TY - THES A1 - Werthmann, Ruth T1 - Echtzeit-Untersuchungen zur Thrombin-abhängigen Änderung der cAMP-Konzentration in lebenden Endothelzellen T1 - Real-time monitoring of thrombin-dependent changes of the cAMP concentration in living endothelial cells N2 - Das Endothel bildet eine einschichtige Zellbarriere zwischen Blut und interstitiellem Gewebe, deren Durchlässigkeit entscheidend durch die sekundären Botenstoffe Ca2+ und cAMP reguliert wird. Während Ca2+ durch eine verstärkte Kontraktion der Endothelzellen die Permeabilität erhöht, fördert cAMP die Adhäsion der Zellen und unterstützt somit die Barrierefunktion. Es ist bekannt, dass Thrombin durch einen Anstieg der intrazellulären Ca2+-Konzentration und vermutlich auch durch eine Hemmung der cAMP-Konzentration zu einer Permeabilitätserhöhung führt. Ziel dieser Arbeit war es, Thrombin-induzierte Änderungen der cAMP-Konzentration in Echtzeit in lebenden Endothelzellen mittels Fluorescence-Resonance-Energy-Transfer (FRET) zu untersuchen. Hierfür wurden Human-Umbilical-Vein-Endothelial-Cells (HUVECs) mit dem FRET-basierten cAMP-Sensor Epac1-camps transfiziert. Die Bindung von cAMP an Epac1-camps führt zu einer Konformationsänderung des Sensors und damit zu einer Abschwächung des FRET. Mit Hilfe dieses Sensors kann die cAMP-Konzentration mit hoher zeitlicher Auflösung in einzelnen lebenden Zellen gemessen werden. Untersucht wurde der Effekt von Thrombin auf die cAMP-Konzentration in Endothelzellen, deren cAMP-Konzentration durch Stimulierung endogener β-Rezeptoren erhöht war. Thrombin erniedrigte Ca2+-abhängig die cAMP-Konzentration um ca. 30 %. Dieser Abfall der cAMP-Konzentration folgte zeitlich verzögert dem Thrombin-induzierten Ca2+-Signal. Die cAMP-Konzentration erreichte ca. 30 s nach der Thrombinzugabe ein Minimum und stieg danach wieder an. Durch die Herunterregulierung der durch Ca2+ direkt inhibierten Adenylatzyklase 6 (AC6) mittels siRNA wurde die Thrombin-induzierte Abnahme der cAMP-Konzentration vollständig aufgehoben. Dies bestätigte, dass Thrombin durch die Ca2+-vermittelte Inhibierung der AC6 eine Abnahme der cAMP-Konzentration verursacht. Ohne β-adrenerge Stimulation führte die Applikation von Thrombin zu einem langsamen Anstieg der cAMP-Konzentration, der mehrere Minuten anhielt. Dieser cAMP-Konzentrationsanstieg beruhte auf der Ca2+-abhängigen Aktivierung der Phospholipase A2 (PLA2). Diese setzt Arachidonsäure aus Membranphospholipiden frei, die als Substrat für die Synthese verschiedener Prostaglandine dient. Durch die pharmakologische Beeinflussung von Zyklooxygenasen und Prostazyklinrezeptoren konnte gezeigt werden, dass die Synthese von Prostazyklin und die anschließende Stimulation Gs-gekoppelter Prostazyklinrezeptoren zum Thrombin-induzierten Anstieg der cAMP-Konzentration führte. Da die Physiologie der Endothelzellen im Gefäß stark von Faktoren aus der unmittelbaren Umgebung beeinflusst wird, ist die Messung der Änderungen der cAMP-Konzentration in Endothelzellen, die sich innerhalb eines Gewebes befinden, von sehr großer Bedeutung. Deshalb war die Generierung transgener Mäuse mit einer gewebespezifischen Expression des FRET-Sensors Epac1-camps in Endothelzellen ein weiteres Ziel dieser Arbeit. Durch Anwendung eines Cre-Rekombinase/loxP-Ansatzes konnten transgene Mäuse generiert werden, die Epac1-camps spezifisch in Endothelzellen exprimierten. An isolierten pulmonären Endothelzellen konnte die Funktionalität des transgen exprimierten Sensors Epac1-camps nachgewiesen werden. Die Echtzeitmessung der Thrombin-induzierten Änderungen der cAMP-Konzentration verdeutlichte ein zeitlich sehr komplexes Wechselspiel zwischen Ca2+- und cAMP-Signalen, das die Barrierefunktion des Endothels maßgeblich beeinflussen wird. Die transgene Expression von Epac1-camps in Endothelzellen ermöglicht in Zukunft die Untersuchung der Thrombin-verursachten Änderungen der cAMP-Konzentration und der Permeabilität innerhalb eines intakten Gefäßes. N2 - Endothelial cells form a semi permeable barrier between blood and interstitial tissues. The permeability of this barrier is mainly regulated by the second messengers Ca2+ and cAMP. While Ca2+ increases the permeability by inducing cell contraction, cAMP increases the adherence of the cells and, thereby, supports the barrier function. The Ca2+-elevating agent thrombin was demonstrated to increase endothelial permeability and to decrease cAMP levels. The aim of this thesis was to investigate thrombin-induced changes of the cAMP concentration in real time in living endothelial cells via fluorescence resonance energy transfer (FRET). Therefore, human umbilical vein endothelial cells (HUVECs) were transfected with the FRET-based cAMP