886 resultados para inhibition
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Animal models of gentamicin nephrotoxicity present acute tubular necrosis associated with inflammation, which can contribute to intensify the renal damage. Hydrogen sulfide (H2S) is a signaling molecule involved in inflammation. We evaluated the effect of DL-propargylglycine (PAG), an inhibitor of endogenous H2S formation, on the renal damage induced by gentamicin. Male Wistar rats (N = 8) were injected with 40 mg/kg gentamicin (im) twice a day for 9 days, some of them also received PAG (N = 8, 10 mg·kg-1·day-1, ip). Control rats (N = 6) were treated with saline or PAG only (N = 4). Twenty-four-hour urine samples were collected one day after the end of these treatments, blood samples were collected, the animals were sacrificed, and the kidneys were removed for quantification of H2S formation and histological and immunohistochemical studies. Gentamicin-treated rats presented higher sodium and potassium fractional excretion, increased plasma creatinine [4.06 (3.00; 5.87) mg%] and urea levels, a greater number of macrophages/monocytes, and a higher score for tubular interstitial lesions [3.50 (3.00; 4.00)] in the renal cortex. These changes were associated with increased H2S formation in the kidneys from gentamicin-treated rats (230.60 ± 38.62 µg·mg protein-1·h-1) compared to control (21.12 ± 1.63) and PAG (11.44 ± 3.08). Treatment with PAG reduced this increase (171.60 ± 18.34), the disturbances in plasma creatinine levels [2.20 (1.92; 4.60) mg%], macrophage infiltration, and score for tubular interstitial lesions [2.00 (2.00; 3.00)]. However, PAG did not interfere with the increase in fractional sodium excretion provoked by gentamicin. The protective effect of PAG on gentamicin nephrotoxicity was related, at least in part, to decreased H2S formation.
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LDL oxidation and oxidative stress are closely related to atherosclerosis. Therefore, natural antioxidants have been studied as promising candidates. In the present study, the LDL oxidation inhibition activity of bioactive compounds from Halimeda incrassata seaweed. associated to antioxidant capacity, was evaluated in vitro. Experimental work was conducted with lyophilized aqueous extract and phenolic-rich fractions of the seaweed and their effect on LDL oxidation was evaluated using heparin-precipitated LDL (hep-LDL) with exposure to Cu2+ ions and AAPH as the free radical generator. H. incrassata had a protective effect for hep-LDL in both systems and the presence of phenolic compounds contributed to the activity where phenolic-rich fractions showed significant capacity for inhibition of oxidation mediated by Cu2+ ions. The observed effect could be related to the antioxidant potential of polar fractions evidenced by reducing activity and DPPH radical scavenging. The results obtained in vitro further support the antioxidant and LDL oxidation inhibition properties of H. incrassata and further knowledge toward future phytotherapeutic application of the seaweed.
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BACKGROUND: Ischemia and reperfusion (IR) injury remains a major cause of morbidity and mortality and multiple molecular and cellular pathways have been implicated in this injury. We determined whether acute inhibition of excessive mitochondrial fission at the onset of reperfusion improves mitochondrial dysfunction and cardiac contractility postmyocardial infarction in rats. METHODS AND RESULTS: We used a selective inhibitor of the fission machinery, P110, which we have recently designed. P110 treatment inhibited the interaction of fission proteins Fis1/Drp1, decreased mitochondrial fission, and improved bioenergetics in three different rat models of IR, including primary cardiomyocytes, ex vivo heart model, and an in vivo myocardial infarction model. Drp1 transiently bound to the mitochondria following IR injury and P110 treatment blocked this Drp1 mitochondrial association. Compared with control treatment, P110 (1 μmol/L) decreased infarct size by 28 ± 2% and increased adenosine triphosphate levels by 70+1% after IR relative to control IR in the ex vivo model. Intraperitoneal injection of P110 (0.5 mg/kg) at the onset of reperfusion in an in vivo model resulted in improved mitochondrial oxygen consumption by 68% when measured 3 weeks after ischemic injury, improved cardiac fractional shortening by 35%, reduced mitochondrial H2O2 uncoupling state by 70%, and improved overall mitochondrial functions. CONCLUSIONS: Together, we show that excessive mitochondrial fission at reperfusion contributes to long-term cardiac dysfunction in rats and that acute inhibition of excessive mitochondrial fission at the onset of reperfusion is sufficient to result in long-term benefits as evidenced by inhibiting cardiac dysfunction 3 weeks after acute myocardial infarction.
