TY - THES A1 - Bender, Markus T1 - Studies on platelet cytoskeletal dynamics and receptor regulation in genetically modified mice T1 - Untersuchungen zur Zytoskelettdynamik und Rezeptorregulation in Blutplättchen genetisch modifizierter Mäuse N2 - Blutplättchen werden von Megakaryozyten im Knochenmark in einem Prozess produziert, an dem Aktin beteiligt ist. Aktin-Depolymerisierungsfaktor (ADF) und Cofilin sind Aktin-bindende Proteine, die als entscheidende Regulatoren im Aktinumsatz agieren, indem sie das Schneiden und Depolymerisieren von Filamenten unterstützen. Die Bedeutung von ADF/Cofilin und des Aktinumsatzes in der Bildung von Blutplättchen ist gegenwärtig nicht bekannt. In der vorliegenden Arbeit wurden Mäuse untersucht, die eine konstitutive ADF-Defizienz und/oder die eine konditionale n-Cofilin Defizienz (Cre/loxP) aufweisen. Um Cofilin nur in Megakaryozyten und Blutplättchen auszuschalten, wurden Cofilinfl/fl Mäuse mit PF4-Cre Mäusen verpaart. ADF- oder n-Cofilin-defiziente Mäuse hatten keinen oder nur einen geringen Phänotyp in Blutplättchen. Eine Defizienz von ADF und n-Cofilin führte hingegen zu einem beinahe kompletten Verlust der Blutplättchen, was mit Defekten in der Bildung von Plättchenzonen in Knochenmark-Megakaryozyten einherging. Weitere Untersuchungen an in vitro und ex vivo kultivierten Megakaryozyten zeigten eine Reduzierung der Bildung von Proplättchen und das Fehlen der typischen Verdickungen der Proplättchen. Diese Daten zeigen redundante aber essentielle Funktionen von ADF und n-Cofilin im terminalen Schritt der Plättchenbildung in vitro und in vivo, und belegen erstmals eine wichtige Rolle des Aktinumsatzes in diesem Prozess. Im zweiten Teil dieser Dissertation wurden die Mechanismen untersucht, die für die zelluläre Regulierung des Hauptkollagenrezeptors auf Blutplättchen, Glykoprotein VI (GPVI), verantwortlich sind. Nach einer Gefäßwandverletzung wird subendotheliales Kollagen freigelegt, wodurch GPVI die Aktivierung von Blutplättchen vermittelt, und damit zur Blutstillung (Hämostase), aber auch zum Verschluss eines verletzten Gefäßes beitragen kann, was letztendlich zu einem Myokardinfarkt oder einem Schlaganfall führen kann. Deshalb ist GPVI ein attraktives Zielprotein für eine anti-thrombotische Therapie, insbesondere weil frühere Studien gezeigt haben, dass anti-GPVI Antikörper eine irreversible Herunterregulierung des Rezeptors auf zirkulierenden Blutplättchen mittels Internalisierung und Abspaltung induzieren. Es wird vermutet, dass Metalloproteinasen der ADAM (a disintegrin and metalloproteinase domain) - Familie das Abspalten vermitteln, jedoch fehlt in vivo der Beweis dafür. Um die Mechanismen des Abspaltungsprozesses des GPVI Rezeptors in vivo besser verstehen zu können, wurden zwei Mauslinien, GPVI- und konditionale ADAM10-defiziente Mäuse, generiert und zusätzlich sogenannte „low TACE (TNFalpha converting enzyme)“ Mäuse analysiert. Es konnte gezeigt werden, dass GPVI in vitro von ADAM10 oder TACE in Abhängigkeit der Signalwege, die zum Abspalten des Rezeptors führen, geschnitten werden kann. Darüberhinaus wurde GPVI in vivo nach Antikörperverabreichung in ADAM10-defizienten Mäusen und „low TACE“ Mäusen herunterreguliert, was vermuten lässt, dass entweder beide Metalloproteinasen an diesem Prozess beteiligt sind oder noch eine zusätzliche Metalloproteinase für die GPVI Regulation in vivo verantwortlich ist. N2 - Platelets are produced by bone marrow megakaryocytes in a process involving actin dynamics. Actin-depolymerizing factor (ADF) and cofilin are actin-binding proteins that act as key regulators in actin turnover by promoting filament severing and depolymerization. The overall significance of ADF/cofilin function and actin turnover in platelet formation is presently unclear. In the first part of this thesis, platelet formation and function were studied in mice constitutively lacking ADF and/or mice with a conditional deficiency (Cre/loxP) in n-cofilin. To delete cofilin exclusively in megakaryocytes and platelets, cofilinfl/fl mice were crossed with PF4 (platelet factor 4)-Cre mice. While a single-deficiency in ADF or n-cofilin resulted in no or only a minor platelet formation defect, respectively, a double-deficiency