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- Theodor-Boveri-Institut für Biowissenschaften (4) (remove)
The Myb-MuvB (MMB) complex plays an essential role in the time-dependent transcriptional activation of mitotic genes. Recently, our laboratory identified a novel crosstalk between the MMB-complex and YAP, the transcriptional coactivator of the Hippo pathway, to coregulate a subset of mitotic genes (Pattschull et al., 2019). Several genetic studies have shown that the Hippo-YAP pathway is essential to drive cardiomyocyte proliferation during cardiac development (von Gise et al., 2012; Heallen et al., 2011; Xin et al., 2011). However, the exact mechanisms of how YAP activates proliferation of cardiomyocytes is not known. This doctoral thesis addresses the physiological role of the MMB-Hippo crosstalk within the heart and characterizes the YAP-B-MYB interaction with the overall aim to identify a potent inhibitor of YAP.
The results reported in this thesis indicate that complete loss of the MMB scaffold protein LIN9 in heart progenitor cells results in thinning of ventricular walls, reduced cardiomyocyte proliferation and early embryonic lethality. Moreover, genetic experiments using mice deficient in SAV1, a core component of the Hippo pathway, and LIN9-deficient mice revealed that the correct function of the MMB complex is critical for proliferation of cardiomyocytes due to Hippo-deficiency. Whole genome transcriptome profiling as well as genome wide binding studies identified a subset of Hippo-regulated cell cycle genes as direct targets of MMB. By proximity ligation assay (PLA), YAP and B-MYB were discovered to interact in embryonal cardiomyocytes. Biochemical approaches, such as co-immunoprecipitation assays, GST-pulldown assays, and µSPOT-based peptide arrays were employed to characterize the YAP-B-MYB interaction. Here, a PY motif within the N-terminus of B-MYB was found to directly interact with the YAP WW-domains. Consequently, the YAP WW-domains were important for the ability of YAP to drive proliferation in cardiomyocytes and to activate MMB target genes in differentiated C2C12 cells. The biochemical information obtained from the interaction studies was utilized to develop a novel competitive inhibitor of YAP called MY-COMP (Myb-YAP competition). In MY-COMP, the protein fragment of B-MYB containing the YAP binding domain is fused to a nuclear localization signal. Co-immunoprecipitation studies as well as PLA revealed that the YAP-B-MYB interaction is robustly blocked by expression of MY-COMP. Adenoviral overexpression of MY-COMP in embryonal cardiomyocytes suppressed entry into mitosis and blocked the pro-proliferative function of YAP. Strikingly, characterization of the cellular phenotype showed that ectopic expression of MY-COMP led to growth defects, nuclear abnormalities and polyploidization in HeLa cells.
Taken together, the results of this thesis reveal the mechanism of the crosstalk between the Hippo signaling pathway and the MMB complex in the heart and form the basis for interference with the oncogenic activity of the Hippo coactivator YAP.
Neuroblastoma is the most abundant, solid, extracranial tumor in early childhood and the leading cause of cancer-related childhood deaths worldwide. Patients with high-risk neuroblastoma often show MYCN-amplification and elevated levels of Aurora-A. They have a low overall survival and despite multimodal therapy options a poor therapeutic prognosis. MYCN-amplified neuroblastoma cells depend on Aurora-A functionality. Aurora-A stabilizes MYCN and prevents it from proteasomal degradation by competing with the E3 ligase SCFFBXW7. Interaction between Aurora-A and MYCN can be observed only in S phase of the cell cycle and activation of Aurora-A can be induced by MYCN in vitro. These findings suggest the existence of a profound interconnection between Aurora-A and MYCN in S phase. Nevertheless, the details remain elusive and were investigated in this study.
