6 resultados para Cytokin
Resumo:
A new formulate containing citokinins, that is commercialized as Cytokin, has been introduced as dormancy breaking agents. During a three-years study, Cytokin was applied at different concentrations and application times in two producing areas of the Emilia-Romagna region to verify its efficacy as a DBA. Cytokin application increased the bud break and showed a lateral flower thinning effect. Moreover, treated vines showed an earlier and more uniform flowering as compared to control ones. Results obtained on the productive performance revealed a constant positive effect in the fruit fresh weight at harvest. Moreover, Cytokin did not cause any phytotoxicity even at the highest concentrations. Starting from the field observation, which suggested the involvement of cytokinins in kiwifruit bud release from dormancy, 6-BA was applied in open field condition and molecular and histological analyses were carried out in kiwifruit buds collected starting from the endo dormant period up to complete bud break to compare the natural occurring situation to the one induced by exogenous cytokinin application. In details, molecular analyses were set up on to verify the expression of genes involved in the reactivation of cell cycle: cyclin D3, histone H4, cyclin-dependent kinase B, as well as of others which are known to be up regulated during bud release in other species, i.e.isopenteniltransferases (IPTs), which catalyze the first step in the CK biosynthesis, and sucrose synthase 1 and A, which are involved in the sugar supplied. Moreover, histological analyses of the cell division rate in kiwifruit bud apical meristems were performed. These analyses showed a reactivation of the cell divisions during bud release and changes in the expression level of the investigated genes.
Resumo:
Regulatorische T-Zellen (Tregs) sind in der Lage die Proliferation und Cytokin-Produktion konventioneller T-Zellen zu supprimieren, wobei die beteiligten Moleküle weitestgehend unbekannt sind. Im Rahmen dieser Arbeit wurden differentielle Analysen sowohl auf mRNA - als auch auf Proteinebene durchgeführt um Moleküle zu identifizieren, welche präferentiell in regulatorischen bzw. in supprimierten T-Zellen (Tsups) exprimiert werden. Der Transkriptionsfaktor Pur-alpha konnte als präferentiell in murinen Tsups exprimiert identifiziert werden. Die präferentielle Expression von Pur-alpha in murinen Tsups konnte durch quantitative PCR-Analysen bestätigt werden. In humanen Tregs konnte mittels „differentieller Proteom-Analyse“ das Lektin Galectin-10 als das am stärksten präferentiell exprimierte Protein identifiziert werden. Die differentielle Expression von Galectin-10 konnte sowohl auf mRNA-Ebene als auch mit Hilfe eines spezifischen Antiserums gegen Galectin-10 bestätigt werden. Zur Untersuchung einer möglichen Beteiligung von Galectin-10 am anergen Phänotyp sowie an den suppressiven Eigenschaften von Tregs wurde ein Galectin-10-Expressionskonstrukt generiert. Die Überexpression von Galectin-10 in konventionellen T-Zellen führte zur Apoptose der transfizierten Zellen. Die Überexpression von Galectin-10 in der humanen T-Zell-Linie „Jurkat“ konnte hingegen problemlos durchgeführt werden, führte aber nicht zur Vermittlung suppressiver Eigenschaften. Zum Nachweis einer Beteiligung von Galectin-10 an den funktionellen Eigenschaften regulatorischer T-Zellen werden in weiterführenden Versuchen momentan siRNA-Experimente etabliert, um die Galectin-10-Biosynthese in Tregs spezifisch zu unterdrücken.
Resumo:
DNA methylating compounds are widely used as anti-cancer chemotherapeutics. The pharmaceutical critical DNA lesion induced by these drugs is O6-methylguanine (O6MeG). O6MeG is highly mutagenic and genotoxic, by triggering apoptosis. Despite the potency of O6MeG to induce cell death, the mechanism of O6MeG induced toxicity is still poorly understood. Comparing the response of mouse fibroblasts wild-type (wt) and deficient for ataxia telangiectasia mutant protein (ATM), a kinase responsible for both the recognition and the signalling of DNA double-strand breaks (DSBs), it was shown that ATM deficient cells are more sensitive to the methylating agents N-methyl-N’-nitro-N-nitrosoguanidine (MNNG), methyl methansulfonate (MMS) and the anti-cancer drug temozolomide, in both colony formation and apoptosis assays. This clearly shows that DSBs are involved in O6MeG toxicity. By inactivating the O6MeG repair enzyme O6-methylguanine-DNA methyltransferase (MGMT) with the specific inhibitor O6-benzylguanine (O6BG), ATM wt and deficient cells became more sensitive to MNNG and MMS. The opposite effect was observed when over-expressing MGMT in ATM -/- cells. The results show that O6MeG is the critical DNA lesion causing death in ATM cells following MNNG treatment, and is partially responsible for the toxicity observed following MMS treatment. Furthermore, by inhibiting the ATM kinase activity with caffeine, it was shown that the resistance of wt cells to MNNG was due to the kinase activity of ATM, as wt cells underwent more apoptosis following methylating agent treatment in the presence of caffeine. Apoptosis and caspase-3 activation were late events, starting 48h after treatment. This lends support to the model where O6MeG lesions are converted into DSBs during replication. As ATM wt and deficient cells showed similar G2/M blockage and Chk1 activation following MNNG and MMS treatment, it was concluded that the protective effect of ATM is not due to cell cycle progression control. The hypersensitivity of ATM deficient cells was accompanied by their inability to activate the anti-apoptotic NFkB pathway. In a second part of this study, it was shown that the inflammatory cytokine IL-1 up-regulates the DNA repair gene apurinic endonuclease 2 (APEX2). Up-regulation of APEX2 occurred by transcriptional regulation as it was abrogated by actinomycin D. APEX2 mRNA accumulation was accompanied by increase in APEX2 protein level. IL-1 induced APEX2 expression as well as transfection of cells with APEX2 cDNA positively correlated with a decrease in apoptosis after treatment with genotoxic agents, particularly affecting cell death after H2O2. This indicates an involvement of APEX2 in the BER pathway in cells responding to IL-1.
