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In einem experimentellen Schädel-Hirn-Trauma-Modell der fokalen Kälteläsion bei der Maus wurde die Effektivität der B1R-Blockade untersucht. Die Ergebnisse dieser Untersuchung dokumentierten auf der Suche nach einer grundlegenden spezifischen Therapie des vasogenen traumatischen Hirnödems die B1R-Blockade als einen potentiellen Ansatz zu Reduktion der sekundären Hirn-schäden. Zum Einen konnte durch die selektive Blockade von B1R mit dem Präparat R-715 nach einer fokalen Kälteläsion im Mausmodell die Hirnschädigung um etwa 75 % gegenüber den Tieren der Kontrollgruppen reduziert werden. Zum Anderen lässt sich nach der B1R-Blockade u. a. eine signifikante Abschwächung des vasogenen Hirnödems um etwa 50 % im Vergleich zu den Tieren der Kontrollgruppen feststellen. Die Reduktion der sekundären Hirnschädigung durch die B1R-Blockade 24 Stunden nach der Läsionsinduktion macht die selektive B1R-Blockade als kausaler Therapie-ansatz eine interessante Behandlungsoption des posttraumatischen vasogenen Hirnödems.
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.
Over the past decades, awareness has increased of multiple health-promoting effects of diets rich in anthocyanins and proanthocyanidins and, specifically, of these compounds’ potential for conferring neuroprotection. The present study compiles evidence obtained in vitro that expands our understanding of anthocyanin and proanthocyanidin functionalities at multiple levels. Firstly, anthocyanin and anthocyanidin bioavailability was addressed using a combination of ATPase assays, dye extrusion assays and vesicular transport assays. This approach highlights the contribution made by efflux transporters MDR1 and BCRP to the absorption of berry polyphenols and to their distribution to target tissues including the central nervous system. All test compounds interacted with the BCRP transporter in vitro, seven emerged as potential BCRP substrates and 12 as potential inhibitors of BCRP. Two anthocyanidins, malvidin and petunidin, exhibited bimodal activities, serving as BCRP substrates at low micromolar concentrations and, at higher concentrations, as BCRP inhibitors. Effects on MDR1, in contrast, were weak, as only aglycones exerted mild inhibitory activity in the high micromolar range. Distinct affinities of several anthocyanins and the respective aglycones for BCRP suggest that they may be actively transported out of endothelia. Agents that interfere with BCRP activity are therefore likely to facilitate crossing of the intestinal and blood-brain barriers and to augment anthocyanin bioavailability. Secondly, novel modes of action were sought to rationalize berry polyphenols’ direct modulation of neuronal transmission as opposed to their non-specific antioxidant activities. The candidate effectors include cellular monoamine oxidases (MAO) A and B, hypoxia inducible factor (HIF), the proteasome, and phospholipase A2 (PLA2). Elevated MAO activity has long been implicated in the etiology of depression, anxiety and neurodegenerative illness. MAO inhibiting compounds may thus hold promise in the prevention of behavioral symptoms and cognitive decline. For both MAO isoforms, inhibitory effects of anthocyanins and anthocyanidins are illustrated by IC50 values in the low micromolar range whereas proanthocyanidins and phenolic metabolites were less effective inhibitors. Kinetic analyses, performed with cyanidin and cyanidin-3-glucoside, indicated a competitive interaction of cyanidin in terms of MAO A, plus a mixed competitive and non-competitive mode of interaction of cyanidin in terms of MAO B as well as of cyanidin-3-glucoside with respect to both enzyme isoforms. Thus MAO inhibition by anthocyanins and their aglycones in vitro lends support to central nervous functionalities of diets rich in berry polyphenols and opens new opportunities in the prevention of neuronal pathologies. Effects on HIF expression were examined to assess candidate compounds’ role in enhancing cellular resistance to oxidative stress. By inducing a dose-dependent increase in HIF expression, delphinidin may initiate a variety of cellular survival processes that are inhibited by free iron. This finding argues in favor of iron-chelating properties as a further means of mediating neuroprotection. Other inducers of HIF expression in neuroblastoma cells included gallic acid, cyanidin and bilberry extract, all of which may modulate HIF-dependent transcription of downstream genes.
Neisseria meningitidis ist mit jahrlich etwa 700.000 Erkrankungsfallen weltweit und einer Mortalitat von circa 7% einer der häufigsten Ausloser der bakteriellen Hirnhautentzündung. Der entscheidende Schritt zur Auslosung einer Meningitis ist die Uberwindung der Blut-Hirn-Schranke. Diese im menschlichen Korper einmalig dichte Barriere wird maßgeblich durch Tight-Junctions spezialisierter Endothelzellen der Hirnkapillaren aufrecht erhalten. Ob N. Meningitidis diese Barriere auf einem parazellulären oder transzellulärem Weg uberwindet, ist nicht vollstandig geklart. In dieser Arbeit wurde der Einfluss von N. meningitidis auf die Tight-Junction Proteine Occludin und ZO-1 unter Nutzung des HBMEC Zellkulurmodelles untersucht. Neben einer verminderten Genexpression von Occludin zeigte sich dabei eine Abspaltung eines 50 kDa Fragmentes von Occludin. Gleichzeitig konnte eine Umverteilung von Occludin von den Zellgrenzen in das Zytoplasma beobachtet werden. ZO-1 hingegen wurde weder in seiner Exprimierung, noch in seiner intrazellularen Verteilung beeinflusst. Mittels eines in dieser Arbeit etablierten Assays zur Bestimmung der Permeabilitat eines HBMEC-Monolayer als vereinfachtes in-vitro Modell der Blut-Hirn-Schranke konnte bestatigt werden, dass durch die Beeinflussung von Tight-Junction Proteinen die parazellulare Permeabilitat steigt. In weiteren Analysen konnten diese Prozesse auf eine gesteigerte Aktivitat von Matrixmetalloproteinase 8 zurückgefuhrt werden. Die Ergebnisse dieser Arbeit zeigen einen neuen Mechanismus auf, durch den N. meningitidis im Stande ist, die-Hinr-Schranke auf einem parazellulärem Weg zu überwinden.