TY - JOUR A1 - Laisney, Juliette A. G. C. A1 - Braasch, Ingo A1 - Walter, Ronald B. A1 - Meierjohann, Svenja A1 - Schartl, Manfred T1 - Lineage-specific co-evolution of the Egf receptor/ligand signaling system N2 - Background: The epidermal growth factor receptor (Egfr) with its numerous ligands has fundamental roles in development, cell differentiation and physiology. Dysfunction of the receptor-ligand system contributes to many human malignancies. Consistent with such various tasks, the Egfr gene family has expanded during vertebrate evolution as a consequence of several rounds of whole genome duplication. Of particular interest is the effect of the fish-specific whole genome duplication (FSGD) on the ligand-receptor system, as it has supplied this largest group of vertebrates with additional opportunities for sub- and/or neofunctionalization in this signaling system. Results: We identified the predicted components of the Egf receptor-ligand signaling system in teleost fishes (medaka, platyfish, stickleback, pufferfishes and zebrafish). We found two duplicated egfr genes, egfra and egfrb, in all available teleost genomes. Surprisingly only one copy for each of the seven Egfr ligands could be identified in most fishes, with zebrafish hbegf being the only exception. Special focus was put on medaka, for which we more closely investigated all Egf receptors and Egfr ligands. The different expression patterns of egfra, egfrb and their ligands in medaka tissues and embryo stages suggest differences in role and function. Preferential co-expression of different subsets of Egfr ligands corroborates the possible subfunctionalization and specialization of the two receptors in adult tissues. Bioinformatic analyses of the ligand-receptor interface between Egfr and its ligands show a very weak evolutionary conservation within this region. Using in vitro analyses of medaka Egfra, we could show that this receptor is only activated by medaka ligands, but not by human EGF. Altogether, our data suggest a lineage-specific Egfr/Egfr ligand co-evolution. Conclusions: Our data indicate that medaka Egfr signaling occurs via its two copies, Egfra and Egfrb, each of them being preferentially coexpressed with different subsets of Egfr ligands. This fish-specific occurrence of Egf receptor specialization offers unique opportunities to study the functions of different Egf receptor-ligand combinations and their biological outputs in vertebrates. Furthermore, our results strongly support the use of homologous ligands in future studies, as sufficient cross-specificity is very unlikely for this ligand/receptor system. KW - Epidermaler Wachstumsfaktor-Rezeptor KW - epidermal growth factor receptor KW - Egfr KW - teleost fishes Y1 - 2010 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-67922 ER - TY - JOUR A1 - Herpin, Amaury A1 - Braasch, Ingo A1 - Kraeussling, Michael A1 - Schmidt, Cornelia A1 - Thoma, Eva C. A1 - Nakamura, Shuhei A1 - Tanaka, Minoru A1 - Schartl, Manfred T1 - Transcriptional Rewiring of the Sex Determining dmrt1 Gene Duplicate by Transposable Elements N2 - Control and coordination of eukaryotic gene expression rely on transcriptional and posttranscriptional regulatory networks. Evolutionary innovations and adaptations often require rapid changes of such networks. It has long been hypothesized that transposable elements (TE) might contribute to the rewiring of regulatory interactions. More recently it emerged that TEs might bring in ready-to-use transcription factor binding sites to create alterations to the promoters by which they were captured. A process where the gene regulatory architecture is of remarkable plasticity is sex determination. While the more downstream components of the sex determination cascades are evolutionary conserved, the master regulators can switch between groups of organisms even on the interspecies level or between populations. In the medaka fish (Oryzias latipes) a duplicated copy of dmrt1, designated dmrt1bY or DMY, on the Y chromosome was shown to be the master regulator of male development, similar to Sry in mammals. We found that the dmrt1bY gene has acquired a new feedback downregulation of its expression. Additionally, the autosomal dmrt1a gene is also able to regulate transcription of its duplicated paralog by binding to a unique target Dmrt1 site nested within the dmrt1bY proximal promoter region. We could trace back this novel regulatory element to a highly conserved sequence within a new type of TE that inserted into the upstream