TY - JOUR A1 - Henriksson, Sofia A1 - Calderón-Montaño, José Manuel A1 - Solvie, Daniel A1 - Warpman Berglund, Ulrika A1 - Helleday, Thomas T1 - Overexpressed c-Myc sensitizes cells to TH1579, a mitotic arrest and oxidative DNA damage inducer JF - Biomolecules N2 - Previously, we reported that MTH1 inhibitors TH588 and TH1579 selectively induce oxidative damage and kill Ras-expressing or -transforming cancer cells, as compared to non-transforming immortalized or primary cells. While this explains the impressive anti-cancer properties of the compounds, the molecular mechanism remains elusive. Several oncogenes induce replication stress, resulting in under replicated DNA and replication continuing into mitosis, where TH588 and TH1579 treatment causes toxicity and incorporation of oxidative damage. Hence, we hypothesized that oncogene-induced replication stress explains the cancer selectivity. To test this, we overexpressed c-Myc in human epithelial kidney cells (HA1EB), resulting in increased proliferation, polyploidy and replication stress. TH588 and TH1579 selectively kill c-Myc overexpressing clones, enforcing the cancer cell selective killing of these compounds. Moreover, the toxicity of TH588 and TH1579 in c-Myc overexpressing cells is rescued by transcription, proteasome or CDK1 inhibitors, but not by nucleoside supplementation. We conclude that the molecular toxicological mechanisms of how TH588 and TH1579 kill c-Myc overexpressing cells have several components and involve MTH1-independent proteasomal degradation of c-Myc itself, c-Myc-driven transcription and CDK activation. KW - MTH1 KW - TH588 KW - TH1579 KW - c-Myc KW - replication stress KW - DNA damage KW - cell death KW - cancer Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-297547 SN - 2218-273X VL - 12 IS - 12 ER - TY - JOUR A1 - Stelzner, Kathrin A1 - Winkler, Ann-Cathrin A1 - Liang, Chunguang A1 - Boyny, Aziza A1 - Ade, Carsten P. A1 - Dandekar, Thomas A1 - Fraunholz, Martin J. A1 - Rudel, Thomas T1 - Intracellular Staphylococcus aureus Perturbs the Host Cell Ca\(^{2+}\) Homeostasis To Promote Cell Death JF - mBio N2 - The opportunistic human pathogen Staphylococcus aureus causes serious infectious diseases that range from superficial skin and soft tissue infections to necrotizing pneumonia and sepsis. While classically regarded as an extracellular pathogen, S. aureus is able to invade and survive within human cells. Host cell exit is associated with cell death, tissue destruction, and the spread of infection. The exact molecular mechanism employed by S. aureus to escape the host cell is still unclear. In this study, we performed a genome-wide small hairpin RNA (shRNA) screen and identified the calcium signaling pathway as being involved in intracellular infection. S. aureus induced a massive cytosolic Ca\(^{2+}\) increase in epithelial host cells after invasion and intracellular replication of the pathogen. This was paralleled by a decrease in endoplasmic reticulum Ca\(^{2+}\) concentration. Additionally, calcium ions from the extracellular space contributed to the cytosolic Ca2+ increase. As a consequence, we observed that the cytoplasmic Ca\(^{2+}\) rise led to an increase in mitochondrial Ca\(^{2+}\) concentration, the activation of calpains and caspases, and eventually to cell lysis of S. aureus-infected cells. Our study therefore suggests that intracellular S. aureus disturbs the host cell Ca\(^{2+}\) homeostasis and induces cytoplasmic Ca\(^{2+}\) overload, which results in both apoptotic and necrotic cell death in parallel or succession. IMPORTANCE Despite being regarded as an extracellular bacterium, the pathogen Staphylococcus aureus can invade and survive within human cells. The intracellular niche is considered a hideout from the host immune