TY - JOUR A1 - Heuser, Christoph A1 - Gotot, Janine A1 - Piotrowski, Eveline Christina A1 - Philipp, Marie-Sophie A1 - Courrèges, Christina Johanna Felicia A1 - Otte, Martin Sylvester A1 - Guo, Linlin A1 - Schmid-Burgk, Jonathan Leo A1 - Hornung, Veit A1 - Heine, Annkristin A1 - Knolle, Percy Alexander A1 - Garbi, Natalio A1 - Serfling, Edgar A1 - Evaristo, César A1 - Thaiss, Friedrich A1 - Kurts, Christian T1 - Prolonged IKK\(\beta\) Inhibition Improves Ongoing CTL Antitumor Responses by Incapacitating Regulatory T Cells JF - Cell Reports N2 - Regulatory T cells (Tregs) prevent autoimmunity but limit antitumor immunity. The canonical NF-\(\kappa\)B signaling pathway both activates immunity and promotes thymic Treg development. Here, we report that mature Tregs continue to require NF-\(\kappa\)B signaling through I\(\kappa\)B-kinase \(\beta\) (IKK\(\beta\)) after thymic egress. Mice lacking IKK\(\beta\) in mature Tregs developed scurfy-like immunopathology due to death of peripheral FoxP3\(^+\) Tregs. Also, pharmacological IKK\(\beta\) inhibition reduced Treg numbers in the circulation by ~50% and downregulated FoxP3 and CD25 expression and STAT5 phosphorylation. In contrast, activated cytotoxic T lymphocytes (CTLs) were resistant to IKK\(\beta\) inhibition because other pathways, in particular nuclear factor of activated T cells (NFATc1) signaling, sustained their survival and expansion. In a melanoma mouse model, IKK\(\beta\) inhibition after CTL cross-priming improved the antitumor response and delayed tumor growth. In conclusion, prolonged IKK\(\beta\) inhibition decimates circulating Tregs and improves CTL responses when commenced after tumor vaccination, indicating that IKK\(\beta\) represents a druggable checkpoint. KW - medicine KW - regulatory T cells KW - NF-\(\kappa\)B pathway KW - tumor vaccination KW - checkpoint inhibition KW - cytotoxic T cells KW - cross-priming KW - apoptosis KW - tumor immunology KW - melanoma Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-173643 VL - 21 IS - 3 ER - TY - JOUR A1 - Effenberger, Madlen A1 - Bommert, Kathryn S. A1 - Kunz, Viktoria A1 - Kruk, Jessica A1 - Leich, Ellen A1 - Rudelius, Martina A1 - Bargou, Ralf A1 - Bommert, Kurt T1 - Glutaminase inhibition in multiple myeloma induces apoptosis via MYC degradation JF - Oncotarget N2 - Multiple Myeloma (MM) is an incurable hematological malignancy affecting millions of people worldwide. As in all tumor cells both glucose and more recently glutamine have been identified as important for MM cellular metabolism, however there is some dispute as to the role of glutamine in MM cell survival. Here we show that the small molecule inhibitor compound 968 effectively inhibits glutaminase and that this inhibition induces apoptosis in both human multiple myeloma cell lines (HMCLs) and primary patient material. The HMCL U266 which does not express MYC was insensitive to both glutamine removal and compound 968, but ectopic expression of MYC imparted sensitivity. Finally, we show that glutamine depletion is reflected by rapid loss of MYC protein which is independent of MYC transcription and post translational modifications. However, MYC loss is dependent on proteasomal activity, and this loss was paralleled by an equally rapid induction of apoptosis. These findings are in contrast to those of glucose depletion which largely affected rates of proliferation in HMCLs, but had no effects on either MYC expression or viability. Therefore, inhibition of glutaminolysis is effective at inducing apoptosis and thus serves as a possible therapeutic target in MM. KW - Multiple Myeloma KW - glutaminase inhibition KW - apoptosis KW - MYC Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-170168 VL - 8 IS - 49 ER - TY - JOUR A1 - Lagler, Charlotte A1 - El-Mesery, Mohamed A1 - Kübler, Alexander Christian A1 - Müller-Richter, Urs Dietmar Achim A1 - Stühmer, Thorsten A1 - Nickel, Joachim A1 - Müller, Thomas Dieter A1 - Wajant, Harald A1 - Seher, Axel T1 - The anti-myeloma activity of bone morphogenetic protein 2 