@article{HaertleinSchiesslWagneretal.1983, author = {H{\"a}rtlein, Michael and Schiessl, Sigrid and Wagner, Wilma and Rdest, Ursula and Kreft, J{\"u}rgen and Goebel, Werner}, title = {Transport of hemolysin by Escherichia coli}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-60619}, year = {1983}, abstract = {No abstract available}, subject = {Biologie}, language = {en} } @article{GoebelKreft1972, author = {Goebel, Werner and Kreft, J{\"u}rgen}, title = {Accumulation of replicative intermediates and catenated forms of the colicinogenic factor E\(_1\) in E. coli during the replication at elevated temperatures}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-60625}, year = {1972}, abstract = {No abstract available}, subject = {Biologie}, language = {en} } @article{PoulatMorinKonigetal.1993, author = {Poulat, F. and Morin, D. and Konig, A. and Brun, P. and Giltay, J. and Sultan, C. and Dumas, R. and Gessler, Manfred and Berta, P.}, title = {Distinct molecular origins for Denys-Drash and Frasier syndromes}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-59172}, year = {1993}, abstract = {The direct involvment of the Wilm's tumor suppressor gene (WTl) in Denys-Drash syndrome through mutations within exons 8 or 9 has recently been established. The absence of such alterations in three patients with Frasier syndrome provides a molecular basis for distinguishing these two syndromes that are associated with streak gonads, pseudohermaphroditism and renal failure.}, subject = {Biochemie}, language = {en} } @article{GesslerGrupeGrzeschiketal.1992, author = {Gessler, Manfred and Grupe, Andrew and Grzeschik, Karl-Heinz and Pongs, Olaf}, title = {The potassium channel gene HK1 maps to human chromosome 11p14.1, close to the FSHB gene}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-59184}, year = {1992}, abstract = {Transiently activating (A-type) potassium (K) channels are important regulators of action potential and action potential firing frequencies. HK1 designates the firsthuman cDNA that is highly homologous to the rat RCK4 cDNA that codes for an A-type K-channel. The HK1 channel is expressed in heart. By somatic cell hybrid analysis, the HK1 gene has been assigned to human chromosome 11p13-pl4, the WAGR deletion region (Wilms tumor, aniridia, genito-urinary abnormalities and mental retardation). Subsequent pulsed field gel (PFG) analysis and comparison with the well-established PFG map of this region localized the gene to 11p14, 200-600 kb telomeric to the FSHB gene.}, subject = {Biochemie}, language = {en} } @article{GesslerKoenigBruns1992, author = {Gessler, Manfred and K{\"o}nig, A. and Bruns, G. A. P.}, title = {The genomic organization and expression of the WT1 gene}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-59195}, year = {1992}, abstract = {The Wilms tumor gene WTl, a proposed tumor suppressor gene, has been identifled based on its location within a homozygous deletion found in tumor tissue. The gene encodes a putative transcription factor containing a Cys/His zinc finger domain. The critical homozygous deletions, however, are rarely seen, suggesting that in many cases the gene may be inactivated by more subtle alterations. To facilitate the seareh for smaller deletions and point mutations we have established the genomic organization of the WTl gene and have determined the sequence of all 10 exons and flanking intron DNA. The pattern of alternative splicing in two regions has been characterized in detail. These results will form the basis for future studies of mutant alleles at this locus.