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The mammary gland of mice serves as a model system for studying differentiation in an adult animal. With the beginning of pregnancy the mammary epithelial cells undergo functional differentiation to produce milk for nourishment of the young. The transcription factor STAT5 mediates the cytokine-induced induction of the milk proteins during pregnancy and lactation in response to the lactogenic hormone prolactin. In addition to transcription factors that mediate transcription of their target genes by recruitment of the general transcription machinery to the DNA-regulator regions, specific post-translational modifications on the N-terminal tails of histones also influence expression. These histone modifications can affect chromatin structure, which is a main control barrier to transcription, by directly altering accessibility of the chromatin and by providing binding surfaces for protein complexes that can further modulate chromatin structure and regulate transcription. In this work N-terminal histone modification marks that associate with open, permissive and repressed chromatin where investigated in different regions of two milk protein genes during mammary gland development. Using the chromatin-immunoprecipitation (ChIP) assays increased acetylation of histone H3 and H4 at the 5’ region, promoter and transcribed regions of β-casein and whey acidic protein (WAP) gene were observed during pregnancy and lactation when these genes are expressed. The presence of these histone marks, which are associated with a relaxed chromatin structure, correlates with the recruitment of STAT5A and STAT5B to the promoter containing regulatory regions as well as the detection of the phosphorylated RNA polymerase II in the transcribed gene region. Both di- and tri-methylation of histone H3 lysine 4, that mark permissive and active chromatin respectively, were enriched in tissue from pregnant and lactating mice. In comparison tri-methylation of histone H3 lysine 27, a mark associated with repressed chromatin, could be observed during all stages of mammary gland tissue investigated, but appears slightly elevated in the tissue from virgin mice when β-casein and WAP are not expressed. Together these results illustrate that the expression of the two milk proteins genes at distinct stages of mammary gland differentiation correlate with specific changes in histone modifications. In mammary gland tissue STAT5A is important for the mammary gland epithelial cell differentiation and survival during lactation. Yet many genomic target regions that STAT5A actually bind and which are involved in regulation of gene expression during lactation still remain unknown. Therefore, the second part of this thesis was focused on the identification of novel STAT5-binding sites that are differentiation specifically bound by STAT5A in mammary gland tissue during lactation. In summary, the results demonstrate that the ChIP cloning method was employed successfully for the cloning of a STAT5A library and the identification of new STAT5 targets in mammary gland tissue from lactating mice. Nine of the newly identified STAT5-binding targets were verified to differentiation specifically bind STAT5A and STAT5B in vivo during pregnancy and lactation. Even though the selection of the tested clones was biased towards STAT5-binding sites near or at known genes and for multiple STAT5 binding sites, only one out of the nine validated STAT5-binding regions is located in a traditional defined proximal promoter. Except for two STAT5-binding regions, which are located at least 10 kb from the next annotated known gene, six are located in the intronic regions of annotated mRNA or EST transcripts. Three, out of four verified STAT5-binding regions tested in reporter gene assays for functionality, display the ability to drive reporter gene activity in a STAT5 dependent manner. This transcriptional activity is due to the STAT5-binding sites within the cloned regions as determined by mutational analysis. Of special interest is a STAT5-binding region that contains one STAT5 and three STAT-like sites within a 339 bp region that is evolutionary conserved by approximately 80% between the mouse and human genome. This STAT5-binding region lies about 62 kb 5 prime of the nuclear factor I/B gene. The expression of the NFI/B mRNA transcript correlates with the in vivo association of STAT5A to the conserved region during the mammary gland differentiation. Together, these results suggest that this STAT5-binding might be a cis-regulatory region that potentially mediates STAT5 induced NFI/B gene expression in mice during lactation.
I. Untersuchung der Transformationsmaschinerie in Acinetobacter baylyi ADP1 durch Analyse der subzellulären Lokalisation von Kompetenzproteinen, Mutantenstudien und In-vivo-Detektion des DNA-Translokators in der lebenden Zelle. 1. Durch Komplementationsstudien konnte gezeigt werden, dass die Markerinsertionen in den Mutanten T843 (comM::nptII) und T840 (comL::nptII) keine polaren Effekte auf stromabwärts gelegene Gene des comM-Q Clusters haben. Hieraus kann geschlossen werden, dass ComM und ComL essentiell sind für die natürliche Transformation. 2. Mit Hilfe der sacB-nptII Selektionskassette wurde eine markerlose und somit nichtpolare Mutation in comN erzeugt. Diese Mutante war nicht mehr transformierbar, woraus eindeutig geschlossen werden kann, dass ComN ebenfalls essentiell ist für die natürliche Transformation. 