sensor Epac1-camps. Binding of cAMP to the binding domain of Epac1-camps induces a conformational change of the sensor that results in a decrease of FRET. With help of this sensor, changes in cAMP concentration can be monitored with high temporal resolution. First, the influence of thrombin on cAMP levels was investigated after elevating cAMP levels by stimulation of β-adrenergic receptors. Thrombin led to a Ca2+-dependent decrease of cAMP levels by approximately 30 %. The decrease of cAMP levels was delayed compared to the thrombin-induced Ca2+ signal. This decrease was also transient and reached a minimum value 30 s after thrombin stimulation. A siRNA-mediated downregulation of the Ca2+-inhibited adenylyl cyclase 6 (AC6) completely abolished the thrombin-induced decrease of cAMP concentration. This provided the first direct evidence that the Ca2+-mediated inhibition of AC6 accounts for the thrombin-induced decrease in cAMP levels. In the absence of a β-adrenergic-mediated increase of cAMP concentration, thrombin led to a slow increase in cAMP concentration that lasted for several minutes. This increase in cAMP concentration was caused by the Ca2+-dependent activation of phospholipase A2 (PLA2). PLA2 releases arachidonic acid, which represents the substrate for prostaglandin synthesis. It was confirmed by pharmacological interference of cyclooxygenases and prostacyclin receptors that the synthesis of prostacyclin and subsequent stimulation of Gs-protein-coupled prostacyclin receptors caused the thrombin-induced increase in cAMP concentration. The real time monitoring of changes in cAMP concentration in endothelial cells within the vascular system is highly important as the physiology of endothelial cells in vivo is strongly influenced by factors contained in the surrounding blood or tissue. Therefore, a further aim of this thesis was the generation of transgenic mice expressing the FRET-based sensor Epac1-camps specifically in endothelial cells. Using a Cre-recombinase/loxP-approach transgenic mice were generated that specifically expressed Epac1-camps in endothelial cells, and the functionality of the transgenic sensor was proven in isolated pulmonary endothelial cells. Real time monitoring of thrombin-induced changes of cAMP concentration in endothelial cells revealed a temporally complex crosstalk between Ca2+ and cAMP signals that will affect endothelial barrier function. The transgenic expression of Epac1-camps opens the door for the investigation of thrombin-induced changes of cAMP levels and of endothelial permeability within intact vessels. KW - Cyclo-AMP KW - Endothelzelle KW - Fluoreszenz-Resonanz-Energie-Transfer KW - Thrombin KW - cyclo-AMP KW - endothelial cells KW - fluorescence resonance energy transfer KW - thrombin Y1 - 2009 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-46066 ER - TY - JOUR A1 - Tuchscherr, Lorena A1 - Bischoff, Markus A1 - Lattar, Santiago M. A1 - Noto Llana, Mariangeles A1 - Pförtner, Henrike A1 - Niemann, Silke A1 - Geraci, Jennifer A1 - Van de Vyver, Hélène A1 - Fraunholz, Martin J. A1 - Cheung, Ambrose L. A1 - Herrmann, Mathias A1 - Völker, Uwe A1 - Sordelli, Daniel O. A1 - Peters, Georg A1 - Loeffler, Bettina T1 - Sigma factor SigB is crucial to mediate Staphylococcus aureus adaptation during chronic infections JF - PLoS Pathogens N2 - Staphylococcus aureus is a major human pathogen that causes a range of infections from acute invasive to chronic and difficult-to-treat. Infection strategies associated with persisting S. aureus infections are bacterial host cell invasion and the bacterial ability to dynamically change phenotypes from the aggressive wild-type to small colony variants (SCVs), which are adapted for intracellular long-term persistence. The underlying mechanisms of the bacterial switching and adaptation mechanisms appear to be very dynamic, but are largely unknown. Here, we analyzed the role and the crosstalk of the global S. aureus regulators agr, sarA and SigB by generating single, double and triple mutants, and testing them with proteome analysis and in different in vitro and in vivo infection models. We were able to demonstrate that SigB is the crucial factor for adaptation in chronic infections. During acute infection, the bacteria require the simultaneous action of the agr and sarA loci to defend against invading immune cells by causing inflammation and cytotoxicity and to escape from phagosomes in their host cells that enable them to settle an infection at high bacterial density. To persist intracellularly the bacteria subsequently need to silence agr and sarA. Indeed agr and sarA deletion mutants expressed a much lower number of virulence factors and