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Featured researches published by Catherine M. Ronning.


Nature | 2005

Genomic sequence of the pathogenic and allergenic filamentous fungus Aspergillus fumigatus.

William C. Nierman; Arnab Pain; Michael J. Anderson; Jennifer R. Wortman; H. Stanley Kim; Javier Arroyo; Matthew Berriman; Keietsu Abe; David B. Archer; Clara Bermejo; Joan W. Bennett; Paul Bowyer; Dan Chen; Matthew Collins; Richard Coulsen; Robert Davies; Paul S. Dyer; Mark L. Farman; Nadia Fedorova; Natalie D. Fedorova; Tamara V. Feldblyum; Reinhard Fischer; Nigel Fosker; Audrey Fraser; José Luis García; María José García; Ariette Goble; Gustavo H. Goldman; Katsuya Gomi; Sam Griffith-Jones

Aspergillus fumigatus is exceptional among microorganisms in being both a primary and opportunistic pathogen as well as a major allergen. Its conidia production is prolific, and so human respiratory tract exposure is almost constant. A. fumigatus is isolated from human habitats and vegetable compost heaps. In immunocompromised individuals, the incidence of invasive infection can be as high as 50% and the mortality rate is often about 50% (ref. 2). The interaction of A. fumigatus and other airborne fungi with the immune system is increasingly linked to severe asthma and sinusitis. Although the burden of invasive disease caused by A. fumigatus is substantial, the basic biology of the organism is mostly obscure. Here we show the complete 29.4-megabase genome sequence of the clinical isolate Af293, which consists of eight chromosomes containing 9,926 predicted genes. Microarray analysis revealed temperature-dependent expression of distinct sets of genes, as well as 700 A. fumigatus genes not present or significantly diverged in the closely related sexual species Neosartorya fischeri, many of which may have roles in the pathogenicity phenotype. The Af293 genome sequence provides an unparalleled resource for the future understanding of this remarkable fungus.


Nature | 1999

Sequence and analysis of chromosome 4 of the plant Arabidopsis thaliana

Xiaoying Lin; Samir Kaul; Steve Rounsley; Terrance Shea; Maria Ines Benito; Christopher D. Town; Claire Fujii; Tanya Mason; Cheryl Bowman; Mary Barnstead; Tamara Feldblyum; C. Robin Buell; Karen A. Ketchum; John M. Lee; Catherine M. Ronning; Hean L. Koo; Kelly S. Moffat; Lisa Cronin; Mian Shen; Grace Pal; Susan Van Aken; Lowell Umayam; Luke J. Tallon; John E. Gill; Mark D. Adams; Ana J. Carrera; Todd Creasy; Howard M. Goodman; Chris R. Somerville; Greg P. Copenhaver

Arabidopsis thaliana (Arabidopsis) is unique among plant model organisms in having a small genome (130–140 Mb), excellent physical and genetic maps, and little repetitive DNA. Here we report the sequence of chromosome 2 from the Columbia ecotype in two gap-free assemblies (contigs) of 3.6 and 16 megabases (Mb). The latter represents the longest published stretch of uninterrupted DNA sequence assembled from any organism to date. Chromosome 2 represents 15% of the genome and encodes 4,037 genes, 49% of which have no predicted function. Roughly 250 tandem gene duplications were found in addition to large-scale duplications of about 0.5 and 4.5 Mb between chromosomes 2 and 1 and between chromosomes 2 and 4, respectively. Sequencing of nearly 2 Mb within the genetically defined centromere revealed a low density of recognizable genes, and a high density and diverse range of vestigial and presumably inactive mobile elements. More unexpected is what appears to be a recent insertion of a continuous stretch of 75% of the mitochondrial genome into chromosome 2.


PLOS Genetics | 2008

Genomic Islands in the Pathogenic Filamentous Fungus Aspergillus fumigatus

Natalie D. Fedorova; Nora Khaldi; Vinita Joardar; Rama Maiti; Paolo Amedeo; Michael J. Anderson; Jonathan Crabtree; Joana C. Silva; Jonathan H. Badger; Ahmed Abdulrahman Albarraq; Sam Angiuoli; Howard Bussey; Paul Bowyer; Peter J. Cotty; Paul S. Dyer; Amy Egan; Kevin Galens; Claire M. Fraser-Liggett; Brian J. Haas; Jason M. Inman; Richard Kent; Sébastien Lemieux; Iran Malavazi; Joshua Orvis; Terry Roemer; Catherine M. Ronning; Jaideep Sundaram; Granger Sutton; Geoff Turner; J. Craig Venter

