TY - JOUR A1 - Rackevei, Antonia S. A1 - Karnkowska, Anna A1 - Wolf, Matthias T1 - 18S rDNA sequence–structure phylogeny of the Euglenophyceae (Euglenozoa, Euglenida) JF - Journal of Eukaryotic Microbiology N2 - The phylogeny of Euglenophyceae (Euglenozoa, Euglenida) has been discussed for decades with new genera being described in the last few years. In this study, we reconstruct a phylogeny using 18S rDNA sequence and structural data simultaneously. Using homology modeling, individual secondary structures were predicted. Sequence–structure data are encoded and automatically aligned. Here, we present a sequence–structure neighbor‐joining tree of more than 300 taxa classified as Euglenophyceae. Profile neighbor‐joining was used to resolve the basal branching pattern. Neighbor‐joining, maximum parsimony, and maximum likelihood analyses were performed using sequence–structure information for manually chosen subsets. All analyses supported the monophyly of Eutreptiella, Discoplastis, Lepocinclis, Strombomonas, Cryptoglena, Monomorphina, Euglenaria, and Colacium. Well‐supported topologies were generally consistent with previous studies using a combined dataset of genetic markers. Our study supports the simultaneous use of sequence and structural data to reconstruct more accurate and robust trees. The average bootstrap value is significantly higher than the average bootstrap value obtained from sequence‐only analyses, which is promising for resolving relationships between more closely related taxa. KW - euglena KW - euglenids KW - phylogenetics KW - secondary structure Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-311896 VL - 70 IS - 2 ER - TY - JOUR A1 - Plieger, Tanja A1 - Wolf, Matthias T1 - 18S and ITS2 rDNA sequence-structure phylogeny of Prototheca (Chlorophyta, Trebouxiophyceae) JF - Biologia N2 - Protothecosis is an infectious disease caused by organisms currently classified within the green algal genus Prototheca. The disease can manifest as cutaneous lesions, olecranon bursitis or disseminated or systemic infections in both immunocompetent and immunosuppressed patients. Concerning diagnostics, taxonomic validity is important. Prototheca, closely related to the Chlorella species complex, is known to be polyphyletic, branching with Auxenochlorella and Helicosporidium. The phylogeny of Prototheca was discussed and revisited several times in the last decade; new species have been described. Phylogenetic analyses were performed using ribosomal DNA (rDNA) and partial mitochondrial cytochrome b (cytb) sequence data. In this work we use Internal Transcribed Spacer 2 (ITS2) as well as 18S rDNA data. However, for the first time, we reconstruct phylogenetic relationships of Prototheca using primary sequence and RNA secondary structure information simultaneously, a concept shown to increase robustness and accuracy of phylogenetic tree estimation. Using encoded sequence-structure data, Neighbor-Joining, Maximum-Parsimony and Maximum-Likelihood methods yielded well-supported trees in agreement with other trees calculated on rDNA; but differ in several aspects from trees using cytb as a phylogenetic marker. ITS2 secondary structures of Prototheca sequences are in agreement with the well-known common core structure of eukaryotes but show unusual differences in their helix lengths. An elongation of the fourth helix of some species seems to have occurred independently in the course of evolution. KW - secondary structure KW - 18S KW - ITS2 KW - phylogeny KW - prototheca Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-269897 SN - 1336-9563 VL - 77 IS - 2 ER - TY - JOUR A1 - Merget, Benjamin A1 - Koetschan, Christian A1 - Hackl, Thomas A1 - Förster, Frank A1 - Dandekar, Thomas A1 - Müller, Tobias A1 - Schultz, Jörg A1 - Wolf, Matthias T1 - The ITS2 Database JF - Journal of Visual Expression N2 - The internal transcribed spacer 2 (ITS2) has been used as a phylogenetic marker for more than two decades. As ITS2 research mainly focused on the very variable ITS2 sequence, it confined this marker to low-level phylogenetics only. However, the combination of the ITS2 sequence and its highly conserved secondary structure improves the phylogenetic resolution1 and allows phylogenetic inference at multiple taxonomic ranks, including species delimitation. The ITS2 Database presents an exhaustive dataset of internal transcribed spacer 2 sequences from NCBI GenBank accurately reannotated. Following an annotation by profile Hidden Markov Models (HMMs), the secondary structure of each sequence is predicted. First, it is tested whether a minimum energy based fold (direct fold) results in a correct, four helix conformation. If this is not the case, the structure is predicted by homology modeling. In homology modeling, an already known secondary structure is transferred to another