could persist at high numbers intracellularly. SigB plays a crucial function to promote bacterial intracellular persistence. In fact, \(\Delta\)sigB-mutants did not generate SCVs and were completely cleared by the host cells within a few days. In this study we identified SigB as an essential factor that enables the bacteria to switch from the highly aggressive phenotype that settles an acute infection to a silent SCV-phenotype that allows for long-term intracellular persistence. Consequently, the SigB-operon represents a possible target to develop preventive and therapeutic strategies against chronic and therapy-refractory infections. KW - gene regulator agr KW - endothelial cells KW - modulates virulence KW - death pathway sar locus KW - factor B KW - small-colony variants KW - alpha-toxin KW - epithelial cells KW - in vitro Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-143419 VL - 11 IS - 4 ER - TY - JOUR A1 - Thal, Serge C. A1 - Smetak, Manuel A1 - Hayashi, Kentaro A1 - Förster, Carola Y. T1 - Hemorrhagic cerebral insults and secondary Takotsubo syndrome: findings in a novel in vitro model using human blood samples JF - International Journal of Molecular Sciences N2 - Intracranial hemorrhage results in devastating forms of cerebral damage. Frequently, these results also present with cardiac dysfunction ranging from ECG changes to Takotsubo syndrome (TTS). This suggests that intracranial bleeding due to subarachnoid hemorrhage (SAH) disrupts the neuro–cardiac axis leading to neurogenic stress cardiomyopathy (NSC) of different degrees. Following this notion, SAH and secondary TTS could be directly linked, thus contributing to poor outcomes. We set out to test if blood circulation is the driver of the brain–heart axis by investigating serum samples of TTS patients. We present a novel in vitro model combining SAH and secondary TTS to mimic the effects of blood or serum, respectively, on blood–brain barrier (BBB) integrity using in vitro monolayers of an established murine model. We consistently demonstrated decreased monolayer integrity and confirmed reduced Claudin-5 and Occludin levels by RT-qPCR and Western blot and morphological reorganization of actin filaments in endothelial cells. Both tight junction proteins show a time-dependent reduction. Our findings highlight a faster and more prominent disintegration of BBB in the presence of TTS and support the importance of the bloodstream as a causal link between intracerebral bleeding and cardiac dysfunction. This may represent potential targets for future therapeutic inventions in SAH and TTS. KW - Takotsubo syndrome KW - subarachnoid hemorrhage KW - inflammation KW - in vitro KW - blood KW - blood–brain barrier KW - human KW - patient KW - endothelial cells Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-288305 SN - 1422-0067 VL - 23 IS - 19 ER - TY - JOUR A1 - Stölting, Miriam A1 - Wiesner, Christiane A1 - van Vliet, Vanessa A1 - Butt, Elke A1 - Pavenstädt, Hermann A1 - Linder, Stefan A1 - Kremerskothen, Joachim T1 - Lasp-1 Regulates Podosome Function JF - PLoS One N2 - Eukaryotic cells form a variety of adhesive structures to connect with their environment and to regulate cell motility. In contrast to classical focal adhesions, podosomes, highly dynamic structures of different cell types, are actively engaged in matrix remodelling and degradation. Podosomes are composed of an actin-rich core region surrounded by a ring-like structure containing signalling molecules, motor proteins as well as cytoskeleton-associated proteins. Lasp-1 is a ubiquitously expressed, actin-binding protein that is known to regulate cytoskeleton architecture and cell migration. This multidomain protein is predominantely present at focal adhesions, however, a second pool of Lasp-1 molecules is also found at lamellipodia and vesicle-like microdomains in the cytosol. In this report, we show that Lasp-1 is a novel component and regulator of podosomes. Immunofluorescence studies reveal a localization of Lasp-1 in the podosome ring structure, where it colocalizes with zyxin and vinculin. Life cell imaging experiments demonstrate that Lasp-1 is recruited in early steps of podosome assembly. A siRNA-mediated Lasp-1 knockdown in human macrophages affects podosome dynamics as well as their matrix degradation capacity. In summary, our data indicate that Lasp-1 is a novel component of podosomes and is involved in the regulation of podosomal function. KW - discrete KW - smooth muscle cells KW - microdomains KW - actin cytoskeleton KW - endothelial cells KW - epithelial cells KW - cancer cells KW - phosphorylation KW - invadopodia KW - dependent protein-kinase KW - camp signaling