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Bestimmung der Substrat- und Inhibitorspezifität von Phosphodiesterasen mittels Mikrokaloriemetrie
(2009)
Neben den cAMP- und cGMP-abhängigen Proteinkinasen (PKA bzw. PKG) sind als zyklonukleotid-regulierte Effektorproteine die Ionenkanäle CNG1-4, der "guanine nucleotide exhange factor“ Epac sowie die zyklonukleotid-spaltende Familie der Phosphodiesterasen (PDEs) von Bedeutung. Industriell synthetisierte cGMP- und cAMP-Analoga besitzen zwar meist eine hohe Affinität für ihr Zielprotein, über ihre Hydrolysestabilität gegenüber PDEs in der Zelle ist jedoch wenig bekannt. In dieser Arbeit wurden die kinetischen Konstanten von elf der am häufigsten genutzten cAMP-und cGMP-Analoga an verschiedenen Vertretern der PDE-Familien mittels Mikrokaloriemetrie bestimmt. Zudem konnte in den Messungen der inhibitorisch Effekt hydrolysestabiler Derivate auf die PDEs qualitativ und quantitativ ermittelt werden kann. Die Ergebnisse zeigen, dass Phosphodiesterasen in der Lage sind, auch chemisch modifizierte Analogsubstanzen der Cyclonukleotide cAMP und cGMP zu hydrolysieren. Hydrolysestabile Derivate dagegen entwickeln häufig inhibitorische Wirkung auf die PDEs und verursachen dadurch Veränderungen der intrazellulären cAMP und cGMP Konzentrationen. So vermag z. B. die Epac-spezifische Substanz Sp-8-pCPT-2’-O-Me-cAMPS in den in vitro Experimenten die PDEs mit ki-Werten im einstelligen mikromolaren Bereich zu inhibieren. In mit Sp-8-pCPT-2’-O-Me-cAMPS stimulierten Thrombozyten steigt als Folge dieser PDE-Hemmung die cGMP Konzentration in der Zelle an und man beobachtet eine als Folge eine PKG-vermittelte Phosphorylierung des Substratproteins VASP – eine unerwünschte Nebenreaktion. Die erhobenen Daten lassen außerdem Rückschlüsse auf den Inhibitionsmechanismus zu. Einige Analoga inhibieren die cGMP-bindenden GAF-Domänen in den PDEs 2A, 5A, 6cone und 10A sowie die PDE 4D3 nach dem linear-mixed-Typ und beeinflussen daher, neben der katalytischen Aktivität, vermutlich auch regulatorische Zentren dieser Enzyme. Zusammenfassend erleichtern die erhobenen Daten Wissenschaftlern die Auswahl des für ihre Fragestellung am besten geeigneten Derivates.
In physiological conditions platelets have a major role in maintaining haemostasis. Platelets prevent bleeding from wounds by distinguishing normal endothelial cells in vasculature from areas with lesions to which they adhere. Interaction of platelet agonists and their receptors is controlled by intracellular signaling molecules that regulate the activation state of platelets. Very important intracellular signaling molecules are cyclic nucleotides (cGMP and cAMP), both involved in inhibition of platelet activation. Formation of cGMP and cAMP in platelets is stimulated by endothelial-derived NO and prostacyclin (PGI2), which then mediate inhibition of platelets by activating protein kinase G (PKG) and protein kinase A (PKA). Recently, it has been suggested that reactive oxygen species (ROS) represent new modulators of cell signaling within different cell types. The work summarized here describes the involvement of platelet ROS production in platelet activation, the relation of NO/cGMP/PKG I pathway to ROS and to mitogen-activated protein kinases (MAP kinase) signaling, and the involvement of cyclic nucleotides in megakaryocyte and platelet development. Platelets activated with different agonists produce intracellular but not extracellular ROS by activation of NAD(P)H oxidase. In addition, ROS produced in platelets significantly affects αIIbβ3 integrin activation but not alpha/dense granule secretion and platelet shape change. Thrombin induced integrin αIIbβ3 activation is significantly decreased after pretreatment of platelets with NAD(P)H oxidase inhibitors and superoxide scavengers. These inhibitors also reduce platelet aggregation and thrombus formation on collagen under high shear and achieve their effects independently of the NO/cGMP pathway. ADP secreted from platelet dense granules with subsequent activation of P2Y12 receptors as well as thromboxane A2 release are found to be important upstream mediators of p38 MAP kinase activation by thrombin. However, p38 MAP kinase activation does not significantly contribute to calcium mobilization, P-selectin expression, αIIbβ3 integrin activation and aggregation of human platelets in response to thrombin. Finally, PKG activation does not stimulate, but rather inhibit, p38 and ERK MAP kinases in human platelets. Further study revealed that cyclic nucleotides not only inhibit platelet activation, but are also involved, albeit differentially, in megakaryocyte and platelet development. cAMP is engaged in haematopoietic stem cell differentiation to megakaryocytes, and cGMP has no impact on this process. While PKA is already present in stem cells, expression of proteins involved in cGMP signaling (soluble guanylyl cyclase, sGC; PKG) increases with maturation of megakaryocytes. In the final step of megakaryocyte maturation that includes release of platelets, cGMP and cAMP have mild but opposing effects: cGMP increases platelet production while cAMP decreases it indicating a finely regulated process that could depend on stimulus coming from adjacent endothelial cells of sinusoids in bone marrow. The results of this thesis contribute to a better understanding of platelet regulation and of the possible molecular mechanisms involved in megakaryocyte maturation in bone marrow vascular microenvironment.