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  • 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.
71

Régulation de l'activité autophagique par les récepteurs chimiotactiques couplés aux protéines G : rôle essentiel dans la migration directionnelle / Inhibition of autophagic activity by chemotactic receptors coupled to G proteins : essential role in cell migration

Coly, Pierre-Michaël 02 February 2017 (has links)
L’autophagie est un processus catabolique par lequel certaines protéines cytosoliquessont dirigées vers le compartiment lysosomial, afin d’y être dégradées. Ce processus débutepar la séquestration de constituants cytoplasmiques par une structure multimembranaireappelée phagophore. La fermeture du phagophore donne naissance à une vésicule à doublemembrane nommée autophagosome, qui fusionne avec les lysosomes, ce qui conduit à ladégradation du contenu de sa lumière. Ainsi, la modulation de l’autophagie permet unremodelage dynamique du protéome cellulaire. Bien que des données récentes ont permis dedémontrer la dégradation autophagique de protéines impliquées dans la migration cellulaire,telles que des intégrines, ou encore les protéines RhoA et Src, l'impact fonctionnel del'autophagie sur la migration cellulaire demeure sujet à controverse. Alors que l'autophagie estdécrite comme un processus pro-migratoire et pro-invasif dans certaines études, d'autrestravaux indiquent que l'inactivation des protéines pro-autophagiques stimule l'invasion descellules cancéreuses. De plus, l'effet fonctionnel des RCPG chimiotactiques sur l’activitéautophagique reste totalement inexploré. Sur la base de ces données, les objectifs de mon travail de thèse ont été i) d’évaluer les effets des RCPG chimiotactiques, le CXCR4 et l’UT,sur le processus autophagique et ii) d’étudier l’impact de cette modulation sur la migrationcellulaire. Pour ce faire, nous avons utilisé des cellules HEK-293, transfectées à l’aide deconstruits permettant l’expression des RCPG CXCR4 et UT, ainsi que la lignée deglioblastome humain U87, exprimant ces deux récepteurs de manière endogène.Nous avons dans un premier temps évalué l’activité autophagique à l’aide de laprotéine de fusion EGFP-LC3, marqueur des autophagosomes. Nous avons ainsi démontréque l’activation du CXCR4 et de l’UT provoque une diminution significative de la biogénèsedes autophagosomes. Une étape essentielle de cette biogenèse est le recrutement des protéinesAtg16L1 et Atg5 à la membrane plasmique, conduisant à la formation d'endosomes Atg16L1-Atg5-positifs, appelés « endosomes pré-autophagiques ». Cette population d’endosomesconstitue une source importante de phospholipides nécessaire à l’expansion du phagophore etla formation d’un autophagosome mature. Afin d’évaluer l’impact des RCPG chimiotactiquessur le recrutement de la protéine Atg16L1 à la membrane plasmique, nous avons bloqué leprocessus d’endocytose par l’utilisation d’un inhibiteur de la dynamine, le Dynasore. Cettemolécule provoque une accumulation marquée de la protéine Atg16L1 dans les endosomespré-autophagiques en formation, retenus à la membrane plasmique. / Autophagy is a catabolic process by which certain cytosolic proteins are directed to thelysosomal compartment to be degraded. This process begins with the sequestration ofcytoplasmic components, by a multimembrane structure called the phagophore. The closure ofthe phagophore gives rise to a double membrane vesicle called autophagosome, which thenmerges with lysosomes in order to degrade its luminal content. Autophagy modulation allowsa dynamic remodeling of the cellular proteome. Although recent evidence has demonstratedautophagic degradation of key proteins involved in cell migration, such as integrins, RhoAand the Src kinase, the functional impact of autophagy on cell migration remainscontroversial. While autophagy is described as a pro-migratory and pro-invasive process insome studies, others indicate that the inactivation of pro-autophagic proteins stimulates thecancer cell invasion. In addition, the functional effect of chemotactic GPCR on autophagicactivity remains unexplored. On the basis of these data, the objectives of my thesis were i) toevaluate the effects of the chemotactic GPCRs for SDF-1 (CXCR4) and for the vasoactivepeptide urotensin II (UT), on the autophagic process and ii) to study the impact of thismodulation on cell migration. In order to do this, we used HEK-293 cells, transfected with constructs allowing the expression of CXCR4 and UT, as well as the human glioblastomaline, U87, which endogenously expresses these two receptors. Previous studies have demonstrated a direct interaction of Atg5 with membranes,suggesting that recruitment of Atg16L1 to the plasma membrane may depend on Atg5. This prompted us to evaluate the formation of Atg16L1-positive pre-autophagic endosomes,following depletion of Atg5 levels. Several interfering RNAs, targeting the transcriptencoding Atg5, have been tested and, as expected, these interfering RNAs completely blockedthe recruitment of Atg16L1 to forming pre-autophagic endosomes. We then tested the effectsof chemotactic GPCRs on the subcellular localization of the Atg5 protein. By confocalmicroscopy, we found that a significant fraction of Atg5 localized to the plasma membraneunder basal conditions. The activation of CXCR4 or UT is accompanied by a marked decreaseof the Atg5 pool localized at the plasma membrane. Furthermore, we have demonstrated thatthe anti-autophagic effects of chemotactic GPCRs are completely abrogated byoverexpression of a recombinant Atg5 protein, suggesting that chemotactic GPCRs exert theiranti-autophagic effects by reducing the membrane pool of Atg5, necessary for the productionof pre-autophagic endosomes, and the expansion of the phagophore.
72

