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Dive into the research topics where Maynard V. Olson is active.

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Featured researches published by Maynard V. Olson.


Nature | 2000

Complete genome sequence of Pseudomonas aeruginosa PAO1, an opportunistic pathogen.

Stover Ck; X. Q. Pham; A. L. Erwin; S. D. Mizoguchi; P. Warrener; M. J. Hickey; Fiona S. L. Brinkman; W. O. Hufnagle; D. J. Kowalik; M. Lagrou; R. L. Garber; L. Goltry; E. Tolentino; S. Westbrock-Wadman; Ye Yuan; L. L. Brody; S. N. Coulter; K. R. Folger; Arnold Kas; K. Larbig; Regina Lim; Kelly D. Smith; David H. Spencer; Gane Ka-Shu Wong; Zhigang Wu; Ian T. Paulsen; Jonathan Reizer; Milton H. Saier; Robert E. W. Hancock; Stephen Lory

Pseudomonas aeruginosa is a ubiquitous environmental bacterium that is one of the top three causes of opportunistic human infections. A major factor in its prominence as a pathogen is its intrinsic resistance to antibiotics and disinfectants. Here we report the complete sequence of P. aeruginosa strain PAO1. At 6.3 million base pairs, this is the largest bacterial genome sequenced, and the sequence provides insights into the basis of the versatility and intrinsic drug resistance of P. aeruginosa. Consistent with its larger genome size and environmental adaptability, P. aeruginosa contains the highest proportion of regulatory genes observed for a bacterial genome and a large number of genes involved in the catabolism, transport and efflux of organic compounds as well as four potential chemotaxis systems. We propose that the size and complexity of the P. aeruginosa genome reflect an evolutionary adaptation permitting it to thrive in diverse environments and resist the effects of a variety of antimicrobial substances.


Nature | 2008

Mapping and sequencing of structural variation from eight human genomes

Jeffrey M. Kidd; Gregory M. Cooper; William F. Donahue; Hillary S. Hayden; Nick Sampas; Tina Graves; Nancy F. Hansen; Brian Teague; Can Alkan; Francesca Antonacci; Eric Haugen; Troy Zerr; N. Alice Yamada; Peter Tsang; Tera L. Newman; Eray Tuzun; Ze Cheng; Heather M. Ebling; Nadeem Tusneem; Robert David; Will Gillett; Karen A. Phelps; Molly Weaver; David Saranga; Adrianne D. Brand; Wei Tao; Erik Gustafson; Kevin McKernan; Lin Chen; Maika Malig

Genetic variation among individual humans occurs on many different scales, ranging from gross alterations in the human karyotype to single nucleotide changes. Here we explore variation on an intermediate scale—particularly insertions, deletions and inversions affecting from a few thousand to a few million base pairs. We employed a clone-based method to interrogate this intermediate structural variation in eight individuals of diverse geographic ancestry. Our analysis provides a comprehensive overview of the normal pattern of structural variation present in these genomes, refining the location of 1,695 structural variants. We find that 50% were seen in more than one individual and that nearly half lay outside regions of the genome previously described as structurally variant. We discover 525 new insertion sequences that are not present in the human reference genome and show that many of these are variable in copy number between individuals. Complete sequencing of 261 structural variants reveals considerable locus complexity and provides insights into the different mutational processes that have shaped the human genome. These data provide the first high-resolution sequence map of human structural variation—a standard for genotyping platforms and a prelude to future individual genome sequencing projects.


Nature Genetics | 2005

Fine-scale structural variation of the human genome

Eray Tuzun; Andrew J. Sharp; Jeffrey A. Bailey; Rajinder Kaul; V. Anne Morrison; Lisa M. Pertz; Eric Haugen; Hillary S. Hayden; Donna G. Albertson; Daniel Pinkel; Maynard V. Olson; Evan E. Eichler

Inversions, deletions and insertions are important mediators of disease and disease susceptibility. We systematically compared the human genome reference sequence with a second genome (represented by fosmid paired-end sequences) to detect intermediate-sized structural variants >8 kb in length. We identified 297 sites of structural variation: 139 insertions, 102 deletions and 56 inversion breakpoints. Using combined literature, sequence and experimental analyses, we validated 112 of the structural variants, including several that are of biomedical relevance. These data provide a fine-scale structural variation map of the human genome and the requisite sequence precision for subsequent genetic studies of human disease.