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AIMS: The relationship between the activity of eosinophils and platelets has been observed in recent decades by many scientists. These observations include increased numbers of eosinophils associated with platelet disorders, including changes in the coagulation cascade and platelet aggregation. Based on these observations, the interaction between eosinophils and platelets in platelet aggregation was analyze. MAIN METHODS: Human platelets were incubated with eosinophil cytosolic fraction, promyelocytic human HL-60 clone 15 cell lineage, and eosinophil cationic protein (ECP). Platelet rich plasma (PRP) aggregation was induced by adenosine diphosphate, platelet activating factor, arachidonic acid, and collagen, and washed platelets (WP) were activated by thrombin. KEY FINDINGS: Aggregation induced by all agonists was dose dependently inhibited by eosinophil cytosolic fraction. This inhibition was only partially reversed by previous incubation of the eosinophils with l-Nitro-Arginine-Methyl-Ester (l-NAME). Previous incubation with indomethacin did not prevent the cytosolic fraction induced inhibition. The separation of eosinophil cytosolic fraction by gel filtration on Sephadex G-75 showed that the inhibitory activity was concentrated in the lower molecular weight fraction. HL-60 clone 15 cells differentiated into eosinophils for 5 and 7 day were able to inhibit platelet aggregation. The ECP protein inhibited the platelet aggregation on PRP and WP. This inhibition was more evident in WP, and the citotoxicity MTT assay proved the viability of tested platelets, showing that the observed inhibition by the ECP protein does not occur simply by cell death. SIGNIFICANCE: Our results indicate that eosinophils play a fundamental role in platelet aggregation inhibition
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Aims: Angiotensin-converting enzyme (ACE) inhibitors are used in diabetic kidney disease to reduce systemic/intra-glomerular pressure. The objective of this study was to investigate whether reducing blood pressure (BP) could modulate renal glucose transporter expression, and urinary markers of diabetic nephropathy in diabetic hypertensive rats treated with ramipril or amlodipine. Main methods: Diabetes was induced in spontaneously-hypertensive rats (~210 g) by streptozotocin (50 mg/kg). Thirty days later, animals received ramipril 15 μg/kg/day (R, n =10), or amlodipine 10 mg/kg/day (A, n= 8,) or water (C, n = 10) by gavage. After 30-day treatment, body weight, glycaemia, urinary albumin and TGF-β1 (enzyme-linked immunosorbent assay) and BP (tail-cuff pressure method) were evaluated. Kidneys were removed for evaluation of renal cortex glucose transporters (Western blotting) and renal tissue ACE activity (fluorometric assay). Key findings: After treatments, body weight (p = 0.77) and glycaemia (p = 0.22) were similar among the groups. Systolic BP was similarly reduced (p < 0.001) in A and R vs. C (172.4 ± 3.2; 186.7 ± 3.7 and 202.2 ± 4.3 mm Hg; respectively). ACE activity (C: 0.903 ± 0.086; A: 0.654 ± 0.025, and R: 0.389 ± 0.057 mU/mg), albuminuria (C: 264.8 ± 15.4; A: 140.8 ± 13.5 and R: 102.8 ± 6.7 mg/24 h), and renal cortex GLUT1 content (C: 46.81 ± 4.54; A: 40.30 ± 5.39 and R: 26.89 ± 0.79 AU) decreased only in R (p < 0.001, p < 0.05 and p < 0.001; respectively). Significance:We concluded that the blockade of the renin–angiotensin systemwith ramipril reduced earlymarkers of diabetic nephropathy, a phenomenon that cannot be specifically related to decreased BP levels.
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DNA damage induced by ultraviolet (UV) radiation can be removed by nucleotide excision repair through two sub-pathways, one general (GGR) and the other specific for transcribed DNA (TCR), and the processing of unrepaired lesions trigger signals that may lead to cell death. These signals involve the tumor suppressor p53 protein, a central regulator of cell responses to DNA damage, and the E3 ubiquitin ligase Mdm2, that forms a feedback regulatory loop with p53. The involvement of cell cycle and transcription on the signaling to apoptosis was investigated in UVB-irradiated synchronized, DNA repair proficient, CS-B (TCR-deficient) and XP-C (GGR-deficient) primary human fibroblasts. Cells were irradiated in the G1 phase of the cell cycle, with two doses with equivalent levels of apoptosis (low and high), defined for each cell line. In the three cell lines, the low doses of UVB caused only a transient delay in progression to the S phase, whereas the high doses induced permanent cell cycle arrest. However, while accumulation of Mdm2 correlated well with the recovery from transcription inhibition at the low doses for normal and CS-B fibroblasts, for XP-C cells this protein was shown to be accumulated even at UVB doses that induced high levels of apoptosis. Thus, UVB-induced accumulation of Mdm2 is critical for counteracting p53 activation and apoptosis avoidance, but its effect is limited due to transcription inhibition. However, in the case of XP-C cells, an excess of unrepaired DNA damage would be sufficient to block S phase progression, which would signal to apoptosis, independent of Mdm2 accumulation. The data clearly discriminate DNA damage signals that lead to cell death, depending on the presence of UVB-induced DNA damage in replicating or transcribing regions.
