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Alzheimer’s Disease (AD) is the most common neurodegenerative disorder marked by progressive loss of memory and cognitive ability. The pathology of AD is characterised by the presence of amyloid plaques, intracellular neurofibrillary tangles and pronounced cell death. The aim of this thesis was to investigate pathways involved in the Aß cascade of neurodegeneration. Since novel findings indicate that already this Aß species exerts neurotoxic effects long before hyperphosphorylated tau, neurofibrillary tangles and extracellular Aß plaques appear, the investigations were accomplished with specific regard to the effects of intracellular Aß. The Swedish double mutation in the APP gene results in six- to eightfold increased Aß production of both Aß1-40 and Aß1-42 compared to human wildtype APP cells (APPwt). Data obtained from PC12 cells indicate that it is possible to specifically increase the Aß load without enhancing APP expression levels. On the basis of these findings, it seemed possible to investigate dose-dependent effects of Aß in multiple experimental designs. These assay designs were created in order to mimick different in-vivo situations that are discussed to occur in AD patients: APPsw PC12 cells exhibit low physiological concentrations of Aß within picomolar range in contrast to APPsw HEK cells, expressing Aß levels within the nanomolar range. Of note, the APPsw HEK cells showed a specific and highly significant increase in the intracellular accumulation of insoluble Aß1-42. Moreover, an intracellular accumulation of Aß and APP was found in the mitochondria of the HEK APPsw cells suggesting a direct impact on mitochondrial function on these cells. This effect might finally lead to disturbances in the energy metabolism of the cell or to increased cell death. Furthermore, baseline g- and ß-secretase activity was assessed since these enzymes represent promising therapeutic targets to slow or halt the disease process. As expected, ß-secretase activity was significantly elevated in all APPsw cell lines. This might be due to the proximity of the Swedish double mutation next to the N-terminus of the Aß sequence. Interestingly, g-secretase activity was similarly increased in PC12 APPsw cells. In addition, the toxicity of different Aß species was investigated in SY5Y and PC12 cells with regard to their effect on cellular viability mirrored by mitochondrial activity using MTT assay. Here, it turned out that not monomers, but already dimers are neurotoxic correlates. Fibrillar Aß species showed the highest toxicity. In the next step, SY5Y cells forming endogenous, dimeric APP and Aß were investigated. In accordance with previous findings, these cells showed a decreased MTT reduction potential in comparison to APPwt and control SY5Y cells reflecting a decrease of cellular viability. The impaired energy metabolism of the cells was even more drastically mirrored by reduced baseline ATP levels. In the second part of this thesis, the expression and intracellular distribution of Bcl-2 family proteins and pro-apoptotic mitochondrial factors under baseline conditions and during oxidative stress were analyzed in the APPwt and APPsw bearing cells. The most prominent finding was the reduction of expression levels of the anti-apoptotic factor Bcl-xL in the cytosolic fractions of APPwt and APPsw PC12 cells. This might indicate that a lack of anti-apoptotic factors or their altered intracellular distribution, rather than an increase in caspase-dependent pro-apoptotic factors, could be responsible for the increased vulnerability of APPwt- and APPsw-transfected PC12 cells against oxidative stress. Since total Bcl-xL expression was unaffected in PC12 cells, in contrast to APPwt and APPsw-expressing SY5Y and HEK cells revealing significantly decreased Bcl-xL expression levels. Thus, alterations in Bcl-xL distribution seem to be an early event in the disease process. Increasing Bcl-xL expression might potentially be one promising strategy for AD modification. PC12 and HEK cells bearing APPsw or APPwt were treated with the potent g-secretase inhibitor DAPT. Of note, DAPT did not only efficiently block Aß production, but additionally led to an elevation of the MTT reduction potential, reflecting an increase in cellular viability. As another disease-modifying strategy, several efforts are undertaken to ameliorate AD-relevant symptoms by the treatment with nerve growth factor (NGF). Generally, it is known that substituted pyrimidines have modest growth-promoting effects. Here, KP544, a novel substituted pyrimidine, was characterised. This drug increased MTT reduction potential in terminally differentiated and undifferentiated PC12 cells. Furthermore, treatment with KP544 led to a reduction in Aß1-40 secretion. Thus, one may conclude that the target of KP544, GSK-3ß, represents a connecting link between the two main pathological hallmarks of AD and might thus be a very promising therapeutic target for AD.
