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Featured researches published by Harris Shapiro.


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.


Science | 2011

The ecoresponsive genome of Daphnia pulex

John K. Colbourne; Michael E. Pfrender; Donald L. Gilbert; W. Kelley Thomas; Abraham Tucker; Todd H. Oakley; Shin-ichi Tokishita; Andrea Aerts; Georg J. Arnold; Malay Kumar Basu; Darren J Bauer; Carla E. Cáceres; Liran Carmel; Claudio Casola; Jeong Hyeon Choi; John C. Detter; Qunfeng Dong; Serge Dusheyko; Brian D. Eads; Thomas Fröhlich; Kerry A. Geiler-Samerotte; Daniel Gerlach; Phil Hatcher; Sanjuro Jogdeo; Jeroen Krijgsveld; Evgenia V. Kriventseva; Dietmar Kültz; Christian Laforsch; Erika Lindquist; Jacqueline Lopez

The Daphnia genome reveals a multitude of genes and shows adaptation through gene family expansions. We describe the draft genome of the microcrustacean Daphnia pulex, which is only 200 megabases and contains at least 30,907 genes. The high gene count is a consequence of an elevated rate of gene duplication resulting in tandem gene clusters. More than a third of Daphnia’s genes have no detectable homologs in any other available proteome, and the most amplified gene families are specific to the Daphnia lineage. The coexpansion of gene families interacting within metabolic pathways suggests that the maintenance of duplicated genes is not random, and the analysis of gene expression under different environmental conditions reveals that numerous paralogs acquire divergent expression patterns soon after duplication. Daphnia-specific genes, including many additional loci within sequenced regions that are otherwise devoid of annotations, are the most responsive genes to ecological challenges.


Nature | 2008

The genome of the choanoflagellate Monosiga brevicollis and the origin of metazoans

Nicole King; M. Jody Westbrook; Susan L. Young; Alan Kuo; Monika Abedin; Jarrod Chapman; Stephen R. Fairclough; Uffe Hellsten; Yoh Isogai; Ivica Letunic; Michael T. Marr; David Pincus; Nicholas Putnam; Antonis Rokas; Kevin J. Wright; Richard Zuzow; William Dirks; Matthew C. Good; David Goodstein; Derek Lemons; Wanqing Li; Jessica B. Lyons; Andrea Morris; Scott A. Nichols; Daniel J. Richter; Asaf Salamov; Jgi Sequencing; Peer Bork; Wendell A. Lim; Gerard Manning

Choanoflagellates are the closest known relatives of metazoans. To discover potential molecular mechanisms underlying the evolution of metazoan multicellularity, we sequenced and analysed the genome of the unicellular choanoflagellate Monosiga brevicollis. The genome contains approximately 9,200 intron-rich genes, including a number that encode cell adhesion and signalling protein domains that are otherwise restricted to metazoans. Here we show that the physical linkages among protein domains often differ between M. brevicollis and metazoans, suggesting that abundant domain shuffling followed the separation of the choanoflagellate and metazoan lineages. The completion of the M. brevicollis genome allows us to reconstruct with increasing resolution the genomic changes that accompanied the origin of metazoans.


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.


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 Biotechnology | 2006

Metagenomic analysis of two enhanced biological phosphorus removal (EBPR) sludge communities

Hector Garcia Martin; Natalia Ivanova; Victor Kunin; Falk Warnecke; Kerrie Barry; Alice C. McHardy; Christine Yeates; Shaomei He; Asaf Salamov; Ernest Szeto; Eileen Dalin; Nik Putnam; Harris Shapiro; Jasmyn Pangilinan; Isidore Rigoutsos; Nikos C. Kyrpides; Linda L. Blackall; Katherine D. McMahon; Philip Hugenholtz

Enhanced biological phosphorus removal (EBPR) is one of the best-studied microbially mediated industrial processes because of its ecological and economic relevance. Despite this, it is not well understood at the metabolic level. Here we present a metagenomic analysis of two lab-scale EBPR sludges dominated by the uncultured bacterium, “Candidatus Accumulibacter phosphatis.” The analysis sheds light on several controversies in EBPR metabolic models and provides hypotheses explaining the dominance of A. phosphatis in this habitat, its lifestyle outside EBPR and probable cultivation requirements. Comparison of the same species from different EBPR sludges highlights recent evolutionary dynamics in the A. phosphatis genome that could be linked to mechanisms for environmental adaptation. In spite of an apparent lack of phylogenetic overlap in the flanking communities of the two sludges studied, common functional themes were found, at least one of them complementary to the inferred metabolism of the dominant organism. The present study provides a much needed blueprint for a systems-level understanding of EBPR and illustrates that metagenomics enables detailed, often novel, insights into even well-studied biological systems.


