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Sonstige beteiligte Institutionen
Cellular growth and proliferation are among the most important processes for cells and
organisms. One of the major determinants of these processes is the amount of proteins
and consequently also the amount of ribosomes. Their synthesis involves several hundred
proteins and four different ribosomal RNA species, is highly coordinated and very
energy-demanding. However, the molecular mechanims of transcriptional regulation of
the protein-coding genes involved, is only poorly understood in mammals.
In this thesis, unbiased genome-wide knockout reporter screens were performed, aiming
to identify previously unknown transcriptional regulators of ribosome biogenesis
factors (RiBis), which are important for the assembly and maturation of ribosomes,
and ribosomal proteins (RPs), which are ribosomal components themself. With that
approach and follow-up (validation) experiments, ALDOA and RBM8A among others,
could be identified as regulators of ribosome biogenesis.
Depletion of the glycolytic enzyme ALDOA led to a downregulation of RiBi- and RPpromoter
driven reporters on protein and transcript level, as well as to a downregulation
of ribosome biogenesis gene transcripts and of mRNAs of other genes important for
proliferation.
Reducing the amount of the exon junction complex protein RBM8A, led to a more prominent
downregulation of one of the fluorescent reporters, but this regulation was independent
of the promoter driving the expression of the reporter. However, acute protein
depletion experiments in combination with nascent RNA sequencing (4sU-Seq)
revealed, that mainly cytosolic ribosomal proteins (CRPs) were downregulated upon
acute RBM8A withdrawal. ChIP experiments showed RBM8A binding to promoters of
RP genes, but also to other chromatin regions. Total POL II or elongating and initiating
POL II levels were not altered upon acute RBM8A depletion.
These data provide a starting point for further research on the mechanisms of transcriptional
regulation of RP and RiBi genes in mammals.
Die Regulation der Genexpression steht am Anfang vieler zellbiologischer Prozesse wie beispielsweise dem Zellwachstum oder der Differenzierung. Gene werden an Promotoren transkribiert, wobei ein Promotor selbst aus vielen logischen Einheiten aufgebaut ist, den Transkriptionsfaktorbindestellen (TFBSs). Diese können sehr nah beieinander liegen, aber auch weit entfernt voneinander sein. Sie werden spezifisch von Transkriptionsfaktoren (TFs) gebunden, die die Transkritptionsrate z.B. verstärken (Enhancer) oder schwächen (Silencer) können. Zwei oder mehr dieser TFBSs mit bestimmtem Abstand werden als "Module" zusammengefasst, die über Spezies hinweg konserviert sein können. Typischerweise findet man Module in Zellen mit einem Zellkern. Spezies mit gemeinsamen Modulen können ein Hinweis auf die gemeinsame phylogenetische Abstammung darstellen, aber auch gemeinsame Funktionsmechanismen von TFs über Gene hinweg aufdecken. Heutzutage sind verschiedene Anwendungen verfügbar, mit denen nach TFBSs in DNA gesucht werden kann. Zum Zeitpunkt des Verfassens dieser Arbeit sind aber nur zwei kommerzielle Produkte bekannt, die nicht nur TFBSs, sondern auch Module erkennen. Deshalb stellen wir hier die freie und quelloffene Lösung "AIModules" vor, die diese Lücke füllt und einen Webservice zur Verfügung stellt, der es erlaubt nach TFBSs sowie nach Modulen auf DNA- und auf RNA-Abschnitten zu suchen. Für die Motivesuche werden entweder Matrizen aus der Jaspar Datenbank oder Matrizen vom Anwender verwendet. Darüberhinaus zeigen wir, dass unser Tool für die TF Suche nur Sekunden benötigt, wohingegen conTraV3 mindestens eine Stunde für dieselbe Analyse braucht. Zusätzlich kann der Anwender bei unserem Tool den Grad der Konserviertheit für TFs mit angeben und wir zeigen, dass wir mit unserer Lösung, die die Jaspar Datenbank heranzieht, mehr Module finden, als ein kommerziell verfügbares Produkt. Weiterhin kann mit unserer Lösung auch auf RNA-Sequenzen nach regulatorischen Motiven gesucht werden, wenn der Anwender die dafür nötigen Matrizen liefert. Wir zeigen dies am Beispiel von Polyadenylierungsstellen. Zusammenfassend stellen wir ein Werkzeug vor, das erstens frei und quelloffen ist und zweitens entweder auf Servern veröffentlicht werden kann oder On-Site auf einem Notebook läuft. Unser Tool erlaubt es Promotoren zu analysieren und nach konservierten Modulen sowie TFBSs in Genfamilien sowie nach regulatorischen Elementen in mRNA wie z.B. Polyadenylierungsstellen oder andere regulatorische Elemente wie beispielsweise Enhancern oder Silencern in genomischer DNA zu suchen.
During infection, bacteria need to adapt to a changing environment and have to endure various stress conditions. Small non-coding RNAs are considered as important regulators of bacterial gene expression and so allow quick adaptations by altering expression of specific target genes. Regulation of gene expression in the human-restricted pathogen Neisseria gonorrhoeae, the causative agent of the sexually transmitted disease gonorrhoea, is only poorly understood. The present study aims a better understanding of gene regulation in N. gonorrhoeae by studying small non-coding RNAs.
The discovery of antisense RNAs for all opa genes led to the hypothesis of asRNA-mediated degradation of out-of-frame opa transcripts. Analysis of asRNA expression revealed a very low abundance of the transcripts and inclusion of another phase-variable gene in the study indicates that the asRNAs are not involved in degradation of out-of-frame transcripts.
This doctoral thesis focuses on the analysis of trans-acting sRNAs. The sibling sRNAs NgncR_162 and NgncR_163 were discovered as post-transcriptional regulators altering expression of genes involved in metabolic processes, amino acid uptake and transcriptional regulation. A more detailed analysis by in silico and transcriptomic approaches showed that the sRNAs regulate a broad variety of genes coding for proteins of central metabolism, amino acid biosynthesis and degradation and several transport processes. Expression levels of the sibling sRNAs depend on the growth phase of the bacteria and on the growth medium. This indicates that NgncR_162 and NgncR_163 are involved in the adaptation of the gonococcal metabolism to specific growth conditions.
