Heinz Himmelbauer
University of Natural Resources and Life Sciences, Vienna
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Featured researches published by Heinz Himmelbauer.
Proceedings of the National Academy of Sciences of the United States of America | 2015
Solenn Patalano; Anna Vlasova; Chris Wyatt; Philip Ewels; Francisco Camara; Pedro Ferreira; Claire Asher; Tomasz P. Jurkowski; Anne Segonds-Pichon; Martin Bachman; Irene González-Navarrete; André E. Minoche; Felix Krueger; Ernesto Lowy; Marina Marcet-Houben; Jose Luis Rodriguez-Ales; Fabio S. Nascimento; Shankar Balasubramanian; Toni Gabaldón; James E. Tarver; Simon Andrews; Heinz Himmelbauer; William O. H. Hughes; Roderic Guigó; Wolf Reik; Seirian Sumner
Significance In eusocial insect societies, such as ants and some bees and wasps, phenotypes are highly plastic, generating alternative phenotypes (queens and workers) from the same genome. The greatest plasticity is found in simple insect societies, in which individuals can switch between phenotypes as adults. The genomic, transcriptional, and epigenetic underpinnings of such plasticity are largely unknown. In contrast to the complex societies of the honeybee, we find that simple insect societies lack distinct transcriptional differentiation between phenotypes and coherently patterned DNA methylomes. Instead, alternative phenotypes are largely defined by subtle transcriptional network organization. These traits may facilitate genomic plasticity. These insights and resources will stimulate new approaches and hypotheses that will help to unravel the genomic processes that create phenotypic plasticity. Phenotypic plasticity is important in adaptation and shapes the evolution of organisms. However, we understand little about what aspects of the genome are important in facilitating plasticity. Eusocial insect societies produce plastic phenotypes from the same genome, as reproductives (queens) and nonreproductives (workers). The greatest plasticity is found in the simple eusocial insect societies in which individuals retain the ability to switch between reproductive and nonreproductive phenotypes as adults. We lack comprehensive data on the molecular basis of plastic phenotypes. Here, we sequenced genomes, microRNAs (miRNAs), and multiple transcriptomes and methylomes from individual brains in a wasp (Polistes canadensis) and an ant (Dinoponera quadriceps) that live in simple eusocial societies. In both species, we found few differences between phenotypes at the transcriptional level, with little functional specialization, and no evidence that phenotype-specific gene expression is driven by DNA methylation or miRNAs. Instead, phenotypic differentiation was defined more subtly by nonrandom transcriptional network organization, with roles in these networks for both conserved and taxon-restricted genes. The general lack of highly methylated regions or methylome patterning in both species may be an important mechanism for achieving plasticity among phenotypes during adulthood. These findings define previously unidentified hypotheses on the genomic processes that facilitate plasticity and suggest that the molecular hallmarks of social behavior are likely to differ with the level of social complexity.
Genome Biology | 2016
Anna Vlasova; Salvador Capella-Gutiérrez; Martha Rendón-Anaya; Miguel Hernández-Oñate; André E. Minoche; Ionas Erb; Francisco Câmara; Pablo Prieto-Barja; André Corvelo; Walter Sanseverino; Gastón Westergaard; Juliane C. Dohm; Georgios J. Pappas; Soledad Saburido-Álvarez; Darek Kedra; Irene González; Luca Cozzuto; Jèssica Gómez-Garrido; María A. Aguilar-Morón; Nuria Andreu; O. Mario Aguilar; Jordi Garcia-Mas; Maik Zehnsdorf; Martin P. Vazquez; Alfonso Delgado-Salinas; Luis Delaye; Ernesto Lowy; Alejandro Mentaberry; Rosana Pereira Vianello-Brondani; José Luis García
BackgroundLegumes are the third largest family of angiosperms and the second most important crop class. Legume genomes have been shaped by extensive large-scale gene duplications, including an approximately 58 million year old whole genome duplication shared by most crop legumes.ResultsWe report the genome and the transcription atlas of coding and non-coding genes of a Mesoamerican genotype of common bean (Phaseolus vulgaris L., BAT93). Using a comprehensive phylogenomics analysis, we assessed the past and recent evolution of common bean, and traced the diversification of patterns of gene expression following duplication. We find that successive rounds of gene duplications in legumes have shaped tissue and developmental expression, leading to increased levels of specialization in larger gene families. We also find that many long non-coding RNAs are preferentially expressed in germ-line-related tissues (pods and seeds), suggesting that they play a significant role in fruit development. Our results also suggest that most bean-specific gene family expansions, including resistance gene clusters, predate the split of the Mesoamerican and Andean gene pools.ConclusionsThe genome and transcriptome data herein generated for a Mesoamerican genotype represent a counterpart to the genomic resources already available for the Andean gene pool. Altogether, this information will allow the genetic dissection of the characters involved in the domestication and adaptation of the crop, and their further implementation in breeding strategies for this important crop.
