TY - JOUR A1 - Förtsch, Christina A1 - Hupp, Sabrina A1 - Ma, Jiangtao A1 - Mitchell, Timothy J. A1 - Maier, Elke A1 - Benz, Roland A1 - Iliev, Asparouh I. T1 - Changes in Astrocyte Shape Induced by Sublytic Concentrations of the Cholesterol-Dependent Cytolysin Pneumolysin Still Require Pore-Forming Capacity N2 - Streptococcus pneumoniae is a common pathogen that causes various infections, such as sepsis and meningitis. A major pathogenic factor of S. pneumoniae is the cholesterol-dependent cytolysin, pneumolysin. It produces cell lysis at high concentrations and apoptosis at lower concentrations. We have shown that sublytic amounts of pneumolysin induce small GTPase-dependent actin cytoskeleton reorganization and microtubule stabilization in human neuroblastoma cells that are manifested by cell retraction and changes in cell shape. In this study, we utilized a live imaging approach to analyze the role of pneumolysin’s pore-forming capacity in the actin-dependent cell shape changes in primary astrocytes. After the initial challenge with the wild-type toxin, a permeabilized cell population was rapidly established within 20–40 minutes. After the initial rapid permeabilization, the size of the permeabilized population remained unchanged and reached a plateau. Thus, we analyzed the non-permeabilized (non-lytic) population, which demonstrated retraction and shape changes that were inhibited by actin depolymerization. Despite the non-lytic nature of pneumolysin treatment, the toxin’s lytic capacity remained critical for the initiation of cell shape changes. The non-lytic pneumolysin mutants W433F-pneumolysin and delta6-pneumolysin, which bind the cell membrane with affinities similar to that of the wild-type toxin, were not able to induce shape changes. The initiation of cell shape changes and cell retraction by the wild-type toxin were independent of calcium and sodium influx and membrane depolarization, which are known to occur following cellular challenge and suggested to result from the ion channel-like properties of the pneumolysin pores. Excluding the major pore-related phenomena as the initiation mechanism of cell shape changes, the existence of a more complex relationship between the pore-forming capacity of pneumolysin and the actin cytoskeleton reorganization is suggested. KW - Toxikologie KW - pneumolysin KW - pore formation KW - cytoskeleton Y1 - 2011 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-69084 ER - TY - THES A1 - Förtsch, Christina T1 - Pneumolysin: the state of pore-formation in context to cell trafficking and inflammatory responses of astrocytes T1 - Pneumolysin: Einfluss der Porenbildung auf zelluläre Transportprozesse und inflammatorische Antworten in Astrozyten N2 - Pneumolysin, a protein toxin, represents one of the major virulence factors of Streptococcus pneumoniae. This pathogen causes bacterial meningitis with especially high disease rates in young children, elderly people and immunosuppressed patients. The protein toxin belongs to the family of cholesterol-dependent cytolysins, which require membrane cholesterol in order to bind and to be activated. Upon activation, monomers assemble in a circle and undergo conformational change. This conformational change leads to the formation of a pore, which eventually leads to cell lysis. This knowledge was obtained by studies that used a higher concentration compared to the concentration of pneumolysin found in the cerebrospinal fluid of meningitis patients. Thus, a much lower concentration of pneumolysin was used in this work in order to investigate effects of this toxin on primary mouse astrocytes. Previously, a small GTPase activation, possibly leading to cytoskeletal changes, was found in a human neuroblastoma cell line. This led to the hypothesis that pneumolysin can lead to similar cytoskeletal changes in primary cells. The aim of this work was to investigate and characterise the effects of pneumolysin on primary mouse astrocytes in terms of a possible pore formation, cellular trafficking and immunological responses. Firstly, the importance of pore-formation on cytoskeletal changes was to be investigated. In order to tackle this question, wild-type pneumolysin and two mutant variants were used. One variant