4 resultados para IgG receptors

em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha


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The new family of the anion receptors based on oligoureas with varied flexibility was developed and studied. The preparation of the urea chains containing two different units in various sequences was elaborated. The complete sets of four cyclic trimers and six tetramers based on the two units were prepared. Their conformational and complexation properties were studied with NMR spectroscopy and X-ray structure determinations, their behaviour towards various anions was evaluated and compared. The synthesis and the same studies were performed also with four different cyclic hexamers. During these studies the remarkable templation by two halide anions was observed.

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Das Antiphospholipid-Syndrom (APS) ist eine Autoimmunerkrankung die sich durch venöse und arterielle Thrombosen und/oder Spontanaborte bei gleichzeitigem Nachweis von persistierenden, erhöhten Antiphospholipid-Antikörper (aPL)-Titern charakterisieren lässt. Die zugrunde liegenden Mechanismen, über die aPL Pathogenität vermitteln, sind bislang wenig verstanden. Im Rahmen dieser Arbeit konnte gezeigt werden, dass drei humane monoklonale IgG aPL sowie IgG Fraktionen von APS Patienten eine Überexpression von TLR7 und TLR8 in plasmazytoiden dendritischen Zellen bzw. monozytären Zellen induzieren. Gleichzeitig erfolgt die Induktion der TLR7/8 Translokation vom endoplasmatischen Retikulum (ER) ins Endosom. Diese Effekte werden durch die Internalisierung der aPL und die nachfolgende Aktivierung einer NADPH Oxidase sowie durch endosomale Superoxid Produktion vermittelt. Als Folge dessen werden die Zellen extrem für TLR7/8 Liganden sensibilisiert. Diese Beobachtungen beschreiben einen neuen Signalmechanismus der innaten Immunität, der seinen Ursprung im Endosom nimmt. Da die Überexpression von TLR7 auch in pDCs von APS Patienten detektiert werden konnte, bieten unsere Ergebnisse eine Erklärung für die proinflammatorischen und prokoagulanten Effekte von aPL. rnWeiterhin führte die kombinierte Stimulation mit aPL und TLR7 Liganden in pDCs zu einem signifikant verstärkten Potential zur CD4+ Th2 Zell Aktivierung bzw. zur Regulation der B-Zell Differenzierung und Immunglobulin Produktion. Die Anwesenheit der pDCs erhöhte dabei synergistisch die CD40/86 Expression, die Proliferation sowie die Plasmazell-Differenzierung von isolierten peripheren B-Zellen, die mit aPL und TLR Liganden stimuliert wurden. Dieser Stimulationsansatz war außerdem ausreichend um naive B-Zellen zur IgM/IgG Produktion anzuregen und die Synthese neuer IgG aPL durch Gedächtnis-B-Zellen einzuleiten. Die Beteiligung der pDCs an diesem Prozess erfolgte durch Zytokin Sekretion sowie direktem Zell-Zell-Kontakt. Die Anwesenheit von Th2-Helferzellen war dabei nicht obligatorisch, konnte jedoch die B-Zell Aktivierung zusätzlich fördern. Eine Hochregulierung von TLR7 oder TLR9 innerhalb der B-Zell Population war nicht involviert. rnrnDiese Ergebnisse zeigen erstmalig die Relevanz einer pDC Aktivierung im Hinblick auf die Aufrechterhaltung der pathogenen Aktivität im Rahmen des APS. Da eine Dysregulierung von TLR7 bereits als ursächlich für die Ausbildung einer systemischen Autoimmunität erachtet wird, sollten unsere Ergebnisse für das generelle Verständnis von Autoimmunität von großer Relevanz sein.rn

