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Dive into the research topics where Jeremy Schmutz is active.

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Featured researches published by Jeremy Schmutz.


Nature | 2010

Genome sequence of the palaeopolyploid soybean

Jeremy Schmutz; Steven B. Cannon; Jessica A. Schlueter; Jianxin Ma; Therese Mitros; William Nelson; David L. Hyten; Qijian Song; Jay J. Thelen; Jianlin Cheng; Dong Xu; Uffe Hellsten; Gregory D. May; Yeisoo Yu; Tetsuya Sakurai; Taishi Umezawa; Madan K. Bhattacharyya; Devinder Sandhu; Babu Valliyodan; Erika Lindquist; Myron Peto; David Grant; Shengqiang Shu; David Goodstein; Kerrie Barry; Montona Futrell-Griggs; Brian Abernathy; Jianchang Du; Zhixi Tian; Liucun Zhu

Soybean (Glycine max) is one of the most important crop plants for seed protein and oil content, and for its capacity to fix atmospheric nitrogen through symbioses with soil-borne microorganisms. We sequenced the 1.1-gigabase genome by a whole-genome shotgun approach and integrated it with physical and high-density genetic maps to create a chromosome-scale draft sequence assembly. We predict 46,430 protein-coding genes, 70% more than Arabidopsis and similar to the poplar genome which, like soybean, is an ancient polyploid (palaeopolyploid). About 78% of the predicted genes occur in chromosome ends, which comprise less than one-half of the genome but account for nearly all of the genetic recombination. Genome duplications occurred at approximately 59 and 13 million years ago, resulting in a highly duplicated genome with nearly 75% of the genes present in multiple copies. The two duplication events were followed by gene diversification and loss, and numerous chromosome rearrangements. An accurate soybean genome sequence will facilitate the identification of the genetic basis of many soybean traits, and accelerate the creation of improved soybean varieties.


Nature | 2009

The Sorghum bicolor genome and the diversification of grasses

Andrew H. Paterson; John E. Bowers; Rémy Bruggmann; Inna Dubchak; Jane Grimwood; Heidrun Gundlach; Georg Haberer; Uffe Hellsten; Therese Mitros; Alexander Poliakov; Jeremy Schmutz; Manuel Spannagl; Haibao Tang; Xiyin Wang; Thomas Wicker; Arvind K. Bharti; Jarrod Chapman; F. Alex Feltus; Udo Gowik; Igor V. Grigoriev; Eric Lyons; Christopher A. Maher; Mihaela Martis; Apurva Narechania; Robert Otillar; Bryan W. Penning; Asaf Salamov; Yu Wang; Lifang Zhang; Nicholas C. Carpita

Sorghum, an African grass related to sugar cane and maize, is grown for food, feed, fibre and fuel. We present an initial analysis of the ∼730-megabase Sorghum bicolor (L.) Moench genome, placing ∼98% of genes in their chromosomal context using whole-genome shotgun sequence validated by genetic, physical and syntenic information. Genetic recombination is largely confined to about one-third of the sorghum genome with gene order and density similar to those of rice. Retrotransposon accumulation in recombinationally recalcitrant heterochromatin explains the ∼75% larger genome size of sorghum compared with rice. Although gene and repetitive DNA distributions have been preserved since palaeopolyploidization ∼70 million years ago, most duplicated gene sets lost one member before the sorghum–rice divergence. Concerted evolution makes one duplicated chromosomal segment appear to be only a few million years old. About 24% of genes are grass-specific and 7% are sorghum-specific. Recent gene and microRNA duplications may contribute to sorghum’s drought tolerance.


Nature | 2008

The amphioxus genome and the evolution of the chordate karyotype.