This work further initiates characterisation of the sRNA NgncR_237. An in silico analysis showed details on sequence conservation and a possible secondary structure. A combination of in silico target prediction and differential RNA sequencing resulted in the identification of several target genes involved in type IV pilus biogenesis and DNA recombination. However, it was not successful to find induction conditions for sRNA expression. Interestingly, a possible sibling sRNA could be identified that shares the target interaction sequence with NgncR_237 and could therefore target the same mRNAs.
In conclusion, this thesis provides further insights in gene regulation by non-coding RNAs in N. gonorrhoeae by analysing two pairs of sibling sRNAs modulating bacterial metabolism or possibly type IV pilus biogenesis.
Erstellung eines genregulatorischen Netzwerkes zur Simulation der Entstehung von Zahnhartsubstanz
(2020)
In dieser Dissertation beschreibt der Autor die Erstellung eines grundlegenden bioinformatischen Modelles der menschlichen Zahnschmelzreifung. Mithilfe der KEGG Pathway-Datenbank wurde ein genregulatorisches Netzwerk (GRN) erstellt, welches maßgeblich auf den Signaltransduktionswegen Apoptose, Zellzyklus, Hedgehog-Signalweg, MAP-Kinase-Weg, mTOR-Signalweg Notch-Signalweg Signalweg, TGF-β-Signalweg und Wnt-Signalweg basiert. Im Weiteren wurde dieses Netzwerk durch zahlreiche verifizierte Wechselwirkungen erweitert und die zahnspezifischen Gene AMELX, AMELY, AMBN, ENAM und DSPP implementiert. In der anschließenden Simulation des Netzwerks mit dem Simulations-Tool Jimena konnten sechs stabile Zustände identifiziert werden. Diese wurden genauer untersucht und den Erkenntnissen eines GEO-Datensatzes gegenübergestellt. Langfristiges Ziel ist es, durch konsequente Optimierung des bioinformatischen Netzwerks Rückschlüsse auf die Odontogenese des Menschen zu ziehen.
The transcription factor MYC is deregulated in over 70% of all human tumors and, in its oncogenic form, plays a major role in the cancer metabolic reprogramming, promoting the uptake of nutrients in order to sustain the biosynthetic needs of cancer cells.
The research presented in this work aimed to understand if MYC itself is regulated by nutrient availability, focusing on the two major fuels of cancer cells: glucose and glutamine.
Initial observations showed that endogenous MYC protein levels strongly depend on the availability of glutamine, but not of glucose. Subsequent analysis highlighted that the mechanism which accounts for the glutamine-mediated regulation of MYC is dependent on the 3´-untranslated region (3´-UTR) of MYC. Enhanced glutamine utilization by tumors has been shown to be directly linked to MYC oncogenic activity and MYC-dependent apoptosis has been observed under glutamine starvation. Such effect has been described in experimental systems which are mainly based on the use of MYC transgenes that do not contain the 3´-UTR. It was observed in the present study that cells are able to survive under glutamine starvation, which leads to cell cycle arrest and not apoptosis, as previously reported. However, enforced expression of a MYC transgene, which lacks the 3´-UTR, strongly increases the percentage of apoptotic cells upon starvation. Evaluation of glutamine-derived metabolites allowed to identify adenosine nucleotides as the specific stimulus responsible for the glutamine-mediated regulation of MYC, in a 3´-UTR-dependent way. Finally, glutamine-dependent MYC-mediated effects on RNA Polymerase II (RNAPII) function were evaluated, since MYC is involved in different steps of global transcriptional regulation. A global loss of RNAPII recruitment at the transcriptional start site results upon glutamine withdrawal. Such effect is overcome by enforced MYC expression under the same condition.
This study shows that the 3´UTR of MYC acts as metabolic sensor and that MYC globally regulates the RNAPII function according to the availability of glutamine. The observations presented in this work underline the importance of considering stress-induced mechanisms impinging on the 3´UTR of MYC.
Biological systems such as cells or whole organisms are governed by complex regulatory networks of transcription factors, hormones and other regulators which determine the behavior of the system depending on internal and external stimuli. In mathematical models of these networks, genes are represented by interacting “nodes” whose “value” represents the activity of the gene.
Control processes in these regulatory networks are challenging to elucidate and quantify. Previous control centrality metrics, which aim to mathematically capture the ability of individual nodes to control biological systems, have been found to suffer from problems regarding biological plausibility.
This thesis presents a new approach to control centrality in biological networks. Three types of network control are distinguished: Total control centrality quantifies the impact of gene mutations and identifies potential pharmacological targets such as genes involved in oncogenesis (e.g. zinc finger protein GLI2 or bone morphogenetic proteins in chondrocytes). Dynamic control centrality describes relaying functions as observed in signaling cascades (e.g control in mouse colon stem cells). Value control centrality measures the direct influence of the value of the node on the network (e.g. Indian hedgehog as an essential regulator of proliferation in chondrocytes). Well-defined network manipulations define all three centralities not only for nodes, but also for the interactions between them, enabling detailed insights into network pathways.
The calculation of the new metrics is made possible by substantial computational improvements in the simulation algorithms for several widely used mathematical modeling paradigms for genetic regulatory networks, which are implemented in the regulatory network simulation framework Jimena created for this thesis.
Applying the new metrics to biological networks and artificial random networks shows how these mathematical concepts correspond to experimentally verified gene functions and signaling pathways in immunity and cell differentiation. In contrast to controversial previous results even from the Barabási group, all results indicate that the ability to control biological networks resides in only few driver nodes characterized by a high number of connections to the rest of the network. Autoregulatory loops strongly increase the controllability of the network, i.e. its ability to control itself, and biological networks are characterized by high controllability in conjunction with high robustness against mutations, a combination that can be achieved best in sparsely connected networks with densities (i.e. connections to nodes ratios) around 2.0 - 3.0.
The new concepts are thus considerably narrowing the gap between network science and biology and can be used in various areas such as system modeling, plausibility trials and system analyses.
Medical applications discussed in this thesis include the search for oncogenes and pharmacological targets, as well their functional characterization.