system and antibiotic treatment and allows bacterial proliferation. Subsequently, the intracellular bacterium induces host cell death, which may facilitate the spread of infection and tissue destruction. So far, host cell factors exploited by intracellular S. aureus to promote cell death are only poorly characterized. We performed a genome-wide screen and found the calcium signaling pathway to play a role in S. aureus invasion and cytotoxicity. The intracellular bacterium induces a cytoplasmic and mitochondrial Ca\(^{2+}\) overload, which results in host cell death. Thus, this study first showed how an intracellular bacterium perturbs the host cell Ca\(^{2+}\) homeostasis." KW - Staphylococcus aureus KW - calcium signaling pathway KW - cell death KW - facultatively intracellular pathogens Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-231448 VL - 11 ER - TY - JOUR A1 - Koch, Rebecca-Diana A1 - Hörner, Eva-Maria A1 - Münch, Nadine A1 - Maier, Elke A1 - Kozjak-Pavlovic, Vera T1 - Modulation of Host Cell Death and Lysis Are Required for the Release of Simkania negevensis JF - Frontiers in Cellular and Infection Microbiology N2 - Simkania negevensis is a Chlamydia-like bacterium and emerging pathogen of the respiratory tract. It is an obligate intracellular bacterium with a biphasic developmental cycle, which replicates in a wide range of host cells. The life cycle of S. negevensis has been shown to proceed for more than 12 days, but little is known about the mechanisms that mediate the cellular release of these bacteria. This study focuses on the investigation of host cell exit by S. negevensis and its connection to host cell death modulation. We show that Simkania-infected epithelial HeLa as well as macrophage-like THP-1 cells reduce in number during the course of infection. At the same time, the infectivity of the cell culture supernatant increases, starting at the day 3 for HeLa and day 4 for THP-1 cells and reaching maximum at day 5 post infection. This correlates with the ability of S. negevensis to block TNFα-, but not staurosporin-induced cell death up to 3 days post infection, after which cell death is boosted by the presence of bacteria. Mitochondrial permeabilization through Bax and Bak is not essential for host cell lysis and release of S. negevensis. The inhibition of caspases by Z-VAD-FMK, caspase 1 by Ac-YVAD-CMK, and proteases significantly reduces the number of released infectious particles. In addition, the inhibition of myosin II by blebbistatin also strongly affects Simkania release, pointing to a possible double mechanism of exit through host cell lysis and potentially extrusion. KW - exit KW - release KW - cell death KW - caspases Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-215158 SN - 2235-2988 VL - 10 ER - TY - JOUR A1 - Blättner, Sebastian A1 - Das, Sudip A1 - Paprotka, Kerstin A1 - Eilers, Ursula A1 - Krischke, Markus A1 - Kretschmer, Dorothee A1 - Remmele, Christian W. A1 - Dittrich, Marcus A1 - Müller, Tobias A1 - Schuelein-Voelk, Christina A1 - Hertlein, Tobias A1 - Mueller, Martin J. A1 - Huettel, Bruno A1 - Reinhardt, Richard A1 - Ohlsen, Knut A1 - Rudel, Thomas A1 - Fraunholz, Martin J. T1 - Staphylococcus aureus Exploits a Non-ribosomal Cyclic Dipeptide to Modulate Survival within Epithelial Cells and Phagocytes JF - PLoS Pathogens N2 - Community-acquired (CA) Staphylococcus aureus cause various diseases even in healthy individuals. Enhanced virulence of CA-strains is partly attributed to increased production of toxins such as phenol-soluble modulins (PSM). The pathogen is internalized efficiently by mammalian host cells and intracellular S. aureus has recently been shown to contribute to disease. Upon internalization, cytotoxic S. aureus strains can disrupt phagosomal membranes