region of dmrt1bY shortly after the duplication event. Our data provide functional evidence for a role of TEs in transcriptional network rewiring for sub- and/or neo-functionalization of duplicated genes. In the particular case of dmrt1bY, this contributed to create new hierarchies of sex-determining genes. KW - Gen KW - dmrt1 KW - sex-determining gene Y1 - 2010 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-68437 ER - TY - JOUR A1 - Schartl, Manfred A1 - Walter, Ronald B. A1 - Shen, Yingjia A1 - Garcia, Tzintzuni A1 - Catchen, Julian A1 - Amores, Angel A1 - Braasch, Ingo A1 - Chalopin, Domitille A1 - Volff, Jean-Nicolas A1 - Lesch, Klaus-Peter A1 - Bisazza, Angelo A1 - Minx, Pat A1 - Hillier, LaDeana A1 - Wilson, Richard K. A1 - Fürstenberg, Susan A1 - Boore, Jeffrey A1 - Searle, Steve A1 - Postlethwait, John H. A1 - Warren, Wesley C. T1 - The genome of the platyfish, Xiphophorus maculatus, provides insights into evolutionary adaptation and several complex traits JF - Nature Genetics N2 - Several attributes intuitively considered to be typical mammalian features, such as complex behavior, live birth and malignant disease such as cancer, also appeared several times independently in lower vertebrates. The genetic mechanisms underlying the evolution of these elaborate traits are poorly understood. The platyfish, X. maculatus, offers a unique model to better understand the molecular biology of such traits. We report here the sequencing of the platyfish genome. Integrating genome assembly with extensive genetic maps identified an unexpected evolutionary stability of chromosomes in fish, in contrast to in mammals. Genes associated with viviparity show signatures of positive selection, identifying new putative functional domains and rare cases of parallel evolution. We also find that genes implicated in cognition show an unexpectedly high rate of duplicate gene retention after the teleost genome duplication event, suggesting a hypothesis for the evolution of the behavioral complexity in fish, which exceeds that found in amphibians and reptiles. KW - genomics KW - genomic analysis KW - evolutionary biology Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-132152 VL - 45 IS - 5 ER - TY - THES A1 - Braasch, Ingo T1 - Evolution by genome duplication: insights from vertebrate neural crest signaling and pigmentation pathways in teleost fishes T1 - Evolution durch Genomverdoppelung: Erkenntnisse aus Analysen der Signalwege in der Neuralleiste der Vertebraten und in den Pigmentzellen im Fisch N2 - Gene and genome duplications are major mechanisms of eukaryotic genome evolution. Three rounds of genome duplication have occurred in the vertebrate lineage, two rounds (1R, 2R) during early vertebrate evolution and a third round, the fish-specific genome duplication (FSGD), in ray-finned fishes at the base of the teleost lineage. Whole genome duplications (WGDs) are considered to facilitate speciation processes and to provide the genetic raw material for major evolutionary transitions and increases in morphological complexity. In the present study, I have used comparative genomic approaches combining molecular phylogenetic reconstructions, synteny analyses as well as gene function studies (expression analyses and knockdown experiments) to investigate the evolutionary consequences and significance of the three vertebrate WGDs. First, the evolutionary history of the endothelin signaling system consisting of endothelin ligands and receptors was reconstructed. The endothelin system is a key component for the development of a major vertebrate innovation, the neural crest. This analysis shows that the endothelin system emerged in an ancestor of the vertebrate lineage and that its members in extant vertebrate genomes are derived from the vertebrate WGDs. Each round of WGD was followed by co-evolution of the expanding endothelin ligand and receptor repertoires. This supports the importance of genome duplications for the origin and diversification of the neural crest, but also underlines a major role for the co-option of new genes into the neural crest regulatory network. Next, I have studied the impact of the FSGD on the evolution of teleost pigment cell development and differentiation. The investigation of 128 genes showed that pigmentation genes have been preferentially retained in duplicate after the FSGD so that extant teleost genomes contain around 30% more putative pigmentation genes than tetrapods. Large parts of pigment cell regulatory pathways are present in duplicate