Proceedings of the National Academy of Sciences of the United States of America | 2003

Comprehensive transposon mutant library of Pseudomonas aeruginosa

Michael A. Jacobs; Ashley Alwood; Iyarit Thaipisuttikul; David H. Spencer; Eric Haugen; Stephen Ernst; Oliver Will; Rajinder Kaul; Christopher K. Raymond; Ruth Levy; Liu Chun-Rong; Donald Guenthner; Donald Bovee; Maynard V. Olson; Colin Manoil

We have developed technologies for creating saturating libraries of sequence-defined transposon insertion mutants in which each strain is maintained. Phenotypic analysis of such libraries should provide a virtually complete identification of nonessential genes required for any process for which a suitable screen can be devised. The approach was applied to Pseudomonas aeruginosa, an opportunistic pathogen with a 6.3-Mbp genome. The library that was generated consists of 30,100 sequence-defined mutants, corresponding to an average of five insertions per gene. About 12% of the predicted genes of this organism lacked insertions; many of these genes are likely to be essential for growth on rich media. Based on statistical analyses and bioinformatic comparison to known essential genes in E. coli, we estimate that the actual number of essential genes is 300-400. Screening the collection for strains defective in two defined multigenic processes (twitching motility and prototrophic growth) identified mutants corresponding to nearly all genes expected from earlier studies. Thus, phenotypic analysis of the collection may produce essentially complete lists of genes required for diverse biological activities. The transposons used to generate the mutant collection have added features that should facilitate downstream studies of gene expression, protein localization, epistasis, and chromosome engineering.


American Journal of Human Genetics | 1999

When Less Is More: Gene Loss as an Engine of Evolutionary Change

Maynard V. Olson

Evolutionary change results from differences in the reproductive success of individuals with different genotypes. The downside of this process is easy to grasp: selection constantly purges deleterious mutations from the gene pool. However, we know remarkably little about evolutions upside—that is, about the types of mutations that commonly lead to increased fitness. To understand the biology of natural populations—including, most notably, that of the human—we need testable ideas about the types of mutations that evolution is likely to have favored in the recent past.


Nature Reviews Genetics | 2003

Sequencing the chimpanzee genome: insights into human evolution and disease

Maynard V. Olson; Ajit Varki

Large-scale sequencing of the chimpanzee genome is now imminent. Beyond the inherent fascination of comparing the sequence of the human genome with that of our closest living relative, this project is likely to yield tangible scientific benefits in two areas. First, the discovery of functionally important mutations that are specific to the human lineage offers a new path towards medical benefits. Second, chimpanzee–human comparisons are likely to yield molecular insights into how new biological characteristics evolve — findings that might be relevant throughout the tree of life.


Science | 2010

Widespread divergence between incipient Anopheles gambiae species revealed by whole genome sequences

Mara K. N. Lawniczak; Scott J. Emrich; Alisha K. Holloway; A. P. Regier; Maynard V. Olson; Bradley J. White; Seth Redmond; Lucinda Fulton; Elizabeth L. Appelbaum; Jennifer Godfrey; Candace N. Farmer; Asif T. Chinwalla; Shiaw-Pyng Yang; Patrick Minx; Joanne O. Nelson; Kim Kyung; Brian Walenz; E. Garcia-Hernandez; M. Aguiar; L. D. Viswanathan; Yu Hui Rogers; Robert L. Strausberg; C. A. Saski; Daniel John Lawson; Frank H. Collins; Fotis C. Kafatos; G. K. Christophides; Sandra W. Clifton; Ewen F. Kirkness; Nora J. Besansky