Vliv chronického působení morfínu na funkci signálních systémů řízených trimérními G-proteiny v srdci potkana / Effect of chronic morphine treatment of rats on myocardial signaling systems regulated by trimeric G-proteins

Škrabalová, Jitka January 2011 (has links)
It has recently been discovered that the effect of morphine can significantly reduce the tissue damage that occurs during myocardial ischemia. The molecular mechanisms by which morphine acts on the heart are still little understood. The aim of this thesis was to monitor the effect of chronic 27-day and 10-day administration of low (1 mg/kg/day) and high (10 mg/kg/ day) doses of morphine on the expression of selected G-protein-coupled receptors (GPCR) and on the expression and activity of adenylyl cyclase (AC). Chronic (27 days) morphine treatment reduced the expression of к-opioids receptors, but 10-day morphine exposure did not influence the expression of these receptors. Assessment of β1- and β2-AR by immunoblot technique did not show any significant change in the expression, but the more accurate determination of β-AR expression using the saturation binding studies revealed that 27-day treatment with high doses of morphine appreciable increased the total number of these receptors. Administration of high doses of morphine led to marked up-regulation of adenylyl cyclase (AC) isoforms V/VI, and the amount of AC decreased proportionally with the time of discontinuation of morphine administration. Low doses of morphine up- regulated AC only during 27-day administration. Chronic morphine exposure did...
73

