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Introduction: Despite the excellent anti-inflammatory and immunosuppressive action of glucocorticoids (GCs), their use for the treatment of inflammatory bowel disease (IBD) still carries significant risks in terms of frequently occurring severe side effects, such as the impairment of intestinal tissue repair. The recently-introduced selective glucocorticoid receptor (GR) agonists (SEGRAs) offer anti-inflammatory action comparable to that of common GCs, but with a reduced side effect profile.
Methods: The in vitro effects of the non-steroidal SEGRAs Compound A (CpdA) and ZK216348, were investigated in intestinal epithelial cells and compared to those of Dexamethasone (Dex). GR translocation was shown by immunfluorescence and Western blot analysis. Trans-repressive effects were studied by means of NF-κB/p65 activity and IL-8 levels, trans-activation potency by reporter gene assay. Flow cytometry was used to assess apoptosis of cells exposed to SEGRAs. The effects on IEC-6 and HaCaT cell restitution were determined using an in vitro wound healing model, cell proliferation by BrdU assay. In addition, influences on the TGF-β- or EGF/ERK1/2/MAPK-pathway were evaluated by reporter gene assay, Western blot and qPCR analysis.
Results: Dex, CpdA and ZK216348 were found to be functional GR agonists. In terms of trans-repression, CpdA and ZK216348 effectively inhibited NF-κB activity and IL-8 secretion, but showed less trans-activation potency. Furthermore, unlike SEGRAs, Dex caused a dose-dependent inhibition of cell restitution with no effect on cell proliferation. These differences in epithelial restitution were TGF-β-independent but Dex inhibited the EGF/ERK1/2/MAPK-pathway important for intestinal epithelial wound healing by induction of MKP-1 and Annexin-1 which was not affected by CpdA or ZK216348.
Conclusion: Collectively, our results indicate that, while their anti-inflammatory activity is comparable to Dex, SEGRAs show fewer side effects with respect to wound healing. The fact that SEGRAs did not have a similar effect on cell restitution might be due to a different modulation of EGF/ERK1/2 MAPK signalling.
Ubiquitination now ranks with phosphorylation as one of the best-studied post-translational modifications of proteins with broad regulatory roles across all of biology. Ubiquitination usually involves the addition of ubiquitin chains to target protein molecules, and these may be of eight different types, seven of which involve the linkage of one of the seven internal lysine (K) residues in one ubiquitin molecule to the carboxy-terminal diglycine of the next. In the eighth, the so-called linear ubiquitin chains, the linkage is between the amino-terminal amino group of methionine on a ubiquitin that is conjugated with a target protein and the carboxy-terminal carboxy group of the incoming ubiquitin. Physiological roles are well established for K48-linked chains, which are essential for signaling proteasomal degradation of proteins, and for K63-linked chains, which play a part in recruitment of DNA repair enzymes, cell signaling and endocytosis. We focus here on linear ubiquitin chains, how they are assembled, and how three different avenues of research have indicated physiological roles for linear ubiquitination in innate and adaptive immunity and suppression of inflammation.
Ubiquitin ligases and beyond
(2012)
First paragraph (this article has no abstract): In a review published in 2004 [1] and that still repays reading today, Cecile Pickart traced the evolution of research on ubiquitination from its origins in the proteasomal degradation of proteins through the revelation that it has a central role in cell cycle regulation and the recognition of regulatory roles for ubiquitin in intracellular membrane transport, cell signalling, transcription, translation, and DNA repair.
In dieser Arbeit geht es um Kristallstrukturbestimmung und -modellierung ausgewählter organischer Pigmente sowie metallorganischer Polymere. Der feste – und insbesondere kristalline – Zustand der Materie ist von (im wahrsten Sinne des Wortes) tragender und weitreichender Bedeutung für die moderne Wissenschaft, Technologie, den Alltag überhaupt.