Proceedings of the National Academy of Sciences of the United States of America | 2001
Myriam Hemberger; James C. Cross; Hans-Hilger Ropers; Hans Lehrach; Reinald Fundele; Heinz Himmelbauer
The placenta is a highly specialized organ essential for embryonic growth and development. Here, we have applied cDNA subtraction between extraembryonic tissues of early- (day 7.5 of gestation) and late-stage embryos (day 17.5) to generate stage-specific cDNA pools that were used for screening of high-density mouse UniGene cDNA arrays containing 25,000 clones. A total of 638 clones were identified, 488 with the e7.5-specific probe and 150 with the e17.5-specific probe. Importantly, 363/638 (56.9%) of the hybridizing clones were not known to be expressed during placental development before. Differential regulation was confirmed by Northern blot and in situ hybridization for a total of 44/44 of positive clones. Thus, this combination of cDNA subtraction and array hybridization was highly successful for identification of genes expressed and regulated during placental development. These included growth factors and receptors, components of the transcriptional and translational machinery, cell cycle regulators, molecular chaperones, and cytoskeletal elements. The extensive in situ hybridization analysis revealed extraembryonic structures with a high density of differentially expressed genes, most strikingly the ectoplacental cone and the spongiotrophoblast. This large-scale identification of genes regulated during placentogenesis is extremely useful to further elucidate the molecular basis of extraembryonic development.
Genome Biology | 2015
André E. Minoche; Juliane C. Dohm; Jessica Schneider; Daniela Holtgräwe; Prisca Viehöver; Magda Montfort; Thomas Rosleff Sörensen; Bernd Weisshaar; Heinz Himmelbauer
We develop a method to predict and validate gene models using PacBio single-molecule, real-time (SMRT) cDNA reads. Ninety-eight percent of full-insert SMRT reads span complete open reading frames. Gene model validation using SMRT reads is developed as automated process. Optimized training and prediction settings and mRNA-seq noise reduction of assisting Illumina reads results in increased gene prediction sensitivity and precision. Additionally, we present an improved gene set for sugar beet (Beta vulgaris) and the first genome-wide gene set for spinach (Spinacia oleracea). The workflow and guidelines are a valuable resource to obtain comprehensive gene sets for newly sequenced genomes of non-model eukaryotes.
Nature Communications | 2014
Irene Aksoy; Vincent Giudice; Edwige Delahaye; Florence Wianny; Maxime Aubry; Magali Mure; Jiaxuan Chen; Ralf Jauch; Gireesh K. Bogu; Tobias Nolden; Heinz Himmelbauer; Michael Xavier Doss; Agapios Sachinidis; Herbert Schulz; Oliver Hummel; Paola Martinelli; Norbert Hubner; Lawrence W. Stanton; Francisco X. Real; Pierre-Yves Bourillot; Pierre Savatier
Krüppel-like factors (Klf) 4 and 5 are two closely related members of the Klf family, known to play key roles in cell cycle regulation, somatic cell reprogramming and pluripotency. Here we focus on the functional divergence between Klf4 and Klf5 in the inhibition of mouse embryonic stem (ES) cell differentiation. Using microarrays and chromatin immunoprecipitation coupled to ultra-high-throughput DNA sequencing, we show that Klf4 negatively regulates the expression of endodermal markers in the undifferentiated ES cells, including transcription factors involved in the commitment of pluripotent stem cells to endoderm differentiation. Knockdown of Klf4 enhances differentiation towards visceral and definitive endoderm. In contrast, Klf5 negatively regulates the expression of mesodermal markers, some of which control commitment to the mesoderm lineage, and knockdown of Klf5 specifically enhances differentiation towards mesoderm. We conclude that Klf4 and Klf5 differentially inhibit mesoderm and endoderm differentiation in murine ES cells.