3. Western-Blot-Analysen subzellulärer Fraktionen von A. baylyi ergaben, dass die Kompetenzproteine ComL und ComN in der inneren Membran lokalisiert sind. 4. Mutantenstudien führten zu dem Schluss, dass ComL in der comM-, der comN- und der comO-Mutante weder im Rohextrakt, noch in subzellulären Membranfraktionen nachzuweisen ist. Auch ComN ist in der comM- und der comO-Mutante weder im Rohextrakt, noch in subzellulären Membranfraktionen nachzuweisen. Daraus lässt sich folgern, dass die Proteine entweder die Expression der entsprechende Gene beeinflussen oder dass durch Interaktionen von ComM, ComN, ComL und ComO die Stabilität der Proteine erhöht wird. 5. Die Kompetenzproteine ComEA und ComP wurden translational mit GFPuv fusioniert (C-terminale Fusion). Die Expression der Gene comEA-gfp und comP-gfp, die auf dem Plasmid pRK415 unter der Kontrolle eines lac-Promotors vorlagen, führte nach Induktion mit IPTG zur Detektion der Fusionsproteine in A. baylyi. Über Komplementationsstudien konnte nachgewiesen werden, dass die ComEA-GFP- und ComP-GFP-Fusionsproteine funktionsfähig sind. 6. Fluoreszenzmikroskopische Analysen zeigten, dass die Verteilung von ComEA und ComP in der Zellmembran von A. baylyi abhängig ist von der Wachstumsphase und der Kompetenz: Während die Kompetenzproteine in der lag-Phase (zum Zeitpunkt maximaler Kompetenzinduktion) gleichmäßig über die gesamte Membran verteilt sind, finden sie sich im Laufe der exponentiellen Phase (mit abnehmender Kompetenz) in einer abnehmenden Zahl von separaten Foci, bis sie schließlich in der späten stationären Phase (zum Zeitpunkt minimaler Kompetenz) nur noch in 1 - 2 distinkten Foci lokalisiert sind. II. DNA-Transfer in marinen Bakterien 1. Vor der Auswahl geeigneter Selektionsmarker für DNA-Transferstudien in marinen Bakterien wurde eine Analyse der spontanen Resistenzen mariner Bakterien durchgeführt. Diese Analysen ergaben, dass 72 % von 116 marinen Isolaten sensitiv gegenüber einer Kombination von je 100 μg Kanamycin und 100 μg Streptomycin pro ml Medium sind. 2. Es wurde ein Transformationsprotokoll für das Screening mariner Bakterien auf die Fähigkeit zur DNA-Aufnahme durch natürliche Transformation etabliert. Es wurden drei Vektoren pM1, pM2 und pM3 konstruiert, die eine Übertragung und stabile Insertion von Antibiotikaresistenz-Markergenen und dem zur Detektion eingesetzten gfp-Gen durch homologe Rekombination flankierender rDNA-Bereiche mit dem rDNA-Operon des Rezipienten ermöglichten. 3. Unter Einsatz dieser Vektoren wurde die Transformierbarkeit von 83 marinen Isolaten überprüft. Diese Analysen führten zur Identifizierung von vier transformierbaren Isolaten. Bei diesen Isolaten handelt es sich um Marinobacter sp., K. rosea, P. phosphoreum und P. marincola Stämme.
Der menschliche Körper ist permanent verschiedenen Mikroorganismen aus der Umwelt ausgesetzt. Dringen diese in den Körper ein, werden sie oder ihre Produkte vom Körper als „fremd“ erkannt und abgewehrt. Dies geschieht über zwei unterschiedliche immunologische Systeme, dem schnell und zuerst reagierenden angeborenen und einem langsamer reagierenden erworbenen Immunsystem. Vom angeborenen Immunsystem erkannt werden so genannte pathogen associated molecular pattern, zu denen auch die CpG-DNA zählt, welche als Ligand des TLR9 identifiziert wurde. CpG- und Non-CpG-ODN sind bislang hauptsächlich an Zellen des Immunsystems erforscht und bewirken dort eine Immunaktivierung und einen pro-inflammatorischen Effekt, der mit dem Ausschütten inflammatorischer Zytokine einhergeht. Es konnte jedoch gezeigt werden, dass sowohl CpG- als auch Non-CpGPTO-ODN an humanen Keratinozyten eine IL-8-Suppression bewirken. Diese IL-8-supprimierende Wirkung wird nicht über den beschriebenen Rezeptor für CpG-DNA TLR9 entfaltet, sondern vermutlich mittels direkter physikalischer Interaktion mit IL-8 selbst. Durch diese Maskierung des IL-8 kann das Chemokin im ELISA nicht mehr detektiert werden. Des Weiteren gelang im Rahmen der vorliegenden Promotionsarbeit der funktionelle Nachweis, dass auch in vivo (im Kontaktdermatitis-Mausmodell) bei topischer Applikation eine anti-inflammatorische Wirkung durch eine Non-CpG-ODN-haltige Salbe erzielt werden kann. Auf intakter Haut, welche permanent mit einer eigenen Mikroflora besiedelt und somit auch permanent mit bakterieller DNA konfrontiert ist, lösen CpG- und Non-CpG-ODN eine Immunsuppression aus, vermutlich als Schutz vor überschießenden Entzündungen der Haut. Außerdem konnte anhand konfokaler Laser-Scan Mikroskopie gezeigt werden, dass die verwendeten ODN längen- und sequenzspezifisch in Keratinozyten aufgenommen und innerhalb der Zellen transportiert werden. Hier zeigte sich, dass Sequenzen, welche bei der IL-8-Suppression nur geringe oder keine Effekte zeigen, direkt in den Nukleus oder die Nukleoli transportiert werden, wo sie vermutlich an nukleare Bestandteile gebunden oder abgebaut werden. Untersuchungen zum Penetrationsverhalten der ODN an Multilayern zeigten, dass die ODN auch hier längenabhängig in tiefere viable Schichten gelangen. Die Untersuchungen zum Penetrations- und Aufnahme-Verhalten der ODN ist für einen möglichen therapeutischen Einsatz der ODN von hohem Interesse. Im Rahmen dieser Promotionsarbeit gelang zudem erstmals der Nachweis, dass PTO-ODN in der Lage sind, die zum angeborenen Immunsystem zählenden anti-mikrobiell wirksamen Substanzen HbD2, HbD3 und Psoriasin zu induzieren. Diese werden in der Haut synthetisiert und schützen gegen eine ganze Reihe von Mikroorganismen. Anhand Promoter-Aktivitätsstudien konnte demonstriert werden, dass die verwendeten ODN eine Aktivierung von NF K B vermitteln, welche in direktem Zusammenhang mit einer HbD2-Induktion steht. Zusammenfassend lässt sich sagen, dass CpG- und Non-CpG-ODN zwar als "fremd" und potentiell gefährlich in intakter Haut erkannt werden, wodurch eine Induktion von anti-mikrobiell wirksamen Substanzen ausgelöst wird. Gleichzeitig findet jedoch eine IL-8-Suppression (in vitro), beziehungsweise eine anti-inflammatorische Wirkung (in vivo) statt, welche vermutlich vor überschießenden Immunreaktionen der Haut schützen sollen.