was generated by exchanging one amino acid in the cholesterol recognising region, the second variant was generated by deleting two amino acids in a protein domain that is essential for oligomerisation. These variants should be incapable of forming a pore and were compared to the wild-type in terms of lytic capacities, membrane binding, membrane depolarisation, pore-formation in artificial membranes (planar lipid bilayer) and effects on the cytoskeleton. These investigations resulted in the finding that the pore-formation is required for inducing cell lysis, membrane depolarisation and cytoskeletal changes in astrocytes. The variants were not able to form a pore in planar lipid bilayer and did not cause cell lysis and membrane depolarisation. However, they bound to the cell membrane to the same extent as the wild-type toxin. Thus, the pore-formation, but not the membrane binding was the cause for these changes. Secondly, the effect of pneumolysin on cellular trafficking was investigated. Here, the variants showed no effect, but the wild-type led to an increase in overall endocytotic events and was itself internalised into the cell. In order to characterise a possible mechanism for internalisation, a GFP-tagged version of pneumolysin was used. Several fluorescence-labelled markers for different endocytotic pathways were used in a co-staining approach with pneumolysin. Furthermore, inhibitors for two key-players in classical endocytotic pathways, dynamin and myosin II, were used in order to investigate classical endocytotic pathways and their possible involvement in toxin internalisation. The second finding of this work is that pneumolysin is taken up into the cell via dynamin- and caveolin-independent pinocytosis, which could transfer the toxin to caveosomes. From there, the fate of the toxin remains unknown. Additionally, pneumolysin leads to an overall increase in endocytotic events. This observation led to the third aim of this work. If the toxin increases the overall rate of endocytosis, the question arises whether toxin internalisation favours bacterial tissue penetration of the host or whether it serves as a defence mechanism of the cell in order to degrade the protein. Thus, several proinflammatory cytokines were investigated, as previous studies describe an effect of pneumolysin on cytokine production. Surprisingly, only interleukin 6-production was increased after toxin-treatment and no effect of endocytotic inhibitors on the interleukin 6-production was observed. The conclusion from this finding is that pneumolysin leads to an increase of interleukin 6, which would not depend on the endocytotic uptake of pneumolysin. The production of interleukin 6 would enhance the production of acute phase proteins, T-cell activation, growth and differentiation. On the one hand, this activation could serve pathogen clearance from infected tissue. On the other hand, the production of interleukin 6 could promote a further penetration of pathogen into host tissue. This question should be further investigated. N2 - Das Protein-Toxin Pneumolysin ist einer der entscheidenden Virulenzfaktoren von Streptococcus pneumoniae. Dieses Protein-Toxin gehört zur Familie der cholesterinabhängigen Zytolysine, die Membrancholesterol für ihre Aktivierung und Bindung benötigen. Nach der Membranbindung ordnen sich die Toxinmonomere kreisförmig an und ändern ihre Konformation, wodurch eine Pore entsteht, die dann zu einer Lyse der Zelle führt. Vor kurzem wurde nach Pneumolysinbehandlung in einer humanen Neuroblastomzelllinie eine Aktivierung kleiner GTPasen gefunden, die für zytoskelettale Veränderungen entscheidend sind (z.B. Zellbewegungen). Deshalb wurde die Hypothese aufgestellt, dass Pneumolysin diese zytoskelettalen Veränderungen auch in primären neuronalen Zellen auslösen könnte. Das Ziel dieser Arbeit war, die Effekte von Pneumolysin auf primäre Mausastrozyten im Hinblick auf Porenbildung, zelluläre Transportprozesse und immunologische Antworten zu untersuchen. Im ersten Teil wird die Bedeutung der Porenbildung auf zytoskelettale Veränderungen untersucht. Hierbei wurden lytische Fähigkeiten, Membranbindung, Membrandepolarisation, Porenbildung im künstlichen Bilayer und Effekte auf das Zytoskelett