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Dive into the research topics where Jason E. Stajich is active.

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Featured researches published by Jason E. Stajich.


Nature | 2006

Reconstructing the early evolution of Fungi using a six-gene phylogeny

Timothy Y. James; Frank Kauff; Conrad L. Schoch; P. Brandon Matheny; Cymon J. Cox; Gail Celio; Emily Fraker; Jolanta Miadlikowska; H. Thorsten Lumbsch; Alexandra Rauhut; A. Elizabeth Arnold; Anja Amtoft; Jason E. Stajich; Kentaro Hosaka; Gi-Ho Sung; Desiree Johnson; Michael Crockett; Manfred Binder; Judd M. Curtis; Jason C. Slot; Zheng Wang; Andrew W. Wilson; Arthur Schu; Joyce E. Longcore; David G. Porter; Peter M. Letcher; Martha J. Powell; John W. Taylor; Merlin M. White; Gareth W. Griffith

The ancestors of fungi are believed to be simple aquatic forms with flagellated spores, similar to members of the extant phylum Chytridiomycota (chytrids). Current classifications assume that chytrids form an early-diverging clade within the kingdom Fungi and imply a single loss of the spore flagellum, leading to the diversification of terrestrial fungi. Here we develop phylogenetic hypotheses for Fungi using data from six gene regions and nearly 200 species. Our results indicate that there may have been at least four independent losses of the flagellum in the kingdom Fungi. These losses of swimming spores coincided with the evolution of new mechanisms of spore dispersal, such as aerial dispersal in mycelial groups and polar tube eversion in the microsporidia (unicellular forms that lack mitochondria). The enigmatic microsporidia seem to be derived from an endoparasitic chytrid ancestor similar to Rozella allomycis, on the earliest diverging branch of the fungal phylogenetic tree.


Eukaryotic Cell | 2007

Evolution of the mating type locus: Insights gained from the dimorphic primary fungal pathogens Histoplasma capsulatum, Coccidioides immitis, and Coccidioides posadasii

James A. Fraser; Jason E. Stajich; Eric J. Tarcha; Garry T. Cole; Diane O. Inglis; Anita Sil; Joseph Heitman

ABSTRACT Sexual reproduction of fungi is governed by the mating type (MAT) locus, a specialized region of the genome encoding key transcriptional regulators that direct regulatory networks to specify cell identity and fate. Knowledge of MAT locus structure and evolution has been considerably advanced in recent years as a result of genomic analyses that enable the definition of MAT locus sequences in many species as well as provide an understanding of the evolutionary plasticity of this unique region of the genome. Here, we extend this analysis to define the mating type locus of three dimorphic primary human fungal pathogens, Histoplasma capsulatum, Coccidioides immitis, and Coccidioides posadasii, using genomic analysis, direct sequencing, and bioinformatics. These studies provide evidence that all three species possess heterothallic bipolar mating type systems, with isolates encoding either a high-mobility-group (HMG) domain or an α-box transcriptional regulator. These genes are intact in all loci examined and have not been subject to loss or decay, providing evidence that the loss of fertility upon passage in H. capsulatum is not attributable to mutations at the MAT locus. These findings also suggest that an extant sexual cycle remains to be defined in both Coccidioides species, in accord with population genetic evidence. Based on these MAT sequences, a facile PCR test was developed that allows the mating type to be rapidly ascertained. Finally, these studies highlight the evolutionary forces shaping the MAT locus, revealing examples in which flanking genes have been inverted or subsumed and incorporated into an expanding MAT locus, allowing us to propose an expanded model for the evolution of the MAT locus in the phylum Ascomycota.


