3 resultados para Nod2 Signaling Adaptor Protein

em Universitätsbibliothek Kassel, Universität Kassel, Germany


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Die Spezifität und Effizienz zellulärer Signalprozesse wird durch die intrazelluläre Kompartimentierung von Signalmolekülen erreicht. A-Kinase-Ankerproteine (AKAPs) bilden eine Familie aus Gerüstproteinen, die zeitliche und räumliche Lokalisation der cAMP-abhängigen Proteinkinase (PKA) übernehmen. Die direkte Interaktion wird dabei über die Dimerisierungs- und Dockingdomäne (DD-Domäne) der regulatorischen Untereinheiten von PKA vermittelt. Das charakteristische strukturelle Merkmal bei kanonischen AKAPs ist eine amphipathische Helix. Es existiert allerdings auch eine kleine Gruppe von nicht-kanonischen AKAPs, deren Bindung an die DD-Domäne nicht über eine amphipathische Helix vermittelt wird. In dieser Arbeit wurden die zwei potentiellen nicht-kanonischen AKAPs Neurochondrin (neurite-outgrowth promoting protein) und Rack1 (receptor of activated C-kinase 1) charakterisiert. Neurochondrin, dessen Expression mit dem Neuriten-Wachstum in jungen Neuronen korreliert ist und das vermutlich eine entscheidende Funktion bei der Langzeitpotenzierung im Hippocampus übernimmt, zeigt in SPR-Bindungsstudien eine hochaffine, nanomolare Interaktion mit der R-Untereinheit Typ IIalpha von PKA. Kompetitionsanalysen mit dem AKAP-Disruptor-Peptid Ht 31 und Untersuchungen mit der isolierten DD-Domäne von RIIalpha bestätigen eine spezifische Interaktion. Das nicht-kanonische RII-Bindemotiv von Neurochondrin ist aus zwei Domänen aufgebaut, die einen hohen alpha-helikalen Anteil besitzen, aber keine amphipathische Helix bilden. Peptidbasierte Interaktionsstudien der einzelnen Domänen zeigen dennoch ebenfalls nanomolare Affinitäten zu RIIalpha. Rack1 ist ein etabliertes Gerüstprotein mit einer propellerartigen beta-Faltblattstruktur, für das bereits über 100 verschiedene Interaktionspartner beschrieben werden konnten. Die Integration von Rack1 in unterschiedliche Signalprozesse ist äußerst vielfältig. Um dabei die Spezifität jeder einzelnen Interaktion zu gewährleisten, sind individuelle Bindungsstrategien nötig. Die niedrigaffine Interaktion zur RIbeta-Untereinheit von PKA wird daher über multiple Bindestellen vermittelt. Die DD-Domäne von RIbeta übernimmt dabei eine spezifische Funktion, wie unter anderem durch Kompetitionsanalysen mit dem RI-spezifischen AKAP-Disruptor-Peptid RIAD gezeigt werden konnte. Die einzigartige Struktur der DD-Domäne generiert zudem ein Bindemotiv für Rack1, das Ähnlichkeiten mit der „Rack1 interacting-Domäne“ (RAID) von PDE4D5 aufweist. Sowohl Neurochondrin als auch Rack1 besitzen essenzielle neuronale Funktionen. Daher erweitert die Identifizierung der beiden neuen nicht-kanonischen AKAPs nicht nur die strukturelle Diversität der AKAP-Familie, sondern trägt zudem zum Verständnis der neuronalen Signalintegration von PKA bei.

