TY - JOUR A1 - Fazeli, Gholamreza A1 - Stetter, Maurice A1 - Lisack, Jaime N. A1 - Wehman, Ann M. T1 - C. elegans Blastomeres Clear the Corpse of the Second Polar Body by LC3-Associated Phagocytosis JF - Cell Reports N2 - To understand how undifferentiated pluripotent cells cope with cell corpses, we examined the clearance of polar bodies born during female meiosis. We found that polar bodies lose membrane integrity and expose phosphatidylserine in Caenorhabditis elegans. Polar body signaling recruits engulfment receptors to the plasma membrane of embryonic blastomeres using the PI3K VPS-34, RAB-5 GTPase and the sorting nexin SNX-6. The second polar body is then phagocytosed using receptor-mediated engulfment pathways dependent on the Rac1 ortholog CED-10 but undergoes non-apoptotic programmed cell death independent of engulfment. RAB-7 GTPase is required for lysosome recruitment to the polar body phagosome, while LC3 lipidation is required for degradation of the corpse membrane after lysosome fusion. The polar body phagolysosome vesiculates in an mTOR- and ARL-8-dependent manner, which assists its timely degradation. Thus, we established a genetic model to study clearance by LC3-associated phagocytosis and reveal insights into the mechanisms of phagosome maturation and degradation. KW - cell corpse clearance KW - phagosome maturation KW - LC3-associated phagocytosis KW - lysosomal degradation KW - phagolysosome tubulation KW - polar body KW - non-canonical autophagy KW - non-apoptotic programmed cell death Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-227651 VL - 23 ER - TY - THES A1 - Karwen, Till T1 - Platelets promote insulin secretion of pancreatic β-cells T1 - Thrombozyten fördern die Insulinsekretion von pankreatischen β-Zellen N2 - The pancreas is the key organ for the maintenance of euglycemia. This is regulated in particular by α-cell-derived glucagon and β-cell-derived insulin, which are released in response to nutrient deficiency and elevated glucose levels, respectively. Although glucose is the main regulator of insulin secretion, it is significantly enhanced by various potentiators. Platelets are anucleate cell fragments in the bloodstream that are essential for hemostasis to prevent and stop bleeding events. Besides their classical role, platelets were implemented to be crucial for other physiological and pathophysiological processes, such as cancer progression, immune defense, and angiogenesis. Platelets from diabetic patients often present increased reactivity and basal activation. Interestingly, platelets store and release several substances that have been reported to potentiate insulin secretion by β-cells. For these reasons, the impact of platelets on β-cell functioning was investigated in this thesis. Here it was shown that both glucose and a β-cell-derived substance/s promote platelet activation and binding to collagen. Additionally, platelet adhesion specifically to the microvasculature of pancreatic islets was revealed, supporting the hypothesis of their influence on glucose homeostasis. Genetic or pharmacological ablation of platelet functioning and platelet depletion consistently resulted in reduced insulin secretion and associated glucose intolerance. Further, the platelet-derived lipid fraction was found to enhance glucose-stimulated insulin secretion, with 20-hydroxyeicosatetraenoic acid (20-HETE) and possibly also lyso-precursor of platelet-activating factor (lysoPAF) being identified as crucial factors. However, the acute platelet-stimulated insulin secretion was found to decline with age, as did the levels of platelet-derived 20-HETE. In addition to their direct stimulatory effect on insulin secretion, specific defects in platelet activation have also been shown to affect glucose homeostasis by potentially influencing islet vascular development. Taking together, the results of this thesis suggest a direct and indirect mechanism of platelets in the regulation of insulin secretion that ensures glucose homeostasis, especially in young individuals. N2 - Der Pankreas ist das Schlüsselorgan für die Aufrechterhaltung der Glukosehomöostase. Diese wird insbesondere durch das von α-Zellen stammende Glukagon und von β-Zellen stammende Insulin reguliert, die als Reaktion auf Nährstoffmangel beziehungsweise erhöhte Glukosespiegel freigesetzt werden. Obwohl Glukose der Hauptregulator der Insulinsekretion ist, wird sie durch verschiedene Potentiatoren erheblich gesteigert. Thrombozyten sind kernlose Zellfragmente im Blutkreislauf, die für die Hämostase unerlässlich sind. Neben