3 resultados para Serjania marginata casar
em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha
Resumo:
Zusammenfassung Die komplexe Lebensgemeinschaft des Termitendarms fasziniert die Biologen schon seit langem. Es ist bekannt, dass Termiten ihre Nahrung mit Hilfe von symbiontischen Bakterien und Protozoen verdauen können. Ohne ihre Symbionten würden sie verhungern. Das Zusammenspiel von Termiten und darmbewohnenden Mikroorganismen, zu denen Flagellaten, Bakterien, Archaebakterien und Hefen gehören, ist trotz moderner Untersuchungstechniken keineswegs vollständig aufgeklärt. In der vorliegenden Arbeit wurden:1) Einige kultivierte und nicht-kultivierte Bakterien charakterisiert, die an der Darmwand von Mastotermes darwiniensis lokalisiert sind. Die Darmwandbakterien wurden entweder nach Kultivierung oder direkt von der Darmwand für die Analyse der 16S rDNA verwendet. Die Sequenzierung erfolgte entweder nach DGGE oder nach Klonierung der PCR-Produkte. Die identifizierten Bakterien kann man in 7 Gruppen teilen:1: Gram-positive Bakterien mit hohem GC-Gehalt 2: Gram-positive Bakterien mit niedrigem GC-Gehalt 3: Fusobakterien-ähnliche Bakterien 4: ß-Proteobakterien5: Verrucomicrobien6: Bacteroides-ähnliche Bakterien7: Methanogene Bakterien 2) Aufgrund des Vorhandenseins des Coenzyms Deazaflavin-Derivats F420, kann man Methanbakterien mikroskopisch identifizieren und von anderen Bakterien unterscheiden, weil Methanbakterien im kurzwelligen Blaulicht blaugrün aufleuchten. Untersuchungen haben gezeigt, dass mindestens zwei Morphotypen von Methanbakterien an der Darmwand von M. darwiniensis vorkommen. Sie wurden auch über 16S rDNA Sequenzanalyse identifiziert. Ihre Lokalisierung an der Darmwand wurde durch Fluoreszenz-in-situ-Hybridsierung mit spezifischen Oligonukleotiden nachgewiesen. Schließlich konnte gezeigt werden, dass pro Gramm Termite 2,6 µg Methan pro Stunde produziert werden. 3) Bis jetzt wurden aus verschiedenen Termiten sulfatreduzierende Bakterien (SRB) isoliert. Deshalb wurde in dieser Arbeit die Verbreitung der SRB in verschiedenen Insekten untersucht. Insgesamt wurden zwei Sequenzen aus Libellenlarven (FSBO4 und FSBRO2), drei Sequenzen aus Zuckmückenlarven (FSCI, FSCII und FSC4), eine Sequenz aus Rosenkäfern (FSPa4-5) und ebenfalls eine Sequenz aus Eintagsfliegenlarven (FSB6) identifiziert. Alle identifizierten Bakterien ausser Klon FSB6, gehören zur Gattung Desulfovibrio. Klon FSB6 gehört zu der Gram-positiven Gattung Desulfotomaculum.Außerdem wurde die Sulfatreduktionsrate der SRB im Darm von Rosenkäfern (Pachnoda marginata), Holz- bzw. Sulfat-gefütterten Termiten (Mastotermes darwiniensis) und einer Reinkultur von Desulfovibrio intestinalis gemessen. Dabei konnte gezeigt werden, dass die Aktivität pro Zelle in Holz-gefütterten Termite am höchsten ist (4,9 nmol/107 Bakterien x h).