pathway Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-134315 VL - 7 IS - 4 ER - TY - JOUR A1 - Simsekyilmaz, Sakine A1 - Liehn, Elisa A. A1 - Weinandy, Stefan A1 - Schreiber, Fabian A1 - Megens, Remco T. A. A1 - Theelen, Wendy A1 - Smeets, Ralf A1 - Jockenhövel, Stefan A1 - Gries, Thomas A1 - Möller, Martin A1 - Klee, Doris A1 - Weber, Christian A1 - Zernecke, Alma T1 - Targeting In-Stent-Stenosis with RGD- and CXCL1-Coated Mini-Stents in Mice JF - PLoS ONE N2 - Atherosclerotic lesions that critically narrow the artery can necessitate an angioplasty and stent implantation. Long-term therapeutic effects, however, are limited by excessive arterial remodeling. We here employed a miniaturized nitinol-stent coated with star-shaped polyethylenglycole (star-PEG), and evaluated its bio-functionalization with RGD and CXCL1 for improving in-stent stenosis after implantation into carotid arteries of mice. Nitinol foils or stents (bare metal) were coated with star-PEG, and bio-functionalized with RGD, or RGD/CXCL1. Cell adhesion to star-PEG-coated nitinol foils was unaltered or reduced, whereas bio-functionalization with RGD but foremost RGD/CXCL1 increased adhesion of early angiogenic outgrowth cells (EOCs) and endothelial cells but not smooth muscle cells when compared with bare metal foils. Stimulation of cells with RGD/CXCL1 furthermore increased the proliferation of EOCs. In vivo, bio-functionalization with RGD/CXCL1 significantly reduced neointima formation and thrombus formation, and increased re-endothelialization in apoE\(^{-/-}\) carotid arteries compared with bare-metal nitinol stents, star-PEG-coated stents, and stents bio-functionalized with RGD only. Bio-functionalization of star-PEG-coated nitinol-stents with RGD/CXCL1 reduced in-stent neointima formation. By supporting the adhesion and proliferation of endothelial progenitor cells, RGD/CXCL1 coating of stents may help to accelerate endothelial repair after stent implantation, and thus may harbor the potential to limit the complication of in-stent restenosis in clinical approaches. KW - carotid arteries KW - polymers KW - stent implantation KW - coatings KW - endothelial cells KW - mice KW - fluorescence microscopy KW - stem cells Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-179745 VL - 11 IS - 5 ER - TY - JOUR A1 - Shityakov, Sergey A1 - Salvador, Ellaine A1 - Pastorin, Giorgia A1 - Förster, Carola T1 - Blood-brain barrier transport studies, aggregation, and molecular dynamics simulation of multiwalled carbon nanotube functionalized with fluorescein isothiocyanate JF - International Journal of Nanomedicine N2 - In this study, the ability of a multiwalled carbon nanotube functionalized with fluorescein isothiocyanate (MWCNT-FITC) was assessed as a prospective central nervous system-targeting drug delivery system to permeate the blood-brain barrier. The results indicated that the MWCNT-FITC conjugate is able to penetrate microvascular cerebral endothelial monolayers; its concentrations in the Transwell® system were fully equilibrated after 48 hours. Cell viability test, together with phase-contrast and fluorescence microscopies, did not detect any signs of MWCNT-FITC toxicity on the cerebral endothelial cells. These microscopic techniques also revealed presumably the intracellular localization of fluorescent MWCNT-FITCs apart from their massive nonfluorescent accumulation on the cellular surface due to nanotube lipophilic properties. In addition, the 1,000 ps molecular dynamics simulation in vacuo discovered the phenomenon of carbon nanotube aggregation driven by van der Waals forces via MWCN-TFITC rapid dissociation as an intermediate phase. KW - endothelial cells KW - cytotoxicity KW - blood-brain barrier KW - fluorescein isothiocyanate KW - aggregation KW - molecular dynamics KW - fluorescence microscopy KW - Transwell® system KW - multiwalled carbon nanotube KW - mice Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-149233 VL - 10 ER - TY - THES A1 - Schwarz, Ulrike T1 - Biochemische und Molekularbiologische Charakterisierung der Wechselwirkungen zwischen Humanen Thrombozyten und Endothelzellen T1 - Biochemical and Molecular Characterization of Interactions Between Human Platelets and Endothelial Cells N2 - Der Blutkreislauf ist als wichtigstes Transportsystem im menschlichen Körper essentiell für die Versorgung der Gewebe und Organe mit Sauerstoff, Nährstoffen, Hormonen etc. Zwei Zelltypen, die eine wichtige Rolle bei der Aufrechterhaltung eines funktionell intakten Blutgefäßsystems spielen, sind Thrombozyten, die zentralen Mediatoren der Blutgerinnung, und Endothelzellen, welche die luminale Seite der Gefäßwände auskleiden. Diese beiden Zellen sind aber