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Der Tumornekrosefaktor (TNF) entfaltet seine vielfältigen biologischen Aktivitäten durch die Stimulation der beiden TNF-Rezeptoren TNFR1 und TNFR2. Die TNFR1-vermittelte Signaltransduktion ist in vielen Details gut verstanden, wohingegen die TNFR2-vermittelte Signaltransduktion bis heute kaum untersucht ist. Mit Hilfe einer in unserer Gruppe entwickelten hochaktiven TNFR2-spezifischen TNF-Variante sowie einer bereits länger bekannten TNFR1-spezifischen TNF-Variante wurde in dieser Arbeit die TNF-Signaltransduktion insbesondere im Mutiplen Myelom untersucht. Mit Hilfe der beiden TNF-Varianten konnte gezeigt werden, dass die alleinige Stimulation des TNFR2 die Aktivierung des alternativen NFkappaB-Signalweges vermittelt, wohingegen TNFR1 nicht dazu in der Lage ist. So zeigte sich im Einklang mit der inhibitorischen Funktion des Adapterproteins TRAF2 in der Signaltransduktion des alternativen NFkappaB-Signalweges, dass die TNFR2-Stimulation in einer TRAF2-Depletion resultiert. Dies führt weiterhin zur Akkumulation von NIK und der Prozessierung von p100 zu seiner aktiven Form p52, den klassischen biochemisch nachweisbaren Ereignissen der Aktivierung des alternativen NFkappaB-Signalweges. Aufgrund der Rolle des NFkappaB-Systems im Multiplen Myelom (MM) und der stimulierenden Wirkung des TNFR1 und TNFR2 auf das NFkappaB-System wurde die Expression und Funktion dieser beiden Rezeptoren auf Myelomzelllinien untersucht. Insbesondere wurde analysiert, welchen Effekt eine spezifische Stimulation der beiden TNF-Rezeptoren auf die apoptotische Sensitivität von Myelomzellen hat. Mit einer Ausnahme wiesen alle untersuchten Myelomzelllinien eine eindeutige TNFR2-Oberflächenexpression auf, die TNFR1-Expression hingegen war heterogen. Die TNFR1-Stimulation in den TNFR1-positiven Zelllinien zeigte keinen wesentlichen Einfluss auf die Zellviabilität. Allerdings resultierte eine Vorstimulation mit TNF in einer gesteigerten Sensitivität für den CD95L-induzierten Zelltod, schützte aber gleichzeitig vor der TRAIL-vermittelten Induktion der Apoptose. Der gegenläufige Effekt der TNF-Vorstimulation auf den CD95L- und TRAIL-induzierten Zelltod konnte auf die Hochregulation der CD95-Oberflächenexpression und der gesteigerten Expression des antiapoptotischen cFLIPLong-Proteins zurückgeführt werden. Beide Effekte basieren auf der TNF-induzierten Aktivierung des klassischen NFkappaB-Signalweges. Im CD95L-induzierten Zelltod überkompensierte die Induktion der CD95-Expression offensichtlich die Hochregulation von cFLIPLong und resultierte in gesteigertem Zelltod. Der TRAIL-induzierte Zelltod hingegen wurde durch die TNF-Vorstimulation abgeschwächt, da hier lediglich die durch den klassischen NFkappaB-Signalweg vermittelte gesteigerte Expression des antiapoptotischen cFLIPLong eine Rolle spielte. Desweiteren zeigten die Analysen in dieser Arbeit, dass die TNFR2-Stimulation zu einer Depletion von TRAF2 und z. B. in JJN3-Zellen zu einer Sensitivierung für den TNFR1-induzierten Zelltod führte. Die Ergebnisse dieser Arbeit zeigten in der Summe somit, dass das TNF-TNFR-Signaling durch verschiedene Mechanismen Einfluss auf den Ausgang der extrinsischen Apoptoseinduktion hat, und dass der Effekt von TNF auf das Überleben von MM-Zellen kontextabhängig ist.
