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Background: NH exchangers (NHEs) play a crucial role in regulating intra/extracellular pH, which is altered in cancer cells, and are therefore suitable targets to alter cancer cell metabolism in order to inhibit cell survival and proliferation. Among NHE inhibitors, amiloride family members are commonly used in clinical practice as diuretics; we focused on the amiloride HMA, reporting a net cytotoxic effect on a panel of human cancer cell lines; now we aim to provide new insights into the molecular events leading to cell death by HMA.
Methods: Colon cancer cell lines were treated with HMA and analysed with: morphological and cellular assays for cell viability and death, and autophagy; biochemical approaches to evaluate mitochondrial function and ROS production; in situ detection of DNA damage; molecular tools to silence crucial autophagy/necroptosis factors.
Results: HMA affects cellular morphology, alters mitochondrial structure and function, causes an increase in ROS, which is detrimental to DNA integrity, stimulates poly(ADP-ribose) synthesis, activates RIPK3-dependent death and triggers autophagy, which is unable to rescue cell survival. These features are hot points of an intricate network of processes, including necroptosis and autophagy, regulating the homeostasis between survival and death.
Conclusion: Our results allow the identification of multiple events leading to cell death in cancer cells treated with HMA. The here-defined intricate network activated by HMA could be instrumental to selectively target the key players of each pathway in the attempt to improve the global response to HMA. Our data could be the starting point for developing a newly designed targeted therapy.
Searching for new strategies to trigger apoptosis in rhabdomyosarcoma (RMS), we investigated the effect of two novel classes of apoptosis-targeting agents, i.e. monoclonal antibodies against TNF-related apoptosis-inducing ligand (TRAIL) receptor 1 (mapatumumab) and TRAIL receptor 2 (lexatumumab) and small-molecule inhibitors of inhibitor of apoptosis (IAP) proteins. Here, we report that IAP inhibitors synergized with lexatumumab, but not with mapatumumab, to reduce cell viability and to induce apoptosis in several RMS cell lines in a highly synergistic manner (combination index <0.1). Cotreatment-induced apoptosis was accompanied by enhanced activation of caspase-8, -9, and -3; loss of mitochondrial membrane potential; and caspase-dependent apoptosis. In addition, IAP inhibitor and lexatumumab cooperated to stimulate the assembly of a cytosolic complex containing RIP1, FADD, and caspase-8. Importantly, knockdown of RIP1 by RNA interference prevented the formation of the RIP1·FADD·caspase-8 complex and inhibited subsequent activation of caspase-8, -9, and -3; loss of mitochondrial membrane potential; and apoptosis upon treatment with IAP inhibitor and lexatumumab. In addition, RIP1 silencing rescued clonogenic survival of cells treated with the combination of lexatumumab and IAP inhibitor, thus underscoring the critical role of RIP1 in cotreatment-induced apoptosis. By comparison, the TNFα-blocking antibody Enbrel had no effect on IAP inhibitor/lexatumumab-induced apoptosis, indicating that an autocrine TNFα loop is dispensable. By demonstrating that IAP inhibitors and lexatumumab synergistically trigger apoptosis in a RIP1-dependent but TNFα-independent manner in RMS cells, our findings substantially advance our understanding of IAP inhibitor-mediated regulation of TRAIL-induced cell death.
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.
Background/Aims: Sphingosine 1-phosphate (S1P) is considered as a key molecule regulating various cell functions including cell growth and death. It is produced by two sphingosine kinases (SK) denoted as SK-1 and SK-2. Whereas SK-1 has been extensively studied and has been appointed a role in promoting cell growth, the function of SK-2 is controversial, and both pro-proliferative and pro-apoptotic functions have been suggested. In this study we investigated whether renal mesangial cells isolated from transgenic mice overexpressing the human Sphk2 gene (hSK2-tg) showed an altered cell response towards growth-inducing and apoptotic stimuli.
Methods: hSK2-tg mice were generated by using a Quick KnockinR strategy. Renal mesangial cells were isolated by a differential sieving method and further cultivated in vitro. Lipids were quantified by mass spectrometry. Protein expression was determined by Western blot analysis, cell proliferation was determined by 3H-thymidine incorporation, and apoptosis was determined by a DNA fragmentation ELISA.
Results: We show here that kidneys and mesangial cells from hSK2-tg mice express the hSK2 as well as the endogenous mouse mSK2. hSK2 and mSK2 predominantly resided in the cytosol of quiescent transgenic cells. However, S1P accumulated strongly in the nucleus and only minimally in the cytosol of transgenic cells. Functionally, hSK2-tg cells proliferated less than control cells under normal growth conditions and were also more sensitive towards stress-induced apoptosis. On the molecular level, this was reflected by reduced ERK and Akt/PKB activation, and upon staurosporine treatment, by a sensitized mitochondrial pathway as manifested by reduced anti-apoptotic Bcl-XL expression and increased cleavage of caspase-9, downstream caspase-3 and PARP-1.
