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Dive into the research topics where Douglas R. Hoen is active.

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Featured researches published by Douglas R. Hoen.


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

Genomewide SNP variation reveals relationships among landraces and modern varieties of rice.

Kenneth L. McNally; Kevin L. Childs; Regina Bohnert; Rebecca M. Davidson; Keyan Zhao; Victor Jun Ulat; Georg Zeller; Richard M. Clark; Douglas R. Hoen; Thomas E. Bureau; Renee Stokowski; Dennis G. Ballinger; Kelly A. Frazer; D. R. Cox; Badri Padhukasahasram; Carlos Bustamante; Detlef Weigel; David J. Mackill; Richard Bruskiewich; Gunnar Rätsch; C. Robin Buell; Hei Leung; Jan E. Leach

Rice, the primary source of dietary calories for half of humanity, is the first crop plant for which a high-quality reference genome sequence from a single variety was produced. We used resequencing microarrays to interrogate 100 Mb of the unique fraction of the reference genome for 20 diverse varieties and landraces that capture the impressive genotypic and phenotypic diversity of domesticated rice. Here, we report the distribution of 160,000 nonredundant SNPs. Introgression patterns of shared SNPs revealed the breeding history and relationships among the 20 varieties; some introgressed regions are associated with agronomic traits that mark major milestones in rice improvement. These comprehensive SNP data provide a foundation for deep exploration of rice diversity and gene–trait relationships and their use for future rice improvement.


Nature Genetics | 2013

An atlas of over 90,000 conserved noncoding sequences provides insight into crucifer regulatory regions

Annabelle Haudry; Adrian E. Platts; Emilio Vello; Douglas R. Hoen; Mickael Leclercq; Robert J. Williamson; Ewa Forczek; Zoé Joly-Lopez; Joshua G. Steffen; Khaled M. Hazzouri; Ken Dewar; John R. Stinchcombe; Daniel J. Schoen; Xiaowu Wang; Jeremy Schmutz; Christopher D. Town; Patrick P. Edger; J. Chris Pires; Karen S. Schumaker; David E. Jarvis; Terezie Mandáková; Martin A. Lysak; Erik van den Bergh; M. Eric Schranz; Paul M. Harrison; Alan M. Moses; Thomas E. Bureau; Stephen I. Wright; Mathieu Blanchette

Despite the central importance of noncoding DNA to gene regulation and evolution, understanding of the extent of selection on plant noncoding DNA remains limited compared to that of other organisms. Here we report sequencing of genomes from three Brassicaceae species (Leavenworthia alabamica, Sisymbrium irio and Aethionema arabicum) and their joint analysis with six previously sequenced crucifer genomes. Conservation across orthologous bases suggests that at least 17% of the Arabidopsis thaliana genome is under selection, with nearly one-quarter of the sequence under selection lying outside of coding regions. Much of this sequence can be localized to approximately 90,000 conserved noncoding sequences (CNSs) that show evidence of transcriptional and post-transcriptional regulation. Population genomics analyses of two crucifer species, A. thaliana and Capsella grandiflora, confirm that most of the identified CNSs are evolving under medium to strong purifying selection. Overall, these CNSs highlight both similarities and several key differences between the regulatory DNA of plants and other species.


Mobile Dna | 2015

A call for benchmarking transposable element annotation methods.

Douglas R. Hoen; Glenn Hickey; Guillaume Bourque; Josep Casacuberta; Richard Cordaux; Cédric Feschotte; Anna Sophie Fiston-Lavier; Aurélie Hua-Van; Robert Hubley; Aurélie Kapusta; Emmanuelle Lerat; Florian Maumus; David D. Pollock; Hadi Quesneville; Arian Smit; Travis J. Wheeler; Thomas E. Bureau; Mathieu Blanchette

DNA derived from transposable elements (TEs) constitutes large parts of the genomes of complex eukaryotes, with major impacts not only on genomic research but also on how organisms evolve and function. Although a variety of methods and tools have been developed to detect and annotate TEs, there are as yet no standard benchmarks—that is, no standard way to measure or compare their accuracy. This lack of accuracy assessment calls into question conclusions from a wide range of research that depends explicitly or implicitly on TE annotation. In the absence of standard benchmarks, toolmakers are impeded in improving their tools, annotators cannot properly assess which tools might best suit their needs, and downstream researchers cannot judge how accuracy limitations might impact their studies. We therefore propose that the TE research community create and adopt standard TE annotation benchmarks, and we call for other researchers to join the authors in making this long-overdue effort a success.