predominantly relies on the induction of growth arrest and is apoptosis-independent JF - PLoS ONE N2 - Multiple myeloma (MM), a malignancy of the bone marrow, is characterized by a pathological increase in antibody-producing plasma cells and an increase in immunoglobulins (plasmacytosis). In recent years, bone morphogenetic proteins (BMPs) have been reported to be activators of apoptotic cell death in neoplastic B cells in MM. Here, we use bone morphogenetic protein 2 (BMP2) to show that the "apoptotic" effect of BMPs on human neoplastic B cells is dominated by anti-proliferative activities and cell cycle arrest and is apoptosis-independent. The anti-proliferative effect of BMP2 was analysed in the human cell lines KMS12-BM and L363 using WST-1 and a Coulter counter and was confirmed using CytoTox assays with established inhibitors of programmed cell death (zVAD-fmk and necrostatin-1). Furthermore, apoptotic activity was compared in both cell lines employing western blot analysis for caspase 3 and 8 in cells treated with BMP2 and FasL. Additionally, expression profiles of marker genes of different cell death pathways were analysed in both cell lines after stimulation with BMP2 for 48h using an RT-PCR-based array. In our experiments we observed that there was rather no reduction in absolute cell number, but cells stopped proliferating following treatment with BMP2 instead. The time frame (48–72 h) after BMP2 treatment at which a reduction in cell number is detectable is too long to indicate a directly BMP2-triggered apoptosis. Moreover, in comparison to robust apoptosis induced by the approved apoptotic factor FasL, BMP2 only marginally induced cell death. Consistently, neither the known inhibitor of apoptotic cell death zVAD-fmk nor the necroptosis inhibitor necrostatin-1 was able to rescue myeloma cell growth in the presence of BMP2. KW - apoptosis KW - gene expression KW - necrotic cell death KW - multiple myeloma KW - cell metabolism KW - cell cycle and cell division KW - B cells Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-158993 VL - 12 IS - 10 ER - TY - THES A1 - Gläser, Katharina T1 - Einfluss hochfrequenter Felder des Mobilfunks auf das blutbildende System in vitro T1 - Effects of radiofrequency radiation on the human hematopoietic system in vitro N2 - Elektromagnetische Felder (EMF) sind in der Umwelt des Menschen allgegenwärtig. Unter Verwendung unterschiedlicher Frequenzen bilden sie die Grundlage zahlreicher Technologien und begegnen uns im Alltag in einer Vielzahl von Anwendungen. Eine sehr wichtige Anwendung von EMF ist die mobile Kommunikation. Die hierfür verwendeten Frequenzen liegen im hochfrequenten Bereich und variieren mit dem Mobilfunkstandard. Weit verbreitet ist die GSM- und UMTS-Modulation der zweiten (2G) und dritten Generation (3G). Zum neuesten Mobilfunkstandard zählt LTE (4G). Aus statistischen Daten geht hervor, dass derzeit weltweit mehr als sieben Milliarden Mobilfunk-Endgeräte existieren. Die weitverbreitete und stetig ansteigende Verwendung dieser Technologien verdeutlicht, dass viele Menschen, darunter auch zunehmend Kinder und Jugendliche, regelmäßig einer Exposition gegenüber EMF ausgesetzt sind. Die wichtigste Expositionsquelle stellt dabei das Mobiltelefon dar, da sich in diesem Szenario die Quelle sehr nah am menschlichen Körper befindet. In der Vergangenheit wurden zahlreiche in-vitro- und in-vivo-Untersuchungen sowie epidemiologische Studien durchgeführt, um potentielle, nicht-thermische Effekte von Mobilfunkstrahlung auf biologische Systeme beurteilen zu können. Ein vollständiger Konsens konnte auf der Basis der erhaltenen Ergebnisse jedoch nicht erzielt werden, sodass weiterhin Bedenken zum schädlichen Potential dieser nichtionisierenden Strahlung bestehen. Insbesondere wurden Fragestellungen zu Langzeiteffekten sowie zu Effekten, die speziell bei Kindern eine besondere Rolle spielen, bisher nicht ausreichend adressiert. Kinder können empfindlicher auf Umwelteinflüsse reagieren und sind im Vergleich zu Erwachsenen teilweise höher