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High-throughput identification and characterization of novel inhibitors of Regulator of G Protein Signaling 17 as pretherapeutic leads for the treatment of lung and prostate cancersMackie, Duncan Ian 01 December 2014 (has links)
G–Protein Coupled Receptors are one of the most important targets in drug development, making up over 60% of drug targets. Recent studies have implicated a role of Regulator of G–Protein Signaling (RGS) proteins in the development and progression of pathologies, including some cancers. RGS17, the most–recently identified family member of the RZ family of RGS proteins, has been implicated in the growth, proliferation, metastasis and migration of prostate tumors as well as small–cell and non–small cell lung cancers. In neoplastic tumor tissues RGS17 is up–regulated 13 fold over patient–matched normal tissues in prostate cancer. Studies have shown that RGS17 RNAi knockdown inhibits colony formation and decreases tumorigenesis in nude mice. Based on these findings, this thesis explores the research undertaken to develop small molecule inhibitors of the RGS17: Gαo protein: protein interaction.
In this thesis, we implemented AlphaScreen® technology to develop a high–throughput screening method for interrogating small molecule libraries for inhibitors of RGS17. Chapter 3 focuses on the initial results of the AlphaScreen® in 384–well format. The screen utilizes a measurement of the Gα: RGS17 protein: protein interaction (PPI) and with an excellent Z–score exceeding 0.73, a signal to noise ratio >70 and a screening time of 1,100 compounds per hour. Chapter 3 presents the development, validation and initial high–throughput screening for inhibitors of Gα: RGS17 interaction as well as preliminary characterization of the RL series of hits. In this pilot screen the NCI Diversity Set II was interrogated, yielding 35 initial hits of which 16 were confirmed after screening against controls. The 16 compounds exhibited IC50 <10 ΜM in dose–response experiments for inhibiting the Gα: RGS17 interaction. Four exhibited IC50 values <6 ΜM while inhibiting the Gα: RGS17 interaction >50% when compared to a biotinylated GST control (TrueHits). Compounds RL–1 and RL–2 were confirmed by flow cytometry protein interaction assay (FCPIA) while RL–3 and RL–4 were unable to disrupt this PPI in FCPIA. All four compounds were tested using the differential scanning fluorimetry (DSF) method, which is based on energetic coupling between ligand binding and protein unfolding and found compounds RL–1 to RL–4 all slightly increased protein stability upon ligand binding.
Chapter 4 focuses on the miniaturization and optimization of AlphaScreen® to a 1536–well format and screening of the MicroSource SPECTRUM and NDL3000 small molecule libraries. This increased throughput 11–fold and decreased our working volumes from 45 ΜL to 10 ΜL, which reduced reagent cost. After optimization, we retained in an excellent Z–factor ≥0.70 with S/N>5.77 and increased the screening rate to more than 12,000 compounds per hour. In this format, the initial screening of the SPECTRUM and NDL3000 libraries was completed and filtered the initial hits by counter screening and PAINs filtering as well as developing four powerful orthogonal assays for the characterization of potential lead molecules.
Chapter 6 focuses on the future directions, which include the screening the in–house 50,000 compound library in the University of Iowa HTS Core facility as well as the development of cell based assays to determine the activity of these leads in the cellular milieu. These screens are the first step to developing novel pharmacophores for further optimization of structure with the focus on RGS17 activity in enzymatic, whole cell, xenograft and whole animal models as well as providing new avenues for the development of anticancer therapies.
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Phosphoregulation of somatodendritic voltage-gated potassium channels by pituitary adenylate cyclase-activating polypeptideGupte, Raeesa Prashant 01 August 2015 (has links)
The endogenous neuropeptide pituitary adenylate cyclase-activating polypeptide (PACAP) exerts various neuromodulatory functions in mammalian brain. Enhancement of synaptic activity, mediation of chronic inflammatory and neuropathic pain, and neuroprotection in cerebral ischemia reperfusion injury constitute some of the exemplary functions of PACAP. However, it remains unclear whether PACAP signaling can directly influence the function of critical voltage-gated ion channels, which could profoundly alter the excitability of neurons. Voltage-gated K+ (Kv) channels are critical regulators of neuronal excitability. The major Kv channel in the dendrites of mammalian neurons, Kv4.2, contributes most of the fast-activating and rapidly-inactivating K+ currents (IA), and is a key regulator of dendritic excitability, as well as modulation of synaptic inputs. In addition, the major somatic Kv channel Kv2.1 that contributes the bulk of slow-activating and non-inactivating K+ currents (IK), acts as an integrator of neuronal inputs and limits high frequency firing in neurons. As such, it provides homeostatic control of excitability under hyperexcitable and ischemic conditions. Both these Kv channels are known to undergo extensive post-translational modifications mainly by phosphorylation that alters their localization and biophysical properties. PACAP can activate its specific receptor PAC1 that could result in downstream activation of various kinases including protein kinase A (PKA), protein kinase C (PKC), extracellular signal-regulated kinase (ERK1/2). Therefore, I hypothesize that PACAP activation of PAC1 receptor can cause phosphorylation-dependent modulation of somatodendritic Kv4.2 and Kv2.1 channels, resulting in altered neuronal excitability.