ihrer klassischen Funktion sind sie auch an anderen physiologischen und pathophysiologischen Prozessen beteiligt, etwa an der Tumorentwicklung, der Immunabwehr und der Angiogenese. Thrombozyten von Diabetikern weisen häufig eine erhöhte Reaktivität und basale Aktivierung auf. Außerdem speichern und sekretieren sie Substanzen, von denen bekannt ist, dass sie die Insulinsekretion durch β-Zellen verstärken. Aus diesen Gründen wurde in dieser Arbeit der Einfluss von Thrombozyten auf die Funktion von β-Zellen untersucht. Es konnte gezeigt werden, dass sowohl Glukose als auch eine aus β-Zellen stammende Substanz/en die Thrombozytenaktivierung und die Bindung an Kollagen fördern. Darüber hinaus wurde eine spezifische Thrombozytenadhäsion an der Mikrovaskulatur der pankreatischen Inseln festgestellt, was die Hypothese ihres Einflusses auf die Glukosehomöostase unterstützt. Eine genetische oder pharmakologische Ablation der Thrombozytenfunktion sowie eine Depletion von Thrombozyten führten zu einer verminderten Insulinsekretion und einer damit verbundenen Glukoseintoleranz. Hierbei erwies sich die Lipidfraktion von Thrombozyten als essentieller Potentiator für die glukosestimulierte Insulinsekretion, wobei 20-Hydroxyeicosatetraensäure (20-HETE) und die Lyso-Vorstufe des Plättchen-Aktivierenden Faktors (LysoPAF) als entscheidende Faktoren identifiziert werden konnten. Weiterhin wurde festgestellt, dass sowohl der direkte stimulierende Effekt von Thrombozyten auf die Insulinsekretion, als auch deren 20-HETE Sekretion mit zunehmendem Alter abnimmt. Thrombozyten beeinflussten außerdem die Inselvaskularisierung, welche mutmaßlich zusätzlich zu Glukoseintoleranz führt. Insgesamt deuten die Ergebnisse dieser Arbeit auf einen direkten und indirekten Mechanismus der Thrombozyten bei der Regulierung der Insulinsekretion hin, der die Glukosehomöostase insbesondere bei jungen Menschen gewährleistet. KW - platelet KW - β cell KW - insulin KW - pancreas KW - diabetes KW - Thrombozyt KW - Insulinsekretion Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-313933 ER - TY - JOUR A1 - Schurr, Yvonne A1 - Spindler, Markus A1 - Kurz, Hendrikje A1 - Bender, Markus T1 - The cytoskeletal crosslinking protein MACF1 is dispensable for thrombus formation and hemostasis JF - Scientific Reports N2 - Coordinated reorganization of cytoskeletal structures is critical for key aspects of platelet physiology. While several studies have addressed the role of microtubules and filamentous actin in platelet production and function, the significance of their crosstalk in these processes has been poorly investigated. The microtubule-actin cross-linking factor 1 (MACF1; synonym: Actin cross-linking factor 7, ACF7) is a member of the spectraplakin family, and one of the few proteins expressed in platelets, which possess actin and microtubule binding domains thereby facilitating actin-microtubule interaction and regulation. We used megakaryocyte- and platelet-specific Macf1 knockout (Macf1fl/fl, Pf4-Cre) mice to study the role of MACF1 in platelet production and function. MACF1 deficient mice displayed comparable platelet counts to control mice. Analysis of the platelet cytoskeletal ultrastructure revealed a normal marginal band and actin network. Platelet spreading on fibrinogen was slightly delayed but platelet activation and clot traction was unaffected. Ex vivo thrombus formation and mouse tail bleeding responses were similar between control and mutant mice. These results suggest that MACF1 is dispensable for thrombopoiesis, platelet activation, thrombus formation and the hemostatic function in mice. KW - actin KW - microtubules Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-234966 VL - 9 ER - TY - JOUR A1 - Lee, Hong-Jen A1 - Li, Chien-Feng A1 - Ruan, Diane A1 - He, Jiabei A1 - Montal, Emily D. A1 - Lorenz, Sonja A1 - Girnun, Geoffrey D. A1 - Chan, Chia-Hsin T1 - Non-proteolytic ubiquitination of Hexokinase 2 by HectH9 controls tumor metabolism and cancer stem cell expansion JF - Nature Communications N2 - Enormous efforts have been made to target metabolic dependencies of cancer cells for developing new therapies. However, the therapeutic efficacy of glycolysis inhibitors is limited due to their inability to elicit cell death. Hexokinase 2 (HK2), via its mitochondrial localization, functions as a central nexus integrating glycolysis activation and apoptosis resilience. Here we identify that K63-linked ubiquitination by HectH9 regulates the mitochondrial localization and function of HK2. Through stable isotope tracer approach and functional