Neuronale Repräsentation intrinsischer cochleärer Signale im Colliculus inferior der Wüstenrennmaus
(2008)
Die vorliegende Arbeit untersucht die neuronale Repräsentation von cochleären Verzerrungsprodukten im auditorischen Mittelhirn der Wüstenrennmaus. Die hohe Sensitivität und die gute Frequenzauflösung des Hörorgans der Säugetiere basiert auf einer aktiven mechanischen Verstärkung der schallinduzierten Basilarmembranschwingung im Innenohr. Die äußeren Haarsinneszellen, die während des Transduktionsprozesses zyklisch ihre Länge ändern und dabei zusätzliche Schwingungsenergie in das System zurückführen, sind der zugrunde liegende Motor des aktiven cochleären Verstärkers. Die stark nichtlinearen Eigenschaften dieses Verstärkers führen allerdings bei gleichzeitiger Verstärkung mehrerer Frequenzkomponenten zur Generierung von Kombinationsschwingungen, welche im Ursprungssignal nicht vorhanden sind. Wird das Ohr beispielsweise durch zwei Töne mit den Frequenzen f1 und f2 stimuliert (f1<f2), so entstehen verschiedene Kombinationsschwingungen, deren prominenteste das quadratische (f2-f1) und das cubische (2 f1-f2) Verzerrungsprodukt sind. Diese Verzerrungen des Ursprungssignals breiten sich von ihrem Entstehungsort im Innenohr, dem Überlappungsbereich der Stimuluswanderwellen, im Flüssigkeitsraum der Cochlea aus und werden über das Mittelohr in den Gehörgang übertragen. Im Gehörgang sind sie mit Hilfe eines sensitiven Mikrophons als otoakustische Emissionen (DPOAE - distortion product otoacoustic emissions) messbar. Zusätzlich bilden sie an ihrem Resonanzort auf der Basilarmembran, vergleichbar mit einem externen Stimuluston gleicher Frequenz, eine eigene Wanderwelle aus und aktivieren den Transduktionsprozess. Die neuronalen Korrelate der cochleären Verzerrungsprodukte sind auf verschiedenen Stationen der Hörbahn messbar und cochleäre Verzerrungsprodukte können als separate Töne wahrgenommen werden. In der vorliegenden Arbeit wurden die neuronalen Korrelate und otoakustischen Emissionen von cochleären Verzerrungsprodukten erstmals simultan bestimmt. Durch den direkten Vergleich der neuronalen Aktivität mit der peripheren Emissionsmessung sollen eventuelle zentralnervöse Veränderungen der Repräsentation der cochleären Verzerrungsprodukte untersucht werden. Dazu wurde die elektrische Aktivität von 91 Neuronen des Colliculus inferior der Wüstenrennmaus während der Stimulation durch zwei hochfrequente Stimulustöne gemessen. Die Frequenzen der Stimulustöne waren so gewählt, dass die Frequenz eines, durch sie evozierten Verzerrungsproduktes, mit der charakteristischen Frequenz des jeweiligen Neurons übereinstimmte. In 95 % aller Messungen konnte eine robuste neuronale Aktivität während Zweitonstimulation gemessen werden, die sich auf die Stimulation durch ein spezifisches cochleäres Verzerrungsprodukt zurückführen lässt. Bei einem Teil der Versuche wurden die Verzerrungsprodukte durch direkte intracochleäre Auslöschung mit einem dritten Tonstimulus eindeutig als Quelle der neuronalen Aktivität bestätigt. Für Verzerrungsproduktfrequenzen oberhalb 1,3 kHz lassen sich die Antworten der Neurone im schwellennahen Bereich gut mit den simultan im Gehörgang bestimmten DPOAE-Pegeln erklären, was einen engen Zusammenhang zwischen intracochleärem Verzerrungsproduktpegel und DPOAE-Pegel nahe legt. Bei höheren Stimuluspegeln konnten die maximalen neuronalen Antworten auf den intracochleären Verzerrungsproduktstimulus signifikant von der Einzeltonantwort abweichen, wobei sowohl eine Erhöhung als auch eine Reduktion der Maximalantwort möglich war. Ein inhibitorischer bzw. verstärkender Einfluss der Stimulustöne auf die neuronale Verzerrungsproduktantwort wird als mögliche Ursache der Unterschiede diskutiert. Für Verzerrungsproduktfrequenzen unterhalb 1,3 kHz wurde ein deutlicher Unterschied zwischen dem intracochleären Verzerrungsproduktpegel und dem im Gehörgang gemessenen Emissionspegel deutlich. Ein Teil der getesteten tieffrequenten Neurone antwortete während Zweitonstimulation bereits für Stimuluspegel, die unterhalb der Reintonschwelle des Neurons lagen. Eine frequenzspezifische Verschlechterung der Mittelohrübertragungsleistung bei tiefen Frequenzen wird als mögliche Ursache für die unterschwelligen Antworten der Neurone diskutiert. Die Ergebnisse der vorliegenden Arbeit zeigen, dass cochleäre Verzerrungsprodukte einen substanziellen Anteil an der neuronalen Repräsentation von komplexen Stimuli haben können. Im Besonderen machen die vorgestellten Daten deutlich, dass die neuronalen Repräsentation der Grundfrequenz eines komplexen Klangs wesentlich von cochleären Verzerrungsprodukten beeinflusst sein kann. Dies bedeutet, dass bereits im Innenohr Tonhöheninformation extrahiert werden kann und damit die Relevanz in der Literatur diskutierter neuronaler Mechanismen zur Berechnung von Tonhöhe relativiert wird.