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Background: Sleeping sickness is a major cause of death in Africa. Since no secure treatment is available, the development of novel therapeutic agents is urgent. In this context, the enzyme trypanothione reductase (TR) is a prominent molecular target that has been investigated in drug design for sleeping sickness. Results: In this study, comparative molecular field analysis models were generated for a series of Trypanosoma brucei TR inhibitors. Statistically significant results were obtained and the models were applied to predict the activity of external test sets, with good correlation between predicted and experimental results. We have also investigated the structural requirements for the selective inhibition of the parasite's enzyme over the human glutathione reductase. Conclusion: The quantitative structure-activity relationship models provided valuable information regarding the essential molecular requirements for the inhibitory activity upon the target protein, providing important insights into the design of more potent and selective TR inhibitors.
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Many physiological and pathological processes are mediated by the activity of proteins assembled in homo and/or hetero-oligomers. The correct recognition and association of these proteins into a functional complex is a key step determining the fate of the whole pathway. This has led to an increasing interest in selecting molecules able to modulate/inhibit these protein-protein interactions. In particular, our research was focused on Heat Shock Protein 90 (Hsp90), responsible for the activation and maturation and disposition of many client proteins [1], [2] [3]. Circular Dichroism (CD) spectroscopy, Surface Plasmon Resonance (SPR) and Affinity Capillary Electrophoresis (ACE) were used to characterize the Hsp90 target and, furthermore, its inhibition process via C-terminal domain driven by the small molecule Coumermycin A1. Circular Dichroism was used as powerful technique to characterize Hsp90 and its co-chaperone Hop in solution for secondary structure content, stability to different pHs, temperatures and solvents. Furthermore, CD was used to characterize ATP but, unfortunately, we were not able to monitor an interaction between ATP and Hsp90. The utility of SPR technology, on the other hand, arises from the possibility of immobilizing the protein on a chip through its N-terminal domain to later study the interaction with small molecules able to disrupt the Hsp90 dimerization on the C-terminal domain. The protein was attached on SPR chip using the “amine coupling” chemistry so that the C-terminal domain was free to interact with Coumermycin A1. The goal of the experiment was achieved by testing a range of concentrations of the small molecule Coumermycin A1. Despite to the large difference in the molecular weight of the protein (90KDa) and the drug (1110.08 Da), we were able to calculate the affinity constant of the interaction that was found to be 11.2 µm. In order to confirm the binding constant calculated for the Hsp90 on the chip, we decided to use Capillary Electrophoresis to test the Coumermycin binding to Hsp90. First, this technique was conveniently used to characterize the Hsp90 sample in terms of composition and purity. The experimental conditions were settled on two different systems, the bared fused silica and the PVA-coated capillary. We were able to characterize the Hsp90 sample in both systems. Furthermore, we employed an application of capillary electrophoresis, the Affinity Capillary Electrophoresis (ACE), to measure and confirm the binding constant calculated for Coumermycin on Optical Biosensor. We found a KD = 19.45 µM. This result compares favorably with the KD previously obtained on biosensor. This is a promising result for the use of our novel approach to screen new potential inhibitors of Hsp90 C-terminal domain.
