TY - JOUR A1 - Siegmund, Daniela A1 - Zaitseva, Olena A1 - Wajant, Harald T1 - Fn14 and TNFR2 as regulators of cytotoxic TNFR1 signaling JF - Frontiers in Cell and Developmental Biology N2 - Tumor necrosis factor (TNF) receptor 1 (TNFR1), TNFR2 and fibroblast growth factor-inducible 14 (Fn14) belong to the TNF receptor superfamily (TNFRSF). From a structural point of view, TNFR1 is a prototypic death domain (DD)-containing receptor. In contrast to other prominent death receptors, such as CD95/Fas and the two TRAIL death receptors DR4 and DR5, however, liganded TNFR1 does not instruct the formation of a plasma membrane-associated death inducing signaling complex converting procaspase-8 into highly active mature heterotetrameric caspase-8 molecules. Instead, liganded TNFR1 recruits the DD-containing cytoplasmic signaling proteins TRADD and RIPK1 and empowers these proteins to trigger cell death signaling by cytosolic complexes after their release from the TNFR1 signaling complex. The activity and quality (apoptosis versus necroptosis) of TNF-induced cell death signaling is controlled by caspase-8, the caspase-8 regulatory FLIP proteins, TRAF2, RIPK1 and the RIPK1-ubiquitinating E3 ligases cIAP1 and cIAP2. TNFR2 and Fn14 efficiently recruit TRAF2 along with the TRAF2 binding partners cIAP1 and cIAP2 and can thereby limit the availability of these molecules for other TRAF2/cIAP1/2-utilizing proteins including TNFR1. Accordingly, at the cellular level engagement of TNFR2 or Fn14 inhibits TNFR1-induced RIPK1-mediated effects reaching from activation of the classical NFκB pathway to induction of apoptosis and necroptosis. In this review, we summarize the effects of TNFR2- and Fn14-mediated depletion of TRAF2 and the cIAP1/2 on TNFR1 signaling at the molecular level and discuss the consequences this has in vivo. KW - apoptosis KW - Fn14 KW - necroptosis KW - TNF KW - TNFR1 KW - TNFR2 KW - TRAF2 KW - TWEAK Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-354304 SN - 2296-634X VL - 11 ER - TY - JOUR A1 - Zaitseva, Olena A1 - Hoffmann, Annett A1 - Otto, Christoph A1 - Wajant, Harald T1 - Targeting fibroblast growth factor (FGF)-inducible 14 (Fn14) for tumor therapy JF - Frontiers in Pharmacology N2 - Fibroblast growth factor-inducible 14 (Fn14) is a member of the tumor necrosis factor (TNF) receptor superfamily (TNFRSF) and is activated by its ligand TNF-like weak inducer of apoptosis (TWEAK). The latter occurs as a homotrimeric molecule in a soluble and a membrane-bound form. Soluble TWEAK (sTWEAK) activates the weakly inflammatory alternative NF-κB pathway and sensitizes for TNF-induced cell death while membrane TWEAK (memTWEAK) triggers additionally robust activation of the classical NF-κB pathway and various MAP kinase cascades. Fn14 expression is limited in adult organisms but becomes strongly induced in non-hematopoietic cells by a variety of growth factors, cytokines and physical stressors (e.g., hypoxia, irradiation). Since all these Fn14-inducing factors are frequently also present in the tumor microenvironment, Fn14 is regularly found to be expressed by non-hematopoietic cells of the tumor microenvironment and most solid tumor cells. In general, there are three possibilities how the tumor-Fn14 linkage could be taken into consideration for tumor therapy. First, by exploitation of the cancer associated expression of Fn14 to direct cytotoxic activities (antibody-dependent cell-mediated cytotoxicity (ADCC), cytotoxic payloads, CAR T-cells) to the tumor, second by blockade of potential protumoral activities of the TWEAK/Fn14 system, and third, by stimulation of Fn14 which not only triggers proinflammtory activities but also sensitizes cells for apoptotic and necroptotic cell death. Based on a brief description of the biology of the TWEAK/Fn14 system and Fn14 signaling, we discuss the features of the most relevant Fn14-targeting biologicals and review the preclinical data obtained with these reagents. In particular, we