Conclusion: Altogether, these data demonstrate that SK-2 exerts an antiproliferative and apoptosis-sensitizing effect in renal mesangial cells which suggests that selective inhibitors of SK-2 may promote proliferation and reduce apoptosis and this may have impact on the outcome of proliferation-associated diseases such as mesangioproliferative glomerulonephritis.
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.
Background: Ischemia-reperfusion injury (IRI) is a major challenge in liver transplantation. The mitochondrial pathway plays a pivotal role in hepatic IRI. Levosimendan, a calcium channel sensitizer, was shown to attenuate apoptosis after IRI in animal livers. The aim of this study was to investigate the effect of levosimendan on apoptosis in human hepatocytes.
Methods: Primary human hepatocytes were either exposed to hypoxia or cultured under normoxic conditions. After the hypoxic phase, reoxygenation was implemented and cells were treated with different concentrations of levosimendan (10ng/ml, 100ng/ml, 1000ng/ml). The overall metabolic activity of the cells was measured using 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT), and aspartate aminotransferase (AST) levels were determined in order to quantify hepatic injury. Fluorescence-activated cell sorting (FACS) analysis was applied to measure necrosis and apoptosis. Finally, Western blotting was performed to analyze apoptotic pathway proteins.
Results: Administration of levosimendan during reperfusion increases the metabolic activity of human hepatocytes and decreases AST levels. Moreover, apoptosis after IRI is reduced in treated vs. untreated hepatocytes, and levosimendan prevents down-regulation of the anti-apoptotic protein Bcl-2 as well as up-regulation of the pro-apoptotic protein BAX.
Conclusion: The present study suggests a protective effect of levosimendan on human hepatocytes. Our findings suggest that treatment with levosimendan during reperfusion attenuates apoptosis of human hepatocytes by influencing BAX and Bcl-2 levels.
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.
Tumorerkrankungen, insbesondere solche im metastasierenden Stadium, erfordern effiziente Therapien. Krebstherapien wie Bestrahlung oder Chemotherapie wirken über die Induktion von Apoptose. Resistenz gegen diese Behandlungsansätze geht einher mit der Blockierung relevanter apoptotischer Signalwege. Dennoch haben Tumorzellen nicht grundsätzlich die Fähigkeit verloren, apoptotischen Zelltod zu sterben, d. h. mit einem geeigneten Stimulus kann in jeder Tumorzelle Apoptose induziert werden. In dieser Arbeit wurden Proteine entwickelt, die Enzyme apoptotischer Signalkaskaden selektiv in Tumorzellen einschleusen. Um Spezifität für transformierte Zellen zu erlangen, wurden diese Proteine mit Zellbindungsdomänen gekoppelt, die an tumorassoziierte Antigene binden. Als Zielstrukturen auf der Oberfläche von Krebszellen dienten die Rezeptoren der ErbB Familie „epidermal growth factor receptor“ (EGFR) und ErbB2. Überexpression dieser Rezeptoren wird auf einer Vielzahl von Tumoren epithelialen Ursprungs beobachtet und ist ursächlich beteiligt an der malignen Transformation. Als Apoptoseinduktoren wurden die Serinprotease Granzym B (GrB) sowie das Protein „apoptosis inducing factor“ (AIF) eingesetzt. GrB induziert Apoptose durch direkte Aktivierung von Caspasen und Spaltung zentraler Caspasen-Substrate. Damit greift die Protease am unteren Effektorende apoptotischer Signalwege ein und umgeht so die meisten Resistenzmechanismen transformierter Zellen. Um GrB in Tumorzellen einzuschleusen, wurde die Protease mit dem ErbB2 spezifischen Antikörperfragment scFv(FRP5) gekoppelt. Zunächst wurde eine biotinylierte Variante der Protease (bGrB) über die hochaffine Streptavidin/ Biotin Interaktion mit einem Fusionsprotein komplexiert, das aus dem scFv(FRP5) und Streptavidin besteht (SA-5). Komplexe aus enzymatisch aktivem bGrB und SA-5 wiesen selektive cytotoxische Aktivität gegenüber ErbB2 exprimierenden Zellen auf, die allerdings von der Präsenz des endosomolytischen Reagenz Chloroquin abhing. Dies zeigt die Notwendigkeit einer Translokation vom endosomalen Kompartiment, um internalisiertem GrB Zugang zu seinen cytosolischen Substraten zu ermöglichen. Aufbauend auf diesen Ergebnissen, die grundsätzlich nachweisen, daß das Einbringen von GrB in Tumorzellen ausreichend ist, um in diesen Zellen Apoptose zu induzieren, wurden