Neisseria meningitidis is a commensal bacterium which sometimes causes serious disease in humans. Recent studies in numerous human pathogenic bacteria have shown that the stringent response contributes to bacterial virulence. Therefore, this study analyzed the regulation of the stringent response in meningococci and in particular of RelA as well as its contribution to ex vivo fitness in a strain- and condition- dependent manner by using the carriage strain α522 and the hyperinvasive strain MC58 in different in vitro and ex vivo conditions.
Growth experiments revealed that both wild-type strains were almost indistinguishable in their ex vivo phenotypes. However, quantitative real time PCR (qRT-PCR) found differences in the gene expression of relA between both strains. Furthermore, in contrast to the MC58 RelA mutant strain α522 deficient in RelA was unable to survive in human whole blood, although both strains showed the same ex vivo phenotypes in saliva and cerebrospinal fluid. Moreover, strain α522 was depended on a short non-coding AT-rich repeat element (ATRrelA) in the promoter region of relA to survive in human blood. Furthermore, cell culture experiments with human epithelial cells revealed that in both strains the deletion of relA resulted in a significantly decreased invasion rate while not significantly affecting adhesion. In order to better understand the conditional lethality of the relA deletion, computational and experimental analyses were carried out to unravel differences in amino acid biosynthetic pathways between both strains. Whereas strain MC58 is able to synthesize all 20 amino acids, strain α522 has an auxotrophy for cysteine and glutamine. In addition, the in vitro growth experiments found that RelA is required for growth in the absence of external amino acids in both strains. Furthermore, the mutant strain MC58 harboring an ATRrelA in its relA promoter region showed improved growth in minimal medium supplemented with L-cysteine and/or L-glutamine compared to the wild-type strain. Contrary, in strain α522 no differences between the wild-type and the ATRrelA deletion mutant were observed.
Together this indicates that ATRrelA interferes with the complex regulatory interplay between the stringent response pathway and L-cysteine as well as L-glutamine metabolism. It further suggests that meningococcal virulence is linked to relA in a strain- and condition- depended manner. In conclusion, this work highlighted the role of the stringent response and of non-coding regulatory elements for bacterial virulence and indicates that virulence might be related to the way how meningococci accomplish growth within the host environments.
Bacterial small non-coding RNAs (sRNAs) play fundamental roles in controlling and finetuning gene expression in a wide variety of cellular processes, including stress responses, environmental signaling and virulence in pathogens. Despite the identification of hundreds of sRNA candidates in diverse bacteria by genomics approaches, the mechanisms and regulatory capabilities of these posttranscriptional regulators have most intensively been studied in Gram-negative Gammaproteobacteria such as Escherichia coli and Salmonella. So far, almost nothing is known about sRNA-mediated regulation (riboregulation) in Epsilonproteobacteria, including the major human pathogen Helicobacter pylori. H. pylori was even thought to be deficient for riboregulation as none of the sRNAs known from enterobacteria are conserved in Helicobacter and since it lacks the major RNA chaperone Hfq, which is crucial for sRNA function as well as stability in many bacteria. Nonetheless, more than 60 cis- and trans-acting sRNA candidates were recently identified in H. pylori by a global RNA sequencing approach, indicating that this pathogen, in principle, has the capability to use riboregulation for its gene expression control. However, the functions and underlying mechanisms of H. pylori sRNAs remained unclear.
This thesis focused on the first functional characterization and target gene identification of a trans-acting sRNA, RepG (Regulator of polymeric G-repeats), in H. pylori. Using in-vitro and in-vivo approaches, RepG was shown to directly base-pair with its C/Urich terminator loop to a variable homopolymeric G-repeat in the 5’ untranslated region (UTR) of the tlpB mRNA, thereby regulating expression of the chemotaxis receptor TlpB. While the RepG sRNA is highly conserved, the length of the G-repeat in the tlpB mRNA leader varies among different H. pylori isolates, resulting in a strain-specific tlpB regulation. The modification of the number of guanines within the G-stretch in H. pylori strain 26695 demonstrated that the length of the homopolymeric G-repeat determines the outcome of posttranscriptional control (repression or activation) of tlpB by RepG. This lengthdependent targeting of a simple sequence repeat by a trans-acting sRNA represents a new twist in sRNA-mediated regulation and a novel mechanism of gene expression control, since it uniquely links phase variation by simple sequence repeats to posttranscriptional regulation.
In almost all sequenced H. pylori strains, tlpB is encoded in a two gene operon upstream of HP0102, a gene of previously unknown function. This study provided evidence that HP0102 encodes a glycosyltransferase involved in LPS O-chain and Lewis x antigen production. Accordingly, this glycosyltransferase was shown to be essential for mice colonization by H. pylori. The coordinated posttranscriptional regulation of the tlpB-HP0102 operon by antisense base-pairing of RepG to the phase-variable G-repeat in the 5’ UTR of the tlpB mRNA allows for a gradual, rather than ON/OFF, control of HP0102 expression, thereby affecting LPS biosynthesis in H. pylori. This fine-tuning of O-chain and Lewis x antigen expression modulates H. pylori antibiotics sensitivity and thus, might be advantageous for Helicobacter colonization and persistence.
Whole transcriptome analysis based on microarray and RNA sequencing was used to identify additional RepG target mRNAs and uncover the physiological role of this riboregulator in H. pylori. Altogether, repG deletion affected expression of more than 40 target gene candidates involved various cellular processes, including membrane transport and adhesion, LPS modification, amino acid metabolism, oxidative and nitrosative stress, and nucleic acid modification. The presence of homopolymeric G-repeats/G-rich sequences in almost all target mRNA candidates indicated that RepG hijacks a conserved motif to
recognize and regulate multiple target mRNAs in H. pylori.
Overall, this study demonstrates that H. pylori employs riboregulation in stress response and virulence control. In addition, this thesis has successfully established Helicobacter as a new model organism for investigating general concepts of gene expression control by Hfq-independent sRNAs and sRNAs in bacterial pathogens.
The Notch signaling pathway is crucial for mammalian heart development. It controls cell-fate decisions, coordinates patterning processes and regulates proliferation and differentiation. Critical Notch effectors are Hey bHLH transcription factors (TF) that are expressed in atrial (Hey1) and ventricular (Hey2) cardiomyocytes (CM) and in the developing endocardium (Hey1/2/L). The importance of Hey proteins for cardiac development is demonstrated by knockout (KO) mice, which suffer from lethal cardiac defects, such as ventricular septum defects (VSD), valve defects and cardiomyopathy. Despite this clear functional relevance, little is known about Hey downstream targets in the heart and the molecular mechanism by which they are regulated.
