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Institute
Almost two decades ago, microRNAs were discovered as novel posttranscriptional regulators of gene expression. Since then, research efforts have uncovered their involvement in the control of various cellular processes including migration, proliferation and cell survival. Even more complex events, such as the formation of new blood vessels or organ development, have been shown to be tightly regulated and orchestrated by microRNAs. Due to their crucial regulatory role in tissue homeostasis in vertebrates, it does not come as a big surprise that dysregulated microRNA ex-pression is associated with pathology of diverse diseases. In this regard, the miR-17-92 cluster is a prime example since it has become famous for its amplified expression in tumours and its on-cogenic potential. Our lab demonstrated the expression of the members of the miR-17-92 cluster, namely miR-17, -18a, -19a, -20a, -19b and -92a, in endothelial cells and provided evidence for the anti-angiogenic activity of miR-92a in ECs as well as its important regulatory role in tissue re-covery after ischemia. In this work we addressed the function of the remaining members of the miR-17-92 cluster, i.e. miR-17, miR-18a, miR-19a and miR-20a, in endothelial cells and angiogenesis. Surprisingly, the individual members all displayed anti-angiogenic properties in endothelial cells in vitro, although overexpression of the whole cluster in transformed colonocytes was shown to promote tumour angiogenesis in a mouse model. In this context, we provide evidence that the individual miRs differentially affect the paracrine angiogenic activity of endothelial and tumour cells. Moreover, Antagomir-mediated inhibition of miR-17/20 in a mouse tumour model did not affect tumour angi-ogenesis, although miR-17/20 inhibition profoundly increased vascularization of Matrigel plugs. Thus, our research efforts suggest a differential involvement of the members of the miR-17-92 cluster in physiological and tumour angiogenesis. Additionally, we identified Janus kinase (JAK) 1 as a novel miR-17 target in endothelial cells and demonstrated the involvement of JAK1 in angio-genesis and in the phosphorylation of STAT3 in response to different cytokines in vitro. Overall, inhibition of specific members of the miR-17-92 cluster might represent an attractive therapeutic strategy to enhance angiogenesis in ischemic diseases. In the second part of the present work we investigated the therapeutic value of Antagomir-mediated microRNA inhibition in animal models of pulmonary arterial hypertension. Collectively, inhibition of miR-17 by the respective Antagomir revealed a significant improvement of pulmonary hemodynamics and cardiac function in both the chronic hypoxia mouse model and the mono-crotaline-induced lung injury rat model. Histomorphometric analysis of the lungs of the pulmonary hypertensive mice and rats uncovered a significant reduction of disease associated musculariza-tion of pulmonary arteries in Antagomir-17 treated animals compared to the control animals indicating interference with smooth muscle cell proliferation or survival. Probing of lung tissue of the pulmonary hypertensive rats for selected miR-17 targets uncovered a profound increase in the expression of the cyclin dependent kinase inhibitor p21 in the Antagomir-17 treated rats suggest-ing that inhibition of miR-17 impairs proliferation by impeding cell cycle progression. Analysis of miR-17 function in human smooth muscle cells in vitro corroborated the results from the animal experiments by demonstrating pro-proliferative activity of miR-17 and decreased levels of p21 in these cells. Collectively, our results indicate that Antagomir-17 improves pulmonary hemodyna-mics and cardiac function by interfering with vascular remodelling within the lung. Hence, inhibi-tion of miR-17 might be of therapeutic value to ameliorate the disease pattern in pulmonary arte-rial hypertension. In summary, the present work provides insights into the regulatory functions of members of the miR-17-92 cluster, especially miR-17, in blood vessels and suggests that specific inhibition of members of the miR-17-92 cluster might be a novel option to treat vascular diseases.