in ADF and n-cofilin led to an almost complete loss of platelets. Bone marrow megakaryocytes of ADF/n-cofilin-deficient mice showed defective platelet zone formation. Interestingly, in vitro and ex vivo megakaryocyte differentiation revealed reduced proplatelet formation and absence of platelet-forming swellings. These data establish that ADF and n-cofilin have redundant but essential roles in the terminal step of platelet formation in vitro and in vivo. In the second part of the thesis, mechanisms underlying cellular regulation of the major platelet collagen receptor, glycoprotein VI (GPVI), were studied. GPVI mediates platelet activation on exposed subendothelial collagens at sites of vascular injury, and thereby contributes to normal hemostasis but also to occlusion of diseased vessels in the setting of myocardial infarction or stroke. Thus, GPVI is an attractive target for anti-thrombotic therapy, particularly because previous studies have shown that anti-GPVI antibodies induce irreversible down-regulation of the receptor in circulating platelets by internalization and ectodomain shedding. Metalloproteinases of the ADAM (a disintegrin and metalloproteinase domain) family are suspected to mediate this ectodomain shedding, but in vivo evidence for this is lacking. To study the mechanism of GPVI regulation in vivo, two mouse lines, Gp6 knock-out and Adam10fl/fl, PF4-Cre mice, were generated and in addition low TACE (TNFalpha converting enzyme) mice were analyzed. It was shown that GPVI can be cleaved in vitro by ADAM10 or TACE depending on the shedding-inducing signaling pathway. Moreover, GPVI was down-regulated in vivo upon antibody injection in ADAM10-deficient and low TACE mice suggesting that either both or an additional metalloproteinase is involved in GPVI regulation in vivo. KW - Zellskelett KW - Thrombozyt KW - Metalloproteinasen KW - Actin-bindende Proteine KW - Platelets KW - Cytoskeleton KW - Metalloproteases KW - Actin binding proteins Y1 - 2009 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-48390 ER - TY - JOUR A1 - Chen, Chunguang A1 - Rawat, Divya A1 - Samikannu, Balaji A1 - Bender, Markus A1 - Preissner, Klaus T. A1 - Linn, Thomas T1 - Platelet glycoprotein VI‐dependent thrombus stabilization is essential for the intraportal engraftment of pancreatic islets JF - American Journal of Transplantation N2 - Platelet activation and thrombus formation have been implicated to be detrimental for intraportal pancreatic islet transplants. The platelet‐specific collagen receptor glycoprotein VI (GPVI) plays a key role in thrombosis through cellular activation and the subsequent release of secondary mediators. In aggregometry and in a microfluidic dynamic assay system modeling flow in the portal vein, pancreatic islets promoted platelet aggregation and triggered thrombus formation, respectively. While platelet GPVI deficiency did not affect the initiation of these events, it was found to destabilize platelet aggregates and thrombi in this process. Interestingly, while no major difference was detected in early thrombus formation after intraportal islet transplantation, genetic GPVI deficiency or acute anti‐GPVI treatment led to an inferior graft survival and function in both syngeneic mouse islet transplantation and xenogeneic human islet transplantation models. These results demonstrate that platelet GPVI signaling is indispensable in stable thrombus formation induced by pancreatic islets. GPVI deficiency resulted in thrombus destabilization and inferior islet engraftment indicating that thrombus formation is necessary for a successful intraportal islet transplantation in which platelets are active modulators. KW - basic (laboratory) research / science KW - coagulation and hemostasis KW - graft survival KW - islet transplantation KW - molecular biology Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-224471 VL - 21 SP - 2079 EP - 2089 ER - TY - JOUR A1 - Cullmann, Katharina A1 - Jahn, Magdalena A1 - Spindler, Markus A1 - Schenk, Franziska A1 - Manukjan, Georgi A1 - Mucci, Adele A1 - Steinemann, Doris A1 - Boller, Klaus A1 - Schulze, Harald A1 - Bender, Markus A1 - Moritz, Thomas A1 - Modlich, Ute T1 - Forming megakaryocytes from murine‐induced