In der vorliegenden Arbeit wird das Wachstums- und Zelltodverhalten von Tumoren des zentralen Nervensystems untersucht. Des Weiteren wird die Expression verschiedener Apoptose-assoziierter Faktoren in den Präparaten analysiert und mit Normalkontrollen verglichen. Es zeigt sich, dass Apoptose von Tumorzellen aller untersuchter Hirntumore und Malignitätsgrade vollzogen werden kann. Die Rate apoptotischer Zellen ist jedoch sehr variabel und korreliert nicht mit dem Malignitätsgrad der Tumore. Auch besteht keine Korrelation zwischen der Apoptose- und der Proliferationsrate. Die Ergebnisse legen insgesamt nahe, dass die Apoptoserate nicht als Marker für die Malignität von Tumoren des zentralen Nervensystems verwendet werden kann. Auch unter Einbeziehung Apoptose-assoziierter Faktoren ist eine Gradifikation der Tumore hinsichtlich der Malignität nicht möglich. So unterscheiden sich z.B. atypische (WHO-II) und anaplastische (WHO-III) Meningiome quantitativ und qualitativ nicht signifikant voneinander. Es können ebenfalls keine signifikanten Unterschiede hinsichtlich der Expression der untersuchten Apoptose-assoziierten Faktoren, sowie der Apoptose- und Proliferationsraten zwischen Medulloblastomen und primitiven neuroektodermalen Tumoren (PNETs) festgestellt werden. Dies spricht dafür, dass sich diese Tumore lediglich bezüglich ihrer Lokalisation im zentralen Nervensystem unterscheiden. Die Analyse der Apoptose-assoziierten Faktoren zeigt, dass alle untersuchten Faktoren grundsätzlich in allen untersuchten Tumoren vorkommen, während die Normalkontrollen diese Faktoren nicht exprimieren. Der Vollzug der Apoptose findet jedoch nicht in diesem Maße statt, da die Apoptoserate der Tumore (markiert durch TUNEL) stets wesentlich geringer ist als die Expressionsraten der Apoptose-assoziierten Faktoren. Es ist davon auszugehen, dass entdifferenzierte Tumorzellen entweder nur begrenzt in der Lage sind, ihr apoptotisches „Selbstzerstörungsprogramm“ in Gang zu setzen und zu Ende zu führen, oder, dass apoptosehemmende Mechanismen greifen. Um so interessanter wäre es, durch therapeutische Intervention Apoptose zu initiieren. Die Analyse der einzelnen Apoptose-assoziierten Faktoren liefert Hinweise darauf, an welchen Stellen des apoptotischen Systems eine solche Intervention ansetzen könnte: Die hochmalignen WHO-IV-Tumore zeigen eine signifikante Hochregulation der Effektor-Caspasen-3 und -6. Die physiologischen Aktivierungsmechanismen dieser Caspasen z.B. durch Caspase-2 und TNFalpha scheinen in diesen hochmalignen Tumoren jedoch weniger eine Rolle zu spielen, da diese Faktoren hier nur in geringem Ausmaß exprimiert werden. Jedoch könnten modifizierte, per se aktive Caspase-3- und -6-Moleküle eine interessante therapeutische Option zur Behandlung maligner Tumore des zentralen Nervensystems darstellen. Zu beachten ist aber unter anderem, dass z.B. Glioblastome auch geringe Expressionsraten apoptotischer Faktoren im peritumoralen, mikroskopisch nicht infiltrierten Normalgewebe zeigen. Dies könnte für eine peritumorale Dysfunktion des Hirngewebes sprechen. Welche Rolle dies bei der Behandlung mit Apoptose-stimulierenden Agenzien spielt und wie spezifisch die Anwendung solcher Stimulanzien für Tumorgewebe wären, muss Gegenstand weiterer Studien sein. Die untersuchten WHO-II- und –III-Tumore zeigen eine Hochregulation vor allem von Faktoren des extrinsischen Apoptoseweges (z.B. TNFalpha). Die Expressionsraten von TNFalpha korrelieren signifikant mit dem WHO-Grad der untersuchten Tumore. Interessante therapeutische Optionen könnten hier zum einen die Aktivierung des extrinsischen Apoptoseweges über TNFalpha sein, zum anderen könnte man versuchen, eine direkte Aktivierung über modifizierte Effektor-Caspasen herbeizuführen. Insgesamt existieren verschiedene mögliche Angriffsorte innerhalb des apoptotischen Netzwerkes der Zelle für eine thepeutische Intervention bei Tumoren des zentralen Nervensystems. Die Komplexität des Kaskade-artigen Systems legt nahe, dass eine therapeutische Intervention möglichst an dessen Ende erfolgen sollte, um möglichst viele Stör- und Hemmfaktoren zu umgehen.