We present the genome sequences of a new clinical isolate of the important human pathogen, Aspergillus fumigatus, A1163, and two closely related but rarely pathogenic species, Neosartorya fischeri NRRL181 and Aspergillus clavatus NRRL1. Comparative genomic analysis of A1163 with the recently sequenced A. fumigatus isolate Af293 has identified core, variable and up to 2% unique genes in each genome. While the core genes are 99.8% identical at the nucleotide level, identity for variable genes can be as low 40%. The most divergent loci appear to contain heterokaryon incompatibility (het) genes associated with fungal programmed cell death such as developmental regulator rosA. Cross-species comparison has revealed that 8.5%, 13.5% and 12.6%, respectively, of A. fumigatus, N. fischeri and A. clavatus genes are species-specific. These genes are significantly smaller in size than core genes, contain fewer exons and exhibit a subtelomeric bias. Most of them cluster together in 13 chromosomal islands, which are enriched for pseudogenes, transposons and other repetitive elements. At least 20% of A. fumigatus-specific genes appear to be functional and involved in carbohydrate and chitin catabolism, transport, detoxification, secondary metabolism and other functions that may facilitate the adaptation to heterogeneous environments such as soil or a mammalian host. Contrary to what was suggested previously, their origin cannot be attributed to horizontal gene transfer (HGT), but instead is likely to involve duplication, diversification and differential gene loss (DDL). The role of duplication in the origin of lineage-specific genes is further underlined by the discovery of genomic islands that seem to function as designated “gene dumps” and, perhaps, simultaneously, as “gene factories”.


Proceedings of the National Academy of Sciences of the United States of America | 2006

Evolution of sensory complexity recorded in a myxobacterial genome.

Barry S. Goldman; William C. Nierman; Dale Kaiser; S. C. Slater; Anthony S. Durkin; Jonathan A. Eisen; Catherine M. Ronning; W. B. Barbazuk; M. Blanchard; C. Field; C. Halling; G. Hinkle; O. Iartchuk; H. S. Kim; Chris Mackenzie; Ramana Madupu; N. Miller; Alla Shvartsbeyn; Steven A. Sullivan; M. Vaudin; R. Wiegand; Heidi B. Kaplan

Myxobacteria are single-celled, but social, eubacterial predators. Upon starvation they build multicellular fruiting bodies using a developmental program that progressively changes the pattern of cell movement and the repertoire of genes expressed. Development terminates with spore differentiation and is coordinated by both diffusible and cell-bound signals. The growth and development of Myxococcus xanthus is regulated by the integration of multiple signals from outside the cells with physiological signals from within. A collection of M. xanthus cells behaves, in many respects, like a multicellular organism. For these reasons M. xanthus offers unparalleled access to a regulatory network that controls development and that organizes cell movement on surfaces. The genome of M. xanthus is large (9.14 Mb), considerably larger than the other sequenced δ-proteobacteria. We suggest that gene duplication and divergence were major contributors to genomic expansion from its progenitor. More than 1,500 duplications specific to the myxobacterial lineage were identified, representing >15% of the total genes. Genes were not duplicated at random; rather, genes for cell–cell signaling, small molecule sensing, and integrative transcription control were amplified selectively. Families of genes encoding the production of secondary metabolites are overrepresented in the genome but may have been received by horizontal gene transfer and are likely to be important for predation.


The Plant Cell | 2002

Deductions about the Number, Organization, and Evolution of Genes in the Tomato Genome Based on Analysis of a Large Expressed Sequence Tag Collection and Selective Genomic Sequencing

Rutger Van der Hoeven; Catherine M. Ronning; James J. Giovannoni; Gregory B. Martin; Steven D. Tanksley

Analysis of a collection of 120,892 single-pass ESTs, derived from 26 different tomato cDNA libraries and reduced to a set of 27,274 unique consensus sequences (unigenes), revealed that 70% of the unigenes have identifiable homologs in the Arabidopsis genome. Genes corresponding to metabolism have remained most conserved between these two genomes, whereas genes encoding transcription factors are among the fastest evolving. The majority of the 10 largest conserved multigene families share similar copy numbers in tomato and Arabidopsis, suggesting that the multiplicity of these families may have occurred before the divergence of these two species. An exception to this multigene conservation was observed for the E8-like protein family, which is associated with fruit ripening and has higher copy number in tomato than in Arabidopsis. Finally, six BAC clones from different parts of the tomato genome were isolated, genetically mapped, sequenced, and annotated. The combined analysis of the EST database and these six sequenced BACs leads to the prediction that the tomato genome encodes ∼35,000 genes, which are sequestered largely in euchromatic regions corresponding to less than one-quarter of the total DNA in the tomato nucleus.


