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Chapter I of this work addressed the piggyBac (PB) transposon system, a non-viral genome engineering tool that is capable of efficiently performing stable integration of DNA sequences into a target cells genome and has already been used in clinical trials. However, the PB transposase has the problematic property of preferentially integrating transposons near transcriptional start sites (TSSs). This increases the likelihood of causing genotoxic effects, limiting its potential use as a tool in clinical applications. It has been shown in the past that the PB transposase shows physical interactions with BET proteins (e.g. BRD4) through Co-IP experiments. Representatives of these proteins are part of the transcriptional activation complex and are abundant at TSSs. Accordingly, it was previously proposed that this interaction is the underlying cause for the biased integration preference. For the first chapter of this thesis, the goal was to disrupt this interaction potentially modifying said integration preference. A secondary structure hypothesized to be mainly responsible for said interaction was extensively mutated resulting in several PB variants that were analyzed for their interaction capacity through a series of Co-IP experiments with BRD4. In total, seven substitutions were identified (E380F, V390K, T392Y, M394R, K407C, K407Q, and K407V) which exhibited reduced interaction capacity with BRD4. Each of the aforementioned mutants were used to generate integration libraries and, through NGS, it was determined if the integration preferences of the respective mutants had changed. In the immediate range 200 base pairs up- and downstream from known TSSs all mutants used exhibited a reduced integration bias. At a wider observation window 3 kbp up- and downstream from TSSs, further mutants with the substitutions M394R, T392Y and V390K showed a reduction in integration frequency of 17.3%, 1.5% and 5.4%, respectively, compared to the wildtype. Of particular note was the M394R mutant, which showed a reduction in all window sizes analyzed with a maximum of 65% less integration preference in the immediate vicinity of TSSs, theoretically generating a safety advantage over the wildtype transposase.
Chapter II was dedicated to the overall safety improvement for transposon-based gene modification and addresses the time point after the transgene has already been integrated and serious side effects may not be preventable. With this in mind, the aim was to develop a novel suicide-switch that can be stably introduced into cells via transposition, and reliably leads to cell death of the modified cells once activated. A system based on CRISPR/Cas9 was developed, where single guide RNAs were used to guide the Cas9 nuclease to Alu elements. These are short, repetitive sequences, which are distributed over the human genome in more than one million copies. Inducing double strand breaks within these elements would lead to genomic fragmentation and cell death. To be inducible, a transcriptional as well as post- translational control mechanism was added. Transcription of the Cas9 nuclease was regulated using a tet-on system, making expression dependent on doxycycline (DOX) supplementation. Furthermore, a version of the Cas9 nuclease called arC9 was used that allows double strand break generation only in the presence of 4-Hydroxytamoxifen (4-HT). Together with an expression cassette for the Alu-specific guide RNA and an expression cassette for the reverse tetracycline controlled transactivator all components were arranged between transposase-specific recognition sequences on a plasmid to allow transposon-system based gene transfer. The system was tested in HeLa cells. First, conditional expression of the arC9 nuclease was confirmed by addition of 1 μg/ml DOX. Second, the suicide-switch was further induced by adding 200 nM 4-HT and protein extracts were assayed for the KAP1 phosphorylation. Only upon induction with DOX and 4-HT phosphorylated KAP1 was detected, indicating DNA damage. Further, extensive growth and survival experiments were conducted to determine the effect of suicide-switch induction on cell proliferation and survival. Between 24 and 48 hours after induction, a halt in cell division was detected, after which extensive cell death was observed. Within 5 days post induction, >99% of all cells were eliminated. In the absence of both inducers, no significant differences in survival were observed compared to control cells line lacking Alu-specific guide RNAs. Microscopic examinations of the <1% surviving cell fraction revealed a senescence-associated phenotype and showed no signs of resumption of the cell division process. Accordingly, the second chapter of this thesis also achieved its goal in developing a functional suicide-switch that can be inserted into human cells via transposition, is highly dependent on the necessary induction signals, and exhibits excellent elimination capabilities in the context tested.