Discovering Natural Product Chemistries for Vector Control

Lide Bi (15347593) 25 April 2023 (has links)
<p>  </p> <p>Vector-borne diseases (VBDs) represent a significant health burden worldwide, threatening approximately 80% of the global population. Insecticide-based vector control is the most effective method to manage many VBDs, but its efficacy has been declining due to high levels of resistance in vector populations to the main insecticide classes which operate via limited modes of action. Therefore, the discovery of new chemistries from non-conventional chemical classes and with novel modes of action is a priority for the control of vectors and VBDs. Natural products (NPs) are diverse in chemical structures and, potentially, modes of action. They have been used as insecticides for many decades and have inspired the development of multiple synthetic insecticides, suggesting the discovery of novel NPs could lead to the development of highly effective insecticides. </p> <p><br></p> <p>In this thesis, I report two studies with a main goal to identify novel mosquito-active insecticide leads that operate via modes of action distinct from existing insecticides. First, I tested the hypothesis that new mosquito-active insecticide leads with novel chemical structures, possibly operating via novel modes of action, can be identified by high-content larval phenotypic screening against a natural product collection and using novel phenotypic endpoints in addition to mortality endpoints. Here, I performed a high-content larval phenotypic screen using first instar (L1) larvae of <em>Aedes aegypti</em> (Linnaeus, 1762) against 3,680 compounds from the AnalytiCon MEGx Natural Product Libraries and a screening platform developed by Murgia et al., (2022). Compounds were screened in a 384-well plate format using the Perkin Elmer Opera Phenix and larvae were scored for lethal and novel phenotypic endpoints. Screening revealed five chemistries that caused larval mortality, including rotenone and a new NP chemistry, NP-4. The identification of rotenone confirmed the ability of the screen to detect mosquito-active NP chemistries. NP-4 caused high levels of larval mortality in the screen, and toxicity was confirmed in a subsequent concentration-response assay against third instar (L3) larvae of <em>Ae. aegypti</em>. 140 chemistries that caused atypical larval phenotypes, including cuticular pigmentation and morphometric changes relative to negative controls, were also identified by the screen. Some of these chemistries may operate by disruption of pathways regulating melanization, growth and development, and novel targets in the insect nervous systems, thus representing potential leads for further insecticide toxicity and mode of action studies. To facilitate quantitative analyses of atypical phenotypes, an attempt was made to assess the morphometrics of the thorax in larvae exposed to test chemistry, relative to control larvae. However, assessment was limited by the number of larvae images of suitable quality for measurements. </p> <p><br></p> <p>In the second study, I tested the hypothesis that metergoline (Murgia et al., 2022) and NP-4 (this study), two chemistries identified by the HTP phenotypic screen described in this project, operate via disruption of targets in the insect nervous systems that are distinct from the current insecticidal modes of products used in mosquito control programs. Specifically, I explored the hypothesis that metergoline operates via one or more insect orthologs of the mammalian G protein-coupled serotonin and dopamine receptors. An electrophysiology study was performed using the suction electrode technique and ganglia of the German cockroach, <em>Blattella germanica </em>(Linnaeus, 1767). To facilitate the investigation of metergoline agonism/antagonism and disruption of invertebrate GPCR signaling, 5-hydroxytryptamine (5-HT; serotonin) was included as a chemical probe. Electrophysiological recordings showed 5-HT (10µM and 1mM) and metergoline (10µM) caused no significant neurological activity at the tested concentrations in comparison to the saline control. However, a consistent neuro-inhibitory trend was observed, suggesting possible agonism of a 5-HT1-like receptor ortholog and antagonism of a putative 5-HT7-like receptor ortholog in the cockroach, respectively.  NP-4 caused significant neuro-inhibition at the tested concentration of 20µM, in comparison to the negative saline control. Given the demonstration of rapid contact toxicity to <em>Ae. aegypti</em> larvae and neurological inhibition in <em>B. germanica</em>, we propose NP-4 may act at one or more conserved targets in the insect nervous systems, which remain to be elucidated. </p> <p><br></p> <p>The significance of the present study is three-fold. First, this study reports the first high-content phenotypic screen of mosquito larvae against a NP collection and identification of 145 mosquito-active chemistries associated with lethal and phenotypic endpoints. These data confirm that the screening platform provided an innovative and effective system to rapidly identify mosquito-active small molecules with potential novel modes of action. Second, metergoline and NP-4 represent potential novel chemical leads for the development of new insecticides that can be incorporated into vector control programs targeting insecticide-resistant populations. Lastly, the study describes the first electrophysiology study of 5-HT, metergoline, and NP-4 via the suction electrode technique in an insect system and contributes new knowledge to the study of the insect serotonergic system, which represents an expanding area of vector biology research given its roles in feeding regulation.  </p> <p><br></p> <p>Future studies resulting from this thesis might include: (1) development of a set of morphometric criteria for quantitative analyses of atypical larval phenotypes, (2) incorporation of new phenotypic endpoints to expand the capacity of the screen to identify novel mode of action chemistries for insecticide discovery, and (3) identification of chemistry candidates suitable for further development from the 140 chemistries associated with atypical larval phenotypes in the primary screen using chemo-informatic and toxicological studies. In addition, studies using reverse transcription-polymerase chain reaction (RT-PCR), cell-based expression systems, mutant/insecticide resistant strains, and patch clamp electrophysiology could be pursued to further investigate the molecular mode of action of metergoline and NP-4, and potential for vector control.</p>
74

Molecular Effects of Auto-Antibodies on Angiotensin II Type 1 Receptor Signaling and Cell Proliferation