Die Kenntnis über den inneren (mikroskopischen)Aufbau des Festkörpers ermöglicht es zunächst, seine (makroskopischen) Eigenschaften zu verstehen. Genannt seien z. B. nicht-lineare optische Eigenschaften, die in der typischen anisotropen Struktur des kristallinen Festkörpers begründet liegen, mechanische Stabilität von Werkstoffen wie Metallen oder Legierungen, aber auch die Eigenschaften von Pigmenten: Was macht eine Substanz zu einem Pigment? Wann ist ein Pigment ein gutes, wann ein weniger gutes Pigment? Die Antworten auf diese Fragen finden sich u. a. in der Kristallstruktur: Packungsdichte, (Schwer-)löslichkeit, etc.
Die Eigenschaften von Substanzen mit sichtbaren Low-Spin–High-Spin-Übergängen lassen sich auch nur verstehen, wenn der innere Aufbau, die Kristallstruktur, bekannt ist. Was geht im Inneren vor, wenn solche Substanzen einem äußeren Einfluss wie beispielsweise Temperaturänderung ausgesetzt werden? Ist es nicht so, dass z. B. ein High-Spin-Fe2+-Ion einen größeren effektiven Radius als ein Low-Spin-Fe2+-Ion hat? Dehnt sich die Kristallstruktur aus, „atmet“ sie?
Die Kenntnis der Kristallstruktur ermöglicht es nicht nur, die Eigenschaften zu verstehen. Umgekehrt ist es auch möglich, diese Eigenschaften gezielt zu manipulieren: Verbesserung der Pigmenteigenschaften durch Herabsetzen der Löslichkeit, Veränderung der elektronischen und magnetischen Kopplungen in niedrig-dimensionalen Polymerketten, um nur zwei zu nennen.
Zum Leidwesen des Chemikers, des Physikers und des Kristallographen besteht in den Eigenschaften, die z. B. Pigmente als „gut“ auszeichnen, das größte Problem: die mangelnde Löslichkeit der Verbindung. Es ist genau diese Eigenschaft, die dafür sorgt, meist keine Einkristalle züchten zu können, massive Schwierigkeiten beim Umkristallisieren zu haben und letztendlich – wenn keine Einkristalle vorliegen – bei der Strukturbestimmung aus Pulverdaten breite, überlappende Reflexe separieren zu müssen.
Dennoch gibt es nützliche und bewährte Methoden, auch aus (sogar nur mäßigen) Pulverdaten eine Kristallstruktur zu lösen. Genannt seien hier quantenchemische Rechnungen, die unter Umständen sehr rechen- und zeitintensiv sein können, oder Kraftfeld-Methoden, die zwar nicht sehr exakte, aber immerhin doch brauchbare Ergebnisse mit vertretbarem Zeit- und Rechenaufwand liefern. Diese Methoden sind insbesondere dann zur Vorhersage von Kristallstrukturen geeignet, wenn das Pulverdiagramm nicht indizierbar ist.
Wenn die Struktur erst gelöst ist, ist die bewährte Methode der Strukturverfeinerung die Rietveld-Methode. Obwohl oder gerade weil die Methode mittlerweile zu einer „Black- Box“-Methode geworden ist, ist die genaue Analyse und Interpretation der Ergebnisse unabdingbar.
Es gibt genügend Beispiele, in denen vermeintlich gute Ergebnisse (struktur-)chemisch sinnlos sind.
Themenstellung
Pigmente spielen in der Industrie eine wesentliche Rolle. Im Gegensatz zu Farbstoffen sind Pigmente im Anwendungsmedium unlöslich, sie werden feinkristallin dispergiert, um z. B. in Autolacken oder Kunststoffen eingesetzt zu werden.
Im Rahmen dieser Arbeit wurden die Kristallstrukturen von 13 Pigmenten bestimmt.
Zu den genannten Kristallstrukturbestimmungen kommt ein Kapitel mit einer grundsätzlichen Fragestellung: Wo sind die Grenzen der Strukturbestimmung aus Pulverdaten? Wann ist eine Kristallstruktur „richtig“ oder „falsch“?
Ein letztes Pigment verknüpft die beiden vorangehenden Punkte.
Das letzte Kapitel behandelt die Erstellung von 5 Modellstrukturen aus zwei Substanzklassen für niedrig-dimensionale metall-organische Festkörper.