untersucht. Sowohl der Wildtyp als auch die Varianten zeigten die gleiche Stärke an Membranbindung. Diese Untersuchungen weisen darauf hin, dass die Porenbildung für die Zell-Lyse, Membrandepolarisation und zytoskelettale Veränderungen in Mausastrozyten wichtig ist und führt zu der Schlussfolgerung, dass nicht die Membranbindung, sondern die Porenbildung entscheidend für die beobachteten zytoskelettalen Veränderungen ist. Im zweiten Teil dieser Arbeit wurde der Effekt des Pneumolysin auf zelluläre Transportprozesse untersucht. Erneut zeigten die Pneumolysinvarianten keine Wirkung, während der Wildtyp die Gesamtrate der Endozytose erhöhte. Weiterhin wurde nur der Wildtyp internalisiert. Um einen möglichen Mechanismus für die Internalisierung des Toxins vorschlagen zu können, wurde Pneumolysin als GFP-markiertes Toxin genutzt. Weiterhin wurden einige Marker für unterschiedliche endozytotische Transportprozesse genutzt um eine Ko-lokalisation mit Pneumolysin-GFP zu ermöglichen. Des Weiteren wurden Inhibitoren für zwei Schlüsselproteine endozytotischer Vorgänge, Dynamin und Myosin II, genutzt. Die Ergebnisse dieser Untersuchungen zeigten, dass Pneumolysin wahrscheinlich durch dynamin- und caveolin-unabhängige Pinozytose in die Zelle aufgenommen wird. Dieser Mechanismus führt zu der Bildung von Caveosomen, deren weiterer Transport, und somit das Schicksal des internalisierten Toxins, bis heute noch nicht aufgeklärt ist. Die Beobachtung, dass Pneumolysin die Gesamtrate an Endozytose erhöht, führte zum dritten Teil dieser Arbeit. Wenn das Toxin die Gesamtrate an Endozytose erhöht, stellt sich die Frage, ob dieser Vorgang der Zerstörung des Toxins – also einer Abwehr der Zelle – dient, oder ob diese Internalisierung eine Strategie des Pathogens ist, um tiefer in das Wirtsgewebe einzudringen. Aktuelle Studien belegen, dass Pneumolysin einen Einfluss auf inflammatorische Antworten des Immunsystems hat. Aus diesem Grund wurden unterschiedliche proinflammatorische Zytokine untersucht. Überraschenderweise zeigte sich nur eine Erhöhung des Interleukin 6 nach der Toxinbehandlung. Weiterhin hatten die Endozytoseinhibitoren keinen Effekt auf die Produktion dieses proinflammatorischen Zytokins. Pneumolysin führt also zu einem Anstieg der Interleukin 6 Produktion, diese Produktion ist jedoch unabhängig von der Internalisierung dieses Toxins. Die Produktion dieses Interleukins würde zur Produktion der Akute-Phase Proteine, der Aktivierung der T-Zell Antwort, zu Wachstum und Zelldifferenzierung führen. Einerseits könnte diese Aktivierung die Infektion durch das Pathogen bekämpfen. Andererseits könnte S. pneumoniae die erhöhte Produktion durch PLY an Interleukin 6 nutzen um weiter in das Wirtsgewebe vordringen zu können. Diese Frage sollte noch durch weitere Experimente untersucht werden. KW - Streptococcus pneumoniae KW - Toxin KW - Hirnhautentzündung KW - Entzündung KW - Astrozyt KW - Pore KW - Pneumolysin KW - Meningitis KW - Inflammation KW - Zelltransport KW - Porenbildung KW - Pneumolysin KW - Meningitis KW - Inflammation KW - cellular-trafficking KW - Pore-formation Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-70892 ER - TY - JOUR A1 - Hupp, Sabrina A1 - Förtsch, Christina A1 - Wippel, Carolin A1 - Ma, Jiangtao A1 - Mitchell, Timothy J. A1 - Iliev, Asparouh I. T1 - Direct Transmembrane Interaction between Actin and the Pore-Competent, Cholesterol-Dependent Cytolysin Pneumolysin JF - Journal of Molecular Biology N2 - The eukaryotic actin cytoskeleton is an evolutionarily well-established pathogen target, as a large number of bacterial factors disturb its dynamics to alter the function of the host cells. These pathogenic factors modulate or mimic actin effector proteins or they modify actin directly, leading to an imbalance of the precisely regulated actin turnover. Here, we show that the pore-forming, cholesterol-dependent cytolysin pneumolysin (PLY), a major neurotoxin of Streptococcus pneumoniae, has the capacity to bind actin directly and to enhance actin polymerisation in vitro. In cells, the toxin co-localised with F-actin shortly after exposure, and this direct interaction was verified by Förster resonance energy transfer. PLY was capable of exerting its effect on actin through the lipid