Fusionsproteine abgeleitet, in denen GrB direkt mit Zellbindungsdomänen fusioniert ist. Neben dem scFv(FRP5) wurde auch der EGFR-Ligand TGFalpha eingesetzt. Fusionsproteine bestehend aus reifem GrB und scFv(FRP5) (GrB-5) bzw. TGFalpha (GrB-T) wurden in der Hefe Pichia pastoris exprimiert und mit hohen Ausbeuten gereinigt. GrB-5 und GrB-T zeigten enzymatische Aktivität und wiesen Affinität zu ErbB2 bzw. EGFR auf. In Gegenwart von Chloroquin zeigten GrB-5 und GrB-T selektive cytotoxische Aktivität gegenüber Zellen, die den jeweiligen Zielrezeptor exprimieren. Die IC50 Werte der Proteine lagen im pico- bis nanomolaren Bereich und sind damit vergleichbar mit denen rekombinanter Immun- bzw. Wachstumsfaktortoxine, die Exotoxin A (ETA) aus Pseudomonas aeruginosa als Effektor nutzen. Induktion von Apoptose erfolgte durch GrB-5 und GrB-T allerdings deutlich schneller (3 h) als durch ETA Fusionsproteine (72 h), da GrB im Gegensatz zu ETA direkt in apoptotische Signalkaskaden eingreift. Um die weitere Charakterisierung von GrB-5 und GrB-T zu erleichtern, wurden in der vorliegenden Arbeit Möglichkeiten für eine Optimierung der Expression dieser Fusionsproteine in Hefe untersucht. Dazu wurde eine Strategie entwickelt, die auf der Beobachtung beruht, daß die Löslichkeit und Stabilität von Proteinen durch Fusion mit solchen Domänen erhöht werden kann, die selbst eine hohe Löslichkeit und Stabilität besitzen. Ein Protein mit diesen Eigenschaften ist das Maltose Bindungsprotein (MBP) aus E. coli. In dieser Arbeit wurde MBP bei der Expression rekombinanter Proteine in P. pastoris eingesetzt, um die Ausbeute löslicher Proteine zu steigern. Es wurde eine Strategie entwickelt, die es erlaubt, MBP posttranslational in vivo vom Fusionspartner zu trennen. Hierzu wurde eine Erkennungssequenz der Protease Furin (furS) zwischen MBP und Fusionspartner eingefügt. Zunächst wurde untersucht, ob GrB als MBP Fusionsprotein in enzymatisch aktiver Form exprimiert werden kann, was eine Grundvoraussetzung für die Expression tumorspezifischer GrB Fusionsproteine in diesem System darstellt. Die Ausbeute von GrB konnte durch diese Strategie erheblich gesteigert werden. Daneben war eine vollständige Prozessierung der Fusionsproteine innerhalb der Furin-Erkennungssequenz nachweisbar. Als MBP Fusionsprotein exprimiertes GrB wies allerdings keine enzymatische Aktivität auf. Weitere Untersuchungen zeigten, daß das terminale Serin der furS-Sequenz, das nach Spaltung durch Furin am N-Terminus von GrB zurückbleibt, die enzymatische Aktivität der Serinprotease inhibiert. Im Rahmen dieser Arbeit wurde daher nicht weiter versucht, die Ausbeute an tumorspezifischen GrB Fusionsproteinen durch Fusion mit löslichen Proteindomänen zu erhöhen. Für Proteine, die ein N-terminales Serin tolerieren, stellt das hier entwickelte System allerdings eine neuartige Strategie dar, um die Ausbeute in P. pastoris um ein Vielfaches zu steigern. Dies wurde anhand von rekombinantem ErbB2 als Modellprotein bestätigt. Als alternativer Effektor in tumorspezifischen Fusionsproteinen wurde AIF als caspasenunabhängig agierendes proapoptotisches Signalmolekül eingesetzt. In apoptotischen Zellen bewirkt die Freisetzung von AIF aus dem mitochondrialen Intermembranraum die nachfolgende Translokation des Proteins in den Zellkern, woraufhin DNA-Fragmentierung induziert wird. Zum Einschleusen von AIF in Tumorzellen wurde das Flavoprotein mit dem scFv(FRP5) fusioniert (5-AIF). Um eine cytosolische Translokation von AIF zu erreichen, wurde ein Konstrukt abgeleitet, das zusätzlich die Translokationsdomäne von Exotoxin A enthält (5-E-AIF). Diese Domäne ist beim Wildtyp-Toxin notwendig für dessen retrograden Transport vom Endosom über den Golgi Apparat und das ER in das Cytosol. Innerhalb der Translokationsdomäne findet zudem eine Prozessierung durch die endosomale Protease Furin statt. AIF Fusionsproteine wurden in E. coli exprimiert, gereinigt und renaturiert. Die Proteine wiesen Affinität für ErbB2 auf und interagierten mit DNA, eine Eigenschaft, die essentiell für die proapoptotische Aktivität von AIF ist. 5-E-AIF zeigte gegenüber ErbB2 exprimierenden Zellen cytotoxische Aktivität, die vergleichbar mit der des Immuntoxins scFv(FRP5)-ETA war. Diese Aktivität war allerdings nur in Gegenwart von Chloroquin gegeben. Das Protein 5-AIF, in dem die Translokationsdomäne fehlt, zeigte auch in Kombination mit Chloroquin keine Cytotoxizität. Eine mögliche Folgerung hieraus ist, daß die N-terminale Antikörperdomäne der Fusionsproteine die proapoptotische Aktivität der AIF Domäne blockiert. 