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Dive into the research topics where Karen E. Nelson is active.

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Featured researches published by Karen E. Nelson.


Nature | 2002

Genome sequence of the human malaria parasite Plasmodium falciparum

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.


Nature | 1997

The complete genome sequence of the gastric pathogen Helicobacter pylori

Jean-F. Tomb; Owen White; Anthony R. Kerlavage; Rebecca A. Clayton; Granger Sutton; Robert D. Fleischmann; Karen A. Ketchum; Hans-Peter Klenk; Steven R. Gill; Brian A. Dougherty; Karen E. Nelson; John Quackenbush; Lixin Zhou; Ewen F. Kirkness; Scott N. Peterson; Brendan J. Loftus; Delwood Richardson; Robert J. Dodson; Hanif G. Khalak; Anna Glodek; Keith McKenney; Lisa M. Fitzegerald; Norman H. Lee; Mark D. Adams; Erin Hickey; Douglas E. Berg; Jeanine D. Gocayne; Teresa Utterback; Jeremy Peterson; Jenny M. Kelley

Helicobacter pylori, strain 26695, has a circular genome of 1,667,867 base pairs and 1,590 predicted coding sequences. Sequence analysis indicates that H. pylori has well-developed systems for motility, for scavenging iron, and for DNA restriction and modification. Many putative adhesins, lipoproteins and other outer membrane proteins were identified, underscoring the potential complexity of host–pathogen interaction. Based on the large number of sequence-related genes encoding outer membrane proteins and the presence of homopolymeric tracts and dinucleotide repeats in coding sequences, H. pylori, like several other mucosal pathogens, probably uses recombination and slipped-strand mispairing within repeats as mechanisms for antigenic variation and adaptive evolution. Consistent with its restricted niche, H. pylori has a few regulatory networks, and a limited metabolic repertoire and biosynthetic capacity. Its survival in acid conditions depends, in part, on its ability to establish a positive inside-membrane potential in low pH.


Science | 2006

Metagenomic Analysis of the Human Distal Gut Microbiome

Steven R. Gill; Mihai Pop; Robert T. DeBoy; Paul B. Eckburg; Peter J. Turnbaugh; Buck S. Samuel; Jeffrey I. Gordon; David A. Relman; Claire M. Fraser-Liggett; Karen E. Nelson

The human intestinal microbiota is composed of 1013 to 1014 microorganisms whose collective genome (“microbiome”) contains at least 100 times as many genes as our own genome. We analyzed ∼78 million base pairs of unique DNA sequence and 2062 polymerase chain reaction–amplified 16S ribosomal DNA sequences obtained from the fecal DNAs of two healthy adults. Using metabolic function analyses of identified genes, we compared our human genome with the average content of previously sequenced microbial genomes. Our microbiome has significantly enriched metabolism of glycans, amino acids, and xenobiotics; methanogenesis; and 2-methyl-d-erythritol 4-phosphate pathway–mediated biosynthesis of vitamins and isoprenoids. Thus, humans are superorganisms whose metabolism represents an amalgamation of microbial and human attributes.


Nature | 2000

DNA sequence of both chromosomes of the cholera pathogen Vibrio cholerae

John F. Heidelberg; Jonathan A. Eisen; William C. Nelson; Rebecca A. Clayton; Michelle L. Gwinn; Robert J. Dodson; Daniel H. Haft; Erin Hickey; Jeremy Peterson; Lowell Umayam; Steven R. Gill; Karen E. Nelson; Timothy D. Read; Delwood Richardson; Maria D. Ermolaeva; Jessica Vamathevan; Steven Bass; Haiying Qin; Ioana Dragoi; Patrick Sellers; Lisa McDonald; Teresa Utterback; Robert D. Fleishmann; William C. Nierman; Owen White; Hamilton O. Smith; Rita R. Colwell; John J. Mekalanos; J. Craig Venter; Claire M. Fraser