Aim of the present study was the characterization of the RORa receptor (Retinoidrelated Orphan Receptor a). RORa is a member of the nuclear receptor family and is involved into the differentiation of Purkinje cells, inflammation, arteriosclerosis, and bone mineralization. Nuclear receptors are transcription factors and mediate biological responses within target cells to outer signals such as lipophilic hormones. They are involved in development, growth, differentiation, proliferation, apoptosis, and maintenance of homeostasis. Ligand binding, posttranslational modifications, and cofactor recruitment control their activity. Nearly all nuclear receptors share a common modular structure with an Nterminal A/B region, a DNA-binding domain (DBD) that is composed of two zinc finger motifs, a hinge region, and a C-terminal ligand-binding domain (LBD). The RORs comprise the subtypes RORa, RORb, and RORg, which are encoded by different genes. All isoforms of the respective subtypes only differ in their A/B domain. This study focused mainly on the exploration of the gene structure, expression, and subcellular distribution of RORa...
Classical Hodgkin lymphoma (cHL) is one of the most common malignant lymphomas in Western Europe. The nodular sclerosing subtype of cHL (NS cHL) is characterised by a proliferation of fibroblasts in the tumour microenvironment, leading to fibrotic bands surrounding the lymphoma infiltrate. Several studies have described a crosstalk between the tumour cells of cHL, the Hodgkin- and Reed-Sternberg (HRS) cells, and cancerassociated fibroblasts (CAF). However, to date a deep molecular understanding of these fibroblasts is lacking. Aim of the present study therefore was a comprehensive
characterisation of these fibroblasts. Moreover, only a few studies describe the interplay of HRS cells and CAF. The paracrine communication and direct interaction of these two
cellular fractions have been investigated within this study. Finally, the influence of a few HRS cells within a lymph node orchestrate the mere alteration of its architecture and
morphology. Gene expression and methylation profiles of fibroblasts isolated from primary lymph node suspensions revealed persistent differences between fibroblasts obtained from NS cHL and lymphadenitis. NS cHL derived fibroblasts exhibit a myofibroblastic - inflammatory phenotype characterised by MYOCD, CNN1 and IL-6 expression. TIMP3, an inhibitor of matrix metalloproteinases, was strongly upregulated in NS cHL fibroblasts, likely contributing to the accumulation of collagen in sclerotic bands of NS cHL. Treatment by luteolin could reverse this fibroblast phenotype and decrease TIMP3 secretion. NS cHL fibroblasts showed enhanced proliferation when they were exposed to soluble factors released from HRS cells. For HRS cells, soluble
factors from fibroblasts were not sufficient to protect them from Brentuximab-Vedotin(BV) induced cell death. However, HRS cells adherent to fibroblasts were protected from BV-induced injury. The cHL specific interaction of both cell fractions reveals an initiation of inflammatory key regulators such as IL13 and IL4. Among important adhesion molecules known from literature the blocking of integrin beta 1 solely interrupted the adhesion of HRS cells to CAF. In summary, this study proves the stable reprograming of CAF phenotype and expression derived from NS cHL. It presents a suitable in vitro model for studying the interaction of HRS cells and CAF by paracrine factors and adherence. Most importantly the observations confirm the importance of fibroblasts for HRS cells´ inflammatory niche and cell survival associated with TIMP3 which probably acts as a major factor to the typical accumulation of fibrosis observed in NS cHL.
Food allergies are defined as an adverse health effect arising from a specific immune response that occurs reproducibly on exposure to a given food. The prevalence of food allergies has increased in the past decade. Epidemiologic studies involving controlled food challenges for the diagnosis of food allergies indicated that between 1 % to 10.8 % of the population have immunemediated non-toxic food hypersensitivity.
Despite the increasing prevalence, no curative treatment has been established for food allergies so far except the complete avoidance of the elicited food. To establish safe and effective immunotherapy for food allergies, it is of crucially importance to elucidate pathological mechanism of such diseases.