5-E-A wird sehr wahrscheinlich durch die endosomale Protease Furin „aktiviert“, die den scFv(FRP5) durch proteolytische Spaltung innerhalb der ETA-Domäne entfernt haben könnte. Für die eigentliche Translokation reicht der ETA-Anteil allerdings nicht aus, wahrscheinlich, weil in dem hier abgeleiteten Konstrukt ein für die Funktionsweise des Wildtyp-Toxins essentielles ER Retentionssignal fehlte. Die Ergebnisse dieser Arbeit zeigen, daß durch Einsatz apoptotischer Signalmoleküle in tumorzellspezifischen Fusionsproteinen hohe und selektive cytotoxische Aktivitäten erzielt werden können. Eine weitere Entwicklung dieser Proteine als mögliche Tumortherapeutika erscheint daher sinnvoll.
Smac mimetic promotes apoptosis by neutralizing inhibitor of apoptosis (IAP) proteins and is considered as a promising cancer therapeutic. Although an autocrine/paracrine tumor necrosis factor-α (TNFα) loop has been implicated in Smac mimetic-induced cell death, little is yet known about additional factors that determine sensitivity to Smac mimetic. Using genome-wide gene expression analysis, we identify death receptor 5 (DR5) as a novel key mediator of Smac mimetic-induced apoptosis. Although several cell lines that are sensitive to the Smac mimetic BV6 die in a TNFα-dependent manner, A172 glioblastoma cells undergo BV6-induced apoptosis largely independently of TNFα/TNFR1, as the TNFα-blocking antibody Enbrel or TNFR1 knockdown provide little protection. Yet, BV6-stimulated nuclear factor-κB (NF-κB) activation is critically required for apoptosis, as inhibition of NF-κB by overexpression of dominant-negative IκBα superrepressor (IκBα-SR) blocks BV6-induced apoptosis. Unbiased genome-wide gene expression studies in IκBα-SR-overexpressing cells versus vector control cells reveal that BV6 increases DR5 expression in a NF-κB-dependent manner. Importantly, this BV6-stimulated upregulation of DR5 is critically required for apoptosis, as transient or stable knockdown of DR5 significantly inhibits BV6-triggered apoptosis. In addition, DR5 silencing attenuates formation of a RIP1/FADD/caspase-8 cytosolic cell death complex and activation of caspase-8, -3 and -9. By identifying DR5 as a critical mediator of Smac mimetic-induced apoptosis, our findings provide novel insights into the determinants that control susceptibility of cancer cells to Smac mimetic.
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.
ADAM15 protein amplifies focal adhesion kinase phosphorylation under genotoxic stress conditions
(2012)
ADAM15, a disintegrin and metalloproteinase, is capable of counteracting genotoxic stress-induced apoptosis by the suppression of caspase-3 activation. A cell line expressing the membrane-bound ADAM15 without its cytoplasmic tail, however, lost this anti-apoptotic property, suggesting a crucial role of the intracellular domain as a scaffold for recruitment of survival signal-transducing kinases. Accordingly, an enhanced phosphorylation of FAK at Tyr-397, Tyr-576, and Tyr-861 was detected upon genotoxic stress by camptothecin in ADAM15-transfected T/C28a4 cells, but not in transfectants expressing an ADAM15 mutant without the cytoplasmic tail. Accordingly, a specific binding of the cytoplasmic ADAM15 domain to the C terminus of FAK could be shown by mammalian two-hybrid, pulldown, and far Western studies. In cells expressing full-length ADAM15, a concomitant activation of Src at Tyr-416 was detected upon camptothecin exposure. Cells transfected with a chimeric construct consisting of the extracellular IL-2 receptor α-chain and the cytoplasmic ADAM15 domain were IL-2-stimulated to prove that the ADAM15 tail can transduce a percepted extracellular signal to enhance FAK and Src phosphorylation. Our studies further demonstrate Src binding to FAK but not a direct Src interaction with ADAM15, suggesting FAK as a critical intracellular adaptor for ADAM15-dependent enhancement of FAK/Src activation. Moreover, the apoptosis induction elicited by specific inhibitors (PP2, FAK 14 inhibitor) of FAK/Src signaling was significantly reduced by ADAM15 expression. The newly uncovered counter-regulatory response to genotoxic stress in a chondrocytic survival pathway is potentially also relevant to apoptosis resistance in neoplastic growth.
