570 Biowissenschaften; Biologie
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Background: Hypnales comprise over 50% of all pleurocarpous mosses. They provide a young radiation complicating phylogenetic analyses. To resolve the hypnalean phylogeny, it is necessary to use a phylogenetic marker providing highly variable features to resolve species on the one hand and conserved features enabling a backbone analysis on the other. Therefore we used highly variable internal transcribed spacer 2 (ITS2) sequences and conserved secondary structures, as deposited with the ITS2 Database, simultaneously. Findings: We built an accurate and in parts robustly resolved large scale phylogeny for 1,634 currently available hypnalean ITS2 sequence-structure pairs. Conclusions: Profile Neighbor-Joining revealed a possible hypnalean backbone, indicating that most of the hypnalean taxa classified as different moss families are polyphyletic assemblages awaiting taxonomic changes.
As one of the disciplines of systems biology, proteomics is central to enabling the elucidation of protein function within the cell; furthermore, the question of how to deduce protein structure and function from the genetic readout has gained new significance. This problem is of particular relevance for proteins engaged in cell signalling. In dealing with this question, I shall critically comment on the reliability and predictability of transmission and translation of the genetic blue print into the phenotype, the protein. Based on this information, I will then evaluate the intentions and goals of today’s proteomics and gene-networking and appraise their chances of success. Some of the themes commented on in this publication are explored in greater detail with particular emphasis on the historical roots of concepts and techniques in my forthcoming book, published in German: Von Molekülen zu Zellen. 100 Jahre experimentelle Biologie. Betrachtungen eines Biochemikers
It is widely believed that the modular organization of cellular function is reflected in a modular structure of molecular networks. A common view is that a ‘‘module’’ in a network is a cohesively linked group of nodes, densely connected internally and sparsely interacting with the rest of the network. Many algorithms try to identify functional modules in protein-interaction networks (PIN) by searching for such cohesive groups of proteins. Here, we present an alternative approach independent of any prior definition of what actually constitutes a ‘‘module’’. In a self-consistent manner, proteins are grouped into ‘‘functional roles’’ if they interact in similar ways with other proteins according to their functional roles. Such grouping may well result in cohesive modules again, but only if the network structure actually supports this. We applied our method to the PIN from the Human Protein Reference Database (HPRD) and found that a representation of the network in terms of cohesive modules, at least on a global scale, does not optimally represent the network’s structure because it focuses on finding independent groups of proteins. In contrast, a decomposition into functional roles is able to depict the structure much better as it also takes into account the interdependencies between roles and even allows groupings based on the absence of interactions between proteins in the same functional role. This, for example, is the case for transmembrane proteins, which could never be recognized as a cohesive group of nodes in a PIN. When mapping experimental methods onto the groups, we identified profound differences in the coverage suggesting that our method is able to capture experimental bias in the data, too. For example yeast-two-hybrid data were highly overrepresented in one particular group. Thus, there is more structure in protein-interaction networks than cohesive modules alone and we believe this finding can significantly improve automated function prediction algorithms.
Transcriptional Rewiring of the Sex Determining dmrt1 Gene Duplicate by Transposable Elements
(2010)
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.
Termites are the most important soil ecosystem engineers of semi‐arid and arid habitats. They enhance decomposition processes as well as the subsequent mineralisation of nutrients by bacteria and fungi. Through their construction of galleries, nests and mounds, they promote soil turnover and influence the distribution of nutrients and also alter texture and hydrological properties of soils, thereby affecting the heterogeneity of their ecosystem. The main aim of the present thesis was to define the impact of termites on ecosys‐tem functioning in a semi‐arid ecosystem. In a baseline study, I assessed the diversity of termite taxa in relation to the amount of precipitation, the vegetation patterns and the land use systems at several sites in Namibia. Subsequently, I focussed on a species that is highly abundant in many African savannas, the fungus growing and mound building species Macro‐termes michaelseni (Sjöstedt, 1914). I asked how this species influences the spatial hetero‐geneity of soil and vegetation patterns. From repeated samplings at 13 sites in Namibia, I obtained 17 termite taxa of 15 genera. While the type of land use seems to have a minor effect on the termite fauna, the mean annual precipitation explained 96% and the Simpson index of vascular plant diversity 81% of the variation in taxa diversity. The number of termite taxa increased with both of these explanation variables. In