TY - JOUR A1 - Henriksson, Sofia A1 - Calderón-Montaño, José Manuel A1 - Solvie, Daniel A1 - Warpman Berglund, Ulrika A1 - Helleday, Thomas T1 - Overexpressed c-Myc sensitizes cells to TH1579, a mitotic arrest and oxidative DNA damage inducer JF - Biomolecules N2 - Previously, we reported that MTH1 inhibitors TH588 and TH1579 selectively induce oxidative damage and kill Ras-expressing or -transforming cancer cells, as compared to non-transforming immortalized or primary cells. While this explains the impressive anti-cancer properties of the compounds, the molecular mechanism remains elusive. Several oncogenes induce replication stress, resulting in under replicated DNA and replication continuing into mitosis, where TH588 and TH1579 treatment causes toxicity and incorporation of oxidative damage. Hence, we hypothesized that oncogene-induced replication stress explains the cancer selectivity. To test this, we overexpressed c-Myc in human epithelial kidney cells (HA1EB), resulting in increased proliferation, polyploidy and replication stress. TH588 and TH1579 selectively kill c-Myc overexpressing clones, enforcing the cancer cell selective killing of these compounds. Moreover, the toxicity of TH588 and TH1579 in c-Myc overexpressing cells is rescued by transcription, proteasome or CDK1 inhibitors, but not by nucleoside supplementation. We conclude that the molecular toxicological mechanisms of how TH588 and TH1579 kill c-Myc overexpressing cells have several components and involve MTH1-independent proteasomal degradation of c-Myc itself, c-Myc-driven transcription and CDK activation. KW - MTH1 KW - TH588 KW - TH1579 KW - c-Myc KW - replication stress KW - DNA damage KW - cell death KW - cancer Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-297547 SN - 2218-273X VL - 12 IS - 12 ER - TY - JOUR A1 - Djelić, Ninoslav A1 - Borozan, Sunčica A1 - Dimitrijević-Srećković, Vesna A1 - Pajović, Nevena A1 - Mirilović, Milorad A1 - Stopper, Helga A1 - Stanimirović, Zoran T1 - Oxidative stress and DNA damage in peripheral blood mononuclear cells from normal, obese, prediabetic and diabetic persons exposed to thyroid hormone in vitro JF - International Journal of Molecular Sciences N2 - Diabetes, a chronic group of medical disorders characterized byhyperglycemia, has become a global pandemic. Some hormones may influence the course and outcome of diabetes, especially if they potentiate the formation of reactive oxygen species (ROS). There is a close relationship between thyroid disorders and diabetes. The main objective of this investigation was to find out whether peripheral blood mononuclear cells (PBMCs) are more prone to DNA damage by triiodothyronine (T\(_3\)) (0.1, 1 and 10 μM) at various stages of progression through diabetes (obese, prediabetics, and type 2 diabetes mellitus—T2DM persons). In addition, some biochemical parameters of oxidative stress (catalase-CAT, thiobarbituric acid reactive substances—TBARS) and lactate dehydrogenase (LDH) were evaluated. PBMCs from prediabetic and diabetic patients exhibited increased sensitivity for T\(_3\) regarding elevated level of DNA damage, inhibition of catalase, and increase of TBARS and LDH. PBMCs from obese patients reacted in the same manner, except for DNA damage. The results of this study should contribute to a better understanding of the role of thyroid hormones in the progression of T2DM. KW - diabetes KW - oxidative stress KW - DNA damage KW - lymphocytes KW - thyroid hormone Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-285988 SN - 1422-0067 VL - 23 IS - 16 ER - TY - JOUR A1 - Ben Khaled, Najib A1 - Hammer, Katharina A1 - Ye, Liangtao A1 - Alnatsha, Ahmed A1 - Widholz, Sebastian A. A1 - Piseddu, Ignazio A1 - Sirtl, Simon A1 - Schneider, Julia A1 - Munker, Stefan A1 - Mahajan, Ujjwal Mukund A1 - Montero, Juan José A1 - Griger, Joscha A1 - Mayerle, Julia A1 - Reiter, Florian P. A1 - De Toni, Enrico N. T1 - TRAIL receptor targeting agents potentiate PARP inhibitor efficacy in