Philippe, Aurelie, Kleinau, Gunnar, Gruner, Jason Jannis, Wu, Sumin, Postpieszala, Daniel, Speck, David, Heidecke, Harald, Dowell, Simon J., Riemekasten, Gabriela, Hildebrand, Peter W., Kamhieh-Milz, Julian, Catar, Rusan, Szczepek, Michal, Dragun, Duska, Scheerer, Patrick 17 January 2024 (has links)
The angiotensin II (Ang II) type 1 receptor (AT1R) is involved in the regulation of blood pressure (through vasoconstriction) and water and ion homeostasis (mediated by interaction with the endogenous agonist). AT1R can also be activated by auto-antibodies (AT1R-Abs), which are associated with manifold diseases, such as obliterative vasculopathy, preeclampsia and systemic sclerosis. Knowledge of the molecular mechanisms related to AT1R-Abs binding and associated signaling cascade (dys-)regulation remains fragmentary. The goal of this study was, therefore, to investigate details of the effects of AT1R-Abs on G-protein signaling and subsequent cell proliferation, as well as the putative contribution of the three extracellular receptor loops (ELs) to Abs-AT1R signaling. AT1R-Abs induced nuclear factor of activated T-cells (NFAT) signaling, which reflects Gq/11 and Gi activation. The impact on cell proliferation was tested in different cell systems, as well as activation-triggered receptor internalization. Blockwise alanine substitutions were designed to potentially investigate the role of ELs in AT1R-Abs-mediated effects. First, we demonstrate that Ang II-mediated internalization of AT1R is impeded by binding of AT1R-Abs. Secondly, exclusive AT1RAbs- induced Gq/11 activation is most significant for NFAT stimulation and mediates cell proliferation. Interestingly, our studies also reveal that ligand-independent, baseline AT1R activation of Gi signaling has, in turn, a negative effect on cell proliferation. Indeed, inhibition of Gi basal activity potentiates proliferation triggered by AT1R-Abs. Finally, although AT1R containing EL1 and EL3 blockwise alanine mutations were not expressed on the human embryonic kidney293T (HEK293T) cell surface, we at least confirmed that parts of EL2 are involved in interactions between AT1R and Abs. This current study thus provides extended insights into the molecular action of AT1R-Abs and associated mechanisms of interrelated pathogenesis.
75

cAMP BIOSENSORS AND SPATIOTEMPORAL cAMP SIGNALING IN ADULT CARDIAC MYOCYTES

Warrier, Sunita 06 April 2007 (has links)
No description available.
76

Modulating G Protein-Coupled Receptor Signaling Pathways with Selective Chemical- and Protein-Based Effector Molecules

Gulati, Sahil, Gulati 31 August 2018 (has links)
No description available.
77

Differential regulation of GABAB receptor trafficking by different modes of N-methyl-D-aspartate (NMDA) receptor signaling

Kantamneni, Sriharsha, Gonzàlez-Gonzàlez, I.M., Luo, J., Cimarosti, H., Jacobs, S.C., Jaafari, N., Henley, J.M. 2013 December 1924 (has links)
Yes / Inhibitory GABAB receptors (GABABRs) can down-regulate most excitatory synapses in the CNS by reducing postsynaptic excitability. Functional GABABRs are heterodimers of GABAB1 and GABAB2 subunits and here we show that the trafficking and surface expression of GABABRs is differentially regulated by synaptic or pathophysiological activation of NMDA receptors (NMDARs). Activation of synaptic NMDARs using a chemLTP protocol increases GABABR recycling and surface expression. In contrast, excitotoxic global activation of synaptic and extrasynaptic NMDARs by bath application of NMDA causes the loss of surface GABABRs. Intriguingly, exposing neurons to extreme metabolic stress using oxygen/glucose deprivation (OGD) increases GABAB1 but decreases GABAB2 surface expression. The increase in surface GABAB1 involves enhanced recycling and is blocked by the NMDAR antagonist AP5. The decrease in surface GABAB2 is also blocked by AP5 and by inhibiting degradation pathways. These results indicate that NMDAR activity is critical in GABABR trafficking and function and that the individual subunits can be separately controlled to regulate neuronal responsiveness and survival. / BBSRC, MRC and the European Research Council
78