Food allergies are classified into IgE-mediated and non-IgE mediated (T-cell mediated) allergies, depending on the immunologic pathways and the role of the IgE on the pathogenesis of the disease. Allergic enteritis (AE) is a gastrointestinal form of food allergy. It is classified as non-IgE-mediated food allergy. However, patients with AE often develop IgE and high levels of IgE have been associated with development of persistent AE. The gastrointestinal symptoms of AE are nonspecific, resulting in the fact that a broad differential diagnoses including diagnostic approaches for allergic diseases are necessary to rule out other gastrointestinal pathologies. Biopsies of patients with allergic enteritis have shown infiltration of inflammatory cells (e.g. mast cells, eosinophils, neutrophils, and T cells) in the lamina propria, disruption of intestinal villi, edema, and presence of goblet cells in the intestine...
Rhabdomyosarcoma (RMS) is the most frequent pediatric soft-tissue sarcoma comprising two major subtypes – the alveolar and the embryonal rhabdomyosarcoma. The current therapeutic regime is multimodal including surgery, radiation and chemotherapy with cytostatic drugs. Although the prognosis for RMS patients has steadily improved to a 5-year overall survival rate of 70% for ERMS and 50% for ARMS, prognosis for subgroups with primary metastases or relapsed patients is still less than 25%, highlighting the need for development of new therapies for these subgroups. Since cancer cells are addicted to their cancer promoting transcriptional program, remodeling transcription by targeting bromodomain and extraterminal (BET) proteins has emerged as compelling anticancer strategy. However, in many cancer types BET inhibition was proved cytostatic but not cytotoxic emphasizing the need for combination protocols.
In this study we identify a novel synergistic interaction of the BET inhibitor JQ1 with p110α-isoform-specific Phosphoinositid-3-Kinase (PI3K) inhibitor BYL719 (Alpelisib) to induce mitochondrial apoptosis and global reallocation of BRD4 to chromatin. At first, we showed that JQ1 single treatment had cytostatic effects at nanomolar concentrations and inhibited MYC and Hedgehog (Hh) signaling in RMS known to promote proliferation of RMS. However, JQ1 single treatment barely induced cell death in RMS cells even at concentrations of up to 20 µM (< 20% cell death). Thus, we next tested combination approaches to elicit cell death. Since we previously identified synergistic cell death induction of Hh inhibition and PI3K inhibition in RMS cells we tested JQ1 in combination with the pan-PI3K/mTOR inhibitor PI-103 and the p110α-isoform-specific PI3K inhibitor BYL719. In addition, we tested JQ1 in combination with distinct HDAC inhibitors namely JNJ-26481585, SAHA (Vorinostat), MS-275 (Entinostat) and LBH-589 (Panobinostat) since the synergistic interaction of BET and HDAC inhibition has previously been described for other tumor entities.
Interestingly the synergism of cell death induction of JQ1/BYL719 co-treatment is superior to the synergism of JQ1 with pan-PI3K/mTOR inhibitor PI-103 or the tested HDAC inhibitors as confirmed by calculation of combination index. To investigate the molecular mechanisms underlying the synergy of JQ1/BYL719 co-treatment, we performed RNA-Seq and BRD4 ChIP-Seq experiments. RNA-Seq exhibited, that JQ1/BYL719 co-treatment shifted the overall balance of BCL-2 family gene expression towards apoptosis and increased gene expression of proapoptotic BMF, BCL2L11 (BIM) and PMAIP1 (NOXA) while decreasing gene expression of antiapoptotic BCL2L1 (BCL xL). These changes were verified by qRT-PCR and Western blot. Notably, BRD4 is phosphorylated upon JQ1/BYL719 co-treatment and globally reallocates BRD4 to chromatin. This BRD4 reallocation includes enrichment of BRD4 at the super-enhancer site of BMF, at the super-enhancer, typical enhancer and promoter regions of BCL2L11 (BIM) and at the PMAIP1 (NOXA) promoter, while JQ1 alone, as expected, reduces global chromatin binding of BRD4. Integration of RNA-Seq and BRD4 ChIP-Seq data underlines the transcriptional relevance of reallocated BRD4 upon JQ1/BYL719 co-treatment. Immunopreciptation studies showed, that RMS cells are initially primed to undergo mitochondrial apoptosis since BIM is constitutively bound to antiapoptotic BCL-2, BCL xL and MCL-1. JQ1/BYL719 co-treatment increased BIM expression and its neutralization of antiapoptotic BCL-2, BCL-xL and MCL-1 thereby rebalancing the ratio of pro- and antiapoptotic BCL-2 proteins in favor of apoptosis. This promotes activation of BAK and BAX resulting in caspase-dependent apoptosis. The functional relevance of proapoptotic re-balancing for the execution of JQ1/BYL719-mediated apoptosis was confirmed by individual silencing of BMF, BIM, NOXA or overexpression of BCL-2 or MCL-1, which all significantly rescued JQ1/BYL719-induced cell death. Execution of cell death by mitochondrial caspase-dependent apoptosis was veryfied by individual knockdown of BAK and BAX or caspase inhibitor N-Benzyloxycarbonyl-Val-Ala-Asp(O-Me) fluoromethylketone (zVAD.fmk), which all significantly rescued JQ1/BYL719-induced cell death.