pancreatic cancer independently of BRCA2 mutation status JF - Cancers N2 - Chemotherapy, the standard treatment for pancreatic ductal adenocarcinoma (PDAC), has only a modest effect on the outcome of patients with late-stage disease. Investigations of the genetic features of PDAC have demonstrated a frequent occurrence of mutations in genes involved in homologous recombination (HR), especially in the breast cancer susceptibility gene 2 (BRCA2). Olaparib, a poly(ADP-ribose) polymerase (PARP) inhibitor, is approved as a maintenance treatment for patients with advanced PDAC with germline BRCA1/2 mutations following a platinum-containing first-line regimen. Limitations to the use of PARP inhibitors are represented by the relatively small proportion of patients with mutations in BRCA1/2 genes and the modest capability of these substances of inducing objective response. We have previously shown that pancreatic cancer with BRCA2 mutations exhibits a remarkably enhanced sensitivity towards tumor-necrosis-factor-related apoptosis-inducing ligand (TRAIL) receptor-stimulating agents. We thus aimed to investigate the effect of combined treatment with PARP inhibitors and TRAIL receptor-stimulating agents in pancreatic cancer and its dependency on the BRCA2 gene status. The respective effects of TRAIL-targeting agents and the PARP inhibitor olaparib or of their combination were assessed in pancreatic cancer cell lines and patient-derived organoids. In addition, BRCA2-knockout and -complementation models were investigated. The effects of these agents on apoptosis, DNA damage, cell cycle, and receptor surface expression were assessed by immunofluorescence, Western blot, and flow cytometry. PARP inhibition and TRAIL synergized to cause cell death in pancreatic cancer cell lines and PDAC organoids. This effect proved independent of BRCA2 gene status in three independent models. Olaparib and TRAIL in combination caused a detectable increase in DNA damage and a concentration-dependent cell cycle arrest in the G2/M and S cell cycle phases. Olaparib also significantly increased the proportion of membrane-bound death receptor 5. Our results provide a preclinical rationale for the combination of PARP inhibitors and TRAIL receptor agonists for the treatment of pancreatic cancer and suggest that the use of PARP inhibitors could be extended to patients without BRCA2 mutations if used in combination with TRAIL agonists. KW - apoptosis KW - DNA damage KW - pancreatic neoplasms KW - poly(ADP-ribose) polymerase inhibitors KW - TNF-related apoptosis-inducing ligand Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-290884 SN - 2072-6694 VL - 14 IS - 21 ER - TY - JOUR A1 - Trifault, Barbara A1 - Mamontova, Victoria A1 - Burger, Kaspar T1 - In vivo proximity labeling of nuclear and nucleolar proteins by a stably expressed, DNA damage-responsive NONO-APEX2 fusion protein JF - Frontiers in Molecular Biosciences N2 - Cellular stress can induce DNA lesions that threaten the stability of genes. The DNA damage response (DDR) recognises and repairs broken DNA to maintain genome stability. Intriguingly, components of nuclear paraspeckles like the non-POU domain containing octamer-binding protein (NONO) participate in the repair of DNA double-strand breaks (DSBs). NONO is a multifunctional RNA-binding protein (RBP) that facilitates the retention and editing of messenger (m)RNA as well as pre-mRNA processing. However, the role of NONO in the DDR is poorly understood. Here, we establish a novel human U2OS cell line that expresses NONO fused to the engineered ascorbate peroxidase 2 (U2OS:NONO-APEX2-HA). We show that NONO-APEX2-HA accumulates in the nucleolus in response to DNA damage. Combining viability assays, subcellular localisation studies, coimmunoprecipitation experiments and in vivo proximity labeling, we demonstrate that NONO-APEX2-HA is a stably expressed fusion protein that mimics endogenous NONO in terms of expression, localisation and bona fide interactors. We