Signals of Mosquito Speciation Malaria in Africa is transmitted by the mosquito species complex Anopheles gambiae. Neafsey et al. (p. 514) made high-resolution single-nucleotide arrays to map genetic divergence among members of the species. Differentiation between populations was observed and evidence obtained for selective sweeps within populations. Most divergence occurred within inversion regions around the centrosome and in genes associated with development, pheromone signaling, and from the X chromosome. The analysis also revealed signals of sympatric speciation occurring within similar chromosomal regions in mosquitoes from different regions in Africa. Lawniczak et al. (p. 512) sequenced the genomes of two molecular forms (known as M and S) of A. gambiae, which have distinctive behavioral phenotypes and appear to be speciating. This effort resolves problems arising from the apparently chimeric nature of the reference genome and confirms the observed genome-wide divergences. This kind of analysis has the potential to contribute to control programs that can adapt to population shifts in mosquito behavior arising from the selective effects of the control measures themselves. Gene flow among African malaria vectors is more restricted than previously thought. The Afrotropical mosquito Anopheles gambiae sensu stricto, a major vector of malaria, is currently undergoing speciation into the M and S molecular forms. These forms have diverged in larval ecology and reproductive behavior through unknown genetic mechanisms, despite considerable levels of hybridization. Previous genome-wide scans using gene-based microarrays uncovered divergence between M and S that was largely confined to gene-poor pericentromeric regions, prompting a speciation-with-ongoing-gene-flow model that implicated only about 3% of the genome near centromeres in the speciation process. Here, based on the complete M and S genome sequences, we report widespread and heterogeneous genomic divergence inconsistent with appreciable levels of interform gene flow, suggesting a more advanced speciation process and greater challenges to identify genes critical to initiating that process.


Genome Biology | 2007

Comparison of Francisella tularensis genomes reveals evolutionary events associated with the emergence of human pathogenic strains

Laurence Rohmer; Christine Fong; Simone Abmayr; Michael Wasnick; Theodore Larson Freeman; Matthew Radey; Tina Guina; Kerstin Svensson; Hillary S. Hayden; Michael A. Jacobs; Larry A. Gallagher; Colin Manoil; Robert K. Ernst; Becky Drees; Danielle Buckley; Eric Haugen; Donald Bovee; Yang Zhou; Jean Chang; Ruth Levy; Regina Lim; Will Gillett; Don Guenthener; Allison Kang; Scott A. Shaffer; Greg Taylor; Jinzhi Chen; Byron Gallis; David A. D'Argenio; Mats Forsman

BackgroundFrancisella tularensis subspecies tularensis and holarctica are pathogenic to humans, whereas the two other subspecies, novicida and mediasiatica, rarely cause disease. To uncover the factors that allow subspecies tularensis and holarctica to be pathogenic to humans, we compared their genome sequences with the genome sequence of Francisella tularensis subspecies novicida U112, which is nonpathogenic to humans.ResultsComparison of the genomes of human pathogenic Francisella strains with the genome of U112 identifies genes specific to the human pathogenic strains and reveals pseudogenes that previously were unidentified. In addition, this analysis provides a coarse chronology of the evolutionary events that took place during the emergence of the human pathogenic strains. Genomic rearrangements at the level of insertion sequences (IS elements), point mutations, and small indels took place in the human pathogenic strains during and after differentiation from the nonpathogenic strain, resulting in gene inactivation.ConclusionThe chronology of events suggests a substantial role for genetic drift in the formation of pseudogenes in Francisella genomes. Mutations that occurred early in the evolution, however, might have been fixed in the population either because of evolutionary bottlenecks or because they were pathoadaptive (beneficial in the context of infection). Because the structure of Francisella genomes is similar to that of the genomes of other emerging or highly pathogenic bacteria, this evolutionary scenario may be shared by pathogens from other species.