Proceedings of the National Academy of Sciences of the United States of America | 2009

Genome, transcriptome, and secretome analysis of wood decay fungus Postia placenta supports unique mechanisms of lignocellulose conversion

Diego Martinez; Jean F. Challacombe; Ingo Morgenstern; David S. Hibbett; Monika Schmoll; Christian P. Kubicek; Patricia Ferreira; Francisco J. Ruiz-Dueñas; Ángel T. Martínez; Phil Kersten; Kenneth E. Hammel; Amber Vanden Wymelenberg; Jill Gaskell; Erika Lindquist; Grzegorz Sabat; Sandra Splinter BonDurant; Luis F. Larrondo; Paulo Canessa; Rafael Vicuña; Jagjit S. Yadav; Harshavardhan Doddapaneni; Venkataramanan Subramanian; Antonio G. Pisabarro; José L. Lavín; José A. Oguiza; Emma R. Master; Bernard Henrissat; Pedro M. Coutinho; Paul Harris; Jon K. Magnuson

Brown-rot fungi such as Postia placenta are common inhabitants of forest ecosystems and are also largely responsible for the destructive decay of wooden structures. Rapid depolymerization of cellulose is a distinguishing feature of brown-rot, but the biochemical mechanisms and underlying genetics are poorly understood. Systematic examination of the P. placenta genome, transcriptome, and secretome revealed unique extracellular enzyme systems, including an unusual repertoire of extracellular glycoside hydrolases. Genes encoding exocellobiohydrolases and cellulose-binding domains, typical of cellulolytic microbes, are absent in this efficient cellulose-degrading fungus. When P. placenta was grown in medium containing cellulose as sole carbon source, transcripts corresponding to many hemicellulases and to a single putative β-1–4 endoglucanase were expressed at high levels relative to glucose-grown cultures. These transcript profiles were confirmed by direct identification of peptides by liquid chromatography-tandem mass spectrometry (LC-MS/MS). Also up-regulated during growth on cellulose medium were putative iron reductases, quinone reductase, and structurally divergent oxidases potentially involved in extracellular generation of Fe(II) and H2O2. These observations are consistent with a biodegradative role for Fenton chemistry in which Fe(II) and H2O2 react to form hydroxyl radicals, highly reactive oxidants capable of depolymerizing cellulose. The P. placenta genome resources provide unparalleled opportunities for investigating such unusual mechanisms of cellulose conversion. More broadly, the genome offers insight into the diversification of lignocellulose degrading mechanisms in fungi. Comparisons with the closely related white-rot fungus Phanerochaete chrysosporium support an evolutionary shift from white-rot to brown-rot during which the capacity for efficient depolymerization of lignin was lost.


Nature Biotechnology | 2007

Genome sequence of the lignocellulose-bioconverting and xylose-fermenting yeast Pichia stipitis.

Thomas W. Jeffries; Igor V. Grigoriev; Jane Grimwood; Jose M. Laplaza; Andrea Aerts; Asaf Salamov; Jeremy Schmutz; Erika Lindquist; Paramvir Dehal; Harris Shapiro; Yong Su Jin; Volkmar Passoth; Paul M. Richardson

Xylose is a major constituent of plant lignocellulose, and its fermentation is important for the bioconversion of plant biomass to fuels and chemicals. Pichia stipitis is a well-studied, native xylose-fermenting yeast. The mechanism and regulation of xylose metabolism in P. stipitis have been characterized and genes from P. stipitis have been used to engineer xylose metabolism in Saccharomyces cerevisiae. We have sequenced and assembled the complete genome of P. stipitis. The sequence data have revealed unusual aspects of genome organization, numerous genes for bioconversion, a preliminary insight into regulation of central metabolic pathways and several examples of colocalized genes with related functions. The genome sequence provides insight into how P. stipitis regulates its redox balance while very efficiently fermenting xylose under microaerobic conditions.