address problems and limitations which became evident in the preclinical studies with Fn14-targeting biologicals and debate possibilities how they could be overcome. KW - agonistic antibodies KW - cell death KW - Fn14 KW - NFκB KW - TNF KW - TWEAK Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-290238 SN - 1663-9812 VL - 13 ER - TY - JOUR A1 - Vargas, Juan Gamboa A1 - Wagner, Jennifer A1 - Shaikh, Haroon A1 - Lang, Isabell A1 - Medler, Juliane A1 - Anany, Mohamed A1 - Steinfatt, Tim A1 - Mosca, Josefina Peña A1 - Haack, Stephanie A1 - Dahlhoff, Julia A1 - Büttner-Herold, Maike A1 - Graf, Carolin A1 - Viera, Estibaliz Arellano A1 - Einsele, Hermann A1 - Wajant, Harald A1 - Beilhack, Andreas T1 - A TNFR2-Specific TNF fusion protein with improved in vivo activity JF - Frontiers in Immunology N2 - Tumor necrosis factor (TNF) receptor-2 (TNFR2) has attracted considerable interest as a target for immunotherapy. Indeed, using oligomeric fusion proteins of single chain-encoded TNFR2-specific TNF mutants (scTNF80), expansion of regulatory T cells and therapeutic activity could be demonstrated in various autoinflammatory diseases, including graft-versus-host disease (GvHD), experimental autoimmune encephalomyelitis (EAE) and collagen-induced arthritis (CIA). With the aim to improve the in vivo availability of TNFR2-specific TNF fusion proteins, we used here the neonatal Fc receptor (FcRn)-interacting IgG1 molecule as an oligomerizing building block and generated a new TNFR2 agonist with improved serum retention and superior in vivo activity. Methods Single-chain encoded murine TNF80 trimers (sc(mu)TNF80) were fused to the C-terminus of an in mice irrelevant IgG1 molecule carrying the N297A mutation which avoids/minimizes interaction with Fcγ-receptors (FcγRs). The fusion protein obtained (irrIgG1(N297A)-sc(mu)TNF80), termed NewSTAR2 (New selective TNF-based agonist of TNF receptor 2), was analyzed with respect to activity, productivity, serum retention and in vitro and in vivo activity. STAR2 (TNC-sc(mu)TNF80 or selective TNF-based agonist of TNF receptor 2), a well-established highly active nonameric TNFR2-specific variant, served as benchmark. NewSTAR2 was assessed in various in vitro and in vivo systems. Results STAR2 (TNC-sc(mu)TNF80) and NewSTAR2 (irrIgG1(N297A)-sc(mu)TNF80) revealed comparable in vitro activity. The novel domain architecture of NewSTAR2 significantly improved serum retention compared to STAR2, which correlated with efficient binding to FcRn. A single injection of NewSTAR2 enhanced regulatory T cell (Treg) suppressive activity and increased Treg numbers by > 300% in vivo 5 days after treatment. Treg numbers remained as high as 200% for about 10 days. Furthermore, a single in vivo treatment with NewSTAR2 upregulated the adenosine-regulating ectoenzyme CD39 and other activation markers on Tregs. TNFR2-stimulated Tregs proved to be more suppressive than unstimulated Tregs, reducing conventional T cell (Tcon) proliferation and expression of activation markers in vitro. Finally, singular preemptive NewSTAR2 administration five days before allogeneic hematopoietic cell transplantation (allo-HCT) protected mice from acute GvHD. Conclusions NewSTAR2 represents a next generation ligand-based TNFR2 agonist, which is efficiently produced, exhibits improved pharmacokinetic properties and high serum retention with superior in vivo activity exerting powerful protective effects against acute GvHD. KW - agonist KW - GvHD KW - regulatory T cells KW - serum retention KW - TNF KW - TNFR2 Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-277436 SN - 1664-3224 VL - 13 ER - TY - JOUR A1 - Wajant, Harald A1 - Siegmund, Daniela T1 - TNFR1 and TNFR2 in the control of the life and death balance of macrophages JF - Frontiers in Cell and Developmental Biology N2 - Macrophages stand in the first line of defense against a variety of pathogens but are also involved in the maintenance of tissue homeostasis. To fulfill