• Refine Query
  • Source
  • Publication year
  • to
  • Language
  • 4
  • 2
  • 1
  • Tagged with
  • 7
  • 3
  • 3
  • 3
  • 2
  • 2
  • 2
  • 2
  • 2
  • 2
  • 2
  • 2
  • 2
  • 2
  • 2
  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
1

Molecular-Modelling-Untersuchungen am humanen P2Y2-Rezeptor und seinen Liganden

Ko, Geun-Yung January 2008 (has links)
Zugl.: Düsseldorf, Univ., Diss., 2008
2

Biochemische Charakterisierung des ADP-Rezeptors P2Y12 und pharmakologische Therapiekontrolle von Thrombozytenfunktionshemmern

Aktas, Barsom. January 2003 (has links) (PDF)
Würzburg, Univ., Diss., 2003.
3

Charakterisierung ionotroper purinerger Rezeptoren im Nucleus medianus praeopticus des anterioren Hypothalamus der Ratte

Hitzel, Norma. January 2009 (has links) (PDF)
Zugl.: Giessen, Universiẗat, Diss., 2009.
4

Adenosindiphosphat-vermittelte Funktion und Expression von purinergen Rezeptoren in gewaschenen humanen Thrombozyten / Adenosindiphosphate-mediated function and expression of purinergic receptors in washed platelets

Hermann, Stephanie January 2019 (has links) (PDF)
Nach der Präparation von gewaschenen Thrombozyten, einem wichtigen Ausgangsmaterial für die experimentelle Forschung oder für die Transfusionsmedizin, tritt bekannterweise ein zunehmender Verlust der ADP-vermittelten Aggregationsfähigkeit ein. Die verminderte Funktionsfähigkeit von Thromboyzten nach dem Waschvorgang kann somit auch experimentelle Ergebnisse beeinflussten. Allerdings sind die dafür verantwortlichen molekularen Mechanismen bisher nicht aufgeklärt, sodass in dieser Dissertationsarbeit molekulare sowie auch funktionelle Vorgänge untersucht wurden, die zum bekannten Phänomen des raschen Verlustes der ADP-vermittelten Aggregationsfähigkeit gewaschener Thrombozyten führen. Die Wirkung von ADP wird über die drei purinergen Rezeptoren P2Y1, P2X1 und P2Y12 vermittelt wird. Daher wurde zunächst die ADP-induzierte Aggregationsfähigkeit alleine bzw. unter Kostimulation mit Epinephrin oder Serotonin - zwei Induktoren, deren Rezeptoren mit analogen Signalwegen wie die ADP-Rezeptoren P2Y1 bzw. P2Y12 gekoppelt sind - bestimmt. Um Hinweise zu erhalten, wie die Abnahme der ADP-vermittelten Reaktivität von gewaschenen Thrombozyten mit der purinergen Rezeptorexpression und -distribution sowie mit der nachgeschalteten Signalweiterleitung im Zusammenhang steht, wurde zudem die Expression purinerger Rezeptoren auf der Thrombozytenoberfläche bzw. die Konzentration von purinergen Rezeptoren im Zytosol gewaschener Thrombozyten mittels Durchflusszytometrie bzw. ELISA gemessen. Es zeigte sich, dass die Funktion der den purinergen Rezeptoren nachgeschalteten Signalwege während der Lagerungszeit zunehmend beeinträchtigt wird, aber zumindest teilweise erhalten bleibt, wie anhand von Effekten durch Kostimulation mit den Induktoren Epinephrin und Serotonin gezeigt werden konnte. Die Distribution der Rezeptoren zwischen der Thrombozytenoberfläche und den intrazellulären Kompartimenten unterliegt komplexen Prozessen, die induktorabhängig reguliert sind. Eine initiale Zunahme der Expression von ADP-Rezeptoren während der Lagerung von gewaschenen Thrombozyten geht dabei nicht einher mit der Aufrechterhaltung der ADP-induzierten Aggregation. In der Schlussfolgerung ist die fortschreitende Degeneration der ADP-vermittelten Aggregation - neben einem Rückgang der Rezeptorexpression nach mehr als einer Stunde Lagerungszeit - vor allem auf einen funktionellen Verlust der purinergen Rezeptoren zurückzuführen. / Washing of platelets is an important procedure commonly used for experimental studies, e.g. in cardiovascular research, or transfusion medicine. As a well-known phenomenon, responsiveness to adenosine diphosphate (ADP) is reduced in washed platelets. Therefore, washing of platelets may affect experimental results. The underlying molecular mechanisms of the rapid loss of ADP-mediated aggregation of washed platelets have not been thoroughly studied. Aim of this dissertation was to elucidate the molecular and functional processes of this phenomenon. ADP mediates its action via three purinergic receptors P2Y1, P2X1 and P2Y12. At first the ADP-induced aggregation of washed platelets was determined by using ADP alone or ADP combined with the stimulators epinephrine or serotonin. Both mediate their effects via the same signaling pathways as ADP but use different receptors. To get information if the reduced responsiveness to ADP in washed platelets is linked with the receptor expression and distribution, the expression and concentration of purinergic receptors on the platelet surface and in the cytosol of washed platelets was measured by using flow cytometry and ELISA. It was shown that the function of the signaling pathways downstream of the purinergic receptors was increasingly impaired during storage of washed platelets. However, it could be at least partially retained by co-stimulation with epinephrine or serotonin. The distribution of receptors between the platelet surface and the intracellular compartments is based on complex processes which are regulated depending on the different stimulators. An initial increase in the expression of ADP receptors during storage of washed platelets was not associated with the maintenance of ADP-induced aggregation. In conclusion, the progressive decrease of ADP-mediated aggregation is - next to a decrease of expression - mainly caused by functional loss of the purinergic receptors.
5