Multiple myeloma (MM) displays an NFκB activity-related gene expression signature and about 20% of primary MM samples harbor genetic alterations conducive to intrinsic NFκB signaling activation. The relevance of blocking the classical versus the alternative NFκB signaling pathway and the molecular execution mechanisms involved, however, are still poorly understood. Here, we comparatively tested NFκB activity abrogation through TPCA-1 (an IKK2 inhibitor), BAY 11-7082 (an IKK inhibitor poorly selective for IKK1 and IKK2), and MLN4924 (an NEDD8 activating enzyme (NAE)-inhibitor), and analyzed their anti-MM activity. Whereas TPCA-1 interfered selectively with activation of the classical NFκB pathway, the other two compounds inhibited classical and alternative NFκB signaling without significant discrimination. Noteworthy, whereas TPCA-1 and MLN4924 elicited rather mild anti-MM effects with slight to moderate cell death induction after 1 day BAY 11-7082 was uniformly highly toxic to MM cell lines and primary MM cells. Treatment with BAY 11-7082 induced rapid cell swelling and its initial effects were blocked by necrostatin-1 or the ROS scavenger BHA, but a lasting protective effect was not achieved even with additional blockade of caspases. Because MLN4924 inhibits the alternative NFκB pathway downstream of IKK1 at the level of p100 processing, the quite discordant effects between MLN4924 and BAY 11-7082 must thus be due to blockade of IKK1-mediated NFκB-independent necrosis-inhibitory functions or represent an off-target effect of BAY 11-7082. In accordance with the latter, we further observed that concomitant knockdown of IKK1 and IKK2 did not have any major short-term adverse effect on the viability of MM cells.
Drug resistance is a significant obstacle in cancer treatment and therefore a frequent subject of research. Developed or primary resistance limits the treatment success of inhibitors of the B cell receptor (BCR) pathway in mantle cell lymphoma (MCL) patients. Recent research has highlighted the role of the nuclear factor-kappa B (NF kappa B) pathway in the context of resistance to BCR inhibitors in MCL. In this study, we analyzed the dependency of MCL cell lines on NF kappa B signaling and illustrated the ability of CD40L to activate the alternative NF kappa B pathway in MCL. This activation leads to independency of classical NF kappa B signaling and results in resistance to BCR inhibitors. Therefore, ligands (such as CD40L) and their activation of the alternative NF kappa B pathway have a major impact on the drug response in MCL. Furthermore, this study indicates a protective role for cells expressing specific ligands as microenvironmental niches for MCL cells and underlines the significance of therapeutically targeting alternative NF kappa B signaling in MCL.
Altered features of tumor cells acquired across therapy can result in the survival of treatment-resistant clones that may cause minimal residual disease (MRD). Despite the efficacy of ibrutinib in treating relapsed/refractory mantle cell lymphoma, the obstacle of residual cells contributes to relapses of this mature B-cell neoplasm, and the disease remains incurable. RNA-seq analysis of an ibrutinib-sensitive mantle cell lymphoma cell line following ibrutinib incubation of up to 4 d, corroborated our previously postulated resistance mechanism of a metabolic switch to reliance on oxidative phosphorylation (OXPHOS) in surviving cells. Besides, we had shown that treatment-persisting cells were characterized by increased CD52 expression. Therefore, we hypothesized that combining ibrutinib with another agent targeting these potential escape mechanisms could minimize the risk of survival of ibrutinib-resistant cells. Concomitant use of ibrutinib with OXPHOS-inhibitor IACS-010759 increased toxicity compared to ibrutinib alone. Targeting CD52 was even more efficient, as addition of CD52 mAb in combination with human serum following ibrutinib pretreatment led to rapid complement-dependent-cytotoxicity in an ibrutinib-sensitive cell line. In primary mantle cell lymphoma cells, a higher toxic effect with CD52 mAb was obtained, when cells were pretreated with ibrutinib, but only in an ibrutinib-sensitive cohort. Given the challenge of treating multi-resistant mantle cell lymphoma patients, this work highlights the potential use of anti-CD52 therapy as consolidation after ibrutinib treatment in patients who responded to the BTK inhibitor to achieve MRD negativity and prolong progression-free survival.
Mantle cell lymphoma and other lymphoma subtypes often spread to the bone marrow, and stromal interactions mediated by focal adhesion kinase frequently enhance survival and drug resistance of the lymphoma cells. To study the role of focal adhesion kinase in mantle cell lymphoma, immunohistochemistry of primary cases and functional analysis of mantle cell lymphoma cell lines and primary mantle cell lymphoma cells co-cultured with bone marrow stromal cells (BMSC) using small molecule inhibitors and RNAi-based focal adhesion kinase silencing was performed. We showed that focal adhesion kinase is highly expressed in bone marrow infiltrates of mantle cell lymphoma and in mantle cell lymphoma cell lines. Stroma-mediated activation of focal adhesion kinase led to activation of multiple kinases (AKT, p42/44 and NF-kappa B), that are important for prosurvival and proliferation signaling. Interestingly, RNAi-based focal adhesion kinase silencing or inhibition with small molecule inhibitors (FAKi) resulted in blockage of targeted cell invasion and induced apoptosis by inactivation of multiple signaling cascades, including the classic and alternative NF-kappa B pathway. In addition, the combined treatment of ibrutinib and FAKi was highly synergistic, and ibrutinib resistance of mantle cell lymphoma could be overcome. These data demonstrate that focal adhesion kinase is important for stroma-mediated survival and drug resistance in mantle cell lymphoma, providing indications for a targeted therapeutic strategy.