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Institute
On the molecular basis of novel anti-inflammatory compounds and functional leukocyte responses
(2006)
Inflammation is a complex pathophysiological event that can be triggered by activation of a number of distinct activation pathways eventually leading to the release of pro-inflammatory molecules and enzymes. Among all cells involved in inflammatory processes, neutrophils, monocytes and platelets are of major relevance. Activation of leukocytes occurs via binding of agonists to distinct GPCRs leading to activation of G proteins and proximate signaling cascades. In short, GPCR activation by pro-inflammatory agonists such as fMLP, PAF or LTB4 leads to activation of G proteins that are associated with the receptor at the cytosolic side of the plasma membrane. G proteins consist of a Gα- and a Gβγ-subunit which are associated in the inactive state. In this state, G proteins bind GDP. Upon activation, GDP is replaced by GTP that results in the dissociation of the Gα- from the Gβγ-subunit. Both subunits are capable of activating distinct PLC-β isoenzymes that catalyze the turnover of PtdIns(4,5)P2 into the second messengers Ins(1,4,5)P3 and DAG. Every GPCR holds a distinct pattern of associated G proteins which preferentially activate distinct PLC-β isoenzymes. Ca2+ channels within the SR/ER-membrane function as specific receptors for Ins(1,4,5)P3. Ligation of Ins(1,4,5)P3 to this receptor causes a release of Ca2+ from intracellular stores into the cytosol that is subsequently followed by the influx of Ca2+ e through channels in the plasma membrane. Ca2+ represents an important signaling molecule, involved in the regulation of cellular processes and enzymes that mediate inflammatory events such as ROS formation and the release of degradative enzymes. 5-LO and COXs are involved in the biosynthesis of pro-inflammatory eicosanoids and catalyze the turnover of AA into LTs and PGs, respectively. Both enzymes play pivotal roles in the initiation and maintenance of allergic diseases and inflammatory processes. LTB4 is regarded as a potent chemotactic and chemokinetic substance, whereas the cysteinyl-LTs cause smooth muscle contraction and increased vascular permeability. Therefore, 5-LO inhibitors are assumed to possess therapeutic potential for the treatment of diseases related to inflammation. Besides the intervention with 5-LO activity, inhibition of COX-activity is an effective way to suppress inflammatory reactions. The two COX isoenzymes, namely COX-1 and COX-2 show different patterns in terms of tissue expression and sensitivity towards inhibitors. COX-1 is supposed to be constantly expressed whereas COX-2 expression is upregulated at sites of inflammation. The extract of H. perforatum is commonly used for the treatment of mild to moderate depressive disorders, accompanied by a moderate profile of side effects. The extract´s efficacy as an antidepressant can be traced back to the content of the phloroglucinol hyperforin which represents the most abundant lipophilic constituent. However, in folk medicine hypericum extracts are additionally used for the treatment of inflammatory disorders such as rheumatoid arthritis or inflammatory skin diseases. In fact, it was shown that hypericum extracts and hyperforin possess anti-inflammatory potential. Hyperforin was described as a dual inhibitor of 5-LO and COX-1. The phloroglucinols MC and S-MC from M. communis significantly differ from the molecular structure of hyperforin. Hyperforin represents a monomeric prenylated derivative whereas MS and S-MC are non-prenylated oligomeric compounds. To date, the anti-inflammatory potential of SM and S-MC has not been investigated in detail. So far, solely antioxidant activity was attributed to MC and S-MC that indeed might qualify them as anti-inflammatory drugs. The phloroglucinols MC, S-MC and hyperforin are potent inhibitors of ROS formation and HLE release. However, any inhibitory potential of these compounds was only observed when cells were activated by GPCR agonists such as fMLP or PAF. In contrast, when cells were stimulated under circumvention of G protein-associated signaling cascades, the abovementioned inhibitors were not effective at all. In leukocytes, [Ca2+]i plays a pivotal role in signal transduction and regulation of the indicated pro-inflammatory cellular functions. We were able to show that MC, S-MC and hyperforin inhibited GPCR-mediated Ca2+ mobilization with approximately the same potency as the above-mentioned leukocyte responses. However, all of the indicated phloroglucinols were ineffective when cells were stimulated with ionomycin. Since ionomycin as well as GPCR agonists exert their effects by mobilizing Ca2+ i, it seems conceivable that MC, S-MC and hyperforin somehow interfere with G protein-associated signaling pathways. In order to investigate PLC as a potential target of hyperforin, the effects of hyperforin were compared to those of the broad spectrum PLC inhibitor U-73122. We found that both inhibitors acted in a comparable manner in terms of agonist-induced Ca2+ mobilization and in regard of the manipulation of basal Ca2+ levels in unstimulated cells. In this respect, significant differences between hyperforin and U-73122 were obvious for inhibition of total PLC activity in vitro. Thus, U-73122 blocked PLC activity whereas hyperforin was ineffective in this respect. This might indicate that only certain PLC isoenzymes are affected by hyperforin. Alternatively, other components within G protein-associated signaling pathways such as G proteins itself or the Ins(1,4,5)P3 receptor must be taken into account as putative targets of hyperforin. We were able to introduce MC and S-MC as novel dual inhibitors of 5-LO and COX-1. Interestingly, such a pattern was also described for hyperforin. MC and S-MC turned out to be direct inhibitors of 5-LO, based on the fact that they inhibit 5-LO not only in intact cells but also as purified enzyme in vitro. For MC and S-MC, great discrepancies were observed between the IC50 values concerning 5-LO inhibition and the concentrations that exert the antioxidative effects. It seems probable that 5-LO inhibition is not related to reduction of the active site iron as a result of the antioxidant activity of MC and S-MC but rather to direct interference with the 5-LO enzyme. The capability of MC and S-MC to suppress COX-1 activity seems not to be a unique effect of these phloroglucinols because for COX-1, the IBPC, present in both MC and S-MC, turned out to be the most active compound. ....