Use of cellular impedance to characterize ligand functional selectivity at G protein-coupled receptors

Stallaert, Wayne 12 1900 (has links)
Les récepteurs couplés aux protéines G (RCPGs) représentent la plus grande famille de cibles thérapeutiques pour le traitement d’une panoplie de pathologies humaines. Bien que plusieurs décennies de recherche aient permis de façonner nos connaissances sur ces protéines membranaires, notre compréhension des déterminants moléculaires de leur activité signalétique reste encore limitée. De ces domaines de recherche, une avancée récente a mis à jour un nouveau phénomène, appelé sélectivité fonctionnelle des ligands, qui a bouleversé les paradigmes décrivant leu fonctionnement de ces récepteurs. Ce concept émane d’observations montrant que l’activité pharmacologique de certains ligands n’est pas nécessairement conservée sur tout le répertoire signalétiques connu du récepteur et peu se restreindre à l'activation sélective d’un sous-groupe de voies de signalisation.Ce nouveau modèle pharmacologique de l'activation des RCPG ouvre de nouvelles possibilités pour la découverte de médicaments plus efficace et sûr, ciblant les RCPGs. En effet, il permet la conception de molécules modulant spécifiquement les voies signalétiques d’intérêt thérapeutique, sans engager les autres voies qui pourraient mener à des effets secondaires indésirables ou de la tolérance. Cette thèse décrit l'utilisation d'une nouvelle approche sans marquage, basée sur la mesure du changement l'impédance cellulaire. Par la mesure des changements cellulaires, comme la morphologie, l’adhésion et/ou la redistribution des macromolécules, cette approche permet de mesurer de façon simultanée l'activité de plusieurs voies de signalisation impliqués dans ces réponses. Utilisant le récepteur β2-adrénergique (β2AR) comme modèle, nous avons démontré que les variations dans l’impédance cellulaire étaient directement liées à l’activation de multiples voies de signalisation suite à la stimulation du récepteur par son ligand. L’agoniste type du β2AR, l’isoprotérénol, s’est avéré induire une réponse d’impédance dose-dépendante constituée, dans le temps, de plusieurs caractéristiques distinctes pouvant être bloquées de façon compétitive par l’antagoniste ICI118,551 Par l’utilisation d’inhibiteurs sélectifs, nous avons été en mesure de déterminer la contribution de plusieurs voies signalétiques canoniques, comme les voies dépendantes de Gs et Gi, la production d’AMPc et l’activation de ERK1/2, sur ces changements. De plus, la dissection de la réponse d’impédance a permis d’identifier une nouvelle voie de mobilisation du Ca2+ contribuant à la réponse globale des changements initiés par la stimulation du β2AR. Dans une autre étude, nous avons rapporté que la réponse calcique induite par le β2AR serait attribuable à une transactivation Gs-dépendant du récepteur purinergique P2Y11, lui-même couplé à la protéine Gq. La mesure d’impédance permettant de distinguer et de décrire une pléiade d’activités signalétiques, nous avons émis l’hypothèse que des ligands arborant des profils signalétiques différents généreraient des réponses d’impédance distinctes. Le criblage d’une librairie de ligands spécifiques au β2AR a révélé une grande variété de signatures d’impédance. Grâce au développement d’une approche computationnelle innovatrice, nous avons été en mesure de regrouper ces signatures en cinq classes de composés, un regroupement qui s’est avéré hautement corrélé avec le profil signalétique des différents ligands. Nous avons ensuite combiné le criblage de composés par impédance avec l’utilisation d’inhibiteurs sélectifs de voies signalétiques afin d’augmenter la résolution du regroupement. En évaluant l’impact d’une voie signalétique donnée sur la signature d’impédance, nous avons été en mesure de révéler une plus grande variété de textures parmi les ligands. De plus, cette méthode s’est avérée efficace pour prédire le profil signalétique d’une librairie de composés non caractérisés, ciblant le β2AR. Ces travaux ont mené à l’élaboration d’une méthode permettant d’exprimer visuellement la sélectivité fonctionnelle de ligands et ont révélé de nouvelles classes de composés pour ce récepteur. Ces nouvelles classes de composés ont ensuite été testées sur des cardiomyocytes humains, confirmant que les composés regroupés dans différentes classes produisent des effets distincts sur la contractilité de ces cellules. Globalement, ces travaux démontrent la pertinence de l’utilisation de l’impédance cellulaire pour une évaluation précise des différences fonctionnelles parmi les composés ciblant les RCPGs. En fournissant une représentation pluridimensionnelle de la signalisation émanant des RCPGs à l’aide d’un seul essai ne requérant pas de marquage, les signatures d’impédance