Inter-molekulare Lokalisation der ATP-Bindungstasche in P2X-Rezeptoren durch Disulfid-Quervernetzung Cystein-substituierter Aminosäuren

Marquez-Klaka, Benjamin. Unknown Date (has links) (PDF)
Universiẗat, Diss., 2008--Frankfurt (Main).
6

ATP induced intracellular calcium response and purinergic signalling in cultured suburothelial myofibroblasts of the human bladder

Cheng, Sheng 11 June 2012 (has links) (PDF)
Suburothelial myofibroblasts (sMF) are located underneath the urothelium in close proximity to afferent nerves and show spontaneous calcium activity in vivo and in vitro. They express purinergic receptors and calcium transients can be evoked by ATP. Therefore they are supposed to be involved in afferent signaling of the bladder fullness. Myofibroblast cultures, established from cystectomies, were challenged by exogenous ATP in presence or absence of purinergic antagonist. Fura-2 calcium imaging was used to monitor ATP (10-16 to 10-4 mol/l) induced alterations of calcium activity. Purinergic receptors (P2X1, P2X2, P2X3) were analysed by confocal immunofluorescence. We found spontaneous calcium activity in 55.18% ± 1.65 (mean ± SEM) of the sMF (N=48 experiments). ATP significantly increased calcium activity even at 10-16 mol/l. The calcium transients were partially attenuated by subtype selective antagonist (TNP-ATP, 1μM; A-317491, 1μM), and were mimicked by the P2X1, P2X3 selective agonist α,β-methylene ATP. The expression of purinergic receptor subtypes in sMF was confirmed by immunofluorescence. Our experiments demonstrate for the first time that ATP can modulate spontaneous activity and induce intracellular Ca2+ response in cultured sMF at very low concentrations, most likely involving ionotropic P2X receptors. These findings support the notion that sMF are able to register bladder fullness very sensitively, which predestines them for the modulation of the afferent bladder signaling in normal and pathological conditions.
7

ATP induced intracellular calcium response and purinergic signalling in cultured suburothelial myofibroblasts of the human bladder: ATP induced intracellular calcium response and purinergic signalling in cultured suburothelial myofibroblasts of thehuman bladder