In summary, combined BET and PI3Kα inhibition cooperatively induces mitochondrial apoptosis by proapoptotic re-balancing of BCL-2 family proteins accompanied by reallocation of BRD4 to transcriptional regulatory elements of BH3-only proteins.
The vascular endothelium is a monolayer of endothelial cells that builds the inner lining of the blood vessels and constitutes a regulatory organ within the physiological system to sustain homeostasis. Endothelial cells participate in physiological processes including inflammation and angiogenesis. Dysregulation of these processes, however, can evoke or maintain pathological disorders, including cardiovascular and chronic inflammatory diseases or cancer. Although pathological inflammation and angiogenesis represent treatable conditions, current pharmacotherapeutic approaches are frequently not satisfying since their long-term application can evoke therapy resistance and thus reduced clinical efficacy. Consequently, there is an ongoing demand for the discovery of new therapeutic targets and drug leads. Considering that endothelial cells play a critical role in both angiogenesis and inflammation, the vascular endothelium represents a promising target for the treatment of diseases.
Vioprolide A is a secondary metabolite isolated from the myxobacterium Cystobacter violaceus Cb. vi35. Recently, vioprolide A was identified to interact with NOP14, a nucleolar protein involved in ribosome biogenesis. Ribosome biogenesis is an indispensable cellular event that ensures adequate homeostasis. Abnormal alterations in the ribosome biogenesis, referred to as ribosomopathies, however, can lead to an overall increase in the risk of developing cancer. Accordingly, several studies have outlined the involvement of NOP14 in cancer progression and metastasis, and vioprolide A has been demonstrated to exert anti-cancer effects in vitro. However, the impact of vioprolide A and NOP14 on the endothelium has been neglected so far, although endothelial cells are crucially involved in inflammation and angiogenesis under both physiological and pathological conditions.
In the present study, the effect of vioprolide A on inflammatory and angiogenic actions was analysed. In vivo, the laser-induced choroidal neovascularization (CNV) assay outlined a strong inhibitory effect of vioprolide A on both inflammation and angiogenesis. Furthermore, intravital microscopy of the cremaster muscle in mice revealed that vioprolide A strongly impaired the TNF-induced leukocyte-endothelial cell interaction in vivo.
In further experiments, the specific effect of vioprolide A on activation processes of primary human umbilical vein endothelial cells (HUVECs) was examined. According to the in vivo results, vioprolide A decreased the leukocyte-endothelial cell interaction in vitro through downregulating the cell surface expression and total protein expression of ICAM-1, VCAM-1 and E-selectin. Vioprolide A evoked its anti-inflammatory actions via a dual mechanism: On the one hand, the expression of pro-inflammatory proteins, including TNFR1 and cell adhesion molecules, was lowered through a general downregulation of de novo protein synthesis. The inhibition of de novo protein synthesis is most likely linked to the interaction with and inhibition of NOP14 by vioprolide A in HUVECs. On the other hand, the natural product prevented the nuclear translocation and promotor activity of the pro-inflammatory transcription factor NF-ĸB. Interestingly, most anti-inflammatory compounds that interfere with the NF-ĸB signaling pathway prevent NF-ĸB nuclear translocation through recovering or stabilizing the inhibitory IĸB proteins. Vioprolide A, however, decreased rather than stabilized the IĸB proteins and prevented NF-ĸB nuclear translocation through interfering with its importin-dependent nuclear import. By performing siRNA-mediated knockdown experiments, we evaluated the role of NOP14 in inflammatory processes in HUVECs and could establish a causal link between the anti-inflammatory actions of vioprolide A and the deletion of NOP14.