PLOS Biology | 2003

The genome sequence of Caenorhabditis briggsae: A platform for comparative genomics

Lincoln Stein; Zhirong Bao; Darin Blasiar; Thomas Blumenthal; Michael R. Brent; Nansheng Chen; Asif T. Chinwalla; Laura Clarke; Chris Clee; Avril Coghlan; Alan Coulson; Peter D'Eustachio; David H. A. Fitch; Lucinda A. Fulton; Robert Fulton; Sam Griffiths-Jones; Todd W. Harris; LaDeana W. Hillier; Ravi S. Kamath; Patricia E. Kuwabara; Elaine R. Mardis; Marco A. Marra; Tracie L. Miner; Patrick Minx; James C. Mullikin; Robert W. Plumb; Jane Rogers; Jacqueline E. Schein; Marc Sohrmann; John Spieth

The soil nematodes Caenorhabditis briggsae and Caenorhabditis elegans diverged from a common ancestor roughly 100 million years ago and yet are almost indistinguishable by eye. They have the same chromosome number and genome sizes, and they occupy the same ecological niche. To explore the basis for this striking conservation of structure and function, we have sequenced the C. briggsae genome to a high-quality draft stage and compared it to the finished C. elegans sequence. We predict approximately 19,500 protein-coding genes in the C. briggsae genome, roughly the same as in C. elegans. Of these, 12,200 have clear C. elegans orthologs, a further 6,500 have one or more clearly detectable C. elegans homologs, and approximately 800 C. briggsae genes have no detectable matches in C. elegans. Almost all of the noncoding RNAs (ncRNAs) known are shared between the two species. The two genomes exhibit extensive colinearity, and the rate of divergence appears to be higher in the chromosomal arms than in the centers. Operons, a distinctive feature of C. elegans, are highly conserved in C. briggsae, with the arrangement of genes being preserved in 96% of cases. The difference in size between the C. briggsae (estimated at approximately 104 Mbp) and C. elegans (100.3 Mbp) genomes is almost entirely due to repetitive sequence, which accounts for 22.4% of the C. briggsae genome in contrast to 16.5% of the C. elegans genome. Few, if any, repeat families are shared, suggesting that most were acquired after the two species diverged or are undergoing rapid evolution. Coclustering the C. elegans and C. briggsae proteins reveals 2,169 protein families of two or more members. Most of these are shared between the two species, but some appear to be expanding or contracting, and there seem to be as many as several hundred novel C. briggsae gene families. The C. briggsae draft sequence will greatly improve the annotation of the C. elegans genome. Based on similarity to C. briggsae, we found strong evidence for 1,300 new C. elegans genes. In addition, comparisons of the two genomes will help to understand the evolutionary forces that mold nematode genomes.


Nature | 2006

Insights from the genome of the biotrophic fungal plant pathogen Ustilago maydis

Jörg Kämper; Regine Kahmann; Michael Bölker; Li-Jun Ma; Thomas Brefort; Barry J. Saville; Flora Banuett; James W. Kronstad; Scott E. Gold; Olaf Müller; Michael H. Perlin; Han A. B. Wösten; Ronald P. de Vries; José Ruiz-Herrera; Cristina G. Reynaga-Peña; Karen M. Snetselaar; Michael McCann; José Pérez-Martín; Michael Feldbrügge; Christoph W. Basse; Gero Steinberg; Jose I. Ibeas; William Holloman; Plinio Guzman; Mark L. Farman; Jason E. Stajich; Rafael Sentandreu; Juan M. González-Prieto; John C. Kennell; Lázaro Molina

Ustilago maydis is a ubiquitous pathogen of maize and a well-established model organism for the study of plant–microbe interactions. This basidiomycete fungus does not use aggressive virulence strategies to kill its host. U. maydis belongs to the group of biotrophic parasites (the smuts) that depend on living tissue for proliferation and development. Here we report the genome sequence for a member of this economically important group of biotrophic fungi. The 20.5-million-base U. maydis genome assembly contains 6,902 predicted protein-encoding genes and lacks pathogenicity signatures found in the genomes of aggressive pathogenic fungi, for example a battery of cell-wall-degrading enzymes. However, we detected unexpected genomic features responsible for the pathogenicity of this organism. Specifically, we found 12 clusters of genes encoding small secreted proteins with unknown function. A significant fraction of these genes exists in small gene families. Expression analysis showed that most of the genes contained in these clusters are regulated together and induced in infected tissue. Deletion of individual clusters altered the virulence of U. maydis in five cases, ranging from a complete lack of symptoms to hypervirulence. Despite years of research into the mechanism of pathogenicity in U. maydis, no ‘true’ virulence factors had been previously identified. Thus, the discovery of the secreted protein gene clusters and the functional demonstration of their decisive role in the infection process illuminate previously unknown mechanisms of pathogenicity operating in biotrophic fungi. Genomic analysis is, similarly, likely to open up new avenues for the discovery of virulence determinants in other pathogens.