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Membrane proteins play an indispensable role in physiological processes. It is, therefore, not surprising that many diseases are based on the malfunction of membrane proteins. Hence membrane proteins and especially G-protein coupled receptors(GPCRs)- the largest subfamily- have become an important drug target. Due to their high selectivity and sensitivity membrane proteins are also feasible for the detection of small quantities of substances with biosensors. Despite this widespread interest in GPCRs due to their importance as drug targets and biosensors there is still a lack of knowledge of structure, function and endogenous ligands for quiet a few of the previously identified receptors.rnBottlenecks in over-expression, purification, reconstitution and handling of membrane proteins arise due to their hydrophobic nature. Therefore the production of reasonable amounts of functional membrane proteins for structural and functional studies is still challenging. Also the limited stability of lipid based membrane systems hampers their application as platforms forrnscreening applications and biosensors.rnIn recent years the in vitro protein synthesis became a promising alternative to gain better yields for expression of membrane proteins in bio-mimetic membrane systems. These expression systems are based on cell extracts. Therefore cellular effects on protein expression are reduced. The open nature of the cell-free expression systems easily allows for the adjustment of reactionrnconditions for the protein of interest. The cell-free expression in the presence of bio-mimetic membrane systems allows the direct incorporation of the membrane proteins and therefore skips the time-consuming purification and reconstitution processes. Amphiphilic block-copolymers emerged as promising alternative for the less stable lipid-based membrane systems. They, likernlipids, form membraneous structures in aqueous solutions but exhibit increased mechanical and chemical stability.rnThe aim of this work was the generation of a GPCR-functionalised membrane system by combining both promising alternatives: in vitro synthesis and polymeric membrane systems. This novel platform should be feasible for the characterisation of the incorporated GPCR. Immunodetection of Dopamine receptor 1 and 2 expressed in diblock- and triblock-polymersomes demonstrated the successful in vitro expression of GPCRs in polymeric membranes. Antibodyrnbinding studies suggested a favoured orientation of dopamine receptors in triblockpolymersomes.rnA dopamine-replacement assay on DRD2-functionalised immobilised triblockpolymersomes confirmed functionality of the receptor in the polymersomes. The altered binding curve suggests an effect of the altered hydrophobic environment presented by the polymer membrane on protein activity.

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The multiligand Receptor for Advanced Glycation End products (RAGE) is involved in various pathophysiological processes, including diabetic inflammatory conditions and Alzheimers disease. Full-length RAGE, a cell surface-located type I membrane protein, can proteolytically be converted by metalloproteinases ADAM10 and MMP9 into a soluble RAGE form. Moreover, administration of recombinant soluble RAGE suppresses activation of cell surface-located RAGE by trapping RAGE ligands. Therefore stimulation of RAGE shedding might have a therapeutic value regarding inflammatory diseases. We aimed to investigate whether RAGE shedding is inducible via ligand-induced activation of G protein-coupled receptors (GPCRs). We chose three different GPCRs coupled to distinct signaling cascades: the V2 vasopressin receptor (V2R) activating adenylyl cyclase, the oxytocin receptor (OTR) linked to phospholipase Cβ, and the PACAP receptor (subtype PAC1) coupled to adenylyl cyclase, phospholipase Cβ, calcium signaling and MAP kinases. We generated HEK cell lines stably coexpressing an individual GPCR and full-length RAGE and then investigated GPCR ligand-induced activation of RAGE shedding. We found metalloproteinase-mediated RAGE shedding on the cell surface to be inducible via ligand-specific activation of all analyzed GPCRs. By using specific inhibitors we have identified Ca2+ signaling, PKCα/PKCβI, CaMKII, PI3 kinases and MAP kinases to be involved in PAC1 receptor-induced RAGE shedding. We detected an induction of calcium signaling in all our cell lines coexpressing RAGE and different GPCRs after agonist treatment. However, we did not disclose a contribution of adenylyl cyclase in RAGE shedding induction. Furthermore, by using a selective metalloproteinase inhibitor and siRNAmediated knock-down approaches, we show that ADAM10 and/or MMP9 are playing important roles in constitutive and PACAP-induced RAGE shedding. We also found that treatment of mice with PACAP increases the amount of soluble RAGE in the mouse lung. Our findings suggest that pharmacological stimulation of RAGE shedding might open alternative treatment strategies for Alzheimers disease and diabetes-induced inflammation.