Chemokines play a key role in the cellular infiltration of inflamed tissue. They are released by a wide variety of cell types during the initial phase of host response to injury, allergens, antigens, or invading microorganisms, and selectively attract leukocytes to inflammatory foci, inducing both migration and activation. Monocyte chemoattractant protein-1 (MCP-1), a member of the CC chemokine superfamily, functions in attracting monocytes, T lymphocytes, and basophils to sites of inflammation. MCP-1 is produced by monocytes, fibroblasts, vascular endothelial cells and smooth muscle cells in response to various stimuli such as tumour necrosis factor-a (TNF-a), interferon-g (IFN-g), and interleukin-1b (IL-1b). It also plays an important role in the pathogenesis of chronic inflammation, and overexpression of MCP-1 has been implicated in diseases including glomerulonephritis and rheumatoid arthritis. Oligonucleotide-directed triple helix formation offers a means to target specific sequences in DNA and interfere with gene expression at the transcriptional level. Triple helix-forming oligonucleotides (TFOs) bind to homopurine/homopyrimidine sequences, forming a stable, sequence-specific complex with the duplex DNA. Purine-rich sequences are frequent in gene regulatory regions and TFOs directed to promoter sequences have been shown to prevent binding of transcription factors and inhibit transcription initiation and elongation. Exogenous TFOs that bind homopurine/ homopyrimidine DNA sequences and form triple-helices can be rationally designed, while the intracellular delivery of single-stranded RNA TFOs has not been studied in detail before. In this study, expression vectors were constructed which directed transcription of either a 19 nt triplex-forming pyrimidine CU-TFO sequence targeting the human MCP-1 or two different 19 nt GU- or CA-control sequences, respectively, together with the vector encoded hygromycin resistance mRNA as one fusion transcript. HEK 293 cells were stable transfected with these vectors and several TFO and control cell lines were generated. Functional relevant triplex formation of a TFO with a corresponding 19 bp GC-rich AP-1/SP-1 site of the human MCP-1 promoter was shown. Binding of synthetic 19 nt CUTFO to the MCP-1 promoter duplex was verified by triplex blotting at pH 6.7. Underlining binding specificity, control sequences, including the GU- and CA-sequence, a TFO containing one single mismatch and a MCP-1 promoter duplex containing two mismatches, did not participate in triplex formation. Establishing a magnetic capture technique with streptavidin microbeads it was verified that at pH 7.0 the 19 nt TFO embedded in a 1.1 kb fusion transcript binds to a plasmid encoded MCP-1 promoter target duplex three times stronger than the controls. Finally, cell culture experiments revealed 76 ± 10.2% inhibition of MCP-1 protein secretion in TNF-a stimulated CU-TFO harboring cell lines and up to 88% after TNF-a and IFN-g costimulation in comparison to controls. Expression of interleukin-8 (IL-8) as one TNF-a inducible control gene was not affected by CU-TFO, demonstrating both highly specific and effective chemokine gene repression. Furthermore, another chemokine target, regulated upon activation normal T cell expressed and secreted (RANTES), which plays an essential role in inflammation by recruiting T lymphocytes, macrophages and eosinophils to inflammatory sites, was analysed using the triplex approach. A 28 nt TFO was designed targeting the murine RANTES gene promoter, and gel mobility shift assays demonstrated that the phosphodiester TFO formed a sequencespecific triplex with the double-stranded target DNA with a Kd of 2.5 x 10-7 M. It was analysed whether RANTES expression could be inhibited at the transcriptional level testing the TFO in two different cell lines, T helper-1 lymphocytes and brain microvascular endothelial cells (bend3 cells). Although there was a sequence-specific binding of the TFO detectable in the gel shift assays, there was no inhibitory effect of the exogenously added and phosphorothioate stabilised TFO on endogenous RANTES gene expression visible. Additionally, the small interfering RNA (siRNA) approach was tested as another strategy to inhibit expression of the pro-inflammatory chemokines MCP-1 and RANTES. Two different methods were pursuit, describing transient transfection with vector derived and synthetic siRNA. The vector pSUPER containing the siRNA coding sequence was used to suppress endogenous MCP-1 in HEK 293 cells. An empty vector without RNA sequence served as a control. Inhibition due to the siRNA was measured in stimulated and unstimulated cells. In TNF-a stimulated cells MCP-1 protein synthesis was decreased by 35 ± 11% after siRNA transfection. Using a synthetic double-stranded siRNA, the TNF-a induced MCP-1 protein secretion could be successfully inhibited about 62.3 ± 10.3% in HEK 293 cells, indicating that the siRNA is functional in these cells to suppress chemokine expression. The siRNA approach targeting murine RANTES in Th1 cells and b-end3 cells revealed no inhibition of endogenous gene expression. Gene therapy approaches rely on efficient transfer of genes to the desired target cells. A wide variety of viral and nonviral vectors have been developed and evaluated for their efficiency of transduction, sustained expression of the transgene, and safety. Among them, lentiviruses have been widely used for gene therapy applications. In order to improve the delivery of TFOs or siRNAs into the target cells, cloning of the lentiviral transfer vector SEW, the production of lentiviral particles by transient transfection were performed with the aim to generate lentiviral vector-derived TFOs in further experiments. Here, Th1 cells were transduced with infectious lentiviral particles and transduction efficacy was measured. Transduction efficacy higher than 82% could be achieved using the lentiviral vector SEW, opening optimal possibilities for the TFO or siRNA approach.
5-LO is the key enzyme in the biosynthesis of proinflammatory leukotrienes, converting arachidonic acid to 5-HPETE, and in a second step 5-HPETE to leukotriene A4. Although the 5-LO promoter possesses characteristics of so called housekeeping genes, such as lack of TATA/CCAAT boxes and existence of several Sp1 binding sites, the 5 -LO gene is tissue specifically expressed in primarily immune competent cells of myeloid origin including granulocytes, monocytes, macrophages, mast cells and B-lymphocytes. 5-LO gene expression in MM6 and HL-60 cells is strongly induced after differentiation of the cells with TGF-beta and 1,25(OH)2D3. In some monocytic cancer cell lines, such as HL-60 TB and U937, TGF-beta and 1,25(OH)2D3 treatment are not able to activate 5-LO gene transcription. It was demonstrated, that in these cell lines the 5-LO core promoter is heavily methylated and that only demethylation by the DNA methyltransferase inhibitor 5-aza-2 deoxycytidine (Adc) upregulated the 5-LO mRNA levels. It was also shown that the histone deacetylase inhibitor TsA could induce 5-LO mRNA levels, but only in 1,25(OH)2D3/TGF-beta inducible MM6 cells. Interestingly the 1,25(OH)2D3/TGF-beta effect on 5-LO expression is reduced, when combined with TsA. Reporter gene assays revealed that 5-LO promoter activity is strongly induced after 24 h treatment with 330 nM TsA (construct N10 up to 35 fold in HeLa cells). The effect is dependent on the presence of the proximal Sp1 binding site GC4 (-53 bp to –48 bp in relation to the major TIS) in both HeLa and MM6 cells. In vitro binding of the transcription factor Sp1 to this site has been demonstrated in gel shift assays and DNase I footprints. Mutation of the binding site resulted in a loss of basal promoter activity in both 5-LO negative HeLa cells and in 5-LO positive MM6 cells, as well as in the loss of TsA inducibility. The mutational study of different Sp1 binding sites in a larger promoter context revealed the interaction or respectively the additive effect of the multiple Sp1 binding sites of the 5-LO promoter on basal as well as on TsA upregulated promoter activity. However, GC4 seems to be of special relevance for both the basal promoter activity, possibly recruiting the basal transcription machinery, as well as for the TsA induced upregulation of 5-LO promoter activity. TsA does not alter the protein expression levels of Sp1 and Sp3 as investigated in Western blot analysis, neither in HeLa nor in MM6 cells. DNA affinity purification assays revealed that TsA had no effect on the DNA affinity of Sp1 or Sp3. In vitro binding of both Sp1 and Sp3 to the 5-fold GC box, GC4 and GC5 was demonstrated by DAPA analysis, but histone deacetylase inhibition did not change the associated protein amounts. Finally, in vivo binding of Sp1 and Sp3 was investigated in chromatin immunoprecipitation assay (ChIP) in MM6 cells. TsA clearly induced the association of both proteins to the promoter area surrounding the TIS. Upon TsA treatment also RNA polymerase II binding to the area surrounding the TIS (-318 to +52 bp) was increased and even initiated in the more distal promoter parts –1049 to –292 bp, which are negatively regulated in reporter gene assays. Interestingly histone H4 is already highly acetylated without TsA treatment and the acetylation status of H4 remains unchanged after histone deacetylase inhibition, indicating an open chromatin structure of the 5-LO gene in MM6 cells. In a cotransfection study with Sp1 and Sp3, the transactivating potential of factors was investigated and in accordance with the ChIP data, Sp1 and Sp3 increased the promoter activity, but only after TsA treatment. In gel shift assays, the influence of DNA methylation on Sp1 binding was investigated. The results indicate different roles for the three proximal promoter sites. Whereas Sp1 binding to the 5-fold GC box and GC4 is impaired by DNA methylation, binding to GC5 is even increased. A cotransfection study with methylated 5-LO promoter constructs and the murine methyl-CpG binding proteins suggest MBD1 involvement in the regulation of the 5-LO promoter. Since in gel shifts Sp1 binding is inhibited by DNA methylation, at least to the 5-fold GC box and the activating element GC4, and similarly the mutation/deletion of the same sites strongly reduces or inhibits promoter activity, it is likely to assume, that the loss of promoter activity after in vitro methylation is in the first place due to impaired Sp1/Sp3 binding. Together the data underline the importance and complexity of Sp1/Sp3 binding to the GC rich sites in the regulation of 5-LO promoter activity in response to the histone deacetylase inhibitor TsA as well as in respect to DNA methylation.