Nature | 2008

The genome of Laccaria bicolor provides insights into mycorrhizal symbiosis

Francis L. Martin; Andrea Aerts; Dag Ahrén; Annick Brun; E. G. J. Danchin; F. Duchaussoy; J. Gibon; Annegret Kohler; Erika Lindquist; V. Pereda; Asaf Salamov; Harris Shapiro; Jan Wuyts; D. Blaudez; M. Buée; P. Brokstein; Björn Canbäck; D. Cohen; P. E. Courty; P. M. Coutinho; Christine Delaruelle; John C. Detter; A. Deveau; Stephen P. DiFazio; Sébastien Duplessis; L. Fraissinet-Tachet; E. Lucic; P. Frey-Klett; C. Fourrey; Ivo Feussner

Mycorrhizal symbioses—the union of roots and soil fungi—are universal in terrestrial ecosystems and may have been fundamental to land colonization by plants. Boreal, temperate and montane forests all depend on ectomycorrhizae. Identification of the primary factors that regulate symbiotic development and metabolic activity will therefore open the door to understanding the role of ectomycorrhizae in plant development and physiology, allowing the full ecological significance of this symbiosis to be explored. Here we report the genome sequence of the ectomycorrhizal basidiomycete Laccaria bicolor (Fig. 1) and highlight gene sets involved in rhizosphere colonization and symbiosis. This 65-megabase genome assembly contains ∼20,000 predicted protein-encoding genes and a very large number of transposons and repeated sequences. We detected unexpected genomic features, most notably a battery of effector-type small secreted proteins (SSPs) with unknown function, several of which are only expressed in symbiotic tissues. The most highly expressed SSP accumulates in the proliferating hyphae colonizing the host root. The ectomycorrhizae-specific SSPs probably have a decisive role in the establishment of the symbiosis. The unexpected observation that the genome of L. bicolor lacks carbohydrate-active enzymes involved in degradation of plant cell walls, but maintains the ability to degrade non-plant cell wall polysaccharides, reveals the dual saprotrophic and biotrophic lifestyle of the mycorrhizal fungus that enables it to grow within both soil and living plant roots. The predicted gene inventory of the L. bicolor genome, therefore, points to previously unknown mechanisms of symbiosis operating in biotrophic mycorrhizal fungi. The availability of this genome provides an unparalleled opportunity to develop a deeper understanding of the processes by which symbionts interact with plants within their ecosystem to perform vital functions in the carbon and nitrogen cycles that are fundamental to sustainable plant productivity.


BMC Evolutionary Biology | 2006

A fungal phylogeny based on 42 complete genomes derived from supertree and combined gene analysis