gegenüber EMF exponiert. Dies gilt vor allem für Kopfregionen, in denen sich das aktive, für die Hämatopoese verantwortliche Knochenmark befindet. Vor diesem Hintergrund war es das Ziel der vorliegenden Arbeit, den Einfluss von Mobilfunkstrahlung auf das humane blutbildende System zu untersuchen. Im Fokus standen dabei humane hämatopoetische Stammzellen, die mit Frequenzen der Mobilfunkstandards GSM (900 MHz), UMTS (1.950 MHz) und LTE (2.535 MHz) jeweils über einen kurzen (4 h) und einen langen (20 h) Zeitraum und mit unterschiedlichen Intensitäten (0 W/kg, 0,5 W/kg, 1 W/kg, 2 W/kg und 4 W/kg) exponiert wurden. Vergleichende Experimente erfolgten mit Zellen der Promyelozyten-Zelllinie HL-60. Mögliche Effekte wurden mit den Endpunkten Apoptose, oxidativer Stress, Zellzyklus, DNA-Schaden und –Reparatur sowie Differenzierung und Epigenetik in Form von Histonacetylierung bewertet. In keinem der genannten Endpunkte konnten klare Effekte durch Mobilfunkstrahlung ausgemacht werden, weder für die hämatopoetischen Stammzellen, noch für die Zelllinie HL-60. Die einzige Veränderung wurde bei der Quantifizierung von DNA-Schäden beobachtet. Hier zeigte sich nach der Kurzzeitexposition der Stammzellen mit der Modulation GSM eine kleine, aber statistisch signifikante Abnahme der DNA-Schäden verglichen mit der Scheinexposition. Diese Beobachtung ließ sich in weiteren Replikaten jedoch nicht reproduzieren und wurde daher als nicht biologisch relevant eingestuft. Insgesamt konnte mit dieser Arbeit gezeigt werden, dass durch Mobilfunkstrahlung mit Frequenzen der verbreiteten Modulationen GSM, UMTS und LTE sowie SAR-Werten, die unterhalb und oberhalb des empfohlenen Sicherheitsstandards liegen und typischerweise bei Handytelefonaten auftreten, keine Effekte in Zellen des blutbildenden Systems unter den gegebenen Versuchsbedingungen induziert wurden. Ein besonderer Fokus lag hierbei auf der Reproduzierbarkeit der Ergebnisse. Weiterhin wurden zum ersten Mal humane hämatopoetische Stammzellen für derartige Untersuchungen eingesetzt. Dies hat insofern eine besondere Bedeutung, als hämatopoetische Stammzellen aufgrund ihrer multipotenten Eigenschaften eine breitere Analyse mit Hinblick auf die Kanzerogenese und auf das Immunsystem ermöglichen. Um über die Mobilfunk-Untersuchungen hinaus die hämatopoetischen Stammzellen besser charakterisieren zu können, sowie die Sensitivität von Blutzellen mit unterschiedlichem Differenzierungsstatus zu analysieren, wurden sie anderen Zellen des blutbildenden Systems (undifferenzierte und differenzierte HL-60-Zellen und TK6-Zellen) gegenübergestellt. Eine Behandlung der verschiedenen Zelltypen mit mutagenen Substanzen zeigte, dass sich die hämatopoetischen Stammzellen in den meisten der untersuchten Endpunkte von den Zelllinien unterschieden. Deutliche Abweichungen zeigten sich beim oxidativen Stress, der DNA-Reparatur und der Histonacetylierung; kein Unterschied konnte dagegen bei den DNA-Schäden beobachtet werden. Eine erste Interpretation der erhaltenen Ergebnisse ist auf der Grundlage der unterschiedlichen Eigenschaften von Zellen mit abweichendem Differenzierungsstatus möglich. Um jedoch eine eindeutige Aussage treffen zu können, müssten noch weitere Untersuchungen durchgeführt werden. N2 - Electromagnetic fields (EMF) are ubiquitous in the human environment. By using different frequencies, they form a basis for numerous technologies and are present in multiple applications of our everyday life. One very important application of EMF is mobile communication, where the frequencies vary depending on the modulation standard. The most common standards are the second (2G) and the third (3G) generation standard GSM and UMTS, respectively. The latest modulation type is the fourth generation standard (4G) LTE. Statistical data reveal that there are currently more than seven billion mobile phone subscriptions. With the widespread use of these technologies, many people, including an increasing number of children, are continuously exposed to EMF. Given its close proximity to