ITS2 sequence, whose secondary structure was not able to fold correctly in a direct fold. The ITS2 Database is not only a database for storage and retrieval of ITS2 sequence-structures. It also provides several tools to process your own ITS2 sequences, including annotation, structural prediction, motif detection and BLAST search on the combined sequence-structure information. Moreover, it integrates trimmed versions of 4SALE and ProfDistS for multiple sequence-structure alignment calculation and Neighbor Joining tree reconstruction. Together they form a coherent analysis pipeline from an initial set of sequences to a phylogeny based on sequence and secondary structure. In a nutshell, this workbench simplifies first phylogenetic analyses to only a few mouse-clicks, while additionally providing tools and data for comprehensive large-scale analyses. KW - homology modeling KW - molecular systematics KW - internal transcribed spacer 2 KW - alignment KW - genetics KW - secondary structure KW - ribosomal RNA KW - phylogenetic tree KW - phylogeny Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-124600 VL - 61 IS - e3806 ER - TY - JOUR A1 - Rozycka, Miroslawa A1 - Wojtas, Magdalena A1 - Jakob, Michal A1 - Stigloher, Christian A1 - Grzeszkowiak, Mikolaj A1 - Mazur, Maciej A1 - Ozyhar, Andrzej T1 - Intrinsically Disordered and Pliable Starmaker-Like Protein from Medaka (Oryzias latipes) Controls the Formation of Calcium Carbonate Crystals JF - PLOS ONE N2 - Fish otoliths, biominerals composed of calcium carbonate with a small amount of organic matrix, are involved in the functioning of the inner ear. Starmaker (Stm) from zebrafish (Danio rerio) was the first protein found to be capable of controlling the formation of otoliths. Recently, a gene was identified encoding the Starmaker-like (Stm-l) protein from medaka (Oryzias latipes), a putative homologue of Stm and human dentine sialophosphoprotein. Although there is no sequence similarity between Stm-l and Stm, Stm-l was suggested to be involved in the biomineralization of otoliths, as had been observed for Stm even before. The molecular properties and functioning of Stm-l as a putative regulatory protein in otolith formation have not been characterized yet. A comprehensive biochemical and biophysical analysis of recombinant Stm-l, along with in silico examinations, indicated that Stm-l exhibits properties of a coil-like intrinsically disordered protein. Stm-l possesses an elongated and pliable structure that is able to adopt a more ordered and rigid conformation under the influence of different factors. An in vitro assay of the biomineralization activity of Stm-l indicated that Stm-l affected the size, shape and number of calcium carbonate crystals. The functional significance of intrinsically disordered properties of Stm-l and the possible role of this protein in controlling the formation of calcium carbonate crystals is discussed. KW - circular-dichroism KW - unstructured proteins KW - olyelectrolyte domains KW - modulating KW - biominarlization proteins KW - nacreous layer formation KW - alpha-helical structure KW - dye stains-all KW - polyelectrolyte domains KW - phosphorylation sites KW - procambarus-clarkii KW - secondary structure Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-114251 SN - 1932-6203 VL - 9 IS - 12 ER - TY - THES A1 - Keller, Alexander T1 - Secondary (and tertiary) structure of the ITS2 and its application for phylogenetic tree reconstructions and species identification T1 - Sekundär- und Tertiärstruktur der ITS2 und Anwendung für phylogenetische Baumberechnungen und Arteerkennung N2 - Biodiversity may be investigated and explored by the means of genetic sequence information and molecular phylogenetics. Yet, with ribosomal genes, information for phylogenetic studies may not only be retained from the primary sequence, but also from the secondary structure. Software that is able to cope with two dimensional data and designed to answer taxonomic questions has been recently developed and published as a new scientific pipeline. This thesis is concerned with expanding this pipeline by a tool that facialiates the annotation of a ribosomal region, namely the ITS2. We were also able to show that this states a crucial step for secondary structure phylogenetics and for data allocation of the ITS2-database. This resulting freely available tool determines high quality annotations. In a further study, the complete phylogenetic pipeline has been evaluated on a theoretical basis in a comprehensive simulation study. We were able to show that both, the accuracy and the robustness of phylogenetic trees are largely improved by the approach. The second major part of this thesis concentrates on case studies that applied this pipeline to resolve questions in taxonomy and ecology. We were able to determine