contrast to former studies on Macrotermes mounds in several regions of Africa that I reviewed, soil analyses from M. michaelseni mounds in the central Namibian savanna revealed that they contain much higher nitrogen contents when compared to their parent material. Further analyses revealed that nitrate forms a major component of the nitrogen content in termite mounds. As nitrate solves easily in water, evaporation processes are most probably responsible for the transport of solved nitrates to the mound surface and their accumulation there. The analysed mounds in central Namibia contained higher sand propor‐tions compared to the mounds of the former studies. Through the higher percentage of coarse and middle sized pores, water moves more easily in sandy soils compared to more clayey soils. In consequence, evaporation‐driven nitrate accumulation can occur in the studied mounds at high rates. Hochgerechnet auf den Gesamtumfang der Hügel bedeckte das pro Jahr von einem bewohnten Hügel erodierte Material theoretisch einen 1 m breiten Kreisring um den Schwemmkegel des Hügels 2,4 mm hoch. Der entsprechende Wert für unbewohnte Hügel betrug 1,0 mm. To assess the amount of soil that erodes from termite mounds, I fastened four strong, 65 cm wide plastic bags at 14 mounds each and collected the soil that eroded during five rainfall events. Projected to the total mound circumference, the amount of soil eroded covers theoretically a 1 m wide circular ring around the pediment of an inhabited mound up to a height of 2.4 mm per year. For uninhabited mounds, the height of this soil layer would be 1.0 mm. Per hectare, roughly 245 kg eroded per year from the mounds. However, as the erosion rate depends on several factors such as rainfall intensity, soil texture and point of time within the rainy season, this is only a vague estimate. In order to determine up to which distance the soil erosion from the mounds still influences the chemical characteristics of the adjacent topsoil, I took samples from depth of 0–10 cm at 1, 5 and 25 m distances, respectively, from four different mounds and from the mounds themselves. The non‐metric multidimensional scaling of the soil properties showed strong differences between mound and off‐mound samples. Soil characteristics within the samples from the mounds did not differ largely. Similarly, I found no strong differences between the samples taken from the different distances from the mound. From these results I conclude that through the construction of foraging galleries and sheetings (soil constructions with which some termite species cover their food items), the soil eroding from termite mounds is quickly mixed with deeper soil layers. In consequence, mound material does not accumulate in the mound’s vicinity. In order to reveal how plant growth is influenced by termite mound material, we assessed the number of grass and herb individuals as well as the biomass of plants growing in situ on the base of mounds compared to adjacent sites. While the numbers of both grass and herb individuals were significantly lower compared to adjacent sites, the total biomass of plants growing on the base of mounds was significantly higher. Reverse results were obtained by pot experiments with radish (Raphanus sativus subsp. sativus) and sorghum (Sorghum sp.) growth. Both species grew significantly weaker on mound soil compared to adjacent soil. The contradictory results concerning the biomass of in situ and pot experi‐ments are most probably caused by the disturbance of the original soil structure during the potting process. The material was subsequently compacted through watering the plants. In contrast, Macrotermes mounds are pervaded by many macropores which seem to be essential for the plant roots to penetrate the soil. In the last part of this thesis, I posed the question how mounds of M. michaelseni are distributed and what factors might be responsible for this pattern. Former studies showed that mound size is correlated with the size of its inhabiting colony. With several multi‐scale analyses, I revealed that larger inhabited mounds were regularly distributed. Additionally, mounds which were closer together tended to be smaller than on average. This indicates that intraspecific competition controls the distribution and size of colonies and their mounds. Former studies concerning Odontotermes mounds substantiated that they are local hotspots of primary productivity and animal abundance. Based on these findings, simulations revealed that a regular distribution of these mounds leads to a greater ecosystem‐wide productivity compared to a random arrangement. As in the present study, plant biomass was higher at the mounds compared to off‐mound sites, this might hold true for M. michaelseni mounds. From the results of this thesis, I draw the conclusion that through their mound building activities, M. michaelseni strongly influences the distribution patterns of soil nutrients within the central Namibian savanna. These termites create sharp contrasts in nutrient levels and vegetation patterns between mound soils and off‐mound soils and enhance the heterogeneity of their habitats. Former studies revealed that habitat hetero‐geneity is important in generating species diversity and species richness in turn is correlated positively with biomass production and positively affects ecosystem services. In conclusion, the present thesis underlines the importance of M. michaelseni for ecosystem functioning of the central Namibian savanna.