Besides exerting anti-inflammatory actions, we found that vioprolide A potently decreased the angiogenic key features proliferation, migration and sprouting of endothelial cells. Mechanistically, the natural product interfered with pro-angiogenic signaling pathways. Vioprolide A reduced the protein level of growth factor receptors, including VEGFR2, which is the most prominent receptor responsible for angiogenic signaling in endothelial cells. This effect was based on the general inhibition of de novo protein synthesis by the natural product. Downregulation of growth factor receptors impaired the activation of downstream signaling intermediates, including the MAPKs ERK, JNK and p38. To our surprise, however, activation of Akt, another downstream effector of VEGFR2, was increased rather than decreased. Furthermore, vioprolide A lowered the nuclear translocation of the transcriptional coactivator TAZ, which is regulated by the evolutionary conserved Hippo signaling pathway. Interestingly, however, and in contrast to NF-ĸB, TAZ nuclear translocation in mammalian cells seems to be independent of importins. In this context, we found that vioprolide A reduced both the protein level and nuclear localization of MAML1, which is needed to retain TAZ in the nucleus after its successful translocation.
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Das Myc-Bindeprotein 2 (MYCBP2) könnte aufgrund seiner enormen Größe, seiner multiplen funktionalen Domänen und seiner ubiquitären Expression in die verschiedensten Signaltransduktionswege involviert sein. Bisher wurde überwiegend die Funktion der C-terminalen RING-Finger-Domäne untersucht, die die E3-Ubiquitinligase-Aktivität des MycBP2 bedingt. Über die Interaktion mit verschiedenen Signalwegen, wie den p38-Signalweg oder die mTOR-Aktivierung, kann MycBP2 über Ubiquitylierung und anschließendem proteosomalen Abbau diverse Prozesse der Synaptogenese und der spinalen Schmerzverarbeitung, aber auch der peripheren Nozizeption regulieren. Über die Funktionen der N-terminalen RCC1-ähnlichen Domäne ist dagegen weniger bekannt. Bisher konnte eine direkte Protein-Protein-Interaktion mit dem neuronenspezifischen elektroneutralen Kalium- und Chlorid-Ionen Co-Transporter KCC2 und mit der Adenylylcyclase nachgewiesen werden. Bindet MycBP2 oder seine RCC1-ähnliche Domäne an membranständiges KCC2 führt dies einem verstärkten Transporteraktivität, während die Bindung an die Adenylylcyclase in deren Hemmung resultiert. In der vorliegenden Arbeit sollten nun auf Basis eines Antikörperarrays neue Interaktionspartner des MycBP2 und deren Funktion bestimmt werden.
Der Antikörperarray vergleicht die Expression diverser Proteine in DRG-Lysat von SNS-Cre positiven und SNS-Cre-negativen MycBP2lox/lox Mäusen und weist Unterschiede im Vorkommen von SUMO1 auf. Durch Analyse mittels Western Blot zeigte sich ein verstärktes Signal für ein 85 kDa-Protein. Mittels Immunpräzipitation sowohl aus HeLa-Zellen als auch aus DRG-Neuronen wurde das Protein als SUMOyliertes RanGAP1 identifiziert. Durch CO-Immunpräzipitationen konnte eine direkte Protein-Protein Interaktion nachgewiesen werden, die während einer Zymosan-induzierten Hyperalgesie zu einer MycBP2-abhängig Regulation der RanGAP1 Expression und SUMOylierung führt. Die erhöhte RanGAP1 Menge in Abwesenheit von MycBP2 ist dabei nicht auf eine MycBP2-abhängige Ubiquitinierung des RanGAP1 zurückzuführen. Dagegen konnte eine Hemmung der Ubiquitinligaseaktivität des MycBP2 in Anwesenheit von SUMOyliertem RanGAP1 festgestellt werden, die sowohl bei der Autoubiquitylierung als auch beim proteosomalen Abbau von TSC2 nachgewiesen werden konnte. Weitere Untersuchungen zeigen eine durch SUMOyliertes RanGAP1-vermittelte Translokation des MycBP2 an den Zellkern, die durch Transfektion mit RanGAP1 siRNA sowohl in HeLa-Zellen als auch in primären DRG-Kulturen gehemmt werden kann.