auch wesentlich an der Pathologie der Atherosklerose und kardiovaskulärer Erkrankungen beteiligt. Durch direkte und indirekte Interaktionen beeinflussen sich diese beiden Zelltypen gegenseitig und regulieren ihre Aktivität. Im Rahmen dieser Arbeit wurde eine Analysenmethode entwickelt, welche den Funktionszustand der Thrombozyten quantitativ erfaßt. Sowohl die Aktivierung als auch die Hemmung humaner Thrombozyten wird durch die Phosphorylierung spezifischer Signalproteine reguliert. Basierend auf der Verwendung phosphorylierungsspezifischer Antikörper und der Durchflußzytometrie wurde eine Methode etabliert, welche die Proteinphosphorylierung auf Einzelzellebene erfaßt, schnell quantifizierbare Ergebnisse liefert und für die Analyse im Vollblut geeignet ist. Da die Sekretion von Endothelfaktoren den Phosphorylierungszustand dieser Proteine in den Thrombozyten beeinflußt, kann die Methode auch dazu verwendet werden, indirekt Rückschlüsse auf den Funktionszustand der Endothelzellen zu gewinnen. In einer ersten klinischen Anwendung wurde die Methode eingesetzt, um den Therapieverlauf der antithrombotischen Medikamente Ticlopidin und Clopidogrel, welche gezielt die ADP-induzierte Thrombozytenaktivierung hemmen, zu verfolgen und das Antwortverhalten von Patienten auf diese Medikamente zu messen. Mehrere Personen, bei denen Ticlopidin und Clopidogrel keine Wirkung zeigten, wurden gefunden, ein Hinweis darauf, daß eine Resistenz gegen Thienopyridine vorkommt. Es ist bekannt, daß Endothelfaktoren bestimmte Aspekte der Thrombozytenaktivierung hemmen. In dieser Arbeit wurde gezeigt, daß die Phosphorylierung der p38 und p42 Mitogen-aktivierten Proteinkinasen, die im Verlauf der Thrombozytenaktivierung von zahlreichen Agonisten induziert wird, ebenfalls durch die endothelialen Vasodilatatoren NO (Stickstoffmonoxid) und Prostaglandin gehemmt wurde. Außerdem hemmten diese Substanzen die Translokation der inflammatorischen Moleküle P-Selektin und CD40 Ligand (CD40L) aus intrazellulären Speicherorganellen auf die Thrombozytenoberfläche. P-Selektin und CD40L werden auf aktivierten Thrombozyten exprimiert und sind direkt an der Interaktion von Thrombozyten mit Leukozyten und Endothelzellen beteiligt. Um die Auswirkung von CD40L, P-Selektin und weiteren Faktoren aktivierter Thrombozyten auf humane Endothelzellen zu untersuchen, wurde mit Hilfe von cDNA-Arrays die differentielle Genexpression in Endothelzellen nach Koinkubation mit aktivierten Thrombozyten analysiert. Neben einer bereits bekannten Hochregulierung von Faktoren, die an inflammatorischen Prozessen beteiligt sind, wurde eine verstärkte Expression von Transkriptionsfaktoren (c-Jun, Egr1, CREB2), Wachstumsfaktoren (PDGF) sowie von Adhäsionsrezeptoren für extrazelluläre Matrixproteine (Integrin av, Integrin b1) gefunden. Diese Faktoren weisen darauf hin, daß aktivierte Thrombozyten die Migration und Proliferation der Endothelzellen anregen und damit die Wundheilung, aber auch pathophysiologische Prozesse wie die Ausbildung atherosklerotischer Plaques induzieren könnten. N2 - The blood circulation is the human body's main transport system and is essential for supplying tissues and organs with oxygen, nutrients, hormones, etc. Blood platelets, the central mediators of coagulation, and endothelial cells which line the inner wall of blood vessels, play important roles in the maintenance of functionally intact blood vessels. On the other hand, these cells also participate in the pathogenesis of atherosclerosis and cardiovascular diseases. These two cell types mutually influence each other and regulate their activity via direct and indirect interactions. In this work, a method which allows quantitative analysis of platelet function was developed. Platelet activation and inhibition is regulated by phosphorylation of specific signaling proteins. Based on the use of phosphorylation-specific antibodies and flow cytometry, a method was established which measures protein phosphorylation in single cells, gives fast and quantitative results, and is also suitable for analysis of whole blood samples. Since secretion of endothelial cell factors influences the phosphorylation state of these proteins, the method may also be used to get indirect information about the functional integrity of endothelial cells. In a first clinical application, this method was used to monitor the progression of a therapy with the anti-thrombotic drugs ticlopidine and clopidogrel which selectively inhibit ADP-induced platelet activation, and to determine the patients' responsiveness to these drugs. Several non-responders were identified, indicating the existence of a thienopyridine resistance. Endothelial cell factors