Secondary plant metabolites reveal numerous biological activities making them attractive as resource for drug development of human diseases. As the majority of cancer drugs clinically established during the past half century is derived from nature, cancer researchers worldwide try to identify novel natural products as lead compounds for cancer therapy. Natural products are considered as promising cancer therapeutics, either as single agents or in combination protocols, to enhance the antitumor activity of additional therapeutic modalities. Most natural compounds exert pleotrophic effects and modulate various signal transduction pathways. A better understanding of the complex mechanisms of action of natural products is expected to open new perspectives in coming years for their use alone or in combination therapies in oncology. Two major strategies to identify novel drug candidates from nature are the bioactivity-guided fractionation of medicinal plant extracts to isolate cytotoxic chemicals and the identification of small molecules inhibiting specific targets in cancer cells. In the present review, we report on our own efforts to unravel the molecular modes of action of phytochemicals in cancer cells and focus on resveratrol, betulinic acid, artesunate, dicentrine and camptothecin derivatives.
Identification and characterization of TNFalpha responsive genes in human breast cancer cells
(2006)
One of the hallmarks of cancer is the escape of the transformed cells from apoptosis. Therefore, the identification of survival genes, allowing cancer cells to circumvent programmed cell death, could provide new diagnostic markers as well as targets for therapeutic intervention. A well known transcription factor regulating the balance between pro- and anti- apoptotic factors is NF-kappaB, which is strongly induced by tumor necrosis factor alpha (TNFalpha). When cells are stimulated by TNFalpha their response is biphasic with an initial NF-kappaB induction of survival genes which is overridden by the subsequent activation of initiator caspases triggering apoptosis. By combining gene trap mutagenesis with site specific recombination a strategy was developed, which enriches for genes induced by TNFalpha in the human breast cancer cell line MCF-7. The strategy relies on a one way gene expression switch based on Cre/loxP mediated recombination, which uncouples the expression of a marker gene from the trapped cellular promoter thereby enabling the recovery of genes that are only transiently induced by TNFalpha. The marker gene used in these experiments was a dominant negative variant of the TNFalpha-receptor associated protein FADD (dnFADD), which blocks the apoptotic branch of the TNFalpha induced signaling pathway. Initial experiments indicated that MCF-7 cells expressing high levels of dnFADD were insensitive to TNFalpha induced apoptosis and therefore suitable for the installment of a one way gene expression switch susceptible to Cre/loxP mediated recombination. A MCF-7 reporter clone harboring the recombinase dependent gene expression switch was infected with the gene trap retrovirus U3Cre, which inserts the Cre recombinase gene into a large collection of chromosomal sites. Insertion of Cre downstream of an active cellular promoter induces dnFADD expression from the gene expression switch enabling the cells to block TNFalpha triggered apoptosis. From a gene trap integration library containing approximately 2000000 unique proviral integrations, 69 unique TNFalpha inducible gene trap insertion sites were recovered in a two step selection procedure. Sequencing of the genomic regions adjacent to the insertion sites, which were obtained by inverse PCR (gene trap sequence tags, GTSTs), and data base analysis revealed that 42% of the GTSTs belonged to annotated genes, 13% to known cDNAs with open reading frames, 17% to Genscan predicted genes, 9% to ESTs, 9% to repetitive sequences and 10% to unannotated genomic sequence. Overall, 44% of the annotated genes recovered in this screen were directly or indirectly related to cancer, indicating that the gene trap strategy developed here is suitable for the identification of cancer relevant genes. Analysis of the expression patterns of the trapped and annotated genes in wild type cells revealed that 19 out of 24 genes were either up- or down- regulated by a factor of at least 1.45 by TNFalpha. A large fraction of the gene trap insertions were located upstream, in introns or in opposite orientation to annotated transcripts, indicating that the strategy efficiently recovers non-coding RNAs (ncRNAs). While the biological significance of these transcripts still needs to be elucidated, they fall into two main categories. The first category includes gene trap insertions upstream of genes, which could either represent regulatory RNAs interacting with promoter elements or transcripts driven by bidirectional promoters. The second includes inverse orientation gene trap insertions in introns of annotated genes suggesting the presence of natural antisense transcripts (NATs). Interestingly, more than 50% of all antisense integrations are located downstream of transcription start sites predicted by different algorithms supporting the existence of RNAs transcribed from the corresponding genomic regions. Intronic integrations on the coding strand could be derived from cryptic splicing, alternative promoter usage or additional, so far uncharacterized transcripts. Preliminary functional analysis of two genes recovered in this screen encoding the transcription factor ZFP67 and the FLJ14451 protein revealed that FLJ14451 but not ZFP67 inhibited anchorage independent growth in soft agar, suggesting that FLJ14451 might have some tumor suppressor functions. In summary, besides identifying a putative tumor suppressor protein, the present experiments have shown that gene trapping is useful in identifying non-coding transcripts in living cells and may turn out to be the method of choice in characterizing these transcripts whose functions are still largely unknown.