Plant Physiology | 2003

Comparative Analyses of Potato Expressed Sequence Tag Libraries

Catherine M. Ronning; Svetlana Stegalkina; Robert A. Ascenzi; Oleg Bougri; Amy L. Hart; Teresa R. Utterbach; Susan E. Vanaken; Steve B. Riedmuller; Joseph White; Jennifer Cho; Geo Pertea; Yuandan Lee; Svetlana Karamycheva; Razvan Sultana; Jennifer Tsai; John Quackenbush; H. M. Griffiths; Silvia Restrepo; Christine D. Smart; William E. Fry; Rutger Van der Hoeven; Steve Tanksley; Peifen Zhang; Hailing Jin; Miki L. Yamamoto; Barbara Baker; C. Robin Buell

The cultivated potato (Solanum tuberosum) shares similar biology with other members of the Solanaceae, yet has features unique within the family, such as modified stems (stolons) that develop into edible tubers. To better understand potato biology, we have undertaken a survey of the potato transcriptome using expressed sequence tags (ESTs) from diverse tissues. A total of 61,940 ESTs were generated from aerial tissues, below-ground tissues, and tissues challenged with the late-blight pathogen (Phytophthora infestans). Clustering and assembly of these ESTs resulted in a total of 19,892 unique sequences with 8,741 tentative consensus sequences and 11,151 singleton ESTs. We were able to identify a putative function for 43.7% of these sequences. A number of sequences (48) were expressed throughout the libraries sampled, representing constitutively expressed sequences. Other sequences (13,068, 21%) were uniquely expressed and were detected only in a single library. Using hierarchal and k means clustering of the EST sequences, we were able to correlate changes in gene expression with major physiological events in potato biology. Using pair-wise comparisons of tuber-related tissues, we were able to associate genes with tuber initiation, dormancy, and sprouting. We also were able to identify a number of characterized as well as novel sequences that were unique to the incompatible interaction of late-blight pathogen, thereby providing a foundation for further understanding the mechanism of resistance.


BMC Biology | 2005

Complete reannotation of the Arabidopsis genome: methods, tools, protocols and the final release

Brian J. Haas; Jennifer R. Wortman; Catherine M. Ronning; Linda I. Hannick; R. K. W. Smith; Rama Maiti; Agnes P. Chan; Chunhui Yu; Maryam Farzad; Dongying Wu; Owen White; Christopher D. Town

BackgroundSince the initial publication of its complete genome sequence, Arabidopsis thaliana has become more important than ever as a model for plant research. However, the initial genome annotation was submitted by multiple centers using inconsistent methods, making the data difficult to use for many applications.ResultsOver the course of three years, TIGR has completed its effort to standardize the structural and functional annotation of the Arabidopsis genome. Using both manual and automated methods, Arabidopsis gene structures were refined and gene products were renamed and assigned to Gene Ontology categories. We present an overview of the methods employed, tools developed, and protocols followed, summarizing the contents of each data release with special emphasis on our final annotation release (version 5).ConclusionOver the entire period, several thousand new genes and pseudogenes were added to the annotation. Approximately one third of the originally annotated gene models were significantly refined yielding improved gene structure annotations, and every protein-coding gene was manually inspected and classified using Gene Ontology terms.


Plant Physiology | 2003

Annotation of the Arabidopsis Genome

Jennifer R. Wortman; Brian J. Haas; Linda I. Hannick; R. K. W. Smith; Rama Maiti; Catherine M. Ronning; Agnes P. Chan; Chunhui Yu; Mulu Ayele; Catherine A. Whitelaw; Owen R. White; Christopher D. Town

The Arabidopsis Genome Sequencing Project was officially completed in late 2000, leading to the publication of a landmark paper describing, in broad outline, many salient features of the Arabidopsis genome ([Arabidopsis Genome Initiative [AGI], 2000][1]). However, the genome annotation, generated by


Genome Biology and Evolution | 2010

The Sequence of a 1.8-Mb Bacterial Linear Plasmid Reveals a Rich Evolutionary Reservoir of Secondary Metabolic Pathways

