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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.
Gold nanoparticles of diameter ca. 60 nm have been synthesized based on Turkevich and Frens protocols. We have demonstrated that the carboxyl-modified gold nanoparticles can be coupled covalently with antibodies (Ab) of interest using the EDC/NHS coupling procedure. Binding studies with Ab-grafted AuNPs and GpL fusion proteins proved that conjugation of AuNPs with antibodies enables immobilization of antibodies with preservation of a significant antigen binding capacity. More importantly, our findings showed that the conjugation of types of anti-TNF receptors antibodies such as anti-Fn14 antibodies (PDL192 and 5B6) (Aido et al., 2021), anti-CD40, anti-4-1BB and anti-TNFR2 with gold nanoparticles confers them with potent agonism. Thus, our results suggest that AuNPs can be utilized as a platform to immobilize anti-TNFR antibodies which, on the one hand, helps to enhance their agonistic activity in comparison to “free” inactive antibodies by mimicking the effect of cell-anchored antibodies or membrane-bound TNF ligands and, on the other hand, allows to develop new generations of drug delivery systems. These constructs are characterized with their biocompatibility and their tunable synthesis process.
In a further work part, we combined the benefits of the established system of Ab-AuNPs with materials used widely in the modern biofabrication approaches such as the photo-crosslinked hydrogels, methacrylate-modified gelatin (GelMA), combined with embedded variants of human cell lines. The acquired results demonstrated clearly that the attaching of proteins like antibodies to gold nanoparticles might reduce their release rate from the crosslinked hydrogels upon the very low diffusion of gold nanoparticles from the solid constructs to the surrounding medium yielding long-term local functioning proteins-attached particles. Moreover, our finding suggests that hydrogel-embedded AuNP-immobilized antibodies, e.g. anti-TNFα-AuNPs or anti-IL1-AuNPs enable local inhibitory functions,
To sum up, our results demonstrate that AuNPs can act as a platform to attach anti-TNFR antibodies to enhance their agonistic activity by resembling the output of cell-anchoring or membrane bounding. Gold nanoparticles are considered, thus, as promising tool to develop the next generation of drug delivery systems, which may contribute to cancer therapy. On top of that, the embedding of anti-inflammatory-AuNPs in the biofabricated hydrogel presents new innovative strategy of the treatment of autoinflammatory diseases.
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.
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.
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.
Neutralization or deletion of tumor necrosis factor (TNF) causes loss of control of intracellular pathogens in mice and humans, but the underlying mechanisms are incompletely understood. Here, we found that TNF antagonized alternative activation of macrophages and dendritic cells by IL-4. TNF inhibited IL-4-induced arginase 1 (Arg1) expression by decreasing histone acetylation, without affecting STAT6 phosphorylation and nuclear translocation. In Leishmania major-infected C57BL/6 wild-type mice, type 2 nitric oxide (NO) synthase (NOS2) was detected in inflammatory dendritic cells or macrophages, some of which co-expressed Arg1. In TNF-deficient mice, Arg1 was hyperexpressed, causing an impaired production of NO in situ. A similar phenotype was seen in L. major-infected BALB/c mice. Arg1 deletion in hematopoietic cells protected these mice from an otherwise lethal disease, although their disease-mediating T cell response (Th2, Treg) was maintained. Thus, deletion or TNF-mediated restriction of Arg1 unleashes the production of NO by NOS2, which is critical for pathogen control.
TNFR1 and TNFR2 regulate the extrinsic apoptotic pathway in myeloma cells by multiple mechanisms
(2011)
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
Liganden und Rezeptoren des Körpers spielen eine multifaktorielle Rolle in der Regulierung zellulärer Prozesse des Körpers. Der Tumornekrosefaktor (TNF), ein proinflammatorisches Zytokin, bindet natürlicherweise an zwei Rezeptoren, den TNF-Rezeptor 1 (TNFR1) oder den TNFR-Rezeptor 2 (TNFR2) und kann durch Aktivierung vielfältiger Signalwege unterschiedliche Zelleffekte im Körper auslösen. Während TNF in membrangebundener Form vorkommend TNFR1 sowie TNFR2 optimal stimulieren kann, ist lösliches TNF in der Lage zwar an beide Rezeptoren zu binden, natürlicherweise jedoch nur den TNFR1 zu stimulieren. Da eine unkontrollierte Bindung bzw. Aktivierung von beiden Rezeptoren schwere unerwünschte Nebenwirkungen wie Inflammationen haben kann, wurden zur konkreten Aktivierung der einzelnen Rezeptoren TNFR1 und TNFR2 spezifische TNF-Mutanten, wie TNF80 zur Bindung an TNFR2 und TNF60 zur Bindung an TNFR1 konstruiert. Durch die TNF-Mutante TNF80 gelingt es die TNFR2 Wirkungskette zu aktivieren, während die TNFR1-Stimulation verhindert wird. Die Aktivierung des TNFR2-Rezeptors hat eine Stimulierung von regulatorischen T-Zellen (Tregs) zur Folge.
Im Rahmen dieser Dissertation wurden einerseits die TNF-TNC-Formen weiterentwickelt, indem die konstante Domäne der schweren Antikörperkette des humanen IgG1 (Fc) hinzukloniert wurde. Hier wurde primär der Effekt der Oligomerisierung mit der aktivierenden Wirkung auf TNFR2 erforscht. Weiterhin wird jedoch durch die Bindungsspezifität des Fc-Fusionsproteins von TNF80 an Tregs eine antitumorale Wirkung ausgelöst, indem durch das ausgelöste ADCC die Tregs zerstört werden.