Fractionation experiments show that Aurora-A is recruited to chromatin in S phase in a MYCN-dependent manner. Albeit being unphosphorylated on the activating T288 residue, Aurora-A kinase activity was still present in S phase and several putative, novel targets were identified by phosphoproteomic analysis. Particularly, eight phosphosites dependent on MYCN-activated Aurora-A were identified. Additionally, phosphorylation of serine 10 on histone 3 was verified as a target of this complex in S phase. ChIP-sequencing experiments reveal that Aurora-A regulates transcription elongation as well as histone H3.3 variant incorporation in S phase. 4sU-sequencing as well as immunoblotting demonstrated that Aurora-A activity impacts splicing. PLA measurements between the transcription and replication machinery revealed that Aurora-A prevents the formation of transcription-replication conflicts, which activate of kinase ATR.
Aurora-A inhibitors are already used to treat neuroblastoma but display dose-limiting toxicity. To further improve Aurora-A based therapies, we investigated whether low doses of Aurora-A inhibitor combined with ATR inhibitor could increase the efficacy of the treatment albeit reducing toxicity. The study shows that the combination of both drugs leads to a reduction in cell growth as well as an increase in apoptosis in MYCN-amplified neuroblastoma cells, which is not observable in MYCN non-amplified neuroblastoma cells. This new approach was also tested by a collaboration partner in vivo resulting in a decrease in tumor burden, an increase in overall survival and a cure of 25% of TH-MYCN mice. These findings indicate indeed a therapeutic window for targeting MYCN-amplified neuroblastoma.
Im Neuroblastom ist die Amplifikation des MYCN-Gens, das für den Transkriptionsfaktor N-Myc kodiert, der klinisch bedeutendste Faktor für eine schlechte Prognose. Als Mitglied der onkogenen Myc-Familie induziert N-Myc die Expression von Genen, die in vielen biologischen Prozessen wie Metabolismus, Zellzyklusprogression, Zellwachstum und Apoptose eine wichtige Rolle spielen. Die Deregulation der MYCN-Expression führt zu einem charakteristischen Genexpressionsprofil und einem aggressiven Phenotyp in den Tumorzellen.
In normalen neuronalen Vorläuferzellen wird N-Myc gewöhnlich sehr schnell proteasomal abgebaut. Während der Mitose wird N-Myc an Serin 62 phosphoryliert. Diese Phosphorylierung dient als Erkennungssignal für die Kinase GSK3β, die die Phosphorylierung an Threonin 58 katalysiert. Das Phosphodegron wird von Fbxw7, einer Komponente des E3-Ubiquitinligase-Komplex SCFFbxw7, erkannt. Die anschließende Ubiquitinierung induziert den proteasomalen Abbau des Proteins. Die Reduktion der N-Myc–Proteinlevel ermöglicht den neuronalen Vorläuferzellen den Austritt aus dem Zellzyklus und führt zu einer terminalen Differenzierung.
In einem shRNA Screen konnte AURKA als essentielles Gen für die Proliferation MYCN-amplifizierter Neuroblastomzellen identifiziert werden. Eine Aurora-A–Depletion hatte jedoch keinen Einfluss auf das Wachstum nicht-amplifizierter Zellen.
Während dieser Doktorarbeit konnte gezeigt werden, dass Aurora-A speziell den Fbxw7-vermittelten Abbau verhindert und dadurch N-Myc stabilisiert. Für die Stabilisierung ist zwar die Interaktion der beiden Proteine von entscheidender Bedeutung, überraschenderweise spielt die Kinaseaktivität von Aurora-A jedoch keine Rolle.
