TY - THES A1 - Dippacher, Sonja T1 - Morphologische und molekularbiologische Untersuchungen zur Bedeutung der Serin-Threonin-Proteinkinase SRPK79D in Drosophila melanogaster T1 - Morphological and molecular biological investigations on the role of serine threonine kinase SRPK779D in Drosophila melanogaster N2 - Die intakte Signalübertragung im animalischen Nervensystem erfordert eine an richtiger Stelle ausgebildete funktionsfähige Synapse zwischen zwei Nervenzellen bzw. zwischen Nerv und Muskel. In der vorliegenden Arbeit wurde eine Mutante von Drosophila melanogaster untersucht, bei der es zu Veränderungen der Verteilung eines wichtigen Organisationsproteins der synaptischen aktiven Zone kommt. Ein wichtiges Ergebnis der Untersuchungen ist die Beobachtung, dass es in der Mutante zu einer ektopen Ausbildung von Elementen aktiver Zonen in Axonen kommt. In den Arbeitsgruppen von E. Buchner und S. Sigrist ist bereits das Protein Bruchpilot (BRP) charakterisiert worden, das Bestandteil der präsynaptischen Ribbons, bei Drosophila als T-bars bezeichnet, ist. Bei der Suche nach Interaktionspartnern von BRP, ist eine Serin-Arginin-Protein spezifische Kinase SRPK79D entdeckt worden, die offenbar an der Regulation des Aufbaus der Tbars beteiligt ist (Nieratschker et al., 2009). Es gibt vier verschiedene Isoformen der Kinase. Werden nur zwei Isoformen der Kinase (SRPK79D-RB und -RE) exprimiert bzw. das Gen der Kinase komplett ausgeschaltet, findet man Ansammlungen von BRP als immunreaktive Aggregate in der Immunfluoreszenz- Färbung von larvalen Motoneuron-Axonen (Nieratschker, 2008). Es ist unser übergeordnetes Ziel, die Funktion und den molekularen Signalweg der Kinase SRPK79D zu entschlüsseln. Ein Ziel der vorliegenden Arbeit war es, PB-Protein in Reinform für eine Affinitätsreinigung eines PB-Antikörpers zu gewinnen, um in nachfolgenden Untersuchungen die Lokalisation dieser Kinase-Isoform zu untersuchen. Die Proteinreinigung war erfolgreich, aber es gelang nicht, eine für eine Affinitätsreinigung ausreichende Menge des Proteins zu isolieren. Ein weiterer Versuch, Lokalisationsuntersuchungen zur Expression der Kinase in Drosophila- Embryonen durchzuführen, war ebenfalls nicht erfolgreich. Obwohl die Herstellung einer für die SRPK79D mRNA spezifischen RNA Sonde für die in-Situ-Hybridisierung gelang, war die Sensitivität dieser Sonde nicht hoch genug, um die Lokalisation vornehmen zu können. Eindeutige und aufschlussreiche Ergebnisse dagegen ergab die Untersuchung der Ultrastruktur der BRP-Ansammlungen in den larvalen Motornerven. Als deren Korrelat fanden sich elektronenmikroskopisch charakteristische Ansammlungen elektronendichter intraaxonaler Strukturen, deren Form Ähnlichkeiten zu T-bars aufwies und die von Vesikeln umgeben waren. Die elektronendichten Strukturen zeigten zahlreiche Formvariationen, die wie Ansammlungen von T-bars nebeneinander bzw. „miteinander verklebte“ T-bars oder wie zerstörte T-bars aussahen. In einer nachfolgenden Studie wurde durch eine immun-elektronenmikroskopische Untersuchung gezeigt, dass diese Strukturen in der Tat BRP enthalten (Nieratschker et al., 2009). Ergebnis der Untersuchungen der vorliegenden Arbeit war der Nachweis, dass prinzipiell ähnliche Aggregate auch im Wildtyp gelegentlich gefunden werden, dass sie aber in Mutanten signifikant häufiger vorkommen und auch einen signifikant höheren Durchmesser aufweisen. Doppelimmunreaktionen mit Antikörpern, die den C- bzw. N-terminalen Bereich von BRP erkennen, belegten darüber hinaus, dass in den Aggregaten das vollständige BRP-Protein vorliegt. Angeregt durch die Ultrastrukturbefunde von mit den elektronendichten Strukturen in den Aggregaten assoziierten Vesikeln wurde in weiteren Doppelimmunreaktionen untersucht, ob ein typisches Protein synaptischer Vesikel neuromuskulärer Synapsen in Drosophila, der vesikuläre Glutamattransporter (DVGlut), in den BRP-Ansammlungen nachweisbar ist. Während Kolokalisation von BRP und DVGlut in aktiven Zonen präsynaptischer Boutons nachgewiesen werden konnte, war der Vesikelmarker in BRP-Aggregaten nicht kolokalisiert. Die Ergebnisse belegen, dass die Kinase SRPK79D für die Vermeidung einer ektopen Bildung von BRP-enthaltenden, elektronenmikroskopisch atypischen aktiven Zonen ähnelnden Strukturen in larvalen Motoneuronaxonen notwendig ist. Die in diesen Aggregaten regelmäßig zu beobachtenden Vesikel ähneln morphologisch synaptischen Vesikeln, besitzen aber keine dafür typischen Vesikelmarker. N2 - Intact signal transmission in an animal’s nervous system requires a properly localized and functional synapse between two neurons or between neuron and muscle. This dissertation is part of the investigation of a Drosophila melanogaster mutant which displays alterations in the distribution of a synaptic active zone protein. An important result of the present study is the documentation of an ectopic formation of active zone structural elements in this mutant. Analyses carried out in the laboratories of E. Buchner and S. Sigrist contributed to the characterization of the protein Bruchpilot (BRP), a constituent of the T-bar, the characteristic presynaptic ribbon in Drosophila. Searching for interaction partners of BRP, a serine-arginine-protein specific kinase was identified that apparently regulates T-bar assembly (Nieratschker et al., 2009). There are four kinase isoforms. Knocking out two of these isoforms (SRPK79D-RB and -RE) results in accumulations of BRP-immunoreactive aggregates in the larval ventral nerves (Nieratschker, 2008). Further studies were designed to identify the function and molecular signalling pathways of the kinase SRPK79D. One objective of the present experiments was to produce purified PB-protein in order to enable affinity-purification of an antibody against this isoform of the kinase for subsequent specific immunohistochemical localization analyses. Although production of the antigen was successful, the amount of protein produced was too low to allow efficient affinity purification. An attempt to show the expression pattern of the kinase in Drosophila embryos with in-situ hybridization resulted in production of a SRPK79D specific RNAprobe, however, the probe sensitivity was not high enough to yield conclusive results for mRNA localization. Ultrastructural analyses of the BRP-ir aggregates in the larval ventral nerves, on the other hand, yielded definite and conclusive results. These aggregates corresponded to extensive intraaxonal electron-dense, ribbon-like structures surrounded by vesicles. These electron-dense structures were differently shaped and resembled accumulations of regularly shaped, clotted or dysmorphic T-bars, which in subsequent immuno-electronmicroscopic analyses carried out by another investigator were proven to contain BRP (Nieratschker et al., 2009). An important result of the present study was the observation that similar intraaxonal aggregates were occasionally also present in wild type nerves, however, the aggregates found in the mutants were significantly more frequent and of significantly larger size than those observed in wild-type larvae. Moreover, double-immunostaining using BRP-antibodies recognizing specifically the C- and the N-terminal part of the protein, respectively, provided evidence that the complete BRP protein is localized in the aggregates. Since electron microscopy had showed that numerous vesicles were associated with the electron dense aggregates, we tested whether the vesicular glutamate transporter (DVGlut), a marker protein for synaptic vesicles of motoneurons in Drosophila, could be localized in BRP-ir aggregates. While colocalization of BRP and DVGlut was observed at the presynaptic active zones, no colocalization of the synaptic vesicle marker was observed in the BRP-ir aggregates in the larval nerves. In conclusion, the results provide evidence that the kinase SRPK79D is required for the prevention of ectopic formation of BRP-containing ribbon-like structures in larval ventral nerves. These structures include vesicles resembling synaptic vesicles, which however do not display immunoreactivity for a typical synaptic vesicle marker protein. KW - Bruchpilot KW - BRP KW - Serin-Threonin-Kinase KW - SR-Protein Kinase KW - aktive Zone KW - Cytomatrix der aktiven Zone KW - Elektronenmikroskopie KW - Ultrastruktur KW - Bruchpilot KW - SR-Protein Kinase KW - aktive Zone KW - Cytomatrix der aktiven Zone KW - Ultrastruktur KW - Bruchpilot KW - synaptic active zone cytomatrix KW - SR protein kinase KW - ultrastructure KW - electron microscopy Y1 - 2011 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-70937 ER - TY - JOUR A1 - Franke, Werner W. A1 - Scheer, Ulrich A1 - Trendelenburg, Michael F. A1 - Spring, Herbert A1 - Zentgraf, Hanswalter T1 - Absence of nucleosomes in transcriptionally active chromatin N2 - The ultrastructure of twO kinds of transcription ally active chromatin, the lampbrush chromosome loops and the nucleoli from amphibian oocytes and primary nuclei of the green alga Acetabularia, has been examined after manual isolation and dispersion in low salt media of slightly alkaline pH using various electron microscopic staining techniques (positive staining, metal shadowing, negative staining, preparation on positively charged films, etc.) and compared with the appearance of chromatin from various somatic cells (hen erythrocytes, rat hepatocytes, ClIltured murine sarcoma cells) prepared in parallel. While typical nucleosomes were revealed with all the techniques for chromatin from the latter three cell system, no nucleosomes were identified in either the lampbrush chromosome structures or the nucleolar chromatin. Nucleosomal arrays were absent not only in maximally fibril-covered matrix units but also in fibril-free regions between transcriptional complexes, including the apparent spacer intercepts between different transcriptional units. Moreover, comparisons of the length of the repeating units of rDNA in the transcribed state with those determined in the isolated rDNA and with the lengths of the first stable product of rDNA transcription, the pre-rRNA, demonstrated that the transcribed rDNA was