916 resultados para Ovary, Apoptosis, Cytoskeleton


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Intermediärfilamente (IFs) sind neben Mikrotubuli und Aktinfilamenten die dritte filamentäre Komponente des Zytoskeletts. Sie wirken als mechanische Stabilisatoren, sind außerdem an Zelldifferenzierung, Proliferation und Apoptose beteiligt und tragen zu Zellpolarität bei. IFs sind dynamische Strukturen, die zelltypspezifisch in unterschiedlichen Anordnungen und Abundanzen vorkommen und von Signalkaskaden beeinflusst werden. Die zugrundeliegenden molekularen Mechanismen dieser fein abgestimmten Prozesse sind weitgehend unbekannt. In dieser Arbeit sollte deswegen ein Tiermodell entwickelt werden, um Regulatoren der IF-(Netzwerk)-Organisation in vivo zu untersuchen und zu identifizieren. Dazu wurde C. elegans ausgewählt, da es sich hierbei um einen genetisch gut charakterisierten und leicht manipulierbaren Organismus handelt, in dessen Genom elf Gene für zytoplasmatische IFs kodieren. Zunächst wurden stabil transgene C. elegans-Linien generiert, die fluoreszierende IFs exprimieren. Es konnte gezeigt werden, dass das darmspezifische IFB-2::CFP im Bereich des apikalen Junktionskomplex verankert ist und nahezu vollständig im subapikalen Terminalgeflecht der Enterozyten lokalisiert, das als Teil der endotube besonders stabil und widerstandsfähig ist. Wenn diese Tiere mit dsRNA gegen das ebenfalls im Terminalgeflecht exprimierte IF ifc-2 behandelt wurden, entwickelten sich blasenförmige Ausstülpungen des Darmlumens, die auf eine Schwächung der rigiden und formgebenden endotube hinwiesen und damit einen direkten in vivo-Beweis für die stressprotektive Funktion des intestinalen IF-Netzwerks lieferten. Die leichte Detektierbarkeit des IFB-2::CFP-Musters wurde in einem optischen Screen ausgenutzt, bei dem nach chemischer Mutagenese nach Veränderungen im IF-Muster gefahndet wurde. Hierbei wurden drei Mutanten isoliert. In Komplementationsanalysen stellte sich heraus, dass es sich in zwei Fällen um Allele desselben Gens handelt. Die Identifizierung der betroffenen Gene gelang durch eine PCR-basierte Kartierung von single nucleotide polymorphisms nach Verpaarung mit dem Hawaii-Stamm (snp-mapping) und anschließender RNAi-Analyse der Einzelgene in den identifizierten Chromosomenabschnitten. Im einen Fall handelte es sich um das sma-5-Gen, einer Serin/Threonin-Kinase mit Homologie zu den MAP-Kinasen MAPK7/ERK5 der Säuger. Hier wurden, ebenso wie beim ifc-2 (RNAi)-Phänotyp, progressive blasenförmige Ausstülpungen des Darmlumens beobachtet. Die beiden anderen Allele tragen Mutationen in einem bisher nicht näher charakterisierten Gen. In diesen Würmern kommt es zu einem vollständigen Auflösung des IFB-2::CFP-Netzwerks mit prominenten Akkumulationen um die apikalen Junktionen. Das Darmlumen ist stellenweise geweitet und das elektronendichte Terminalgeflecht fehlt fast vollständig, die Integrität des Darmepithels ist jedoch nicht kompromittiert. Die anderen IFs des Terminalgeflechts sind ebenfalls fehlverteilt, und die intestinale Expression von Aktin ist stark reduziert. Expressionskonstrukte des Gens zeigten weiterhin, dass es darmspezifisch synthetisiert wird und mit den IFs im Terminalgeflecht kolokalisiert. Das Protein ist, ähnlich wie das IF-assoziierte Filaggrin der Säuger ausgesprochen histidinreich. Es enthält außerdem eine Prolin-reiche Domäne, die Teil einer potentiellen Aktin-Bindedomäne ist. Auf Grund all dieser Eigenschaften wird die Bezeichnung IFO-1 (intermediate filament organizer) für das neue Protein vorgeschlagen, das möglicherweise als struktureller Zytoskelett-Linker wirkt. Die vorgestellten Ergebnisse untermauern die Bedeutung von C. elegans für die Identifizierung von Faktoren, die IF-Netzwerke regulieren, und die Möglichkeit, Defekte im lebenden Gesamtorganismus zu bestimmen.