Im nächsten Schritt wurde die mögliche Interaktion von MycBP2 mit Ran untersucht. Es zeigte sich, dass die Ranexpression in DRGs von Cre-positiven MycBP2lox/lox Mäusen im Gegensatz zu Cre-negativen MycBP2lox/lox Mäusen signifikant gesteigert ist und auch hier eine MycBP2-abhängige Expressionsregulation während der Zymosan-induzierten Hyperalgesie vorliegt. Ein 3D-Modell von primären DRG-Kulturen nach Immunfärbung weist eine Kolokalisation von MycBP2 und Ran sowohl im Cytosol als auch im Zellkern auf. Immunfärbungen von DRG-Schnitten zeigten außerdem, dass Ran in Abwesenheit von MycBP2 verstärkt im Zellkern vorliegt, was auf eine direkte Interaktion von MycBP2 mit Ran hindeutet. Auf Grund des stationären GTPase Assays konnte eine Integration des MycBP2 in den RanGTPase Zyklus belegt werden, da die Anwesenheit von MycBP2 zu einer gesteigerten GTP-Hydrolyse führte. Anhand des Ein-Zyklus-GAP-Assay wurde daher der Einfluss des MycBP2 auf die GAP-Aktivität des RanGAP1 überprüft, wodurch sich zeigte, dass MycBP2 die GAP-Aktivität des RanGAP1 hemmt. Damit bedingt die MycBP2/RanGAP1-Interaktion eine gegenseitige Hemmung der Enzymaktivität der beteiligten Proteine. Weitere Untersuchungen durch 35S-GTP-Bindeassays deckten eine konzentrationsabhängige GEF-Aktivität des MycBP2 für Ran auf, wobei die GEF-Aktivität von der RCC1-ähnlichen Domäne des MycBP2 vermittelt wird. Des Weiteren zeigte sich anhand von Versuchen mit der konstitutiv aktiven Ran-Mutante Q69L und der inaktiven Ran-Mutante T24N, dass MycBP2 verstärkt die inaktive Form des Ran, also RanGDP bindet.
In dieser Arbeit konnte so zum ersten Mal eine Integration des MycBP2 in den RanGTPase-Zyklus gezeigt werden, die es MycBP2 ermöglicht, sowohl in die nukleare Import/Export-Maschinerie, in den Aufbau der mitotischen Spindel und die Bildung der Kernmembran einzugreifen.
The enzyme acetyl-CoA carboxylase (ACC) plays a fundamental role in the fatty acid metabolism. It regulates the first and rate limiting step in the biosynthesis of fatty acids by catalyzing the carboxylation of acetyl-CoA to malonyl-CoA and exists as two different isoforms, ACC1 and ACC2. In the last few years, ACC has been reported as an attractive drug target for treating different diseases, such as insulin resistance, hepatic steatosis, dyslipidemia, obesity, metabolic syndrome and nonalcoholic fatty liver disease. An altered fatty acid metabolism is also associated with cancer cell proliferation. In general, the inhibition of ACC provides two possibilities to regulate the fatty acid metabolism: It blocks the de novo lipogenesis in lipogenic tissues and stimulates the mitochondrial fatty acid β-oxidation. Surprisingly, the role of ACC in human vascular endothelial cells has been neglected so far. This work aimed to investigate the role of the ACC/fatty acid metabolism in regulating important endothelial cell functions like proliferation, migration and tube formation.