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The soil amoebae Dictyostelium discoideum take up particles from their environment in order to obtain nutrition. The particle transits through the cell within a phagosome that fuses with organelles of different molecular compositions, undergoing a gradual degradation by different sets of hydrolytic enzymes. Griffiths’ concept of “phagosome individuality” predicts signaling from phagosomes into the cytoplasm, which might regulate many aspects of cell physiology. The finding that Dictyostelium cells depleted of the lysozyme AlyA or over-expressing the esterase Gp70 exhibit increased uptake of food particles, led to the postulation of a signaling cascade between endocytic compartments and the cytoskeletal uptake machinery at the plasma membrane. Assuming that Gp70 acts downstream of AlyA, gene-expression profiling of both mutants revealed different and overlapping sets of misregulated genes that might participate in this signaling cascade. Based on these results, we analyzed the effects of the artificial misregulation of six candidate genes by over-expression or negative genetic interference, in order to reconstruct at least part of the signaling pathway. SSB420 and SSL793 were chosen as candidates for the first signaling step, as they were up-regulated in AlyA-null cells and remained unaltered in the Gp70 over-expressing cells. The over-expression of SSB420 enhanced phagocytosis and raised the expression levels of Gp70, supporting its involvement in the signaling pathway between AlyA and Gp70 as a positive regulator of phagocytosis. However, this was not the case of cells over-expressing SSL793, as this mutation had no effects on phagocytosis. For the signaling downstream of Gp70, we studied four commonly misregulated genes in AlyA-depleted and Gp70 over-expressing cells. The expression levels of SLB350, SSB389 and TipD were lower in both mutants and therefore these were assumed as possible candidates for the negative regulation of phagocytosis. Cells depleted of SLB350 exhibited an increased phagocytic activity and no effect on Gp70 expression, proving its participation in the signaling pathway downstream of Gp70. Unlike SLB350, the disruption of the genes coding for SSB389 and TipD had no effects on particle uptake, excluding them from the pathway. The fourth candidate was Yipf1, the only gene that was commonly up-regulated in both mutants. Yet, the artificial over-expression of this protein had no effects on phagocytosis, so this candidate is also not included in the signaling pathway. Furthermore, localizing the products of the candidate genes within the cell helped unveiling several cellular organelles that receive signals from the phagosome and transduce them towards the uptake machinery.

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Cyclic GMP-dependent protein kinase (PKG) is a key transducer in the NO-cGMP signaling pathway. In this line, PKG has been considered an important drug target for treating hypertensive cardiovascular and pulmonary diseases. However, the investigation of PKG’s allosteric activation mechanism has been hampered by a lack of structural information. One of the fundamental questions on the cGMP-dependent activation of PKG is how the enzyme can distinguish cGMP over cAMP and selectively respond to cGMP. To ensure proper signaling, PKG must have developed unique features to ensure its activation upon the right activation signal. In this thesis, the cGMP-selective activation mechanism of PKG was studied through determining crystal structures of three truncated constructs of the regulatory domain [CNB-A (92-227), CNB-B (271-369), and CNB-A/B (92-351)] of PKG Iβ in the absence or presence of cyclic nucleotides. Herein, two individual CNB domain structures with biochemical data revealed that the C-terminal CNB domain (CNB-B) is responsible for cGMP selectivity, while the N-terminal CNB-domain (CNB-A) has a higher binding affinity for both cGMP and cAMP without showing any selectivity. Based on these crystal structures, mutagenesis studies were performed in which the critical residues for cyclic nucleotide selectivity and activation were identified. Furthermore, we discovered that the conformational changes of the C-terminal helix of the CNB-B that bridges between the regulatory and catalytic domains including the hydrophobic capping interaction are crucial for PKG activation. In addition, to observe the global conformation of the activated R-domain, I solved a co-crystal structure of the CNB-A/B with cGMP. Although a monomeric construct was crystallized, the structure displays a dimer. Strikingly, the CNB-A domain and its bound cGMP provide a key interface for this dimeric interaction. Using small angle X-ray scattering (SAXS), the existence of the cGMP-mediated dimeric interface within the CNB domains was confirmed. Furthermore, measuring cGMP-binding affinities (EC50) of the dimeric interface mutants as well as determining activation constants (Ka) revealed that the interface formation is important for PKG activation. To conclude, this thesis study provides a new mechanistic insight in PKG activation along with a newly found interface that can be targeted for designing PKG-specific activity modulators.