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Das Zytoskelett eukaryotischer Zellen besteht aus drei verschiedenen Protein-Netzwerken: den Aktinfilamenten, Mikrotubuli und Intermediärfilamenten. Intermediärfilamente wurden ursprünglich als statische Strukturen angesehen, die die mechanische Stabilisierung der Zellen übernehmen. In den letzten Jahren hat sich dieses Bild jedoch geändert: Intermediärfilament-Netzwerke sind hochdynamisch und unterliegen kontinuierlichen Veränderungen, welche durch Phosphorylierungen reguliert werden. Sie interagieren mit anderen Zytoskelett-Proteinen und greifen in die Regulation von Schlüsselsignalwegen, die Zellwachstum und Zellteilung sowie Apoptose und Stressantwort bestimmen, ein. Die Mechanismen der Filamentplastizität konnten bisher jedoch nicht vollständig aufgeklärt werden. So ist beispielsweise unklar, wo Auf- und Abbau der Filamente stattfindet und welche Faktoren an der Netzwerkmodulation beteiligt sind. Ziel meiner Arbeit war es, einen Beitrag zur Aufklärung dieser Mechanismen am Beispiel der epithelialen Keratin-Intermediärfilamente zu leisten. Mit Hilfe von mikroskopischen Zeitrafferaufnahmen von fluoreszenzmarkierten Zellklonen wurden Nukleationszentren in der Zellperipherie identifiziert, in denen Keratinfilamentvorläufer gebildet werden. Es handelt sich dabei um fokale Adhäsionskomplexe, die als Anheftungsstellen zwischen der extrazellulären Matrix und dem intrazellulären Aktinfilament-System dienen. Es konnte gezeigt werden, dass diese Filamentvorläufer-Entstehung für alle untersuchten Keratinisoformen gültig ist und in epitelialen als auch nicht-epithelialen Zelltypen abläuft. Knock-Down der Adhäsionskomponente Talin verhinderte die Keratinfilamentbildung. Modulation der fokalen Adhäsionskinase, die den Auf- und Abbau der Adhäsionskomplexe koordiniert, beeinflusste ebenso die Bildung der Keratinfilamentnetzwerke. Es konnte weiterhin beobachtet werden, dass die N-terminalen Isoformen IE und IF des Zytolinkers Plectin in fokalen Adhäsionen lokalisieren und damit möglicherweise an der Vernetzung von Keratinfilamentvorläufern, Zelladhäsionen und Aktinfilamenten beteiligt sind. Letztlich stellte sich heraus, dass die Bildung der Keratinfilamentvorläufer unabhängig von Proteintranslation ist. In den mikroskopischen Zeitrafferaufnahmen wurde im Anschluss an die Keratinfilamentbildung ein kontinuierlicher zentripetaler Transport der wachsenden Vorläuferpartikel beobachtet. An Hand von pharmakologischen Experimenten konnte gezeigt werden, dass dieser Transport Aktinfilament-abhängig ist. Zeitgleich kommt es zu Partikelfusion und Integration in das periphere Netzwerk, das sich weiterhin in Richtung auf das Zellzentrum bewegt. Mit Hilfe von Photoaktivierungsversuchen und Zellfusionsexperimenten konnte die Hypothese bestätigt werden, dass der Abbau der einwandernden Keratinfilamente in lösliche, rasch diffusible Zwischenstufen den kontinuierlichen peripheren Neuaufbau ermöglicht. Aus den Beobachtungen und bereits bekannten Ergebnissen wurde ein Modell des Keratin-Zyklus entwickelt, das die folgenden Stadien umfasst: Nukleation von Keratinfilamentvorläufern an fokalen Adhäsionen in der Zellperipherie, Elongation und Fusion der Keratinfilamentvorläufer bei zeitgleichem Aktinfilament-abhängigem zentripetalen Transport, Integration der Keratinfilamentvorläufer in das periphere Netzwerk, Bündelung der Filamente, Filamentabbau in lösliche Untereinheiten und Neubeginn des Zyklus in der Zellperipherie. Eine Störung dieses Zyklus liegt bei mutierten Keratinen vor, welche die Ursache von Blasen-bildenden Hauterkrankungen sind. In der vorliegenden Arbeit wurde am Beispiel von Keratin 6a-Mutanten, welche die Hauterkrankung Pachyonychia congenita verursachen, gezeigt, dass bei diesen Keratinen die Nukleation zwar im Bereich der Adhäsionskomplexe regelrecht abläuft, die anschließende Elongation und Netzwerkbildung aber gestört ist, so dass statt dessen kurzlebige, hyperphosphorylierte Granula entstehen. Der resultierende frustrane Keratin-Zyklus in der Zellperipherie ist stark beschleunigt und kann durch p38-Inhibierung gestoppt werden. Bei Proteasomeninhibierung wird der Zyklus in Richtung der Granulabildung verschoben. In dieser Arbeit wird erstmals das Keratin-Tretmühlen-Modell vorgestellt, das den regulierbaren Auf- und Abbau-Zyklus des Keratinnetzwerks beschreibt. Damit liegen testbare Hypothesen für die Aufklärung der Keratinfilament-Plastizität in physiologischen und pathologischen Situationen vor, die nach unseren ersten Ergebnissen auch von Relevanz für andere Intermediärfilamenttypen sind.