Beide Substanzklassen wurden im Rahmen der Forschergruppe 412 („Spin- und Ladungsträgerkorrelationen in niedrigdimensionalenmetallorganischen Festkörpern“)der DFG hinsichtlich elektronischer und magnetischer Eigenschaften untersucht.
Übergeordnetes Ziel der Arbeit war die Synthese von Molekülen, die zur gezielten Funktionalisierung von Oberflächen dienen sollten. Dazu mussten jeweils Synthesewege inklusive geeigneter Schutzgruppenchemie sowie Reinigungsstrategien entwickelt werden. Im Rahmen dieser Zielsetzung wurde zunächst eine Anlage zur Gradientensublimation aufgebaut, mit der sich die Substanzen in sehr hoher Reinheit erhalten ließen.
During the last years, chemopreventive activity of NSAIDs against a great variety of tumors was highly investigated. COX-2 seemingly plays a major part in tumorigensis and tumor development, underlined by several studies in animals and humans. At first, NSAIDs were thought to accomplish chemoprevention by inhibition of COX-2 as their so far known mode of action comprises unselective inhbition of COX-enzymes. However, further studies revealed COX-independent mechanisms. Sulindac is known as a well established drug used to treat inflammation and pain exerting the most prominent chemopreventive action, mainly in colorectal cancer or FAP and can be classified into the group of NSAIDs inhibting both COX-isoformes. As interference with the AA metabolism is evident, it was speculated whether Ssi has targets other than COX-enzymes providing evidence and explanation of its beneficial side effect profile and its ability to reduce tumor growth. 5-LO is another master enzyme in the AA cascade which produces inflammatory lipid mediators (LTs) upon stimulation in inflamed tissues. The present work should answer the question if Ssi targets the 5-LO pathway and should examine the molecular mechanisms behind Ssi-mediated 5-LO inhibiton. As COX-2 is upregulated during carcinogenesis and is inhibited by Ssi, further investigations should show regulatory effects of Ssi on 5-LO gene expression in MM6-cells and whether Sp1 as a common transcriptional factor is involved in such a regulation. As the use of NO-NSAIDs seem to be a promising strategy concerning their chemopreventive and gastroprotective effects compared to the parent NSAIDs, a possible interaction with the 5-LO pathway as a second, potent target should additionally be elucidated. In the first section it was demonstrated that the pharmacologically active metabolite of sulindac, Ssi, targets 5-LO. Ssi inhibited 5-LO in ionophore A23187- and LPS/fMLP-stimulated human PMNL (IC50 ≈ 8 -10 μM). Importantly, Ssi efficiently suppressed 5-LO in human whole blood at clinically relevant plasma levels (IC50 = 18.7 μM). Ssi was 5-LO-selective as no inhibition of related lipoxygenases (12-LO, 15-LO) was observed. The sulindac prodrug and the other metabolite, sulindac sulfone, failed to inhibit 5-LO. Mechanistic analysis demonstrated that Ssi directly suppresses 5-LO with an IC50 of 20 μM. Together, these findings may provide a novel molecular basis to explain the COX-independent pharmacological effects of sulindac under therapy. In the second part of the work dealing with the analysis of Ssi’s inhibitory mechanism on 5-LO it was presented that Ssi shows a lack of potency in cellular systems where membrane constituents are existent. The addition of microsomal fractions of PMNLto crude 5-LO enzyme were able to recover enzyme activity to ~ 100 %. Selectively 5-LO activity stimulating lipids like PC, participating in 5-LO membrane interactions within the regulatory C2-like domain of 5-LO, counteracted the Ssimediated inhibition on 5-LO-wt in a concentration-dependent manner. Lastly, a protein mutant lacking three trp resudies essential for linking the enzyme to nuclear membranes and deploying catalytic activity was not influenced by Ssi and shows enzyme activity in a cell-free assay. Ssi displays the first 5-LO inhibitor on the market interacting with the C2-like domain of the enzyme and therfore can stand for a novel lead structure of 5-LO inhibitors. An influence on 5-LO gene expression by Ssi could be detected in differentiated MM6-cells, described in the results chapter 3 (4.3). Ssi downregulated the 5-LO mRNA level after 72 hrs of incubation in differentiated MM6-cells to ~ 20 % of output control at concentrations of 10 