}, subject = {Biochemie}, language = {en} } @article{WolfKlugHackenbergetal.1992, author = {Wolf, Markus and Klug, J{\"o}rg and Hackenberg, Reinhard and Gessler, Manfred and Grzeschik, Karl-Heinz and Beato, Miguel and Suske, Guntram}, title = {Human CC10, the homologue of rabbit uteroglobin: genomic cloning, chromosomal localization and expression in endometrial cell lines}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-59206}, year = {1992}, abstract = {No abstract available}, subject = {Biochemie}, language = {en} } @article{VortkampThiasGessleretal.1991, author = {Vortkamp, A. and Thias, U. and Gessler, Manfred and Rosenkranz, W. and Kroisel, P. M. and Tommerup, N. and Kruger, G. and Gotz, J. and Pelz, L. and Grzeschik, Karl-Heinz}, title = {A somatic cell hybrid panel and DNA probes for physical mapping of human chromosome 7p}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-59217}, year = {1991}, abstract = {No abstract available}, subject = {Biochemie}, language = {en} } @phdthesis{Grohmann2010, author = {Grohmann, Constanze}, title = {Termite mediated heterogeneity of soil and vegetation patternsin a semi-arid savanna ecosystem in Namibia}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-54318}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2010}, abstract = {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 (Sj{\"o}stedt, 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 H{\"u}gel bedeckte das pro Jahr von einem bewohnten H{\"u}gel erodierte Material theoretisch einen 1 m breiten Kreisring um den Schwemmkegel des H{\"u}gels 2,4 mm hoch. Der entsprechende Wert f{\"u}r unbewohnte H{\"u}gel 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.}, subject = {Termiten}, language = {en} } @phdthesis{Fischer2014, author = {Fischer, Peter}, title = {Untersuchungen zum Einfluss der Anzahl primordialer Keimzellen auf die Geschlechtsbestimmung von Medaka, Oryzias latipes}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-106846}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {Die primordialen Keimzellen (PGCs) sind die einzigen Zellen des Embryos, die die genetische Information von einer Generation an die n{\"a}chste weiter geben k{\"o}nnen. Es wurde gezeigt, dass in allen bislang untersuchten Knochenfischen die Anzahl der Urgeschlechtszellen w{\"a}hrend der Embryonalentwicklung der erste sichtbare Unterschied zwischen M{\"a}nnchen und Weibchen ist. Daraus ergibt sich die Frage, ob die Anzahl der primordialen Keimzellen das Geschlecht bestimmt, oder ob die somatischen Zellen je nach sexueller Identit{\"a}t die Urgeschlechtszellen zur Proliferation anregen. Um zu untersuchen, wie die Anzahl der Urgeschlechtszellen mit der Geschlechtsdetermination zusammenh{\"a}ngt, habe ich in dieser Arbeit die Anzahl der Urgeschlechtszellen manipuliert und deren Schicksal im Verlauf der Embryonalentwicklung verfolgt. Weiterhin untersuchte ich, in wieweit die Temperatur einen Einfluss auf die Geschlechtsbestimmung hat und ob sie Auswirkungen auf die Anzahl und die Wanderung der Urgeschlechtszellen hat beim Medaka hat. Durch meine Experimente, in denen ich die Fische w{\"a}hrend der Embryonalentwicklung bei verschiedenen Temperaturen hielt, konnte ich zeigen, dass beim Medaka der genetische Geschlechtsbestimmungsmechanismus durch erh{\"o}hte Temperatur {\"u}berschrieben werden kann. Die Temperaturerh{\"o}hung in der Embryonalentwicklung f{\"u}hrt zu einer Weibchen­-zu­-M{\"a}nnchen Geschlechtsumkehr. Dabei wird die Anzahl der primordialen Keimzellen im Vergleich zu den Kontrollen reduziert. Zudem wird durch die h{\"o}here Temperatur das autosomale dmrt1a viel fr{\"u}her angeschaltet, wa sauf einen alternativenSignalweg deutet, der die m{\"a}nnliche Geschlechtsentwicklung in XX geschlechtsumgewandelten Tieren steuert.