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Die Gattung Listeria umfasst sechs bekannte Arten ubiquitär vorkommender Gram-positiver, nicht sporulierender Stäbchenbakterien. Von diesen Spezies sind Listeria monocytogenes und L. ivanovii in der Lage bei Mensch und Tier das Krankheitsbild der Listeriose zu verursachen (Rocourt & Seeliger, 1985; Vázquez-Boland et al., 2001b; Weis & Seeliger, 1975), wobei L. ivanovii vorwiegend bei Tieren als Krankheitserreger vorkommt (Cummins et al., 1994; Hof & Hefner, 1988). L. monocytogenes gilt als wichtiges Modell für ein intrazelluläres Pathogen, das mit Hilfe seiner Internaline auch in nicht-professionelle Phagozyten invadieren (Gaillard et al., 1991; Lingnau et al., 1995) und sich dank einer Reihe weiterer Virulenzfaktoren im Zytoplasma vermehren, fortbewegen und Nachbarzellen infizieren kann (Tilney & Portnoy, 1989). Die beiden pathogenen Arten und das apathogene L. seeligeri besitzen eine als LIPI-1 bezeichnete Pathogenitätsinsel (Gouin et al., 1994; Kreft et al., 2002). Internalingene sind bei L. monocytogenes teilweise geclustert und bei L. ivanovii zu einem großen Teil in einer LIPI-2 genannten Pathogenitätsinsel organisiert (Domínguez-Bernal et al., 2006; Dramsi et al., 1997; Gaillard et al., 1991; Raffelsbauer et al., 1998). Die Expression vieler dieser Virulenzgene wird durch das zentrale Regulatorprotein PrfA gesteuert, dessen Gen prfA selbst Teil der LIPI-1 ist (Domínguez-Bernal et al., 2006; Leimeister-Wächter et al., 1990; Lingnau et al., 1995; Mengaud et al., 1991a). Im Rahmen dieser Arbeit sollten die Internaline InlC, InlE, InlG und InlH von L. monocytogenes näher untersucht werden. Dazu wurden rekombinante His6-markierte Internaline aufgereinigt und polyklonale Antiseren gegen die Internaline A, B, E, G und H hergestellt. Darüber hinaus gelang die Herstellung zweier monoklonaler Antikörper gegen InlG. Obwohl die Antikörper gegen InlG und InlE ihre rekombinanten Antigene gut dekorieren, konnten mit ihnen keine Proteine in Zellwand- oder Überstandspräparaten von L. monocytogenes EGD und EGDe detektiert werden. Das Antiserum gegen InlH kreuzreagierte mit InlA und auch schwach mit anderen Internalinen. In Zellwandpräparaten von L. monocytogenes dekorierte es ein ~50 kDa schweres Protein, welches mit InlH identisch sein könnte. Es fehlt in inlG/H/E Deletionsmutanten und wird in einer inlA/B Deletionsmutante stärker exprimiert. Im Kulturüberstand ist es etwas schwerer, wie man es von einem Protein mit LPXTG Motiv erwartet, das nicht von Sortase (Bierne et al., 2002; Garandeau et al., 2002) prozessiert wurde. In L. monocytogenes EGDe wird dieses ~50 kDa Protein um ein bis zwei dekadische Größenordungen stärker exprimiert als in L. monocytogenes EGD. Die Expression des Proteins war bei 30 und 37 °C gleich stark und wurde nicht durch PrfA reguliert. In Zellwandpräparaten von L. ivanovii ATCC 19119 dekorierten die Seren gegen InlA und InlH ein Protein das in seiner Größe dem InlA von L. monocytogenes entspricht. Mit Hexosaminidase Assays zur Untersuchung von Zelladhärenz (nach Landegren, 1984) an rekombinante His6-markierte Internaline konnte keine Interaktion der Internaline InlE, InlG oder InlH mit Oberflächenfaktoren von Caco-2, HeLa oder HepG2 Zellen nachgewiesen werden, während Positivkontrollen mit InlA und InlB weitestgehend erwartungsgemäß ausfielen. InlC besitzt jedoch offenbar einen bisher noch nicht genauer identifizierten Rezeptor auf der Zelloberfläche. An InlC und EGF adhärierten Caco-2 Zellen stark wachstumsphasenabhängig und etwa tausendfach schwächer als an InlA. Die beste Bindung erfolgte bei semikonfluent gewachsenen Zellen, die am Vortag ausgesät wurden. Unter diesen Bedingungen war auch die von Bergmann et al. beobachtete unterstützende Wirkung von InlC auf die InlA-abhängige Invasion am größten (Bergmann et al., 2002). In dieser Arbeit wurden außerdem die Promotoren von Internalingenen aus L. ivanovii, sowie weitere Virulenzgene (plcA, hly, actA) der Spezies L. monocytogenes, L. ivanovii und L. seeligeri mit Hilfe eines