μM. Concomitantly, mRNA levels of Sp1 were suppressed. Reporter gene studies revealed Sp1 most probably as a regulating agent involved in the Ssi-mediated 5-LO mRNA downregulation as co-transfection of increasing amounts of Sp1 could abrogate the effect. A ChIP assay could identify Sp1 as a critical transcriptional factor as Sp1 binding to the 5-LO promoter decreased in presence of Ssi. Lastly, three NO-NSADIs (NO-sulindac, NOnaproxen, NO-aspirin) were tested for the ability of 5-LO product inhibition. In intact PMNL, all compounds showed effective inhibition of 5-LO activity and NO-sulindac was most potent with an IC50 value of ~ 3 μM. NO-ASA inhibited 5-LO with IC50 values of ~ 30 μM and showed a non-competitive mode of action in cell-based assays. On human recombinant 5-LO all compounds again showed inhibitory potency whereas NO-sulindac again suppressed LT biosynthesis with an IC50 vaue comparable to intact cellular systems. Unfortunately, all inhibitors showed a loss of potency when tested for inhibition of 5-LO product synthesis in human whole blood as higher concentrations up to 100 μM were needed to reach at least 55 % enzyme inhibition. However, this strategy of 5-LO inhibition seems promising and needs further experimental approaches to gain more insight into the mechanism of 5-LO inhibition by NONSAIDs.
5-lipoxygenase (5-LO) catalyzes the first two steps in leukotriene (LT) biosynthesis. In a two step reaction the enzyme oxygenates arachidonic acid (AA) to form the highly unstable epoxide leukotriene A4 (LTA4) in dehydrating a hydroperoxide intermediate (20). LTA4 can then be further metabolized by two terminal synthases yielding either the potent chemoattractant leukotriene B4 (LTB4) or the cysteinyl leukotrienes (CysLTs). 5-LO enzyme expression is primarily found in mature leukocytes (22) where it can either reside in the cytoplasm or in the nucleus associated with euchromatin (29). Its enzymatic activity is embedded in a complicated network in intact cells regulating LT synthesis by various factors dependent on the cell type and nature of stimulus. Factors such as the amount of free AA released by phospholipase A2 enzymes, levels of enzymes involved, catalytic activity per enzyme molecule and availability of different small molecules influence 5-LO activity (36).
The 5-LO derived LTs are lipid mediators which were shown to primarily mediate inflammatory and allergic reactions and their role in the pathogenesis of asthma is well defined. CysLTs are among the most potent bronchoconstrictors yet studied in man and play an important role in airway remodeling. LTB4 has no bronchoconstrictory effects in healthy and asthmatic humans but displays potent chemoattractant properties on neutrophils and increases leukocyte adhesion to the vessel wall endothelium (22). Therefore, LTB4 enhances the capacity of macrophages and neutrophils to ingest and kill microbes. In concert with LTB4, histamine and prostaglandin E2 (PGE2) CysLTs are thought to maintain the tone of the human airways (82).
Besides their well studied role in asthma, 5-LO derived LTs have also been implicated to play a role in cardiovascular diseases and cancer. In contrast to healthy tissues, LT pathway enzymes and receptors were found to be abundantly expressed in cancer tissues, atherosclerotic lesions in the aorta, heart and carotid artery (86). Pharmacological inhibition of 5-LO potently suppressed tumour cell growth by inducing cell cycle arrest and triggering cell death via the intrinsic apoptotic pathway (92, 93). In several studies LTs were found to exhibit cardiovascular actions by promotion of plasma leakage in postcapillary venules, coronary artery vasoconstriction and impaired ventricular contraction leading to reduced coronary blood flow and cardiac output (24). Unfortunately, the precise molecular mechanisms through which LTs influence carcinogenesis and cardiovascular diseases are still incompletely understood.
In contrast, an increasing number of studies questions the correlation between 5-LO and cancer (95-97) since extreme LT concentrations were applied to induce proliferative effects in the majority of the publications. A few studies exist which show susceptibility towards 5-LO products in physiological concentrations or achieve anti-proliferation by applying low concentrations of 5-LO inhibitors (98) ...