To investigate the function of ACC, the ACC-inhibitor soraphen A as well as an siRNA-based approach were used. This study revealed that ACC1 is the predominant isoform both in human umbilical vein endothelial cells (HUVECs) and in human dermal microvascular endothelial cells (HMECs). Inhibition of ACC via soraphen A resulted in decreased levels of malonyl-CoA and shifted the lipid composition of endothelial cell membranes. Consequently, membrane fluidity, filopodia formation and the migratory capacity were attenuated. Increasing amounts of longer acyl chains within the phospholipid subgroup phosphatidylcholine (PC) were suggested to overcompensate the shift towards shorter acyl chains within phosphatidylglycerol (PG), which resulted in a dominating effect on regulating the membrane fluidity. Most importantly, this work provided a link between changes in the phospholipid composition and altered endothelial cell migration. The antimigratory effect of soraphen A was linked to a reduced amount of PG and to an increased amount of polyunsaturated fatty acids (PUFAs) within the phospholipid cell membrane. This link was unknown in the literature so far. Interestingly, a reduced filopodia formation was observed upon ACC inhibition via soraphen A, which presumably caused the impaired migratory capacity.
This work revealed a relationship between ACC/fatty acid metabolism, membrane lipid composition and endothelial cell migration. The natural compound soraphen A emerged as a valuable chemical tool to analyze the role of ACC/fatty acid metabolism in regulating important endothelial cell functions. Furthermore, regulating endothelial cell migration via ACC inhibition promises beneficial therapeutic perspectives for the treatment of cell migration-related disorders, such as ischemia reperfusion injury, diabetic angiopathy, macular degeneration, rheumatoid arthritis, wound healing defects and cancer.
The endosteal bone marrow niche and vascular endothelial cells provide sanctuaries to leukemic cells. In murine chronic myeloid leukemia (CML) CD44 on leukemia cells and E-selectin on bone marrow endothelium are essential mediators for the engraftment of leukemic stem cells (LSC). We hypothesized that non-adhesion of CML-initiating cells to E-selectin on the bone marrow endothelium may lead to superior eradication of LSC in CML after treatment with imatinib than imatinib alone. Indeed, here we show that treatment with the E-selectin inhibitor GMI-1271 in combination with imatinib prolongs survival of mice with CML via decreased contact time of leukemia cells with bone marrow endothelium. Non-adhesion of BCR-ABL1+ cells leads to an increase of cell cycle progression and an increase of expression of the hematopoietic transcription factor and protooncogene Scl/Tal1 in leukemia-initiating cells (LIC). We implicate SCL/TAL1 as indirect phosphorylation target of BCR-ABL1 and as a negative transcriptional regulator of CD44 expression. We show that increased SCL/TAL1 expression is associated with improved outcome in human CML. These data demonstrate the BCR-ABL1-specific, cell-intrinsic pathways leading to altered interactions with the vascular niche via the modulation of adhesion molecules - a strategy therapeutically exploitable in future.
Massenspektrometrie-basierte Proteomuntersuchungen erfolgen auch heute überwiegend nach dem sogenannten Bottom-Up-Ansatz, d.h. die Identifizierung von Proteinen erfolgt auf der Basis von Peptiden, die chromatographisch gut voneinander getrennt werden können und massenspektrometrisch leichter zu analysieren sind als Proteine. Nach Identifikation der Peptide kann rekonstruiert werden, welche Proteine ursprünglich in der Probe vorgelegen haben. Zentraler Arbeitsschritt der Probenvorbereitung ist daher die Zerlegung des Proteins, die entweder chemisch oder - wie in den meisten Fällen – enzymatisch erfolgt. Trypsin ist das mit Abstand am häufigsten genutzte Enzym, da es eine hohe Schnittspezifität aufweist und sehr effizient ist. Der Trypsin-Verdau ist darüber hinaus sehr robust, d.h. er zeigt eine hohe Toleranz gegenüber Verunreinigungen, und zudem werden Peptide erzeugt, die sowohl gute Ionisations- als auch gute Fragmentierungseigenschafen aufweisen. Die durch Trypsin gebildeten Peptide enthalten neben dem basischen N-Terminus eine weitere basische Aminosäure am C-Terminus, so dass sie leicht zumindest doppelt-geladene Ionen bilden können und sehr häufig aussagekräftige C-terminale Fragmentioneserien liefern.