Science | 2010

Genomic Analysis of Organismal Complexity in the Multicellular Green Alga Volvox carteri

Simon Prochnik; James G. Umen; Aurora M. Nedelcu; Armin Hallmann; Stephen M. Miller; Ichiro Nishii; Patrick J. Ferris; Alan Kuo; Therese Mitros; Lillian K. Fritz-Laylin; Uffe Hellsten; Jarrod Chapman; Oleg Simakov; Stefan A. Rensing; Astrid Terry; Jasmyn Pangilinan; Vladimir V. Kapitonov; Jerzy Jurka; Asaf Salamov; Harris Shapiro; Jeremy Schmutz; Jane Grimwood; Erika Lindquist; Susan Lucas; Igor V. Grigoriev; Rüdiger Schmitt; David L. Kirk; Daniel S. Rokhsar

Going Multicellular The volvocine algae include both the unicellular Chlamydomonas and the multicellular Volvox, which diverged from one another 50 to 200 million years ago. Prochnik et al. (p. 223) compared the Volvox genome with that of Chlamydomonas to identify any genomic innovations that might have been associated with the transition to multicellularity. Size changes were observed in several protein families in Volvox, but, overall, the Volvox genome and predicted proteome were highly similar to those of Chlamydomonas. Thus, biological complexity can arise without major changes in genome content or protein domains. Comparison of the Chlamydomonas and Volvox genomes show few differences, despite their divergent life histories. The multicellular green alga Volvox carteri and its morphologically diverse close relatives (the volvocine algae) are well suited for the investigation of the evolution of multicellularity and development. We sequenced the 138–mega–base pair genome of V. carteri and compared its ~14,500 predicted proteins to those of its unicellular relative Chlamydomonas reinhardtii. Despite fundamental differences in organismal complexity and life history, the two species have similar protein-coding potentials and few species-specific protein-coding gene predictions. Volvox is enriched in volvocine-algal–specific proteins, including those associated with an expanded and highly compartmentalized extracellular matrix. Our analysis shows that increases in organismal complexity can be associated with modifications of lineage-specific proteins rather than large-scale invention of protein-coding capacity.


Proceedings of the National Academy of Sciences of the United States of America | 2011

Obligate biotrophy features unraveled by the genomic analysis of rust fungi

Sébastien Duplessis; Christina A. Cuomo; Yao-Cheng Lin; Andrea Aerts; Emilie Tisserant; Claire Veneault-Fourrey; David L. Joly; Stéphane Hacquard; Joelle Amselem; Brandi L. Cantarel; Readman Chiu; Pedro M. Coutinho; Nicolas Feau; Matthew A. Field; Pascal Frey; Eric Gelhaye; Jonathan M. Goldberg; Manfred Grabherr; Chinnappa D. Kodira; Annegret Kohler; Ursula Kües; Erika Lindquist; Susan Lucas; Rohit Mago; Evan Mauceli; Emmanuelle Morin; Claude Murat; Jasmyn Pangilinan; Robert F. Park; Matthew Pearson

Rust fungi are some of the most devastating pathogens of crop plants. They are obligate biotrophs, which extract nutrients only from living plant tissues and cannot grow apart from their hosts. Their lifestyle has slowed the dissection of molecular mechanisms underlying host invasion and avoidance or suppression of plant innate immunity. We sequenced the 101-Mb genome of Melampsora larici-populina, the causal agent of poplar leaf rust, and the 89-Mb genome of Puccinia graminis f. sp. tritici, the causal agent of wheat and barley stem rust. We then compared the 16,399 predicted proteins of M. larici-populina with the 17,773 predicted proteins of P. graminis f. sp tritici. Genomic features related to their obligate biotrophic lifestyle include expanded lineage-specific gene families, a large repertoire of effector-like small secreted proteins, impaired nitrogen and sulfur assimilation pathways, and expanded families of amino acid and oligopeptide membrane transporters. The dramatic up-regulation of transcripts coding for small secreted proteins, secreted hydrolytic enzymes, and transporters in planta suggests that they play a role in host infection and nutrient acquisition. Some of these genomic hallmarks are mirrored in the genomes of other microbial eukaryotes that have independently evolved to infect plants, indicating convergent adaptation to a biotrophic existence inside plant cells.

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Asaf Salamov

Baylor College of Medicine

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Erika Lindquist

United States Department of Energy

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Andrea Aerts

United States Department of Energy

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Alan Kuo

United States Department of Energy

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Jasmyn Pangilinan

United States Department of Energy

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Susan Lucas

Joint Genome Institute

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