Here, I use a cell culture system with inducible Hey1, Hey2 or HeyL expression to study Hey target gene regulation in HEK293 cells, in murine embryonic stem cells (ESC) and in ESC derived CM. In HEK293 cells, I could show that genome wide binding sites largely overlap between all three Hey proteins, but HeyL has many additional binding sites that are not bound by Hey1 or Hey2. Shared binding sites are located close to transcription start sites (TSS) where Hey proteins preferentially bind to canonical E boxes, although more loosely defined modes of binding exist. Additional sites only bound by HeyL are more scattered across the genome. The ability of HeyL to bind these sites depends on the C-terminal part of the protein. Although there are genes which are differently regulated by HeyL, it is unclear whether this regulation results from binding of additional sites by HeyL.
Additionally, Hey target gene regulation was studied in ESC and differentiated CM, which are more relevant for the observed cardiac phenotypes. ESC derived CM contract in culture and are positive for typical cardiac markers by qRT PCR and staining. According to these markers differentiation is unaffected by prolonged Hey1 or Hey2 overexpression. Regulated genes are largely redundant between Hey1 and Hey2. These are mainly other TF involved in e.g. developmental processes, apoptosis, cell migration and cell cycle. Many target genes are cell type specifically regulated causing a shift in Hey repression of genes involved in cell migration in ESC to repression of genes involved in cell cycle in CM.
The number of Hey binding sites is reduced in CM and HEK293 cells compared to ESC, most likely due to more regions of dense chromatin in differentiated cells. Binding sites are enriched at the proximal promoters of down-regulated genes, compared to up-or non-regulated genes. This indicates that up-regulation primarily results from indirect effects, while down-regulation is the direct results of Hey binding to target promoters. The extent of repression generally correlates with the amount of Hey binding and subsequent recruitment of histone deacetylases (Hdac) to target promoters resulting in histone H3 deacetylation.
However, in CM the repressive effect of Hey binding on a subset of genes can be annulled, likely due to binding of cardiac specific activators like Srf, Nkx2-5 and Gata4. These factors seem not to interfere with Hey binding in CM, but they recruit histone acetylases such as p300 that may counteract Hey mediated histone H3 deacetylation. Such a scenario explains differential regulation of Hey target genes between ESC and CM resulting in gene and cell-type specific regulation.
The DREAM complex plays an important role in regulation of gene expression during the cell cycle. It was previously shown that the DREAM subunits LIN9 and B-MYB are required for early embryonic development and for the maintenance of the inner cell mass in vitro. In this work the effect of LIN9 or B-MYB depletion on embryonic stem cells (ESC) was examined. It demonstrates that LIN9 and B-MYB knock down changes the cell cycle distribution of ESCs and results in an accumulation of cells in G2 and M and in an increase of polyploid cells. By using genome-wide expression studies it was revealed that the depletion of LIN9 leads to downregulation of mitotic genes and to upregulation of differentiation-specific genes. ChIP-on chip experiments determined that mitotic genes are direct targets of LIN9 while lineage specific markers are regulated indirectly. Importantly, depletion of LIN9 does not alter the expression of the pluripotency markers Sox2 and Oct4 and LIN9 depleted ESCs retain alkaline phosphatase activity. I conclude that LIN9 is essential for proliferation and genome stability of ESCs by activating genes with important functions in mitosis and cytokinesis. The exact molecular mechanisms behind this gene activation are still unclear as no DREAM subunit features a catalytically active domain. It is assumed that DREAM interacts with other proteins or co-factors for transcriptional activation. This study discovered potential binding proteins by combining in vivo isotope labeling of proteins with mass spectrometry
(MS) and further analysed the identified interaction of the tight junction protein ZO-2 with DREAM which is cell cycle dependent and strongest in S-phase. ZO-2 depletion results in reduced cell proliferation and decreased G1 gene expression. As no G2/M genes, typical DREAM targets, are affected upon ZO-2 knock down, it is unlikely that ZO-2 binding is needed for a functional DREAM complex. However, this work demonstrates that with (MS)-based quantitative proteomics, DREAM interacting proteins can be identified which might help to elucidate the mechanisms underlying DREAM mediated gene activation.
The transcription factor NFATc1 has been shown to regulate the activation and differentiation of T-cells and B-cells, of DCs and megakaryocytes. Dysregulation of NFAT signaling was shown to be associated with the generation of autoimmune diseases, malignant transformation and the development of cancer [71]. The primary goal of this work was to gain insights on Nfatc1 induction and regulation in lymphocytes and to find new direct NFATc1 target genes. Three new BAC -transgenic reporter mouse strains (tgNfatc1/Egfp, tgNfatc1/DE1 and tgNfatc1/DE2) were applied to analyze Nfatc1 induction and regulation in primary murine B- and T-cells. As a result, we were able to show the persistent requirement of immunoreceptor-signaling for constant Nfatc1 induction, particularly, for NFATc1/αA expression. Furthermore, we showed that NF-κB inducing agents, such as LPS, CpG or CD40 receptor engagement, in combination with primary receptor-signals, positively contributed to Nfact1 induction in B-cells [137]. We sought to establish a new system which could help to identify direct NFATc1 target genes by means of ChIP and NGS in genom-wide approaches. We were able to successfully generate a new BAC-transgene encoding a biotinylatable short isoform of NFATc1, which is currently injected into mice oocyte at the TFM in Mainz. In addition, in vivo biotinylatable NFATc1–isoforms were cloned and stably expressed in the murine B-cell lymphoma line WEHI-231. The successful use of these cells stably overexpressing either the short NFATc1/αA or the long NFATc1/βC isoform along with the bacterial BirA biotin ligase was confirmed by intracellular stainings, FACS analysis, confocal microscopy and protein IP. By NGS, we detected 2185 genes which are specifically controlled by NFATc1/αA, and 1306 genes which are exclusively controlled by NFATc1/βC. This shows that the Nfatc1 locus encodes “two genes” which exhibit alternate, in part opposite functions. Studies on the induction of apoptosis and cell-death revealed opposed roles for the highly inducible short isoform NFATc1/αA and the constantly expressed long isoform NFATc1/βC. These findings were confirmed by whole transcriptome-sequencing performed with cells overexpressing NFATc1/αA and NFATc1/βC. Several thousand genes were found to be significantly altered in their expression profile, preferentially genes involved in apoptosis and PCD for NFATc1/βC or genes involved in transcriptional regulation and cell-cycle processes for NFATc1/αA. In addition we were able to perform ChIP-seq for NFATc1/αA and NFATc1/βC in an ab-independent approach. We found potential new target-sites, but further studies will have to address this ambitious goal in the future. In individual ChIP assays, we showed direct binding of NFATc1/αA and NFATc1/βC to the Prdm1 and Aicda promoter regions which are individually controlled by the NFATc1 isoforms.