Nicholas H. Putnam; Thomas Butts; David E. K. Ferrier; Rebecca F. Furlong; Uffe Hellsten; Takeshi Kawashima; Marc Robinson-Rechavi; Eiichi Shoguchi; Astrid Terry; Jr-Kai Yu; E grave; lia Benito-Gutiérrez; Inna Dubchak; Jordi Garcia-Fernàndez; Jeremy J. Gibson-Brown; Igor V. Grigoriev; Amy C. Horton; Pieter J. de Jong; Jerzy Jurka; Vladimir V. Kapitonov; Yuji Kohara; Yoko Kuroki; Erika Lindquist; Susan Lucas; Kazutoyo Osoegawa; Len A. Pennacchio; Asaf Salamov; Yutaka Satou; Tatjana Sauka-Spengler; Jeremy Schmutz

Lancelets (‘amphioxus’) are the modern survivors of an ancient chordate lineage, with a fossil record dating back to the Cambrian period. Here we describe the structure and gene content of the highly polymorphic ∼520-megabase genome of the Florida lancelet Branchiostoma floridae, and analyse it in the context of chordate evolution. Whole-genome comparisons illuminate the murky relationships among the three chordate groups (tunicates, lancelets and vertebrates), and allow not only reconstruction of the gene complement of the last common chordate ancestor but also partial reconstruction of its genomic organization, as well as a description of two genome-wide duplications and subsequent reorganizations in the vertebrate lineage. These genome-scale events shaped the vertebrate genome and provided additional genetic variation for exploitation during vertebrate evolution.


Nature | 2008

The Phaeodactylum genome reveals the evolutionary history of diatom genomes.

Chris Bowler; Andrew E. Allen; Jonathan H. Badger; Jane Grimwood; Kamel Jabbari; Alan Kuo; Uma Maheswari; Cindy Martens; Florian Maumus; Robert Otillar; Edda Rayko; Asaf Salamov; Klaas Vandepoele; Bank Beszteri; Ansgar Gruber; Marc Heijde; Michael Katinka; Thomas Mock; Klaus Valentin; Frederic Verret; John A. Berges; Colin Brownlee; Jean-Paul Cadoret; Chang Jae Choi; Sacha Coesel; Alessandra De Martino; J. Chris Detter; Colleen Durkin; Angela Falciatore; Jérome Fournet

Diatoms are photosynthetic secondary endosymbionts found throughout marine and freshwater environments, and are believed to be responsible for around one-fifth of the primary productivity on Earth. The genome sequence of the marine centric diatom Thalassiosira pseudonana was recently reported, revealing a wealth of information about diatom biology. Here we report the complete genome sequence of the pennate diatom Phaeodactylum tricornutum and compare it with that of T. pseudonana to clarify evolutionary origins, functional significance and ubiquity of these features throughout diatoms. In spite of the fact that the pennate and centric lineages have only been diverging for 90 million years, their genome structures are dramatically different and a substantial fraction of genes (∼40%) are not shared by these representatives of the two lineages. Analysis of molecular divergence compared with yeasts and metazoans reveals rapid rates of gene diversification in diatoms. Contributing factors include selective gene family expansions, differential losses and gains of genes and introns, and differential mobilization of transposable elements. Most significantly, we document the presence of hundreds of genes from bacteria. More than 300 of these gene transfers are found in both diatoms, attesting to their ancient origins, and many are likely to provide novel possibilities for metabolite management and for perception of environmental signals. These findings go a long way towards explaining the incredible diversity and success of the diatoms in contemporary oceans.


Nature | 2012

The genomic basis of adaptive evolution in threespine sticklebacks

Felicity C. Jones; Manfred Grabherr; Yingguang Frank Chan; Pamela Russell; Evan Mauceli; Jeremy A. Johnson; Ross Swofford; Mono Pirun; Michael C. Zody; Simon D. M. White; Ewan Birney; Stephen M. J. Searle; Jeremy Schmutz; Jane Grimwood; Mark Dickson; Richard M. Myers; Craig T. Miller; Brian R. Summers; Anne K. Knecht; Shannon D. Brady; Haili Zhang; Alex A. Pollen; Timothy R. Howes; Chris T. Amemiya; Eric S. Lander; Federica Di Palma; Kerstin Lindblad-Toh; David M. Kingsley

Marine stickleback fish have colonized and adapted to thousands of streams and lakes formed since the last ice age, providing an exceptional opportunity to characterize genomic mechanisms underlying repeated ecological adaptation in nature. Here we develop a high-quality reference genome assembly for threespine sticklebacks. By sequencing the genomes of twenty additional individuals from a global set of marine and freshwater populations, we identify a genome-wide set of loci that are consistently associated with marine–freshwater divergence. Our results indicate that reuse of globally shared standing genetic variation, including chromosomal inversions, has an important role in repeated evolution of distinct marine and freshwater sticklebacks, and in the maintenance of divergent ecotypes during early stages of reproductive isolation. Both coding and regulatory changes occur in the set of loci underlying marine–freshwater evolution, but regulatory changes appear to predominate in this well known example of repeated adaptive evolution in nature.