Haematopoietic stem cells (HSCs) are regarded as the prime target for gene therapy of inherited and acquired disorders of the blood system, e.g. X-linked chronic granulomatous disease (X-CGD). The major reason for this is that HSCs posses the ability to self renew as well as the potential to differentiate into all lineage-specific cell types. However, the need to reach and to maintain sufficient therapeutic levels of genetically modified stem cells and their progeny after gene delivery still presents major challenges for current HSC gene therapy approaches. In particular, one of the main limitations for most genetic defects is the lack of a selective growth advantage of gene-modified cells after engraftment. In vitro and in vivo methods have been developed that focus on either positive or negative selection of HSCs. An artificial selection advantage can be conferred to transduced HSCs by incorporating a selection marker in addition to the therapeutic transgene. In the present study, two novel strategies for positive selection of murine gp91phox gene-modified haematopoietic stem cells were developed and tested, bearing in mind that with selective growth advantage, the possibility of uncontrolled proliferation arises. The first strategy to be investigated was based on the homeobox transcription factor HOXB4, which plays an important role in the control of haematopoietic stem cell proliferation and differentiation. Overexpression of a retroviral bicistronic construct containing the therapeutic gene gp91phox and HOXB4 in murine primary bone marrow cells led to a significant 3–4-fold expansion of transduced cells ex vivo. The numbers of transgene-expressing cells increased 2–3-fold after 2 weeks cultivation under cytokine stimulation. Furthermore, the clonogenic progenitor cell assay (CFU assay) demonstrated that the number of colony-forming cells had increased to levels 2-fold higher than those of mock-transduced cells after 1 week of culture, thereby augmenting the presence of a significant number of stem/progenitor cells in the selected cell population. However, in our experiments, HOXB4-overexpressing murine HSCs did not show any repopulating advantage in transplanted recipient mice over control construct-transduced HSCs. These results indicate that selective expansion of gp91phox gene-modified HSCs can be induced by the HOXB4 transcription factor ex vivo but not in vivo. This is possibly dependent on HOXB4 expression levels, which are too low in vivo to achieve selection. The second strategy made use of a chemically inducible dimerizer system consisting of the therapeutic gene gp91phox and a fusion protein, containing sequences from a growth factor receptor signalling domain (epidermal growth factor receptor, EGFR, or prolactin receptor, PrlR) and the drug binding protein FKBP12, as the selection cassette. This strategy aimed to allow inducible selection that could be easily switched off. The activity of these fusion proteins is controlled through the small molecular dimerizer AP20187. Transduction of BaF/3 cells with lentiviral vectors expressing the EGFR construct induced proliferation and led to complete selection within 18 days (99%). However, removing AP20187 could not turn off proliferation. This construct is, therefore, not suitable as a selection cassette for the expansion of gene-modified HSCs due to its oncogenic potential. Transduction of the construct containing the intracellular domain of PrlR caused significant selective expansion of AP20187-treated BaF/3 cells. Following expression in cells, the fusion protein, which lacks membrane-anchoring sequences, mainly localized to the cytoplasm. Evidence was found to indicate that activated STAT5 might be responsible for this effect. Upon expression of the prolactin construct, phosphorylation of STAT5 and its DNA-binding activity to a ß-casein promoter sequence was strongly increased. Importantly, the induced proliferation was reversible after removal of AP20187. Transduced Sca1+ bone marrow cells obtained from C57BL/6-CD45.1 mice could be expanded about 20–100-fold ex vivo in the presence of AP20187 and mSCF without losing progenitor cell features and the capability to contribute to all lineages of the haematopoietic system. To exclude oncogenic outgrowth of one single clone, the polyclonality of selected cells was proven by ligation-mediated PCR (LM-PCR) analysis. In mouse transplantation experiments, ex vivo-expanded cells repopulated the bone marrow of lethally irradiated mice suggesting that the ex vivo expansion took place at the level of haematopoietic stem and/or progenitor cells. Genomic gp91phox sequences were detected in the bone marrow, spleen and peripheral blood cells of transplanted animals, indicating that gp91phox-containing cells most likely contributed to the reconstitution of haematopoiesis in these mice.
Die Aggregation von Thrombocyten ist ein wichtiger physiologischer Schutzmechanismus zur primären Blutstillung nach Gefäßverletzungen. Dieser Vorgang kann jedoch unter pathologischen Bedingungen zu Herzinfarkten und Schlaganfällen führen. Der Aggregationsprozeß ist durch Ausbildung sogenannter "Fibrinogenbrücken" zwischen verschiedenen Thrombocyten gekennzeichnet. Dies wird durch Bindung von Fibrinogen an das aktivierte Integrin alphaIIbbeta3 auf der Thrombocytenoberfläche ausgelöst. Das kleine G-Protein Rap1B aus der Ras-Superfamilie reguliert den Aktivitätszustand von Integrinen und besitzt damit eine zentrale Rolle bei der Aggregation von Thrombocyten. Die Aktivierung von Rap1B wird durch eine Vielzahl von Plättchenagonisten innerhalb von wenigen Sekunden ausgelöst. Der von Thrombocyten und Gefäßendothelzellen gebildete Botenstoff Stickstoffmonoxid (NO) kann die Thrombocytenaggregation über den NO/cGMP-Signalweg hemmen. Das Signalmolekül NO aktiviert in Thrombocyten die NO-sensitive Guanylyl-Cyclase (sGC), hierdurch wird die Synthese des sekundären Botenstoffes cGMP angeregt. Das cGMP-Molekül aktiviert nachfolgend die cGMP-abhängige Proteinkinase-Ibeta (cGK-Ibeta), welche die aggregationshemmende NO-Wirkung vermittelt. Die verantwortlichen Zielproteine der cGK-Ibeta wurden bis heute jedoch nicht hinreichend aufgeklärt. In der vorliegenden Arbeit sollten verschiedene Aspekte der NO-induzierten Hemmung der Thrombocytenaggregation untersucht werden. Dabei wurden neue Mechanismen dieser Inhibition identifiziert. Zum einen konnte eine kinetisch schnelle Hemmung der Rap1B-Aktivierung in Thrombocyten nachgewiesen werden. Zum anderen konnten einer cGK-Ibeta-vermittelten, kinetisch langsamen Rap1B-Phosphorylierung hemmende Effekte auf die Membranlokalisation von Rap1B in MDCK-Zellen und auf die Zellausbreitung von Hela-Zellen zugeordnet werden. Weiterhin wurde im Rahmen dieser Arbeit eine neue Proteininteraktion zwischen dem mitochondrialen CGI-51-Protein und Rap1B identifiziert und verifiziert. Zur Aufklärung eines Einflusses des NO/cGMP-Signalweges auf die Aktivierung von Rap1B in Thrombocyten wurde die NO/sGC/cGMP/cGK-Ibeta-Signalkaskade auf verschiedenen Stufen aktiviert oder gehemmt, bevor anschließend die Rap1GTPBildung mit verschiedenen Plättchenagonisten induziert wurde. Das aktive Rap1B wurde unter Verwendung eines Rap1GTP-bindenden Fusionsproteins präzipitiert und nachgewiesen. Durch NO-freisetzende Substanzen konnte eine Hemmung der Rap1BAktivierung erreicht werden. Auch die Aktivierung der sGC mit einem spezifischen Aktivator führte zur Inhibition von