Background: Alcohol drinking is associated with a serious risk of developing health problems as well as with a large number of traumatic injuries. Although chronic alcohol misuse is known to contribute to severe inflammatory complications, the effects of an acute alcohol misuse are still unclear. Here, the impact of acute alcohol drinking on leukocyte counts and their cellular functions were studied.
Methods: Twenty-two healthy volunteers (12 female, 10 male) received a predefined amount of a whiskey-cola mixed drink (40% v/v), at intervals of 20 min, over 4 h to achieve a blood alcohol concentration of 1‰. Blood samples were taken before drinking T0, 2 h (T2), 4 h (T4), 6 h (T6), 24 h (T24) and 48 h (T48) after starting drinking alcohol. Leukocytes, monocytes and granulocyte counts and their functions regarding the production of reactive oxidative species (ROS), phagocytosis and apoptosis were analyzed by flow cytometry.
Results: Total leukocyte counts significantly increased at T2 and T4, while granulocyte and monocyte counts decreased at T4 and T6 vs. T0. Monocytes increased significantly at T24 and T48 vs. T0. While the total number of ROS-producing leukocytes and notably granulocytes significantly increased, in parallel, the intracellular ROS intensity decreased at T2 and T6. The numbers of ROS-positive monocytes have shown a delayed modulation of ROS, with a significant reduction in the total number of ROS-producing cells at T48 and a significantly reduced intracellular ROS-intensity at T24. Phagocyting capacity of leukocytes significantly decreased at T4 and T6. In general leukocytes, and notably granulocytes demonstrated significantly increased early (T2), while monocyte exerted significantly increased late apoptosis (T24 and T48).
Conclusions: Alcohol drinking immediately impacts leukocyte functions, while the impact on monocytes occurs at even later time points. Thus, even in young healthy subjects, alcohol drinking induces immunological changes that are associated with diminished functions of innate immune cells that persist for days.
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.
In large models of neuronal cell death, there is a tight correlation between Cdk5 deregulation and cell-cycle dysfunction. However, pathways that link Cdk5 to the cell cycle during neuronal death are still unclear. We have investigated the molecular events that precede p25/Cdk5-triggered neuronal death using a neuronal cell line that allows inducible p25 expression. In this system, no sign of apoptosis was seen before 24 hours of p25 induction. Thus, at that time, cell-cycle-regulatory proteins were analysed by immunoblotting and some of them showed a significant deregulation. Interestingly, after time-course experiments, the earliest feature correlated with p25 expression was the phosphorylation of the retinoblastoma protein (Rb). Indeed, this phosphorylation was observed 6 hours after p25 induction and was abolished in the presence of a Cdk5 inhibitor, roscovitine, which does not inhibit the usual Rb cyclin-D kinases Cdk4 and Cdk6. Furthermore, analyses of levels and subcellular localization of Cdk-related cyclins did not reveal any change following Cdk5 activation, arguing for a direct effect of Cdk5 activity on Rb protein. This latter result was clearly demonstrated by in vitro kinase assays showing that the p25-Cdk5 complex in our cell system phosphorylates Rb directly without the need for any intermediary kinase activity. Hence, Rb might be an appropriate candidate that connects Cdk5 to cell-cycle deregulation during neuronal cell death.
Background: Histone lysine demethylases (KDMs) are of interest as drug targets due to their regulatory roles in chromatin organization and their tight associations with diseases including cancer and mental disorders. The first KDM inhibitors for KDM1 have entered clinical trials, and efforts are ongoing to develop potent, selective and cell-active ‘probe’ molecules for this target class. Robust cellular assays to assess the specific engagement of KDM inhibitors in cells as well as their cellular selectivity are a prerequisite for the development of high-quality inhibitors. Here we describe the use of a high-content cellular immunofluorescence assay as a method for demonstrating target engagement in cells.