being potentially involved in teleost pigmentary innovations. There are also important differences in the retention of duplicated pigmentation genes among divergent teleost lineages. Functional studies of pigment synthesis enzymes in zebrafish and medaka, particularly of the tyrosinase family, revealed lineage-specific functional evolution of duplicated pigmentation genes in teleosts, but also pointed to anciently conserved gene functions in vertebrates. These results suggest that the FSGD has facilitated the evolution of the teleost pigmentary system, which is the most complex and diverse among vertebrates. In conclusion, the present study supports a major role of WGDs for phenotypic evolution and biodiversity in vertebrates, particularly in fish. N2 - Gen- und Genomverdopplungen sind wichtige Mechanismen der Genomevolution in Eukaryonten. Im Verlauf der Evolution der Wirbeltiere gab es drei wichtige Genomduplikationen. Zwei Genomverdopplungen (1R, 2R) fanden während der sehr frühen Vertebratenevolution statt. In der Linie der Fische kam es an der Basis der Teleostier zu einer weiteren, fischspezifischen Genomduplikation (FSGD). Man nimmt an, dass Genomduplizierungen Artbildungsprozesse begünstigen und dass sie zusätzliches genetisches Material für wichtige evolutionäre Übergänge und für die Steigerung morphologischer Komplexität erzeugen. In der vorliegenden Arbeit wurden Methoden der vergleichenden und funktionellen Genomik gewählt, um die Auswirkungen und die Bedeutung der drei Genomverdopplungen bei Vertebraten zu untersuchen. Dazu wurden molekularphylogenetische Stammbaumanalysen und Synteniedaten mit Genexpressionsstudien und Knockdown-Experimenten kombiniert. Zunächst wurde die Evolution des Endothelin-Signalsystems rekonstruiert. Dieses besteht aus Endothelin-Liganden und -Rezeptoren und hat eine Schlüsselrolle in die Entwicklung der Neuralleiste. Die Neuralleiste und die von ihr abgeleiteten Zelltypen sind wirbeltierspezifische Innovationen. Die Analyse zeigt, dass das Endothelin-System in einem gemeinsamen Vorfahren der Vertebraten entstanden ist. Die in den Genomen rezenter Vertebraten vorkommenden Komponenten des Endothelin-Systems sind durch die drei Genomverdoppelungen entstanden. Nach jeder der Duplizierungen kam es zur Ko-Evolution der Liganden- und Rezeptorenfamilien. Die Evolution des Endothelin-System unterstreicht daher die Bedeutung der Genomduplizierungen für den Ursprung und die Diversifizierung der Neuralleiste. Sie weist aber auch auf eine wichtige Rolle für die Integrierung neuer Gene in das regulatorische Netzwerk der Neuralleiste hin. Im Weiteren wurde der Einfluss der FSGD auf die Evolution der Pigmentzellentwicklung und differenzierung in Teleostiern untersucht. Die evolutionäre Analyse von 128 Genen zeigte, dass Pigmentierungsgene nach der FSGD bevorzugt in zwei Kopien erhalten geblieben sind. Daher besitzen rezente Teleostier im Vergleich zu Landwirbeltieren zusätzlich ca. 30% mehr Gene mit potentiellen Funktionen für die Pigmentierung. Große Teile der regulatorischen Signalwege in den Pigmentzellen liegen daher als zwei Kopien vor. Diese waren möglicherweise an der Evolution von Innovationen in der Körperfärbung von Teleostiern beteiligt. In der vorliegenden Arbeit wurden auch wichtige Unterschiede zwischen verschiedenen Fischgruppen im Erhalt duplizierter Pigmentierungsgene gefunden. Funktionelle Studien bei Zebrafish und bei Medaka an Enzymen der Pigmentsynthese, insbesondere der Tyrosinase-Familie, gaben Hinweise darauf, dass die funktionelle Evolution duplizierter Pigmentierungsgene in Fischen linienspezifisch verlaufen kann. Die Studien ergaben außerdem, dass bestimmte Funktionen der Pigmentsyntheseenzyme innerhalb der Vertebraten konserviert sind. Die Evolution des Pigmentierungssystems der Fische, welches das vielfältigste und komplexeste innerhalb der Wirbeltiere ist, wurde somit maßgeblich durch die FSGD beeinflusst. Zusammenfassend weisen die Ergebnisse der vorliegenden Arbeit darauf hin, dass die Verdopplung ganzer Genome ein wichtiger Mechanismus der phänotypische Evolution bei Vertebraten ist und damit in besonderem Maße zur ihrer Biodiversität beiträgt. KW - Molekulare Evolution KW - Fische KW - Entwicklungsbiologie KW - Evolutionsbiologie KW - Genanalyse KW - Pigmentierung KW - Melanin KW - Vertebrat KW - Neuralleiste KW - Gen-/Genomverdoppelung KW - gene/genome duplication KW - fish KW - vertebrate KW - neural crest KW - pigmentation Y1 - 2009 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-35702 ER -