6 resultados para Death by drowning
em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha
Resumo:
Candidate vaccines based on the highly attenuated orthopoxvirus strain MVA are tested against various infectious and cancer diseases and, more profound, vaccines based on wildtype and recombinant viruses have been found safe and immunogenic in clinical trials. Compared to conventional vaccine strains, MVA lacks many functional genes for potentially important regulators of virus-host interactions. However, some gene functions responsible for counteraction of cellular antiviral pathways are still conserved in the genome of MVA and the inhibition of apoptosis seems to be one important mechanism, the virus is still able to interact with.rnrnVaccinia viruses encode several proteins which prevent the induction of virus-induced apoptosis. The vaccinia virus anti-apoptotic protein F1 was shown to counteract the activation of the mitochondrial pathway of apoptosis in a highly effective manner. Another vaccinia virus protein, N1, like F1 shows structural and functional similarity to members of the cellular anti-apoptotic bcl-2 family and was also shown to inhibit apoptosis. The vaccinia virus early protein E3 inhibits programmed cell death by binding to and sequestration of dsRNA molecules, normally inducing cellular antiviral pathways also driving the induction of apoptosis. All three anti-apoptotic genes were functionally analyzed during this work.rn
Resumo:
During the perinatal period the developing brain is most vulnerable to inflammation. Prenatal infection or exposure to inflammatory factors can have a profound impact on fetal neurodevelopment with long-term neurological deficits, such as cognitive impairment, learning deficits, perinatal brain damage and cerebral palsy. Inflammation in the brain is characterized by activation of resident immune cells, especially microglia and astrocytes whose activation is associated with a variety of neurodegenerative disorders like Alzheimer´s disease and Multiple sclerosis. These cell types express, release and respond to pro-inflammatory mediators such as cytokines, which are critically involved in the immune response to infection. It has been demonstrated recently that cytokines also directly influence neuronal function. Glial cells are capable of releaseing the pro-inflammatory cytokines MIP-2, which is involved in cell death, and tumor necrosis factor alpha (TNFalpha), which enhances excitatory synaptic function by increasing the surface expression of AMPA receptors. Thus constitutively released TNFalpha homeostatically regulates the balance between neuronal excitation and inhibition in an activity-dependent manner. Since TNFalpha is also involved in neuronal cell death, the interplay between neuronal activity MIP-2 and TNFalpha may control the process of cell death and cell survival in developing neuronal networks. An increasing body of evidence suggests that neuronal activity is important in the regulation of neuronal survival during early development, e.g. programmed cell death (apoptosis) is augmented when neuronal activity is blocked. In our study we were interested on the impact of inflammation on neuronal activity and cell survival during early cortical development. To address this question, we investigated the impact of inflammation on neuronal activity and cell survival during early cortical development in vivo and in vitro. Inflammation was experimentally induced by application of the endotoxin lipopolysaccharide (LPS), which initiates a rapid and well-characterized immune response. I studied the consequences of inflammation on spontaneous neuronal network activity and cell death by combining electrophysiological recordings with multi-electrode arrays and quantitative analyses of apoptosis. In addition, I used a cytokine array and antibodies directed against specific cytokines allowing the identification of the pro-inflammatory factors, which are critically involved in these processes. In this study I demonstrated a direct link between inflammation-induced modifications in neuronal network activity and the control of cell survival in a developing neuronal network for the first time. Our in vivo and in vitro recordings showed a fast LPS-induced reduction in occurrence of spontaneous oscillatory activity. It is indicated that LPS-induced inflammation causes fast release of proinflammatory factors which modify neuronal network activity. My experiments with specific antibodies demonstrate that TNFalpha and to a lesser extent MIP-2 seem to be the key mediators causing activity-dependent neuronal cell death in developing brain. These data may be of important clinical relevance, since spontaneous synchronized activity is also a hallmark of the developing human brain and inflammation-induced alterations in this early network activity may have a critical impact on the survival of immature neurons.