Marnix H. Medema; Axel Christoph Trefzer; Andriy Kovalchuk; Marco van den Berg; Ulrike Müller; Wilbert H. M. Heijne; Liang Wu; Mohammad T. Alam; Catherine M. Ronning; William C. Nierman; Roel A. L. Bovenberg; Rainer Breitling; Eriko Takano

Plasmids are mobile genetic elements that play a key role in the evolution of bacteria by mediating genome plasticity and lateral transfer of useful genetic information. Although originally considered to be exclusively circular, linear plasmids have also been identified in certain bacterial phyla, notably the actinomycetes. In some cases, linear plasmids engage with chromosomes in an intricate evolutionary interplay, facilitating the emergence of new genome configurations by transfer and recombination or plasmid integration. Genome sequencing of Streptomyces clavuligerus ATCC 27064, a Gram-positive soil bacterium known for its production of a diverse array of biotechnologically important secondary metabolites, revealed a giant linear plasmid of 1.8 Mb in length. This megaplasmid (pSCL4) is one of the largest plasmids ever identified and the largest linear plasmid to be sequenced. It contains more than 20% of the putative protein-coding genes of the species, but none of these is predicted to be essential for primary metabolism. Instead, the plasmid is densely packed with an exceptionally large number of gene clusters for the potential production of secondary metabolites, including a large number of putative antibiotics, such as staurosporine, moenomycin, β-lactams, and enediynes. Interestingly, cross-regulation occurs between chromosomal and plasmid-encoded genes. Several factors suggest that the megaplasmid came into existence through recombination of a smaller plasmid with the arms of the main chromosome. Phylogenetic analysis indicates that heavy traffic of genetic information between Streptomyces plasmids and chromosomes may facilitate the rapid evolution of secondary metabolite repertoires in these bacteria.


BMC Genomics | 2008

Insights into the Musa genome: Syntenic relationships to rice and between Musa species

Magali Lescot; Pietro Piffanelli; A. Y. Ciampi; Manuel Ruiz; Guillaume Blanc; Jim Leebens-Mack; Felipe Rodrigues da Silva; C. M. R. Santos; Angélique D'Hont; Olivier Garsmeur; Alberto Duarte Vilarinhos; Hiroyuki Kanamori; Takashi Matsumoto; Catherine M. Ronning; Foo Cheung; Brian J. Haas; Ryan Althoff; Tammy Arbogast; Erin Hine; Georgios J Pappas; Takuji Sasaki; Manoel Souza; Robert N.G. Miller; Jean-Christophe Glaszmann; Christopher D. Town

BackgroundMusa species (Zingiberaceae, Zingiberales) including bananas and plantains are collectively the fourth most important crop in developing countries. Knowledge concerning Musa genome structure and the origin of distinct cultivars has greatly increased over the last few years. Until now, however, no large-scale analyses of Musa genomic sequence have been conducted. This study compares genomic sequence in two Musa species with orthologous regions in the rice genome.ResultsWe produced 1.4 Mb of Musa sequence from 13 BAC clones, annotated and analyzed them along with 4 previously sequenced BACs. The 443 predicted genes revealed that Zingiberales genes share GC content and distribution characteristics with eudicot and Poaceae genomes. Comparison with rice revealed microsynteny regions that have persisted since the divergence of the Commelinid orders Poales and Zingiberales at least 117 Mya. The previously hypothesized large-scale duplication event in the common ancestor of major cereal lineages within the Poaceae was verified. The divergence time distributions for Musa-Zingiber (Zingiberaceae, Zingiberales) orthologs and paralogs provide strong evidence for a large-scale duplication event in the Musa lineage after its divergence from the Zingiberaceae approximately 61 Mya. Comparisons of genomic regions from M. acuminata and M. balbisiana revealed highly conserved genome structure, and indicated that these genomes diverged circa 4.6 Mya.ConclusionThese results point to the utility of comparative analyses between distantly-related monocot species such as rice and Musa for improving our understanding of monocot genome evolution. Sequencing the genome of M. acuminata would provide a strong foundation for comparative genomics in the monocots. In addition a genome sequence would aid genomic and genetic analyses of cultivated Musa polyploid genotypes in research aimed at localizing and cloning genes controlling important agronomic traits for breeding purposes.

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Paul Bowyer

University of Manchester

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Paul S. Dyer

University of Nottingham

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