Results: A panel of assays for the Jumonji C subfamily of KDMs was developed to encompass all major branches of the JmjC phylogenetic tree. These assays compare compound activity against wild-type KDM proteins to a catalytically inactive version of the KDM, in which residues involved in the active-site iron coordination are mutated to inactivate the enzyme activity. These mutants are critical for assessing the specific effect of KDM inhibitors and for revealing indirect effects on histone methylation status. The reported assays make use of ectopically expressed demethylases, and we demonstrate their use to profile several recently identified classes of KDM inhibitors and their structurally matched inactive controls. The generated data correlate well with assay results assessing endogenous KDM inhibition and confirm the selectivity observed in biochemical assays with isolated enzymes. We find that both cellular permeability and competition with 2-oxoglutarate affect the translation of biochemical activity to cellular inhibition.
Conclusions: High-content-based immunofluorescence assays have been established for eight KDM members of the 2-oxoglutarate-dependent oxygenases covering all major branches of the JmjC-KDM phylogenetic tree. The usage of both full-length, wild-type and catalytically inactive mutant ectopically expressed protein, as well as structure-matched inactive control compounds, allowed for detection of nonspecific effects causing changes in histone methylation as a result of compound toxicity. The developed assays offer a histone lysine demethylase family-wide tool for assessing KDM inhibitors for cell activity and on-target efficacy. In addition, the presented data may inform further studies to assess the cell-based activity of histone lysine methylation inhibitors.
The lysine-specific demethylase 1 (LSD1) is overexpressed in several cancers including rhabdomyosarcoma (RMS). However, little is yet known about whether or not LSD1 may serve as therapeutic target in RMS. We therefore investigated the potential of LSD1 inhibitors alone or in combination with other epigenetic modifiers such as histone deacetylase (HDAC) inhibitors. Here, we identify a synergistic interaction of LSD1 inhibitors (i.e., GSK690, Ex917) and HDAC inhibitors (i.e., JNJ-26481585, SAHA) to induce cell death in RMS cells. By comparison, LSD1 inhibitors as single agents exhibit little cytotoxicity against RMS cells. Mechanistically, GSK690 acts in concert with JNJ-26481585 to upregulate mRNA levels of the proapoptotic BH3-only proteins BMF, PUMA, BIM and NOXA. This increase in mRNA levels is accompanied by a corresponding upregulation of BMF, PUMA, BIM and NOXA protein levels. Importantly, individual knockdown of either BMF, BIM or NOXA significantly reduces GSK690/JNJ-26481585-mediated cell death. Similarly, genetic silencing of BAK significantly rescues cell death upon GSK690/JNJ-26481585 cotreatment. Also, overexpression of antiapoptotic BCL-2 or MCL-1 significantly protects RMS cells from GSK690/JNJ-26481585-induced cell death. Furthermore, GSK690 acts in concert with JNJ-26481585 to increase activation of caspase-9 and -3. Consistently, addition of the pan-caspase inhibitor N-benzyloxycarbonyl-Val-Ala-Asp-fluoromethylketone (zVAD.fmk) significantly reduces GSK690/JNJ-26481585-mediated cell death. In conclusion, concomitant LSD1 and HDAC inhibition synergistically induces cell death in RMS cells by shifting the ratio of pro- and antiapoptotic BCL-2 proteins in favor of apoptosis, thereby engaging the intrinsic apoptotic pathway. This indicates that combined treatment with LSD1 and HDAC inhibitors is a promising new therapeutic approach in RMS.
Ligand stimulation of CD95 induces activation of Plk3 followed by phosphorylation of caspase-8
(2016)
Upon interaction of the CD95 receptor with its ligand, sequential association of the adaptor molecule FADD (MORT1), pro-forms of caspases-8/10, and the caspase-8/10 regulator c-FLIP leads to the formation of a death-inducing signaling complex. Here, we identify polo-like kinase (Plk) 3 as a new interaction partner of the death receptor CD95. The enzymatic activity of Plk3 increases following interaction of the CD95 receptor with its ligand. Knockout (KO) or knockdown of caspase-8, CD95 or FADD prevents activation of Plk3 upon CD95 stimulation, suggesting a requirement of a functional DISC for Plk3 activation. Furthermore, we identify caspase-8 as a new substrate for Plk3. Phosphorylation occurs on T273 and results in stimulation of caspase-8 proapoptotic function. Stimulation of CD95 in cells expressing a non-phosphorylatable caspase-8-T273A mutant in a rescue experiment or in Plk3-KO cells generated by CRISPR/Cas9 reduces the processing of caspase-8 prominently. Low T273 phosphorylation correlates significantly with low Plk3 expression in a cohort of 95 anal tumor patients. Our data suggest a novel mechanism of kinase activation within the Plk family and propose a new model for the stimulation of the extrinsic death pathway in tumors with high Plk3 expression.