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Survivin, a unique member of the family of inhibitors of apoptosis (IAP) proteins, orchestrates intracellular pathways during cell division and apoptosis. Its central regulatory function in vertebrate molecular pathways as mitotic regulator and inhibitor of apoptotic cell death has major implications for tumor cell proliferation and viability, and has inspired several approaches that target survivin for cancer therapy. Analyses in early-branching Metazoa so far propose an exclusive role of survivin as a chromosomal passenger protein, whereas only later during evolution the second, complementary antiapoptotic function might have arisen, concurrent with increased organismal complexity. To lift the veil on the ancestral function(s) of this key regulatory molecule, a survivin homologue of the phylogenetically oldest extant metazoan taxon (phylum Porifera) was identified and functionally characterized. SURVL of the demosponge Suberites domuncula shares significant similarities with its metazoan homologues, ranging from conserved exon/intron structures to the presence of localization signal and protein-interaction domains, characteristic of IAP proteins. Whereas sponge tissue displayed a very low steady-state level, SURVL expression was significantly up-regulated in rapidly proliferating primmorph cells. In addition, challenge of sponge tissue and primmorphs with cadmium and the lipopeptide Pam3Cys-Ser-(Lys)4 stimulated SURVL expression, concurrent with the expression of newly discovered poriferan caspases (CASL and CASL2). Complementary functional analyses in transfected HEK-293 revealed that heterologous expression of poriferan survivin in human cells not only promotes cell proliferation but also augments resistance to cadmium-induced cell death. Taken together, these results demonstrate both a deep evolutionary conserved and fundamental dual role of survivin, and an equally conserved central position of this key regulatory molecule in interconnected pathways of cell cycle and apoptosis. Additionally, SDCASL, SDCASL2, and SDTILRc (TIR-LRR containing protein) may represent new components of the innate defense sentinel in sponges. SDCASL and SDCASL2 are two new caspase-homolog proteins with a singular structure. In addition to their CASc domains, SDCASL and SDCASL2 feature a small prodomain NH2-terminal (effector caspases) and a remarkably long COOH-terminal domain containing one or several functional double stranded RNA binding domains (dsrm). This new caspase prototype can characterize a caspase specialization coupling pathogen sensing and apoptosis, and could represent a very efficient defense mechanism. SDTILRc encompasses also a unique combination of domains: several leucine rich repeats (LRR) and a Toll/IL-1 receptor (TIR) domain. This unusual domain association may correspond to a new family of intracellular sensing protein, forming a subclass of pattern recognition receptors (PRR).

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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.