Es ist bekannt, dass Curcumin in einer Vielzahl verschiedener Zellarten die Proliferation hemmt und Apoptose induziert. In der Literatur werden Konzentrationen von 10 bis 150 µM (3.7-55 µg/ml) als dafür notwendig beschrieben. Da Curcumin nach oraler Aufnahme, aufgrund seiner schlechten Resorption aus dem Magen-Darm-Trakt, eine geringe Bioverfügbarkeit im Organismus aufweist, sind therapeutische Lösungen erforderlich um Curcumin besser nutzen zu können. Aus diesem Grund wurde im Rahmen der vorliegenden Arbeit die Wirkung von geringen Mengen Curcumin, die allein keine Effekte zur Folge haben, in Zusammenwirkung mit Licht untersucht. Es wurde gezeigt, dass bereits Konzentrationen von 0,2-1 µg/ml in Keratinozyten die Proliferation hemmen, wenn sie mit UVA- oder sichtbarer Licht-Bestrahlung kombiniert werden. Desweiteren wurde belegt, dass diese Behandlung Apoptose in HaCaT-Zellen induziert, wobei der mitochondriale Apoptoseapparat aktiviert wird. Dies belegen die Freisetzung von Cytochrom c und die frühe Spaltung der Caspase-9 wohingegen Caspase-8 zeitverzögert aktiviert wurde. Weiterhin wurde dargelegt, dass Erk1/2, PKB/Akt und PKC durch Curcumin/Licht gehemmt werden, wohingegen p38 durch diese Behandlung eine Aktivierung erfährt. Zusätzlich ergab sich ein inhibierender Einfluss auf den EGF-Rezeptor, einem “upstream”-Regulator all dieser Kinasen, und den Transkriptionsfaktor NF-kappaB. Bei in vivo-Studien an immundefizienten Mäusen mit A431-Xenografts hatte eine Behandlung mit i.p. verabreichtem Curcumin und anschließender Bestrahlung mit sichtbarem Licht einen signifikanten inhibitorischen Effekt auf das Tumorwachstum zur Folge. In diesen Tumoren fand eine Reduktion der Ki-67-Expression sowie eine Induktion von „apoptotic bodies“ statt. Western Blot-Analysen bestätigten die Apoptoseinduktion durch eine verstärkte Aktivierung der Caspase-9. Zusätzlich zeigte sich auch eine Hemmung von Erk1/2 sowie EGF-R nach beschriebener Behandlung in den Tumoren. Die Wirkungsweise des Curcumins in Kombination mit Licht in vitro wie auch in vivo weisen auf einen neuen therapeutischen Ansatz einer photodynamischen Therapie hin. Dabei kann durch die Verwendung von sichtbarem Licht auf den Einsatz der karzinogenen UV-Bestrahlung, wie sie in üblichen Phototherapien angewandt wird, verzichtet werden.
Heart valve disease is a major clinical problem worldwide. Cardiac valve development and homeostasis need to be precisely controlled. Hippo signaling is essential for organ development and tissue homeostasis, while its role in valve formation and morphology maintenance remains unknown. VGLL4 is a transcription cofactor in vertebrates and we found it was mainly expressed in valve interstitial cells at the post-EMT stage and was maintained till the adult stage. Tissue specific knockout of VGLL4 in different cell lineages revealed that only loss of VGLL4 in endothelial cell lineage led to valve malformation with expanded expression of YAP targets. We further semi-knockout YAP in VGLL4 ablated hearts, and found hyper proliferation of arterial valve interstitial cells was significantly constrained. These findings suggest that VGLL4 is important for valve development and manipulation of Hippo components would be a potential therapy for preventing the progression of congenital valve disease.