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Die Induktion regulatorischer T-Zellen (Treg) spielt im Zusammenhang mit der Kontrolle allergenspezifischer Reaktionen, insbesondere auch im Rahmen einer erfolgreichen Hyposensibilisierung mit hohen Allergendosen, eine zentrale Rolle. In der vorliegenden Arbeit wurden die Mechanismen der Rekrutierung allergenspezifischer Treg daher in einem Mausmodell untersucht, in dem analog zur spezifischen Immuntherapie (SIT) die repetitive Verabreichung von hohen Antigendosen einen IgE-spezifischen Suppressionsmechanismus aktiviert, während die Injektion niedriger Antigendosen eine potente IgE-Antwort induziert. Th1-Zellen sowie konventionelle CD4+CD25+ oder CD8+CD28- Treg konnten als Vermittlerpopulationen des suppressiven Effektes in hochdosig immunisierten Mäusen ausgeschlossen werden. Mittels Transferexperimenten wurden erstmals CD4-CD8- doppelt negative Treg als eine die IgE-Suppression vermittelnde Zellpopulation identifiziert. Desweiteren wurden DNA-Transferexperimente durchgeführt, mit dem Ziel, adaptive Treg zum Zwecke der Inhibition allergenspezifischer Immunreaktionen zu induzieren. Dazu wurden IL-10- bzw. TGF-ß-kodierende Plasmide (pCMV-IL-10, pCMV-TGF-ß) hergestellt und in Kombination mit einem Plasmid, welches das Modellallergen ß-Galaktosidase (ßGal) unter der Kontrolle des DC-spezifischen Fascin-Promotors (pFascin-ßGal) kodierte, Mäusen mit der Genpistole appliziert. Die Expression des Modellallergens in Verbindung mit der konstitutiven Produktion von immunsuppressiven Zytokinen sollte bei den mit den transfizierten DC interagierenden antigenspezifischen T-Zellen zu einer verstärkten Differenzierung von Treg führen. Die Experimente zeigten, dass die Koapplikation von IL-10-kodierenden Plasmiden eine Immunsuppression induziert, die sich in einer verminderten antigenspezifischen Antikörperproduktion, Zytokinproduktion und CTL-Induktion zeigt, die jedoch bei nachfolgender Sensibilisierung mit ßGal-Protein nicht aufrechterhalten werden kann. Dahingegen führte die Koapplikation von TGF-ß-kodierenden Plasmiden verbunden mit einer nachfolgenden Sensibilisierung zu einer leichten Inhibition der IgG1- und IgG2a-Produktion verglichen mit der Vakzinierung mit pFascin-ßGal allein. Dieser inhibitorische Effekt von pCMV-TGF-ß wurde interessanterweise nicht bereits nach der DNA-Immunisierung, sondern erst nach Sensibilisierung mit dem Protein beobachtet.
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In cycling cells positive stimuli like nutrient, growth factors and mitogens increase ribosome biogenesis rate and protein synthesis to ensure both growth and proliferation. In contrast, under stress situation, proliferating cells negatively modulate ribosome production to reduce protein synthesis and block cell cycle progression. The main strategy used by cycling cell to coordinate cell proliferation and ribosome biogenesis is to share regulatory elements, which participate directly in ribosome production and in cell cycle regulation. In fact, there is evidence that stimulation or inhibition of cell proliferation exerts direct effect on activity of the RNA polymerases controlling the ribosome biogenesis, while several alterations in normal ribosome biogenesis cause changes of the expression and the activity of the tumor suppressor p53, the main effector of cell cycle progression inhibition. The available data on the cross-talk between ribosome biogenesis and cell proliferation have been until now obtained in experimental model in which changes in ribosome biogenesis were obtained either by reducing the activity of the RNA polymerase I or by down-regulating the expression of the ribosomal proteins. The molecular pathways involved in the relationship between the effect of the inhibition of RNA polymerase III (Pol III) activity and cell cycle progression have been not yet investigated. In eukaryotes, RNA Polymerase III is responsible for transcription of factors involved both in ribosome assembly (5S rRNA) and rRNA processing (RNAse P and MRP).Thus, the aim of this study is characterize the effects of the down-regulation of RNA Polymerase III activity, or the specific depletion of 5S rRNA. The results that will be obtained might lead to a deeper understanding of the molecular pathway that controls the coordination between ribosome biogenesis and cell cycle, and might give useful information about the possibility to target RNA Polymerase III for cancer treatment.