their functions macrophages sense a broad range of pathogen- and damage-associated molecular patterns (PAMPs/DAMPs) by plasma membrane and intracellular pattern recognition receptors (PRRs). Intriguingly, the overwhelming majority of PPRs trigger the production of the pleiotropic cytokine tumor necrosis factor-alpha (TNF). TNF affects almost any type of cell including macrophages themselves. TNF promotes the inflammatory activity of macrophages but also controls macrophage survival and death. TNF exerts its activities by stimulation of two different types of receptors, TNF receptor-1 (TNFR1) and TNFR2, which are both expressed by macrophages. The two TNF receptor types trigger distinct and common signaling pathways that can work in an interconnected manner. Based on a brief general description of major TNF receptor-associated signaling pathways, we focus in this review on research of recent years that revealed insights into the molecular mechanisms how the TNFR1-TNFR2 signaling network controls the life and death balance of macrophages. In particular, we discuss how the TNFR1-TNFR2 signaling network is integrated into PRR signaling. KW - apoptosis KW - necroptosis KW - TNF KW - TNFR1 KW - TNFR2 KW - ripk1 KW - ripk3 KW - caspase-8 Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-201551 VL - 7 IS - 91 ER - TY - JOUR A1 - Carmona Arana, José Antonio A1 - Seher, Axel A1 - Neumann, Manfred A1 - Lang, Isabell A1 - Siegmund, Daniela A1 - Wajant, Harald T1 - TNF Receptor-Associated Factor 1 is a Major Target of Soluble TWEAK JF - Frontiers in Immunology N2 - Soluble tumor necrosis factor (TNF)-like weak inducer of apoptosis (TWEAK), in contrast to membrane TWEAK and TNF, is only a weak activator of the classical NFκB pathway. We observed that soluble TWEAK was regularly more potent than TNF with respect to the induction of TNF receptor-associated factor 1 (TRAF1), a NFκB-controlled signaling protein involved in the regulation of inflammatory signaling pathways. TNF-induced TRAF1 expression was efficiently blocked by inhibition of the classical NFκB pathway using the IKK2 inhibitor, TPCA1. In contrast, in some cell lines, TWEAK-induced TRAF1 production was only partly inhibited by TPCA1. The NEDD8-activating enzyme inhibitor MLN4924, however, which inhibits classical and alternative NFκB signaling, blocked TNF- and TWEAK-induced TRAF1 expression. This suggests that TRAF1 induction by soluble TWEAK is based on the cooperative activity of the two NFκB signaling pathways. We have previously shown that oligomerization of soluble TWEAK results in ligand complexes with membrane TWEAK-like activity. Oligomerization of soluble TWEAK showed no effect on the dose response of TRAF1 induction, but potentiated the ability of soluble TWEAK to trigger production of the classical NFκB-regulated cytokine IL8. Transfectants expressing soluble TWEAK and membrane TWEAK showed similar induction of TRAF1 while only the membrane TWEAK expressing cells robustly stimulated IL8 production. These data indicate that soluble TWEAK may efficiently induce a distinct subset of the membrane TWEAK-targeted genes and argue again for a crucial role of classical NFκB pathway-independent signaling in TWEAK-induced TRAF1 expression. Other TWEAK targets, which can be equally well induced by soluble and membrane TWEAK, remain to be identified and the relevance of the ability of soluble TWEAK to induce such a distinct subset of membrane TWEAK-targeted genes for TWEAK biology will have to be clarified in future studies. KW - RAF1 KW - TWEAK KW - TNF KW - NFκB KW - CD40 Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-120620 SN - 1664-3224 VL - 5 IS - 63 ER - TY - THES A1 - Wyzgol, Agnes T1 - Generierung und Charakterisierung rekombinanter TNF-Liganden T1 - Generation and characterisation of recombinant TNF-ligands N2 - Liganden und Rezeptoren der TNF-Familie regulieren eine Vielzahl zellulärer Prozesse, darunter Apoptose und Immunprozesse. TNF-Liganden