PLOS Genetics | 2012

A gene family derived from transposable elements during early angiosperm evolution has reproductive fitness benefits in Arabidopsis thaliana.

Zoé Joly-Lopez; Ewa Forczek; Douglas R. Hoen; Nikoleta Juretic; Thomas E. Bureau

The benefits of ever-growing numbers of sequenced eukaryotic genomes will not be fully realized until we learn to decipher vast stretches of noncoding DNA, largely composed of transposable elements. Transposable elements persist through self-replication, but some genes once encoded by transposable elements have, through a process called molecular domestication, evolved new functions that increase fitness. Although they have conferred numerous adaptations, the number of such domesticated transposable element genes remains unknown, so their evolutionary and functional impact cannot be fully assessed. Systematic searches that exploit genomic signatures of natural selection have been employed to identify potential domesticated genes, but their predictions have yet to be experimentally verified. To this end, we investigated a family of domesticated genes called MUSTANG (MUG), identified in a previous bioinformatic search of plant genomes. We show that MUG genes are functional. Mutants of Arabidopsis thaliana MUG genes yield phenotypes with severely reduced plant fitness through decreased plant size, delayed flowering, abnormal development of floral organs, and markedly reduced fertility. MUG genes are present in all flowering plants, but not in any non-flowering plant lineages, such as gymnosperms, suggesting that the molecular domestication of MUG may have been an integral part of early angiosperm evolution. This study shows that systematic searches can be successful at identifying functional genetic elements in noncoding regions and demonstrates how to combine systematic searches with reverse genetics in a fruitful way to decipher eukaryotic genomes.


Molecular Biology and Evolution | 2015

Discovery of Novel Genes Derived from Transposable Elements Using Integrative Genomic Analysis

Douglas R. Hoen; Thomas E. Bureau

Complex eukaryotes contain millions of transposable elements (TEs), comprising large fractions of their nuclear genomes. TEs consist of structural, regulatory, and coding sequences that are ordinarily associated with transposition, but that occasionally confer on the organism a selective advantage and may thereby become exapted. Exapted transposable element genes (ETEs) are known to play critical roles in diverse systems, from vertebrate adaptive immunity to plant development. Yet despite their evident importance, most ETEs have been identified fortuitously and few systematic searches have been conducted, suggesting that additional ETEs may await discovery. To explore this possibility, we develop a comprehensive systematic approach to searching for ETEs. We use TE-specific conserved domains to identify with high precision genes derived from TEs and screen them for signatures of exaptation based on their similarities to reference sets of known ETEs, conventional (non-TE) genes, and TE genes across diverse genetic attributes including repetitiveness, conservation of genomic location and sequence, and levels of expression and repressive small RNAs. Applying this approach in the model plant Arabidopsis thaliana, we discover a surprisingly large number of novel high confidence ETEs. Intriguingly, unlike known plant ETEs, several of the novel ETE families form tandemly arrayed gene clusters, whereas others are relatively young. Our results not only identify novel TE-derived genes that may have practical applications but also challenge the notion that TE exaptation is merely a relic of ancient life, instead suggesting that it may continue to fundamentally drive evolution.


Archive | 2012

Transposable Element Exaptation in Plants

Douglas R. Hoen; Thomas E. Bureau

While evolution is often understood exclusively in terms of adaptation, innovation often begins when a feature adapted for one function is co-opted for a different purpose, such as when feathers originally adapted for insulation became used for flight. Co-opted features are called exaptations. Transposable elements are often viewed as molecular parasites, yet they are frequently the source of evolutionary innovation. One way in which transposable elements contribute to evolution is that their sequences can be co-opted to perform phenotypically beneficial functions. Transposable element gene exaptations have contributed to major innovations such as the vertebrate adaptive immune system and the mammalian placenta. They also often become transcription factors, and transposable element-derived transcription factor binding sites can form new regulatory networks. In this chapter, we review transposable element coding sequence exaptations in plants.


