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

Draft genome of the red harvester ant Pogonomyrmex barbatus

Chris R. Smith; Christopher D. Smith; Hugh M. Robertson; Martin Helmkampf; Aleksey V. Zimin; Mark Yandell; Carson Holt; Hao Hu; Ehab Abouheif; Richard Benton; Elizabeth Cash; Vincent Croset; Cameron R. Currie; Eran Elhaik; Christine G. Elsik; Marie Julie Favé; Vilaiwan Fernandes; Joshua D. Gibson; Dan Graur; Wulfila Gronenberg; Kirk J. Grubbs; Darren E. Hagen; Ana Sofia Ibarraran Viniegra; Brian R. Johnson; Reed M. Johnson; Abderrahman Khila; Jay W. Kim; Kaitlyn A. Mathis; Monica Munoz-Torres; Marguerite C. Murphy

We report the draft genome sequence of the red harvester ant, Pogonomyrmex barbatus. The genome was sequenced using 454 pyrosequencing, and the current assembly and annotation were completed in less than 1 y. Analyses of conserved gene groups (more than 1,200 manually annotated genes to date) suggest a high-quality assembly and annotation comparable to recently sequenced insect genomes using Sanger sequencing. The red harvester ant is a model for studying reproductive division of labor, phenotypic plasticity, and sociogenomics. Although the genome of P. barbatus is similar to other sequenced hymenopterans (Apis mellifera and Nasonia vitripennis) in GC content and compositional organization, and possesses a complete CpG methylation toolkit, its predicted genomic CpG content differs markedly from the other hymenopterans. Gene networks involved in generating key differences between the queen and worker castes (e.g., wings and ovaries) show signatures of increased methylation and suggest that ants and bees may have independently co-opted the same gene regulatory mechanisms for reproductive division of labor. Gene family expansions (e.g., 344 functional odorant receptors) and pseudogene accumulation in chemoreception and P450 genes compared with A. mellifera and N. vitripennis are consistent with major life-history changes during the adaptive radiation of Pogonomyrmex spp., perhaps in parallel with the development of the North American deserts.


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

Draft genome of the globally widespread and invasive Argentine ant (Linepithema humile)

Christopher D. Smith; Aleksey V. Zimin; Carson Holt; Ehab Abouheif; Richard Benton; Elizabeth Cash; Vincent Croset; Cameron R. Currie; Eran Elhaik; Christine G. Elsik; Marie Julie Favé; Vilaiwan Fernandes; Jürgen Gadau; Joshua D. Gibson; Dan Graur; Kirk J. Grubbs; Darren E. Hagen; Martin Helmkampf; Jo Anne Holley; Hao Hu; Ana Sofia Ibarraran Viniegra; Brian R. Johnson; Reed M. Johnson; Abderrahman Khila; Jay W. Kim; Joseph G. Laird; Kaitlyn A. Mathis; Joseph A. Moeller; Monica Munoz-Torres; Marguerite C. Murphy

Ants are some of the most abundant and familiar animals on Earth, and they play vital roles in most terrestrial ecosystems. Although all ants are eusocial, and display a variety of complex and fascinating behaviors, few genomic resources exist for them. Here, we report the draft genome sequence of a particularly widespread and well-studied species, the invasive Argentine ant (Linepithema humile), which was accomplished using a combination of 454 (Roche) and Illumina sequencing and community-based funding rather than federal grant support. Manual annotation of >1,000 genes from a variety of different gene families and functional classes reveals unique features of the Argentine ants biology, as well as similarities to Apis mellifera and Nasonia vitripennis. Distinctive features of the Argentine ant genome include remarkable expansions of gustatory (116 genes) and odorant receptors (367 genes), an abundance of cytochrome P450 genes (>110), lineage-specific expansions of yellow/major royal jelly proteins and desaturases, and complete CpG DNA methylation and RNAi toolkits. The Argentine ant genome contains fewer immune genes than Drosophila and Tribolium, which may reflect the prominent role played by behavioral and chemical suppression of pathogens. Analysis of the ratio of observed to expected CpG nucleotides for genes in the reproductive development and apoptosis pathways suggests higher levels of methylation than in the genome overall. The resources provided by this genome sequence will offer an abundance of tools for researchers seeking to illuminate the fascinating biology of this emerging model organism.