metabolic analyses, we show that HectH9 deficiency impedes tumor glucose metabolism and growth by HK2 inhibition. The HectH9/HK2 pathway regulates cancer stem cell (CSC) expansion and CSC-associated chemoresistance. Histological analyses show that HectH9 expression is upregulated and correlated with disease progression in prostate cancer. This work uncovers that HectH9 is a novel regulator of HK2 and cancer metabolism. Targeting HectH9 represents an effective strategy to achieve long-term tumor remission by concomitantly disrupting glycolysis and inducing apoptosis. KW - cancer KW - cancer metabolism KW - molecular biology Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-236445 VL - 10 ER - TY - JOUR A1 - Baluapuri, Apoorva A1 - Hofstetter, Julia A1 - Dudvarski Stankovic, Nevenka A1 - Endres, Theresa A1 - Bhandare, Pranjali A1 - Vos, Seychelle Monique A1 - Adhikari, Bikash A1 - Schwarz, Jessica Denise A1 - Narain, Ashwin A1 - Vogt, Markus A1 - Wang, Shuang-Yan A1 - Düster, Robert A1 - Jung, Lisa Anna A1 - Vanselow, Jens Thorsten A1 - Wiegering, Armin A1 - Geyer, Matthias A1 - Maric, Hans Michael A1 - Gallant, Peter A1 - Walz, Susanne A1 - Schlosser, Andreas A1 - Cramer, Patrick A1 - Eilers, Martin A1 - Wolf, Elmar T1 - MYC Recruits SPT5 to RNA Polymerase II to Promote Processive Transcription Elongation JF - Molecular Cell N2 - The MYC oncoprotein binds to promoter-proximal regions of virtually all transcribed genes and enhances RNA polymerase II (Pol II) function, but its precise mode of action is poorly understood. Using mass spectrometry of both MYC and Pol II complexes, we show here that MYC controls the assembly of Pol II with a small set of transcription elongation factors that includes SPT5, a subunit of the elongation factor DSIF. MYC directly binds SPT5, recruits SPT5 to promoters, and enables the CDK7-dependent transfer of SPT5 onto Pol II. Consistent with known functions of SPT5, MYC is required for fast and processive transcription elongation. Intriguingly, the high levels of MYC that are expressed in tumors sequester SPT5 into non-functional complexes, thereby decreasing the expression of growth-suppressive genes. Altogether, these results argue that MYC controls the productive assembly of processive Pol II elongation complexes and provide insight into how oncogenic levels of MYC permit uncontrolled cellular growth. KW - MYC KW - SPT5 KW - SUPT5H KW - SPT6 KW - RNA polymerase II KW - transcription KW - elongation rate KW - processivity KW - directionality KW - tumorigenesis Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-221438 VL - 74 ER - TY - JOUR A1 - Chen, Dan A1 - Gehringer, Matthias A1 - Lorenz, Sonja T1 - Developing Small-Molecule Inhibitors of HECT-Type Ubiquitin Ligases for Therapeutic Applications: Challenges and Opportunities JF - ChemBioChem N2 - The ubiquitin system regulates countless physiological and disease-associated processes and has emerged as an attractive entryway for therapeutic efforts. With over 600 members in the human proteome, ubiquitin ligases are the most diverse class of ubiquitylation enzymes and pivotal in encoding specificity in ubiquitin signaling. Although considerable progress has been made in the identification of small molecules targeting RING ligases, relatively little is known about the “druggability” of HECT (homologous to E6AP C terminus) ligases, many of which are critically implicated in human pathologies. A major obstacle to optimizing the few available ligands is our incomplete understanding of their inhibitory mechanisms and the structural basis of catalysis in HECT ligases. Here, we survey recent approaches to manipulate the activities of HECT ligases with small molecules to showcase the particular challenges and opportunities these enzymes hold as therapeutic targets. KW - drug discovery KW - enzymes KW - inhibitors KW - reaction mechanisms KW - structure-activity relationships KW - ubiquitin Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-222412 VL - 19 ER - TY - THES A1 - Nair, Radhika Karal T1 - Structural and biochemical characterization of USP28 inhibition by small molecule inhibitors T1 - Strukturelle und biochemische Charakterisierung der Hemmung von USP28 durch niedermolekulare Inhibitoren N2 - Ubiquitination is an important post-translational modification that maintains cellular homeostasis by regulating various biological processes. Deubiquitinases (DUBs) are enzymes that reverse the ubiquitination process by catalyzing the removal of ubiquitin from a substrate. Abnormal expression or function of DUBs is often associated