Neben den zahlreichen Vorteilen gibt es allerdings auch Nachteile. So können nach einem tryptischen Verdau in Abhängigkeit von der Verteilung der Schnittstellen Peptide entstehen, die entweder zu klein sind, um eine verlässliche Zuordnung zu einem Protein zu erlauben oder die zu groß sind für den Massenbereich des gewählten Massenanalysators. Eine vielversprechende Alternative zu Trypsin wäre ArgC, welches C-Terminal zu Argininen schneidet und somit im Durchschnitt größere Peptide mit Ionisations- und Fragmentierungseigenschaften ähnlich zu tryptischen Peptiden erzeugt. Das Enzym ArgC weist jedoch nur eine geringe Schnittspezifität auf und sein Trypsin-ähnliches Verhalten – also das Schneiden auch hinter Lysin - wurde öfters beobachtet und wird auch vom Hersteller angegeben. Ziel dieser Arbeit war die Entwicklung einer Verdaumethode, die Peptide erzeugt, die ausschließlich auf Argininen enden.
Das Resultat der zu entwickelnden Verdaumethode sollte somit dem eines idealen enzymatichen ArgC-Verdaues entsprechen. Realisiert wurde der ArgC-ähnliche-Verdau durch den Einsatz von Trypsin, dessen enzymatischer Schnitt durch die chemische Derivatizierung der Substrat-Lysine auf Arginine reduziert wurde. Neben dem weiteren Einsatz von Trypsin sollte dieser "Quasi-Arg-C-Verdau" weitere systematische Vorteile für Proteomanalysen realisieren: Zum Ersten sollte die Anzahl von Fehlschnitt-Peptiden, die sich bei Trypsin insbesondere an Lysinen mit saurer chemischer Umgebung ergeben, reduziert werden, zum Zweiten sollten die Arg-C-Peptide sowohl durch ihre gewachsende Größe, als auch durch das mit dem C-terminalen Arginin verbesserte Fragmentierungsverhalten höhere Score-Werte bei der bioninformatischen Auswertung der MS-Daten ergeben.
Im ersten Teil wurden zunächst bioinformatische Werkzeuge entwickelt, die MALDI-MS-Dateien automatisiert prozessierten. Die entwickelten Programme umfassen die Identifizierung und relative Quantifizierung von Proteinen aus diesen Dateien. Des Weiteren wurde ein Programm zur Analyse von MALDI-ISD-Dateien entwickelt. Automatisierte Auswertungen gelangen durch die Erstellung von Workflows in der Datenanalyseplattform KNIME. Diese Workflows kombinieren in Python geschriebene Skripte und Funktionalitäten frei verfügbarer Programme wie "MSConvert" und "mMass".
Nach Erstellung der bioinformatischen Werkzeuge wurde die Methodenentwicklung zur Modifizierung der Lysine für verschiedene Reagenzien durchgeführt. Die Auswahl fiel auf vier Substanzen, von denen bekannt ist, dass sie unter milden Reaktionsbedingung im quantitativen Ausmaß mit Aminogruppen reagieren. Diese waren Sulfo-NHS-Acetat, Propionsäureanhydrid, Diethylpyrocarbonat und die reduktive Methylierung mit Formaldehyd und Picolin-Boran. Die Reaktionsbedingungen mussten zunächst für Proteine optimiert werden, da die publizierten Protokolle hauptsächlich zur Derivatizierung von Peptiden verwendet worden waren. Anschließend wurden die optimierten Protokolle für eine Protein- und Proteomprobe eingesetzt und die Resultate miteinander verglichen. Die Untersuchungen führten zu dem Ergebnis, dass sowohl auf Protein- als auch auf Proteomebene die Propionylierung des Lysins die besten Resultaten zeigte. Insbesondere ist hervorzuheben, dass alle ArgC-ähnlichen Ansätze unabhängig vom eingesetzten Reagenz zu besseren Ergebnissen in jeder der Untersuchungen führte als der klassische enzymatische ArgC-Verdau.
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