Science | 2012

The Paleozoic Origin of Enzymatic Lignin Decomposition Reconstructed from 31 Fungal Genomes

Dimitrios Floudas; Manfred Binder; Robert Riley; Kerrie Barry; Robert A. Blanchette; Bernard Henrissat; Ángel T. Martínez; Robert Otillar; Joseph W. Spatafora; Jagjit S. Yadav; Andrea Aerts; Isabelle Benoit; Alex Boyd; Alexis Carlson; Alex Copeland; Pedro M. Coutinho; Ronald P. de Vries; Patricia Ferreira; Keisha Findley; Brian Foster; Jill Gaskell; Dylan Glotzer; Paweł Górecki; Joseph Heitman; Cedar Hesse; Chiaki Hori; Kiyohiko Igarashi; Joel A. Jurgens; Nathan Kallen; Phil Kersten

Dating Wood Rot Specific lineages within the basidiomycete fungi, white rot species, have evolved the ability to break up a major structural component of woody plants, lignin, relative to their non–lignin-decaying brown rot relatives. Through the deep phylogenetic sampling of fungal genomes, Floudas et al. (p. 1715; see the Perspective by Hittinger) mapped the detailed evolution of wood-degrading enzymes. A key peroxidase and other enzymes involved in lignin decay were present in the common ancestor of the Agaricomycetes. These genes then expanded through gene duplications in parallel, giving rise to white rot lineages. The enzyme family that enables fungi to digest lignin expanded around the end of the coal-forming Carboniferous period. Wood is a major pool of organic carbon that is highly resistant to decay, owing largely to the presence of lignin. The only organisms capable of substantial lignin decay are white rot fungi in the Agaricomycetes, which also contains non–lignin-degrading brown rot and ectomycorrhizal species. Comparative analyses of 31 fungal genomes (12 generated for this study) suggest that lignin-degrading peroxidases expanded in the lineage leading to the ancestor of the Agaricomycetes, which is reconstructed as a white rot species, and then contracted in parallel lineages leading to brown rot and mycorrhizal species. Molecular clock analyses suggest that the origin of lignin degradation might have coincided with the sharp decrease in the rate of organic carbon burial around the end of the Carboniferous period.


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.


Science | 2010

Adaptive evolution of pelvic reduction in sticklebacks by recurrent deletion of a Pitx1 enhancer

Yingguang Frank Chan; Melissa E. Marks; Felicity C. Jones; Guadalupe Villarreal; Michael D. Shapiro; Shannon D. Brady; Audrey Southwick; Devin Absher; Jane Grimwood; Jeremy Schmutz; Richard M. Myers; Dmitri A. Petrov; Bjarni Jónsson; Dolph Schluter; Michael A. Bell; David M. Kingsley

Adaptive Girdle Loss in Sticklebacks How do molecular changes give rise to phenotypic adaptation exemplified by the repeated reduction in the pelvic girdle observed in separate populations of sticklebacks? Now Chan et al. (p. 302, published online 10 December) have identified the specific DNA changes that control this major skeletal adaptation. The key locus controlling pelvic phenotypes mapped to a noncoding regulatory region upstream of the Pituitary homeobox transcription factor 1 gene, which drives a tissue-specific pelvic enhancer. Multiple populations showed independent deletions in this region and enhancer function was inactivated. Reintroduction of the enhancer restored pelvic development in a pelvic-reduced stickleback. Loss of a tissue-specific enhancer explains multiple parallel losses of the pelvic girdle in stickleback populations. The molecular mechanisms underlying major phenotypic changes that have evolved repeatedly in nature are generally unknown. Pelvic loss in different natural populations of threespine stickleback fish has occurred through regulatory mutations deleting a tissue-specific enhancer of the Pituitary homeobox transcription factor 1 (Pitx1) gene. The high prevalence of deletion mutations at Pitx1 may be influenced by inherent structural features of the locus. Although Pitx1 null mutations are lethal in laboratory animals, Pitx1 regulatory mutations show molecular signatures of positive selection in pelvic-reduced populations. These studies illustrate how major expression and morphological changes can arise from single mutational leaps in natural populations, producing new adaptive alleles via recurrent regulatory alterations in a key developmental control gene.