Membrane proteins (MPs) constitute about 30% of the genome and are essential in many cellular processes. In particular structural characterisation of MPs is challenged by their hydrophobic nature resulting in expression difficulties and structural instability upon extraction from the membrane. Despite these challenges, progress in sample preparation and the techniques to solve MP structures has led to 281 unique MP structures as of January 2011. Through the combination of a cell-free expression system and selective labelling strategies, this thesis aimed to advance the structure determination of α-helical MPs by NMR spectroscopy and resulted in the structure determination of a seven-ransmembrane-helix protein. Results were obtained for the 5-lipoxygenase-activating protein (FLAP) and proteorhodopsin (PR). The detergent-based cell-free expression mode proved most efficient for production of both targets, but optimisation of FLAP and PR followed different routes. The presence of a retinal cofactor in PR greatly facilitated the search for an appropriate hydrophobic environment. For structural studies, NMR spectra of FLAP indicated favourable properties of the lysolipid LPPG. In contrast, PR was stable and homogenous in the short-chain lipid diC7PC. As NMR spectra of α-helical MPs are generally characterised by broad lines and signal overlap, selective labelling strategies were essential in the assignment process of both targets. For the backbone assignment of FLAP the transmembrane segment-enhanced (TMS) labelling was developed, employing the six amino acids AFGILV. These residues cluster predominantly in transmembrane helices and form long stretches allowing a large extent of backbone assignment. Besides that, the combinatorial labelling enables identification of unique pairs in the sequence based on a mixture of 15N and 1-13C-labelled amino acids. To find the optimal labelling pattern for a given primary structure, the UPLABEL algorithm has been made available and successfully applied in the backbone assignment of PR. Both selective labelling approaches greatly benefitted from the use of a cell-free expression system to reduce isotope scrambling. Additionally, the de novo structure of PR was determined with an average backbone rmsd of 1.2 Å based on TALOS-derived backbone torsion angles, intrahelical hydrogen bond restraints and distance restraints from the NOE and paramagnetic relaxation enhancement (PRE). A major bottleneck in the NMR structure determination of MPs concerns the number of long-range distances which are often limited. In PR, side chain assignment was enabled by stereo-array isotope labelling as well as selective labelling which provided 33 long-range NOEs. These NOEs stabilised the symmetry of the seven helix bundle. With a total number of 1031, the majority of long-range distances were derived from PREs. The structure of PR reveals differences to its homologues such as the absence of an anti-parallel β-sheet between helices B and C and allows conclusions towards the mechanism of colour tuning.
Ubiquitin is a highly conserved protein involved in several cellular processes like protein degradation, endocytosis, signal transduction and DNA repair. The discovery of ubiquitin-like proteins (UBL) and ubiquitin-like domains (ULD) increases the number of regulation pathways where the property of the ubiquitin-fold is profitable.
Autophagy is the catabolic pathway used in cells to deliver cytosolic components and dysfunctional organelles to the lysosome for degradation. MAP1LC3 proteins are ubiquitin-like proteins involved in one hand for the expansion of the autophagosome, which sequesters cytosolic substrates. In the other hand, these proteins (LC3- and GABARAP- subfamilies) bind to autophagic receptors linked to polyubiquitinated proteins aggregates. For this project, the 3D structure of the GABARAPL-1/NBR1-LIR complex was determined and confirmed that GABARAPL-1 belongs to the MAP1LC3 proteins family, structurally characterized by an ubiquitin-fold, consisting of a central beta-sheet formed by four beta-strands and two alpha-helices on one side of the beta-sheet, preceded N terminally by two alpha-helices, resulting in the formation of two hydrophobic pockets, hp1 and hp2. The autophagic receptor NBR1 interacts with GABARAPL-1 through the hp1 and hp2 with its LIR motif taking an extended beta conformation upon binding, forming an intermolecular beta-sheet with the second beta-strand of GABARAPL 1. This LC3- interacting region (LIR) consists of an Theta XX Gamma sequence preceded by acidic amino acids, with Theta and Gamma represented by any aromatic and hydrophobic residues, respectively. Interaction studies of the LIR domains of p62, Nix and NBR1 with different members of the MAP1LC3 proteins family indicate that the presence of a tryptophan in the LIR motif increases the binding affinity. Substitution to other aromatic amino acids or increasing the number of negatively charged residues at the N-terminus of the LIR motif, however, has little effect on the binding affinity due to enthalpy-entropy compensation, suggesting that effector proteins can interact with a wide variety of different sequences with similar and moderate binding affinities.