with the onset and progression of various diseases, including cancer. Ubiquitin specific proteases (USPs), which constitute the largest family of DUBs in humans, have become the center of interest as potential targets in cancer therapy as many of them display increased activity or are overexpressed in a range of malignant tumors or the tumor microenvironment. Two related members of the USP family, USP28 and USP25, share high sequence identities but play diverse biological roles. USP28 regulates cell proliferation, oncogenesis, DNA damage repair and apoptosis, whereas USP25 is involved in the anti-viral response, innate immunity and ER-associated degradation in addition to carcinogenesis. USP28 and USP25 also exhibit different oligomeric states – while USP28 is a constitutively active dimer, USP25 assumes an auto-inhibited tetrameric structure. The catalytic domains of both USP28 and USP25 comprise the canonical, globular USP-domain but contain an additional, extended insertion site called USP25/28 catalytic domain inserted domain (UCID) that mediates oligomerization of the proteins. Disruption of the USP25 tetramer leads to the formation of an activated dimeric protein. However, it is still not clear what triggers its activation. Due to their role in maintaining and stabilizing numerous oncoproteins, USP28 and USP25 have emerged as interesting candidates for anti-cancer therapy. Recent advances in small-molecular inhibitor development have led to the discovery of relatively potent inhibitors of USP28 and USP25. This thesis focuses on the structural elucidation of USP28 and the biochemical characterization of USP28/USP25, both in complex with representatives of three out of the eight compound classes reported as USP28/USP25-specific inhibitors. The crystal structures of USP28 in complex with the AZ compounds, Vismodegib and FT206 reveal that all three inhibitor classes bind into the same allosteric pocket distant from the catalytic center, located between the palm and the thumb subdomains (the S1-site). Intriguingly, this binding pocket is identical to the UCID-tip binding interface in the USP25 tetramer, rendering the protein in a locked, inactive conformation. Formation of the binding pocket in USP28 requires a shift in the helix α5, which induces conformational changes and local distortion of the binding channel that typically accommodates the C-terminal tail of Ubiquitin, thus preventing catalysis and abrogating USP28 activity. The key residues of the USP28-inhibitor binding pocket are highly conserved in USP25. Mutagenesis studies of these residues accompanied by biochemical and biophysical assays confirm the proposed mechanism of inhibition and similar binding to USP25. This work provides valuable insights into the inhibition mechanism of the small molecule compounds specifically for the DUBs USP28 and USP25. The USP28-inhibitor complex structures offer a framework to develop more specific and potent inhibitors. N2 - Ubiquitinierung ist eine wichtige posttranslationale Modifikation, die die zelluläre Homöostase aufrechterhält, indem sie verschiedene biologische Prozesse reguliert. Deubiquitinasen (DUBs) sind Enzyme, die den Ubiquitinierungsprozess umkehren, indem sie die Entfernung von Ubiquitin von einem Substrat katalysieren. Eine abnorme Expression oder Funktion von DUBs wird häufig mit dem Auftreten und Fortschreiten verschiedener Krankheiten, einschließlich Krebs, in Verbindung gebracht. Ubiquitin-spezifische Proteasen (USPs), die im Menschen die größte Familie der DUBs bilden, sind als potenzielle Ziele in der Krebstherapie von besonderem Interesse, da viele von ihnen in bösartigen Tumoren oder deren Mikroumgebung abnormal aktiv oder überexprimiert sind. Die zwei eng verwandten Mitglieder der USP-Familie, USP28 und USP25, weisen eine hohe Sequenzidentität auf, sind aber an unterschiedlichen biologischen Prozessen beteiligt. USP28 reguliert die Zellproliferation, die Onkogenese, die Reparatur von DNA-Schäden und die Apoptose, während USP25 eine Rolle bei der antiviralen Reaktion, der angeborenen Immunität, dem ER-assoziierten Abbau und der Carcinogenese spielt. USP28 und USP25 weisen auch unterschiedliche oligomere Zustände auf. Während USP28 ein konstitutiv aktives Dimer bildet, tritt USP25 als auto-inhibiertes Tetramer auf. Strukturell bestehen die katalytischen Domänen sowohl von USP28 als auch von USP25 aus der kanonischen globulären USP-Domäne enthalten jedoch eine zusätzliche Insertion, die als „USP25/28 catalytic domain inserted domain (UCID)“ bezeichnet wird und die Oligomerisierung