Due to their physiological role in removing damaged cells, natural killer (NK) cells represent ideal candidates for cellular immunotherapy in the treatment of cancer. Thereby, the cytotoxicity of NK cells is regulated by signals on both, the NK cells as well as the targeted tumor cells, and the interplay and balance of these signals determine the killing capacity of NK cells. One promising avenue in cancer treatment is therefore the combination of NK cell therapy with agents that either help to increase the killing capacity of NK cells or sensitize tumor cells to an NK cell-mediated attack. In this mini-review, we present different strategies that can be explored to unleash the potential of NK cell immunotherapy. In particular, we summarize how modulation of apoptosis signaling within tumor cells can be exploited to sensitize tumor cells to NK cell-mediated cytotoxicity.
Altered metabolism in tumor cells is increasingly recognized as a core component of the neoplastic phenotype. Because p53 has emerged as a master metabolic regulator, we hypothesized that the presence of wild-type p53 in glioblastoma cells could confer a selective advantage to these cells under the adverse conditions of the glioma microenvironment. Here, we report on the effects of the p53-dependent effector Tp53-induced glycolysis and apoptosis regulator (TIGAR) on hypoxia-induced cell death. We demonstrate that TIGAR is overexpressed in glioblastomas and that ectopic expression of TIGAR reduces cell death induced by glucose and oxygen restriction. Metabolic analyses revealed that TIGAR inhibits glycolysis and promotes respiration. Further, generation of reactive oxygen species (ROS) levels was reduced whereas levels of reduced glutathione were elevated in TIGAR-expressing cells. Finally, inhibiting the transketolase isoenzyme transketolase-like 1 (TKTL1) by siRNA reversed theses effects of TIGAR. These findings suggest that glioma cells benefit from TIGAR expression by (i) improving energy yield from glucose via increased respiration and (ii) enhancing defense mechanisms against ROS. Targeting metabolic regulators such as TIGAR may therefore be a valuable strategy to enhance glioma cell sensitivity toward spontaneously occurring or therapy-induced starvation conditions or ROS-inducing therapeutic approaches.
Diabetes results from a decline in functional pancreatic β-cells, but the molecular mechanisms underlying the pathological β-cell failure are poorly understood. Here we report that large-tumor suppressor 2 (LATS2), a core component of the Hippo signaling pathway, is activated under diabetic conditions and induces β-cell apoptosis and impaired function. LATS2 deficiency in β-cells and primary isolated human islets as well as β-cell specific LATS2 ablation in mice improves β-cell viability, insulin secretion and β-cell mass and ameliorates diabetes development. LATS2 activates mechanistic target of rapamycin complex 1 (mTORC1), a physiological suppressor of autophagy, in β-cells and genetic and pharmacological inhibition of mTORC1 counteracts the pro-apoptotic action of activated LATS2. We further show a direct interplay between Hippo and autophagy, in which LATS2 is an autophagy substrate. On the other hand, LATS2 regulates β-cell apoptosis triggered by impaired autophagy suggesting an existence of a stress-sensitive multicomponent cellular loop coordinating β-cell compensation and survival. Our data reveal an important role for LATS2 in pancreatic β-cell turnover and suggest LATS2 as a potential therapeutic target to improve pancreatic β-cell survival and function in diabetes.