are known to inhibit different aspects of platelet activation. In this work, phosphorylation of platelet p38 and p42 mitogen-activated protein kinases, which is induced by various platelet activators, was found to be inhibited by the endothelium-derived vasodilators nitric oxide (NO) and prostacyclin. Furthermore, these endothelial cell factors inhibited translocation of the inflammatory molecules P-selectin and CD40 ligand (CD40L) from intracellular granules to the platelet surface membrane. P-selectin and CD40L are expressed on activated platelets and are directly involved in the interaction of platelets with leukocytes and endothelial cells. To study effects of P-selectin, CD40L, and other parameters of activated platelets on human endothelial cells, cDNA Arrays were used to analyze differential gene expression in endothelial cells after coincubation with activated platelets. Besides the already known up-regulation of certain inflammatory factors, a number of additional genes which belong mainly to the group of transcription factors (c-Jun, Egr1, CREB2) and growth factors (PDGF) and of adhesion receptors for extracellular matrix proteins (integrin av, integrin b1) was found to be up-regulated by activated platelets. Expression of these genes indicates that activated platelets may induce migration and proliferation of endothelial cells and thereby initiate wound healing, but may also have pathophysiological effects like the development of atherosclerotic plaques. KW - Thrombozyt KW - Endothelzelle KW - Genexpression KW - Phosphorylierung KW - Signaltransduktion KW - Thrombozyten KW - Endothelzellen KW - Durchflußzytometrie KW - Proteinphosphorylierung KW - Signaltransduktion KW - Genexpression KW - cDNA-Arrays KW - Atherosklerose KW - platelets KW - endothelial cells KW - flow cytometry KW - protein phosphorylation KW - signal transduction KW - gene expression KW - cDNA arrays KW - atherosclerosis Y1 - 2001 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-2030 ER - TY - JOUR A1 - Schuhmann, Michael K. A1 - Bittner, Stefan A1 - Meuth, Sven G. A1 - Kleinschnitz, Christoph A1 - Fluri, Felix T1 - Fingolimod (FTY720-P) does not stabilize the blood-brain barrier under inflammatory conditions in an in vitro model JF - International Journal of Molecular Sciences N2 - Breakdown of the blood-brain barrier (BBB) is an early hallmark of multiple sclerosis (MS), a progressive inflammatory disease of the central nervous system. Cell adhesion in the BBB is modulated by sphingosine-1-phosphate (S1P), a signaling protein, via S1P receptors (S1P\(_1\)). Fingolimod phosphate (FTY720-P) a functional S1P\(_1\) antagonist has been shown to improve the relapse rate in relapsing-remitting MS by preventing the egress of lymphocytes from lymph nodes. However, its role in modulating BBB permeabilityin particular, on the tight junction proteins occludin, claudin 5 and ZO-1has not been well elucidated to date. In the present study, FTY720-P did not change the transendothelial electrical resistance in a rat brain microvascular endothelial cell (RBMEC) culture exposed to inflammatory conditions and thus did not decrease endothelial barrier permeability. In contrast, occludin was reduced in RBMEC culture after adding FTY720-P. Additionally, FTY720-P did not alter the amount of endothelial matrix metalloproteinase (MMP)-9 and MMP-2 in RBMEC cultures. Taken together, our observations support the assumption that S1P\(_1\) plays a dual role in vascular permeability, depending on its ligand. Thus, S1P\(_1\) provides a mechanistic basis for FTY720-P-associated disruption of endothelial barrierssuch as the blood-retinal barrierwhich might result in macular edema. KW - randomized controlled trial KW - Sphingosine 1-Phosphate KW - vascular permeability KW - rat brain microvascular endothelial cell culture KW - tight junctions KW - FTY720-P KW - blood-brain barrier KW - inflammation KW - novo renal transplantation KW - endothelial cells KW - experimental autoimmune encephalomyelitis KW - relapsing multiple sclerosis KW - Zonula Occludens-1 KW - matrix metalloproteinases Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-145047 VL - 16 ER - TY - JOUR A1 - Schubert-Unkmeir, Alexandra A1 - Schneider-Schaulies, Sibylle A1 - Gulbins, Erich A1 - Hebling, Sabrina A1 - Simonis, Alexander T1 - Differential Activation of Acid Sphingomyelinase and Ceramide Release Determines Invasiveness of Neisseria meningitidis into Brain Endothelial Cells N2 - The interaction with brain endothelial cells is central to the pathogenicity of Neisseria meningitidis infections. Here, we show that N. meningitidis causes transient activation of acid sphingomyelinase (ASM) followed