Reggie-1 (flotillin-2) and reggie-2 (flotillin-1) are membrane microdomain proteins which are associated with the membrane by means of acylation. They influence different cellular signaling processes, such as neuronal, T-cell and insulin signaling. Upon stimulation of the EGF receptor, reggie-1 becomes phosphorylated and undergoes tyrosine 163 dependent translocation from the plasma membrane to endosomal compartments. In addition, reggie-1 was shown to influence actindependent processes. Reggie-2 has been demonstrated to affect caveolin- and clathrin-independent endocytosis. Both proteins form homo- and hetero-oligomers, but the function of these oligomers has remained elusive. Moreover, it has not been clarified if functions of reggie-1 are also influenced by reggie-2 and vice versa. The first aim of the study was to further investigate the interplay and the heterooligomerization of reggie proteins and their functional effects. Both reggie proteins were individually depleted by means of siRNA. In different siRNA systems and various cell lines, reggie-1 depleted cells showed reduced protein amounts of reggie-1 and reggie-2, but reggie-2 knock down cells still expressed reggie-1 protein. The decrease of reggie-2 in reggie-1 depleted cells was only detected at protein but not at mRNA level. Furthermore, reggie-2 expression could be rescued by expression of siRNA resistant wild type reggie-1-EGFP constructs, but not by the soluble myristoylation mutant G2A. This mutant was also not able to associate with endogenous reggie-1 or reggie-2, which demonstrates that membrane association of reggie-1 is necessary for hetero-oligomerization. In addition, fluorescence microscopy studies and membrane fractionations showed that correct localization of overexpressed reggie-2 was dependent on co-overexpressed reggie-1. Thus, hetero-oligomerization is crucial for membrane association of reggie-2 and for its protein stability or protein expression. Moreover, the binding of reggie-2 to reggie-1 required tyrosine 163 of reggie-1 which was previously shown to be important for endosomal translocation of reggie-1. Since reggie-2 was implicated to function in clathrin- and caveolin-independent endocytosis pathways, the effect of reggie-2 depletion on reggie-1 endocytosis was investigated. Indeed, reggie-1 was dependent on reggie-2 for endosomal localization and EGF-induced endocytosis. By FRET-FLIM analysis it could be shown that reggie heterooligomers are dynamic in size or conformation upon EGF stimulation. Thus, it can be concluded that reggie proteins are interdependent in different aspects, such as protein stability or expression, membrane association and subcellular localization. In addition, these results demonstrate that the hetero-oligomers are dynamic and reggie proteins influence each other in terms of function. A further aim was the characterization of reggie-1 and reggie-2 function in actindependent processes, where so far only reggie-1 was known to play a role. Depletion of either of the proteins reduced cell migration, cell spreading and the number of focal adhesions in steady state cells. Thus, also reggie-2 affects actin-dependent processes. Further investigation of the focal adhesions during cell spreading revealed that depletion of reggie-1 displayed different effects as compared to reggie-2 knock down. Reggie-1 depleted cells had elongated cell-matrix-adhesions and showed reduced activation of FAK and ERK2. On the other hand, depletion of reggie-2 resulted in a restricted localization of focal adhesion at the periphery of the cell and decreased ERK2 phosphorylation, but it did not affect FAK autophosphorylation. Hence, reggie proteins influence the regulation of cell-matrix-adhesions differently. A link between reggie proteins and focal adhesions is the actin cross-linking protein -actinin. The interaction of -actinin with reggie-1 could be verified by means of co-immunoprecipitations and FRET-FLIM analysis. Reggie-1 binds -actinin especially in membrane ruffles and in other locations where actin remodeling takes place. Moreover, -actinin showed a different localization pattern during cell spreading in reggie-1 depleted cells, as compared to the control cells. These results provide further insights into the function of both reggie proteins. Their interplay and hetero-oligomerization was shown to be crucial for their role in endocytosis. In addition, both reggie proteins influence actin-dependent processes and differentially affect focal adhesion regulation.