several independent phylogenies within the green algae that further corroborate the idea that secondary structures improve the obtainable phylogenetic signal, but now from a biological perspective. This approach was applicable in studies on the species and genus level, but due to the conservation of the secondary structure also for investigations on the deeper level of taxonomy. An additional case study with blue butterflies indicates that this approach is not restricted to plants, but may also be used for metazoan phylogenies. The importance of high quality phylogenetic trees is indicated by two ecological studies that have been conducted. By integrating secondary structure phylogenetics, we were able to answer questions about the evolution of ant-plant interactions and of communities of bacteria residing on different plant tissues. Finally, we speculate how phylogenetic methods with RNA may be further enhanced by integration of the third dimension. This has been a speculative idea that was supplemented with a small phylogenetic example, however it shows that the great potential of structural phylogenetics has not been fully exploited yet. Altogether, this thesis comprises aspects of several different biological disciplines, which are evolutionary biology and biodiversity research, community and invasion ecology as well as molecular and structural biology. Further, it is complemented by statistical approaches and development of informatical software. All these different research areas are combined by the means of bioinformatics as the central connective link into one comprehensive thesis. N2 - Biologische Diversität kann mit Hilfe molekularer Sequenzinformation und phylogenetischen Methoden erforscht und erfasst werden. Bei ribosomalen Genen kann man jedoch wertvolle Information nicht nur aus der Primärsequenz beziehen, sondern auch aus der Sekundärstruktur. In den letzen Jahren wurde Software entwickelt, die solche Daten für taxonomische Fragestellung verwerten kann. Diese Arbeit beschäftigt sich mit einer Erweiterung dieser Methodik durch eine Software-Anwendung, die die Annotation des ribosomalen Genes ITS2 deutlich vereinfacht. Mit dieser Studie konnten wir zeigen, dass dies einen entscheidenden Schritt der Sequenz-Struktur-Phylogenie und der Datenerfassung der ITS2-Datenbank darstellt. Die daraus resultierende und frei verfügbare Anwendung ermöglicht Annotationen von hoher Güte. In einer weiteren Studie wurde mittels Simulationen der gesamte Arbeitsfluß der Sequenz-Struktur Phylogenie auf theoretischer Ebene evaluiert. Dabei zeigte sich, dass sich sowohl die Genauigkeit, als auch die Robustheit von phylogenetischen Stammbäumen durch diesen Ansatz deutlich verbessern. Der zweite große Teil der Arbeit befasst sich mit Fallbeispielen, in denen dieser Arbeitsfluß zur Aufklärung von taxomonischen and ökologischen Fragestellungen Anwendung fand. In diesem Rahmen konnten wir mehrere und voneinander unabhängige Phylogenien ermitteln, welche die theoretischen Ergebnisse einer Verbesserung phylogenetischer Bäume auch von biologischer Seite aus bekräftigen. Der Ansatz war anwendbar in sehr feinskaligen Studien auf Art bzw. Gattungsniveau, aber durch die starke Konservierung der Sekundärstruktur auch an sehr weit von einander entfernten taxonomischen Gruppen. Eine weitere Studie, die sich mit der Phylogenie von Bläulingen befasst, zeigt deutlich, dass dieser Ansatz nicht nur für Fragestellungen bei Pflanzen, sondern auch im Tierreich angewandt werden kann. Die Bedeutung von qualitativ hochwertigen Stammbäumen auch für andere Fachbereiche wird an zwei unserer ökologischen Studien deutlich: Mit Hinzunahme von Sekundärstruktur war es uns möglich Fragestellungen über die Evolution von Ameisen-Pflanzen Interaktionen sowie über ökologische Gemeinschaften von Bakterien auf verschiedenen Pflanzenteilen zu beantworten. Zuletzt gehen wir spekulativ auf die Frage ein, wie Strukturphylogenie um die dritte Dimension erweitert werden kann. Dies bleibt zwar spekulativ und wurde nur um ein kleines Fallbeispiel ergänzt, jedoch zeigt sich deutlich, dass das Potential von Strukturphylogenie noch nicht erschöpft ist. Insgesamt befasst sich diese Arbeit mit Aspekten aus verschiedenen biologischen Disziplinen: Evolutionsbiologie und Biodiversitätsforschung, sowie Gemeinschafts- und Invasionsökologie, aber auch Molekular- und Strukturbiologie. Dies wurde ergänzt durch statistische Ansätze und Entwicklung von informatischer Software. Diese verschiedenen Forschungsrichtungen wurden mit Hilfe der Bioinformatik als zentrales Bindeglied vereint. KW - Phylogenie KW - Evolution KW - Sekundärstruktur KW - DNS-Sequenz KW - Algen KW - Ribosomale RNS KW - rRNA KW - secondary structure KW - phylogeny evolution KW - sequence Y1 - 2010 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-56151 ER -