Rap1B. Die direkte Aktivierung der cGK-Ibeta konnte Rap1B ebenfalls hemmen, während eine Blockade der cGK-Ibeta die NO-induzierte Hemmung der Rap1-Aktivierung verhinderte. Die genannten Effekte des NO/cGMP-Signalwegs waren unabhängig vom Stimulus, der zur Rap1B-Aktivierung genutzt wurde, sowohl die Aktivierung über verschiedene G-Protein-gekoppelte Rezeptoren (GPCR) als auch die Aktivierung über Tyrosin-Kinasen wurden gehemmt. Eine detailliertere Untersuchung ergab, daß cGK-Ibeta die Ca2+-unabhängige Aktivierung von Rap1B hemmen konnte. Die Rolle der cGK-Ibeta wurde abschließend im unabhängigen Zellsystem der Megakaryocyten abgesichert. Die Hemmung der Rap1B-Aktivierung durch den NO/cGMP-Signalweg stellt einen schnellen Regulationsmechanismus zur Inhibition der Thrombocytenaggregation dar. Aus der Literatur ist eine kinetisch langsame Phosphorylierung von Rap1B an Serin-179 durch cGK-Ibeta bekannt. Zur Ermittlung ihrer Funktion wurden mikroskopische Untersuchungen der subzellulären Rap1B-Lokalisation in lebenden MDCK-Zellen durchgeführt. Hierbei konnte gezeigt werden, daß eine nicht-phosphorylierbare Rap1BMutante eine ausgeprägte Membranlokalisation aufweist, während eine phosphomimetische Rap1B-Mutante bevorzugt cytoplasmatisch lokalisiert ist. In einer weiterführenden Studie wurde der Effekt dieser Rap1B-Mutanten auf das Zellausbreitungsverhalten von Hela-Zellen analysiert. Die Expression der nichtphosphorylierbaren Rap1B-Mutante führte dabei zu einer signifikant gesteigerten Zellausbreitung, welche hingegen durch eine phosphomimetische Rap1B-Mutante deutlich abgeschwächt war. Dies impliziert einen zusätzlichen Mechanismus, über den der NO/cGMP-Signalweg die Adhäsion bzw. die Aggregation von Thrombocyten regulieren kann. Zur Identifizierung von neuen Interaktionspartnern, die spezifisch an phosphoryliertes Rap1B binden und dessen subzelluläre Verteilung oder Aktivität regulieren, wurde das Yeast-Two-Hybrid-System eingesetzt. Hierbei konnte das mitochondriale CGI-51-Protein als neuer Bindepartner von Rap1B identifiziert und in Säugerzellen verifiziert werden. Eine phosphospezifische Interaktion konnte allerdings nicht nachgewiesen werden. Das CGI-51-Protein spielt eine wichtige Rolle bei der Proteinsortierung in der äußeren Mitochondrienmembran. Die Funktion der Interaktion von CGI-51-Protein mit Rap1B wurde im Rahmen dieser Arbeit nicht untersucht. Zusammenfassend kann gesagt werden, daß in der vorliegenden Arbeit erstmalig neue Erkenntnisse zur Regulation des kleinen G-Proteins Rap1B durch den NO/cGMP-Signalweg dargestellt sind. Dieser Regelmechanismus besitzt eine physioplogische Bedeutung bei der Inhibition der Thrombocytenaggregation.
Prostaglandin E2 is the major prostaglandin involved in colorectal carcinogenesis. The biosynthesis of prostaglandin E2 is accomplished by several terminal prostaglandin E synthases through catalytical conversion of the cyclooxygenase product prostaglandin H2. Among the known terminal prostaglandin E synthases, microsomal prostaglandin E synthase type 1 and type 2 were found to be overexpressed in colorectal cancer, however the role and regulation of these enzymes in this tumor entity are yet not fully understood. Here we report that the cyclopentenone prostaglandins 15-deoxy-D12,14-prostaglandin J2 and prostaglandin A2, which have been shown to modulate cell growth and neoplasia, selectively down-regulate microsomal prostaglandin E synthase type 2 mRNA and protein expression in the human colorectal carcinoma cell lines Caco-2 and HCT 116. This effect appeared to be PPARgamma independent and was not found to require G-protein-coupled receptor activation. Instead, inhibition of microsomal prostaglandin E synthase type 2 by cyclopentenone prostaglandins may be mediated by covalent binding of the cyclopentenone ring to cysteine residues on signalling molecules or via a redox-dependent mechanism. Inhibition of microsomal prostaglandin E synthase type 2 was subsequently followed by decreased prostaglandin E synthase activity, which in turn contributed at least in part to the anti-proliferative action of cyclopentenone prostaglandins in HCT 116 cells. Collectively, these data unravel a novel mechanism for the growth-inhibitory effects of cyclopentenone prostaglandins and expose microsomal prostaglandin E synthase type 2 as a new potential target for pharmacological intervention in the treatment of colorectal cancer.
Der COX-2-selektive Inhibitor Celecoxib ist zurzeit das einzigste NSAID, das von der FDA für die adjuvante Therapie von Patienten mit der FAP-Erkrankung zugelassen wurde. Die antineoplastischen Mechanismen dieses Wirkstoffes werden nur teilweise verstanden, jedoch spielen COX-2-abhängige, aber auch COX-2-unabhängige Mechanismen eine wichtige Rolle. Um zu untersuchen, in welchem Ausmaß die antikarzinogenen Effekte von Celecoxib von der COX-2-Expression der Tumor-Zelle abhängig sind, wurden humane Caco-2-Kolonkarzinom-Zellen mit pcDNA-Vektoren transfiziert, in denen die humane COX-2-cDNA sowohl in sense- (hCOX-2-sense), als auch in antisense- (hCOX-2-as) Orientierung einkloniert wurde. Die pcDNA-Kontrollzellen wurde nur mit dem leeren pcDNA-Vektor transfiziert. Caco-hCOX-2-s-Zellen zeigten eine starke Überexpression der COX-2, pcDNA-Kontrollzellen nur eine schwache Expression von COX-2 und hCOX-2-as-Zellen waren COX-2-defizient. Die Behandlung dieser Zellen mit steigenden Konzentrationen an Celecoxib (0-100 µM) führte in Proliferationstests zu einer starken Verminderung der Überlebensrate, die durch die Induktion einer G0/G1-Zellzyklusblockade und durch die Auslösung von Apoptose mit Aktivierung von Caspase-3 und -9 sowie Freisetzung von Cytochrom C charakterisiert ist. Sowohl die Verminderung der Überlebensrate, als auch die Induktion von Apoptose waren in COX-2-defizienten hCOX-2-as-Zellen schwächer ausgeprägt als in COX-2-exprimierenden pcDNA- und hCOX-2-s-Zellen. Im Gegensatz hierzu erfolgte die Induktion der G0/G1-Zellzyklusblockade durch Celecoxib unabhängig vom COX-2-Expressionsstatus der Zellen und war durch einen starken Abfall der Expression von Cyclin A und Cyclin B1 sowie eine Induktion der Zellzyklusinhibitoren p21 und p27 gekennzeichnet. Diese Ergebnisse verdeutlichen, dass die antikarzinogenen Effekte von Celecoxib sowohl über COX-2-abhängige, als auch COX-2-unabhängige Mechanismen erklärt werden können. Zahlreiche Studien konnten zeigen, dass Mutationen im APC- oder Beta-Catenin-Gen eine entscheidende Rolle bei der Entstehung von kolorektalen Polypen und Karzinomen spielen. Weiterhin ist der Beta-Catenin/APC-Signaltransduktionsweg ein wichtiger Regulator von Apoptose und Zellzyklusprogression. Daher wurde im zweiten Teil der vorliegenden Arbeit untersucht, ob Celecoxib einen Einfluss auf den Beta-Catenin/APC-Signaltransduktionsweg in humanen Kolonkarzinom-Zellen besitzt. So wurde nach Behandlung von humanen Caco-2-Zellen mit 100 µM Celecoxib eine schnelle Translokation von Beta-Catenin von seiner überwiegend Membran-assoziierten Lokalisation in das Zytoplasma beobachtet, die durch die Aktivität der GSK-3ß vermittelt wird und somit durch Phosphorylierung von Beta-Catenin stattfinden könnte. Tatsächlich führte die Behandlung von Caco-2-Zellen mit 100 µM Celecoxib bereits nach 2 Stunden Behandlungsdauer zu einer Reduktion des Ser-9-Phosphorylierungsstatus der GSK-3ß und somit zu deren Aktivierung. Die zytosolische Akkumulation von Beta-Catenin war ferner von einem schnellen Anstieg der