Resumo:
CD4+CD25+ regulatorische T-Zellen (CD4+CD25+ Tregs) sind in der Lage die Proliferation und Cytokin-Produktion konventioneller T-Zellen zu supprimieren. Obwohl ein entscheidender Mechanismus dieses Prozesses die Inhibition der Interleukin-2 Produktion ist, sind die beteiligten Moleküle weitestgehend unbekannt. Interessanterweise entwickeln NFATc2-, NFATc3-doppeldefiziente Mäuse (DKO Mäuse) schwerste Autoimmunerkrankungen, so dass im Rahmen dieser Arbeit die Rolle der Transkriptionsfaktoren NFATc2 und NFATc3 bei der Entstehung von CD4+CD25+ Tregs und der CD4+CD25+ Treg-vermittelten Suppression konventioneller T-Zellen untersucht wurde. Es konnte gezeigt werden, dass zwar die Gesamtheit der peripheren CD4+CD25+ T-Zellen keinerlei suppressives Potential besitzt, eine Subpopulation dieser Zellpopulation, die sehr stark CD25 und GITR exprimiert (CD4+CD25++GITR++ T-Zellen), jedoch in der Lage ist kokultivierte konventionelle CD4+ T-Zellen in ihren Effektorfunktionen zu inhibieren. Allerdings ließen sich die konventionellen CD4+ T-Zellen aus DKO Mäusen nicht von CD4+CD25+ Tregs in ihrer Proliferation und Zytokinproduktion inhibieren. Es kann also abschließend gesagt werden, dass das Fehlen der Transkriptionsfaktoren NFATc2 und NFATc3 die Entstehung und Funktion von CD4+CD25+ Tregs nicht beeinflusst, jedoch konventionelle CD4+ T-Zellen resistent gegen eine CD4+CD25+ Treg-vermittelte Suppression werden lässt.
Resumo:
Immune modulation by herpesviruses, such as cytomegalovirus, is critical for the establishment of acute and persistent infection confronting a vigorous antiviral immune response of the host. Therefore, the action of immune-modulatory proteins has long been the subject of research, with the final goal to identify new strategies for antiviral therapy.rnIn the case of murine cytomegalovirus (mCMV), the viral m152 protein has been identified to play a major role in targeting components of both the innate and the adaptive immune system in terms of infected host-cell recognition in the effector phase of the antiviral immune response. On the one hand, it inhibits cell surface expression of RAE-1 and thereby prevents ligation of the activating natural killer (NK)-cell receptor NKG2D. On the other hand, it decreases cell surface expression of peptide-loaded MHC class I molecules thereby preventing antigen presentation to CD8 T cells. Ultimately, the outcome of CMV infection is determined by the interplay between viral and cellular factors.rnIn this context, the work presented here has revealed a novel and intriguing connection between viral m152 and cellular interferon (IFN), a key cytokine of the immune system: rnthe m152 promoter region contains an interferon regulatory factor element (IRFE) perfectly matching the consensus sequence of cellular IRFEs.rnThe biological relevance of this regulatory element was first suggested by sequence comparisons revealing its evolutionary conservation among various established laboratory strains of mCMV and more recent low-passage wild-derived virus isolates. Moreover, search of the mCMV genome revealed only three IRFE sites in the complete sequence. Importantly, the functionality of the IRFE in the m152 promoter was confirmed with the use of a mutant virus, representing a functional deletion of the IRFE, and its corresponding revertant virus. In particular, m152 gene expression was found to be inhibited in an IRFE-dependent manner in infected cells. Essentially, this inhibition proved to have a severe impact on the immune-modulatory function of m152, first demonstrated by a restored direct antigen presentation on infected cells for CD8 T-cell activation. Even more importantly, this effect of IRFE-mediated IFN signaling was validated in vivo by showing that the protective antiviral capacity of adoptively-transferred, antigen-specific CD8 T cells is also significantly restored by the IRFE-dependent inhibition of m152. Somewhat curious and surprising, the decrease in m152 protein simultaneously prevented an enhanced activation of NK cells in acute-infected mice, apparently independent of the RAE-1/NKG2D ligand/receptor interaction but rather due to reduced ‘missing-self’ recognition.rnTaken together, this work presents a so far unknown mechanism of IFN signaling to control mCMV immune modulation in acute infection.rnrn