Journal of Bacteriology | 2003

Whole-Genome Sequence Variation among Multiple Isolates of Pseudomonas aeruginosa

David H. Spencer; Arnold Kas; Eric E. Smith; Christopher K. Raymond; Elizabeth H. Sims; Michele D. Hastings; Jane L. Burns; Rajinder Kaul; Maynard V. Olson

Whole-genome shotgun sequencing was used to study the sequence variation of three Pseudomonas aeruginosa isolates, two from clonal infections of cystic fibrosis patients and one from an aquatic environment, relative to the genomic sequence of reference strain PAO1. The majority of the PAO1 genome is represented in these strains; however, at least three prominent islands of PAO1-specific sequence are apparent. Conversely, approximately 10% of the sequencing reads derived from each isolate fail to align with the PAO1 backbone. While average sequence variation among all strains is roughly 0.5%, regions of pronounced differences were evident in whole-genome scans of nucleotide diversity. We analyzed two such divergent loci, the pyoverdine and O-antigen biosynthesis regions, by complete resequencing. A thorough analysis of isolates collected over time from one of the cystic fibrosis patients revealed independent mutations resulting in the loss of O-antigen synthesis alternating with a mucoid phenotype. Overall, we conclude that most of the PAO1 genome represents a core P. aeruginosa backbone sequence while the strains addressed in this study possess additional genetic material that accounts for at least 10% of their genomes. Approximately half of these additional sequences are novel.


Journal of Bacteriology | 2004

Complete Genome Sequence of the Genetically Tractable Hydrogenotrophic Methanogen Methanococcus maripaludis

Erik L. Hendrickson; Rajinder Kaul; Yang Zhou; D. Bovee; P. Chapman; J. Chung; E. Conway de Macario; J. A. Dodsworth; W. Gillett; David E. Graham; Murray Hackett; Andrew K. Haydock; Allison Kang; Miriam Land; Ruth Levy; Thomas J. Lie; Tiffany A. Major; Brian C. Moore; Iris Porat; A. Palmeiri; G. Rouse; C. Saenphimmachak; Dieter Söll; S. Van Dien; Tiansong Wang; William B. Whitman; Qiangwei Xia; Y. Zhang; Frank W. Larimer; Maynard V. Olson

The genome sequence of the genetically tractable, mesophilic, hydrogenotrophic methanogen Methanococcus maripaludis contains 1,722 protein-coding genes in a single circular chromosome of 1,661,137 bp. Of the protein-coding genes (open reading frames [ORFs]), 44% were assigned a function, 48% were conserved but had unknown or uncertain functions, and 7.5% (129 ORFs) were unique to M. maripaludis. Of the unique ORFs, 27 were confirmed to encode proteins by the mass spectrometric identification of unique peptides. Genes for most known functions and pathways were identified. For example, a full complement of hydrogenases and methanogenesis enzymes was identified, including eight selenocysteine-containing proteins, with each being paralogous to a cysteine-containing counterpart. At least 59 proteins were predicted to contain iron-sulfur centers, including ferredoxins, polyferredoxins, and subunits of enzymes with various redox functions. Unusual features included the absence of a Cdc6 homolog, implying a variation in replication initiation, and the presence of a bacterial-like RNase HI as well as an RNase HII typical of the Archaea. The presence of alanine dehydrogenase and alanine racemase, which are uniquely present among the Archaea, explained the ability of the organism to use L- and D-alanine as nitrogen sources. Features that contrasted with the related organism Methanocaldococcus jannaschii included the absence of inteins, even though close homologs of most intein-containing proteins were encoded. Although two-thirds of the ORFs had their highest Blastp hits in Methanocaldococcus jannaschii, lateral gene transfer or gene loss has apparently resulted in genes, which are often clustered, with top Blastp hits in more distantly related groups.

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Rajinder Kaul

University of Washington

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Eric Haugen

University of Washington

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Yang Zhou

University of Washington

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Ruth Levy

University of Washington

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David H. Spencer

Washington University in St. Louis

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Jean Chang

University of Washington

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Will Gillett

Washington University in St. Louis

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Arnold Kas

University of Washington

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