Rhabdomyosarcoma (RMS) cells have recently been reported to be sensitive to oxidative stress. Therefore, we investigated whether concomitant inhibition of the two main antioxidant defense pathways, that is, the thioredoxin (TRX) and the glutathione (GSH) systems, presents a new strategy to trigger cell death in RMS. In this study, we discover that GSH-depleting agents, i.e. γ-glutamylcysteine synthetase inhibitor, buthionine sulfoximine (BSO) or the cystine/glutamate antiporter inhibitor erastin (ERA), synergize with thioredoxin reductase (TrxR) inhibitor auranofin (AUR) to induce cell death in RMS cells. Interestingly, AUR causes accumulation of ubiquitinated proteins when combined with BSO or ERA, in line with recent reports showing that AUR inhibits the proteasome besides TrxR. Consistently, AUR/BSO or AUR/ERA cotreatment increases ubiquitination and expression of the short-lived proteins NOXA and MCL-1, accompanied by increased binding of NOXA to MCL-1. Notably, NOXA knockdown significantly rescues RMS cells from AUR/BSO- or AUR/ERA-induced cell death. In addition, AUR acts together with BSO or ERA to stimulate BAX/BAK and caspase activation. Of note, BSO or ERA abolish the AUR-stimulated increase in GSH levels, leading to reduced GSH levels upon cotreatment. Although AUR/BSO or AUR/ERA cotreatment enhances reactive oxygen species (ROS) production, only thiol-containing antioxidants (i.e., N-acetylcysteine (NAC), GSH), but not the non-thiol-containing ROS scavenger α-Tocopherol consistently suppress AUR/BSO- and AUR/ERA-stimulated cell death in both cell lines. Importantly, re-supply of GSH or its precursor NAC completely prevents AUR/ERA- and AUR/BSO-induced accumulation of ubiquitinated proteins, NOXA upregulation and cell death, indicating that GSH depletion rather than ROS production is critical for AUR/BSO- or AUR/ERA-mediated cell death. Thus, by demonstrating that GSH-depleting agents enhance the antitumor activity of AUR, we highlight new treatment options for RMS by targeting the redox homeostasis.
Background: The evasion of apoptosis is a hallmark of cancer. Understanding this process holistically and overcoming apoptosis resistance is a goal of many research teams in order to develop better treatment options for cancer patients. Efforts are also ongoing to personalize the treatment of patients. Strategies to confirm the therapeutic efficacy of current treatments or indeed to identify potential novel additional options would be extremely beneficial to both clinicians and patients. In the past few years, system medicine approaches have been developed that model the biochemical pathways of apoptosis. These systems tools incorporate and analyse the complex biological networks involved. For their successful integration into clinical practice, it is mandatory to integrate systems approaches with routine clinical and histopathological practice to deliver personalized care for patients.
Results: We review here the development of system medicine approaches that model apoptosis for the treatment of cancer with a specific emphasis on the aggressive brain cancer, glioblastoma.
Conclusions: We discuss the current understanding in the field and present new approaches that highlight the potential of system medicine approaches to influence how glioblastoma is diagnosed and treated in the future.
BH3 mimetics are promising novel anticancer therapeutics. By selectively inhibiting BCL-2, BCL-xL, or MCL-1 (i.e. ABT-199, A-1331852, S63845) they shift the balance of pro- and anti-apoptotic proteins in favor of apoptosis. As Bromodomain and Extra Terminal (BET) protein inhibitors promote pro-apoptotic rebalancing, we evaluated the potential of the BET inhibitor JQ1 in combination with ABT-199, A-1331852 or S63845 in rhabdomyosarcoma (RMS) cells. The strongest synergistic interaction was identified for JQ1/A-1331852 and JQ1/S63845 co-treatment, which reduced cell viability and long-term clonogenic survival. Mechanistic studies revealed that JQ1 upregulated BIM and NOXA accompanied by downregulation of BCL-xL, promoting pro-apoptotic rebalancing of BCL-2 proteins. JQ1/A-1331852 and JQ1/S63845 co-treatment enhanced this pro-apoptotic rebalancing and triggered BAK- and BAX-dependent apoptosis since a) genetic silencing of BIM, BAK or BAX, b) inhibition of caspase activity with zVAD.fmk and c) overexpression of BCL-2 all rescued JQ1/A-1331852- and JQ1/S63845-induced cell death. Interestingly, NOXA played a different role in both treatments, as genetic silencing of NOXA significantly rescued from JQ1/A-1331852-mediated apoptosis but not from JQ1/S63845-mediated apoptosis. In summary, JQ1/A-1331852 and JQ1/S63845 co-treatment represent new promising therapeutic strategies to synergistically trigger mitochondrial apoptosis in RMS.