kommen in Form löslicher und membranständiger trimerer Moleküle vor, wobei die trimere Organisation durch die konservierte THD vermittelt wird. Im Gegensatz zu den membranständigen Molekülen können lösliche TNF-Liganden nicht immer an ihren TNF-Rezeptor binden oder ihn effektiv aktivieren. Für zwei solcher inaktiven TNF-Liganden, nämlich TRAIL und CD95L, konnte gezeigt werden, dass durch sekundäre Oligomerisierung oder durch artifizielle Herstellung einer Membranständigkeit mittels Antikörperdomänen gegen zelloberflächenexprimierte Proteine hochaktive Ligandenvarianten generiert werden können. Inwieweit sich diese Verfahren auf die T-Zell-kostimulatorischen TNF-Liganden OX40L, 41BBL und CD27L übertragen lassen, wurde in dieser Arbeit untersucht. Lösliche Flag- und Flag-TNC-Varianten von OX40L und 41BBL zeigten eine gute Bindung an die Rezeptoren OX40 und 41BB. Die lösliche Variante Flag-CD27L konnte nicht an ihren Rezeptor CD27 binden. Dies war aber nach Einführung der trimerstabilisierenden TNC-Domäne möglich. Eine effektive Aktivierung ihres Rezeptors, nachgewiesen durch Analyse der IL8-Induktion, bewirkten die löslichen TNF-Ligandenvarianten nur nach sekundärer Oligomerisierung mittels des Flag-spezifischen Antikörpers M2. Eine ähnlich gute TNFR-Aktivierung ließ sich durch Einführung der hexamerisierenden Fc-Domäne erzielen. Fc-Flag-OX40L und Fc-Flag-41BBL induzierten bereits ohne sekundäre Quervernetzung effektiv IL8. Die Hexamerisierung alleine reichte für die lösliche CD27L-Variante nicht aus, hier war zusätzlich zur Fc- wiederum auch die TNC-Domäne erforderlich, um die Bindung an CD27 und eine schwache IL8-Induktion zu erzielen. Für die FAP-bindenden Fusionsproteine antiFAP-Flag- OX40L, antiFAP-Flag-41BBL und antiFAP-Flag-TNC-CD27L war die Bindung an OX40, 41BB und CD27 sowie an FAP nachweisbar. Erst durch die artifizielle Membranständigkeit nach Bindung an FAP konnten diese Fusionsproteine über ihren Rezeptor effektiv IL8 induzieren. Zusammenfassend ließ sich somit zeigen, dass sich schwach oder nicht aktive lösliche Ligandenvarianten von OX40L und 41BBL durch sekundäre Oligomerisierung, durch die Fc-Hexamerisierungsdomäne und durch artifizielle Membranständigkeit in hochaktive Liganden verwandeln lassen. Lösliche CD27L-Varianten benötigen zusätzlich die trimerstabilisierende TNC-Domäne, um CD27 binden und aktivieren zu können. Für das bessere Verständnis der Ligand-Rezeptor-Interaktionen wurden zusätzlich OX40L-, 41BBL- und CD27L-Fusionsproteine mit der hochaktiven Gaussia princeps Luziferase (GpL) generiert, um Gleichgewichtsbindungs-, Dissoziationsstudien und homologe Kompetitionsassays durchführen zu können. Für die Fusionsproteine GpL-Flag-TNC-OX40L, GpL-Flag-TNC-41BBL und GpL-Flag-TNC-CD27L konnte gezeigt werden, dass die IL8-Induktion nicht von der Rezeptorbelegung abhängt, sondern von der sekundären Oligomerisierung, da bei gleicher Rezeptorbelegung durch sekundär quervernetzte TNF-Liganden mehr IL8 induziert wird, die Rezeptoraktivierung also qualitativ besser sein muss. N2 - Ligands and receptors of the TNF family regulate diverse cellular processes such as apoptosis and immune processes. TNF ligands are soluble or membrane-bound molecules with a trimeric organization mediated by the conservative THD. Unlike the membrane-bound molecules soluble TNF ligands may fail in binding or in activating their receptor efficiently. It was shown for two such inactive TNF ligands, namely TRAIL and CD95L that highly active ligand variants could be generated with secondary oligomerization or artificial cell surface immobilization through antibody domains recognizing cell surface expressed proteins. In this work it was examined if these procedures are also applicable to the T cell costimulating TNF ligands OX40L, 41BBL and CD27L. Soluble Flag- and Flag-TNC-variants of OX40L and 41BBL showed good binding to their receptors OX40 and 41BB. The soluble variant Flag-CD27L did not bind its receptor CD27 while