David A. Fitzpatrick; Mary E. Logue; Jason E. Stajich; Geraldine Butler

BackgroundTo date, most fungal phylogenies have been derived from single gene comparisons, or from concatenated alignments of a small number of genes. The increase in fungal genome sequencing presents an opportunity to reconstruct evolutionary events using entire genomes. As a tool for future comparative, phylogenomic and phylogenetic studies, we used both supertrees and concatenated alignments to infer relationships between 42 species of fungi for which complete genome sequences are available.ResultsA dataset of 345,829 genes was extracted from 42 publicly available fungal genomes. Supertree methods were employed to derive phylogenies from 4,805 single gene families. We found that the average consensus supertree method may suffer from long-branch attraction artifacts, while matrix representation with parsimony (MRP) appears to be immune from these. A genome phylogeny was also reconstructed from a concatenated alignment of 153 universally distributed orthologs. Our MRP supertree and concatenated phylogeny are highly congruent. Within the Ascomycota, the sub-phyla Pezizomycotina and Saccharomycotina were resolved. Both phylogenies infer that the Leotiomycetes are the closest sister group to the Sordariomycetes. There is some ambiguity regarding the placement of Stagonospora nodurum, the sole member of the class Dothideomycetes present in the dataset.Within the Saccharomycotina, a monophyletic clade containing organisms that translate CTG as serine instead of leucine is evident. There is also strong support for two groups within the CTG clade, one containing the fully sexual species Candida lusitaniae, Candida guilliermondii and Debaryomyces hansenii, and the second group containing Candida albicans, Candida dubliniensis, Candida tropicalis, Candida parapsilosis and Lodderomyces elongisporus. The second major clade within the Saccharomycotina contains species whose genomes have undergone a whole genome duplication (WGD), and their close relatives. We could not confidently resolve whether Candida glabrata or Saccharomyces castellii lies at the base of the WGD clade.ConclusionWe have constructed robust phylogenies for fungi based on whole genome analysis. Overall, our phylogenies provide strong support for the classification of phyla, sub-phyla, classes and orders. We have resolved the relationship of the classes Leotiomyctes and Sordariomycetes, and have identified two classes within the CTG clade of the Saccharomycotina that may correlate with sexual status.


Nature | 2005

Same-sex mating and the origin of the Vancouver Island Cryptococcus gattii outbreak.

James A. Fraser; Steven S. Giles; Emily C. Wenink; Scarlett Geunes-Boyer; Jo Rae Wright; Stephanie Diezmann; Andria Allen; Jason E. Stajich; Fred S. Dietrich; John R. Perfect; Joseph Heitman

Genealogy can illuminate the evolutionary path of important human pathogens. In some microbes, strict clonal reproduction predominates, as with the worldwide dissemination of Mycobacterium leprae, the cause of leprosy. In other pathogens, sexual reproduction yields clones with novel attributes, for example, enabling the efficient, oral transmission of the parasite Toxoplasma gondii. However, the roles of clonal or sexual propagation in the origins of many other microbial pathogen outbreaks remain unknown, like the recent fungal meningoencephalitis outbreak on Vancouver Island, Canada, caused by Cryptococcus gattii. Here we show that the C. gattii outbreak isolates comprise two distinct genotypes. The majority of isolates are hypervirulent and have an identical genotype that is unique to the Pacific Northwest. A minority of the isolates are significantly less virulent and share an identical genotype with fertile isolates from an Australian recombining population. Genotypic analysis reveals evidence of sexual reproduction, in which the majority genotype is the predicted offspring. However, instead of the classic a–α sexual cycle, the majority outbreak clone appears to have descended from two α mating-type parents. Analysis of nuclear content revealed a diploid environmental isolate homozygous for the major genotype, an intermediate produced during same-sex mating. These studies demonstrate how cryptic same-sex reproduction can enable expansion of a human pathogen to a new geographical niche and contribute to the ongoing production of infectious spores. This has implications for the emergence of other microbial pathogens and inbreeding in host range expansion in the fungal and other kingdoms.


Nature Genetics | 2002

Ganglioside-induced differentiation-associated protein-1 is mutant in Charcot-Marie-Tooth disease type 4A/8q21

Rachel V. Baxter; Kamel Ben Othmane; Julie M. Rochelle; Jason E. Stajich; Christine M. Hulette; Susan Dew-Knight; F. Hentati; Mongi Ben Hamida; S. Bel; Judy E. Stenger; John R. Gilbert; Margaret A. Pericak-Vance; Jeffery M. Vance

We previously localized and fine-mapped Charcot Marie Tooth 4A (CMT4A), the autosomal recessive, demyelinating peripheral neuropathy, to chromosome 8. Through additional positional cloning, we have identified a good candidate gene, encoding ganglioside-induced differentiation-associated protein-1 (GDAP1). We found three different mutations in four different Tunisian families—two nonsense and one missense mutation. How mutations in GDAP1 lead to CMT4A remains to be understood.