and kill host cells in a PSM-dependent manner. However, PSM are not sufficient for these processes. Here we screened for factors required for intracellular S. aureus virulence. We infected escape reporter host cells with strains from an established transposon mutant library and detected phagosomal escape rates using automated microscopy. We thereby, among other factors, identified a non-ribosomal peptide synthetase (NRPS) to be required for efficient phagosomal escape and intracellular survival of S. aureus as well as induction of host cell death. By genetic complementation as well as supplementation with the synthetic NRPS product, the cyclic dipeptide phevalin, wild-type phenotypes were restored. We further demonstrate that the NRPS is contributing to virulence in a mouse pneumonia model. Together, our data illustrate a hitherto unrecognized function of the S. aureus NRPS and its dipeptide product during S. aureus infection. KW - cell death KW - cytotoxicity KW - Staphylococcus aureus KW - host cells KW - neutrophils KW - macrophages KW - transposable elements KW - epithelial cells Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-180380 VL - 12 IS - 9 ER - TY - THES A1 - Stelzner, Kathrin T1 - Identification of factors involved in Staphylococcus aureus- induced host cell death T1 - Identifizierung von Faktoren, die am Staphylococcus aureus-induzierten Wirtszelltod beteiligt sind N2 - Staphylococcus aureus is a Gram-positive commensal bacterium, that asymptomatically colonizes human skin and mucosal surfaces. Upon opportune conditions, such as immunodeficiency or breached barriers of the host, it can cause a plethora of infections ranging from local, superficial infections to life-threatening diseases. Despite being regarded as an extracellular pathogen, S. aureus can invade and survive within non-phagocytic and phagocytic cells. Eventually, the pathogen escapes from the host cell resulting in killing of the host cell, which is associated with tissue destruction and spread of infection. However, the exact molecular mechanisms underlying S. aureus-induced host cell death remain to be elucidated. In the present work, a genome-wide haploid genetic screen was performed to identify host cell genes crucial for S. aureus intracellular cytotoxicity. A mutant library of the haploid cell line HAP1 was infected with the pathogen and cells surviving the infection were selected. Twelve genes were identified, which were significantly enriched when compared to an infection with a non-cytotoxic S. aureus strain. Additionally, characteristics of regulated cell death pathways and the role of Ca2+ signaling in S. aureus-infected cells were investigated. Live cell imaging of Ca2+ reporter cell lines was used to analyze single cells. S. aureus-induced host cell death exhibited morphological features of apoptosis and activation of caspases was detected. Cellular H2O2 levels were elevated during S. aureus intracellular infection. Further, intracellular S. aureus provoked cytosolic Ca2+ overload in epithelial cells. This resulted from Ca2+ release from endoplasmic reticulum and Ca2+ influx via the plasma membrane and led to mitochondrial Ca2+ overload. The final step of S. aureus-induced cell death was plasma membrane permeabilization, a typical feature of necrotic cell death. In order to identify bacterial virulence factors implicated in S. aureus-induced host cell killing, the cytotoxicity of selected mutants was investigated. Intracellular S. aureus employs the bacterial cysteine protease staphopain A to activate an apoptosis-like cell death characterized by cell contraction and membrane bleb formation. Phagosomal escape represents a prerequisite staphopain A-induced cell death, whereas bacterial intracellular replication is