that was possible after introduction of the trimer stabilizing TNC-domain. An effective receptor-activation proved by analysis of the induction of IL8 was gained by soluble TNF ligand variants only after secondary oligomerization with the Flag-specific antibody M2. A similar efficient TNFR-activation was achieved by introduction of a hexamerizing Fc-domain. Fc-Flag-OX40L and Fc-Flag-41BBL induced already without secondary cross-linking efficiently IL8. For the soluble CD27L-variant hexamerization alone was not sufficient, but the Fc-domain was necessary in addition to the TNC-domain to enable binding to CD27 and weak induction of IL8. For the FAP-binding fusion proteins antiFAP-Flag-OX40L, antiFAP-Flag-41BBL and antiFAP-Flag-TNC-CD27L binding to OX40, 41BB and CD27 as well as to FAP was detectable. These fusion proteins were able to induce IL8 efficiently via their receptor only as artificial membrane-bound molecules after binding to FAP. In summary, it has been shown that poorly or not active soluble ligand-variants of OX40L and 41BBL can be turned into highly active ligands by secondary oligomerization, by the hexamerizing Fc-domain and by artificial immobilization on the cell surface. Soluble CD27L variants additionally need the trimer-stabilizing TNC-domain to bind and activate CD27. For better understanding of ligand-receptor-interactions additionally OX40L-, 41BBL- and CD27L-fusion proteins with the highly active Gaussia princeps luciferase (GpL) were generated to enable equilibrium binding and dissociation studies as well as homologous competition assays. It was shown here with the fusion proteins GpL-Flag-TNC-OX40L, GpLFlag-TNC-41BBL and GpL-Flag-TNC-CD27L that induction of IL8 is independent of receptor occupancy, but depends on secondary oligomerization. Secondary cross-linked TNF ligands induced more IL8 with equal receptor occupancy. Therefore a qualitative better receptor activation has to be assumed. KW - Tumor-Nekrose-Faktor KW - Ligand KW - TNF KW - Kostimulatorische Faktoren KW - TNF KW - costimulatory factors Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-76449 ER - TY - THES A1 - Rauert-Wunderlich, Hilka T1 - Apoptoseregulation durch TNF im Multiplen Myelom T1 - Regulation of apoptosis via TNF in multiple myeloma N2 - 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. N2 - TNF mediates its biological functions by stimulation of the two TNF receptors TNFR1 and TNFR2. TNFR1-mediated signaling has already been studied in detail, whereas TNFR2-mediated signal transduction is poorly understood. In this work a newly developed TNFR2-specific variant and an established TNFR1-specific variant was used to study TNF signaling especially in myeloma cells. With the help of these TNF-variants it is shown here that TNFR2, but not TNFR1, induces activation of the alternative NFkappaB-pathway. Thus in consent with the inhibitory function of TRAF2 in alternative NFkappaB signal transduction, stimulation of TNFR2 resulted in depletion of TRAF2, accumulation of NIK and p100 processing to p52, the biochemical hallmarks of this pathway. Due to the relevance of the NFkappaB-system for multiple myeloma (MM) and the NFkappaB stimulatory activities of TNFR1 and TNFR2, the expression of these two receptors and their effect on apoptotic sensitivity was analyzed in myeloma cell lines. A huge majority of myeloma cell lines express TNFR2 whereas TNFR1 expression is rather restricted. Stimulation of TNFR1 in the TNFR1-positive subset of MM cell lines showed nearly no impact on cellular viability. However, TNF stimulation enhanced CD95L-induced cell death and in parallel reduced the TRAIL-mediated induction of apoptosis. This opposed regulation of TRAIL- and CD95L-induced cell death by TNF based on upregulation of the death receptor CD95 via the classical NFkappaB-pathway and by upregulation of the antiapoptotic protein cFLIPLong via the same pathway. The induction of CD95 expression appeared to overcompensate the