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Der kanonische Wnt Signalweg ist durch Regulation einer Vielzahl von Zielgenen in unterschiedliche Prozesse wie Entwicklung, Wachstum und Differenzierung involviert. Fehlregulation des Signalwegs kann zur Tumorentstehung führen. Die exakte Rolle des Wnt Signalwegs und seiner Zielgene in der karzinogenen Kaskade ist noch nicht genau bekannt. In dieser Arbeit sollte die Beteiligung der Wnt Zielgene c-MYC, CCND1 (kodiert Cyclin D1) und VEGF an der Karzinogenese untersucht werden. Um die Funktionen der Wnt Zielgene und ihre zellulären Effekte unabhängig voneinander untersuchen zu können, wurden die Mengen der entsprechenden Transkriptionsprodukte durch siRNA (short interfering RNA) gezielt verringert. Die Konsequenzen der Inaktivierung wurden in Kolon- und Zervixkarzinomzelllinien untersucht, wobei die zellulären Parameter Proliferation, Apoptose, Metabolismus sowie Migration und Adhäsion untersucht wurden. Dabei konnte beobachtet werden, dass der Wnt Signalweg mit seinen Zielgenen Cyclin D1 und c-MYC die Proliferation mit dem Energiemetabolismus von Tumorzellen verknüpft. Darüber hinaus konnte gezeigt werden, dass Cyclin D1 an der Regulation der zelluläre Migration und Adhäsion beteiligt ist, während VEGF die Apoptose abhängig vom zellulären Kontext inhibiert. Diese Ergebnisse liefern erste Hinweise auf die funktionelle Rolle der verschiedenen Zielgene im Prozess der Karzinogenese in Tumoren mit aktiviertem Wnt Signalweg. Damit ist diese Arbeit ein möglicher Ausgangspunkt für Studien mit dem Ziel der gezielten therapeutischen Beeinflussung des Wnt Signalwegs auf Ebene der Zielgene.
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The aim of the research project discussed in this thesis was to study the inhibition of aerobic glycolysis, that is the metabolic pathway exploited by cancer cells for the ATP generation. This observation has led to the evaluation of glycolytic inhibitors as potential anticancer agents. Lactate dehydrogenase (LDH) is the only enzyme whose inhibition should allow a blocking of aerobic glycolysis of tumor cells without damaging the normal cells which, in conditions of normal functional activity and sufficient oxygen supply, do not need this enzyme. In preliminar experiments we demonstrated that oxamic acid and tartronic acid, two LDH competitive inhibitors, impaired aerobic glycolysis and replication of cells from human hepatocellular carcinoma. Therefore, we proposed that the depletion of ATP levels in neoplastic cells, could improved the chemotherapeutic index of associated anticancer drugs; in particular, it was studied the association of oxamic acid and multi-targeted kinase inhibitors. A synergistic effect in combination with sorafenib was observed, and we demonstrated that this was related to the capacity of sorafenib to hinder the oxidative phosphorylation, so that cells were more dependent to aerobic glycolysis. These results linked to LDH blockage encouraged us to search for LDH inhibitors more powerful than oxamic acid; thus, in collaboration with the Department of Pharmaceutical Sciences of Bologna University we identified a new molecule, galloflavin, able to inhibit both A and B isoforms of LDH enzyme. The effects of galloflavin were studied on different human cancer cell lines (hepatocellular carcinoma, breast cancer, Burkitt’s lymphoma). Although exhibiting different power on the tested cell lines, galloflavin was constantly found to inhibit lactate and ATP production and to induce cell death, mainly in the form of apoptosis. Finally, as LDH-A is able to bind single stranded DNA, thus stimulating cell transcription, galloflavin effects were also studied on this other LDH function.
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Class I phosphatidylinositol 3-kinases (PI3Ks) are heterodimeric lipid kinases consisting of a regulatory subunit and one of four catalytic subunits (p110α, p110β, p110γ or p110δ). p110γ/p110δ PI3Ks are highly enriched in leukocytes. In general, PI3Ks regulate a variety of cellular processes including cell proliferation, survival and metabolism, by generating the second messenger phosphatidylinositol-3,4,5-trisphosphate (PtdIns(3,4,5)P3). Their activity is tightly regulated by the phosphatase and tensin homolog (PTEN) lipid phosphatase. PI3Ks are widely implicated in human cancers, and in particular are upregulated in T-cell acute lymphoblastic leukemia (T-ALL), mainly due to loss of PTEN function. These observations lend compelling weight to the application of PI3K inhibitors in the therapy of T-ALL. At present different compounds which target single or multiple PI3K isoforms have entered clinical trials. In the present research, it has been analyzed the therapeutic potential of the pan-PI3K inhibitor BKM120, an orally bioavailable 2,6-dimorpholino pyrimidine derivative, which has entered clinical trials for solid tumors, on both T-ALL cell lines and patient samples. BKM120 treatment resulted in cell cycle arrest and apoptosis, being cytotoxic to a panel of T-ALL cell lines and patient T-lymphoblasts. Remarkably, BKM120 synergized with chemotherapeutic agents currently used for treating T-ALL patients. BKM120 efficacy was confirmed in in vivo studies to a subcutaneous xenotransplant model of human T-ALL. Because it is still unclear which agents among isoform-specific or pan inhibitors can achieve the greater efficacy, further analyses have been conducted to investigate the effects of PI3K inhibition, in order to elucidate the mechanisms responsible for the proliferative impairment of T-ALL. Overall, these results indicated that BKM120 may be an efficient treatment for T-ALLs that have aberrant up-regulation of the PI3K signaling pathway and strongly support clinical application of pan-class I PI3K rather than single-isoform inhibitors in T-ALL treatment.