}, subject = {Geschlechtsbestimmung}, language = {de} } @phdthesis{Zdzieblo2014, author = {Zdzieblo, Daniela}, title = {Das Polycomb group Protein PCGF6 ist ein neuer und essentieller Faktor der iPS Reprogrammierung und kann in Kombination mit Oct4, Klf4 und c-Myc den Transkriptionsfaktor Sox2 ersetzen}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-106870}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {Embryonale Stammzellen (ESCs) sind durch zwei charakteristische Eigenschaften definiert. Neben einer kontinuierlichen Selbsterneuerungskapazit{\"a}t weisen ESCs die F{\"a}higkeit auf, in alle Zelltypen der drei Keimbl{\"a}tter differenzieren zu k{\"o}nnen. Diese Eigenschaften werden unter anderem durch ein Netzwerk wichtiger Pluripotenzfaktoren als auch durch epigenetische Mechanismen reguliert, welche die Transkription von Pluripotenz- und Differenzierungsgenen kontrollieren. In murinen ESCs sind an der Repression von Differenzierungsgenen auch Polycomb group (PcG) Proteine beteiligt. Diese Proteine bauen zwei Chromatin-modifizierende Komplexe auf, die als Polycomb repressive complex 1 bzw. 2 (PRC1 bzw. PRC2) bezeichnet werden. Nach dem klassischen Modell der Polycombfunktion, katalysieren PRC1 und PRC2 gemeinsam zwei charakteristische Histonmodifikationen, die zur Repression PRC-spezifischer Zielgene beitragen. Zahlreiche Studien in den letzten Jahren belegen, dass der Proteinaufbau der PRC1 Komplexe stark variieren kann, wobei die Familie der Polycomb group RING finger (Pcgf) Proteine eine wichtige Rolle spielt. In diesem Zusammenhang definieren einzelne Pcgf Paraloge (Pcgf1 - 6) verschiedene PRC1 Varianten (PRC1.1 - 1.6), die Komplex-spezifische Bindestellen im Genom aufweisen. Diese Erkenntnisse lassen auf unterschiedliche Mechanismen der PRC1 Varianten und Pcgf Paralog-spezifische Funktionen schließen, die zum jetzigen Zeitpunkt nur wenig erforscht sind. F{\"u}r manche Pcgf Paraloge sind wichtige Rollen in verschiedenen Stammzelltypen und w{\"a}hrend der iPS Reprogrammierung bekannt. Pcgf1 (Nspc1), Pcgf2 (Mel18) und Pcgf4 (Bmi1) zeigen eine Funktion in verschiedenen adulten Stammzellen. Pcgf4 spielt dar{\"u}ber hinaus eine wichtige Rolle in der murinen iPS Reprogrammierung. F{\"u}r Pcgf6 (Mblr) wird eine Pluripotenz-assoziierte Funktion angenommen, denn Pcgf6 ist das einzige Pcgf Paralog, das eine erh{\"o}hte Expression in murinen ESCs aufweist, die jedoch im Verlauf der ESC-Differenzierung absinkt. Außerdem zeigen murine Pcgf6 KD ESCs eine verminderte Expression der Pluripotenzgene Oct4, Sox2 und Nanog, eine De-Repression mesodermaler und Testes-spezifischer Gene als auch eine erh{\"o}hte Tendenz zur h{\"a}matopoetischen Differenzierung. Wie genau Pcgf6 an der Regulation dieser Prozesse in murinen ESCs beteiligt ist, ist nicht bekannt. In der hier vorliegenden Dissertation wurde die Funktion von Pcgf6 in der murinen iPS Reprogrammierung untersucht. Da bereits f{\"u}r Pcgf4 eine Rolle in der Reprogrammierung somatischer Zellen gezeigt wurde und Pcgf6 eine erh{\"o}hte Expression in ESCs aufweist, wurde auch f{\"u}r Pcgf6 eine Funktion in der iPS Reprogrammierung angenommen. Zun{\"a}chst konnte in dieser Arbeit gezeigt werden, dass Pcgf6 w{\"a}hrend der iPS Reprogrammierung verst{\"a}rkt exprimiert wird und in iPS Zellen eine ESC-{\"a}hnliche Expression aufweist. Dar{\"u}ber hinaus konnte Pcgf6 in Kombination mit Oct4, Klf4 und c-Myc spezifisch den Transkriptionsfaktor Sox2 in der iPS Reprogrammierung ersetzen. Zudem wurden f{\"u}r OPKM-induzierte iPS Zellen charakteristische Eigenschaften pluripotenter Zellen nachgewiesen. Außerdem konnte eine Rolle von Pcgf6 als Enhancer-Faktor f{\"u}r die iPS Reprogrammierung ausgeschlossen werden, da die {\"U}berexpression von Pcgf6 zusammen mit den OSKM Faktoren keine additiven Effekte auf die Reprogrammierungseffizienz erzielte. Im Gegensatz dazu f{\"u}hrte der Knockdown (KD) von Pcgf6 in embryonalen Mausfibroblasten (MEFs) zu verminderten Effizienzen nach OSKM Reprogrammierung. Dar{\"u}ber hinaus handelte es sich bei der Mehrheit der AP+ Kolonien, die unter Pcgf6 KD Konditionen entstanden, um partiell-reprogrammierte iPS Zellen. Zusammengefasst zeigen die Ergebnisse der hier vorliegenden Arbeit, dass Pcgf6 ein neuer und essentieller Faktor der iPS Reprogrammierung ist, der in Kombination mit Oct4, Klf4 und c-Myc spezifisch den Transkriptionsfaktor Sox2 ersetzen kann.}, subject = {Stammzelle}, language = {de} }