Resumo:
Die Inhibition des programmierten Zelltods ist ein essentieller Faktor der viralen Replikationsfähigkeit. Das murine Cytomegalovirus kodiert deshalb für verschiedene Zelltod-inhibierende Gene, um dem programmierten Zelltod zu entgehen bis die Virusproduktion abgeschlossen ist. Da die Expression des viralen anti-apoptotischen Gens M36 infizierte Makrophagen vor der Apoptose schützt (Menard et al., 2003), wurde in der vorliegenden Arbeit unter Verwendung der Deletionsmutante mCMV-ΔM36 (ΔM36) der Einfluss von Apoptose auf das Priming Epitop-spezifischer CD8 T-Zellen untersucht.rnInteressanterweise waren die Frequenzen mCMV-spezifischer CD8 T-Zellen nach Infektion mit ΔM36 für alle getesteten Epitope sowohl im Haplotyp H-2d als auch im Haplotyp H-2b deutlich erhöht. Zusätzlich konnte mit Hilfe der mCMV-ORF-Library eine Verbreiterung des CD8 T-Zellepitop-Repertoire nach Infektion mit ΔM36 nachgewiesen werden, was neben der quantitativen auch eine qualitative Steigerung des CD8 T-Zell-Primings aufzeigt.rnIn der funktionellen Revertante ΔM36-FADDDN wird die anti-apoptotische Funktion durch eine dominant-negative Form des zellulären Adapterproteins FADD (FADDDN) substituiert (Cicin-Sain et al., 2008), die das Apoptose-Signaling verhindert. In der vorliegenden Arbeit konnte gezeigt werden, dass die Expression von FADDDN nicht nur den Apoptose-Phänotyp wieder revertiert, sondern auch die Verbesserung des CD8 T-Zell-Primings aufhebt. Diese Beobachtung belegt eindeutig, dass das verbesserte CD8 T-Zell-Priming auf einer verstärkten Apoptose-Induktion beruht.Bemerkenswerterweise konnte das verbesserte Priming auch nach Deletion des anti-nekroptotischen Gens M45 nachgewiesen werden. So konnte nach Infektion mit mCMV-M45-BamX (M45-BamX) (Brune et al., 2001) gezeigt werden, dass auch die Induktion der Nekroptose zu einem verbesserten CD8 T-Zell-Priming sowie zu einer Verbreiterung des CD8 T-Zellepitop-Repertoires führt.Nach Infektion von Cross-Priming-defizienten 3d-Mäusen (Tabeta et al., 2006) konnte eine Steigerung mCMV-spezifischer CD8 T-Zell-Frequenzen in Abwesenheit von M36 oder M45 nicht beobachtet werden. Dieser Befund lässt auf ein erhöhtes Cross-Priming von CD8 T-Zellen durch ΔM36 oder M45-BamX infolge einer verstärkten Induktion des programmierten Zelltods schließen.rnIn der vorliegenden Arbeit konnte erstmals gezeigt werden, dass die Inhibition des programmierten Zelltods durch die mCMV-Gene M36 und M45 das CD8 T-Zell-Priming limitiert. Somit fördern virale Zelltod-inhibierende Gene die virale Replikationsfähigkeit, indem sie die Virusproduktion per se in der individuellen Zelle steigern und zusätzlich die Immunkontrolle reduzieren, was wiederum eine verbesserte Dissemination in vivo ermöglicht.