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Magnesium is an essential element for many biological processes crucial for cell life and proliferation. Growing evidences point out a role for this cation in the apoptotic process and in developing multi drug resistance (MDR) phenotype. The first part of this study aimed to highlight the involvement of the mitochondrial magnesium channel MRS2 in modulating drug-induced apoptosis. We generated an appropriate transgenic cellular system to regulate expression of MRS2 protein. The cells were then exposed to two different apoptotic agents commonly used in chemotherapy. The obtained results showed that cells overexpressing MRS2 channel are less responsiveness to pharmacological insults, looking more resistant to the induced apoptosis. Moreover, in normal condition, MRS2 overexpression induces higher magnesium uptake into isolated mitochondria respect to control cells correlating with an increment of total intracellular magnesium concentration. In the second part of this research we investigated whether magnesium intracellular content and compartmentalization could be used as a signature to discriminate MDR tumour cells from their sensitive counterparts. As MDR model we choose colon carcinoma cell line sensitive and resistant to doxorubicin. We exploited a standard-less approach providing a complete characterization of whole single-cells by combining X-Ray Fluorescence Microscopy , Atomic Force Microscopy and Scanning Transmission X-ray Microscopy. This method allows the quantification of the intracellular spatial distribution and total concentration of magnesium in whole dehydrated cells. The measurements, carried out in 27 single cells, revealed a different magnesium pattern for both concentration and distribution of the element in the two cellular strains. These results were then confirmed by quantifying the total amount of intracellular magnesium in a large populations of cells by using DCHQ5 probe and traditional fluorimetric technique.

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CD99, glicoproteina di membrana codificata dal gene MIC2, è coinvolta in numerosi processi cellulari, inclusi adesione, migrazione, apoptosi, differenziamento e regolazione del trafficking intracellulare di proteine, in condizioni fisiologiche e patologiche. Nell’osteosarcoma risulta scarsamente espressa ed ha ruolo oncosoppressivo. L’isoforma completa (CD99wt) e l’isoforma tronca (CD99sh), deleta di una porzione del dominio intracellulare, influenzano in modo opposto la malignità tumorale. In questo studio, comparando cellule di osteosarcoma caratterizzate da differenti capacità metastatiche e diversa espressione di CD99, abbiamo valutato la modulazione dei contatti cellula-cellula, la riorganizzazione del citoscheletro di actina e la modulazione delle vie di segnalazione a valle del CD99, al fine di identificare i meccanismi molecolari regolati da questa molecola e responsabili del comportamento migratorio e invasivo delle cellule di osteosarcoma. L'espressione forzata di CD99wt induce il reclutamento di N-caderina e β-catenina a livello delle giunzioni aderenti ed inibisce l'espressione di molecole cruciali nel processo di rimodellamento del citoscheletro di actina, come ACTR2, ARPC1A, Rho-associated, coiled–coil-containing protein kinase 2 (ROCK2), nonché di ezrina, membro della famiglia ezrin/radixin/moesin e chiaramente associata con la progressione tumorale e la metastatizzazione dell’OS. Gli studi funzionali identificano ROCK2 come mediatore fondamentale nella regolazione della migrazione e della diffusione metastatica dell’osteosarcoma. Mantenendo cSRC in una conformazione inattiva, CD99wt inibisce la segnalazione mediata da ROCK2 inducendo una diminuzione dell’ezrina a livello della membrana accompagnata dalla traslocazione in membrana di N-caderina e β-catenina, principali ponti molecolari per il citoscheletro di actina. La ri-espressione di CD99wt, generalmente presente negli osteoblasti, ma perso nelle cellule di osteosarcoma, attraverso l'inibizione dell'attività di cSrc e ROCK2, aumenta la forza di contatto e riattiva i segnali anti-migratori ostacolando l’azione pro-migratoria, altrimenti dominante, dell’ezrina nell’osteosarcoma. Abbiamo infine valutato la funzione di ROCK2 nel sarcoma di Ewing: nonostante il ruolo oncogenico esercitato da CD99, ROCK2 guida la migrazione cellulare anche in questa neoplasia.

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Intradetrusor injections of botulinum neurotoxin type A (BoNTA) are emerging as the preferred second-line treatment for neurogenic and idiopathic overactive bladder (OAB). In animal experiments, intradetrusor BoNTA injections have been shown to cause apoptosis in the bladder urothelium and suburothelium but not the detrusor.