zellfreien in vitro Transkriptionssystems (Lalic-Mülthaler et al., 2001) untersucht, um deren PrfA-Abhängigkeit und Aktivität unabhängig von physiologischen Faktoren analysieren zu können, da die PrfA-Aktivität in vivo pleiotrop reguliert wird (Dickneite et al., 1998; Ermolaeva et al., 2004; Milenbachs et al., 1997; Milenbachs Lukowiak et al., 2004; Renzoni et al., 1997; Ripio et al., 1996). Dafür wurde in dieser Arbeit RNA-Polymerase aus L. monocytogenes ΔprfA ΔsigB (Stritzker et al., 2005) isoliert. Gleichzeitig wurde die Aktivität von rekombinanten His6-markierten PrfA Proteinen untersucht. Dazu wurden die PrfA Proteine von L. monocytogenes (m-PrfA und hyperaktives m-PrfA* (Ripio et al., 1997b)), L. ivanovii (i-PrfA) und L. seeligeri (s-PrfA), so wie ein Hybridprotein (sm-PrfA) aufgereinigt. Das Hybridprotein sm-PrfA entspricht s-PrfA bis auf die letzten 38 Aminosäurereste, die durch jene von m-PrfA ersetzt wurden. ...
The Gram-negative, spiral-shaped, microaerophilic bacterium Helicobacter pylori is the causative agent of various disorders of the upper gastrointestinal tract, such as chronic superficial gastritis, chronic active gastritis, peptic ulceration and adenocarcinoma. Although many of the bacterial factors associated with disease development have been analysed in some detail in the recent years, very few studies have focused so far on the mechanisms that regulate expression of these factors at the molecular level. In an attempt to obtain an overview of the basic mechanisms of virulence gene expression in H. pylori, three important virulence factors of this pathogen, representative of different pathogenic mechanisms and different phases of the infectious process, are investigated in detail in the present thesis regarding their transcriptional regulation. As an essential factor for the early phase of infection, including the colonisation of the gastric mucosa, the flagella are analysed; the chaperones including the putative adhesion factors GroEL and DnaK are investigated as representatives of the phase of adherence to the gastric epithelium and persistence in the mucus layer; and finally the cytotoxin associated antigen CagA is analysed as representative of the cag pathogenicity island, which is supposed to account for the phenomena of chronic inflammation and tissue damage observed in the later phases of infection. RNA analyses and in vitro transcription demonstrate that a single promoter regulates expression of cagA, while two promoters are responsible for expression of the upstream divergently transcribed cagB gene. All three promoters are shown to be recognised by RNA polymerase containing the vegetative sigma factor sigma 80. Promoter deletion analyses establish that full activation of the cagA promoter requires sequences up to -70 and binding of the C-terminal portion of the alpha subunit of RNA polymerase to an UP-like element located between -40 and -60, while full activation of the major cagB promoter requires sequences upstream of -96 which overlap with the cagA promoter. These data suggest that the promoters of the pathogenicity island represent a class of minimum promoters, that ensure a basic level of transcription, while full activation requires regulatory elements or structural DNA binding proteins that provide a suitable DNA context. Regarding flagellar biosynthesis, a master transcriptional factor is identified that regulates expression of a series of flagellar basal body and hook genes in concert with the alternative sigma factor sigma 54. Evidence is provided that this regulator, designated FlgR (for flagellar regulatory protein), is necessary for motility and transcription of five promoters for seven basal body and hook genes. In addition, FlgR is shown to act as a repressor of transcription of the sigma 28-regulated promoter of the flaA gene, while changes in DNA topology are shown to affect transcription of the sigma 54-regulated flaB promoter. These data indicate that the regulatory network that governs flagellar gene expression in H. pylori shows similarities to the