Resumo:
Chemotherapeutic SN1‑methylating agents are important anticancer drugs. They induce several covalent modifications in the DNA, from which O6‑methylguanine (O6MeG) is the main toxic lesion. In this work, different hypotheses that have been proposed to explain the mechanism of O6MeG‑triggered cell death were tested. The results of this work support the abortive processing model, which states that abortive post‑replicative processing of O6MeG‑driven mispairs by the DNA mismatch repair (MMR) machinery results in single‑strand gaps in the DNA that, upon a 2nd round of DNA replication, leads to DNA double‑strand break (DSB) formation, checkpoint activation and cell death. In this work, it was shown that O6MeG induces an accumulation of cells in the 2nd G2/M‑phase after treatment. This was accompanied by an increase in DSB formation in the 2nd S/G2/M‑phase, and paralleled by activation of the checkpoint kinases ATR and CHK1. Apoptosis was activated in the 2nd cell cycle. A portion of cells continue proliferating past the 2nd cell cycle, and triggers apoptosis in the subsequent generations. An extension to the original model is proposed, where the persistence of O6MeG in the DNA causes new abortive MMR processing in the 2nd and subsequent generations, where new DSB are produced triggering cell death. Interestingly, removal of O6MeG beyond the 2nd generation lead to a significant, but not complete, reduction in apoptosis, pointing to the involvement of additional mechanisms as a cause of apoptosis. We therefore propose that an increase in genomic instability resulting from accumulation of mis‑repaired DNA damage plays a role in cell death induction. Given the central role of DSB formation in toxicity triggered by chemotherapeutic SN1‑alkylating agents, it was aimed in the second part of this thesis to determine whether inhibition of DSB repair by homologous recombination (HR) or non‑homologous end joining (NHEJ) is a reasonable strategy for sensitizing glioblastoma cells to these agents. The results of this work show that HR down‑regulation in glioblastoma cells impairs the repair of temozolomide (TMZ)‑induced DSB. HR down‑regulation greatly sensitizes cells to cell death following O6‑methylating (TMZ) or O6‑chlorethylating (nimustine) treatment, but not following ionizing radiation. The RNAi mediated inhibition in DSB repair and chemo‑sensitization was proportional to the knockdown of the HR protein RAD51. Chemo‑sensitization was demonstrated for several HR proteins, in glioma cell lines proficient and mutated in p53. Evidence is provided showing that O6MeG is the primary lesion responsible for the increased sensitivity of glioblastoma cells following TMZ treatment, and that inhibition of the resistance marker MGMT restores the chemo‑sensitization achieved by HR down‑regulation. Data are also provided to show that inhibition of DNA‑PK dependent NHEJ does not significantly sensitized glioblastoma cells to TMZ treatment. Finally, the data also show that PARP inhibition with olaparib additionally sensitized HR down‑regulated glioma cells to TMZ. Collectively, the data show that processing of O6MeG through two rounds of DNA replication is required for DSB formation, checkpoint activation and apoptosis induction, and that O6MeG‑triggered apoptosis is also executed in subsequent generations. Furthermore, the data provide proof of principle evidence that down‑regulation of HR is a reasonable strategy for sensitizing glioma cells to killing by O6‑alkylating chemotherapeutics.
Resumo:
Untersuchungen zur Expression der induzierbaren NO-Synthetase (NOS2) belegen eine häufige Expression dieses Enzyms in Tumoren unterschiedlicher Gewebe. Bislang ist jedoch ungeklärt, ob die Expression der NOS2 in Tumorzellen die apoptotische Eliminierung durch zytotoxische T-Zellen beeinflussen kann. In der vorliegenden Arbeit wurden die Folgen einer endogenen NO-Synthese auf die Apoptosesensitivität von HEK293-Zellen untersucht. Um primäre NO-Wirkungen von NO-induzierten, sekundären (kompensatorischen) Veränderungen zu trennen, wurde mit einem induzierbaren Vektorsystem gearbeitet. Die NOS2 wurde zunächst unter der Kontrolle eines Ecdyson-sensitiven Promoters in HEK293-Zellen kloniert. Es konnten regulierbare NOS2-Klone selektiert werden, die nach Ponasteronbehandlung dosisabhängig die NOS2 exprimieren und NO synthetisieren. Die NOS2-Expression wurde durch Western Blot Analyse und Immunfluoreszenzfärbung dargestellt und die NO-Produktion mit Hilfe der Griess-Reaktion gemessen. An den NOS2-induzierten Zellen wurde dann der Einfluss von NO auf die CD95-vermittelte Apoptose analysiert. Es zeigte sich nach Stimulation des CD95-Rezeptors eine deutliche Korrelation der Apoptoserate mit der NOS2-Expression. In Kokulturexperimenten mit Peptid-spezifischen zytotoxischen T-Zellen zeigte sich, dass NO-produzierende Zielzellen effektiver eliminiert werden konnten. Auch nach Behandlung der Zellen mit TRAIL ergab sich eine höhere Apoptoserate in NO-produzierenden Zellen. Die weitere Analyse der durch NO beeinflussten Signalwege ergab eine Beteiligung von ER-Stress-vermittelten Apoptosewegen. Dies zeigte sich an der Hochregulation des ER-Stress-Proteins Grp78 (BiP) nach NOS2-Expression und der Spaltung der am ER-lokalisierten Caspase-4. Darüber hinaus konnte der schnellere Verlust des mitochondrialen Membranpotentials in Abhängigkeit von der NOS2-Expression nachgewiesen werden. Weiterhin wurde die Wirkung einer dauerhaften NO-Exposition auf die Apoptosesensitivität der Zellen untersucht. Auch ohne zusätzliche CD95-Stimulation induzierte eine kontinuierliche NOS2-Expression nach wenigen Tagen in den EcR293-NOS2-Zellen Apoptose. Diese Dauerbehandlung führte zum nahezu vollständigen Absterben der Kulturen. Einige Zellen überlebten jedoch diese Behandlung und wuchsen zu Zellklonen. Diese NO-resistenten Klone konnten isoliert werden. Sie zeigten eine zusätzliche Resistenz für CD95-vermittelte Apoptosesignale und waren besser vor dem Angriff Peptid-spezifischer CTLs geschützt. Die Apoptoseresistenz blieb auch nach längerer Kultur erhalten und scheint auf NO-induzierter Genotoxizität zu beruhen. Anhand dieser Arbeit konnte gezeigt werden, dass allein durch chronische NO-Behandlung eine Selektion apoptoseresistenter Zellen stattfinden kann.