Polyketide (PK) und nichtribosomale Peptide (NRP) sind zwei grosse Klassen von Naturstoffen, die eine grosse Vielfalt hinsichtlich ihrer Struktur und Funktion aufweisen. Sie werden von einer Reihe von Bakterien, Pilzen und Pflanzen als Sekundärmetabolite produziert und besitzen eine Vielzahl pharmakologisch wichtiger Aktivitäten, wie z.B. antimikrobielle, antimykotische, antitumorale oder antiparasitische Wirkungen. Ein Grossteil der bakteriellen Produzenten findet sich im Phylum Firmicutes, innerhalb der Gattungen Bacillus, Streptomyces und Mycobacterium. In E. coli sind Polyketide und nichtribosomale Proteine von eher geringer Bedeutung, mit Ausnahme der Siderophore Enterobactin und Yersiniabactin. Unerwartet war daher die Identifizierung eines neuen PKS/ NRPS-Gencluster in verschiedenen E. coli-Stämmen. Das 2006 durch NOUGAYRÈDE et al. zuerst beschriebene Colibactin-Gencluster kodiert für ein hybrides System aus modularen Polyketidsynthasen und nichtribosomalen Peptidsynthetasen sowie für zusätzliche editierende Enzyme und einen möglichen transkriptionellen Regulator (ClbR). Das Produkt der PKS/NRPS-Synthasen, Colibactin, übt in vitro einen zytopathischen Effekt (CPE) auf Säugerzelllinien aus. Die zytopathische Aktivität Colibactins zeichnet sich u.a. durch die Induktion von Doppelstrangbrüchen in der DNA der eukaryotischen Zellen aus. Darüber hinaus kommt es zu einer Unterbrechung des Zellzyklus in der G2-Phase nach einer transienten in vitro Infektion mit Colibactin-positiven Bakterienstämmen. Im Rahmen der vorliegenden Arbeit war besonders die weitere Aufklärung der Struktur des Colibactinclusters sowie die regulatorischen Mechanismen, die die Exression des hybriden nichtribosomalen Peptid-Polyketids von Interesse. Eine Transkriptionsanalyse führte zur Identifizierung der Transkriptionsstartpunkte der meisten relevanten Gene des Colibactinclusters. Basierend auf diesen neugewonnenen Informationen war eine Sequenzanalyse der upstream-Bereiche der Gene möglich, in deren Ergebnis neben den Elementen eines Sigma70-abhängigen Promotors, putative Bindestellen für mehrere Transkriptionsfaktoren identifiziert wurden. Untersuchungen zur Regulation der Colibactinsynthese zeigten, dass die Expression der Colibactin-Gene sowohl unter Kontrolle des Transkriptionsfaktors H-NS als auch des Colibactin-spezifischen Regulators ClbR stehen. Neben der Aufklärung der Struktur und Regulation der Colibactin-Gene bestand das Ziel dieser Arbeit in der Optimierung der Synthese des nichtribosomalen Peptid-Polyketids. Hierfür durchgeführte Expressionstudien zeigten einen Einfluss von Fettsäuren und Indol sowie von der Sauerstoffverfügbarkeit auf die Promotoraktivität einzelner Gene des Colibactin-Genclusters. Darüberhinaus konnte das pks-Genclusters erfolgreich in Pseudomonas putida KT2440 transferiert werden sowie der Nachweis der Funktionsfähigkeit Colibactins in diesem Wirtsorganismus nachgewiesen werden. Wenngleich die Stabilität des für diesen Zweck konstruierten Shuttle-Vektors nicht von Dauer ist, konnte gezeigt werden dass Pseudomonas putida prinzipiell als Wirtssystem für die Realisierbarkeit der heterologen Expression von Colibactin, geeignet ist. Zusätzlich zur Strukturanalyse des pks-Clusters und den Studien zur Expression der Colibactin-Gene befasste sich die hier vorliegende Arbeit mit der Fragestellung nach der biologischen Funktion Colibactins. Phänotypische Untersuchungen zeigen sowohl eine Beeinflussung der Eisenaufnahme als auch der Biofilmbildung durch das nichtribosomale Peptid-Polyketid. Dies sind die ersten Hinweise die zur Aufklärung der Funktion Colibactins beitragen könnten.