PLOS Genetics | 2011

The Genome Sequence of the Leaf-Cutter Ant Atta cephalotes Reveals Insights into Its Obligate Symbiotic Lifestyle

Garret Suen; Clotilde Teiling; Lewyn Li; Carson Holt; Ehab Abouheif; Erich Bornberg-Bauer; Pascal Bouffard; Eric J. Caldera; Elizabeth Cash; Amy Cavanaugh; Olgert Denas; Eran Elhaik; Marie-Julie Favé; Jürgen Gadau; Joshua D. Gibson; Dan Graur; Kirk J. Grubbs; Darren E. Hagen; Timothy T. Harkins; Martin Helmkampf; Hao Hu; Brian R. Johnson; Jay Joong Kim; Sarah E. Marsh; Joseph A. Moeller; Monica Munoz-Torres; Marguerite C. Murphy; Meredith C. Naughton; Surabhi Nigam; Rick P. Overson

Leaf-cutter ants are one of the most important herbivorous insects in the Neotropics, harvesting vast quantities of fresh leaf material. The ants use leaves to cultivate a fungus that serves as the colonys primary food source. This obligate ant-fungus mutualism is one of the few occurrences of farming by non-humans and likely facilitated the formation of their massive colonies. Mature leaf-cutter ant colonies contain millions of workers ranging in size from small garden tenders to large soldiers, resulting in one of the most complex polymorphic caste systems within ants. To begin uncovering the genomic underpinnings of this system, we sequenced the genome of Atta cephalotes using 454 pyrosequencing. One prediction from this ants lifestyle is that it has undergone genetic modifications that reflect its obligate dependence on the fungus for nutrients. Analysis of this genome sequence is consistent with this hypothesis, as we find evidence for reductions in genes related to nutrient acquisition. These include extensive reductions in serine proteases (which are likely unnecessary because proteolysis is not a primary mechanism used to process nutrients obtained from the fungus), a loss of genes involved in arginine biosynthesis (suggesting that this amino acid is obtained from the fungus), and the absence of a hexamerin (which sequesters amino acids during larval development in other insects). Following recent reports of genome sequences from other insects that engage in symbioses with beneficial microbes, the A. cephalotes genome provides new insights into the symbiotic lifestyle of this ant and advances our understanding of host–microbe symbioses.


Trends in Genetics | 2012

The genomic impact of 100 million years of social evolution in seven ant species

Jürgen Gadau; Martin Helmkampf; Sanne Nygaard; Julien Roux; Daniel F. Simola; Chris R. Smith; Garret Suen; Yannick Wurm; Christopher D. Smith

Ants (Hymenoptera, Formicidae) represent one of the most successful eusocial taxa in terms of both their geographic distribution and species number. The publication of seven ant genomes within the past year was a quantum leap for socio- and ant genomics. The diversity of social organization in ants makes them excellent model organisms to study the evolution of social systems. Comparing the ant genomes with those of the honeybee, a lineage that evolved eusociality independently from ants, and solitary insects suggests that there are significant differences in key aspects of genome organization between social and solitary insects, as well as among ant species. Altogether, these seven ant genomes open exciting new research avenues and opportunities for understanding the genetic basis and regulation of social species, and adaptive complex systems in general.


Proceedings of the Royal Society of London B: Biological Sciences | 2008

Phylogenomic analyses of lophophorates (brachiopods, phoronids and bryozoans) confirm the Lophotrochozoa concept

Martin Helmkampf; Iris Bruchhaus; Bernhard Hausdorf

Based on embryological and morphological evidence, Lophophorata was long considered to be the sister or paraphyletic stem group of Deuterostomia. By contrast, molecular data have consistently indicated that the three lophophorate lineages, Ectoprocta, Brachiopoda and Phoronida, are more closely related to trochozoans (annelids, molluscs and related groups) than to deuterostomes. For this reason, the lophophorate groups and Trochozoa were united to Lophotrochozoa. However, the relationships of the lophophorate lineages within Lophotrochozoa are still largely unresolved. Maximum-likelihood and Bayesian analyses were performed based on a dataset comprising 11 445 amino acid positions derived from 79 ribosomal proteins of 39 metazoan taxa including new sequences obtained from a brachiopod and a phoronid. These analyses show that the three lophophorate lineages are affiliated with trochozoan rather than deuterostome phyla. All hypotheses claiming that they are more closely related to Deuterostomia than to Protostomia can be rejected by topology testing. Monophyly of lophophorates was not recovered but that of Bryozoa including Ectoprocta and Entoprocta and monophyly of Brachiozoa including Brachiopoda and Phoronida were strongly supported. Alternative hypotheses that are refuted include (i) Brachiozoa as the sister group of Mollusca, (ii) ectoprocts as sister to all other Lophotrochozoa including Platyzoa, and (iii) ectoprocts as sister or to all other protostomes except chaetognaths.