Resumo:
Aim: Previous studies revealed that diversification events in the western clade of the alpine Primula sect. Auricula were concentrated in the Quaternary cold periods. This implies that allopatric speciation in isolated glacial refugia was the most common mode of speciation. In the first part of the present dissertation, this hypothesis is further investigated by locating refugial areas of two sister species, Primula marginata & P. latifolia during the last glacial maximum, 21,000 years ago. In the second part, the glacial and postglacial history of P. hirsuta and P. daonensis is investigated. Location: European Alps. Methods: Glacial refugia were located using species distribution models, which are projected to last glacial maximum climate. These refugia are validated with geographic distribution patterns of intra-specific genetic diversity, rarity and variation. Results 1) Speciation: Glacial refugia of the sister taxa Primula marginata and P. latifolia were largely separated, only a small overlapping zone at the southern margin of the former glacier in the Maritime Alps exists. This overlapping zone is too small to indicate sympatric speciation. The largely separated glacial distribution of both species rather confirms our hypothesis of allopatric speciation in isolated glacial refugia. Results 2) Glacial and postglacial history: Surprizingly, the modelled potential refugia of three out of four Primula species are situated within the former ice-shield, except for P. marginata. This indicates that peripheral and central nunataks played an important role for the glacial survival in P. latifolia, P. hirsuta and P. daonensis, while peripheral refugia outside the maximum extend of the glacier were crucial in P. marginata. In P. hirsuta and P. latifolia SDMs allowed to exclude several hypothetical refugial areas that overlap with today’s distribution as potential refugia for the species. In P. marginata, hypothetical refugial areas at the periphery of the former ice-shield that overlap with today’s distribution were confirmed by the models. The results from the SDMs are confirmed by population genetic patterns in three out of four species. P. daonensis represents an exception, where population genetic data contradict the SDMs. Main conclusions: Species distribution models provide species specific scenarios of glacial distribution and postglacial re-colonization, which can be validated using population genetic analyses. This combined approach is useful and helps to understand the complex processes that have lead to the genetic and floristic patterns of biodiversity that is found today in the Alps.
Resumo:
The central point of this work is the investigation of neurogenesis in chelicerates and myriapods. By comparing decisive mechanisms in neurogenesis in the four arthropod groups (Chelicerata, Crustacea, Insecta, Myriapoda) I was able to show which of these mechanisms are conserved and which developmental modules have diverged. Thereby two processes of embryonic development of the central nervous system were brought into focus. On the one hand I studied early neurogenesis in the ventral nerve cord of the spiders Cupiennius salei and Achaearanea tepidariorum and the millipede Glomeris marginata and on the other hand the development of the brain in Cupiennius salei.rnWhile the nervous system of insects and crustaceans is formed by the progeny of single neural stem cells (neuroblasts), in chelicerates and myriapods whole groups of cells adopt the neural cell fate and give rise to the ventral nerve cord after their invagination. The detailed comparison of the positions and the number of the neural precursor groups within the neuromeres in chelicerates and myriapods showed that the pattern is almost identical which suggests that the neural precursors groups in these arthropod groups are homologous. This pattern is also very similar to the neuroblast pattern in insects. This raises the question if the mechanisms that confer regional identity to the neural precursors is conserved in arthropods although the mode of neural precursor formation is different. The analysis of the functions and expression patterns of genes which are known to be involved in this mechanism in Drosophila melanogaster showed that neural patterning is highly conserved in arthropods. But I also discovered differences in early neurogenesis which reflect modifications and adaptations in the development of the nervous systems in the different arthropod groups.rnThe embryonic development of the brain in chelicerates which was investigated for the first time in this work shows similarities but also some modifications to insects. In vertebrates and arthropods the adult brain is composed of distinct centres with different functions. Investigating how these centres, which are organised in smaller compartments, develop during embryogenesis was part of this work. By tracing the morphogenetic movements and analysing marker gene expressions I could show the formation of the visual brain centres from the single-layered precheliceral neuroectoderm. The optic ganglia, the mushroom bodies and the arcuate body (central body) are formed by large invaginations in the peripheral precheliceral neuroectoderm. This epithelium itself contains neural precursor groups which are assigned to the respective centres and thereby build the three-dimensional optical centres. The single neural precursor groups are distinguishable during this process leading to the assumption that they carry positional information which might subdivide the individual brain centres into smaller functional compartments.rn