représentent une stratégie simple et innovante pour l’évaluation de la fonctionnalité sélective des ligands. Cette méthode pourrait être d’une grande utilité dans le processus de découverte de nouveaux médicaments. / G protein-coupled receptors (GPCRs) represent the largest family of therapeutic targets for the treatment of a wide variety of human pathologies. Decades of research have provided an extensive base of knowledge about these fascinating membrane proteins, yet significant advancements in the understanding of the structural and functional details of these important drug targets continue to accumulate to this day. One such area of research in particular that has caused a paradigm shift in the way we conceptualize receptor function is a recently identified phenomenon known as ligand functional selectivity. This concept refers to the numerous observations that the pharmacological activity of a ligand at a given receptor is not always conserved over all possible signalling events engaged by the receptor, often resulting in the selectivity of a ligand to modulate only a subset of the receptor’s signalling repertoire. This model of receptor activity reveals exciting new possibilities for the discovery of safer and more efficacious drugs targeting GPCRs; through the design of drugs specifically targeting the pathway of therapeutic interest without modulating other, uninvolved pathways which could lead to tolerance or adverse effects. This thesis will describe the use of a novel, label-free technique based on cellular impedance to further characterize ligand functional selectivity at GPCRs. By measuring changes in higher-order cellular responses, such as changes in morphology, adhesion and redistribution of macromolecules, this approach provides a means to simultaneously measure the activity of multiple signalling pathways converging on these responses. Using the β2-adrenergic receptor (β2AR) as a model system, we have demonstrated that changes in cellular impedance reflect the activity of multiple signalling events elicited following ligand stimulation of the receptor. Isoproterenol, the prototypical agonist of the β2AR, was found to elicit a dose-dependent impedance response consisting of multiple, discrete features over time, which could be blocked in a competitive manner by the antagonist ICI118,551. Using pathway-selective inhibitors, we were able to dissect the contribution of many of the canonical pathways activated by the β2AR, including Gs- and Gi-dependent signalling, as well as cAMP production and ERK1/2 activation. Furthermore, through the pharmacological dissection of this impedance response, we identified a novel Ca2+ mobilization pathway that contributes to the overall cellular response to β2AR stimulation. In a separate study of the mechanism generating this β2AR-promoted Ca2+ response, we revealed a Gs-dependent transactivation mechanism of the Gq-coupled P2Y11 purinergic receptor. Given the ability of impedance measurements to capture this pleiotropic signalling activity, we then reasoned that ligands exhibiting different signalling profiles should generate distinct impedance signatures. In screening a library of functionally selective compounds targeting the β2AR, we obtained a wide variety of impedance signatures. Through the development of a novel computational approach, we were able to cluster these signatures into five distinct compounds classes, which were highly correlated with signalling profiles of the ligands. In an extension of this approach, we then combined impedance screening with the use of pathway-selective inhibitors to determine if this would provide greater resolution in distinguishing among functionally distinct compounds. By assessing if and how a given signalling pathway contributes to a ligand’s impedance signature, we were able to reveal even more texture among ligands targeting the β2AR. Furthermore, this approach was found to be predictive of the signalling profiles of a library of uncharacterized compounds for the β2AR. This work led to the development of a visualization method to express ligand functional selectivity and revealed potentially novel classes of compounds for the receptor. These compound classes were then validated in human cardiomyocytes, confirming that compounds clustering into different classes produced distinct effects on cardiomyocyte contractility. Altogether, this work demonstrates the ability of cellular impedance to accurately measure functional differences among compounds targeting GPCRs. In providing a representation of the pluridimensionality of GPCR signalling using a single, label-free assay, impedance profiling represents an innovative strategy to assess ligand functional selectivity and may be a valuable addition to future drug discovery campaigns.
79