Neisseria meningitidis is a facultative human pathogen that occasionally shows strong resistance against serum complement exposure. Previously described factors that mediate meningococcal serum resistance are for example the capsule, LPS sialylation, and expression of the factor H binding protein. I aimed for identification of novel serum resistance factors, thereby following two approaches, i) the analysis of the impact of global regulators of gene expression on serum resistance; and ii) a comparative analysis of closely related strains differing in serum resistance. (i) Of six meningococcal global regulators of gene expression studied, only mutation of the zinc uptake regulator Zur reduced complement deposition on meningococci. Little was known about meningococcal Zur and regulatory processes in response to zinc. I therefore elucidated the yet unidentified meningococcal Zur regulon comparing the transcriptional response of the N. meningitidis strain MC58 under zinc-rich and zinc-deficient conditions using a common reference design of microarray analysis. The meningococcal Zur regulon comprises 17 genes, of which 15 genes were repressed and two genes were activated at high zinc condition. Amongst the Zur-repressed genes were genes involved in zinc uptake, tRNA modification, and ribosomal assembly. A 23 bp meningococcal consensus Zur binding motif (Zur box) with a conserved central palindrome was established (TGTTATDNHATAACA) and detected in the promoter region of all regulated transcriptional units (genes/operons). In vitro binding of meningococcal Zur to the Zur box of three selected genes was shown for the first time using EMSAs. Binding of meningococcal Zur to DNA depended specifically on zinc, and mutations in the palindromic sequence constrained Zur binding to the DNA motif. ii) Three closely related strains of ST-41/44 cc from invasive disease and carriage which differed in their resistance to serum complement exposure were analysed to identify novel mediators of serum resistance. I compared the strains’ gene content by microarray analysis which revealed six genes being present in both carrier isolates, but absent in the invasive isolate. Four of them are part of two Islands of horizontally transferred DNA, i.e. IHT-B and –C. The working group furthermore applied a comprehensive screening assay, a transcriptome and a proteome analysis leading to identification of three target proteins. I contributed to establish the role of these three proteins in serum resistance: The adhesin Opc mediates serum resistance by binding of vitronectin, a negative regulator of the complement system; the hypothetical protein NMB0865 slightly contributes to serum resistance by a yet unknown mechanism; and NspA, recently identified to bind the negative complement regulator factor H, led to considerable reduced complement-mediated killing.
Hey-mutant mouse hearts at embryonic day E14.5 were shown to react to the knock out of Hey2 with several up-regualted genes. This up-regulation is due to the lack of Hey2 and cannot be explained by the structural changes in heart morphology as shown using control animals. Part of the gene regulation was further validated using in situ hybridization. Hey1 was located to the nucleus in immunofluorescence experiments. However, experiments on protein level showed also amount of Hey1 within the cytoplasm. The nuclear localization of Hey1 was unchanged during all cell cycle phases as well as when CaMKII was co-expressed or other cellular pathways were inhibited or stimulated. Hey1 does not seem to interact with the nuclear transport proteins importin-alpha and -beta, therefore it still needs to be elucidated how Hey1 is transported into the nucleus.
The study of animal development is one of the oldest disciplines in the field of biology and the collected data from countless investigations on numerous species have formed a general understanding of the animal life-cycle. Almost one century ago, one consequence of these intense investigations was the discovery of specific morphological changes that occur during the cleavage phase, a period that follows fertilization and egg activation at the very beginning of animal embryogenesis. These observations resulted into the formulation of the concept of a midblastula transition (MBT). So far, the mechanism of the nucleo-cytoplasmic ratio model is the only one that explains MBT regulation in a satisfying way. It suggests that the MBT is controlled by several maternal repressive factors in the egg, which are titrated out by every cell division until they lose their repressing potential. Although this regulatory mechanism was proven for several species and in different approaches, it is still only a rudimentary model for MBT control and leaves numerous questions unanswered. On this conceptual background, this thesis has shown that embryos from the medaka fish (Oryzias latipes) lose their cell cycle synchrony already after the fourth or fifth round of cell divisions, and replace it by a metasynchronous divisions pattern, in which cell division occurs in clear waves beginning in the embryo's center. The reason for this change in division mode is still unknown, although several hypotheses were put forward, most notable a difference in yolk-access between cells. However, this theory was weakened by division waves that progressed from one embryonic pole to the opposing one, which were occasionally observed in deformed embryos, leaving the mechanism for this phenomenon furthermore unclear. Those deformed embryos were most likely the result of asymmetric cell divisions at very early stages, a phenomenon which occurred in a significant percentage of medaka embryos and which directly influenced the equal distribution of cytoplasmic material. It could not beuncovered what kind of effects this unequal distribution of cytoplasm exerted on the progression of embryonic development, but it can be argued that relevant differences in cell volumes could result in cell clusters that will enter MBT at different time points. Comparable observations were already made in other species and it was hypothesized that they were the direct results of early unequal cell cleavages. Finally, it was demonstrated that zygotic transcription in medaka embryos is activated prior to the hitherto assumed time of the first transcriptional initiation. Moreover, indications were found that strongly speak for a transcriptional activation that occurs in two steps; a first step at the 16-cell stage when first cells were identified positive for RNAPII phosphorylation, and a second step at the 64-cell stage, when the number of p-RNAPII positive cells significantly increased. A stepwise activation of zygotic transcription was already observed in other species, but only for the overall increasing amount of mRNAs and irrespective of the actual number of transcriptionally active cells within the embryos. .. Overall, these data confirm and expand the basic knowledge of pre-MBT embryos and about the MBT itself. Furthermore, they also suggest that many early processes in pre-MBT embryos are only rudimentarily understood or still totally unknown.