Cheng, Sheng 22 May 2012 (has links)
Suburothelial myofibroblasts (sMF) are located underneath the urothelium in close proximity to afferent nerves and show spontaneous calcium activity in vivo and in vitro. They express purinergic receptors and calcium transients can be evoked by ATP. Therefore they are supposed to be involved in afferent signaling of the bladder fullness. Myofibroblast cultures, established from cystectomies, were challenged by exogenous ATP in presence or absence of purinergic antagonist. Fura-2 calcium imaging was used to monitor ATP (10-16 to 10-4 mol/l) induced alterations of calcium activity. Purinergic receptors (P2X1, P2X2, P2X3) were analysed by confocal immunofluorescence. We found spontaneous calcium activity in 55.18% ± 1.65 (mean ± SEM) of the sMF (N=48 experiments). ATP significantly increased calcium activity even at 10-16 mol/l. The calcium transients were partially attenuated by subtype selective antagonist (TNP-ATP, 1μM; A-317491, 1μM), and were mimicked by the P2X1, P2X3 selective agonist α,β-methylene ATP. The expression of purinergic receptor subtypes in sMF was confirmed by immunofluorescence. Our experiments demonstrate for the first time that ATP can modulate spontaneous activity and induce intracellular Ca2+ response in cultured sMF at very low concentrations, most likely involving ionotropic P2X receptors. These findings support the notion that sMF are able to register bladder fullness very sensitively, which predestines them for the modulation of the afferent bladder signaling in normal and pathological conditions.:1. Introduction............................................................................ 1 1.1. Anatomy and histology of the human urinary bladder..................... 1 1.1.1. Anatomy of the human urinary bladder..................................... 1 1.1.2. Structure of the human urinary bladder wall............................... 2 1.2. Normal bladder function and bladder dysfunction.......................... 3 1.2.1 Normal bladder function......................................................... 3 1.2.2 Sensory aspect.................................................................... 4 1.2.3 Overactivity or hypersensitivity of bladder.................................. 5 1.3 The role of functional cell types and interaction in urinary bladder... 6 1.3.1 The role of urothelium.......................................................... 7 1.3.2Theroleofsuburotheliamyofibroblast...................................... 7 1.3.3Theroleofdetrusorsmoothmusclecells.................................. 9 1.3.4 Possible interactions in urinary bladder cell types........................ 10 1.4 ATP function and Purinergic signalling in bladder........................... 11 1.5 Spontaneous activity of bladder................................................... 13 2. Objective.................................................................................. 15 3. Material and methods............................................................... 16 3.1. Ethics Statement........................................................................ 16 3.2. Cell preparation.......................................................................... 16 3.3. Solutions and chemicals............................................................. 19 3.4. Intracellular calcium measurements............................................. 20 2.4.1. Preparing cells for Calcium Imaging.......................................... 20 2.4.2. Preparing workspace of calcium imaging................................... 20 2.4.3. Calcium imaging recording...................................................... 22 3.5 Data analysis with automated Fluorescence analysis..................... 22 3.6 Confocal Immunofluorescence.................................................... 25 3.7 Statistics................................................................................. 26 4. Results.................................................................................. 27 4.1 Spontaneous calcium activity of sMF........................................... 27 4.2 ATP effects on calcium response in sMF...................................... 27 4.3 Analysis of purinergic receptors involved.................................... 30 3.3.1 Agonist stimulation.............................................................. 30 3.3.2 Signal inhibition by specific antagonists................................... 31 4.4 Confocal immunofluorescence of purinergic receptors.................. 32 5. Discussion............................................................................. 34 5.1 Myofibroblast identification....................................................... 34 5.2 Spontaneous activity in the bladder............................................ 36 5.3 ATP modulated calcium activity in sMF....................................... 37 5.4 purinergic signalling in sMF........................................................ 39 6. Summary................................................................................ 42 7. References.............................................................................. 45 Declaration............................................................................. 50 Acknowledgements................................................................. 51

Page generated in 0.0508 seconds