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Die Induktion von Toleranz spielt bei der Inhibition allergischer Immunreaktionen eine wichtige Rolle. Hierbei ist die Induktion regulatorischer T Zellen (Treg) von großer Bedeutung. Da zu einer erfolgreichen Behandlung von allergischen Erkrankungen bisher nur wenige Therapiemöglichkeiten zur Verfügung stehen wie die spezifische Immuntherapie (SIT), die allerdings nicht immer zum Erfolg führt, ist es wichtig neue Therapieformen zu entwickeln. rnIn dieser Arbeit wurde daher die biolistische DNA-Immunisierung mit Kombinations-Vakzinen bestehend aus einem allergenkodierenden Plasmid (βGalaktosidase (βGal)) in Kombination mit einem Plasmid, welches für ein immunmodulatorisches Molekül kodiert (Indolamin-2,3-Dioxygenase (IDO), Transforming Growth Factor beta (TGF-β) oder Interleukin-10 (IL-10)), durchgeführt und im Mausmodell der allergeninduzierten IgE-vermittelten Atemwegsinflammation auf ihre Wirksamkeit untersucht. Die Expression des Allergens zusammen mit dem immunregulatorischen Molekül in transfizierten Dendritischen Zellen (DCs) sollte zu einer Induktion von Treg führen und somit eine Suppression der Immunantwort bewirken. rnIn den Versuchen wurde zunächst der Effekt einer Transgenexpression unter der Kontrolle des ubiquitären CMV-Promotors mit dem der Transgenexpression unter der Kontrolle des Fascin-Promotors, der eine Genxpression spezifisch in DCs erlaubt, verglichen. Hierbei stellte sich heraus, dass es wichtig ist die Expression des Antigens mit Hilfe des Fascin-Promotors auf DCs zu beschränken. Einzig in diesem Fall konnte nach der Vakzinierung ein inhibitorischer Effekt auf die Entwicklung einer Atemwegshyperreaktivität durch Expression des Immunmodulatoren IDO beobachtet werden. Es zeigte sich auch, dass es von Vorteil ist, wenn das immunregulatorische Molekül unter Verwendung des CMV-Promotors in allen transfizierten Zellen exprimiert wird. Dies bewirkt, dass IDO in ausreichenden Konzentrationen vorhanden ist. rnDie Expression von βGal unter der Kontrolle des Fascin-Promotors (pFascin-βGal) in Kombination mit der Expression der Moleküle IL-10, TGF-β oder IDO unter Kontrolle des CMV-Promotors (pCMV-IL-10, pCMV-TGFβ, pCMV-IDO) bewirkte eine Immunsupprimierung, die sich in einer inhibierten Produktion antigenspezifischer Antikörper, einer verminderten Zytokin-Produktion, einer reduzierten Induktion zytotoxischer T-Zellen und in einer Inhibition der allergeninduzierten Atemwegshyperreaktivität zeigte, im Vergleich zu einer Vakzinierung mit pFascin-βGal in Kombination mit einem Kontroll-Plasmid. Bei nachfolgender Proteinsensibilisierung blieben diese Effekte jedoch nicht bestehen. Einzig durch Vakzinierung mit IL-10-kodierenden Plasmiden konnte eine moderate Verminderung der Atemwegsreaktivität nachgewiesen werden. rnIn einem therapeutischen Modell der Atemwegsinflammation, in dem die Mäuse vor der DNA-Immunisierung mit dem Protein sensibilisiert wurden, wurde demonstriert, dass im Vergleich zu Mäusen, die nur mit dem Protein sensibilisiert wurden, eine DNA-Immunisierung mit pFascin-βGal aber auch mit pCMV-βGal einen inhibierenden Einfluss auf die Entwicklung einer Atemwegsinflammation hat. Eine weitere Reduktion der Atemwegsreaktivität durch eine kombinierte Vakzinierung mit pCMV-IDO wurde nur erreicht, wenn βGal unter der Kontrolle des Fascin-Promotors exprimiert wurde, nicht aber unter Kontrolle des CMV-Promotors.rn