propose that in vivo proximity labeling in U2OS:NONO-APEX2-HA cells is capable for the assessment of NONO interactomes by downstream assays. U2OS:NONO-APEX2-HA cells will likely be a valuable resource for the investigation of NONO interactome dynamics in response to DNA damage and other stimuli. KW - APEX2 KW - proximity labeling KW - NONO KW - paraspeckles KW - nucleolus KW - DNA damage Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-276707 SN - 2296-889X VL - 9 ER - TY - THES A1 - Xu, Wenshan T1 - Regulation of the DNA Damage Response by the Ubiquitin System T1 - Regulierung der DNA-Schadensreaktion durch das Ubiquitin System N2 - DNA damage occurs frequently during normal cellular progresses or by environmental factors. To preserve the genome integrity, DNA damage response (DDR) has evolved to repair DNA and the non-properly repaired DNA induces human diseases like immune deficiency and cancer. Since a large number of proteins involved in DDR are enzymes of ubiquitin system, it is critical to investigate how the ubiquitin system regulates cellular response to DNA damage. Hereby, we reveal a novel mechanism for DDR regulation via activation of SCF ubiquitin ligase upon DNA damage. As an essential step for DNA damage-induced inhibition of DNA replication, Cdc25A degradation by the E3 ligase β-TrCP upon DNA damage requires the deubiquitinase Usp28. Usp28 deubiquitinates β-TrCP in response to DNA damage, thereby promotes its dimerization, which is required for its activity in substrate ubiquitination and degradation. Particularly, ubiquitination at a specific lysine on β-TrCP suppresses dimerization. The key mediator protein of DDR, 53BP1, forms oligomers and associates with β-TrCP to inhibit its activity in unstressed cells. Upon DNA damage, 53BP1 is degraded in the nucleoplasm, which requires oligomerization and is promoted by Usp28 in a β-TrCP-dependent manner. Consequently, 53BP1 destruction releases and activates β-TrCP during DNA damage response. Moreover, 53BP1 deletion and DNA damage promote β-TrCP dimerization and recruitment to chromatin sites that locate in the vicinity of putative replication origins. Subsequently, the chromatin-associated Cdc25A is degraded by β-TrCP at the origins. The stimulation of β-TrCP binding to the origins upon DNA damage is accompanied by unloading of Cdc45, a crucial component of pre-initiation complexes for replication. Loading of Cdc45 to origins is a key Cdk2-dependent step for DNA replication initiation, indicating that localized Cdc25A degradation by β-TrCP at origins inactivates Cdk2, thereby inhibits the initiation of DNA replication. Collectively, this study suggests a novel mechanism for the regulation of DNA replication upon DNA damage, which involves 53BP1- and Usp28-dependent activation of the SCF(β-TrCP) ligase in Cdc25A degradation. N2 - DNA-Schäden treten häufig in Folge zellulären Fortschrittes oder durch externe Faktoren auf. Um die Integrität des Genoms zu bewahren und DNA Schäden zu reparieren, die Ursache für viele Autoimmunkrankheiten und Krebs sind, hat sich ein durch DNA Schäden getriggertes Geflecht aus Reparaturprozessen (englisch: “DNA damage response (DDR)”) entwickelt. Hierbei ist es von großem Interesse zu verstehen, wie das Ubiquitin-Proteasom-System die zelluläre Antwort auf DNA-Schäden reguliert. Wir konnten zeigen, dass die SCF Ubiquitin Ligase β-TrCP durch geschädigte DNA aktiviert wird, was einen bisher unbekannten Mechanismus für die Regulation der DDR darstellt. Für den grundlegenden Schritt der durch DNA Schäden ausgelösten Inhibition der DNA Replikation – der Abbau von Cdc25A durch die E3 Ligase β-TrCP – wird die Deubiquitinase Usp28 benötigt. Diese deubiquitiniert β-TrCP als Antwort auf DNA-Schäden und fördert dadurch seine Dimerisierung, die für die Substrat-Ubiquitinierung und dem anschließenden Abbau erforderlich ist. Hierbei unterdrückt die Ubiquitinierung eines spezifischen Lysin-Rests von β-TrCP dessen Dimerisierung. Das Schlüsselprotein