Nature | 2008

The Trichoplax genome and the nature of placozoans

Mansi Srivastava; Emina Begovic; Jarrod Chapman; Nicholas H. Putnam; Uffe Hellsten; Takeshi Kawashima; Alan Kuo; Therese Mitros; Asaf Salamov; Meredith L. Carpenter; Ana Y. Signorovitch; Maria A. Moreno; Kai Kamm; Jane Grimwood; Jeremy Schmutz; Harris Shapiro; Igor V. Grigoriev; Leo W. Buss; Bernd Schierwater; Stephen L. Dellaporta; Daniel S. Rokhsar

As arguably the simplest free-living animals, placozoans may represent a primitive metazoan form, yet their biology is poorly understood. Here we report the sequencing and analysis of the ∼98 million base pair nuclear genome of the placozoan Trichoplax adhaerens. Whole-genome phylogenetic analysis suggests that placozoans belong to a ‘eumetazoan’ clade that includes cnidarians and bilaterians, with sponges as the earliest diverging animals. The compact genome shows conserved gene content, gene structure and synteny in relation to the human and other complex eumetazoan genomes. Despite the apparent cellular and organismal simplicity of Trichoplax, its genome encodes a rich array of transcription factor and signalling pathway genes that are typically associated with diverse cell types and developmental processes in eumetazoans, motivating further searches for cryptic cellular complexity and/or as yet unobserved life history stages.


Nature Genetics | 2011

The Arabidopsis lyrata genome sequence and the basis of rapid genome size change

Tina T. Hu; Pedro Pattyn; Erica G. Bakker; Jun Cao; Jan Fang Cheng; Richard M. Clark; Noah Fahlgren; Jeffrey A. Fawcett; Jane Grimwood; Heidrun Gundlach; Georg Haberer; Jesse D. Hollister; Stephan Ossowski; Robert P. Ottilar; Asaf Salamov; Korbinian Schneeberger; Manuel Spannagl; Xi Wang; Liang Yang; Mikhail E. Nasrallah; Joy Bergelson; James C. Carrington; Brandon S. Gaut; Jeremy Schmutz; Klaus F. X. Mayer; Yves Van de Peer; Igor V. Grigoriev; Magnus Nordborg; Detlef Weigel; Ya-Long Guo

We report the 207-Mb genome sequence of the North American Arabidopsis lyrata strain MN47 based on 8.3× dideoxy sequence coverage. We predict 32,670 genes in this outcrossing species compared to the 27,025 genes in the selfing species Arabidopsis thaliana. The much smaller 125-Mb genome of A. thaliana, which diverged from A. lyrata 10 million years ago, likely constitutes the derived state for the family. We found evidence for DNA loss from large-scale rearrangements, but most of the difference in genome size can be attributed to hundreds of thousands of small deletions, mostly in noncoding DNA and transposons. Analysis of deletions and insertions still segregating in A. thaliana indicates that the process of DNA loss is ongoing, suggesting pervasive selection for a smaller genome. The high-quality reference genome sequence for A. lyrata will be an important resource for functional, evolutionary and ecological studies in the genus Arabidopsis.

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Kerrie Barry

United States Department of Energy

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Erika Lindquist

United States Department of Energy

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Asaf Salamov

United States Department of Energy

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Susan Lucas

Joint Genome Institute

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Uffe Hellsten

United States Department of Energy

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Andrea Aerts

United States Department of Energy

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Igor V. Grigoriev

United States Department of Energy

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