Zwei spezifische Aurora-A–Inhibitoren, MLN8054 und MLN8237, sind allerdings in der Lage, nicht nur die Kinaseaktivität zu hemmen, sondern auch die N-Myc-Proteinlevel zu reduzieren. Beide Moleküle induzieren eine Konformationsänderung in der Kinasedomäne von Aurora-A. Diese ungewöhnliche strukturelle Veränderung hat zur Folge, dass der N-Myc/Aurora-A–Komplex dissoziiert und N-Myc mit Hilfe von Fbxw7 proteasomal abgebaut werden kann. In MYCN-amplifizierten Zellen führt diese Reduktion an N-Myc zu einem Zellzyklusarrest in der G1-Phase. Die in vitro Daten konnten in einem transgenen Maus-Modell für das MYCN-amplifizierte Neuroblastom bestätigt werden. Die Behandlung mit MLN8054 und MLN8237 führte in den Tumoren ebenfalls zu einer N-Myc-Reduktion. Darüber hinaus konnte ein prozentualer Anstieg an differenzierten Zellen, die vollständige Tumorregression in der Mehrzahl der Neuroblastome und eine gesteigerte Lebenserwartung beobachtet werden.
Insgesamt zeigen die in vitro und in vivo Daten, dass die spezifischen Aurora-A–Inhibitoren ein hohes therapeutisches Potential gegen das MYCN-amplifizierte Neuroblastom besitzen.
The Notch signaling pathway is crucial for mammalian heart development. It controls cell-fate decisions, coordinates patterning processes and regulates proliferation and differentiation. Critical Notch effectors are Hey bHLH transcription factors (TF) that are expressed in atrial (Hey1) and ventricular (Hey2) cardiomyocytes (CM) and in the developing endocardium (Hey1/2/L). The importance of Hey proteins for cardiac development is demonstrated by knockout (KO) mice, which suffer from lethal cardiac defects, such as ventricular septum defects (VSD), valve defects and cardiomyopathy. Despite this clear functional relevance, little is known about Hey downstream targets in the heart and the molecular mechanism by which they are regulated.
Here, I use a cell culture system with inducible Hey1, Hey2 or HeyL expression to study Hey target gene regulation in HEK293 cells, in murine embryonic stem cells (ESC) and in ESC derived CM. In HEK293 cells, I could show that genome wide binding sites largely overlap between all three Hey proteins, but HeyL has many additional binding sites that are not bound by Hey1 or Hey2. Shared binding sites are located close to transcription start sites (TSS) where Hey proteins preferentially bind to canonical E boxes, although more loosely defined modes of binding exist. Additional sites only bound by HeyL are more scattered across the genome. The ability of HeyL to bind these sites depends on the C-terminal part of the protein. Although there are genes which are differently regulated by HeyL, it is unclear whether this regulation results from binding of additional sites by HeyL.
Additionally, Hey target gene regulation was studied in ESC and differentiated CM, which are more relevant for the observed cardiac phenotypes. ESC derived CM contract in culture and are positive for typical cardiac markers by qRT PCR and staining. According to these markers differentiation is unaffected by prolonged Hey1 or Hey2 overexpression. Regulated genes are largely redundant between Hey1 and Hey2. These are mainly other TF involved in e.g. developmental processes, apoptosis, cell migration and cell cycle. Many target genes are cell type specifically regulated causing a shift in Hey repression of genes involved in cell migration in ESC to repression of genes involved in cell cycle in CM.
The number of Hey binding sites is reduced in CM and HEK293 cells compared to ESC, most likely due to more regions of dense chromatin in differentiated cells. Binding sites are enriched at the proximal promoters of down-regulated genes, compared to up-or non-regulated genes. This indicates that up-regulation primarily results from indirect effects, while down-regulation is the direct results of Hey binding to target promoters. The extent of repression generally correlates with the amount of Hey binding and subsequent recruitment of histone deacetylases (Hdac) to target promoters resulting in histone H3 deacetylation.
However, in CM the repressive effect of Hey binding on a subset of genes can be annulled, likely due to binding of cardiac specific activators like Srf, Nkx2-5 and Gata4. These factors seem not to interfere with Hey binding in CM, but they recruit histone acetylases such as p300 that may counteract Hey mediated histone H3 deacetylation. Such a scenario explains differential regulation of Hey target genes between ESC and CM resulting in gene and cell-type specific regulation.