systems of both Salmonella spp. and Caulobacter crescentus. In contrast to the flagellar genes which are regulated by three different sigma factors, the three operons encoding the major chaperones of H. pylori are shown to be transcribed by RNA polymerase containing the vegetative sigma factor sigma 80. Expression of these operons is shown to be regulated negatively by the transcriptional repressor HspR, a homologue of a repressor protein of Streptomyces spp., known to be involved in negative regulation of heat shock genes. In vitro studies with purified recombinant HspR establish that the protein represses transcription by binding to large DNA regions centered around the transcription initiation site in the case of one promoter, and around -85 and -120 in the case of the the other two promoters. In contrast to the situation in Streptomyces, where transcription of HspR-regulated genes is induced in response to heat shock, transcription of the HspR-dependent genes in H. pylori is not inducible with thermal stimuli. Transcription of two of the three chaperone encoding operons is induced by osmotic shock, while transcription of the third operon, although HspR-dependent, is not affected by salt treatment. Taken together, the analyses carried out indicate that H. pylori has reduced its repertoire of specific regulatory proteins to a basic level that may ensure coordinate regulation of those factors that are necessary during the initial phase of infection including the passage through the gastric lumen and the colonisation of the gastric mucosa. The importance of DNA topology and/or context for transcription of many virulence gene promoters may on the other hand indicate, that a sophisticated global regulatory network is present in H. pylori, which influences transcription of specific subsets of virulence genes in response to changes in the microenvironment.
The molecular basis of signal-dependent transcriptional activation has been extensively studied in macrophage polarization, but our understanding remains limited regarding the molecular determinants of repression. Here we show that IL-4-activated STAT6 transcription factor is required for the direct transcriptional repression of a large number of genes during in vitro and in vivo alternative macrophage polarization. Repression results in decreased lineage-determining transcription factor, p300, and RNA polymerase II binding followed by reduced enhancer RNA expression, H3K27 acetylation, and chromatin accessibility. The repressor function of STAT6 is HDAC3 dependent on a subset of IL-4-repressed genes. In addition, STAT6-repressed enhancers show extensive overlap with the NF-κB p65 cistrome and exhibit decreased responsiveness to lipopolysaccharide after IL-4 stimulus on a subset of genes. As a consequence, macrophages exhibit diminished inflammasome activation, decreased IL-1β production, and pyroptosis. Thus, the IL-4-STAT6 signaling pathway establishes an alternative polarization-specific epigenenomic signature resulting in dampened macrophage responsiveness to inflammatory stimuli.
YAP and TAZ, downstream effectors of the Hippo pathway, are important regulators of proliferation. Here, we show that the ability of YAP to activate mitotic gene expression is dependent on the Myb-MuvB (MMB) complex, a master regulator of genes expressed in the G2/M phase of the cell cycle. By carrying out genome-wide expression and binding analyses, we found that YAP promotes binding of the MMB subunit B-MYB to the promoters of mitotic target genes. YAP binds to B-MYB and stimulates B-MYB chromatin association through distal enhancer elements that interact with MMB-regulated promoters through chromatin looping. The cooperation between YAP and B-MYB is critical for YAP-mediated entry into mitosis. Furthermore, the expression of genes coactivated by YAP and B-MYB is associated with poor survival of cancer patients. Our findings provide a molecular mechanism by which YAP and MMB regulate mitotic gene expression and suggest a link between two cancer-relevant signaling pathways.