Chemical Research in Toxicology | 2014
Carolin Bendadani; Walter Meinl; Bernhard H. Monien; Gisela Dobbernack; Simone Florian; Wolfram Engst; Tobias Nolden; Heinz Himmelbauer; Hansruedi Glatt
1-Methylpyrene, a carcinogenic polycyclic aromatic hydrocarbon, forms benzylic DNA adducts, in particular N2-(1-methylpyrenyl)-2-deoxyguanosine, in mice and rats. It is bioactivated via 1-hydroxymethylpyrene (1-HMP) to electrophilic 1-sulfooxymethylpyrene (1-SMP). In this study, we explored the role of individual mouse sulfotransferase (SULT) forms in this activation. First, we showed that all nine mouse SULTs tested were able to activate 1-HMP to a mutagen in the his- Salmonella typhimurium reversion test. Some activation was even observed with Sult2a3 and Sult5a1, orphan forms for which no substrates were identified hitherto. Subsequently, we used cytosolic preparations from tissues of four mouse lines (wild-type, Sult1a1-, Sult1d1-, and transgenic for human SULT1A1/2) for the activation of 1-HMP in the mutagenicity assay. The most prominent impacts of the genetic SULT status were 96% decrease in hepatic activation by Sult1a1 knockout, 99% decrease in renal activation by Sult1d1 knockout, and 100-fold increase in pulmonary activation by transgenic human SULT1A1/2. Finally, we treated the various mouse lines with 1-HMP (19.3 mg/kg, intraperitoneally), and then determined 1-SMP levels in plasma and DNA adducts in tissues. Transgenic human SULT1A1/2 strongly enhanced 1-SMP plasma levels and DNA adduct formation in the liver, lung, heart, and kidney but not in the colon. Sult1a1 and Sult1d1 knockout reduced plasma 1-SMP levels as well as DNA adduct formation in some tissues (strongest effects: 97% decrease in 1-SMP and 89% decrease in hepatic adducts in Sult1a1- mice). The adduct levels detected in various tissues did not accurately reflect the activation capacity of these tissues determined in vitro, probably due to the distribution of the reactive metabolite 1-SMP via the circulation. In conclusion, we demonstrated that many mouse SULT forms are able to activate 1-HMP. In vivo, we verified a prominent role of Sult1a1 in hepatic and renal adduct formation and a smaller but unambiguous role of Sult1d1, and demonstrated the strong impact of transgenic human SULT1A1/2.
Plant Journal | 2016
Katrin Schwichtenberg; Torsten Wenke; Falk Zakrzewski; Kathrin M. Seibt; André E. Minoche; Juliane C. Dohm; Bernd Weisshaar; Heinz Himmelbauer; T. Schmidt
Short interspersed nuclear elements (SINEs) are non-autonomous non-long terminal repeat retrotransposons which are widely distributed in eukaryotic organisms. While SINEs have been intensively studied in animals, only limited information is available about plant SINEs. We analysed 22 SINE families from seven genomes of the Amaranthaceae family and identified 34xa0806 SINEs, including 19xa0549 full-length copies. With the focus on sugar beet (Beta vulgaris), we performed a comparative analysis of the diversity, genomic and chromosomal organization and the methylation of SINEs to provide a detailed insight into the evolution and age of Amaranthaceae SINEs. The lengths of consensus sequences of SINEs range from 113xa0nucleotides (nt) up to 224xa0nt. The SINEs show dispersed distribution on all chromosomes but were found with higher incidence in subterminal euchromatic chromosome regions. The methylation of SINEs is increased compared with their flanking regions, and the strongest effect is visible for cytosines in the CHH context, indicating an involvement of asymmetric methylation in the silencing of SINEs.