upregulation of cFLIPLong and consequently TNF-induced NFkappaB activation resulted, in context of CD95 signaling, in apoptosis enhancement. TRAIL-mediated cell death induction, however, was reduced after TNF prestimulation, due to the fact that here only upregulation of cFLIPLong was relevant. Furthermore the experiments in this study showed that TNFR2-mediated depletion of TRAF2 resulted in a sensitization for TNFR1-induced cell death, for example in JJN3-cells. Taken together, this study revealed that the TNF-TNFR system influenced the outcome of activation of the extrinsic apoptotic pathway in myeloma cells by various mechanisms and the effect of TNF on MM cell survival is thus context dependent. KW - Apoptosis KW - Tumor-Nekrose-Faktor KW - Plasmozytom KW - apoptosis KW - TNF KW - multiple myeloma Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-73998 ER - TY - JOUR A1 - Rauert, H. A1 - Stühmer, T. A1 - Bargou, R. A1 - Wajant, H. A1 - Siegmund, D. T1 - TNFR1 and TNFR2 regulate the extrinsic apoptotic pathway in myeloma cells by multiple mechanisms JF - Cell Death and Disease N2 - The huge majority of myeloma cell lines express TNFR2 while a substantial subset of them failed to show TNFR1 expression. Stimulation of TNFR1 in the TNFR1-expressing subset of MM cell lines had no or only a very mild effect on cellular viability. Surprisingly, however, TNF stimulation enhanced cell death induction by CD95L and attenuated the apoptotic effect of TRAIL. The contrasting regulation of TRAIL- and CD95L-induced cell death by TNF could be traced back to the concomitant NFjBmediated upregulation of CD95 and the antiapoptotic FLIP protein. It appeared that CD95 induction, due to its strength, overcompensated a rather moderate upregulation of FLIP so that the net effect of TNF-induced NFjB activation in the context of CD95 signaling is pro-apoptotic. TRAIL-induced cell death, however, was antagonized in response to TNF because in this context only the induction of FLIP is relevant. Stimulation of TNFR2 in myeloma cells leads to TRAF2 depletion. In line with this, we observed cell death induction in TNFR1-TNFR2-costimulated JJN3 cells. Our studies revealed that the TNF-TNF receptor system adjusts the responsiveness of the extrinsic apoptotic pathway in myeloma cells by multiple mechanisms that generate a highly context-dependent net effect on myeloma cell survival KW - apoptosis KW - CD95 KW - multiple myeloma KW - NFkB KW - TNF KW - TRAIL KW - NF-Kappa-B KW - Tumor-necrosis-factor KW - Factor receptor KW - Factor-alpha KW - Activation KW - Polymorphisms KW - Inhibitor KW - Promoter KW - Transcription KW - Expression Y1 - 2011 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-133486 VL - 2 ER - TY - THES A1 - Salzmann, Steffen T1 - Regulation der TNF-Rezeptor Signaltransduktion durch das Zytokin TWEAK T1 - Regulation of the TNF-receptor signaltransduction through the cytokine TWEAK N2 - Das pleiotrope Zytokin TNF (tumor necrosis factor) kann an den TNF-Rezeptor 1 (TNFR1) und den TNF-Rezeptor 2 (TNFR2) binden und mit deren Hilfe seine biologischen Funktionen über verschiedene Signalwege, wie z.B. NFB- und MAPK-Aktivierung bzw. Apop¬toseinduktion, vermitteln. In früheren Arbeiten konnte gezeigt werden, dass die Aktivierung des TNFR2 zur proteasomalen Degradation des Adaterproteins TRAF2 führt und dadurch die TNFR1-induzierte Apoptose verstärkt wird. TWEAK (tumor necrosis like weak inducer of apoptosis), das ebenfalls der TNF-Ligandenfamilie angehört und die Interaktion mit dessen Rezeptor Fn14 (fibroblast growth factor-inducible 14), der wie der TNFR2 zur Untergruppe der TRAF-bindenden Rezeptoren der TNF-Rezeptorfamilie gehört, zeigten in verschiedenen Arbeiten auch eine TRAF2-degradierende Wirkung. In der vorliegenden Arbeit konnte nun gezeigt werden, dass dies auch im Falle des TWEAK/Fn14-Systems mit einem verstärkenden Effekt auf die TNFR1-vermittelte Apoptose einhergeht. Darüber hinaus konnte gezeigt werden, dass