The reggie protein family consists of two homologous members, reggie-1 and reggie-2, also termed flotillin-2 and flotillin-1, respectively, that are ubiquitously expressed and evolutionarily well conserved, suggesting an important but so far ill-defined function. In various cell types, both reggies have been found to be constitutively associated with lipid rafts by means of acylation modifications and oligomerization. Lipid rafts are glycosphingolipid- and cholesterol-rich membrane microdomains which have been implicated in several cellular processes including membrane transport and signal transduction through growth factor receptors. However, the molecular details of these processes are still poorly understood. With the observation that reggies colocalize with activated glycosylphosphatidylinositolanchored proteins (GPI-APs) and Fyn kinase in rafts, a role for these proteins in signaling events has been suggested. In agreement with that, we have previously shown that reggie-1 becomes multiply tyrosine phosphorylated by Src kinases in response to epidermal growth factor (EGF) stimulation, pointing to a function for reggie-1 in growth factor signaling. Furthermore, overexpression of reggie-1 enhances spreading on fibronectin substrate in a tyrosine-dependent manner, thus revealing a role for reggie-1 in regulation of actin cytoskeleton through growth factor receptors. Due to the similarity shared by reggie proteins at amino acid level and to their ability to form hetero-oligomeric complexes, the first aim of this study was to analyze the putative tyrosine phosphorylation of reggie-2 in growth factor stimulated cells. Similarly to reggie-1, reggie-2 was found to be multiply tyrosine phosphorylated by Src kinase and to exist in a molecular complex with Src, with the degree of co-immunoprecipitation dependent on the activity of Src. Recent studies from us have also shown that administration of EGF results in the endocytosis of reggie-1 from the plasma membrane into endosomes, which is in line with a proposed role for reggies in membrane trafficking processes. In order to characterize in detail the endocytic mechanism that mediates the uptake of reggie-1, the dependency of reggie-1 endocytosis on clathrin and dynamin was investigated by means of overexpressing a variant form of Eps15 or a dominant negative form of dynamin-2. In either case the translocation of reggie-1 into endosomes in response to EGF was not affected, and this, together with the results that reggie-1 colocalized with cholera toxin (CTX) but not with transferrin receptor (TfnR) during EGF signaling, indicates that reggie-1 is taken up by means of a dynaminindependent, raft-mediated pathway. These findings are very well in line with recent data showing the pathway of entry into cells of reggie-2 as a raft-mediated endocytic pathway. The endocytosis of reggie-2 in response to EGF was also analyzed in this study. Similarly to reggie-1, in growth factor stimulated cells reggie-2 underwent a translocation from the plasma membrane to endosomes where the two reggies were found to colocalize with each other, suggesting that epidermal growth factor signaling might trigger the endocytosis of reggie oligomers. In addition, colocalization with both the late endosomal marker LAMP3/CD63 and epidermal growth factor receptor (EGFR) was detected, again indicating a function for reggies in signal transduction through growth factor receptors. EGFR has been reported to localize in rafts but, although this association is thought to be functional during EGF stimulation, how segregation of EGFR into rafts modulates its endocytosis and signaling is still under debate. Since reggie oligomers have recently been suggested to define a raft subtype, a further aim of this study was to investigate whether the depletion of reggies by means of small interfering RNA could interfere with the signaling and the trafficking through EGFR. Knockdown of reggie-2 resulted in an altered tyrosine phosphorylation of EGFR in response to EGF, while the degree of ubiquitination was not affected. Less efficient phosphorylation of tyrosine residues, especially of those which are docking sites for Grb2 and Shc, led in turn to an impaired activation of p38 and ERK1/2 MAPKs. Depletion of reggie-2 did not affect the early trafficking of activated EGFRs, with receptors being endocytosed and delivered to late endosomes as efficiently as in control cells. This would be in line with the normal degree of ubiquitination observed for EGFR, as ubiquitin moieties have been proposed to represent sorting tags that ensure receptor endocytosis into early endosomes and its proper intracellular trafficking. On the contrary, after prolonged EGF stimulation, depletion of reggie-2 resulted in a decreased downregulation of both receptor-bound ligand and EGFR, and in their accumulation in intracellular vesicles, thus pointing to a role for reggie-2 in the degradative pathway. Taken all together, these data ndicate that the association of EGFR with reggie-microdomains is likely to be important for proper receptor trafficking and signaling.