Here we determine the complete genomic sequence of the Gram negative, γ-Proteobacterium Vibrio cholerae El Tor N16961 to be 4,033,460 base pairs (bp). The genome consists of two circular chromosomes of 2,961,146 bp and 1,072,314 bp that together encode 3,885 open reading frames. The vast majority of recognizable genes for essential cell functions (such as DNA replication, transcription, translation and cell-wall biosynthesis) and pathogenicity (for example, toxins, surface antigens and adhesins) are located on the large chromosome. In contrast, the small chromosome contains a larger fraction (59%) of hypothetical genes compared with the large chromosome (42%), and also contains many more genes that appear to have origins other than the γ-Proteobacteria. The small chromosome also carries a gene capture system (the integron island) and host ‘addiction’ genes that are typically found on plasmids; thus, the small chromosome may have originally been a megaplasmid that was captured by an ancestral Vibrio species. The V. cholerae genomic sequence provides a starting point for understanding how a free-living, environmental organism emerged to become a significant human bacterial pathogen.


Nature | 1999

Evidence for lateral gene transfer between Archaea and bacteria from genome sequence of Thermotoga maritima.

Karen E. Nelson; Rebecca A. Clayton; Steven R. Gill; Michelle L. Gwinn; Robert J. Dodson; Daniel H. Haft; Erin Hickey; Jeremy Peterson; William C. Nelson; Karen A. Ketchum; Lisa McDonald; Teresa Utterback; Joel A. Malek; Katja D. Linher; Mina M. Garrett; Ashley M. Stewart; Matthew D. Cotton; Matthew S. Pratt; Cheryl A. Phillips; Delwood Richardson; John F. Heidelberg; Granger Sutton; Robert D. Fleischmann; Jonathan A. Eisen; Owen White; Hamilton O. Smith; J. Craig Venter; Claire M. Fraser

The 1,860,725-base-pair genome of Thermotoga maritima MSB8 contains 1,877 predicted coding regions, 1,014 (54%) of which have functional assignments and 863 (46%) of which are of unknown function. Genome analysis reveals numerous pathways involved in degradation of sugars and plant polysaccharides, and 108 genes that have orthologues only in the genomes of other thermophilic Eubacteria and Archaea. Of the Eubacteria sequenced to date, T.maritima has the highest percentage (24%) of genes that are most similar to archaeal genes. Eighty-one archaeal-like genes are clustered in 15 regions of the T. maritima genome that range in size from 4 to 20 kilobases. Conservation of gene order between T. maritima and Archaea in many of the clustered regions suggests that lateral gene transfer may have occurred between thermophilic Eubacteria and Archaea.


Nature | 1997

The complete genome sequence of the hyperthermophilic, sulphate-reducing archaeon Archaeoglobus fulgidus.

Hans-Peter Klenk; Rebecca A. Clayton; Jean-Francois Tomb; Owen White; Karen E. Nelson; Karen A. Ketchum; Robert J. Dodson; Michelle L. Gwinn; Erin Hickey; Jeremy Peterson; Delwood Richardson; Anthony R. Kerlavage; David E. Graham; Nikos Kyrpides; Robert D. Fleischmann; John Quackenbush; Norman H. Lee; Granger Sutton; Steven R. Gill; Ewen F. Kirkness; Brian A. Dougherty; Keith McKenney; Mark D. Adams; Brendan J. Loftus; Scott N. Peterson; Claudia I. Reich; Leslie K. McNeil; Jonathan H. Badger; Anna Glodek; Lixin Zhou

Archaeoglobus fulgidus is the first sulphur-metabolizing organism to have its genome sequence determined. Its genome of 2,178,400 base pairs contains 2,436 open reading frames (ORFs). The information processing systems and the biosynthetic pathways for essential components (nucleotides, amino acids and cofactors) have extensive correlation with their counterparts in the archaeon Methanococcus jannaschii . The genomes of these two Archaea indicate dramatic differences in the way these organisms sense their environment, perform regulatory and transport functions, and gain energy. In contrast to M. jannaschii , A. fulgidus has fewer restriction–modification systems, and none of its genes appears to contain inteins. A quarter (651 ORFs) of the A. fulgidus genome encodes functionally uncharacterized yet conserved proteins, two-thirds of which are shared with M. jannaschii (428 ORFs). Another quarter of the genome encodes new proteins indicating substantial archaeal gene diversity.