Precise control of mitotic progression is vital for the maintenance of genomic integrity. Since the loss of genomic integrity is known to promote tumorigenesis, the identification of knew G2/M regulatory genes attracts great attention. LINC, a human multiprotein complex, is a transcriptional activator of a set of G2/M specific genes. By depleting LIN9 in MEFs, a core subunit of LINC, Gas2l3 was identified as a novel LINC target gene. The so far uncharacterized Gas2l3 gene encodes for a member of the family of growth arrest specific 2 (GAS2) proteins, which share a highly conserved putative actin binding CH and a putative microtubule binding GAS2 domain. In the present study GAS2L3 was identified as a LINC target gene also in human cells. Gene expression analysis revealed that GAS2L3 transcription, in contrast to all other GAS2 family members, is highly regulated during the cell cycle with highest expression in G2/M. The GAS2L3 protein showed a specific localization pattern during the M phase: In metaphase, GAS2L3 localized to the mitotic spindle, relocated to the spindle midzone microtubules in late anaphase and concentrated at the midbody in telophase where it persisted until the end of cytokinesis. Overexpression of a set of different GAS2L3 deletion mutants demonstrated that the localization to the mitotic microtubule network is dependent on the C-terminus, whereas the midbody localization is dependent on full length GAS2L3 protein. Additionally, exclusive overexpression of the CH domain induced the formation of actin stress fibers, suggesting that the CH domain is an actin binding domain. In contrast, the GAS2 domain was neither needed nor sufficient for microtubule binding, indicating that there must be an additional so far unknown microtubule binding domain in the C-terminus. Interestingly, immunoblot analysis also identified the C-terminus as the domain responsible for GAS2L3 protein instability, partially dependent on proteasomal degradation. Consistent with its specific localization pattern, GAS2L3 depletion by RNAi demonstrated its responsibility for proper mitosis and cytokinesis. GAS2L3 depletion in HeLa cells resulted in the accumulation of multinucleated cells, an indicator for chromosome mis-segregation during mitosis. Also the amount of cells in cytokinesis was enriched, indicating failures in completing the last step of cytokinesis, the abscission. Strikingly, treatment with microtubule poisons that lead to the activation of the spindle assembly checkpoint (SAC) indicated that the SAC was weakened in GAS2L3 depleted cells. Although the exact molecular mechanism is still unknown, fist experiments support the hypothesis that GAS2L3 might be a regulator of the SAC master kinase BUBR1. In conclusion, this study provides first evidence for GAS2L3 as a novel regulator of mitosis and cytokinesis and it might therefore be an important guardian against tumorigenesis.
Fanconi Anämie (FA) ist eine autosomal rezessive, im Falle der Untergruppe FA-B X-chromosomale Erbkrankheit, die mit chromosomaler und genomischer Instabilität verbunden ist und sich durch große phänotypische und genetische Heterogenität auszeichnet. Symptomatisch sind Knochenmarksversagen, eine Vielfalt angeborener Fehlbildungen, die weit überdurchschnittliche Disposition für akute myeloische Leukämie (AML), Plattenepithelkarzinome (SCC) sowie eine zelluläre Hypersensitivität gegenüber DNA Doppelstrangvernetzenden Substanzen. FA wird kompliziert durch ein progressives Knochenmarksversagen. Die FA Proteine sind essentiell für die interstrand crosslink (ICL) repair sowie an anderen DNA Reparatursystemen, beteiligt. Bisher wurden hauptsächlich Regulationsmechanismen untersucht, die die FA Proteine betreffen. Die Regulation der Transkripte war bisher nahezu unbekannt. In der vorliegenden Arbeit wurde die transkriptionelle Regulation der sogenannten FA core complex Gene untersucht. Dabei handelt es sich um acht Gene, deren Produkte im Falle eines DNA Schadens den ersten Proteinkomplex des FA/BRCA Signalweges bilden. Für diese acht Gene wurden in dieser Arbeit die Promotoren identifiziert und ihr Aktivierungspotential charakterisiert. Dabei stellte sich heraus, dass diese ein starkes Potential für die Transkriptionsinitiierung besitzen. Des Weiteren zeigten sich Gemeinsamkeiten in Form von Sequenzmotiven sowie Transkriptionsfaktorbindestellen, die in allen core complex Genen nahezu identisch waren. Durch diese Analysen ergaben sich Hinweise, dass die untersuchten Gene durch Mitglieder des JAK/ STAT (STAT1/4) sowie des TGF-b Signalwegs (SMAD1/4) reguliert werden. Funktionelle Untersuchungen mittels siRNA sowie Fibroblastenzelllinen, die biallelische FANCA Mutationen trugen, bestätigten diese Verbindungen. So hatte der knockdown der entsprechenden Transkriptionsfaktoren einen reduzierenden Einfluss auf die Transkriptmenge der core complex Gene. FANCA-mutierte Zelllinen weisen reduzierte mRNAs von STAT und SMAD auf. Darüber hinaus fanden sich signifikante Änderungen der Transkriptmenge in 112 verschiedenen Mitgliedern dieser Signalwege in den FA-A Zellinien. Eines dieser Mitglieder, IRF1, zeigte fast identische Ergebnisse wie sie bei STAT1/4 sowie SMAD1/4 beobachtet werden konnten. Die vorliegende Arbeit trägt dazu bei, die transkriptionelle Regulation der core complex Gene besser zu verstehen. Die auffälligen Gemeinsamkeiten ihrer Regulation liefern neue Argumente für eine Koevolution dieser Gene.