vom DDR, 53BP1, oligomerisiert und assoziiert mit β-TrCP, was seine Aktivität in gesunden Zellen inhibiert. Auf DNA-Schäden hin oligomerisiert 53BP1 und wird mit Hilfe von Usp28 abhängig von β-TrCP im Nukleoplasma abgebaut. Durch den Abbau von 53BP1 wird β-TrCP freigesetzt, aktiviert und kann auf DNA Schäden reagieren. Die Deletion von 53BP1 fördert die Dimerisierung von β-TrCP. Die Reparaturmaschinerie wird daraufhin an Stellen des Chromatins rekrutiert, die in der Nähe von vermeintlichen Replikationsursprüngen liegen. Chromatin-assoziiertes Cdc25A wird dann durch β-TrCP ubiquitiniert. Die Bindung von β-TrCP an die Replikationsursprünge in Folge von DNA Schädigung wird begleitet von der Freisetzung von Cdc45, das eine entscheidende Komponente des Präinitiationskomplexes darstellt. Das Beladen von Cdc45 an die Replikationsursprünge stellt eine Schlüsselfunktion der Cdc25A-abhängigen DNA Replikationsinititation dar. Gezielter Abbau von Cdc25A durch β-TrCP an den Replikationsursprüngen inaktiviert Cdk2 und inhibiert dadurch DNA Replikation. Zusammenfassend lässt sich konstatieren, dass unsere Studien einen neuartigen Mechanismus für die Regulation der DNA Replikation auf DNA Schäden hin aufgezeigt haben, der die 53BP1- und Usp28-abhängige Aktivierung der SCF(β-TrCP) Ubiquitin Ligase im Abbau von Cdc25A beinhaltet. KW - DNS-Schädigung KW - DNS-Reparatur KW - Ubiquitin KW - DNA damage KW - Ubiquitin system Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-160064 ER - TY - THES A1 - Ghanawi, Hanaa T1 - Loss of full-length hnRNP R isoform impairs DNA damage response in motoneurons by inhibiting Yb1 recruitment to Chromatin T1 - Der Verlust der hnRNP R Volllängen-Isoform beeinträchtigt die DNA-Reparaturmechanismen in Motoneuronen durch die verminderte Rekrutierung von Yb1 zu Chromatin N2 - Motoneurons are highly compartmentalized cells with very long extensions that separate their nerve terminals from cell bodies. To maintain their extensive morphological complexity and protect their cellular integrity from neurotoxic stresses, neurons rely on the functions of RNA-binding proteins. One such protein is hnRNP R, a multifunctional protein with a plethora of roles related to RNA metabolism that comes into play in the nervous system. hnRNP R is localized mainly in the nucleus but also exists in the cytoplasm and axons of motoneurons. Increasing in vitro evidence indicates a potential function of hnRNP R in the development and maintenance of motoneurons by regulating axon growth and axonal RNA transport. Additionally, hnRNP R interacts with several proteins involved in motoneuron diseases. Hnrnpr pre-mRNA undergoes alternative splicing to produce transcripts encoding two protein isoforms: a full-length protein (hnRNP R-FL) and a shorter form lacking the N-terminal acidic domain (hnRNP R-ΔN). While the neuronal defects produced by total hnRNP R depletion have been investigated before, the contribution of individual isoforms towards such functions has remained mostly unknown. In this study, we showed that while both isoforms are expressed across multiple tissues, the full-length isoform is particularly abundant in the nervous system. We generated a mouse model for selective knockout of the full-length hnRNP R isoform (Hnrnprtm1a/tm1a) and found that the hnRNP R-∆N isoform remains expressed in these mice and is upregulated in a compensatory post-transcriptional process. We found that the truncated isoform is sufficient to support subcellular RNA transport related to axon growth in primary motoneurons. However, Hnrnprtm1a/tm1a mice show defects in DNA damage repair after exposure to γ-irradiation and etoposide. Knock down of both hnRNP R isoforms showed a similar extent of DNA damage as for motoneurons depleted of just full-length hnRNP R. Rescue experiments showed that expression of full-length hnRNP R but not of hnRNP R-ΔN can restore DNA damage repair when endogenous hnRNP R is depleted. By performing subcellular fractionation, we found