by ceramide release in brain endothelial cells. In response to N. meningitidis infection, ASM and ceramide are displayed at the outer leaflet of the cell membrane and condense into large membrane platforms which also concentrate the ErbB2 receptor. The outer membrane protein Opc and phosphatidylcholine-specific phospholipase C that is activated upon binding of the pathogen to heparan sulfate proteoglycans, are required for N. meningitidis-mediated ASM activation. Pharmacologic or genetic ablation of ASM abrogated meningococcal internalization without affecting bacterial adherence. In accordance, the restricted invasiveness of a defined set of pathogenic isolates of the ST-11/ST-8 clonal complex into brain endothelial cells directly correlated with their restricted ability to induce ASM and ceramide release. In conclusion, ASM activation and ceramide release are essential for internalization of Opc-expressing meningococci into brain endothelial cells, and this segregates with invasiveness of N. meningitidis strains. Author Summary Neisseria meningitidis, an obligate human pathogen, is a causative agent of septicemia and meningitis worldwide. Meningococcal infection manifests in a variety of forms, including meningitis, meningococcemia with meningitis or meningococcemia without obvious meningitis. The interaction of N. meningitidis with human cells lining the blood vessels of the blood-cerebrospinal fluid barrier is a prerequisite for the development of meningitis. As a major pathogenicity factor, the meningococcal outer membrane protein Opc enhances bacterial entry into brain endothelial cells, however, mechanisms underlying trapping of receptors and signaling molecules following this interaction remained elusive. We now show that Opc-expressing meningococci activate acid sphingomyelinase (ASM) in brain endothelial cells, which hydrolyses sphingomyelin to cause ceramide release and formation of extended ceramide-enriched membrane platforms wherein ErbB2, an important receptor involved in bacterial uptake, clusters. Mechanistically, ASM activation relied on binding of N. meningitidis to its attachment receptor, HSPG, followed by activation of PC-PLC. Meningococcal isolates of the ST-11 clonal complex, which are reported to be more likely to cause severe sepsis, but rarely meningitis, barely invaded brain endothelial cells and revealed a highly restricted ability to induce ASM and ceramide release. Thus, our results unravel a differential activation of the ASM/ceramide system by the species N. meningitidis determining its invasiveness into brain endothelial cells. KW - small interfering RNAs KW - Neisseria meningitidis KW - bacterial pathogens KW - endothelial cells KW - meningococcal disease KW - flow cytometry KW - cell staining KW - Escherichia coli infections Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-113031 ER - TY - THES A1 - Schleider, Elisa T1 - Angiogenese-Modellsysteme zur Funktionsanalyse des humanen CCM3 Proteins T1 - Angiogenesis in vitro modeling of human CCM3 function N2 - Zerebrovaskuläre kavernöse Malformationen (CCM) sind Blutgefäßfehlbildungen, welche hauptsächlich im Gehirn vorkommen. Sie sind gekennzeichnet durch stark dilatierte kapillarähnliche Gefäße mit niedriger Flussrate („slow-flow lesions“). Intervenierendes Gehirnparenchym fehlt ebenso wie Perizyten oder glatte Gefäßmuskelzellen. Die klinischen Symptome reichen von starken Kopfschmerzen über Epilepsie bis hin zum Schlaganfall. Dennoch bleiben viele Kavernomträger aufgrund unvollständiger Penetranz ihr Leben lang asymptomatisch. Die Prävalenz beträgt ca. 0,5% in der Gesamtbevölkerung. Es gibt sowohl sporadische als auch dominant vererbte Krankheitsformen. In den letzten Jahren konnten 3 Gene ursächlich mit der Krankheit in Verbindung gebracht werden. Mutationen in CCM1, CCM2 oder CCM3 führen zu einem nicht unterscheidbaren klinischen Phänotyp. Alle drei Proteine bilden einen ternären Komplex in vitro, was eine Beteiligung an einem gemeinsamen molekularen Signalweg bekräftigt. Während die Proteine CCM1 und CCM2 in den letzten Jahren umfangreich erforscht wurden, ist über das CCM3-Protein bis heute wenig bekannt. In dieser Arbeit konnte gezeigt werden, dass CCM3 eine wichtige Rolle in der Angiogenese spielt und diese bei Überexpression in humanen Endothelzellen stark negativ reguliert: die Migration, die Proliferation und die Fähigkeit, kapillarähnliche Strukturen in Matrix-Gelen zu bilden kommt nahezu zum Erliegen. Ein gegenläufiger Effekt nach siRNA induziertem Knock-down von CCM3 war weniger stark ausgeprägt. Einzig die Fähigkeit, gefäßähnliche Strukturen in Matrigelen zu bilden, war erhöht. Um weiterhin Klarheit über die