Im Rahmen dieser Arbeit wurden ausgewählte 5’- und 3’-untranslatierte Regionen (UTRs) von mRNAs aus H. volcanii bestimmt. Dieses Datenset wurde verwendet um (1) haloarchaeale UTRs zu charakterisieren, (2) Konsensuselemente für die Transkrikptionsinitiation und -termination zu verifizieren und (3) den Einfluss haloarchaealer UTRs auf die Initiation und Regulation der Translation zu untersuchen. Es konnte gezeigt werden, dass alle untersuchten Transkripte nichtprozessierte 3’-UTRs mit einer durchschnittlichen Länge von 45 Nukleotiden besitzen. Darüber hinaus konnte ein putatives Transkriptionsterminationssignal bestehend aus einem pentaU-Motiv mit vorausgehender Haarnadelstruktur identifiziert werden. Die Analysen der Regionen stromaufwärts der experimentell bestimmten Transkriptionsstarts führten zur Identifizierung dreier konservierter Promotor Elemente: Der TATA-Box, dem BRE-Element und einem neuen Element an Position -10/-11. Überraschenderweise bestand die TATA-Box nur aus vier konservierten Nukleotiden. Die Untersuchung der UTRs ergab, dass die größte Anteil der haloarchaealen Transkripte keine 5’-UTR besitzt. Falls eine 5’-UTR vorhanden ist, besitzen unerwarteterweise nur 15% der 5’-UTRs aus H. volcanii eine Shine-Dalgarno-Sequenz (SD-Sequenz). Es konnte jedoch gezeigt werden, dass verschiedene native und artifizielle 5’-UTRs ohne SD-Sequenz sehr effizient in vivo translatiert werden. Außerdem hat die Sekundärstruktur der 5’-UTR und die Position struktureller Elemente offenbar einen entscheidenden Einfluss auf die Translatierbarkeit von Transkripten. Die Insertion von Strukturelementen nahe des Startkodons führte zu einer vollkommenen Repression der Translation, während die proximale Insertion des Motivs an das 5’-Ende der 5’-UTR keinen Einfluss auf die Translationsseffizienz hatte. Zusammenfassend kann sowohl der eukaryotische Scanning-Mechanismus als auch die bakterielle Initiation der Translation über die SD-Sequenz für haloarchaeale Transkripte mit 5’-UTR ohne SD-Sequenz ausgeschlossen werden. Die im Rahmen dieser Arbeit durchgeführten Untersuchungen bilden die Grundlage für weitere Untersuchungen zur Identifizierung eines entsprechenden dritten Mechanismus zur Initiation der Translation in H. volcanii. Eine aktuelle Studie zur globalen Analyse der Translationsregulation zeigte, dass der Anteil translational regulierter Gene in H. volcanii genauso hoch ist wie bei Eukaryoten (Lange et al., 2007). Um die Rolle haloarchaealer UTRs bei der Regulation der Translation zu charakterisieren, wurden die UTRs zweier ausgewählter translationsregulierter Gene untersucht. Es stellte sich heraus, dass nur die Anwesenheit beider UTRs, 5’- und 3’-UTR, zu einer Wachstumsphasen-abhängigen Regulation der Translation führt. Dabei hat die 3’-UTR allein keinen Einfluss auf die Translationseffizienz, während die 5’-UTR die Translationseffizienz in beiden Wachstumsphasen reduziert. Es zeigte sich außerdem, dass die 3’-UTR für die „Richtung“ der Regulation auf Translationsebene verantwortlich ist und putative Strukturelemente möglicherweise in den Regulationsmechanismus involviert sind. Zusammengefasst ergibt sich folgendes Modell der Translationsregulation in H. volcanii: Strukturierte 5’-UTRs führen zu einer Herabsetzung der konstitutiven Translationseffizienz. Dies kann differentiell durch regulatorische Faktoren kompensiert werden, welche spezifische Elemente der 3’-UTR binden. Sowohl natürliche als auch artifizielle Aptamere und allosterische Ribozyme stellen effektive Werkzeuge zur exogen kontrollierten Genexpression dar. Daher wurde die Anwendbarkeit eines Tetracyclin-induzierbaren Aptamers und eines konstitutiven Hammerhead-Ribozyms in H. volcanii untersucht. Es stellte sich allerdings heraus, dass das Aptamer bereits ohne Tetracyclin starke inhibitorische Sekundärstrukturen ausbildet. Als Alternative wurden Reportergenfusionen mit einem selbstspaltenden Hammerhead-Ribozym konstruiert. Die selbstspaltende Aktivität des Hammerhead-Ribozyms in H. volcanii konnte erfolgreich in vivo demonstriert werden, was die Grundlage zur Entwicklung konditionaler Expressionssysteme basierend auf dem Hammerhead-Ribozym in H. volcanii bildet.
Ataxin-2 is a novel protein, within which the unstable expansion of a polyglutamine domain can cause Spinocerebellar Ataxia type 2 (SCA2), a neurodegenerative disease which belongs to the group of polyglutamine disorders. SCA2 is characterised by a progressive loss of neurons that first affects the cerebellum and brain stem and then may extend to other areas of the brain, like substantia nigra, motoneurons and thalamus. Several lines of research have attempted to determine therole of ataxin-2 in its normal and mutant version. Different animal models and cell culture approaches to study ataxin-2 function implicated ataxin-2 in RNA processing, embryonic development, apoptosis and cytoskeleton. However, the function of ataxin-2 still remains unclear. In this thesis, a protein interaction approach was chosen as an alternative to gain insights into the cellular function of ataxin-2. Full-length ataxin-2 was used as bait in a yeast two-hybrid screen of human adult brain cDNA. Among five candidate interactor proteins identified, two were the endophilins A1 and A3, proteins involved in vesicle endocytosis. Co-immunoprecipitation studies confirmed the association of these proteins in an endogenous complex of mouse brain. In vitro binding experiments narrowed the binding interfaces down to two proline-rich domains on ataxin-2, which interacted with the SH3 domain of endophilins A1/A3. Ataxin-2 and endophilins A1/A3 colocalised at the endoplasmic reticulum as determined by immunofluorescence microscopy of transfected cell lines, and by centrifugation fractionation studies of mouse brain. Importantly, the pattern observed in transfected cells was conserved in untransfected rat hippocampal neurons. In mouse brain, associations of ataxin-2 with endocytic proteins such as the adaptor CIN85, the ubiquitin ligase c-Cbl and also GRB2, in the last case by means of a SH3 domain array chip, were also demonstrated. GST pull-down assays showed ataxin-2 to interact directly with the SH3 domains A and C of CIN85, the C-terminal SH3 domain of GRB2, and the SH3 domain of Src, a kinase activated after receptor stimulation. Functional studies demonstrated that ataxin-2 affects endocytic trafficking of the epidermal growth factor receptor (EGFR) by reducing the EGFR internalisation after EGF stimulation. Taken together, these data implicate ataxin-2 to play a role in endocytic receptor cycling.