Andererseits wurden Kombinationskonstrukte von TNF80 und IL2 kloniert um die Bindungsspezifität des Fusionsproteins auf TNFR2, ebenso wie den IL2-Rezeptor welcher auf regulatorischen T-Zellen hoch exprimiert wird, herzustellen.
Die spezifische Stimulation von Tregs würde der Therapie von Autoimmunerkrankungen dienen.
In der Abteilung für Molekulare Innere Medizin in Würzburg wurde eine kovalent verknüpfte, nonamere Form von TNF, nämlich eine single-chain-TNF-TNC-Form hergestellt, sodass auch die Aktivierung von TNFR2 durch lösliches TNF möglich ist, was zur klinischen Anwendung (durch Injektionen) notwendig ist.
Nach Klonierung und Produktion der Konstrukte in HEK293-Zellen erfolgte deren Aufreinigung und Quantifizierung. Letztendlich wurde mittels Bindungsstudien die Funktionalität der aufgereinigten Fusionsproteine überprüft.
Zukünftige Studien müssen nun aufklären, ob die IL8-Produktion durch TNF80(h)-Flag-IL2(h) bzw. TNF80(mu)-Flag-IL2(mu) stimuliert wird, nachdem der IL2-Teil der Konstrukte den IL2-Rezeptor gebunden hat.
Regulation Tumornekrosefaktor (TNF) Rezeptor assoziierter Signalwege durch das Adapterprotein TRAF1
(2015)
TWEAK ist ein zu der TNF-Superfamilie (Tumor Necrosis Factor) zugehöriges Zytokin, welches in Form löslicher und membranständiger Moleküle vorkommt. Beide Formen des Liganden können an den Rezeptor (Fn14) binden. Viele verschiedene intrazelluläre Signalwege werden durch den Fn14 aktiviert, beispielweise Erk1/2, JNK, Jun und STAT3, vor allem jedoch das NFkB. Lösliches und membranständiges TWEAK zeigen eine ähnliche Aktivierungseffizienz bezüglich des alternativen NFkB-Signalwegs, wohingegen membranständiges TWEAK weit besser als lösliches TWEAK den klassischen NFkB-Signalweg aktiviert. In der vorliegenden Arbeit wurde zunächst die TWEAK-vermittelte Induzierbarkeit von verschiedenen Zielgenen des NFkB-Systems untersucht. Lösliches TWEAK zeigte einen weit schwächeren aktivierenden Effekt auf den klassischen NFkB-Signalweg als TNF, das ein sehr guter Aktivator des klassischen NFkB-Systems ist (Abb. 5, 6). Nichtsdestotrotz war TWEAK imstande eine stärkere TRAF1-Induktion als TNF herbeizuführen (Abbildung 7, 8). TRAF1 ist ein durch NFkB-System stark reguliertes Gen. Um posttranskriptionelle TRAF1-Modifikationen als Ursache für die unerwartet gute TRAF1-Induktion durch lösliches TWEAK auszuschließen, wurde die TRAF1-Expression nach Proteasom- und Caspasen-Inhibition untersucht (Abbildung 9). Dies ergab keinen Hinweis auf einen Einfluss dieser Prozessen auf der TRAF1-Expression.
Mittels des IKK2-spezifischen Inhibitor TPCA-1 wurde die TWEAK-vermittelte TRAF1-Induktion Zelltyp-abhängig gehemmt, wohingegen die TNF-vermittelte Induktion von TRAF1 in allen Zelllinien vollständig inhibiert wurde (Abbildung 13). Versuche mit dem NEDD8-aktivierenden Enzym (NAE) Inhibitor MLN4924, resultierten in einer totalen Inhibition der TRAF1-Expression in allen TWEAK- und TNF-stimulierten Zellen (Abbildung 14). Diese Befunde sprechen dafür, dass bei der TWEAK-vermittelten TRAF1-Expression beide Zweige des NFkB-Signalwegs Zelltyp-abhängig beteiligt sind.
Die Oligomerisierung der Liganden der TNF-Familie verstärkt oft ihre Aktivität. Oligomerisiertes TWEAK imitiert die biologische Aktivität von membranständigem TWEAK. Lösliches TWEAK wurde mit einem anti-Flag Antikörper oligomerisiert und die TRAF1-Induktion durch den alternativen NFkB-Signalweg wurde analysiert
Oligomerisiertes TWEAK aktivierte Zelltyp-unabhängig den klassischen NFkB-Signalweg stärker als lösliches TWEAK, wohingegen kein Effekt auf die TRAF1-Induktion oder auf die Aktivierung den alternativen NFkB-Signalweg festgestellt wurde (Abbildung 11, 12). TWEAK ist imstande die TRAF2-vermittelte CD40-Induktion des klassischen NFkB-Signalwegs zu hemmen (Abbildung 16, 17). Um den Beitrag von TWEAK-Induziertem TRAF1 zur CD40-Inhibition zu herauszufinden, wurden TRAF1-stabil transfizierte 786O- und U2OS-Zellen hergestellt (Abbildung 19). Die CD40-Induzierte IkBa-Degradation und IL8/6 Produktion war in den TRAF1-Transfektanten als auch in mit löslichem TWEAK vorbehandelte Zellen stark inhibiert (Abbildung 21, 22), wobei die CD40-Expression und CD40/CD40L-Interaktion unverändert blieb (Abbildung 20). Diese Ergebnisse sprechen für einen wichtigen Beitrag des Adaptorprotein TRAF1 in der TWEAK-vermittelte Inhibition der CD40-induzierte Aktivierung des klassischen NFkB-Signalwegs.
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.