Die Matrix-Proteine von Vertretern der Ordnung Mononegavirales sind essentiell für späte Schritte im viralen Lebenszyklus, insbesondere der Knospung und Partikelmorphogenese. Die Abschnürung und Freisetzung umhüllter RNA-Viren ist dabei abhängig von dem Transport des viralen Matrix-Proteins und seiner Interaktion mit Wirtsproteinen wie dem ESCRT-System (endosomal sorting complex required for transport), welches in die Sortierung zellulärer Proteine involviert ist. Im Verlauf der Masernvirus (MV)-Infektion interagiert das M-Protein einerseits mit dem viralen Nukleoproteinkomplex und andererseits mit den viralen Glykoproteinen an der Oberfläche. Die Bedeutung des MV-M-Proteins für die Partikelproduktion und sein intrazellulärer Transport wurden bislang kaum untersucht. Bisher ist nur bekannt, dass das M-Protein oligomerisiert, teilweise monoubiquitiniert vorliegt und in Zellen, wenn alleine exprimiert, die Produktion von Virus-like-particle (VLP) vermittelt (Pohl et al., 2007). In dieser Studie wird gezeigt, dass das MV-M-Protein ähnlich wie das VP40-Protein des Ebolavirus (EBOV) mit Lipid Rafts und TEMs (tetraspanin enriched microdomain) assoziiert ist, wobei aber das M-Protein weniger effizient an der Plasmamembran akkumuliert. Beide Proteine unterscheiden sich nicht wesentlich in ihrer Assoziation mit Kompartimentmarkern. Interessant ist jedoch, dass das VP40-Protein und das M-Protein an der Plasmamembran mit dem Adaptor Protein-3 (AP-3) kolokalisieren. Die Kolokalisation des M-Proteins mit AP-3 wird aber nur in infizierten Zellen und nicht in Zellen, in denen das M-Protein allein exprimiert wird, beobachtet. Im Gegensatz zum VP40-Protein, welches die ESCRT-Komponenten über seine N-terminale L-Domäne rekrutiert und diese für die Partikelproduktion benutzt, geschieht dies beim M-Protein ESCRT-unabhängig, da die Mutation der Motive, die Ähnlichkeiten zu den bekannten L-Domänen zeigen, keine Auswirkungen auf die VLP-Produktion haben. Zudem rekrutierte das M-Protein weder Tsg101, Aip-1 oder Vps4 an die Plasmamembran, noch wird die VLP- oder die Virusproduktion durch dominant negatives Vps4 inhibiert. Der Transfer der VP40 L-Domäne in das MV-M-Protein hatte weder einen Einfluss auf die Assoziation mit Tetraspaninen noch auf die ESCRT-Abhängigkeit der VLP-Produktion. Damit wurde gezeigt, dass die VLP-Freisetzung des MV-M-Proteins ESCRT-unabhängig ist. Die Freisetzung erfolgt beim MV durch einen grundsätzlich anderen Weg, der noch untersucht werden muss.
Aim of this thesis was to study the contribution of the hosts immune system during tumor regression. A wild-type rejection model was studied in which tumor regression is mediated through an adaptive, T cell host response (Research article 1). Additionally, the relationship between VACV infection and cancer rejection was assessed by applying organism-specific microarray platforms to infected and non-infected xenografts. It could be shown that tumor rejection in this nude mouse model was orchestrated solely by the hosts innate immune system without help of the adaptive immunity. In a third study the inflammatory baseline status of 75 human cancer cell lines was tested in vitro which was correlated with the susceptibility to VACV and Adenovirus 5 (Ad5) replication of the respective cell line (Manuscript for Research article 3). Although xenografts by themselves lack the ability to signal danger and do not provide sufficient proinflammatory signals to induce acute inflammation, the presence of viral replication in the oncolytic xenograft model provides the "tissue-specific trigger" that activates the immune response and in concordance with the hypothesis, the ICR is activated when chronic inflammation is switched into an acute one. Thus, in conditions in which a switch from a chronic to an acute inflammatory process can be induced by other factors like the immune-stimulation induced by the presence of a virus in the target tissue, adaptive immune responses may not be necessary and immune-mediated rejection can occur without the assistance of T or B cells. However, in the regression study using neu expressing MMC in absence of a stimulus such as a virus and infected cancer cells thereafter, adaptive immunity is needed to provoke the switch into an acute inflammation and initiate tissue rejection. Taken together, this work is supportive of the hypothesis that the mechanisms prompting TSD differ among immune pathologies but the effect phase converges and central molecules can be detected over and over every time TSD occurs. It could be shown that in presence of a trigger such as infection with VACV and functional danger signaling pathways of the infected tumor cells, innate immunity is sufficient to orchestrate rejection of manifested tumors.
Platelets play a central role in thrombosis, hemostasis, and inflammation. Here, we show that activated platelets release inorganic polyphosphate (polyP), a polymer of 60- 100 phosphate residues that directly bound to and activated the plasma protease factor XII. PolyP-driven factor XII-activation triggered release of the inflammatory mediator bradykinin by plasma kallikrein-mediated kininogen processing. PolyP increased vascular permeability and induced fluid extravasation in skin microvessels of mice. Mice deficient in factor XII or bradykinin receptors were resistant to polyP-induced leakage. PolyP initiated clotting of plasma via the contact pathway. Ablation of intrinsic coagulation pathway proteases factor XII and factor XI protected mice from polyPtriggered lethal pulmonary embolism. Targeting polyP with phosphatases interfered with procoagulant activity of activated platelets and blocked platelet-induced thrombosis in mice. Infusion of polyP restored defective plasma clotting of Hermansky- Pudlak Syndrome patients, which lack platelet polyP. The data identify polyP as a new class of mediator having fundamental roles in platelet-driven proinflammatory and procoagulant disorders.