TY - JOUR A1 - Hönnemann, Jan A1 - Sanz-Moreno, Adrian A1 - Wolf, Elmar A1 - Eilers, Martin A1 - Elsässer, Hans-Peter T1 - Miz1 Is a Critical Repressor of cdkn1a during Skin Tumorigenesis JF - PLoS One N2 - The transcription factor Miz1 forms repressive DNA-binding complexes with the Myc, Gfi-1 and Bcl-6 oncoproteins. Known target genes of these complexes encode the cyclin-dependent kinase inhibitors (CKIs) cdkn2b (p15\(^{Ink4}\)), cdkn1a (p21\(^{Cip1}\)), and cdkn1c (p57\(^{Kip2}\)). Whether Miz1-mediated repression is important for control of cell proliferation in vivo and for tumor formation is unknown. Here we show that deletion of the Miz1 POZ domain, which is critical for Miz1 function, restrains the development of skin tumors in a model of chemically-induced, Ras-dependent tumorigenesis. While the stem cell compartment appears unaffected, interfollicular keratinocytes lacking functional Miz1 exhibit a reduced proliferation and an accelerated differentiation of the epidermis in response to the tumor promoter 12-O-tetradecanoylphorbol-13-acetate (TPA). Tumorigenesis, proliferation and normal differentiation are restored in animals lacking cdkn1a, but not in those lacking cdkn2b. Our data demonstrate that Miz1-mediated attenuation of cell cycle arrest pathways via repression of cdkn1a has a critical role during tumorigenesis in the skin. KW - transcription factor MIZ-1 KW - cell-cycle arrest KW - c-myc KW - tumor suppressor KW - cancer cells KW - POZ domain KW - P21 KW - differentiation KW - P15(INK4B) KW - senescence Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-133285 VL - 7 IS - 4 ER - TY - THES A1 - Müller, Judith T1 - Die Rolle der HectH9/Mcl1-Interaktion in der Myc-induzierten Apoptose und Auswirkungen der Myc V394D-Mutation auf die von c-Myc gesteuerten Tumorgenese in einem transgenen Mausmodell T1 - Role of the HectH9/Mcl1 interaction in Myc-induced apoptosis and Impact of the Myc V394D mutation in c-Myc-driven murine lymphomagenesis N2 - Während der Entstehung von Tumoren können zwei Mechanismen auftreten, die beide von der Aktivität der Onkogene abhängig sind und die Tumorgenese einschränken. Für das Onkogen Myc ist gezeigt, dass es sowohl Apoptose als auch unter bestimmten Umständen Seneszenz auslösen kann und damit sein eigenes onkogenes Potential limitiert. Im Rahmen dieser Arbeit konnte ich mich mit diesen Tumor-suppressiven Mechanismen in zwei unabhängigen Teilprojekten beschäftigen. Eine erhöhte Expression von Myc steigert die Proliferation der Zellen, induziert aber gleichzeitig Doppelstrangbrüche an der DNA. Durch den dadurch entstandenen Schaden wird die DNA-Schadensantwort ausgelöst, die zum Beispiel zur Phosphorylierung von H2A.X durch die Kinasen Atm und Atr führt. Ein weiteres putatives Zielprotein dieser Kinasen ist HectH9, das abhängig vom DNA-Schaden das mitochondriale Protein Mcl1 ubiquitiniert und es damit für den proteasomalen Abbau markiert. Im ungestressten Zustand interagiert das in der mitochondrialen Membran lokalisierte Protein Mcl1 mit proapoptotischen Proteinen und hält deren inerten Status aufrecht. Die Reduktion der Mcl1-Mengen ist essentiell, um die proapoptotischen Proteine zu aktivieren, dadurch die Freisetzung von Zytochrom C aus dem Mitochondrium zu veranlassen und damit den Prozess der Apoptose einleiten zu können. Anhand der in dieser Arbeit dokumentierten Daten bietet sich Mcl1 als potentielles Zielprotein für pharmazeutisch Strategien zur Therapie Myc-induzierter Tumore an. Im Idealfall erhöht eine verstärkte Reduktion seiner Proteinmengen die zelluläre Apoptose und verringert somit das Tumorwachstum. Im murinen T-Zell-Lymphom wird die Myc-abhängige Tumorgenese durch eine Mutation der Proteinsequenz von Myc verlangsamt. Diese Mutation unterbindet die Bindung von Myc zu Miz1 und verhindert dadurch die Repression von Zielgenen. Abhängig von der Interaktion von Myc zu Miz1 gelingt die Inhibition der Transkription des Zellzyklusinhibitors p15Ink4b. Die Interaktion von Myc und Miz1 ist essentiell um die TGFbeta-abhängige Seneszenz zu umgehen. Darüber hinaus ist Myc direkt an der Repression von TGFbeta beteiligt. Entgegen der bisher verwendeten Modelle konnte in dieser Arbeit gezeigt werden, dass Myc unabhängig von Miz1 zu den Promotoren der reprimierten Zielgene rekrutiert wird und die Bindung der beiden Proteine offensichtlich nur für die Transrepression essentiell ist. N2 - Apoptosis and senescence are two distinct mechanisms that are induced by oncogenes to limit their oncogenic potential during tumorigenesis. Their appearance seems to be dependent on the specific oncogene. For a long time it is known that the oncogene Myc is a strong inducer of apoptosis. Latest results revealed, that Myc is also able to induce senescence, to prevent transformed cells from proliferating. Within the framework of my PhD I concentrated on both tumor suppressive mechanisms in two independent particular projects. Increased expression and activity of Myc enhances cell proliferation and thereby induces DNA double strand breaks. This damage activates a DNA damage response which leads to Atm/Atr mediated phosphorylation of H2A.X. A further target of the kinases Atm and Atr is HectH9 which ubiquitinates the mitochondrial protein Mcl1 in a DNA damage dependent manner. The ubiquitination of Mcl1 labels this protein for proteasomal degradation. In unstressed cells Mcl1 is located in the mitochondrial membrane where it interacts with proapoptotic members of the Bcl2 family inhibiting their activity. The reduction of Mcl1 protein is essential for the activation of proapoptotic proteins at the