der Proteine vermittelt. Die Dissoziation des USP25 Tetramers in Dimere führt zu einem aktivierten USP25-Protein. Es ist jedoch immer noch nicht klar, was seine Aktivierung auslöst. Aufgrund ihrer Rolle bei der Aufrechterhaltung und Stabilisierung zahlreicher Onkoproteine haben sich USP28 und USP25 als interessante Kandidaten für die Entwicklung von Medikamenten in der Krebstherapie erwiesen. Jüngste Fortschritte in der Entwicklung von niedermolekularen Inhibitoren haben zur Entdeckung von relativ potenten Inhibitoren von USP28 und USP25 geführt. Diese Arbeit konzentriert sich auf die Strukturaufklärung von USP28 und die biochemische Charakterisierung von USP28/USP25, beide im Komplex mit Vertretern von drei der acht Verbindungsklassen, die als USP28/USP25-spezifische Inhibitoren bekannt sind. Die Kristallstrukturen von USP28 im Komplex mit den AZ-Verbindungen, Vismodegib und FT206 zeigen, dass alle Inhibitoren in einer ähnlichen Region an USP28 binden - einer allosterischen Tasche, die in der Nähe des katalytischen Zentrums liegt und sich zwischen der Handflächen- und der Daumen-Subdomäne befindet. Diese Bindungstasche ist identisch mit der Position, an der der „UCID-tip“ im USP25-Tetramer bindet und das Protein in eine verschränkte, inaktive Konformation versetzt. Die Bildung der Bindungstasche in USP28 erfordert eine Verschiebung der α5-Helix, die zu Konformationsänderungen und einer lokalen Verzerrung des Bindungskanalsführt, der normalerweise den C-terminus des Ubiquitin-Moleküls bindet und so die Katalyse verhindert und die Aktivität von USP28 hemmt. Die Schlüsselreste der USP28-Inhibitor-Bindungstasche sind in USP25 hoch konserviert. Mutagenese-Studien dieser Aminosäuren, begleitet von biochemischen und biophysikalischen Analysen, bestätigen den vorgeschlagenen Mechanismus der Hemmung und eine ähnliche Bindung der Inhibitoren an USP25. Diese Arbeit liefert wertvolle Einblicke in den Hemmungsmechanismus der Kleinmolekülverbindungen, die spezifisch für die DUBs USP28 und USP25 entwickelt worden sind. Die Strukturen der USP28-Inhibitor-Komplexe bieten eine Grundlage für die zukünftige Entwicklung spezifischerer und wirksamerer Inhibitoren. KW - USP KW - Inhibition KW - enzyme KW - crystallography KW - Unique Selling Proposition KW - Inhibition KW - Enzym KW - Kristallographie Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-281742 ER - TY - JOUR A1 - Angay, Oguzhan A1 - Friedrich, Mike A1 - Pinnecker, Jürgen A1 - Hintzsche, Henning A1 - Stopper, Helga A1 - Hempel, Klaus A1 - Heinze, Katrin G. T1 - Image-based modeling and scoring of Howell–Jolly Bodies in human erythrocytes JF - Cytometry Part A N2 - The spleen selectively removes cells with intracellular inclusions, for example, detached nuclear fragments in circulating erythrocytes, called Howell–Jolly Bodies (HJBs). With absent or deficient splenic function HJBs appear in the peripheral blood and can be used as a simple and non-invasive risk-indicator for fulminant potentially life-threatening infection after spleenectomy. However, it is still under debate whether counting of the rare HJBs is a reliable measure of splenic function. Investigating HJBs in premature erythrocytes from patients during radioiodine therapy gives about 10 thousand times higher HJB counts than in blood smears. However, we show that there is still the risk of false-positive results by unspecific nuclear remnants in the prepared samples that do not originate from HJBs, but from cell debris residing above or below the cell. Therefore, we present a method to improve accuracy of image-based tests that can be performed even in non-specialized medical institutions. We show how to selectively label HJB-like clusters in human blood samples and how to only count those that are undoubtedly inside the cell. We found a “critical distance” dcrit referring to a relative HJB-Cell distance that true HJBs do not exceed. To rule out false-positive counts we present a simple inside-outside-rule based on dcrit—a robust threshold that can be easily assessed by combining conventional 2D imaging and straight-forward image analysis. Besides data based on fluorescence imaging, simulations of randomly distributed HJB-like objects on realistically modelled cell objects demonstrate the risk and impact of biased counting in conventional analysis. © 2017 The Authors. Cytometry Part A published by Wiley Periodicals, Inc. on behalf of ISAC. KW - fluorescence imaging KW - splenic function KW - Jolly bodies KW - image analysis Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-221140 VL - 93 ER -