Levitin; Ursula Oberholzer; Catherine Bachewich; Doreen Harcus; Anne Marcil; Daniel Dignard; Tatiana Iouk; Rosa Zito; Lionel Frangeul; Fredj Tekaia; Kim Rutherford; Edwin Wang; Carol A. Munro; Steve Bates; Neil A. R. Gow; Lois L. Hoyer; Gerwald A. Köhler; Joachim Morschhäuser; George Newport
Recent sequencing and assembly of the genome for the fungal pathogen Candida albicans used simple automated procedures for the identification of putative genes. We have reviewed the entire assembly, both by hand and with additional bioinformatic resources, to accurately map and describe 6,354 genes and to identify 246 genes whose original database entries contained sequencing errors (or possibly mutations) that affect their reading frame. Comparison with other fungal genomes permitted the identification of numerous fungus-specific genes that might be targeted for antifungal therapy. We also observed that, compared to other fungi, the protein-coding sequences in the C. albicans genome are especially rich in short sequence repeats. Finally, our improved annotation permitted a detailed analysis of several multigene families, and comparative genomic studies showed that C. albicans has a far greater catabolic range, encoding respiratory Complex 1, several novel oxidoreductases and ketone body degrading enzymes, malonyl-CoA and enoyl-CoA carriers, several novel amino acid degrading enzymes, a variety of secreted catabolic lipases and proteases, and numerous transporters to assimilate the resulting nutrients. The results of these efforts will ensure that the Candida research community has uniform and comprehensive genomic information for medical research as well as for future diagnostic and therapeutic applications.
Nature | 2002
Neil Hall; Arnab Pain; Matthew Berriman; Carol Churcher; Barbara Harris; David Harris; Karen Mungall; Sharen Bowman; Rebecca Atkin; Stephen Baker; Andy Barron; Karen Brooks; Caroline O. Buckee; C. Burrows; Inna Cherevach; Tracey Chillingworth; Z. Christodoulou; Louise Clark; Richard Clark; Craig Corton; Ann Cronin; Robert Davies; Paul Davis; P. Dear; F. Dearden; Jonathon Doggett; Theresa Feltwell; Arlette Goble; Ian Goodhead; R. Gwilliam
Since the sequencing of the first two chromosomes of the malaria parasite, Plasmodium falciparum, there has been a concerted effort to sequence and assemble the entire genome of this organism. Here we report the sequence of chromosomes 1, 3–9 and 13 of P. falciparum clone 3D7—these chromosomes account for approximately 55% of the total genome. We describe the methods used to map, sequence and annotate these chromosomes. By comparing our assemblies with the optical map, we indicate the completeness of the resulting sequence. During annotation, we assign Gene Ontology terms to the predicted gene products, and observe clustering of some malaria-specific terms to specific chromosomes. We identify a highly conserved sequence element found in the intergenic region of internal var genes that is not associated with their telomeric counterparts.