Genome Biology and Evolution | 2013

Mechanisms and Dynamics of Orphan Gene Emergence in Insect Genomes

Lothar Wissler; Jürgen Gadau; Daniel F. Simola; Martin Helmkampf; Erich Bornberg-Bauer

Orphan genes are defined as genes that lack detectable similarity to genes in other species and therefore no clear signals of common descent (i.e., homology) can be inferred. Orphans are an enigmatic portion of the genome because their origin and function are mostly unknown and they typically make up 10% to 30% of all genes in a genome. Several case studies demonstrated that orphans can contribute to lineage-specific adaptation. Here, we study orphan genes by comparing 30 arthropod genomes, focusing in particular on seven recently sequenced ant genomes. This setup allows analyzing a major metazoan taxon and a comparison between social Hymenoptera (ants and bees) and nonsocial Diptera (flies and mosquitoes). First, we find that recently split lineages undergo accelerated genomic reorganization, including the rapid gain of many orphan genes. Second, between the two insect orders Hymenoptera and Diptera, orphan genes are more abundant and emerge more rapidly in Hymenoptera, in particular, in leaf-cutter ants. With respect to intragenomic localization, we find that ant orphan genes show little clustering, which suggests that orphan genes in ants are scattered uniformly over the genome and between nonorphan genes. Finally, our results indicate that the genetic mechanisms creating orphan genes—such as gene duplication, frame-shift fixation, creation of overlapping genes, horizontal gene transfer, and exaptation of transposable elements—act at different rates in insects, primates, and plants. In Formicidae, the majority of orphan genes has their origin in intergenic regions, pointing to a high rate of de novo gene formation or generalized gene loss, and support a recently proposed dynamic model of frequent gene birth and death.


Molecular Phylogenetics and Evolution | 2010

Phylogenetic relationships within the lophophorate lineages (Ectoprocta, Brachiopoda and Phoronida)

Bernhard Hausdorf; Martin Helmkampf; Maximilian P. Nesnidal; Iris Bruchhaus

We produced two new EST datasets of so far uncovered clades of ectoprocts to investigate the phylogenetic relationships within the lophophorate lineages, Ectoprocta, Brachiopoda and Phoronida. Maximum-likelihood analyses based on 78 ribosomal proteins of 62 metazoan taxa support the monophyly of Ectoprocta and a sister group relationship of Phylactolaemata living in freshwater and the mainly marine Gymnolaemata. Hypotheses suggesting that Ectoprocta is diphyletic with phylactolaemates forming a clade with phoronids or paraphyletic with respect to Entoprocta could be rejected by topology tests. The hypotheses that Stenolaemata are the sister group of all other ectoprocts, that Stenolaemata constitutes a monophyletic group with Cheilostomata, and that Phylactolaemata have been derived from Ctenostomata could also be excluded. However, the hypothesis that Phylactolaemata and Stenolaemata form a monophyletic group could not be rejected. Brachiopoda and Phoronida constitute a monophylum, Brachiozoa. The hypotheses that phoronids are the sister group of articulate or inarticulate brachiopods could be rejected by topology tests, thus confirming the monophyly of Brachiopoda.


Molecular Biology and Evolution | 2010

Compositional Heterogeneity and Phylogenomic Inference of Metazoan Relationships

Maximilian P. Nesnidal; Martin Helmkampf; Iris Bruchhaus; Bernhard Hausdorf

Compositional heterogeneity of sequences between taxa may cause systematic error in phylogenetic inference. The potential influence of such bias might be mitigated by strategies to reduce compositional heterogeneity in the data set or by phylogeny reconstruction methods that account for compositional heterogeneity. We adopted several of these strategies to analyze a large ribosomal protein data set representing all major metazoan taxa. Posterior predictive tests revealed that there is compositional bias in this data set. Only a few taxa with strongly deviating amino acid composition had to be excluded to reduce this bias. Thus, this is a good solution, if these taxa are not central to the phylogenetic question at hand. Deleting individual proteins from the data matrix may be an appropriate method, if compositional heterogeneity among taxa is concentrated in a few proteins. However, half of the ribosomal proteins had to be excluded to reduce the compositional heterogeneity to a degree that the CAT model was no longer significantly violated. Recoding of amino acids into groups is another alternative but causes a loss of information and may result in badly resolved trees as demonstrated by the present data set. Bayesian inference with the CAT-BP model directly accounts for compositional heterogeneity between lineages by introducing breakpoints along the branches of the phylogeny at which the amino acid composition is allowed to change but is computationally expensive. Finally, a neighbor joining tree based on equal input distances that consider pattern and rate heterogeneity showed several unusual groupings, which are most likely artifacts, probably caused by the loss of information resulting from the transformation of the sequence data into distances. As long as no more efficient phylogenetic inference methods are available that can directly account for compositional heterogeneity in large data sets, using methods for reducing compositional heterogeneity in the data in combination with methods that assume a stationary amino acid composition remains an option for controlling systematic errors in tree reconstruction that result from compositional bias. Our analyses indicated that the paraphyly of Deuterostomia in some analyses is the result of systematic errors that also affected the relationships of Entoprocta and Ectoprocta.