intrazellulären, von CCM3 beeinflussten Signalwege zu schaffen, wurden Tyrosin Kinase Arrays durchgeführt, bei welchen CCM3-überexprimierende HUVEC Lysate mit Kontrolllysaten verglichen wurden. Dabei stellte sich heraus, dass 5 Substrate signifikant erhöht phosphoryliert wurden: der Discoidin Domänen Rezeptor 1 (discoidin domain receptor; DDR1), die duale spezifitätstyrosinphosphorylierungsregulierte Kinase 1A (dual specificity tyrosine-phosphorylation-regulated kinase 1A; DYR1A), die Protoonkogen Tyrosin- Protein Kinase FER (proto-oncogene tyrosine-protein kinase FER; FER), die fynbezogene Kinase (Fyn-related kinase; FRK) und die phosphoinositolabhängige Kinase 1 (Phosphoinositide-dependent kinase 1, PDPK-1). Im Folgenden bestätigten Western Blot, dass die Überexpression von CCM3 in Endothelzellen die phosphoinositolabhängige Kinase 1 und die nachgeschaltete Serin-Threonin Kinase Akt/PBK aktiviert, welche ein bedeutsames Überlebenssignal der Zelle darstellt. Schließlich konnte gezeigt werden, dass CCM3 nicht nur antiangiogen, sondern auch antiapoptotisch wirkt. Die Ergebnisse der vorliegenden Arbeit legen nahe, dass CCM3 für die Integrität des ruhenden, adulten Endothelbettes wichtig ist. N2 - Cerebral cavernous malformations are slow-flow vascular lesions, mainly located in the brain. They consist of blood-filled dilated capillary-like vessels without brain parenchyma or mural cells. Clinical symptoms include intense headaches, epilepsy and stroke. However, about 40% of lesion carriers live without any symptoms throughout their lives due to incomplete penetrance. The disease prevalence is 0.5% in the population. Sporadic as well as autosomal-dominantly inherited familial forms exist. In recent years, 3 disease-related genes have been identified. Mutations within CCM1, CCM2 or CCM3 lead to indistinguishable clinical phenotypes. All three proteins form a ternary complex in vitro, confirming their participation in one main signaling pathway. While CCM1 and CCM2 have been explored to a great extent over the past years, little is known about CCM3 and its function so far. In this study, we show that CCM3 plays an important role in angiogenesis. Upon overexpression it has strong negative effects in endothelial cells. The ability to migrate, proliferate and to form capillary-like structures in matrix gels is significantly impaired. Knockdown experiments with siRNA against CCM3 did not reveal such distinct effects. Only the ability to form capillary-like structures was elevated. To identify signaling pathways modulated by CCM3, tyrosine kinase arrays were conducted. Lysates from HUVECs overexpressing CCM3 were compared with control lysates. Five substrates revealed significantly increased phosphorylation: the discoidin domain receptor 1 (DDR1), the dual specificity tyrosine-phosphorylation-regulated kinase 1A (DYR1A), the proto-oncogene tyrosine-protein kinase FER (FER), the fyn-related kinase (FRK) and the Phosphoinositidedependent kinase 1 (PDPK-1). The candidate 3-Phosphoinositide-dependent protein kinase- 1 is an important upstream activator of the serine-threonine kinase Akt/PKB. Subsequent experiments confirmed and demonstrated that p-PDPK-1 and p-Akt are activated in lysates overexpressing CCM3. In agreement with the fact that Akt is important for cell survival, we could finally show that CCM3 is both antiangiogenic and antiapoptotic. Our data suggest that CCM3 plays a role in maintaining quiescence of adult vascular endothelial cells. KW - Blutgefäß KW - Missbildung KW - Gehirn KW - Genanalyse KW - Endothelzelle KW - Angiogenese KW - CCM3 KW - Endothelzellen KW - CCM3 KW - endothelial cells KW - angiogenesis Y1 - 2010 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-51504 N1 - Includes articles: - Stahl, S., Gaetzner, S., Voss, K., Brackertz, B., Schleider, E., Sürücü, O., Kunze, E., Netzer, C., Korenke, C., Finckh, U., Habek, M., Poljakovic, Z., Elbracht, M., Rudnik-Schöneborn, S., Bertalanffy, H., Sure, U., Felbor, U. (2007) Novel CCM1, CCM2, and CCM3 mutations in patients with cerebral cavernous malformations: in-frame deletion in CCM2 prevents formation of a CCM1/CCM2/CCM3 protein complex. Hum Mutat, 29, 709-717. - Voss, K., Stahl, S., Reinders, J., Hogan, B.M., Schleider, E., Schulte-Merker, S., Felbor, U. (2009) Functional analysis of human and zebrafish 18 amino acid in-frame deletion pave the way for domain mapping of the cerebral cavernous malformation 3 (CCM3) protein. Hum Mutat, 30, 1003-1011. - Schleider, E., Stahl, S., Wüstehube, J., Walter, U., Fischer, A., Felbor, U. (2010) Evidence for anti-angiogenic and pro-survival functions of the cerebral cavernous malformation protein 3. Neurogenetics, submitted ER -