Beta-Catenin-Spiegel im Zellkern begleitet, der bereits nach 30 Minuten Inkubationsdauer zu beobachten war. Überraschenderweise kam es parallel hierzu zu einem zeitabhängigen Abfall der DNA-Bindungsaktivität von Beta-Catenin. Nach dieser zellulären Reorganisation konnte nach 8 Stunden Behandlungsdauer mit 100 µM Celecoxib ein starker, Proteasom- und Caspase-abhängiger Abbau von Beta-Catenin beobachtet werden. Ein im Vergleich zu Caco-2-Zellen verminderter Beta-Catenin Abbau wurde sowohl in humanen MCF-7-Mammakarzinom-Zellen, die keine funktionale Caspase-3 exprimieren, als auch in humanen HCT-116-Zellen, in denen ein GSK-3ß-abhängiger Abbau von Beta-Catenin aufgrund einer Mutation im Beta-Catenin-Protein nicht stattfindet, beobachtet. Interessanterweise fand ein Abbau von Beta-Catenin weder nach Behandlung der Caco-2-Zellen mit dem stark antikarzinogen wirksamen NSAID R-Fluriprofen, noch mit dem COX-2-selektiven Inhibitor Rofecoxib statt. Die Ergebnisse aus diesem Teil der Arbeit deuten darauf hin, dass der Abbau von Beta-Catenin bei der Auslösung der COX-2-unabhängigen antikarzinogenen Effekte von Celecoxib eine wichtige Rolle spielt. In den letzten Jahren kamen weitere strukturverwandte NSAIDs vom Coxib-Typ auf den Markt, die eine höhere COX-2-Selektivität als Celecoxib besitzen. Die Experimente des dritten Teils dieser Arbeit sollten die Frage klären, ob die antikarzinogene Wirksamkeit einen Klasseneffekt aller Coxibe darstellt, oder nur spezifisch nach Behandlung von Tumor-Zellen mit Celecoxib zu beobachten ist. Mittels Proliferationstests konnte gezeigt werden, dass Celecoxib und Methylcelecoxib (Strukturanalogon von Celecoxib mit schwacher COX-2-inhibitorischer Aktivität) starke wachstumshemmende Effekte (Zellzyklusblockade und Apoptose) in COX-2-überexprimierenden HCA-7-, als auch in COX-2-defizienten HCT-116-Kolon-karzinomzellen verursachen. Unter Behandlung dieser Zellen mit den selektiven COX-2-Inhibitoren Rofecoxib, Etoricoxib, Lumiracoxib und Valdecoxib wurden nur schwache antiproliferative Effekte beobachtet. Die Analyse der Zellzahl in der SubG1-Phase mittels Durchflusszytometrie sowie der Spaltung von PARP mittels Western Blot-Analyse konnte demonstrieren, dass sowohl HCT-116-, als auch HCA-7-Zellen deutlich sensitiver auf die Apoptose-induzierende Wirkung von Methylcelecoxib reagierten als auf Celecoxib. Zudem zeigten COX-2-überexprimierende HCA-7-Zellen nach Behandlung mit Celecoxib und Methylcelecoxib eine höhere Apoptoserate als HCT-116-Zellen, bei denen jedoch die Induktion einer G1-Zellzyklusblockade mit Induktion von p27 und Abbau von Cyclin D1 ausgeprägter als in HCA-7-Zellen war. Eine LC/MS/MS-Analyse der Coxibkonzentrationen in Medium ergab, dass aufgrund der starken Proteinbindungen die freien Coxibkonzentrationen teils deutlich niedriger sind als die totalen eingesetzten Coxibkonzentrationen in Medium mit 10% FCS. Ferner konnte mittels LC/MS/MS demonstriert werden, dass es nach Behandlung von HCT-116- und HCA-7-Zellen mit Celecoxib und Methylcelecoxib zu einer intrazellulären Aufkonzentrierung der Wirkstoffe relativ zur freien Coxibkonzentration im Medium kommt, die nach Behandlung der Zellen mit Rofecoxib, Etoricoxib, Lumiracoxib und Valdecoxib jedoch nicht beobachtet wurde. Die Aufkonzentrierung von Celecoxib in den Kolonkarzinom-Zellen könnte bei der Auslösung der antikarzinogenen Effekte möglicherweise eine Rolle spielen. Die Ergebnisse aus diesem Teil der Arbeit konnten belegen, dass die antiproliferativen Effekte spezifisch und weitgehend COX-2-unabhängig nach Behandlung der Tumor-Zellen mit Celecoxib auftreten und daher keinen Klasseneffekt aller COX-2-selektiven NSAIDs darstellen.
Pharmazeutische Proteomics
(2006)
Die vorliegende Arbeit setzt sich mit der Implementierung, Validierung und Anwendung der 2-dimensionalen Gelelektrophorese und der MALDI-TOF Massenspektrometrie unter pharmazeutischen Gesichtspunkten auseinander. Es wurde ein breites Spektrum aus dem Bereich der Pharmazeutischen Proteomics bearbeitet, beginnend mit einer detaillierten Methodenentwicklung für 2-DE, um die Methode zu optimieren, ihre Robustheit zu evaluieren und die Grenzen der Methode kennen zu lernen. Daran schließt sich eine Validierung für 2-DE / Silberfärbung an. Der Validierungsansatz orientiert sich an den üblicherweise in der pharmazeutischen Industrie bei der Validierung analytischer Methoden untersuchten Parametern. Hierzu zählen Präzision, Linearität, Richtigkeit und Spezifität. Ferner wurden Untersuchungen angestellt, inwiefern Daten aus unterschiedlichen Labors zusammengefasst werden können. Zur Dokumentation wurde ein auf MS Access® basierendes Laborinformationssystem erstellt. Hiermit können die von verschiedenen Mitarbeitern erzeugten Daten einheitlich und nachvollziehbar erfasst werden. Nach der Etablierung der methodischen Grundlagen wurden unterschiedliche, pharmazeutisch relevante Fragestellungen mittels 2-DE und MALDI-TOF-MS bearbeitet. Proben unterschiedlicher Komplexität wurden untersucht, die Milch eines transgenen Kaninchens, welches bovines FSH exprimiert, wurde analysiert. Über diese Versuche wurde der Einstieg in die Analytik rekombinanter Arzneistoffe geschaffen. Die 2-DE eignet sich sehr gut um die bei posttranslational modifizierten rekombinanten Proteinen auftretende Mikroheterogenität abzubilden. 2-DE und MALD-TOF MS sind alternative Methoden zu denen, die im europäischen Arzneibuch für die Analytik rekombinanter Arzneistoffe beschriebenen werden. Erythropoietin, einer der weltweit umsatzstärksten rekombinanten Arzneistoffe, zu dem auch eine Monographie im EuAB existiert, wurde näher untersucht. Bei diesem Protein wurden die Zuckerseitenketten selektiv abgespalten und es wurde untersucht, welche Auswirkung die Zucker auf das eletrophoretische Verhalten des Erythropoietins haben. Eine MALDI-TOF-MS Analytik von Erythropoietin war auch erst nach Abspaltung der Zuckerseitenketten möglich. Die Sequenzabdeckung konnte durch Verdau mit unterschiedlichen Enzymen gesteigert werden. Eine Technologie zur Sequenzierung von Proteinen mittels MALDI-TOF-MS wurde mit CAFTM für rekombinantes Chicken Annexin V etabliert. Weitere rekombinante Proteine, die im Rahmen dieser Arbeit untersucht wurden, sind Interferon-alfa-2a, Interferon-alf-2b, rh-HCG, Trastuzumab und Rituximab. Das anti-apoptotischen Bcl-xL ist ein Zielprotein für den Einsatz von Antisense Oligonucleotiden in der Tumortherapie. Für dieses Protein wurde eine 2-DE / Western blot-Methode entwickelt, die als in vitro Testsystem für das Screening von Oligonucleotiden genutzt werden kann. Aus dem Bereich der klinischen Proteomics wurden Serum, CSF und Urinproben von Patienten mit Bence Jones Proteinämie untersucht und mit den üblicherweise in der Klinik verwendeten CE-Analysen verglichen. In einzelnen Fällen konnten in vermeintlich Bence Jones negativen Proben mittels 2-DE doch noch Bence Jones Proteine nachgewiesen werden. Zusammenfassend kann man sagen, dass 2-DE und MALDI-TOF-MS vielseitig in der Pharmazie angewendet werden können. Die Komplexität eines jeden Proteoms und die physikochemische Heterogenität von Proteinen muss beachtet werden. In komplexen Proteinmischungen sind aufgrund sehr unterschiedlicher Konzentrationen, Löslichkeiten und der Heterogenität durch posttranslationale Modifikationen viele Proteine einem globalen 2-DE Ansatz nicht zugänglich, nichtsdestotrotz ist die 2-DE derzeit eine der leistungsfähigsten Methoden in der Proteomanalytik.