BMC Evolutionary Biology | 2013

New phylogenomic data support the monophyly of Lophophorata and an Ectoproct-Phoronid clade and indicate that Polyzoa and Kryptrochozoa are caused by systematic bias.

Maximilian P. Nesnidal; Martin Helmkampf; Achim Meyer; Alexander Witek; Iris Bruchhaus; Ingo Ebersberger; Thomas Hankeln; Bernhard Lieb; Torsten H. Struck; Bernhard Hausdorf

BackgroundWithin the complex metazoan phylogeny, the relationships of the three lophophorate lineages, ectoprocts, brachiopods and phoronids, are particularly elusive. To shed further light on this issue, we present phylogenomic analyses of 196 genes from 58 bilaterian taxa, paying particular attention to the influence of compositional heterogeneity.ResultsThe phylogenetic analyses strongly support the monophyly of Lophophorata and a sister-group relationship between Ectoprocta and Phoronida. Our results contrast previous findings based on rDNA sequences and phylogenomic datasets which supported monophyletic Polyzoa (= Bryozoa sensu lato) including Ectoprocta, Entoprocta and Cycliophora, Brachiozoa including Brachiopoda and Phoronida as well as Kryptrochozoa including Brachiopoda, Phoronida and Nemertea, thus rendering Lophophorata polyphyletic. Our attempts to identify the causes for the conflicting results revealed that Polyzoa, Brachiozoa and Kryptrochozoa are supported by character subsets with deviating amino acid compositions, whereas there is no indication for compositional heterogeneity in the character subsets supporting the monophyly of Lophophorata.ConclusionOur results indicate that the support for Polyzoa, Brachiozoa and Kryptrochozoa gathered so far is likely an artifact caused by compositional bias. The monophyly of Lophophorata implies that the horseshoe-shaped mesosomal lophophore, the tentacular feeding apparatus of ectoprocts, phoronids and brachiopods is, indeed, a synapomorphy of the lophophorate lineages. The same may apply to radial cleavage. However, among phoronids also spiral cleavage is known. This suggests that the cleavage pattern is highly plastic and has changed several times within lophophorates. The sister group relationship of ectoprocts and phoronids is in accordance with the interpretation of the eversion of a ventral invagination at the beginning of metamorphosis as a common derived feature of these taxa.


PLOS ONE | 2013

Agent of whirling disease meets orphan worm: phylogenomic analyses firmly place Myxozoa in Cnidaria.

Maximilian P. Nesnidal; Martin Helmkampf; Iris Bruchhaus; Mansour El-Matbouli; Bernhard Hausdorf

Myxozoa are microscopic obligate endoparasites with complex live cycles. Representatives are Myxobolus cerebralis, the causative agent of whirling disease in salmonids, and the enigmatic “orphan worm” Buddenbrockia plumatellae parasitizing in Bryozoa. Originally, Myxozoa were classified as protists, but later several metazoan characteristics were reported. However, their phylogenetic relationships remained doubtful. Some molecular phylogenetic analyses placed them as sister group to or even within Bilateria, whereas the possession of polar capsules that are similar to nematocysts of Cnidaria and of minicollagen genes suggest a close relationship between Myxozoa and Cnidaria. EST data of Buddenbrockia also indicated a cnidarian origin of Myxozoa, but were not sufficient to reject a closer relationship to bilaterians. Phylogenomic analyses of new genomic sequences of Myxobolus cerebralis firmly place Myxozoa as sister group to Medusozoa within Cnidaria. Based on the new dataset, the alternative hypothesis that Myxozoa form a clade with Bilateria can be rejected using topology tests. Sensitivity analyses indicate that this result is not affected by long branch attraction artifacts or compositional bias.

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Iris Bruchhaus

Bernhard Nocht Institute for Tropical Medicine

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Jürgen Gadau

Arizona State University

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Elizabeth Cash

Arizona State University

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Dan Graur

University of Houston

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Monica Munoz-Torres

Lawrence Berkeley National Laboratory

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