Nature Ecology and Evolution | 2017
Pablo Prieto Barja; Pascale Pescher; Giovanni Bussotti; Franck Dumetz; Hideo Imamura; Darek Kedra; Malgorzata Domagalska; Victor Chaumeau; Heinz Himmelbauer; Michel Pagès; Yvon Sterkers; Jean-Claude Dujardin; Cedric Notredame; Gerald F. Späth
The parasite Leishmaniaxa0 donovani causes a fatal disease termed visceral leishmaniasis. The process through which the parasite adapts to environmental change remains largely unknown. Here we show that aneuploidy is integral for parasite adaptation and that karyotypic fluctuations allow for selection of beneficial haplotypes, which impact transcriptomic output and correlate with phenotypic variations in proliferation and infectivity. To avoid loss of diversity following karyotype and haplotype selection, L. donovani utilizes two mechanisms: polyclonal selection of beneficial haplotypes to create coexisting subpopulations that preserve the original diversity, and generation of new diversity as aneuploidy-prone chromosomes tolerate higher mutation rates. Our results reveal high aneuploidy turnover and haplotype selection as a unique evolutionary adaptation mechanism that L. donovani uses to preserve genetic diversity under strong selection. This unexplored process may function in other human diseases, including fungal infection and cancer, and stimulate innovative treatment options.Leishmania donovani is an important human pathogen. Here, the authors show that aneuploidy turnover and haplotype selection are two mechanisms by which L. donovani adapts to environmental fluctuations inside the mammalian host.
Nature Communications | 2017
Gina G. Capistrano-Gossmann; David Ries; Daniela Holtgräwe; André E. Minoche; Thomas Kraft; S.L.M. Frerichmann; T. Rosleff Soerensen; Juliane C. Dohm; Irene González; M. Schilhabel; M. Varrelmann; H. Tschoep; H. Uphoff; K. Schütze; Dietrich C. Borchardt; O. Toerjek; W. Mechelke; J. C. Lein; Axel Schechert; L. Frese; Heinz Himmelbauer; Bernd Weisshaar; F. J. Kopisch-Obuch
Rapid identification of agronomically important genes is of pivotal interest for crop breeding. One source of such genes are crop wild relative (CWR) populations. Here we used a CWR population of <200 wild beets (B. vulgaris ssp. maritima), sampled in their natural habitat, to identify the sugar beet (Beta vulgaris ssp. vulgaris) resistance gene Rz2 with a modified version of mapping-by-sequencing (MBS). For that, we generated a draft genome sequence of the wild beet. Our results show the importance of preserving CWR in situ and demonstrate the great potential of CWR for rapid discovery of causal genes relevant for crop improvement. The candidate gene for Rz2 was identified by MBS and subsequently corroborated via RNA interference (RNAi). Rz2 encodes a CC-NB-LRR protein. Access to the DNA sequence of Rz2 opens the path to improvement of resistance towards rhizomania not only by marker-assisted breeding but also by genome editing.
Scientific Reports | 2015
Iñigo Olalde; Federico Sánchez-Quinto; Debayan Datta; Urko M. Marigorta; Charleston W. K. Chiang; Juan Antonio Rodríguez; Marcos Fernandez-Callejo; Irene González; Magda Montfort; Laura Matas-Lalueza; Sergi Civit; Donata Luiselli; Philippe Charlier; Davide Pettener; Oscar Ramirez; Arcadi Navarro; Heinz Himmelbauer; Tomas Marques-Bonet; Carles Lalueza-Fox
A pyrographically decorated gourd, dated to the French Revolution period, has been alleged to contain a handkerchief dipped into the blood of the French king Louis XVI (1754–1793) after his beheading but recent analyses of living males from two Bourbon branches cast doubts on its authenticity. We sequenced the complete genome of the DNA contained in the gourd at low coverage (~2.5×) with coding sequences enriched at a higher ~7.3× coverage. We found that the ancestry of the gourds genome does not seem compatible with Louis XVIs known ancestry. From a functional perspective, we did not find an excess of alleles contributing to height despite being described as the tallest person in Court. In addition, the eye colour prediction supported brown eyes, while Louis XVI had blue eyes. This is the first draft genome generated from a person who lived in a recent historical period; however, our results suggest that this sample may not correspond to the alleged king.