Fluoreszenzmikroskopische Untersuchungen zur Interaktion G-Protein gekoppelter Rezeptoren

Teichmann, Anke 11 January 2013 (has links)
G-Protein gekoppelte Rezeptoren (GPCR) sind Rezeptoren mit 7 Transmembrandomänen. Nach Bindung ihres Liganden werden über die Kopplung von G-Proteinen rezeptorspezifisch Signaltransduktionswege aktiviert. Ein bislang nicht ausreichend verstandener Prozess für die Funktion von GPCR ist deren Oligomerisierung. Für einige GPCR konnte gezeigt werden, dass die Oligomerisierung den Rezeptortransport und/oder die Dynamik der Rezeptoraktivierung moduliert. Dabei ist noch nicht aufgeklärt, ob die entsprechenden GPCR ausschließlich als Oligomere oder in einem bestimmten Monomer-Dimer Verhältnis (M/D) vorliegen und welcher Dynamik dieses Verhältnis unterliegt. In dieser Arbeit wurde die Homo-Oligomerisierung des Endothelin-B-Rezeptors (ETBR), des Vasopressin-V2-Rezeptors (V2R) und der Corticotropin-Releasing-Factor-Rezeptoren Typ 1 (CRF1R) und Typ 2(a) (CRF2(a)R) analysiert. Im Anschluss an diese Untersuchungen wurde das M/D der GPCR bestimmt. Zur Detektion der Protein-Protein Interaktionen wurden die biophysikalischen Methoden Fluoreszenz-Resonanz-Energie-Transfer (FRET) und Fluoreszenz-Kreuzkorrelations-Spektroskopie (FCCS) eingesetzt. Mit Hilfe der FCCS konnte das spezifische M/D der GPCR bestimmt und über FRET ein Unterschied in der Interaktions-Dynamik zwischen den GPCR der Familie 1 (am Bsp. des V2R) und der Familie 2 (am Bsp. des CRF1R) ermittelt werden. Des Weiteren lieferten die genutzten Methoden den Nachweis, dass der zum CRF1R homologe CRF2(a)R ausschließlich als Monomer vorliegt. Zusätzliche Untersuchungen an Signalpeptidmutanten des CRF1R und des CRF2(a)R weisen darauf hin, dass das Pseudosignalpeptid des CRF2(a)R, welches bislang einzigartig in der Superfamilie der GPCR ist, die Oligomerisierung des Rezeptors verhindert. Zusätzlich zu diesen neuen Daten konnte in dieser Arbeit erstmals ein Zusammenhang zwischen Rezeptorinteraktion und G-Protein Selektivität für den CRF1R und den CRF2(a)R festgestellt werden / The heptahelical G protein-coupled receptors (GPCRs) are important drug targets. Following activation by their ligands, they exert their function via the binding of G proteins and activation of specific signal transduction cascades. To date, the functional significance of the oligomerization of GPCRs is not completely understood. For some GPCRs it could be shown that the oligomerization modulates receptor transport and/or the dynamics of receptor activation. Most importantly, it is not clear whether the GPCRs exist exclusively as oligomers or in a certain monomer-dimer ratio (M/D) or whether a given ratio is dynamic. In this work, the homo-oligomerization of the endothelin-B-receptor (ETBR), the vasopressin-V2-receptor (V2R) and the corticotropin-releasing-factor-receptors type 1 (CRF1R) and type 2(a) (CRF2(a)R) was analysed. In addition, the M/D of these GPCRs was determined. For the detection of the protein-protein interactions, the following biophysical methods were established: fluorescence-resonance-energy-transfer (FRET) and fluorescence-crosscorrelation-spectroscopy (FCCS). With the help of FCCS, a specific M/D could be determined for each of the GPCRs. Using FRET, differences in the interaction dynamics between family 1 (V2R) and family 2 GPCRs (CRF1R) could be described. Moreover, it was experimentally verified that the CRF2(a)R is exclusively expressed as a monomer, in contrast to the other GPCRs and even the highly homologous CRF1R. Using signal peptide swap experiments, it could be demonstrated that the N-terminal pseudo signal peptide of the CRF2(a)R, which is so far unique in the superfamily of GPCRs, prevents oligomerization of the receptor. In addition, a relation of receptor oligomerization and G protein coupling selectivity was established for the CRF1R and the CRF2(a)R which is novel for the GPCR protein family.
80