Additionally to be present in proteins dealing with protein folding and degradation, ubiquitin-like domain were found protein involved in the regulation of signal transduction like TBK1, a serine/threonine kinase responsible for induction of immune response. In this second project, based on the NMR chemical shifts of the TBK1 domain contained between amino acids 302 and 383, secondary structure prediction programs (TALOS and CSI) confirmed the presence of an Ubiquitin-like domain in TBK1 by identifying one alpha-helix and four beta-strands sequentially aligned like following beta-beta-alpha-beta-beta. This alignment corresponds perfectly with the secondary structure elements of Ubiquitin and proved that TBK1_ULD belongs to the UBL protein superfamily. The similarity to ubiquitin was even bigger by the presence in addition of a small beta-strand and a short helix, which are observed as the beta 5-strand and a 310-helix in Ubiquitin, respectively. The first attempts on the 3D structure determination confirmed the Ub-fold but due to the lack of assignment in TBK1_ULD, only a structure based on ubiquitin as a model was determined. Interaction studies of TBK1_ULD with the IAD-SRR domain of IRF3 showed that both side of the molecule seems involved and that the TBK1/IRF3 interaction is more complex than a one to one binding process. Unfortunately, the instability of TBK1_ULD associated to the difficulty in the purification of IAD-SRR did not allow to further study this interaction more precisely.
Finally, to overcome the difficulty encountered in NMR experiments because of low expression and/or poor solubility, an expression vector using the intrinsic property of ubiquitin was designed. Fused to proteins or peptides targets, this construct produced proteins and peptides in a larger amount than with traditional expression vectors and also with a less cost than chemical synthesis for pure labeled peptides for NMR structural studies. The presence of a hexa histidine tag was useful for the isolation and the purification of the constructs. The existence of a TEV cleavage site was created to keep the possibility of releasing the ubiquitin moiety from the expressed protein or peptide. Moreover, the ubiquitin-tag could also still be attached to the protein/peptide of interest when biophysical methods like NMR, ITC or CD spectroscopy are applied, providing the same results than for the protein/peptide moiety alone.
In der vorliegenden Dissertation stand die Aufklärung der Funktion und Regulation von p21 in der Mitose im Mittelpunkt. p21 ist als Cdk-Inhibitor und Schlüsselregulator bekannt, der in viele fundamentale zelluläre Prozesse involviert ist: Zellzyklusregulation, Apoptose, Seneszenz, Zellmigration und Dynamik des Zytoskeletts, Transkription, Differenzierung sowie DNA-Reparatur, aber auch in die Umprogrammierung induzierter pluripotenter Stammzellen (Besson et al. 2008; Abbas und Dutta 2009; Jung et al. 2010).
Die unkontrollierte Proliferation von Zellen ist mit der Tumorgenese assoziiert und wird unter anderem durch die Fehlregulation von p21, aber auch durch die wichtigen mitotischen Kinasen Cdk1, im Komplex mit ihrer regulatorischen Untereinheit Cyclin B1, sowie Plk1 bedingt. Zudem ist das Fehlen von p21 oder die Fehllokalisation in das Zytoplasma mit einer schlechteren Prognose für den Patienten und Chemotherapie-Resistenz von Tumoren verbunden (Abukhdeir und Park 2008). Aufgrund der zunehmenden Inzidenz und Mortalität von Krebserkrankungen ist es daher von besonderem klinischem Interesse, die molekularen Ursachen für die Entstehung maligner Tumorerkrankungen aufzuklären. Bislang existieren kaum Studien über welche molekularen Mechanismen die Funktionen von p21, dem wichtigsten Cdk-Inhibitor, der zum Beispiel durch die Anwendung niedermolekularer Inhibitoren wie BI 2536, das sich bereits in klinischen Phase II Studien befindet (Strebhardt 2010), beeinflusst wird, während der Mitose reguliert werden.