G protein-coupled receptors (GPCRs) play regulatory roles in many different physiological processes and they represent one of the most important class of drug targets. However, due to the lack of three-dimensional structures, structure based drug design has not been possible. The major bottleneck in getting three-dimensional crystal structure of GPCRs is to obtain milligram quantities of pure, homogenous and stable protein. Therefore, during my Ph.D. thesis, I focused on expression, characterization and isolation of three GPCRs namely human bradykinin receptor subtype 2 (B2R), human angiotensin II receptor subtype 1 (AT1aR), and human neuromedin U receptor subtype 2 (NmU2R). These receptors were heterologously produced in three different expression systems (i.e. Pichia pastoris, insect cells and mammalian cells), biochemically characterized and subsequently solubilized and purified for structural studies The human bradykinin receptor subtype 2 (B2R) is constitutively expressed in a variety of cells, including endothelial cells, vascular smooth muscle cells and cardiomyocytes. Activation of B2R is important in pathogenesis of inflammation, pain, tissue injury and cardioprotective mechanisms. During this study, recombinant B2R was produced in methylotrophic yeast Pichia pastoris (3.5 pmol/mg), insect cells (10 pmol/mg) and mammalian cells (60 pmol/mg). The recombinant receptor was characterized in terms of [3H] bradykinin binding, G protein coupling, localization, and glycosylation. Subsequently, it was solubilized and purified using affinity chromatography. Homogeneity and stability of purified B2R was monitored by gel filtration analysis. Milligram amounts of pure and stable receptor were obtained from BHK cells and Sf9 cells, which were used for three-dimensional crystallization attempts. The second receptor, which I worked on, is human angiotensin II receptor subtype 1 (AT1aR). AT1aR is distributed in smooth muscle cells, liver, kidney, heart, lung and testis. Activation of AT1aR is implicated in the regulation of blood pressure, hypertension and cardiovascular diseases. Recombinant AT1aR was produced at high levels in Pichia pastoris (167 pmol/mg), while at moderate levels in insect cells (29 pmol/mg) and mammalian cells (32 pmol/mg). The recombinant receptor was characterized in terms of [3H] angiotensin II binding, localization, and glycosylation. Subsequently, the receptor was solubilized and purified using affinity chromatography. Homogeneity and stability of purified AT1aR was monitored by gel filtration analysis. Milligram amounts of pure and stable receptor were obtained from Pichia pastoris, which were used for threedimensional crystallization attempts. In addition to B2R and AT1aR, I also attempted to produce and isolate the human neuromedin U receptor subtype 2 (NmU2R), which was deorphanized recently. It is found in highest abundance in the central nervous system, particularly the medulla oblongata, spinal cord and thalamus. The distribution of this receptor suggests its regulatory role in sensory transmission and modulation. During this study, recombinant NmU2R was produced in Pichia pastoris (6 pmol/mg) and BHK cells (9 pmol/mg). Recombinant receptor was characterized with regard to [125I] NmU binding, localization and glycosylation. Subsequently, the receptor was solubilized and purified using affinity chromatography. Due to its low expression level, further expression optimization is required in order to obtain milligram amounts for structural studies. The long-term goal of this study was to obtain three-dimensional crystal structure of recombinant GPCRs. However, 3-dimensional crystallization of human recombinant membrane proteins still remains a difficult task. On the other hand, recent advances in the solid-state NMR spectroscopy offer ample opportunities to study receptor-ligand systems, provided milligram quantities of purified receptor are available. Therefore, in parallel to 3-dimensional crystallization trials, purified B2R was also used for solid-state NMR analysis in order to investigate the receptor bound conformation of bradykinin. Preliminary results are promising and indicate significant structural changes in bradykinin upon binding to B2R. Further experiments are ongoing and will hopefully result in the structure of receptor bound bradykinin. One of the challenges in GPCR crystallization is the small hydrophilic surface area that is available to make crystal contacts. One possibility to overcome this problem can be the reconstitution of a GPCR complex with an interacting protein for cocrystallization. For this purpose, I coexpressed B2R and AT1aR, which form a stable heterodimer complex, in BHK cells. I could successfully isolate the heterodimer complex by using two-step affinity purification. Unfortunately, this complex was not stable over time and disassociates within three days of purification. However, during coexpression of B2R and AT1aR in BHK cells, I observed that B2R was localized in the plasma membrane in coexpressing cells while it was retained intracellularly when expressed alone. This coexpression of AT1aR with B2R resulted in a four-fold increase in [3H] bradykinin binding sites on the cell surface. In addition, these two receptors were cointernalized in response to their individual specific ligands. Interestingly, colocalization of B2R and AT1aR was also found in human foreskin fibroblasts (which endogenously express both receptors), in line with the possibility that heterodimerization may be required for surface localization of B2R in native tissues as well. This is the first report where surface localization of a peptide GPCR is triggered by a distantly related peptide GPCR. These data support the hypothesis that heterodimerization may be a prerequisite for cell surface localization of some GPCRs. A second approach that I followed to stabilize the purified B2R was to reconstitute the B2R-β-arrestin complex. β-arrestin is a cytosolic protein that participates in agonist mediated desensitization of GPCRs and therefore dampens the cellular responses initiated by the activation of GPCRs. I tried to reconstitute B2R-β-arrestin complex in vitro by mixing purified B2R and purified β-arrestin. But, no interaction of these two proteins was observed in the pull-down assays. However, a C-terminal mutant of B2R (where a part of the C-terminus of the B2R is exchanged with that of the vasopressin receptor) was found to interact with β-arrestin in vitro as revealed by pull-down assays. In conclusion, this work establishes the production, characterization and isolation of three recombinant human GPCRs. Recombinant receptors were produced in milligram amounts and therefore, pave the way for structural analysis. The heterodimer complex of B2R-AT1aR and B2R-β-arrestin complex can be of great help during crystallization. In addition, it was also found for the first time that the surface localization of a peptide GPCR can be triggered by heterodimerization with a distantly related peptide GPCR.