dispensable. Moreover, staphopain A contributed to efficient colonization of the lung in a murine pneumonia model. In conclusion, this work identified at least two independent cell death pathways activated by intracellular S. aureus. While initially staphopain A mediates S. aureus-induced host cell killing, cytosolic Ca2+-overload follows later and leads to the final demise of the host cell. N2 - Staphylococcus aureus ist ein Gram-positives, kommensales Bakterium, welches menschliche Haut- und Schleimhautoberflächen asymptomatisch kolonisiert. Unter günstigen Bedingungen, wie z. B. Immunschwäche oder verletzten Barrieren des Wirtes, kann es eine Vielzahl von Infektionen verursachen, die von lokalen, oberflächlichen Infektionen bis hin zu lebensbedrohlichen Krankheiten reichen. Obwohl S. aureus als extrazellulärer Erreger angesehen wird, kann das Bakterium von nicht-phagozytischen und phagozytischen Zellen aufgenommen werden und dort überleben. Schließlich bricht das Pathogen aus der Wirtszelle aus und die damit einhergehende Tötung der Wirtszelle wird mit Gewebezerstörung und Ausbreitung der Infektion in Verbindung gebracht. Die genauen molekularen Mechanismen, die dem S. aureus induzierten Wirtszelltod zugrunde liegen, müssen jedoch noch geklärt werden. In dieser Arbeit wurde ein genomweiter haploid genetischer Screen durchgeführt, um Wirtszellgene zu identifizieren, die für die intrazelluläre Zytotoxizität von S. aureus entscheidend sind. Eine Mutantenbibliothek der haploiden Zelllinie HAP1 wurde mit dem Erreger infiziert und die Zellen, die die Infektion überlebten, wurden selektiert. Dabei wurden zwölf Gene identifiziert, die signifikant angereichert waren gegenüber einer Infektion mit einem nicht-zytotoxischen S. aureus Stamm. Des Weiteren wurden Eigenschaften regulierter Zelltod-Signalwege und die Rolle der Ca2+-Signalübertragung in S. aureus infizierten Zellen untersucht. Lebendzellbildgebung von Ca2+-Reporterzelllinien wurde zur Analyse von einzelnen Zellen eingesetzt. Der S. aureus induzierte Wirtszelltod wies morphologische Merkmale von Apoptose auf und die Aktivierung von Caspasen wurde nachgewiesen. Der zelluläre H2O2-Spiegel wurde durch die intrazelluläre Infektion mit S. aureus erhöht. Zusätzlich rief der intrazelluläre S. aureus eine zytosolische Ca2+-Überbelastung in Epithelzellen hervor. Dies resultierte aus der Ca2+-Freisetzung vom endoplasmatischen Retikulum und dem Einstrom von Ca2+ über die Plasmamembran und führte zu einer mitochondrialen Ca2+-Überbelastung. Der finale Schritt des durch S. aureus induzierten Zelltods war die Permeabilisierung der Plasmamembran, ein typisches Merkmal des nekrotischen Zelltods. Um bakterielle Virulenzfaktoren zu identifizieren, die am S. aureus-induzierten Wirtszelltod beteiligt sind, wurde die Zytotoxizität von ausgewählten Mutanten untersucht. Der intrazelluläre S. aureus nutzt die bakterielle Cysteinprotease Staphopain A, um einen Apoptose-artigen Zelltod zu aktivieren, der durch Zellkontraktion und Blasenbildung der Membran gekennzeichnet ist. Der phagosomale Ausbruch stellt eine Voraussetzung für den Staphopain A-induzierten Zelltod da, während die intrazelluläre Replikation der Bakterien nicht notwendig ist. Darüber hinaus trug Staphopain A zu einer effizienten Kolonisation der Lunge in einem murinen Pneumonie-Modell bei. Zusammenfassend lässt sich sagen, dass diese Arbeit mindestens zwei unabhängige Zelltod-Signalwege identifiziert hat, die durch den intrazellulären S. aureus aktiviert werden. Während zunächst Staphopain A den Tod der Wirtszelle einleitet, folgt später die zytosolische Ca2+-Überlastung und führt zum endgültigen Untergang der Wirtszelle. KW - Staphylococcus aureus KW - Zelltod KW - Wirtszelle KW - cell death KW - host cell Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-188991 