ADAM15, which belongs to the family of the disintegrin and metalloproteinases, is a multi-domain transmembrane protein. A strongly upregulated expression of ADAM15 is found in inflamed synovial membranes from articular joints affected by osteoarthritis and especially rheumatoid arthritis (RA). During the chronic inflammatory process in RA the synovial membrane gets hyperplastic, resulting eventually in the formation of a pannus tissue, which can invade into the adjacent cartilage and bone thereby destroying their integrity. Previously, the expression of ADAM15 in fibroblasts of the RA synovial membrane was found to confer a significant anti-apoptotic response upon triggering of the Fas receptor, which resulted in the activation of two survival kinases, focal adhesion kinase (FAK) and Src. The Fas receptor, also named CD95, belongs to the death receptor family of the tumor necrosis factor receptors and stimulation of Fas/CD95 by its ligand FasL results in the execution of apoptotic cell death in synovial membranes of RA patients. However, the occurrence of apoptotic cell death in vivo in RA synovial tissues is considerably low despite the presence of FasL at high concentrations in the chronically inflamed joint. Accordingly, a general apoptosis resistance is a characteristic of RA-synovial fibroblasts that contributes considerably to the formation the hyperplastic aggressive pannus tissue. The objective of this study was to investigate the mechanisms underlying the capability of ADAM15 to transform FasL-mediated death- inducing signals into pro-survival activation of Src and FAK in rheumatoid arthritis fibroblasts (RASFs).
In the present study, the down-regulation of ADAM15 by RNA interference resulted in a significant increase of caspase 3/7 activity upon stimulation of the Fas receptor in RASFs. Likewise, chondrocytes expressing a deletion mutant of ADAM15 (ΔC), lacking the cytoplasmic domain, revealed increased caspase activities upon Fas ligation in comparison to cells transfected with full-length ADAM15, clearly demonstrating the importance of the cytoplasmic domain for an increased apoptosis resistance. Furthermore, activation of the Fas receptor triggered the phosphorylation of Src at Y416, which results in the active conformation of Src, as well as the phosphorylation of FAK at Y576/577 and Y861 – the target tyrosines phosphorylated by Src - in full-length ADAM15-transfected chondrocytes. However, cells transfected with ADAM15 mutant (ΔC) or with vector control did not exhibit any activation of Src and FAK upon Fas ligation. This suggested the presence of an as yet unknown protein interaction mediating the Fas triggered activation of the two kinases.
In order to identify this mechanism, the application of signal transduction inhibitors interfering with Calcium signaling either by inhibiting calmodulin with trifluoperazine (TFP) or the Calcium release-activated channel (CRAC/Orai1) with BTP-2 efficiently inhibited the phosphorylation of FAK and Src, revealing a role of calmodulin, the major Ca2+ sensor in cells, in ADAM15-dependent and Fas-elicited activation of the two survival kinases. Also, a direct Ca2+ -dependent binding of calmodulin to ADAM15 could be demonstrated by pull-down assays using calmodulin-conjugated sepharose and by protein binding assays using the recombinant cytoplasmic domain of ADAM15 and calmodulin.
Furthermore, it could be demonstrated in living synovial fibroblasts by double immunofluorescence stainings that triggering the Fas receptor by its ligand FasL or a Fas-activating antibody resulted in the recruitment of calmodulin to ADAM15 as well as to the Fas receptor in patch-like structures at the cell membrane. Simultaneously, Src associated with calmodulin was shown to become engaged in an ADAM15 complex, also containing cytoplasmic-bound FAK, by co-immunoprecipitations.
Additional studies were performed to analyze the efficacy of TFP and BTP-2 on apoptosis induction in synovial fibroblasts from 10 RA patients. Using caspase 3/7 and annexin V stainings for determining apoptosis, it could be shown that both inhibitors did not possess any apoptosis inducing capacity. However, when co-incubated with FasL both compounds synergistically enhanced apoptosis rates in the RASFs. Moreover, an additional silencing of ADAM15 revealed a further significant rise in apoptosis rates upon incubation with FasL/TFP or FasL/BTP-2, providing unequivocal evidence for an involvement of ADAM15 in facilitating apoptosis resistance in RASFs.
Taken together, these results demonstrate that ADAM15 provides a scaffold for the formation of calmodulin-dependent pro-survival signaling complexes upon CRAC/Orai1 coactivation by Fas ligation, which provides a new potential therapeutic target to break the apoptosis resistance in RASFs that critically contributes to joint destruction in RA.