TY - JOUR A1 - Popp, Michael A1 - Thielman, Ina A1 - Nieswandt, Bernhard A1 - Stegner, David T1 - Normal Platelet Integrin Function in Mice Lacking Hydrogen Peroxide-Induced Clone-5 (Hic-5) JF - PLoS One N2 - Integrin αIIbβ3 plays a central role in the adhesion and aggregation of platelets and thus is essential for hemostasis and thrombosis. Integrin activation requires the transmission of a signal from the small cytoplasmic tails of the α or β subunit to the large extracellular domains resulting in conformational changes of the extracellular domains to enable ligand binding. Hydrogen peroxide-inducible clone-5 (Hic-5), a member of the paxillin family, serves as a focal adhesion adaptor protein associated with αIIbβ3 at its cytoplasmic tails. Previous studies suggested Hic-5 as a novel regulator of integrin αIIbβ3 activation and platelet aggregation in mice. To assess this in more detail, we generated Hic-5-null mice and analyzed activation and aggregation of their platelets in vitro and in vivo. Surprisingly, lack of Hic-5 had no detectable effect on platelet integrin activation and function in vitro and in vivo under all tested conditions. These results indicate that Hic-5 is dispensable for integrin αIIbβ3 activation and consequently for arterial thrombosis and hemostasis in mice. KW - platelet activation KW - fibrinogen KW - integrins KW - platelets KW - thrombin KW - flow cytometry KW - platelet aggregation KW - blood Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-125724 VL - 10 IS - 7 ER - TY - JOUR A1 - Hofmann, Sebastian A1 - Braun, Attila A1 - Pozgaj, Rastislav A1 - Morowski, Martina A1 - Vögtle, Timo A1 - Nieswandt, Bernhard T1 - Mice lacking the SLAM family member CD84 display unaltered platelet function in hemostasis and thrombosis JF - PLoS One N2 - Background Platelets are anuclear cell fragments derived from bone marrow megakaryocytes that safeguard vascular integrity by forming thrombi at sites of vascular injury. Although the early events of thrombus formation—platelet adhesion and aggregation—have been intensively studied, less is known about the mechanisms and receptors that stabilize platelet-platelet interactions once a thrombus has formed. One receptor that has been implicated in this process is the signaling lymphocyte activation molecule (SLAM) family member CD84, which can undergo homophilic interactions and becomes phosphorylated upon platelet aggregation. Objective The role of CD84 in platelet physiology and thrombus formation was investigated in CD84-deficient mice. Methods and Results We generated CD84-deficient mice and analyzed their platelets in vitro and in vivo. \(Cd84^{−/−}\) platelets exhibited normal activation and aggregation responses to classical platelet agonists. Furthermore, CD84 deficiency did not affect integrin-mediated clot retraction and spreading of activated platelets on fibrinogen. Notably, also the formation of stable three-dimensional thrombi on collagen-coated surfaces under flow ex vivo was unaltered in the blood of \(Cd84^{−/−}\) mice. In vivo, \(Cd84^{−/−}\) mice exhibited unaltered hemostatic function and arterial thrombus formation. Conclusion These results show that CD84 is dispensable for thrombus formation and stabilization, indicating that its deficiency may be functionally compensated by other receptors or that it may be important for platelet functions different from platelet-platelet interactions. KW - flow cytometry KW - CD coreceptors KW - integrins KW - blood KW - platelet aggregation KW - platelet activation KW - cytotoxic T cells KW - platelets Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-126477 VL - 9 IS - 12 ER - TY - JOUR A1 - Kraft, Peter A1 - Drechsler, Christiane A1 - Gunreben, Ignaz A1 - Nieswandt, Bernhard A1 - Stoll, Guido A1 - Heuschmann, Peter Ulrich A1 - Kleinschnitz, Christoph T1 - Von Willebrand Factor Regulation in Patients with Acute and Chronic Cerebrovascular Disease: A Pilot, Case-Control Study JF - PLoS ONE N2 - Background and Purpose In animal models, von Willebrand factor (VWF) is involved in thrombus formation