N1 - Zusatzmaterial (Videos) befinden sich auch auf einer CD in der gedruckten Ausgabe ER - TY - THES A1 - Hondke, Sylvia T1 - Elucidation of WISP3 function in human mesenchymal stem cells and chondrocytes T1 - Aufklärung der WISP3 Funktion in humanen mesenchymalen Stammzellen und Chondrozyten N2 - WISP3 is a member of the CCN family which comprises six members found in the 1990’s: Cysteine-rich,angiogenic inducer 61 (CYR61, CCN1), Connective tissue growth factor (CTGF, CCN2), Nephroblastoma overexpressed (NOV, CNN3) and the Wnt1 inducible signalling pathway protein 1-3 (WISP1-3, CCN4-6).They are involved in the adhesion, migration, mitogenesis, chemotaxis, proliferation, cell survival, angiogenesis, tumorigenesis, and wound healing by the interaction with different integrins and heparan sulfate proteoglycans. Until now the only member correlated to the musculoskeletal autosomal disease Progressive Pseudorheumatoid Dysplasia (PPD) is WISP3. PPD is characterised by normal embryonic development followed by cartilage degradation over time starting around the age of three to eight years. Animal studies in mice exhibited no differences between knock out or overexpression compared to wild type litter mates, thus were not able to reproduce the symptoms observed in PPD patients. Studies in vitro and in vivo revealed a role for WISP3 in antagonising BMP, IGF and Wnt signalling pathways. Since most of the knowledge of WISP3 was gained in epithelial cells, cancer cells or chondrocyte cell lines, we investigated the roll of WISP3 in primary human mesenchymal stem cells (hMSCs) as well as primary chondrocytes. WISP3 knock down was efficiently established with three short hairpin RNAs in both cell types, displaying a change of morphology followed by a reduction in cell number. Simultaneous treatment with recombinant WISP3 was not enough to rescue the observed phenotype nor increase the endogenous expression of WISP3. We concluded that WISP3 acts as an essential survival factor, where the loss resulted in the passing of cell cycle control points followed by apoptosis. Nevertheless, Annexin V-Cy3 staining and detection of active caspases by Western blot and immunofluorescence staining detected no clear evidence for apoptosis. Furthermore, the gene expression of the death receptors TRAILR1 and TRAILR2,important for the extrinsic activation of apoptosis, remained unchanged during WISP3 mRNA reduction. Autophagy as cause of cell death was also excluded, given that the autophagy marker LC3 A/B demonstrated to be uncleaved in WISP3-deficient hMSCs. To reveal correlated signalling pathways to WISP3 a whole genome expression analyses of WISP3-deficient hMSCs compared to a control (scramble) was performed. Microarray analyses exhibited differentially regulated genes involved in cell cycle control, adhesion, cytoskeleton and cell death. Cell death observed by WISP3 knock down in hMSCs and chondrocytes might be explained by the induction of necroptosis through the BMP/TAK1/RIPK1 signalling axis. Loss of WISP3 allows BMP to bind its receptor activating the Smad 2/3/4 complex which in turn can activate TAK1 as previously demonstrated in epithelial cells. TAK1 is able to block caspase-dependent apoptosis thereby triggering the assembly of the necrosome resulting in cell death by necroptosis. Together with its role in cell cycle control and extracellular matrix adhesion, as demonstrated in human mammary epithelial cells, the data supports the role of WISP3 as tumor suppressor and survival factor in cells of the musculoskeletal system as well as epithelial cells. N2 - WISP3 ist ein Mitglied der CCN-Familie, die aus sechs Familienmitgliedern besteht und in den 1990er Jahren endeckt wurde: Cysteine-rich, angiogenic inducer 61 (CYR61, CCN1), Connective tissue growth factor (CTGF, CCN2), Nephroblastoma overexpressed (NOV, CNN3) und den Wnt1 inducible signalling pathway protein 1-3 (WISP1-3, CCN4-6). Die CCN-Proteine sind durch ihre Interaktion mit verschiede- nen Integrinen und Heparansulfaten involviert in die Regulation der Adhäsion, der Migration, der Mi- togenese, der Chemotaxis, der Proliferation, des Zellüberlebens, der Angiogenese, der Tumorgenese und der Wundheilung. WISP3 ist momentan das einzige Mitglied, das direkt mit einer muskuloskelettalen Erkrankung, der Progressiven Pseudorheumatoiden Dysplasie (PPD), assoziiert wird. PPD ist charakter- isiert durch eine normale embryonale Entwicklung mit fortschreitender Knorpeldegeneration beginnend im Alter von drei bis acht Jahren. Tierversuche mit knock out oder Überexpression von WISP3 in Mäusen waren nicht in der Lage die Symptome der Erkrankung nachzustellen, da keine Unterschiede im Vergleich zu den Wurfgeschwistern beobachtbar waren. In vitro und in vivo Studien offenbarten eine antagonisierende Rolle für WISP3 im BMP, IGF und Wnt Signalweg. Da die meisten Informationen über WISP3 jedoch in Epithel- und Krebszellen sowie immortalisierten Chondrozytenzelllinien generiert wurden, untersuchten wir die Rolle von WISP3 in primären humanen mesenchymalen Stammzellen (hMSZs) und primären Chondrozyten. Der WISP3 knock down wurde mit drei short hairpin RNAs in beiden Zelltypen etabliert und wies eine veränderte Zellmorphologie sowie eine reduzierte Zellzahl auf. Knock down mit gleichzeitiger rekombi- nanter WISP3-Behandlung konnte den beobachteten Phänotyp sowie den Zellverlust nicht retten und auch eine Änderung der endogenen Genexpression von WISP3 war nicht zu detektieren. Schlussfolgernd muss WISP3 ein wichtiger Überlebensfaktor sein, dessen Verlust zur Überschreitung von Zellzyklus- Kontrollpunkten führt, was in Apoptose mündet. Apoptosenachweise wie Annexin V-Cy3 Färbung, Immunfluoreszenzfärbung und Western blot für aktive Caspasen lieferten keine positiven Beweise für diese Form des Zelltodes. Auch die Genexpression der Todesrezeptoren TRAILR1 und TRAILR2, wichtig für die extrinsische Aktivierung der Apoptose, zeigte kein verändertes Expressionsmuster in WISP3-defizienten hMSZs. Autophagie als Zelltod wurde ebenfalls ausgeschlossen, nachdem im West- ern Blot kein gespaltene Form des Autophagiemarkers LC3 A/B zu detektieren war. Um die Rolle von WISP3 beim Zelltod weiter zu entschlüsseln, wurden Genom-Expressionsanalysen von WISP3-defizienten hMSZs im Vergleich zu Kontroll-hMSZs angefertigt. Die Analysen ergaben unterschiedlich regulierte Gene vor allem in den Bereichen Zellzyklus-Regulation, Adhäsion, Zytoskelett und Zelltod. Der durch WISP3-Verlust ausgelöste Zelltod kann möglicherweise durch die Aktivierung der Nektroptose über den BMP/TAK1/RIPK1 Signalweg erklärt werden. Es ist bekannt, dass WISP3 BMP4 bindet und so dessen Bindung an den Rezeptor verhindert. Bei WISP3 Verlust bindet BMP4 an seinen Rezeptor und aktiviert den Smad 2/3/4 Komplex der wiederum TAK1 phosphoryliert, wie zuvor in Epithelzellen demonstriert. TAK1 ist in der Lage die Caspase-induzierte Apoptose zu blockieren und auf diese Weise die Bildung des Nekrosomes auszulösen, welches zum Zelluntergang durch Nekroptose führt. Zusammen mit seiner Rolle in der Zellzyklus-Kontrolle und der extrazellulären Matrixadhäsion, die in humanen Brustepithelialzellen nachgewiesen wurden, unterstützen diese Daten eine Rolle für WISP3 als Tumorsuppressor und Überlebensfaktor in Zellen des Epithel und des muskuloskelettalen Systems. KW - Knorpelzelle KW - PPD KW - mesenchymal stem cells KW - cell death KW - chondrocytes KW - Mesenchymzelle KW - Dysplasie KW - Genexpression KW - Werk Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-109641 ER -