Induktion von NF-κB durch Albumin in immortalisierten humanen proximalen Tubuluszellen (IHKE-1)
(2011)
Hintergurnd: Erhöhte glomeruläre Filtration von Proteinen im Rahmen chronoischer Nierenenerkrankungen geht mit tubulointerstitiellem Schaden einschließlich Entzündung und fortschreitendem Funktionsverlust der Nierenfunktion einher. Proteine wie Albumin scheinen dabei per se eine pathogenetische Rolle zu spielen. Der Transkriptionsfaktor nuclear factor kappa B (NF-kB) scheint an den durch Proteinüberladung verursachten Pathomechanismen der Nierenentzündung beteiligt zu sein. Um die Albumin-induzierte Expression von NF-kB sowie die Expression des NF-kB-regulierten proinflammatorischen Zytokins Tumor Necrosis Faktor alpha (TNF-a) nach Exposition mit Albumin in humanen proximalen Tubuluszellen zu überprüfen, exponierten wir humane, von proximalen Tubuluszellen abstammende Zellen (IHKE-1) mit bovinem Serumalbumin (BSA: 50 und 500 microg/ml). Die NF-KB- und TNF-a-spezifische mRNA-Expression wurde durch RT-PCR bestimmt. NF-kB-spezifische Proteinexpression wurde mit Western-Blot-Verfahren analysiert. Ergebnisse: Albumin-induziert einen Anstieg der NF-kB-spezifischen mRNA-Expression und NF-kB-spezifischen Proteinexpression. Diese Effekte werden durch den Protein Kinase C-Inhibitor Bisindolylmaleimid und den Tyrosin Kinase Inhibitor Herbimycin A gehemmt. Ein Albumin.induzierter Anstieg der TNF-a-spezifischen mRNA-Expression als biologischer inflammatorischer Parameter war als mit der NF-B-Aktivität assoziiert messbar.
Die Gattung Bordetella, die phylogenetisch in die Gruppe der β-Proteobakterien eingeordnet und zur Familie der Alcaligenaceae gezählt wird, umfasst nach heutigem Wissenstand neun Gram-negative Arten. Die klassischen Bordetella-Arten B. pertussis, B. parapertussis und B. bronchiseptica werden im sogenannten B. bronchiseptica-Cluster zusammengefasst. Der strikt humanpathogene Erreger B. pertussis stellt als Verursacher des Keuchhustens das wohl bedeutendste Mitglied der Gattung dar. B. parapertussis ist der Verursacher von respiratorischen Erkrankungen in Menschen und Schafen, während B. bronchiseptica für Atemwegserkrankungen in verschiedenen Säugetieren verantwortlich gemacht wird. Zudem kann B. bronchiseptica für einen längeren Zeitraum in der Umwelt überleben. Die in den letzte Jahren identifizierten „neuen“ Bordetella-Arten, B. avium, B. hinzii, B. holmesii, B. trematum und B. ansorpii, wurden alle human- oder tierassoziiert isoliert und besitzen unterschiedliches pathogenes Potential, das zum Teil noch näher untersucht werden muss. Eine Ausnahme stellt der aus einer anaeroben dechlorinierten Flusssediment-Anreicherungskultur isolierte Keim B. petrii dar. Dieser ist bis zum heutigen Zeitpunkt der einzige Umweltkeim der Gattung Bordetella (von Wintzingerode, Schattke et al. 2001). In evolutionärer Hinsicht ist B. petrii besonders interessant, da er sowohl für orthologe Gene einiger Virulenzfaktoren der pathogenen Bordetellen kodiert, als auch die typischen Eigenschaften eines Umweltkeims aufweist und somit als Bindeglied zu fungieren scheint. Ein solcher Virulenzfaktor ist das BvgAS-System, das in den pathogenen Bordetellen den Hauptregulator der Virulenzgenexpression darstellt, aber in B. petrii strukturell komplexer aufgebaut ist. Neben dem auf Aminosäureebene hoch konservierten Response Regulator bvgA, finden sich in B. petrii Gene für zwei Histidinkinasen, bvgS1 und bvgS2, sowie eine unabhängige hpt-Domäne. Eine periplasmatische Sensordomäne fehlt in beiden Kinasen, und nur in BvgS1 konnte eine PAS-Domäne identifiziert werden. In den letzten Jahren wurden zunehmend B. petrii-Isolate aus den verschiedensten Habitaten isoliert, wie z.B. das Schwammisolate R521 (Sfanos, Harmody et al. 2005) und das klinisches Isolat aus einem Patienten mit mandibulärer Osteomyelitis (Fry, Duncan et al. 2005). Im Rahmen dieser Arbeit wurde über einen PCR-Ansatz versucht, mit aus der Wildtypsequenz abgeleiteten Oligonukleotiden das BvgAS1,2-System der Isolate zu sequenzieren, aber nur im klinischen Isolat konnte ein orthologes Genfragment zum Response Regulator bvgA identifiziert werden. Ein Nachweis der Histidinkinasen sowie der hpt-Domäne schlug in allen untersuchten Isolaten fehl. Die vergleichenden Genomanalysen mittels DNA-Microarrays konnten aufgrund fehlender Hybridisierungen keine weiteren Gemeinsamkeiten und Unterschiede auf DNA-Ebene zwischen den Isolaten und B. petrii DSM 12804 aufzeigen. B. petrii ist ein hoch variabler Umweltkeim, der sich an verschiedene Lebensbedingungen anpassen kann. Dies konnte auch durch die Isolation dreier phänotypisch unterscheidbare Varianten während eines Langzeitwachstumsversuches gezeigt werden (Lechner 2008). Durch die Genomsequenzierung von B. petrii DSM 12804 konnten wenigsten sieben genomischen Inseln beschrieben werden (Gross, Guzman et al. 2008), die durch unterschiedliche Exzision für die Entstehung der Varianten und daraus resultierend für die Variabilität in B. petrii verantwortlich sind. Im Rahmen dieser Arbeit konnte die Größe der einzelnen genomischen Inseln im Genom von B. petrii durch vergleichende Genomanalysen mittels DNA-Microarrays, mit Ausnahme von GI1, GI5 und GI6, im Vergleich zu den bioinformatischen Vorhersagen bestätigt werden. Diese Inseln zeigten in den Microarray-Analysen eine Vergrößerung bzw. Verkleinerung im Vergleich zu den zuvor beschrieben putativen Grenzen. Die große Instabilität des Genoms von B. petrii DSM 12804 konnte in dieser Arbeit auch durch Microarray-Analysen einzelner Klone aufgezeigt werden, die