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Endothelial progenitor cells (EPC) play a fundamental role in tissue regeneration and vascular repair. Current research suggests that EPC are more resistant to oxidative stress as compared to differentiated endothelial cells. Here we hypothesized that EPC not only possess the ability to protect themselves against oxidative stress but also confer this protection upon differentiated endothelial cells by release of paracrine factors. To test this hypothesis, HUVEC incubated with conditioned medium obtained from early EPC cultures (EPC-CM) were exposed to H2O2 to assess the accumulation of intracellular ROS, extent of apoptosis and endothelial cell functionality. Under oxidative stress conditions HUVEC treated with EPC-CM exhibited substantially lower levels of intracellular oxidative stress (0.2+/-0.02 vs. 0.4+/-0.03 relative fluorescence units, p<0.05) compared to control medium. Moreover, the incubation with EPC-CM elevated the expression level of antioxidant enzymes in HUVEC (catalase: 2.6+/-0.4; copper/zinc superoxide dismutase (Cu/ZnSOD): 1.6+/-0.1; manganese superoxide dismutase (MnSOD): 1.4+/-0.1-fold increase compared to control, all p<0.05). Furthermore, EPC-CM had the distinct potential to reverse the functional impairment of HUVEC as measured by their capability to form tubular structures in vitro. Finally, incubation of HUVEC with EPC-CM resulted in a significant reduction of apoptosis (0.34+/-0.01 vs. 1.52+/-0.12 relative fluorescence units, p<0.01) accompanied by an increased expression ratio of the anti/pro-apoptotic factors Bcl-2/Bax to 2.9+/-0.7-fold (compared to control, p<0.05). Most importantly, neutralization of selected cytokines such as VEGF, HGF, IL-8 and MMP-9 did not significantly reverse the cyto-protective effect of EPC-CM (p>0.05), suggesting that soluble factors secreted by EPC, possibly via broad synergistic actions, exert strong cyto-protective properties on differentiated endothelium through modulation of intracellular antioxidant defensive mechanisms and pro-survival signals.

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Mechanical stress controls a broad range of cellular functions. The cytoskeleton is physically connected to the extracellular matrix via integrin receptors, and to the nuclear lamina by the LINC complex that spans both nuclear membranes. We asked here how disruption of this direct link from the cytoskeleton to nuclear chromatin affects mechanotransduction. Fibroblasts grown on flexible silicone membranes reacted to cyclic stretch by nuclear rotation. This rotation was abolished by inhibition of actomyosin contraction as well as by overexpression of dominant-negative versions of nesprin or sun proteins that form the LINC complex. In an in vitro model of muscle differentiation, cyclic strain inhibits differentiation and induces proliferation of C2C12 myoblasts. Interference with the LINC complex in these cells abrogated their stretch-induced proliferation, while stretch increased p38 MAPK and NFkappaB phosphorylation and the transcript levels of myogenic transcription factors MyoD and myogenin. We found that the physical link from the cytoskeleton to the nuclear lamina is crucial for correct mechanotransduction, and that disruption of the LINC complex perturbs the mechanical control of cell differentiation.

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Pneumococcal meningitis causes neurological sequelae, including learning and memory deficits in up to half of the survivors. In both humans and in animal models of the disease, there is apoptotic cell death in the hippocampus, a brain region involved in learning and memory function. We previously demonstrated that in an infant rat model of pneumococcal meningitis, there is activation of the kynurenine (KYN) pathway in the hippocampus, and that there was a positive correlation between the concentration of 3-hydroxykynurenine and the extent of hippocampal apoptosis. To clarify the role of the KYN pathway in the pathogenesis of hippocampal apoptosis in pneumococcal meningitis, we specifically inhibited 2 key enzymes of the KYN pathway and assessed hippocampal apoptosis, KYN pathway metabolites, and nicotinamide adenine dinucleotide (NAD) concentrations by high-performance liquid chromatography. Pharmacological inhibition of kynurenine 3-hydroxylase and kynureninase led to decreased cellular NAD levels and increased apoptosis in the hippocampus. The cerebrospinal fluid levels of tumor necrosis factor and interleukin-1? and -? were not affected. Our data suggest that activation of the KYN pathway in pneumococcal meningitis is neuroprotective by compensating for an increased NAD demand caused by infection and inflammation;this mechanism may prevent energy failure and apoptosis in the hippocampus.