In der vorliegenden Dissertation wurde daher die physiologische Rolle des Cdk-Inhibitors bzw. Regulators p21 während der Mitose untersucht und mit der Kinaseaktivität von Cdk1/Cyclin B1, wie auch Plk1 korreliert. Es konnte gezeigt werden, dass p21 während der Mitose stark exprimiert wird und dass mitotisches p21 in verschiedenen Krebszelllinien unabhängig von dem p53-Status in einer phosphorylierten Form vorkommt, welche mit der Aktivität von Cdk1 und weniger mit der von Cdk2 assoziiert ist. Durch Untersuchungen der isogenen HCT116-Zelllinien mit und ohne p21 wurde aufgezeigt, wie wichtig p21 für den ordnungsgemäßen Ablauf der Mitose ist. Ohne p21 sind sowohl die Anaphase wie auch die Zytokinese verlängert, die Zellen ordnen die Chromosomen fehlerhaft in der Metaphaseplatte an (congression Fehler), besitzen weitaus mehr lagging Chromosomen und fast 20 % der Zellen weisen im Versuchsverlauf Polyploidie auf. Durch den Verlust des Cdk-Regulators p21 kommt es zur Fehlregulation von Cdk1 und seiner Substrate (wie MCAK) und es treten die oben beschriebenen Probleme auf.
Weiterhin phosphoryliert Cdk1/Cyclin B1 p21 an Ser-130 in vitro und ex vivo in der frühen Phase der Mitose, der Prophase bzw. Prometaphase. Die nicht phosphorylierbare p21 Form S130A befindet sich hauptsächlich im Zellkern und führt zu vermehrtem Auftreten von congression Fehlern, während die S130D-Mutante, die die Phosphorylierung durch Cdk1 vortäuscht, schneller degradiert wird und zudem den Phänotyp der HCT116 p21-/- Zellen verstärkt. Zellen, die S130D exprimieren, benötigen mehr Zeit für das Durchlaufen der Mitose. Hier ist vor allem die Metaphase stark verlängert, aber auch Anaphase und Zytokinese. Dies führt zu congression Fehlern und zu Polyploidie. Diese Ergebnisse bestätigen, wie wichtig die zeitlich korrekte Phosphorylierung von p21 und die dadurch vermittelte Aktivierung von Cdk1/Cyclin B1 ist.
Darüber hinaus stabilisiert die Suppression von Plk1 das p21 Protein, was darauf hinweist, dass die Degradation von p21 während der Prometaphase von Plk1 kontrolliert wird. Dies wird von der Tatsache unterstützt, dass Ser-114, wie auch Ser116 von Plk1 in vitro phosphoryliert wird. Die Deregulation von p21 durch Plk1, SS114/116AA bzw. SS114/116DD induziert Chromosomenfehler, wodurch die molekularen Mechanismen, warum fehlreguliertes Plk1 die Tumorgenese fördert, hervorgehoben werden.
Nach Abschluss der bisherigen Untersuchungen steht fest, dass man sich von der starren Rolle von p21 als Tumorsuppressor und Akteur während der G1/S-Phase lösen muss. Der Cdk-Inhibitor p21 trägt entscheidend zur mitotischen Progression bei, vor allem bedingt durch die zeitlich ordnungsgemäße Inaktivierung bzw. Aktivierung von Cdk1/Cyclin B1, der Kinase, die wiederum zahlreiche für die Mitose essentielle Proteine reguliert. In Zukunft muss zum besseren Verständnis der Rolle von p21 in der Mitose die genaue Abfolge der Ereignisse unter Einbeziehung der Degradationsmechanismen eingehender untersucht werden.
According to the World Health Organization (WHO) bacterial resistance to antibiotic drug therapy is emerging as a major public health problem around the world. Infectious diseases seriously threaten the health and economy of all countries. Hence, the preservation of the effectiveness of antibiotics is a world wide priority. The key to preserving the power of antibiotics lies in maintaining their diversity. Many microorganisms are capable of producing these bioactive products, the so called antibiotics. Specifically in microorganisms, polyketide synthases (PKS) and non-ribosomal peptide synthases (NRPS) produce these natural bioactive compounds. Besides being used as antibiotics these non-ribosomal peptides and polyketides display an even broader spectrum of biological activities, e.g. as antivirals, immunosuppressants or in antitumor therapy. The wide functional spectrum of the peptides and ketides is due to their structural diversity. Mostly they are cyclic or branched cyclic compounds, containing non-proteinogenic amino acids, small heterocyclic rings and other unusual modifications such as epimerization, methylation, N‐formylation or heterocyclization. It is has been shown that these modifications are important for biological activity, but little is known about their biosynthetic origin.