Nature | 2003

The genome sequence of Bacillus anthracis Ames and comparison to closely related bacteria

Timothy D. Read; Scott N. Peterson; Nicolas J. Tourasse; Les W. Baillie; Ian T. Paulsen; Karen E. Nelson; Hervé Tettelin; Derrick E. Fouts; Jonathan A. Eisen; Steven R. Gill; E. Holtzapple; Ole Andreas Økstad; Erlendur Helgason; Jennifer Rilstone; Martin Wu; James F. Kolonay; Maureen J. Beanan; Robert J. Dodson; Lauren M. Brinkac; Michelle L. Gwinn; Robert T. DeBoy; Ramana Madpu; Sean C. Daugherty; A. Scott Durkin; Daniel H. Haft; William C. Nelson; Jeremy Peterson; Mihai Pop; Hoda Khouri; Diana Radune

Bacillus anthracis is an endospore-forming bacterium that causes inhalational anthrax. Key virulence genes are found on plasmids (extra-chromosomal, circular, double-stranded DNA molecules) pXO1 (ref. 2) and pXO2 (ref. 3). To identify additional genes that might contribute to virulence, we analysed the complete sequence of the chromosome of B. anthracis Ames (about 5.23 megabases). We found several chromosomally encoded proteins that may contribute to pathogenicity—including haemolysins, phospholipases and iron acquisition functions—and identified numerous surface proteins that might be important targets for vaccines and drugs. Almost all these putative chromosomal virulence and surface proteins have homologues in Bacillus cereus, highlighting the similarity of B. anthracis to near-neighbours that are not associated with anthrax. By performing a comparative genome hybridization of 19 B. cereus and Bacillus thuringiensis strains against a B. anthracis DNA microarray, we confirmed the general similarity of chromosomal genes among this group of close relatives. However, we found that the gene sequences of pXO1 and pXO2 were more variable between strains, suggesting plasmid mobility in the group. The complete sequence of B. anthracis is a step towards a better understanding of anthrax pathogenesis.


Nature | 2008

Functional metagenomic profiling of nine biomes

Elizabeth A. Dinsdale; Robert Edwards; Dana Hall; Florent E. Angly; Mya Breitbart; Mike Furlan; Christelle Desnues; Matthew Haynes; Linlin Li; Lauren D. McDaniel; Mary Ann Moran; Karen E. Nelson; Christina Nilsson; Robert Olson; John H. Paul; Beltran Rodriguez Brito; Yijun Ruan; Brandon K. Swan; Rick Stevens; David L. Valentine; Rebecca Vega Thurber; Linda Wegley; Bryan A. White; Forest Rohwer

Microbial activities shape the biogeochemistry of the planet and macroorganism health. Determining the metabolic processes performed by microbes is important both for understanding and for manipulating ecosystems (for example, disruption of key processes that lead to disease, conservation of environmental services, and so on). Describing microbial function is hampered by the inability to culture most microbes and by high levels of genomic plasticity. Metagenomic approaches analyse microbial communities to determine the metabolic processes that are important for growth and survival in any given environment. Here we conduct a metagenomic comparison of almost 15 million sequences from 45 distinct microbiomes and, for the first time, 42 distinct viromes and show that there are strongly discriminatory metabolic profiles across environments. Most of the functional diversity was maintained in all of the communities, but the relative occurrence of metabolisms varied, and the differences between metagenomes predicted the biogeochemical conditions of each environment. The magnitude of the microbial metabolic capabilities encoded by the viromes was extensive, suggesting that they serve as a repository for storing and sharing genes among their microbial hosts and influence global evolutionary and metabolic processes.


