3 resultados para Platelet activation factor

em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha


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Schwämme (Porifera) sind die phylogenetisch ältesten Metazoa. Sie besitzen komplexe Abwehrsysteme, welche vor allem auf der Synthese bioaktiver niedermolekularer Sekundärmetaboliten beruhen und diese Tiere zu einer der reichhaltigsten Quellen für medizinisch nutzbare Wirkstoffe machen. Besonders der marine Einsiedler-Korkschwamm (Suberites domuncula) hat sich in den letzten Jahren zur Untersuchung der molekularen Zusammenhänge dieser Abwehrmechanismen als besonders geeignet herausgestellt. So wurden in diesem Schwamm beispielsweise zwei lyso-PAF (plättchenaktivierender Faktor) Derivate (1-O Hexadecyl-sn-glycero-3-phosphatidylcholin und 1-O-Octadecyl-sn-glycero-3-phosphatidylcholin) identifiziert und charakterisiert, sowie deren ausgeprägte antibakterielle Aktivität besonders gegenüber gramnegativen Bakterien demonstriert. Eine Behandlung mit der Modellsubstanz zur Simulation einer bakteriellen Infektion, dem Endotoxin Lipopolysaccharid (LPS), für insgesamt 72 Stunden resultierte in einem Anstieg der Expressionslevel zweier an der Biosynthese dieser bioaktiven Etherphospholipide beteiligten Proteine. Unter Anwendung der Methode des Differential Display konnte einerseits das Schlüsselenzym der Etherphospholipid Biosynthese Alkyl- Dihydroxyacetonphosphat (DHAP)-Synthase und andererseits die regulatorische Untereinheit der PAF-deacetylierenden PAF Acetylhydrolase I

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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

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Accumulating evidence indicates that loss of physiological amyloid precursor protein (APP) function leads to enhanced susceptibility of neurons to cellular stress during brain aging. This study investigated the neuroprotective function of the soluble APP ectodomain sAPPα. Recombinant sAPPα protected primary hippocampal neurons and neuroblastoma cells from cell death induced by trophic factor deprivation. This protective effect was abrogated in APP-depleted neurons, but not in APLP1-, APLP2- or IGF1-R-deficient cells, indicating that expression of holo-APP is required for sAPPα-dependent neuroprotection. Strikingly, recombinant sAPPα, APP-E1 domain and the copper-binding growth factor-like domain (GFLD) of APP were able to stimulate PI3K/Akt survival signaling in different wildtype cell models, but failed in APP-deficient cells. An ADAM10 inhibitor blocking endogenous sAPPα secretion exacerbated neuron death in organotypic hippocampal slices subjected to metabolic stress, which could be rescued by exogenous sAPPα. Interestingly, sAPPα-dependent neuroprotection was unaffected in neurons of APP-ΔCT15 mice which lack the intracellular C-terminal YENPTY motif of APP. In contrast, sAPPα-dependent Akt signaling was completely abolished in APP mutant cells lacking the C-terminal G-protein interaction motif and by specifically blocking Gi/o-dependent signaling with pertussis toxin. Collectively, the present thesis provides new mechanistic insights into the physiological role of APP: the data suggest that cell surface APP mediates sAPPα-induced neuroprotection via Go-protein-coupled activation of the Akt pathway.