Prion diseases or transmissible spongiform encephalopathies (TSEs) are rare neurological disorders that may be of genetic or infectious origin, but most frequently occur sporadically in humans. Their outcome is invariably fatal. The infectious agent has been defined as prion (from proteinaceous infectious only) in 1992 by Stanley B. Prusiner and represent mainly, if not solely, an abnormal, protease-resistant isoform (PrPSc) of a cellular protein, the prion protein or PrPC. According to the “protein only” hypothesis, the prion is devoid of informational nucleic acids and consists of an “infectious” protein that is capable of converting the normal host protein PrPC into a likeness of itself. TSEs can be distinguished from other neurodegenerative diseases because of their infectivity and transmission capability. The only organ system in which severe histopathological damage can be demonstrated as a consequence of infection with prions is the nervous system. The communal lesions are neuronal loss, spongiosis and astrogliosis, accompanied by an intra- and extracellular accumulation of PrPSc, occasionally in form of amyloid plaques. Even if a strong activation of microglia and astrocytes occurs, no immunological response is usually detectable as consequence of prion infection. Despite the considerable attention for its involvement in TSEs, the physiological role of the cellular, nonpathogenic isoform of PrPC, has not yet been determined. In the last years, several putative cellular functions have been attributed to PrPC: its localization in “lipid rafts” is consistent with a possible role in cell adhesion, transmembrane signalling or as a recognition molecule. Furthermore, PrPC has been implicated in protection against oxidative stress, copper metabolism, apoptosis, cell proliferation and in the regeneration of blood precursors stem cells in the adult. It has also been shown that PrPC interacts with the neuronal cell adhesion molecule NCAM, promoting neurite outgrowth. However, both the PrPC-mediated effects and the role of PrPC-dependent pathways on neuronal differentiation are still not elucidated. First objective of this Ph.D thesis was the establishment of a novel in vitro cellular model for the study of the role of PrPC in neuronal differentiation and neurite outgrowth. Furthermore, an additional goal of this project was the indentification of the PrPC domains responsible for the induction of neuronal differentiation. A novel PrPC-depleted cell line (PrP0/0 ML) was derived from murine primary PrP-knockout neuronal cells by SV40 large T antigen-mediated immortalization. A temperature sensitive form of this oncogenic protein was used, allowing a temperature-mediated regulation of its expression. This cell line was then characterised for its growth potential, for the expression of specific cellular markers and for its ability to differentiate. It was found that, under culture conditions promoting the expression of the temperature-sensitive SV40 large T antigen, the cells expressed nestin, a specific marker of neuronal precursor cells. Therefore, the PrP0/0 ML cell line was identified as a potential neuronal stem cell line. In fact, under nonpermissive culture conditions when the expression of the temperature-sensitive SV40 large T antigen is downregulated, the PrP0/0 ML cells differentiated into neurons. Noteworthy, maintenance of the cells in conditions that promote cell differentiation induced a progressive reduction in the expression levels of nestin, an event that strongly correlated with the appearance of the specific neuronal markers MAP-2b and NeuN. In order to investigate the role of PrPC in the process of neuronal differentiation, the PrP0/0 ML cells were then reconstituted for the expression of either the full-length PrP or a N-terminal truncated PrPC form (PrPdel32-134). The differentiation potential of both reconstituted cell lines under nonpermissive culture conditions was then compared with that of the parenteral PrP0/0 ML cells. This in vitro study clearly highlights that PrPC expression in the PrP0/0 ML cell line accelerates neuronal differentiation and that the N-terminal domain of the prion protein is not necessary for this PrP-mediated function. Prion diseases like BSE, vCJK, Kuru and the majority of iatrogenic cases of CJK are caused by a peripheral infection. Infectious prions accumulate in the central and peripheral nervous system as well as in extracerebral tissues, such as the secondary lymphoid organs and muscles. The prion pathogenesis is a dynamic process which can be defined temporary and spatially in different phases: i) infection and peripheral replication, ii) neuroinvasion, transport of prions from the periphery to the central nervous system (CNS), and iii) neurodegeneration. In the last years, progresses in the elucidation of the peripheral prion pathogenesis were achieved. The identification of the cell types involved in the lymphoreticular prion replication phase and the recognition of the role of the peripheral nervous system in the process of prion spread from the periphery to the CNS have elucidated some of the cellular mechanisms that are involved in prion uptake, replication and propagation. However, relatively little information is available about the mechanism(s) underlying intercellular prion transfer and tissue-to tissue prion spread. Microvesicles (MVs) are submicron vesicles (0,03-1 microm.) with a single membrane and are shed from most eukaryotic cells undergoing activation or apoptosis. The segregation of specific proteins is followed by blebbing of the membrane surface, leading to the formation of MVs and their