that hnRNP R associates with chromatin independently from its association with pre-mRNA. Interestingly, we show that hnRNP R interacts with phosphorylated histone H2AX (γ-H2AX), following DNA damage. Proteomics analysis identifies the multifunctional protein Y-box binding protein 1 (Yb1) as one of the top interacting partners of hnRNP R. Similar to loss of full-length hnRNP R, DNA damage repair was impaired upon knockdown of Yb1 in motoneurons. Finally, we show that following exposure to γ-irradiation, Yb1 is recruited to the chromatin where it interacts with γ-H2AX, a mechanism that is dependent on the full-length hnRNP R. Taken together, this study describes a novel function of the full-length isoform of hnRNP R in maintaining the genomic integrity of motoneurons and provides new mechanistic insights into its function in DNA damage response. N2 - Motoneurone sind stark polarisierte Zellen mit langen Ausläufern, die den Zellkörper vonden Nervenendungen separieren. Um diese hoch komplexe Morphologie aufrechtzuerhalten und den Schutz vor neurotoxischen Stressoren zu gewährleisten, sind Motoneurone auf die Funktion von RNA-bindenden Proteinen angewiesen. Zu dieser Gruppe Proteinen zählt hnRNP R, welches eine Vielzahl an Funktionen beim RNA Metabolismus in sich vereint. hnRNP R ist größtenteils im Zellkern lokalisiert, ist aber auch im Zytoplasma und in den Axonen zu detektieren. Ergebnisse aus Studien deuten darauf hin, dass hnRNP R durch Regulation des axonalen Transport von mRNA Axonenwachstum und die Entwicklung und Polarität von Motoneuronen unterstützt. Darüberhinaus interagiert hnRNP R mit verschiedenen Proteinen, die mit Pathomechanismen von Motoneuronenerkrankungen in Verbindung gebracht werden. Durch alternatives Spleißen der Hnrnpr prä-mRNA entstehen unterschiedliche Transkripte, die für zwei Proteine kodieren: eine Volllängen Isoform und eine trunkierte Isoform ohne N- Terminale Domäne (hnRNP R- ΔN). Die neuronalen Defekte, die durch den vollständigen Verlust von hnRNP R hervorgerufen werden, wurden bereits untersucht, jedoch ist die zelluläre Rolle der verschiedenen Isoformen unbekannt. In der vorliegenden Arbeit wurde gezeigt, dass die unterschiedlichen hnRNP R Isoformen in unterschiedlichen Geweben exprimiert werden, wobei die Volllängen Isoform vor allem in Nervensystem zu finden ist. Um die Funktionen der beiden Isoformen genauer zu untersuchen, wurde ein Mausmodell mit selektivem Knockout der Volllängen hnRNP R Isoform (Hnrnprtm1a/tm1a) hergestellt. Die Ergebnisse zeigen, dass durch selektiven Verlust des Volllängen Proteins, die Expression der hnRNP R- ΔN Isoform (post-transkriptionell) erhöht ist und völlig ausreicht, um den axonalen Transport von RNAs für das Axonenwachstum und in primären Motoneuronen zu gewährleisten. Allerdings, weisen Volllängen hnRNP R-defiziente Motoneurone Defekte bei der DNA-Reparatur nach Röntgen-Bestrahlung auf. Mittels subzellulärer Fraktionierungen konnten wir zeigen, dass hnRNP R, unabhängig von seiner Bindung an prä-mRNAs, mit Chromatin interagiert. Des Weiteren zeigten unsere Ergebnisse, dass hnRNP R nach Bestrahlung mit der phosphorylierten Form von Histon H2AX (γ-H2AX) interagiert. Mit Hilfe von Proteom- Analysen konnten wir das Y-Box-Bindungsprotein 1 (Yb1) als hnRNP R Interaktionspartner identifizieren. Ebenso wie der Verlust von hnRNP R, führt der Verlust von Yb1 in primären Motoneuronen zur Beeinträchtigung der DNA-Reparatur nach Bestrahlung. Weiterführende Untersuchungen haben ergeben, dass Yb1 nach Bestrahlung zu Chromatin rekrutiert wird und dass dieser Mechanismus vom Volllängen hnRNP R anhängig ist. Zusammengefasst liefern unsere Daten neue Erkenntnisse über DNA-Reparaturmechanismen und deuten darauf hin, dass hnRNP R neben den weitreichenden Funktionen beim RNA Metabolismus auch für die Aufrechterhaltung der genomischen Integrität verantwortlich ist. KW - hnRNP R KW - Yb1 KW - DNA damage KW - motoneurons Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-258492 ER -