and propagation of ischemic stroke. However, the pathophysiological relevance of this molecule in humans, and its potential use as a biomarker for the risk and severity of ischemic stroke remains unclear. This study had two aims: to identify predictors of altered VWF levels and to examine whether VWF levels differ between acute cerebrovascular events and chronic cerebrovascular disease (CCD). Methods A case–control study was undertaken between 2010 and 2013 at our University clinic. In total, 116 patients with acute ischemic stroke (AIS) or transitory ischemic attack (TIA), 117 patients with CCD, and 104 healthy volunteers (HV) were included. Blood was taken at days 0, 1, and 3 in patients with AIS or TIA, and once in CCD patients and HV. VWF serum levels were measured and correlated with demographic and clinical parameters by multivariate linear regression and ANOVA. Results Patients with CCD (158±46%) had significantly higher VWF levels than HV (113±36%, P<0.001), but lower levels than AIS/TIA patients (200±95%, P<0.001). Age, sex, and stroke severity influenced VWF levels (P<0.05). Conclusions VWF levels differed across disease subtypes and patient characteristics. Our study confirms increased VWF levels as a risk factor for cerebrovascular disease and, moreover, suggests that it may represent a potential biomarker for stroke severity, warranting further investigation. KW - cerebrovascular diseases KW - sex addiction KW - biomarkers KW - ischemic stroke KW - blood KW - stroke KW - platelets KW - demography Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-119588 SN - 1932-6203 VL - 9 IS - 6 ER - TY - JOUR A1 - Nieswandt, Bernhard A1 - Morowski, Martina A1 - Brachs, Sebastian A1 - Mielenz, Dirk A1 - Dütting, Sebastian T1 - The Adaptor Protein Swiprosin-1/EFhd2 Is Dispensable for Platelet Function in Mice N2 - Background Platelets are anuclear cell fragments derived from bone marrow megakaryocytes that safeguard vascular integrity, but may also cause pathological vessel occlusion. Reorganizations of the platelet cytoskeleton and agonist-induced intracellular Ca2+-mobilization are crucial for platelet hemostatic function. EF-hand domain containing 2 (EFhd2, Swiprosin-1) is a Ca2+-binding cytoskeletal adaptor protein involved in actin remodeling in different cell types, but its function in platelets is unknown. Objective Based on the described functions of EFhd2 in immune cells, we tested the hypothesis that EFhd2 is a crucial adaptor protein for platelet function acting as a regulator of Ca2+-mobilization and cytoskeletal rearrangements. Methods and Results We generated EFhd2-deficient mice and analyzed their platelets in vitro and in vivo. Efhd2-/- mice displayed normal platelet count and size, exhibited an unaltered in vivo life span and showed normal Ca2+-mobilization and activation/aggregation responses to classic agonists. Interestingly, upon stimulation of the immunoreceptor tyrosine-based activation motif-coupled receptor glycoprotein (GP) VI, Efhd2-/- platelets showed a slightly increased coagulant activity. Furthermore, absence of EFhd2 had no significant impact on integrin-mediated clot retraction, actomyosin rearrangements and spreading of activated platelets on fibrinogen. In vivo EFhd2-deficiency resulted in unaltered hemostatic function and unaffected arterial thrombus formation. Conclusion These results show that EFhd2 is not essential for platelet function in mice indicating that other cytoskeletal adaptors may functionally compensate its loss. KW - adaptor protein Swiprosin-1/EFhd2 KW - platelets KW - platelet activation KW - platelet aggregation KW - cytoskeleton KW - thrombin KW - blood KW - actins KW - collagens Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-113316 ER - TY - THES A1 - Hagedorn, Ina T1 - Novel mechanisms underlying arterial thrombus formation: in vivo studies in (genetically modified) mice T1 - Neue Mechanismen der arteriellen Thrombusbildung: in vivo-Studien in (genetisch veränderten) Mäusen N2 - Thrombus formation at sites of vascular lesions is a dynamic process that