release in the extracellular environment. MVs can be also secreted upon fusion of multivesicular endosomes with the plasma membrane (exosomes). The secretion of MVs is the result of a complex cellular process involving changes in the metabolism of lipids and proteins. The functional role of MVs is still largely unknown. However, there is evidence showing that they are important modulators of cell-to-cell communication, participate in a variety of intracellular adhesion processes and are able to induce cellular response(s). The release of PrPC and infectious PrPSc by prion infected epithelial, neuroglial and neuronal cells in association with exosomes has recently been highlighted. Furthermore, it has been shown that exosomes can propagate prion infectivity both in vitro and in vivo, suggesting that PrPSc-bearing exosomes may provide a mechanism for intercellular transmission of infectious prions in addition to cell-to-cell contact. Second objective of this Ph.D thesis was to determine the possible role of plasma membrane-derived microvesicles in the propagation and transmission of prions. The release of MVs was first studied in different murine neuronal cell lines. Here it is shown for the first time that neurons also shed plasma membrane derived MVs, in addition to exosomes. Immunoelectron microscopy and immunoblot analyses clearly demonstrated the presence of PrPC on the membrane of MVs released from PrPC-expressing cells. Characterization of lipid rafts components in MVs highlighted the presence of the ganglioside GM2, the tyrosine kinase p59Fyn, flotillin-2 and the neuronal protein GAP-43. In order to investigate whether MVs are involved in the intercellular transmission of prions, MVs were first isolated from two prion infected murine neuronal cell lines, namely the Neuro-2a PK1 and the N2a58 cells, and then used for in vitro and in vivo infection assays. Immunoblot analyses after proteinase K treatment demonstrated the association of PrPSc with the secreted MVs. The PrPSc-bearing MVs were then used to perform infection experiments on noninfected cells. By the use of cell blot assay, a method that allows the detection of PrPSc-amplification and -accumulation in cultured cells, the kinetic of prion infection in the de novo infected cells was followed. Noteworthy, it was found that PrPSc-bearing MVs were capable to transmit prions in vitro and to stably infect the recipient cells. In order to investigate the role of MVs in the transmission of infectivity in vivo, PrPSc-bearing MVs as well as MVs isolated from noninfected cells (as negative control) were injected intracerebrally in PrPC-overexpressing indicator mice (tga20). The development of clinical disease was followed in a time-dependent manner. Clinical symptoms could be observed only in the group of indicator mice inoculated with the PrPSc-bearing MVs, which then succumbed to desease. These findings clearly demonstrated that MVs are biological carriers of both PrPSc and prion infectivity. MVs could therefore participate in vivo in the processes of intercellular prion transmission and propagation.
The growth of blood vessels is crucial for organ growth in the embryo and repair of wounded tissues in the adult. An imbalance in this process contributes to numerous malignant, inflammatory, ischemic, infectious and immune disorders (Ferrara et al., 2003). Postnatal neovascularization occurs through the recruitment of progenitor cells and angiogenesis. Integrins are heterodimeric cell surface molecules and are the main receptors for extracellular matrix proteins. Regulation of integrin activation is crucial during embryonic development and during adult life. Dysregulation of integrin activity leads to severe diseases. In this study, we have demonstrated that Rap1, a small GTPase regulating integrin activity, and its GEF Epac1 are expressed in both EPC and endothelial cells. Moreover, the pharmacological activator of Epac activates the small GTPase Rap1 in progenitor cells. In parallel the angiogenic growth factors VEGF and bFGF activate Rap1 in endothelial cells. In addition, the regulation of Rap1 activity in EPC and in endothelial cells plays an important role in the regulation of migration and adhesion to matrix proteins, by regulating the activity of different integrins, a mechanism known as integrin inside‐out signaling. Furthermore, regulation of Rap1 activity affects probably indirectly through outside‐in signaling of integrins the activity of several and crucial proteins such PKB/Akt and focal adhesion kinase in endothelial cells. In line with these results, we have demonstrated that Rap1 activity affect angiogenesis, homing of EPC to ischemic tissues and thereby postnatal neovascularization. The understanding how Rap1 regulates integrin activity in endothelial cells is still not completely clear, for example we have demonstrated that the known effectors of Rap1 mediating the increase of integrin activity in T and B cells, such as RAPL and RIAM are, respectively, either not increasing integrin activity or not expressed in endothelial cells. We aim to find the effector of Rap1 promoting integrin activity in endothelial cells and how RAPL regulates integrin functions and angiogenesis. Moreover data from us and others using genetic models and generation of Rap1a or Rap1b deficient mice or deficient for Rap1a and Rap1b led to embryonic lethality suggesting that Rap1 is a key node protein during embryonic development. The development of conditionnal Rap1a/b endothelial/pericytes restricted deficient mice will help us to decipher more precisely the role of Rap1 during vascular development and angiogenesis.