pluripotent stem cells by the inducible overexpression of supporting factors JF - Research and Practice in Thrombosis and Haemostasis N2 - Background Platelets are small anucleate cells that circulate in the blood in a resting state but can be activated by external cues. In case of need, platelets from blood donors can be transfused. As an alternative source, platelets can be produced from induced pluripotent stem cells (iPSCs); however, recovered numbers are low. Objectives To optimize megakaryocyte (MK) and platelet output from murine iPSCs, we investigated overexpression of the transcription factors GATA‐binding factor 1 (GATA1); nuclear factor, erythroid 2; and pre–B‐cell leukemia transcription factor 1 (Pbx1) and a hyperactive variant of the small guanosine triphosphatase RhoA (RhoAhc). Methods To avoid off‐target effects, we generated iPSCs carrying the reverse tetracycline‐responsive transactivator M2 (rtTA‐M2) in the Rosa26 locus and expressed the factors from Tet‐inducible gammaretroviral vectors. Differentiation of iPSCs was initiated by embryoid body (EB) formation. After EB dissociation, early hematopoietic progenitors were enriched and cocultivated on OP9 feeder cells with thrombopoietin and stem cell factor to induce megakaryocyte (MK) differentiation. Results Overexpression of GATA1 and Pbx1 increased MK output 2‐ to 2.5‐fold and allowed prolonged collection of MK. Cytologic and ultrastructural analyses identified typical MK with enlarged cells, multilobulated nuclei, granule structures, and an internal membrane system. However, GATA1 and Pbx1 expression did not improve MK maturation or platelet release, although in vitro–generated platelets were functional in spreading on fibrinogen or collagen‐related peptide. Conclusion We demonstrate that the use of rtTA‐M2 transgenic iPSCs transduced with Tet‐inducible retroviral vectors allowed for gene expression at later time points during differentiation. With this strategy we could identify factors that increased in vitro MK production. KW - genetic modification KW - iPS cells KW - megakaryocytes KW - retroviral vectors KW - Tet‐inducible system Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-224565 VL - 5 IS - 1 SP - 111 EP - 124 ER - TY - JOUR A1 - Rosa, Annabelle A1 - Butt, Elke A1 - Hopper, Christopher P. A1 - Loroch, Stefan A1 - Bender, Markus A1 - Schulze, Harald A1 - Sickmann, Albert A1 - Vorlova, Sandra A1 - Seizer, Peter A1 - Heinzmann, David A1 - Zernecke, Alma T1 - Cyclophilin a is not acetylated at lysine-82 and lysine-125 in resting and stimulated platelets JF - International Journal of Molecular Sciences N2 - Cyclophilin A (CyPA) is widely expressed by all prokaryotic and eukaryotic cells. Upon activation, CyPA can be released into the extracellular space to engage in a variety of functions, such as interaction with the CD147 receptor, that contribute to the pathogenesis of cardiovascular diseases. CyPA was recently found to undergo acetylation at K82 and K125, two lysine residues conserved in most species, and these modifications are required for secretion of CyPA in response to cell activation in vascular smooth muscle cells. Herein we addressed whether acetylation at these sites is also required for the release of CyPA from platelets based on the potential for local delivery of CyPA that may exacerbate cardiovascular disease events. Western blot analyses confirmed the presence of CyPA in human and mouse platelets. Thrombin stimulation resulted in CyPA release from platelets; however, no acetylation was observed—neither in cell lysates nor in supernatants of both untreated and activated platelets, nor after immunoprecipitation of CyPA from platelets. Shotgun proteomics detected two CyPA peptide precursors in the recombinant protein, acetylated at K28, but again, no acetylation was found in CyPA derived from resting or stimulated platelets. Our findings suggest that acetylation of CyPA is not a major protein modification in platelets and that CyPA acetylation is not required for its secretion from platelets. KW - Cyclophilin A KW - acetylation KW - platelets KW - CD147 KW - EMMPRIN Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-284011 SN - 1422-0067 VL - 23 IS - 3 ER -