PLOS Computational Biology | 2005

A Guild of 45 CRISPR-Associated (Cas) Protein Families and Multiple CRISPR/Cas Subtypes Exist in Prokaryotic Genomes

Daniel H. Haft; Jeremy D. Selengut; Emmanuel F. Mongodin; Karen E. Nelson

Clustered regularly interspaced short palindromic repeats (CRISPRs) are a family of DNA direct repeats found in many prokaryotic genomes. Repeats of 21–37 bp typically show weak dyad symmetry and are separated by regularly sized, nonrepetitive spacer sequences. Four CRISPR-associated (Cas) protein families, designated Cas1 to Cas4, are strictly associated with CRISPR elements and always occur near a repeat cluster. Some spacers originate from mobile genetic elements and are thought to confer “immunity” against the elements that harbor these sequences. In the present study, we have systematically investigated uncharacterized proteins encoded in the vicinity of these CRISPRs and found many additional protein families that are strictly associated with CRISPR loci across multiple prokaryotic species. Multiple sequence alignments and hidden Markov models have been built for 45 Cas protein families. These models identify family members with high sensitivity and selectivity and classify key regulators of development, DevR and DevS, in Myxococcus xanthus as Cas proteins. These identifications show that CRISPR/cas gene regions can be quite large, with up to 20 different, tandem-arranged cas genes next to a repeat cluster or filling the region between two repeat clusters. Distinctive subsets of the collection of Cas proteins recur in phylogenetically distant species and correlate with characteristic repeat periodicity. The analyses presented here support initial proposals of mobility of these units, along with the likelihood that loci of different subtypes interact with one another as well as with host cell defensive, replicative, and regulatory systems. It is evident from this analysis that CRISPR/cas loci are larger, more complex, and more heterogeneous than previously appreciated.


PLOS Biology | 2005

Major structural differences and novel potential virulence mechanisms from the genomes of multiple campylobacter species.

Derrick E. Fouts; Emmanuel F. Mongodin; Robert E. Mandrell; William G. Miller; David A. Rasko; Jacques Ravel; Lauren M. Brinkac; Robert T. DeBoy; Craig T. Parker; Sean C. Daugherty; Robert J. Dodson; A. Scott Durkin; Ramana Madupu; Steven A. Sullivan; Jyoti Shetty; Mobolanle A Ayodeji; Alla Shvartsbeyn; Michael C. Schatz; Jonathan H. Badger; Claire M. Fraser; Karen E. Nelson

Sequencing and comparative genome analysis of four strains of Campylobacter including C. lari RM2100, C. upsaliensis RM3195, and C. coli RM2228 has revealed major structural differences that are associated with the insertion of phage- and plasmid-like genomic islands, as well as major variations in the lipooligosaccharide complex. Poly G tracts are longer, are greater in number, and show greater variability in C. upsaliensis than in the other species. Many genes involved in host colonization, including racR/S, cadF, cdt, ciaB, and flagellin genes, are conserved across the species, but variations that appear to be species specific are evident for a lipooligosaccharide locus, a capsular (extracellular) polysaccharide locus, and a novel Campylobacter putative licABCD virulence locus. The strains also vary in their metabolic profiles, as well as their resistance profiles to a range of antibiotics. It is evident that the newly identified hypothetical and conserved hypothetical proteins, as well as uncharacterized two-component regulatory systems and membrane proteins, may hold additional significant information on the major differences in virulence among the species, as well as the specificity of the strains for particular hosts.

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Robert T. DeBoy

J. Craig Venter Institute

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Steven R. Leigh

University of Colorado Boulder

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William C. Nelson

Pacific Northwest National Laboratory

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Shibu Yooseph

J. Craig Venter Institute

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Andres Gomez

J. Craig Venter Institute

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