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Pneumococcal meningitis causes apoptosis of developing neurons in the dentate gyrus of the hippocampus. The death of these cells is accompanied with long-term learning and memory deficits in meningitis survivors. Here, we studied the role of the PI3K/Akt (protein kinase B) survival pathway in hippocampal apoptosis in a well-characterized infant rat model of pneumococcal meningitis. Meningitis was accompanied by a significant decrease of the PI3K product phosphatidylinositol 3,4,5-trisphosphate (PIP(3)) and of phosphorylated (i.e., activated) Akt in the hippocampus. At the cellular level, phosphorylated Akt was decreased in both the granular layer and the subgranular zone of the dentate gyrus, the region where the developing neurons undergo apoptosis. Protein levels and activity of PTEN, the major antagonist of PI3K, were unaltered by infection, suggesting that the observed decrease in PIP(3) and Akt phosphorylation is a result of decreased PI3K signaling. Treatment with the PTEN inhibitor bpV(pic) restored Akt activity and significantly attenuated hippocampal apoptosis. Co-treatment with the specific PI3K inhibitor LY294002 reversed the restoration of Akt activity and attenuation of hippocampal apoptosis, while it had no significant effect on these parameters on its own. These results indicate that the inhibitory effect of bpV(pic) on apoptosis was mediated by PI3K-dependent activation of Akt, strongly suggesting that bpV(pic) acted on PTEN. Treatment with bpV(pic) also partially inhibited the concentration of bacteria and cytokines in the CSF, but this effect was not reversed by LY294002, indicating that the effect of bpV(pic) on apoptosis was independent of its effect on CSF bacterial burden and cytokine levels. These results indicate that the PI3K/Akt pathway plays an important role in the death and survival of developing hippocampal neurons during the acute phase of pneumococcal meningitis.

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The role of N-myc downstream regulated gene-1 (NDRG1) in cancer has recently gained interest, as potential regulator of cell death and tumor suppressor. Although its normal function in the pancreas is largely unknown, loss of NDRG1 expression is associated with a more aggressive tumor phenotype and poor outcome in pancreatic cancer patients.

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Fas/CD95 is a critical mediator of cell death in many chronic and acute liver diseases and induces apoptosis in primary hepatocytes in vitro. In contrast, the proinflammatory cytokine tumor necrosis factor α (TNFα) fails to provoke cell death in isolated hepatocytes but has been implicated in hepatocyte apoptosis during liver diseases associated with chronic inflammation. Here we report that TNFα sensitizes primary murine hepatocytes cultured on collagen to Fas ligand (FasL)-induced apoptosis. This synergism is time-dependent and is specifically mediated by TNFα. Fas itself is essential for the sensitization, but neither Fas up-regulation nor endogenous FasL is responsible for this effect. Although FasL is shown to induce Bid-independent apoptosis in hepatocytes cultured on collagen, the sensitizing effect of TNFα is clearly dependent on Bid. Moreover, both c-Jun N-terminal kinase activation and Bim, another B cell lymphoma 2 homology domain 3 (BH3)-only protein, are crucial mediators of TNFα-induced apoptosis sensitization. Bim and Bid activate the mitochondrial amplification loop and induce cytochrome c release, a hallmark of type II apoptosis. The mechanism of TNFα-induced sensitization is supported by a mathematical model that correctly reproduces the biological findings. Finally, our results are physiologically relevant because TNFα also induces sensitivity to agonistic anti-Fas-induced liver damage. CONCLUSION: Our data suggest that TNFα can cooperate with FasL to induce hepatocyte apoptosis by activating the BH3-only proteins Bim and Bid.

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Neutral ceramidase (NCDase) and sphingosine kinases (SphKs) are key enzymes regulating cellular sphingosine-1-phosphate (S1P) levels. In this study we found that stress factor-induced apoptosis of rat renal mesangial cells was significantly reduced by dexamethasone treatment. Concomitantly, dexamethasone increased cellular S1P levels, suggesting an activation of sphingolipid-metabolizing enzymes. The cell-protective effect of glucocorticoids was reversed by a SphK inhibitor, was completely absent in SphK1-deficient cells, and was associated with upregulated mRNA and protein expression of NCDase and SphK1. Additionally, in vivo experiments in mice showed that dexamethasone also upregulated SphK1 mRNA and activity, and NCDase protein expression in the kidney. Fragments (2285, 1724, and 1126 bp) of the rat NCDase promoter linked to a luciferase reporter were transfected into rat kidney fibroblasts and mesangial cells. There was enhanced NCDase promoter activity upon glucocorticoids treatment that was abolished by the glucocorticoid receptor antagonist RU-486. Single and double mutations of the two putative glucocorticoid response element sites within the promoter reduced the dexamethasone effect, suggesting that both glucocorticoid response elements are functionally active and required for induction. Our study shows that glucocorticoids exert a protective effect on stress-induced mesangial cell apoptosis in vitro and in vivo by upregulating NCDase and SphK1 expression and activity, resulting in enhanced levels of the protective lipid second messenger S1P.