PKS and NRPS are multidomain protein assembly lines which function by sequentially elongating a growing polyketide or peptide chain by incorporating acyl units or amino acids, respectively. The growing product is attached via a thioester linkage to the 4’-phosphopantetheine (4’-Ppant) arm of a holo acyl carrier protein (ACP) in PKSs or holo peptidyl carrier protein (PCP) in NRPSs and is passed from one module to another along the chain of reaction centers. The modular arrangement makes PKS and NRPS systems an interesting target for protein engineering. More than 200 novel polyketide compounds have already been created by module swapping, gene deletion or other specific manipulations. Unfortunately, however, engineered PKS often fail to produce significant amounts of the desired products. Structural studies may faciliate yield improvement from engineered systems by providing a more complete understanding of the interface between the different domains. While some information about domain-domain interactions, involving the most common enzymatic modules, ketosynthase and acyltransferase, is starting to emerge, little is known about the interaction of ACP domains with other modifying enzymes such as methyltransferases, epimerases or halogenases.
To further improve the understanding of domain-domain interactions this work focuses on the curacin A assembly line. Curacin A, which exhibits anti-mitotic activity, is from the marine cyanobacterium Lyngbya majuscula. This outstanding natural product contains a cyclopropane ring, a thiazoline ring, an internal cis double bond and a terminal alkene. The biosynthesis of curacin A is performed by a 2.2 Mega Dalton (MDa) hybrid PKS-NRPS cluster. A 10-enzyme assembly catalyzes the formation of the cyclopropane moiety as the first building block of the final product. Interestingly, for these enzymes the substrate is presented by an unusual cluster of three consecutive ACPs (ACPI,II,III). Little is known about the function of multiple ACPs which are supposed to increase the overall flux for enhanced production of secondary metabolites.
The first task in this work was to elucidate the structural effect of the triplet ACP repetition by nuclear magnetic resonance (NMR). The initial data show that the excised ACPI, ACPII or ACPIII proteins resulted in [15N, 1H]-TROSY spectra with strong chemical shift perturbations (CSPs), suggesting an effect on the structure. The triplet ACP domains display a high sequence identity (93- 100%) making structural investigation using usual NMR techniques due to high peak overlap impossible. To enable the investigation of the triplet ACP in its native composition we developed a powerful method, the three fragment ligation. Segmental labeling allows incorporating isotopes into one single domain in its multidomain context. As a result we could prepare the triplet ACP with only one domain isotopically labeled and therefore assign the full length protein. In this way our method paved the way to study the structural effects of the triplet ACP repetition. We could show unexpectedly, that, despite the fact that the triplet repeat of CurA ACPI,II,III has a synergistic effect in the biosynthesis of CurA, the domains are structurally independent.
In the second part of this work, we studied the structure of the isolated ACPI domain. Our results show that the CurA ACPI undergoes no major conformational changes upon activation via phosphopantetheinylation and therefore contradicts the conformational switching model which has been proposed for PCPs. Further we report the NMR solution structures of holo-ACPI and 3-hydroxyl-3-methylglutaryl (HMG)-ACPI. Data obtained from filtered nuclear overhauser effect (NOE) experiments indicate that the substrate HMG is not sequestered but presented on the ACP surface.
In the third part of this work we focussed on the protein-protein interactions of the isolated ACPI with its cognate interaction partners. We were especially interested in the interaction with the halogenase (Cur Hal), the first enzyme within the curacin A sub-cluster, acting on the initial hydroxyl-methyl-glutaryl (HMG) attached to ACPI. Primarily we studied the interaction using NMR titration and fluorescence anisotropy measurements. Surprisingly no complex between ACPI and Cur Hal could be detected. The combination of an activity assay using matrix-assisted laser desorption/ionization (MALDI) mass spectroscopy and mutational analysis revealed several amino acids of ACPI that strongly decrease the activity of CurA Hal. Mapping these mutations according to their effect on the Cur Hal activity onto the structure of HMG-ACPI displays that these amino acids surround the substrate and form a consecutive surface. These results suggest that this surface is important for Cur Hal recognition and selectivity. Our research presented herein is an excellent example for protein-protein interactions in PKS systems underlying a specific recognition process.