Einleitung: Die kurzkettige Fettsäure Butyrat, die im Gastrointestinaltrakt durch bakterielle Fermentation aus nicht resorbierten Ballaststoffen und komplexen Kohlenhydraten der Nahrung gebildet wird, konnte in zahlreichen in vitro-Untersuchungen ihre chemopräventiven Eigenschaften demonstrieren. Ziel der vorliegenden Arbeit war es, die molekularen Mechanismen der Butyrat-induzierten Differenzierung und Wachstumshemmung von Kolonkarzinomzellen näher zu charakterisieren. Methodik: Die Versuche wurden an den kolorektalen Karzinomzelllinien Caco-2 und SW620 durchgeführt, die unter Standardbedingungen kultiviert wurden. Für einen Teil der Experimente wurden zusätzlich die Pankreaskarzinomzelllinien MiaPaca-2 und Capan-1 verwendet. Zytotoxische Effekte wurden durch Messung des Enzyms Laktatdehydrogenase im Überstand ausgeschlossen. Die Zellzahl wurde mittels Kristallviolettfärbung und die Proliferation über den Einbau von 5-Bromo-2‘-deoxyuridin (BrdU) während der DNA-Synthese bestimmt. Die Zelldifferenzierung wurde anhand der Aktivität des Enzyms alkalische Phosphatase quantifiziert. Rezeptorbindungsstudien mit [3H]1,25-Dihydroxyvitamin D3 wurden zur Ermittlung der Vitamin D Rezeptor- (VDR-) Bindungsaktivität durchgeführt, die Menge an VDR mRNA wurde über PCR quantifiziert. Die Proteine wurden mittels Western Blot und die Zellzyklusdistribution mit Hilfe eines Durchflusszytometers analysiert. Ergebnisse: Butyrat [3 mmol/L] sowie sein Prodrug Tributyrin, in 3-fach niedrigerer Konzentration eingesetzt ([1 mmol/L]), hemmten das Wachstum der Pankreaskarzinom-zelllinien MiaPaca-2 und Capan-1 ähnlich effektiv. Auch die apoptose- und differenzierungsfördernden Wirkungen von Butyrat und Tributyrin waren vergleichbar. In der Kolonkarzinomzelllinie Caco-2 erwies sich Butyrat in der Wachstumshemmung und Differenzierungsinduktion als etwas stärker wirksam. 1,25-Dihydroxyvitamin D3 (1,25-(OH)2D3) [10-6 mol/L] besaß in der Zelllinie Caco-2 ebenfalls proliferationshemmende und differenzierungsinduzierende Eigenschaften, die allerdings nur mäßig ausgeprägt waren. Die Kombination aus Butyrat und 1,25-(OH)2D3 wies in etwa eine additive antiproliferative Wirkung auf, wohingegen die Zelldifferenzierung synergistisch verstärkt wurde. Der potenzierende Effekt auf die Differenzierung ließ sich in der Pankreaskarzinomzelllinie Capan-1 bestätigen. Rezeptorbindungsstudien in Caco-2 Zellen ergaben, dass Tributyrin die spezifische Bindung von 1,25-(OH)2D3 an seinen Rezeptor erhöhte, ohne die Affinität des Liganden zu seinem Rezeptor zu beeinflussen. Auf RNA- und Proteinebene ließ sich eine zeit- und dosisabhängige Steigerung der VDR-Expression durch Tributyrin oder Butyrat in den Kolonkarzinomzelllinien Caco-2 und SW620 beobachten. Andere kurzkettige Fettsäuren ähnlicher Struktur beeinflussten hingegen die VDR-Expression in Caco-2 Zellen nur geringfügig oder gar nicht. Die Butyrat-induzierte Differenzierung von Caco-2, SW620 und Capan-1 Zellen ließ sich durch die Kombination mit dem VDR-Antagonisten ZK 191732 [10-5 mol/L] aufheben. Auch der durch die 48-stündige Butyrat-Behandlung von Caco-2 und SW620 Zellen verursachte G0/G1-Zellzyklusstop verschwand vollständig nach Koinkubation mit ZK 191732. Die genauere Untersuchung des molekularen Mechanismus, der dem Butyrat-induzierten Zellzyklusstop zugrundelag, erbrachte eine verminderte Expression der zellzyklusregulierenden Proteine Cyclin D1, E und A sowie der cyclinabhängigen Kinasen cdk2, 4 und 6 durch Butyrat. Weiterhin verstärkte Butyrat die Expression der cdk-Inhibitoren p21Waf1/Cip1 und p27Kip1. Die Butyat-induzierten Veränderungen in den Proteinmengen von p21Waf1/Cip1, cdk6 und Cyclin A ließen sich durch die Kombination mit 1,25-(OH)2D3 synergistisch verstärken und durch die Koinkubation mit ZK 191732 aufheben. Im Gegensatz hierzu wurden die durch Butyrat verursachten Änderungen in der Expression von p27Kip1, cdk2, cdk4, Cyclin D1 und Cyclin E weder durch 1,25-(OH)2D3 verstärkt noch durch den VDR-Antagonisten vermindert. Schlussfolgerung: Die Ergebnisse demonstrieren, dass Butyrat, das natürlicherweise durch die Nahrung im Darmlumen präsent ist, eine Reihe zellulärer Prozesse in Kolonkarzinomzellen beeinflusst, die schließlich in einer Proliferationshemmung, Differenzierung und Apoptose der Zellen resultieren. An der Regulation dieser Prozesse durch Butyrat ist der VDR zumindest teilweise beteiligt. Dies erklärt die synergistische Wirkung der Kombination aus Butyrat und 1,25-(OH)2D3 auf die Zelldifferenzierung, den Zellzyklusstop sowie auf die Expression verschiedener zellzyklusregulatorischer Proteine in Karzinomzellen. Die vorliegenden Daten weisen darauf hin, dass Butyrat, als Prodrug in Form von Tributyrin verabreicht, von pharmakologischem Interesse hinsichtlich der Chemoprävention oder -therapie des Kolonkarzinoms sein könnte.
This work investigated the influence of the CRISPR/Cas9 mediated knockout of 5-lipoxygenase (5-LO) on different adherent tumour cell lines derived from solid tumours. For this, the 5-LO expressing tumour cell lines HCT-116, HT-29, and U-2 OS were transiently transfected using a plasmid carrying the CRISPR/Cas9 complex sequence to the ALOX5 gene. Subsequently, cells were selected using Puromycin and analysed via Western blotting and DNA Sanger sequencing. Cells that were transfected with a control plasmid missing the guide RNA sequence, were used as a control for all experiments.
Differential gene expression analysis, performed after next-generation RNA sequencing, revealed that the expression of various genes was altered after the knockout of 5-LO. In HCT-116 cells, 28 genes were expressed differentially in all 5-LO knockout single-cell clones, while in HT-29 cells the expression of 18 genes and in U-2 OS cells of 234 genes was influenced by the knockout of 5-LO. These findings were validated by real-time qPCR. A lot of the genes that were influenced by the 5-LO knockout are known to be connected to epithelial-mesenchymal-transition (EMT), a process necessary for tumour metastasis. The results from RNA sequencing were the starting point for further investigations. In the following, different aspects of the tumour cell lines were examined. In HT-29, as
well as in U-2 OS cells, it was shown that knockout of the 5-LO resulted in impaired cell proliferation. Also, the formation of three-dimensional tumour spheroids was altered. In HT-29 cells, the knockout of 5-LO increased the number of cells in spheroids. In contrast, in U-2 OS cells, the number of cells per spheroid was decreased, even though the diameter of the spheroids was increased, due to more loosely packed spheroids. The difference between 5-LO positive and negative U-2 OS cells became even more obvious after embedding the spheroids in an artificial extracellular matrix. In that scenario, cells lacking the 5-LO formed smaller spheroids that did not have the same ability to grow into the extracellular matrix as 5-LO positive cells did. Also, directed cell migration was strongly influenced by the knockout of 5-LO. In both, HCT-116 and U-2 OS cells, directed cell migration towards a serum gradient was increased in 5-LO knockout single-cell clones. Pharmacological inhibition of the enzyme was used to investigate, whether canonical or non-canonical functions were responsible for the previously mentioned effects.