Targeting neuronal populations by AAV-mediated gene transfer for studying the endocannabinoid system
Resumo:
The cannabinoid type 1 (CB1) receptor is involved in a plethora of physiological functions and heterogeneously expressed on different neuronal populations. Several conditional loss-of-function studies revealed distinct effects of CB1 receptor signaling on glutamatergic and GABAergic neurons, respectively. To gain a comprehensive picture of CB1 receptor-mediated effects, the present study aimed at developing a gain-of-function approach, which complements conditional loss-of-function studies. Therefore, adeno-associated virus (AAV)-mediated gene delivery and Cre-mediated recombination were combined to recreate an innovative method, which ensures region- and cell type-specific transgene expression in the brain. This method was used to overexpress the CB1 receptor in glutamatergic pyramidal neurons of the mouse hippocampus. Enhanced CB1 receptor activity at glutamatergic terminals caused impairment in hippocampus-dependent memory performance. On the other hand, elevated CB1 receptor levels provoked an increased protection against kainic acid-induced seizures and against excitotoxic neuronal cell death. This finding indicates the protective role of CB1 receptor on hippocampal glutamatergic terminals as a molecular stout guard in controlling excessive neuronal network activity. Hence, CB1 receptor on glutamatergic hippocampal neurons may represent a target for novel agents to restrain excitotoxic events and to treat neurodegenerative diseases. Endocannabinoid synthesizing and degrading enzymes tightly regulate endocannabinoid signaling, and thus, represent a promising therapeutic target. To further elucidate the precise function of the 2-AG degrading enzyme monoacylglycerol lipase (MAGL), MAGL was overexpressed specifically in hippocampal pyramidal neurons. This genetic modification resulted in highly increased MAGL activity accompanied by a 50 % decrease in 2-AG levels without affecting the content of arachidonic acid and anandamide. Elevated MAGL protein levels at glutamatergic terminals eliminated depolarization-induced suppression of excitation (DSE), while depolarization-induced suppression of inhibition (DSI) was unchanged. This result indicates that the on-demand availability of the endocannabinoid 2-AG is crucial for short-term plasticity at glutamatergic synapses in the hippocampus. Mice overexpressing MAGL exhibited elevated corticosterone levels under basal conditions and an increase in anxiety-like behavior, but surprisingly, showed no changes in aversive memory formation and in seizure susceptibility. This finding suggests that 2 AG-mediated hippocampal DSE is essential for adapting to aversive situations, but is not required to form aversive memory and to protect against kainic acid-induced seizures. Thus, specific inhibition of MAGL expressed in hippocampal pyramidal neurons may represent a potential treatment strategy for anxiety and stress disorders. Finally, the method of AAV-mediated cell type-specific transgene expression was advanced to allow drug-inducible and reversible transgene expression. Therefore, elements of the tetracycline-controlled gene expression system were incorporated in our “conditional” AAV vector. This approach showed that transgene expression is switched on after drug application and that background activity in the uninduced state was only detectable in scattered cells of the hippocampus. Thus, this AAV vector will proof useful for future research applications and gene therapy approaches.