TWEAK zusätzlich auch die TNFR1-induzierte Nekrose verstärkt, die den Zelltod durch andere Mechanismen als bei der Apoptose induziert. Von anderen Arbeiten unserer Gruppe war bekannt, dass lösliches TWEAK (sTWEAK) und membranständiges TWEAK (mTWEAK) bezüglich der TRAF2-Depletion wirkungs¬gleich sind. Da der apoptotische Fn14-TNFR1-„crosstalk“ auf der Depletion von TRAF2-Komplexen beruht wurden auch keine signifikanten Unterschiede zwischen sTWEAK und mTWEAK in Bezug auf die Verstärkung der TNFR1-induzierten Apoptose beobachtet. Interessanter¬weise zeigte sich in der vorliegenden Arbeit jedoch, dass sTWEAK den klassischen NFB-Signalweg gar nicht bzw. nur schwach aktiviert, wohingegen mTWEAK diesen stark induziert. Bei der Aktivierung des alternativen NFB-Signalweges hingegen ließen sich keine Unterschiede zwischen sTWEAK und mTWEAK erkennen. Die Aktivierung eines Signalweges wird also durch die Oligomerisierung des Liganden nicht moduliert, demgegenüber aber erwies sich die Aktivierung eines anderen Signalweges als stark abhängig von der Liganden-Oligomerisierung. Vor dem Hintergrund, dass das Adapterprotein TRAF1 (TNF-receptor-associated factor 1) Heterotrimere mit TRAF2 bildet, wurde weiterhin untersucht, ob dieses Molekül einen Einfluss auf die Aktivität der TWEAK-induzierten Signalwege hat. Tatsächlich zeigte sich in TRAF1-exprimie¬renden Zellen eine Verstärkung der TWEAK-induzierten Aktivierung des klassischen NFB-Signalweges Zukünftige Studien müssen nun aufklären, inwieweit die hier gefundenen Mecha-nismen das Zusammenspiel von TNF und TWEAK in vivo bestimmen. N2 - The pleiotropic cytokine TNF (tumor necrosis factor) binds to two receptors, TNF-receptor 1 (TNFR1) and TNF-receptor 2 (TNFR2). TNF elicits its biological functions through different signaling pathways, e.g. NFB- and MAPK-activation and induction of apoptosis. Previous studies revealed that activation of TNFR2 leads to protea¬somal degradation of the adaptor protein TRAF2 and enhanced TNFR1-induced apoptosis. TWEAK (tumor necrosis like weak inducer of apoptosis), a member of the TNF-ligand family and Fn14 which belongs like TNFR2 to the TRAF-binding subgroup of the TNF-receptor family, showed also a TRAF2-degrading effect. In the present thesis it is shown that this is also associated with an enhancement of TNFR1-mediated apoptosis. Furthermore, it was shown that TWEAK also amplifies TNFR1-induced necrosis, a form of cell death that is induced independently and by different mechanisms than apoptosis. In earlier studies in our group it was found that soluble TWEAK (sTWEAK) and membrane bound TWEAK (mTWEAK) have the same TRAF2-depleting effect. Because the apoptotic crosstalk of Fn14 and TNFR1 bases on the depletion of TRAF2-containing complexes, there were no significant differences observed between sTWEAK and mTWEAK concerning the enhancement of TNFR1-induced apoptosis. Interestingly, it was shown in this thesis that sTWEAK can activate the classical NFB pathway not or just weak, whereas mTWEAK can do this very efficiently. However there were no differences between sTWEAK and mTWEAK in the activa¬tion of the alternative NFB pathway. Thus the activation of one type of signaling pathway is therefore not modulated through ligand oligomerisation, but in contrast the activation of another pathway turned out to be strongly dependent of ligand oligomerisation. It is known that the adaptor protein TRAF1 (TNF-receptor-associated factor 1) builds heterotrimers with TRAF2. It was furthermore investiga-ted, whether this molecule has an influence on the activity of TWEAK-induced pathways. Actually there was increased activity in TWEAK-mediated classical NFB signaling observed in TRAF1-expressing cells. Further studies have to clarify to which extend the here found mechanisms affect the TNF-TWEAK interplay in vivo. KW - Tumor-Nekrose-Faktor KW - Signaltransduktion KW - TNF KW - TWEAK Y1 - 2010 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-52525 ER -