Nature Biotechnology | 2010

Genome sequence of the model mushroom Schizophyllum commune

Robin A. Ohm; Jan F. de Jong; Luis G. Lugones; Andrea Aerts; Erika Kothe; Jason E. Stajich; Ronald P. de Vries; Eric Record; Anthony Levasseur; Scott E. Baker; Kirk A. Bartholomew; Pedro M. Coutinho; Susann Erdmann; Thomas J. Fowler; Allen C. Gathman; Vincent Lombard; Bernard Henrissat; Nicole Knabe; Ursula Kües; Walt W. Lilly; Erika Lindquist; Susan Lucas; Jon K. Magnuson; François Piumi; Marjatta Raudaskoski; Asaf Salamov; Jeremy Schmutz; Francis W. M. R. Schwarze; Patricia A. vanKuyk; J. Stephen Horton

Much remains to be learned about the biology of mushroom-forming fungi, which are an important source of food, secondary metabolites and industrial enzymes. The wood-degrading fungus Schizophyllum commune is both a genetically tractable model for studying mushroom development and a likely source of enzymes capable of efficient degradation of lignocellulosic biomass. Comparative analyses of its 38.5-megabase genome, which encodes 13,210 predicted genes, reveal the speciess unique wood-degrading machinery. One-third of the 471 genes predicted to encode transcription factors are differentially expressed during sexual development of S. commune. Whereas inactivation of one of these, fst4, prevented mushroom formation, inactivation of another, fst3, resulted in more, albeit smaller, mushrooms than in the wild-type fungus. Antisense transcripts may also have a role in the formation of fruiting bodies. Better insight into the mechanisms underlying mushroom formation should affect commercial production of mushrooms and their industrial use for producing enzymes and pharmaceuticals.


Genome Biology | 2010

Genome sequence of the necrotrophic plant pathogen Pythium ultimum reveals original pathogenicity mechanisms and effector repertoire

C. André Lévesque; Henk Brouwer; Liliana M. Cano; John P. Hamilton; Carson Holt; Edgar Huitema; Sylvain Raffaele; Gregg P. Robideau; Marco Thines; Joe Win; Marcelo M. Zerillo; Jeffrey L. Boore; Dana Busam; Bernard Dumas; Steve Ferriera; Susan I. Fuerstenberg; Claire M. M. Gachon; Elodie Gaulin; Francine Govers; Laura J. Grenville-Briggs; Neil R. Horner; Jessica B. Hostetler; Rays H. Y. Jiang; Justin Johnson; Theerapong Krajaejun; Haining Lin; Harold J. G. Meijer; Barry Moore; Paul F. Morris; Vipaporn Phuntmart

BackgroundPythium ultimum is a ubiquitous oomycete plant pathogen responsible for a variety of diseases on a broad range of crop and ornamental species.ResultsThe P. ultimum genome (42.8 Mb) encodes 15,290 genes and has extensive sequence similarity and synteny with related Phytophthora species, including the potato blight pathogen Phytophthora infestans. Whole transcriptome sequencing revealed expression of 86% of genes, with detectable differential expression of suites of genes under abiotic stress and in the presence of a host. The predicted proteome includes a large repertoire of proteins involved in plant pathogen interactions, although, surprisingly, the P. ultimum genome does not encode any classical RXLR effectors and relatively few Crinkler genes in comparison to related phytopathogenic oomycetes. A lower number of enzymes involved in carbohydrate metabolism were present compared to Phytophthora species, with the notable absence of cutinases, suggesting a significant difference in virulence mechanisms between P. ultimum and more host-specific oomycete species. Although we observed a high degree of orthology with Phytophthora genomes, there were novel features of the P. ultimum proteome, including an expansion of genes involved in proteolysis and genes unique to Pythium. We identified a small gene family of cadherins, proteins involved in cell adhesion, the first report of these in a genome outside the metazoans.ConclusionsAccess to the P. ultimum genome has revealed not only core pathogenic mechanisms within the oomycetes but also lineage-specific genes associated with the alternative virulence and lifestyles found within the pythiaceous lineages compared to the Peronosporaceae.

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Igor V. Grigoriev

United States Department of Energy

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Jinfeng Chen

University of California

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John W. Taylor

University of California

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