Kombination chemischer, gentechnischer und enzymatischer Methoden zur Darstellung schwer synthetisierbarer Proteine

Abel, Sabine 26 May 2014 (has links)
Das fibrillen-bildende beta2-Mikroglobulin (b2M) und das CRF1-Mimetikum mit verzweigter Rückgratstruktur können als „schwierige“ Proteine betrachtet werden, deren Darstellung sich eignet, gegenwärtige Möglichkeiten und Grenzen der Proteinsynthese zu ermitteln. Die Proteine sollen zu spektroskopischen Untersuchungen von Proteinfaltung bzw. Ligand-Rezeptor- Wechselwirkungen eingesetzt werden. Versuche zur Chemosynthese von b2M über drei Segmente führten per NCL zwar zu linearen Produkten mit korrekter Primärstruktur, aber wiederholt wurden zwei, mittels HPLC trennbare Proteine erhalten, deren enzymatische Spaltung zu identischen Fragmenten führte. Eine Isomerisierung (wie z.B. Epimerisierung) als Ursache für die Bildung der zwei Produkte konnte ausgeschlossen werden. Mittels CD- und FTIR-Spektroskopie wurden für beide Produkte beta- Faltblatt-Strukturen ermittelt, die sich sowohl untereinander als auch vom rekombinanten Protein unterschieden. Die „fehlgefalteten“ Syntheseprodukte konnten nicht entfaltet und anschließend in die „korrekte“ Struktur des rekombinanten b2M überführt werden. Es ist denkbar, dass die beobachtete „Fehlfaltung“, deren Ursache nicht geklärt werden konnte, für vom b2M ausgelöste Amyloidosen verantwortlich ist. Das CRF1-Modell, das aus drei zyklischen Peptiden und einem Protein mit Disulfidbrücken besteht, welche auf einem linearen Peptid-Templat verankert sind, wurde durch ein zyklisches Templat zur strukturellen Einschränkung modifiziert. Durch das zyklische Templat ergaben sich keine Syntheseprobleme, aber interessanterweise führte die Zyklisierung des Templats zu einer signifikant höheren Affinität für den Agonisten Urocortin-I im funktionellen Assay. Darüber hinaus wurde gezeigt, dass ein zyklisches Rezeptor-Loop-Peptid mittels EPL im mg-Maßstab erhalten werden kann, was künftig die Synthese isotopenmarkierter Analoga für Struktur-Untersuchungen ermöglicht. / The fibril forming beta2-microglobulin (b2m) and the CRF1 mimic with branched peptide backbone could be considered as “difficult” proteins, whose synthesis is suited for determining present possibilities and limits of protein synthesis. The proteins shall be used for spectroscopic analysis of protein misfolding or ligand-receptor-interaction, respectively. Efforts of the chemosynthesis of b2m over three segments may lead via NCL to linear products with correct primary structure, but two, via HPLC isolatable proteins were repetitively susbstained, whose enzymatic digest lead to identical fragments. An isomerization (such as e. g. epimerization) as reason for the formation of the two products could be excluded. By means of CD and FTIR spectroscopy for both products beta-sheet structure were determined, which differ among themselves as well as from the recombinant protein. The “misfolded” synthetic product could not be unfolded und subsequently converted into the “correct” structure of the recombinant b2m. It is possible that the observed “misfolding”, whose cause could not be clarified, is reasonable for the amyloidosis induced by b2m. The CRF1 model that consists of three cyclic peptides and one protein with disulfid bridges coupled to a linear peptide template, was modified for structural constraints by a cyclic template. In consequence of the cyclic template no synthetic problems aroused, although the cyclisation of the template leads interestingly to a significant higher affinity for the antagonist urocortin-I in the functional assay. Furthermore, it was shown that a cyclic receptor loop peptide could be received via EPL in mg scale, what in future enables the synthesis of isotopically labeled analogs for structure investigations.

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