not significantly shortened and/or condensed but rather extended in the transcriptional units. Distinct granules of about nucleosomal size which were sometimes found in apparent spacer regions as well as within matrix units of reduced fibril density were shown not to represent nucleosomes since their number per spacer unit was not inversely correlated with the length of the specific unit and also on the basis of their resistance to treatment with the detergent Sarkosyl NL-30. It is possible to structurally distinguish between transcriptionally active chromatin in which the DNA is extended in a non-nucleosomal form of chromatin and condensed, inactive chromatin within the typical nucleosomal package. The characteristic extended structure of transcriptionally active chromatin is found not only in the transcribed genes but also in non-transcribed regions within or between ("spacer") transcriptional units as well as in transcriptional units that are untranscribed amidst transcribed ones and/or have been inactivated for relatively short time. It is hypothesized that activation of transcription involves a transition from a nucleosomal to an extended chromatin organisation and that this structural transition is not specific for single "activated" genes but may involve larger chromatin regions, including adjacent untranscribed intercepts. KW - Cytologie KW - Chromatin structure KW - nucleosomes KW - transcription KW - electron microscopy Y1 - 1976 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-40646 ER - TY - JOUR A1 - Spring, Herbert A1 - Trendelenbrug, Michael F. A1 - Scheer, Ulrich A1 - Franke, Werner W. A1 - Herth, Werner T1 - Structural and biochemical studies of the primary nucleus of two green algal species, Acetabularia mediterranea and Acetabularia major N2 - Primary (giant) nuclei of the green algae Acetabularia mediterranea and A. major were studied by light and electron microscopy using in situ fixed material as well as manually isolated nuclear components. In addition, cytochemical reactions of nuclear structures and biochemical determinations of nuclear and cytoplasmic RNA and of genome DNA content were performed. The data obtained and the structures observed are interpreted as demonstralions of transcriptional activities of different gene classes. The most prominent class is the nucleolar cistrons of precursors of ribosomal RNA which occur highly repeated in clusters in the form of regularly alternating intercepts on deoxyribonucleoprotein axes of transcribed rDNA, the fibril-covered matrix units, and the fibril-free "spacer" segments. A description and a classification of the various structural complexes which seem to represent transcriptional activities is given. Quantitative evaluations of these arrangements are presented. The morphology and the dimensions of such structures are compared with the RNA molecular weight determinations and with the corresponding data reported from various animal cell systems. It is suggested that the formation of the giant nucleus is correlated with, and probably due to, an enormous amplification of transcriptionally active rDNA and packing of the extrachromosomal copies into the large nucleolar aggregate bodies. KW - Cytologie KW - Nucleolus KW - electron microscopy KW - Acetabularia KW - transcription KW - gene activity KW - ribosomes Y1 - 1974 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-40600 ER - TY - JOUR A1 - Scheer, Ulrich T1 - Structure of lampbrush chromosome loops during different states of transcriptional activity as visualized in the presence of physiological salt concentrations N2 - Lampbrush chromosomes of amphibian oocytes were isolated in the presence of near-physiological salt concentrations, to preserve their native state, and studied by electron microscopy of ultrathin s~dions. The transcriptional state of the lampbrush chromosomes was experimentally modulated by incubating the oocytes for various time periods in medium containing actinomycin D. The observations show that the structure of the lateral loops changes rapidly in response to alterations in transcriptional activity. During decreasing transcriptional activity and reduced packing density of transcripts, the chromatin axis first condensed into nucleosomes and then into an approximately 30 nm thick higher order chromatin fiber. Packaging of the loop axis into supranucleosomal structures may contribute to the foreshortening and retraction of the loops observed during inhibition of transcription and in later stages of meiotic prophase. The increasing packing density of the DNA during the retraction process of the loops could also be visualized by immunofluorescence microscopy using antibodies to DNA. The dependence of the loop chromatin structure on transcriptional activity is discussed in relation to current views of mechanisms involved in gene activation. KW - lampbrush chromosomes KW - chromatin structure KW - electron microscopy KW - immunofluorescence microscopy KW - DNA antibodies Y1 - 1987 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-39304 ER -