mitochondrium allowing release of cytochrome c as initial step in apoptosis. Myc mediated tumorigenesis is limited by using a mutant form of Myc as driving oncogene. This mutation inhibits interaction of Myc to its binding partner Miz1. The interaction of Myc and Miz1 is required to repress target genes like p21Cip1 and p15Ink4b. In vivo experiments demonstrate that Myc and Miz1 need to bind to each other to bypass TGFbeta-dependent senescence. This process is dependent on elevated levels of Myc consequently reduction to physiological levels of the protein induces apoptosis and senescence in a TGFbetadependent mannerIn addition, there is evidence that Myc is directly involved in the repression of Tgfbeta. In contrast to established models of repression by the Myc/Miz1 complex, it was shown, that Myc is recruited to and binds target DNA independently of Miz1. Therefore, I suggest that interaction of both proteins is essential only at the step of transcriptional initiation. KW - Myc KW - Apoptosis KW - DNS-Schädigung KW - Transforming Growth Factor beta KW - T-Zell-Lymphom KW - Seneszenz KW - Ubiquitinierung KW - Miz1 KW - p15Ink4b KW - senescence KW - ubiquitination KW - Miz1 KW - p15Ink4b Y1 - 2010 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-55789 ER - TY - JOUR A1 - Stojanović, Stevan D. A1 - Fuchs, Maximilian A1 - Fiedler, Jan A1 - Xiao, Ke A1 - Meinecke, Anna A1 - Just, Annette A1 - Pich, Andreas A1 - Thum, Thomas A1 - Kunz, Meik T1 - Comprehensive bioinformatics identifies key microRNA players in ATG7-deficient lung fibroblasts JF - International Journal of Molecular Sciences N2 - Background: Deficient autophagy has been recently implicated as a driver of pulmonary fibrosis, yet bioinformatics approaches to study this cellular process are lacking. Autophagy-related 5 and 7 (ATG5/ATG7) are critical elements of macro-autophagy. However, an alternative ATG5/ATG7-independent macro-autophagy pathway was recently discovered, its regulation being unknown. Using a bioinformatics proteome profiling analysis of ATG7-deficient human fibroblasts, we aimed to identify key microRNA (miR) regulators in autophagy. Method: We have generated ATG7-knockout MRC-5 fibroblasts and performed mass spectrometry to generate a large-scale proteomics dataset. We further quantified the interactions between various proteins combining bioinformatics molecular network reconstruction and functional enrichment analysis. The predicted key regulatory miRs were validated via quantitative polymerase chain reaction. Results: The functional enrichment analysis of the 26 deregulated proteins showed decreased cellular trafficking, increased mitophagy and senescence as the major overarching processes in ATG7-deficient lung fibroblasts. The 26 proteins reconstitute a protein interactome of 46 nodes and miR-regulated interactome of 834 nodes. The miR network shows three functional cluster modules around miR-16-5p, miR-17-5p and let-7a-5p related to multiple deregulated proteins. Confirming these results in a biological setting, serially passaged wild-type and autophagy-deficient fibroblasts displayed senescence-dependent expression profiles of miR-16-5p and miR-17-5p. Conclusions: We have developed a bioinformatics proteome profiling approach that successfully identifies biologically relevant miR regulators from a proteomics dataset of the ATG-7-deficient milieu in lung fibroblasts, and thus may be used to elucidate key molecular players in complex fibrotic pathological processes. The approach is not limited to a specific cell-type and disease, thus highlighting its high relevance in proteome and non-coding RNA research. KW - bioinformatics KW - miR KW - proteomics KW - functional network analysis KW - senescence KW - lung fibrosis KW - autophagy Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-285181 SN - 1422-0067 VL - 21 IS - 11 ER - TY - JOUR A1 - Grimm, Johannes A1 - Hufnagel, Anita A1 - Wobser, Marion A1 - Borst, Andreas A1 - Haferkamp, Sebastian A1 - Houben, Roland A1 - Meierjohann, Svenja T1 - BRAF inhibition causes resilience of melanoma cell lines by inducing the secretion of FGF1 JF - Oncogenesis N2 - Approximately half of all melanoma patients harbour activating mutations in the serine/threonine kinase BRAF. This is the basis for one of the main treatment strategies for this tumor type, the targeted therapy with BRAF and MEK inhibitors. While the initial responsiveness to these drugs is high, resistance develops after several months, frequently at sites of the previously responding tumor. This indicates that tumor response is incomplete and that a certain tumor fraction survives even in drug-sensitive patients, e.g., in a therapy-induced senescence-like state. Here, we show in several melanoma cell lines that BRAF inhibition induces a secretome with stimulating effect on fibroblasts and naive melanoma cells. Several senescence-associated factors were found to be transcribed and secreted in response to BRAF or MEK inhibition, among them members of the fibroblast growth factor family. We identified the growth factor FGF1 as mediator of resilience towards BRAF inhibition, which limits the pro-apoptotic effects of the drug and activates fibroblasts to secrete HGF. FGF1 regulation was mediated by the PI3K pathway and by FRA1, a direct target gene of the MAPK pathway. When FGFR inhibitors were applied in parallel to BRAF inhibitors, resilience was broken, thus providing a rationale for combined therapeutical application. KW - melanoma KW - senescence KW - BRAF KW - tumor Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-177261 VL - 7 IS - 71 ER -