requires a defined series of molecular events including the action of platelet adhesion/activation receptors, intracellular signal transduction, cytoskeletal rearrangements and activation of plasma coagulation factors. This process is essential to limit post-traumatic blood loss but may also contribute to acute thrombotic diseases such as myocardial infarction and stroke. With the help of genetically modified mice and the use of specific protein inhibitors and receptordepleting antibodies, the work presented in this thesis identified novel mechanisms underlying thrombus formation in hemostasis and thrombosis. In the first part of the study, it was shown that von Willebrand Factor (vWF) binding to glycoprotein (GP)Iba is critical for the formation of stable pathological thrombi at high shear rates, suggesting GPIba as an attractive pharmacological target for antithrombotic therapy. The subsequent analysis of recently generated phospholipase (PL)D1-deficient mice identified this enzyme, whose role in platelet function had been largely unknown, as a potential target protein downstream of GPIba. This was based on the finding that PLD1- deficient mice displayed severely defective GPIba-dependent thrombus stabilization under high shear conditions in vitro and in vivo without affecting normal hemostasis. The second part of the thesis characterizes the functional relevance of the immunoreceptor tyrosine-based activation motif (ITAM)-bearing collagen receptor GPVI and the recently identified hemITAM-coupled C-type lectin-like receptor 2 (CLEC-2) for in vivo thrombus formation. Genetic- and antibody-induced GPVI deficiency was found to similarly protect mice from arterial vessel occlusion in three different thrombosis models. These results confirmed GPVI as a promising antithrombotic target and revealed that antibody-treatment had no obvious off-target effects on platelet function. Similarly, immunodepletion of CLEC-2 by treating mice with the specific antibody INU1 resulted in markedly impaired thrombus growth and stabilization under flow in vitro and in vivo. Furthermore, it could be demonstrated that double-immunodepletion of GPVI and CLEC-2 resulted in severely decreased arterial thrombus formation accompanied by dramatically prolonged bleeding times. These data revealed an unexpected redundant function of the two receptors for in vivo thrombus formation and might have important implications for the potential development of anti-GPVI and anti-CLEC-2 antithrombotic agents. The third part of the thesis provides the first functional analysis of megakaryocyte- and platelet-specific RhoA knockout mice. RhoA-deficient mice displayed a defined signaling defect in platelet activation, leading to a profound protection from arterial thrombosis andand ischemic brain infarction, but at the same time also strongly increased bleeding times. These findings identified the GTPase as an important player for thrombus formation in hemostasis and thrombosis. Based on the previous proposal that the coagulation factor (F)XII might represent an ideal target for safe antithrombotic therapy without causing bleeding side effects, the last part of this thesis assesses the antithrombotic potential of the newly generated FXIIa inhibitor rHAInfestin- 4. It was found that rHA-Infestin-4 injection into mice resulted in virtually abolished arterial thrombus formation but no change in bleeding times. Moreover, rHA-Infestin-4 was similarly efficient in a murine model of ischemic stroke, suggesting that the inhibitor might be a promising agent for effective and safe therapy of cardio- and cerebrovascular diseases. N2 - Thrombusbildung an einer verletzten Gefäßstelle ist ein dynamischer Prozess, der ein definiertes Zusammenspiel von Thrombozytenadhäsions-/aktivierungsrezeptoren, intrazellulären Signalen, Zytoskelettumstrukturierungen sowie die Aktivierung von Plasma Koagulationsfaktoren benötigt. Dieser Prozess ist essenziell um Blutungen nach einer Gefäßverletzung zu stoppen, kann aber auch zu akuten thrombotischen Erkrankungen wie Herzinfarkt und Schlaganfall