unterschiedliche Variationen im Bereich der genomischen Inseln aufwiesen. In den Analysen von B. petrii 12804 ΔbvgA bzw. ΔbvgAS konnten zusätzlich zu den gezielten Manipulation im BvgAS1,2-Lokus weitere Deletionen im Bereich von bpet0196-0200, bpet4219-4235 und bpet4176 detektiert werden. Die Re-Integration dieser Genbereiche nach Klonierung einer BvgA-Komplementationsmutante deutet auf eine extrachromosomale plasmid-ähnliche Struktur dieser Bereiche hin. Dies konnte im Rahmen dieser Arbeit nicht abschließend bestätigt werden und bleibt weiter zu untersuchen. Im Verlauf der evolutionären Entwicklung der Bordetellen wurde das BvgAS-System, das ursprünglich für die Adaption an Umweltbedingungen mit verschiedenen Sauerstoff-konzentrationen und/oder Temperaturen zuständig war, mit der Regulation der Expression der Virulenzgene verknüpft (von Wintzingerode, Gerlach et al. 2002). In den Transkriptomanalysen zur Untersuchung der Funktionalität des BvgAS1,2-Systems in B. petrii konnte aufgezeigt werden, dass die Temperatur ein wichtiger Signalgeber für die Expression des Flagellen- und Chemotaxisoperons ist. In B. bronchiseptica wird die Motilität, bei Temperaturen unter 25°C, negativ durch das BvgAS-System reguliert. Auch in B. petrii konnte in den Untersuchungen eine negative Regulation der Flagellen- und Chemotaxisgene durch das BvgAS1,2-System unter diesen Bedingungen detektiert werden. Ob aber in B. petrii die gleiche hierarchische Struktur zur Regulation der Motilität besteht wie in B. bronchiseptica, bleibt zu untersuchen. Im Verlauf der Untersuchungen konnte dem BvgAS-Zwei-Komponentensystem in B. petrii auch eine Funktion im Energiestoffwechsel eingeräumt werden, um auf wechselnde Sauerstoffbedingungen reagieren zu können. Die Messung des Sauerstoffgehaltes der Umgebung und damit eine Regulation der aeroben bzw. anaeroben Atmung erfolgt in B. petrii wahrscheinlich ebenfalls über das BvgAS1,2-System. Die in der Histidinkinase BvgS1 vorhergesagte PAS-Domäne scheint laut den Analysen für diesen Vorgang von großer Bedeutung zu sein. Desweiteren scheint das System auch die Zusammensetzung der Cytochromoxidase zur optimalen Anpassung an aerobe, mikroaerophile und anaerobe Bedingungen zu regulieren.
Östrogen bewirkt in physiologischer Konzentration in Kardiomyozyten eine schnelle Induktion des Egr-1-Promotors. Dieser Effekt wird über die Östrogenrezeptoren ER alpha und ER beta vermittelt. Überraschenderweise erfolgt die östrogenabhängige Genregulation von Egr-1 aber nicht über den klassischen Signalweg mittels Bindung des Östrogenrezeptors an östrogenresponsive Elemente (ERE), sondern findet unter Bindung von Serumfaktor an serumresponsive Elemente (SRE) des Egr-1-Promotors unter Mitbeteiligung des ERK1/2-Signalweges statt. Am Beispiel der Egr-1-Induktion durch Östrogen ließ sich die Bedeutung serumresponsiver Elemente (SRE) für die Genregulation durch Östrogen aufzeigen. In der vorliegenden Arbeit konnte damit ein neuartiger Signalweg bei der östrogenabhängigen schnellen Genaktivierung in Kardiomyozyten gezeigt werden.
MicroRNAs sind kleine, nicht kodierende RNA-Moleküle, die posttranskriptionell die Genexpression regulieren. Sie binden hierfür spezifisch an 3’-UTRs von messenger-RNAs und führen entweder direkt zu deren Abbau oder inhibieren deren Translation. Über die Mechanismen, die die Expression von microRNAs regulieren, ist jedoch noch wenig bekannt. Die Tatsache, dass sie als lange Vorläufermoleküle (pri-microRNAs) durch die RNA-Polymerase-II transkribiert werden, legt die Existenz eines Promotorbereiches nahe, der dem proteinkodierender Gene ähnelt. Mit Hilfe von microRNA-Arrays konnten wir im linksventrikulären Myokard mehrere bei Herzinsuffizienz deutlich verändert exprimierte microRNAs identifizieren. Die microRNA-21 ist dabei bereits im Frühstadium der Herzinsuffizienz verstärkt exprimiert (Northern Blot). Auch in primären, kardialen Zellen (Fibroblasten, Kardiomyozyten) wird die microRNA-21 nach Induktion einer Hypertrophie verstärkt exprimiert. Weiterführendes Ziel dieser Arbeit war es nun, diejenigen Mechanismen aufzuklären, die der starken Induktion der microRNA-21 im erkrankten Myokard zu Grunde liegen. Durch bioinformatische Analyse des zugehörigen Promotorbereiches (Trans-Spezies-Konservierung) und Klonierung danach ausgerichteter Fragmente in Luciferase-basierte Reporter-Plasmide konnte ein 118 Basen langer Bereich identifiziert werden, der maßgeblich die Expression der microRNA-21 im Herzen bedingt. Durch Deaktivierung einzelner cis-Elemente konnte die kardiale Expression auf zwei essentielle Transkriptionsfaktorbindungsstellen zurückgeführt werden. Es handelt sich dabei um Erkennungssequenzen für die im Herz bedeutsamen Transkriptionsfaktoren CREB und SRF. Sie liegen in enger räumlicher Nachbarschaft ungefähr 1150 bp vor der Transkriptionsstartstelle. Die Suppression der Expression dieser beiden Transkriptionsfaktoren mittels geeigneter siRNAs führte jeweils zu einer signifikanten Aktivitätsminderung des microRNA-21-Promotors und konnte somit die vorangehenden Ergebnisse validieren. Durch Generierung einer transgenen Tierlinie, die lacZ unter der Kontrolle des microRNA-21-Promotors exprimiert, werden in naher Zukunft nähere Aufschlüsse über die gewebsspezifische Verteilung der microRNA-21-Expresssion in vivo möglich sein. Zusammenfassend beschreiben wir hier erstmals den Mechanismus der transkriptionellen Regulation der microRNA-21 im Herzen. Dieser Mechanismus bedingt wahrscheinlich die starke Induktion dieser microRNA bei kardialer Hypertrophie und Herzinsuffizienz.