Molecular Biology and Evolution | 2016

Phylogenetic and Genomic Analyses Resolve the Origin of Important Plant Genes Derived from Transposable Elements

Zoé Joly-Lopez; Douglas R. Hoen; Mathieu Blanchette; Thomas E. Bureau

Once perceived as merely selfish, transposable elements (TEs) are now recognized as potent agents of adaptation. One way TEs contribute to evolution is through TE exaptation, a process whereby TEs, which persist by replicating in the genome, transform into novel host genes, which persist by conferring phenotypic benefits. Known exapted TEs (ETEs) contribute diverse and vital functions, and may facilitate punctuated equilibrium, yet little is known about this process. To better understand TE exaptation, we designed an approach to resolve the phylogenetic context and timing of exaptation events and subsequent patterns of ETE diversification. Starting with known ETEs, we search in diverse genomes for basal ETEs and closely related TEs, carefully curate the numerous candidate sequences, and infer detailed phylogenies. To distinguish TEs from ETEs, we also weigh several key genomic characteristics including repetitiveness, terminal repeats, pseudogenic features, and conserved domains. Applying this approach to the well-characterized plant ETEs MUG and FHY3, we show that each group is paraphyletic and we argue that this pattern demonstrates that each originated in not one but multiple exaptation events. These exaptations and subsequent ETE diversification occurred throughout angiosperm evolution including the crown group expansion, the angiosperm radiation, and the primitive evolution of angiosperms. In addition, we detect evidence of several putative novel ETE families. Our findings support the hypothesis that TE exaptation generates novel genes more frequently than is currently thought, often coinciding with key periods of evolution.


Frontiers in Plant Science | 2017

Abiotic Stress Phenotypes Are Associated with Conserved Genes Derived from Transposable Elements

Zoé Joly-Lopez; Ewa Forczek; Emilio Vello; Douglas R. Hoen; Akiko Tomita; Thomas E. Bureau

Plant phenomics offers unique opportunities to accelerate our understanding of gene function and plant response to different environments, and may be particularly useful for studying previously uncharacterized genes. One important type of poorly characterized genes is those derived from transposable elements (TEs), which have departed from a mobility-driven lifestyle to attain new adaptive roles for the host (exapted TEs). We used phenomics approaches, coupled with reverse genetics, to analyze T-DNA insertion mutants of both previously reported and novel protein-coding exapted TEs in the model plant Arabidopsis thaliana. We show that mutations in most of these exapted TEs result in phenotypes, particularly when challenged by abiotic stress. We built statistical multi-dimensional phenotypic profiles and compared them to wild-type and known stress responsive mutant lines for each particular stress condition. We found that these exapted TEs may play roles in responses to phosphate limitation, tolerance to high salt concentration, freezing temperatures, and arsenic toxicity. These results not only experimentally validate a large set of putative functional exapted TEs recently discovered through computational analysis, but also uncover additional novel phenotypes for previously well-characterized exapted TEs in A. thaliana.


Genome Research | 2007

Curated genome annotation of Oryza sativa ssp. japonica and comparative genome analysis with Arabidopsis thaliana

Takeshi Itoh; Tsuyoshi Tanaka; Roberto A. Barrero; Chisato Yamasaki; Yasuyuki Fujii; Phillip Hilton; Baltazar A. Antonio; Hideo Aono; Rolf Apweiler; Richard Bruskiewich; Thomas E. Bureau; Frances A. Burr; Antonio Costa de Oliveira; Galina Fuks; Takuya Habara; Georg Haberer; Bin Han; Erimi Harada; Aiko T. Hiraki; Hirohiko Hirochika; Douglas R. Hoen; Hiroki Hokari; Satomi Hosokawa; Yue Hsing; Hiroshi Ikawa; Kazuho Ikeo; Tadashi Imanishi; Yukiyo Ito; Pankaj Jaiswal; Masako Kanno


Genome Research | 2005

The evolutionary fate of MULE-mediated duplications of host gene fragments in rice

Nikoleta Juretic; Douglas R. Hoen; Michael L. Huynh; Paul M. Harrison; Thomas E. Bureau

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Richard Bruskiewich

International Rice Research Institute

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