führen. Mit Hilfe von genetisch veränderten Mäusen und der Verwendung von spezifischen Proteininhibitoren und Rezeptor-depletierenden Antikörpern wurden in der hier vorliegenden Dissertation neue Mechanismen der Thrombusbildung in Hämostase und Thrombose identifiziert. In dem ersten Teil der Studie konnte gezeigt werden, dass die Interaktion zwischen von Willebrand Faktor (vWF) und Glykoprotein (GP)Iba entscheidend für die Bildung von pathologischen Thromben bei hohen Scherraten ist, was auf die Eignung von GPIba als eine attraktive pharmakologische Zielstruktur (Target) für eine antithrombotische Therapie hindeutet. Die anschließende Analyse von vor kurzem generierten Phospholipase (PL)D1- defizienten Mäusen identifizierte dieses Enzym, dessen Rolle in der Thrombozytenfunktion bislang unbekannt war, als eine mögliches Targetprotein im Signalweg von GPIba. Dies basierte vor allem auf der Erkenntnis, dass PLD1-defiziente Mäuse eine stark gestörte GPIba-abhängige Thrombusstabilisierung unter hohen Scherbedingungen aufwiesen, ohne jedoch dabei die normale Hämostase zu beeinflussen. Im zweiten Teil der Arbeit wurde die funktionelle Relevanz des immunoreceptor tyrosinebased activation motif (ITAM)-gekoppelten Kollagenrezeptors GPVI und des vor kurzem entdeckten hemITAM-gekoppelten C-type lectin-like receptor 2 (CLEC-2) für die in vivo Thrombusbildung charakterisiert. Es wurde gezeigt, dass genetisch- und durch Antikörperinduzierte GPVI-Defizienz Mäuse gleichermaßen vor arteriellem Gefäßverschluss in drei verschiedenen Thrombosemodellen schützt. Diese Ergebnisse bestätigten GPVI als ein viel versprechendes antithrombotisches Target und zeigten, dass eine Antikörperbehandlung in Mäusen keine offensichtlichen unspezifischen Effekte auf die Thrombozytenfunktion hatte. Eine gleichermaßen induzierte Immunodepletion von CLEC-2 durch die Behandlung von Mäusen mit dem spezifischen Antikörper INU1 führte zu deutlich vermindertem Thrombuswachstum und reduzierter Thrombusstabilisierung unter Flussbedingungen in vitro und in vivo. Darüber hinaus konnte gezeigt werden, dass eine Doppel-Immunodepletion von GPVI und CLEC-2 zu einer stark reduzierten arteriellen Thrombusbildung führte, die mit dramatisch verlängerten Blutungszeiten einherging. Diese Ergebnisse machten eineunerwartete funktionelle Redundanz der beiden Rezeptoren deutlich und könnten möglicherweise einen wichtigen Einfluss auf eine eventuelle Entwicklung von anti-GPVI und anti-CLEC-2 antithrombotischen Wirkstoffen haben. Der dritte Teil der Arbeit liefert die erste funktionelle Analyse von Megakaryozyten- und Thrombozyten-spezifischen RhoA-Knockout Mäusen. RhoA-defiziente Mäuse zeigten einen definierten Signaldefekt in der Thrombozytenaktivierung, der zu einem deutlichen Schutz vor arterieller Thrombose und ischämischen Hirninfarkt aber gleichzeitig auch zu stark erhöhten Blutungszeiten führte. Dieses Ergebnis identifizierte die GTPase als einen wichtigen Spieler für die Thrombusbildung in Hämostase und Thrombose. Basierend auf dem vorausgegangenen Vorschlag, dass der Koagulationsfaktor XII (FXII) ein ideales Target für eine sichere antithrombotische Therapie darstellen könnte, ohne Blutungsnebenwirkungen zu verursachen, untersucht der letzte Teil der Arbeit das antithrombotische Potential des neu generierten FXIIa Inhibitors rHA-Infestin-4. Es konnte gezeigt werden, dass eine Injektion von rHA-Infestin-4 in Mäuse die arterielle Thrombusbildung nahezu aufhob aber Blutungszeiten nicht veränderte. Außerdem war rHAInfestin- 4 gleichermaßen effizient in einem Mausmodell des ischämischen Schlaganfalls, was darauf schließen lässt, dass der Inhibitor ein vielversprechender Wirkstoff für eine effektive und sichere Therapie von kardio- und zerebrovaskulären Erkrankungen sein können KW - Thrombus KW - Gerinnungsfaktor KW - Arterielles Blut KW - Zielstruktur KW - Maus KW - biomedicine KW - cell KW - blood KW - vascular system KW - Allgemeine Zelle KW - Zellkern KW - Blutgefäßsystem KW - Blut-Hirn-Schranke Y1 - 2011 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-85752 ER -