Herpes simplex virus 1 (HSV-1) infection and stress responses disrupt transcription termination by RNA Polymerase II (Pol II). In HSV-1 infection, but not upon salt or heat stress, this is accompanied by a dramatic increase in chromatin accessibility downstream of genes. Here, we show that the HSV-1 immediate-early protein ICP22 is both necessary and sufficient to induce downstream open chromatin regions (dOCRs) when transcription termination is disrupted by the viral ICP27 protein. This is accompanied by a marked ICP22-dependent loss of histones downstream of affected genes consistent with impaired histone repositioning in the wake of Pol II. Efficient knock-down of the ICP22-interacting histone chaperone FACT is not sufficient to induce dOCRs in ΔICP22 infection but increases dOCR induction in wild-type HSV-1 infection. Interestingly, this is accompanied by a marked increase in chromatin accessibility within gene bodies. We propose a model in which allosteric changes in Pol II composition downstream of genes and ICP22-mediated interference with FACT activity explain the differential impairment of histone repositioning downstream of genes in the wake of Pol II in HSV-1 infection.
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.
Quantitation of Glucocorticoid Receptor DNA-Binding Dynamics by Single-Molecule Microscopy and FRAP
(2014)
Recent advances in live cell imaging have provided a wealth of data on the dynamics of transcription factors. However, a consistent quantitative description of these dynamics, explaining how transcription factors find their target sequences in the vast amount of DNA inside the nucleus, is still lacking. In the present study, we have combined two quantitative imaging methods, single-molecule microscopy and fluorescence recovery after photobleaching, to determine the mobility pattern of the glucocorticoid receptor (GR) and the mineralocorticoid receptor (MR), two ligand-activated transcription factors. For dexamethasone-activated GR, both techniques showed that approximately half of the population is freely diffusing, while the remaining population is bound to DNA. Of this DNA-bound population about half the GRs appeared to be bound for short periods of time (similar to 0.7 s) and the other half for longer time periods (similar to 2.3 s). A similar pattern of mobility was seen for the MR activated by aldosterone. Inactive receptors (mutant or antagonist-bound receptors) show a decreased DNA binding frequency and duration, but also a higher mobility for the diffusing population. Likely, very brief (<= 1 ms) interactions with DNA induced by the agonists underlie this difference in diffusion behavior. Surprisingly, different agonists also induce different mobilities of both receptors, presumably due to differences in ligand-induced conformational changes and receptor complex formation. In summary, our data provide a consistent quantitative model of the dynamics of GR and MR, indicating three types of interactions with DNA, which fit into a model in which frequent low-affinity DNA binding facilitates the search for high-affinity target sequences.
The MYC oncoprotein binds to promoter-proximal regions of virtually all transcribed genes and enhances RNA polymerase II (Pol II) function, but its precise mode of action is poorly understood. Using mass spectrometry of both MYC and Pol II complexes, we show here that MYC controls the assembly of Pol II with a small set of transcription elongation factors that includes SPT5, a subunit of the elongation factor DSIF. MYC directly binds SPT5, recruits SPT5 to promoters, and enables the CDK7-dependent transfer of SPT5 onto Pol II. Consistent with known functions of SPT5, MYC is required for fast and processive transcription elongation. Intriguingly, the high levels of MYC that are expressed in tumors sequester SPT5 into non-functional complexes, thereby decreasing the expression of growth-suppressive genes. Altogether, these results argue that MYC controls the productive assembly of processive Pol II elongation complexes and provide insight into how oncogenic levels of MYC permit uncontrolled cellular growth.
Myc coordinates transcription and translation to enhance transformation and suppress invasiveness
(2015)
c‐Myc is one of the major human proto‐oncogenes and is often associated with tumor aggression and poor clinical outcome. Paradoxically, Myc was also reported as a suppressor of cell motility, invasiveness, and metastasis. Among the direct targets of Myc are many components of the protein synthesis machinery whose induction results in an overall increase in protein synthesis that empowers tumor cell growth. At present, it is largely unknown whether beyond the global enhancement of protein synthesis, Myc activation results in translation modulation of specific genes. Here, we measured Myc‐induced global changes in gene expression at the transcription, translation, and protein levels and uncovered extensive transcript‐specific regulation of protein translation. Particularly, we detected a broad coordination between regulation of transcription and translation upon modulation of Myc activity and showed the connection of these responses to mTOR signaling to enhance oncogenic transformation and to the TGFβ pathway to modulate cell migration and invasiveness. Our results elucidate novel facets of Myc‐induced cellular responses and provide a more comprehensive view of the consequences of its activation in cancer cells.