the human body, the mobile phone is the main source of EMF exposure. A huge number of in vitro, in vivo and epidemiological studies have been performed in the past to investigate potential, non-thermal effects of mobile phone radiation on biological systems. However, no complete consensus has been reached, leading to ongoing concerns about the harmful potential of this type of non-ionizing radiation. Furthermore, two major concerns regarding long-term effects and children-specific effects were not thoroughly addressed so far. Children might react in a more sensitive way towards environmental influences and partially absorb more radiofrequency radiation than adults. This particularly applies to head regions where the active bone marrow, which is responsible for hematopoiesis, is located. The aim of the present study was to investigate effects of radiofrequency fields emitted by mobile phones on cells of the human hematopoietic system. The focus was on human hematopoietic stem cells which were exposed to modulated GSM (900 MHz), UMTS (1,950 MHz) and LTE (2,535 MHz) radiofrequency fields with SAR values ranging from 0 to 4 W/kg for short (4 h) and long (20 h) time periods. Comparative investigations were performed with cells of the promyelocytic cell line HL-60. Studied endpoints included apoptosis, oxidative stress, cell cycle, DNA damage and DNA repair, differentiation and epigenetics in terms of histone acetylation. In all but one of these end points, no clear effect of mobile phone radiation could be detected, neither in hematopoietic stem cells nor in HL-60 cells. The only alteration was observed when quantifying DNA damage. Compared to the sham exposure, a small but statistically significant decrease in DNA damage was found after exposure of hematopoietic stem cells to the GSM modulation for short time period. This observation could not be reproduced in subsequent replicate experiments, and was thus considered not biologically relevant. Overall, these investigations demonstrate that mobile phone radiation at frequencies used in the major technologies GSM, UMTS and LTE and with SAR values below and above the recommended safety limits did not induce effects in cells of the human hematopoietic system under the prevailing conditions. A particular focus was on the reproducibility of the results. Furthermore, for the first time human hematopoietic stem cells were subject for such investigations. This is of particular importance, since hematopoietic stem cells enable a broader analysis with respect to cancerogenesis and the immune system based on their multipotent characteristics. Moreover, in order to better characterize the hematopoietic stem cells as well as analyze the sensitivity of hematopoietic cells differing in their differentiation status, hematopoietic stem cells were compared to other cells of the hematopoietic system (i.e. undifferentiated and differentiated HL-60 cells and TK6 cells). Upon treatment with mutagenic substances, a clear distinction was observed between the stem cells and the other cell types for the majority of the investigated endpoints. Significant differences were revealed for oxidative stress, DNA repair and histone acetylation, whereas no difference was observed for DNA damage. A first interpretation of the results obtained can be made on the basis of the different characteristics of cells with a different differentiation status. However, in order to make a distinct statement, additional investigations need to be performed. KW - Mobilfunk KW - Elektromagnetische Felder KW - radiofrequency radiation KW - Nichtionisierende Strahlung KW - Hämatopoese KW - In vitro KW - Humane Hämatopoetische Stammzellen KW - Apoptose KW - Gentoxizität KW - Oxidativer Stress KW - Zellzyklus KW - Differenzierung KW - Epigenetik KW - human hematopoietic stem cells KW - apoptosis KW - genotoxicity KW - oxidative stress KW - differentiation KW - epigenetics KW - Hämatopoetische Stammzellen KW - Blutbildendes System Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-145733 ER -