bilayer of giant unilamellar vesicles, but only when its pore competence was preserved. The dissociation constant of G-actin binding to PLY in a biochemical environment was 170–190 nM, which is indicative of a high-affinity interaction, comparable to the affinity of other intracellular actin-binding factors. Our results demonstrate the first example of a direct interaction of a pore-forming toxin with cytoskeletal components, suggesting that the cross talk between pore-forming cytolysins and cells is more complex than previously thought. KW - pore-forming toxin KW - cholesterol-dependent cytolysin KW - actin KW - membrane KW - pneumolysin Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-132297 VL - 425 IS - 3 ER - TY - JOUR A1 - Wippel, Carolin A1 - Maurer, Jana A1 - Fortsch, Christina A1 - Hupp, Sabrina A1 - Bohl, Alexandra A1 - Ma, Jiangtao A1 - Mitchell, Timothy J. A1 - Bunkowski, Stephanie A1 - Brück, Wolfgang A1 - Nau, Roland A1 - Iliev, Asparouh I. T1 - Bacterial Cytolysin during Meningitis Disrupts the Regulation of Glutamate in the Brain, Leading to Synaptic Damage JF - PLoS Pathogens N2 - Abstract Streptococcus pneumoniae (pneumococcal) meningitis is a common bacterial infection of the brain. The cholesterol-dependent cytolysin pneumolysin represents a key factor, determining the neuropathogenic potential of the pneumococci. Here, we demonstrate selective synaptic loss within the superficial layers of the frontal neocortex of post-mortem brain samples from individuals with pneumococcal meningitis. A similar effect was observed in mice with pneumococcal meningitis only when the bacteria expressed the pore-forming cholesterol-dependent cytolysin pneumolysin. Exposure of acute mouse brain slices to only pore-competent pneumolysin at disease-relevant, non-lytic concentrations caused permanent dendritic swelling, dendritic spine elimination and synaptic loss. The NMDA glutamate receptor antagonists MK801 and D-AP5 reduced this pathology. Pneumolysin increased glutamate levels within the mouse brain slices. In mouse astrocytes, pneumolysin initiated the release of glutamate in a calcium-dependent manner. We propose that pneumolysin plays a significant synapto- and dendritotoxic role in pneumococcal meningitis by initiating glutamate release from astrocytes, leading to subsequent glutamate-dependent synaptic damage. We outline for the first time the occurrence of synaptic pathology in pneumococcal meningitis and demonstrate that a bacterial cytolysin can dysregulate the control of glutamate in the brain, inducing excitotoxic damage. Author Summary Bacterial meningitis is one of the most devastating brain diseases. Among the bacteria that cause meningitis, Streptococcus pneumoniae is the most common. Meningitis predominantly affects children, especially in the Third World, and most of them do not survive. Those that do survive often suffer permanent brain damage and hearing problems. The exact morphological substrates of brain damage in Streptococcus pneumoniae meningitis remain largely unknown. In our experiments, we found that the brain cortex of patients with meningitis demonstrated a loss of synapses (the contact points among neurons, responsible for the processes of learning and memory), and we identified the major pneumococcal neurotoxin pneumolysin as a sufficient cause of this loss. The effect was not direct but was mediated by the brain neurotransmitter glutamate, which was released upon toxin binding by one of the non-neuronal cell types of the brain – the astrocytes. Pneumolysin initiated calcium influx in astrocytes and subsequent glutamate release. Glutamate damaged the synapses via NMDA-receptors – a mechanism similar to the damage occurring in brain ischemia. Thus, we show that synaptic loss is present in pneumococcal meningitis, and we identify the toxic bacterial protein pneumolysin as the major factor in this process. These findings alter our understanding of bacterial meningitis and establish new therapeutic strategies for this fatal disease. KW - synapses KW - brain damage KW - astrocytes KW - neuronal dendrites KW - meningitis KW - glutamate KW - bacterial meningitis KW - neocortex Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-130462 VL - 9 IS - 6 ER -