Therefore, vector control cells were treated with the 5-LO inhibitors Zileuton and CJ-13610 in different concentrations. Interestingly, only some of the effects mediated by the complete knockout of 5-LO could be reproduced by inhibiting the enzyme, leading to the suggestion, that canonical, as well as non-canonical functions of 5-LO, play a role in these tumour cells.
To conclude, it was shown in this study, that 5-LO affects various cellular functions when expressed in adherent tumour cell lines. These cell line-dependent effects result in altered gene expression, enhanced proliferation, and spheroid formation, as well as impaired cell motility, and can be mediated by enzymatic activity as well as other non-canonical functions.
Macroautophagy, herein referred to as autophagy, is an evolutionarily conserved homeostatic process that normally occurs inside eukaryotic cells which involves degradation of cytoplasmic substances via lysosomes. It can be induced by various conditions such as starvation and drug exposure, as well as be inhibited by numerous compounds. Under normal conditions, the doublemembrane autophagosomes engulf the cytosolic substrates and deliver them to lysosomes for digestion. These substrates include unnecessary or dysfunctional cell components, such as faulty macromolecules, organelles and even invading pathogens. Autophagosomes are formed through the co-operative work of various autophagy-related (ATG) proteins organized into complexes. Upon closure of the autophagosomes, they fuse with the acidic lysosomes, resulting in formation of autolysosomes and the delivery of lysosomal hydrolases to degrade the engulfed contents. The fusion of the autophagosome with lysosome is carried out by specific SNARE proteins, small GTPases and their effectors including tethers, adaptors and motor proteins. Autophagy is impaired in many human diseases including cancer, neurodegenerative diseases, aging and inflammation. Therefore, manipulation of autophagy pathway holds a great promise for new therapeutic applications ...
This work focused on the biosynthesis and characterization of esterified lipid mediators. Lipid mediators were generally thought to exert their effects as free molecules, and their esterification was regarded as a storage mechanism. However, more recent studies indicate that esterified lipid mediators are a distinct class of mediators. When this thesis started back in 2017, the idea of esterified lipids as a new class of mediators was relatively new so that respective compounds were either quite expensive or not commercially available at all. Therefore, a biosynthetic approach had to be established first to enable the study of the new lipid mediator class. Within the cell, esterified lipids are produced by activation and subsequent incorporation of polyunsaturated fatty acids. These steps are enzymatically catalyzed by members of the acyl-CoA synthetase family and the lysophosphatidylcholine acyltransferase family, respectively. Therefore, the enzymes acyl-CoA synthetase long-chain family member 4 (ACSL4) and lysophosphatidylcholine acyltransferase 2 (LPCAT2) were selected for a biosynthetic approach due to their broad substrate acceptance.
In a first attempt, recombinant protein expression in E. coli was studied. While the expression and purification of C-terminally His6x-tagged ACSL4 resulted in a pure and active protein, the expression of LPCAT2 turned out quite troublesome. Although several expression and purification parameters were varied, including purification tags, buffer compositions, and chromatography strategies, successful purification of LPCAT2 was not achieved.
Instead, a second approach was studied. This time, stably transfected cells overexpressing ACSL4 and/or LPCAT2 were generated from the human embryonal kidney (HEK) 293T cell line. Stably transfected cell lines were characterized on protein level and regarding their oxylipin profile. After confirming the overexpression and functionality of the enzymes, lipoxygenases (LOs) were co-expressed in a doxycycline-inducible manner to prevent premature cell death due to increased oxidative stress. As a result, LO product formation was enhanced and enabled the investigation of specific oxylipins. Since increased lipid peroxidation is also a key component of the ferroptosis cell death mechanisms, cell lines were investigated towards their cell viability. Indeed, expression of ACSL4 and/or LPCAT2 promoted cell death when treated with the ferroptosis inducers erastin or RSL3, even in the absence of LO expression. Furthermore, analysis by laser scanning confocal microscopy revealed that the localization of 15-LO1 was altered in the presence of LPCAT2, similar to treatment with RSL3 in vector control cells.
In conclusion, a stable overexpression system of ACSL4 and/or LPCAT2 was successfully established in HEK293T cells, which enabled the synthesis and characterization of esterified oxylipins. Interestingly, characterization of the cell lines revealed a correlation with the cell death mechanism ferroptosis. Although the expression of ACSL4 has already been reported as a biomarker for ferroptosis, this is the first time that a potential connection of LPCAT2 with ferroptosis was demonstrated. As a result, this may provide new therapeutic options for ferroptosis-related pathologies such as neurodegeneration, autoimmune diseases, or tumorigenesis.
This work aimed to investigate the regulation and activity of 5-lipoxygenase (5-LO), the central enzyme in leukotriene biosynthesis, in two colorectal cancer cell lines. The leukotriene pathway is positively correlated with the progression of several solid malignancies; however, factors regulating 5-LO expression and activity in tumors are poorly understood.
Cancer development, as well as cancer progression, are strongly dependent on the tumor microenvironment. In the conventional monolayer culture of cancer cell lines, cell-matrix and cell-cell interactions present in native tumors are absent. Furthermore, it is already known that various colon cancer cell lines dysregulate several important signaling pathways due to 3D growth. Therefore, the expression of the leukotriene cascade in HT-29 and HCT-116 colorectal cancer cells was investigated within a three-dimensional context using multicellular tumor spheroids to mimic a more physiological environment compared to conventional cell culture. Especially the expression of 5-LO, cPLA2α, and LTA4 hydrolase was altered due to threedimensional (3D) cell growth, which was investigated by qPCR and Western blot analysis. High cellular density in monolayer cultures led to similar results. The observed 5-LO upregulation was found inversely correlated with cell proliferation, determined by cell cycle analysis, and activation of PI3K/mTORC-2- and MEK-1/ERK-dependent pathways, determined using pharmacological pathway inhibition, stable shRNA knockdown cell lines, and analysis via qPCR and Western blot analysis. Following, the transcription factor E2F1 and its target gene MYBL2 were identified to play a role in the repression of 5-LO during cell proliferation. For this purpose, several stable MYBL2 over-expression and ALOX5 reporter cell lines were prepared and analyzed. Since 5-LO was already identified as a direct p53 target gene, the influence of p53, which is variably expressed in the cell lines (HT-29, p53 R273H mut; HCT-116 p53 wt; HCT-116 p53 KO), was investigated as well. Furthermore, HCT-116 cells carrying a p53 knockout were investigated. The PI3K/mTORC-2- and MEK-1/ERK-dependent suppression of 5-LO was also found in tumor cells from other origins (Capan-2, Caco-2, MCF-7), which was determined using pharmacological pathway inhibition and following analysis via qPCR. This suggests that the identified mechanism might apply to other tumor entities as well.
5-LO activity was previously described as attenuated in HT-29 and HCT-116 cells compared to polymorphonuclear leukocytes, which express a highly active 5-LO. However, the present study showed that the enzyme activity is indeed low but inducible in HT-29 and HCT-116 cells. Of note, the general lipid mediator profile and the mediator concentrations were comparable to those of M2 macrophages. Finally, the analysis of substrate availability in HT-29 and HCT-116 cells revealed a vast difference between formed metabolite concentrations and supplemented fatty acid concentrations, indicating that the substrates are either transformed into lipoxygenase-independent metabolites or are esterified into the cellular membrane.
In summary, the data presented in this work demonstrate that 5-LO expression and activity are tightly regulated in HT-29 and HCT-116 cells and fine-tuned due to environmental conditions. The cells suppress 5-LO during proliferation but upregulate the expression and activity of the enzyme under cellular stress-triggering conditions. This implies a possible role of 5-LO in manipulating the tumor stroma to support a tumor-promoting microenvironment.