First, I identified the various PAC1 receptor isoforms expressed in rat and mouse brain and elucidated that their activation by PACAP caused downstream PKA- and PKC-dependent signaling pathways, ultimately converging on ERK1/2 activation. Further, PACAP caused reduction in IA that was mediated by phosphorylation-dependent internalization of the channel protein from the plasma membrane. These effects were mediated by direct phosphorylation of the channel by ERK1/2 at the cytoplasmic C-terminus of the channel. Although PACAP did not significantly alter the voltage-dependence of Kv4.2 channel activation/inactivation, I observed distinct ERK1/2- and PKA-dependent changes in the extent and kinetics of channel inactivation.
Next, I observed that PACAP induced dephosphorylation of the Kv2.1 channel in CHN that was mediated by protein phosphatase 2A (PP2A), and was dependent on PKC activation but was independent of the effects of PACAP on Kv4.2 currents. Rapid but reversible dephosphorylation of Kv2.1 was also observed following induction of ischemia in neurons by oxygen-glucose deprivation (OGD). PACAP prolonged the dephosphorylation of Kv2.1 following in vitro ischemia-reperfusion and also reduced neuronal death. My results therefore suggest a novel PACAP/PAC1-PKC-PP2A-Kv2.1 signaling axis that provides neuroprotection during ischemia reperfusion injury.
In summary, my results suggest that PACAP can induce direct phosphorylation-dependent modulation of the Kv4.2 and Kv2.1 channel localization and function in mammalian brain neurons. The effect of PACAP on these two critical somatodendritic ion channels occurs via distinct signaling - convergent PKA-PKC-ERK-mediated phosphorylation of Kv4.2 channel, and PKC-PP2A-mediated dephosphorylation of the Kv2.1 channel. Such distinct modulations of these ion channels are presumably responsible for the multifarious roles of PACAP in the central nervous system.
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Classification, Evolution, Pharmacology and Structure of G protein-coupled ReceptorsLagerström, Malin C January 2006 (has links)
<p>G protein-coupled receptors (GPCR) are integral membrane proteins with seven α-helices that translate a remarkable diversity of signals into cellular responses. The superfamily of GPCRs is among the largest and most diverse protein families in vertebrates. </p><p>We have searched the human genome for GPCRs and show that the family includes approximately 800 proteins, which can divided into five main families; <i>Glutamate</i>, <i>Rhodopsin</i>, <i>Adhesion</i>, <i>Frizzled/Taste2</i> and <i>Secretin</i>. This study represents one of the first overall road maps of the GPCR family in a mammalian genome. Moreover, we identified eight novel members of the human <i>Adhesion</i> family which are characterized by long N-termini with various domains. We also investigated the GPCR repertoire of the chicken genome, where we manually verified a total of 557 chicken GPCRs. We detected several specific expansions and deletions that may reflect some of the functional differences between human and chicken.</p><p>Substantial effort has been made over the years to find compounds that can bind and activate the melanocortin 4 receptor (MC4R). This receptor is involved in food intake and is thus an important target for antiobesity drugs. We used site-directed mutagenesis to insert micromolar affinity binding sites for zinc between transmembrane (TM) regions 2 and 3. We generated a molecular model of the human MC4R which suggests that a rotation of TM3 is important for activation of the MC4R. </p><p>Furthermore, we present seven new vertebrate prolactin releasing hormone receptors (PRLHRs) and show that they form two separate subtypes, PRLHR1 and PRLHR2. We performed a pharmacological characterization of the human PRLHR which showed that the receptor can bind neuropeptide Y (NPY) related ligands. We propose that an ancestral PRLH peptide has coevolved with a redundant NPY binding receptor, which then became PRLHR. This suggests how gene duplication events can lead to novel peptide ligand/receptor interactions and hence spur the evolution of new physiological functions. </p>
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G Protein-Coupled Receptors; Discovery of New Human Members and Analyses of the Entire Repertoires in Human, Mouse and RatGloriam, David E. January 2006 (has links)
<p>G protein-coupled receptors (GPCRs) are signal mediators that have a prominent role in the regulation of physiological processes and they make up the targets for 30-45% of all drugs. </p><p>Papers I and II describe the discovery of new human GPCRs belonging to the Rhodopsin family, a family which contains many common drug targets. The new receptors have only weak relationships to previously known GPCRs. However, they have been evolutionary conserved in several species and most of them display distinct expression patterns.</p><p>In paper III we identified new human GPCRs belonging to the Adhesion family, which is characterised by very long N-termini containing conserved domains. The different compositions of conserved domains as well as the expression patterns suggest that the Adhesions can have several different functions.</p><p>In paper IV we revealed remarkable species variations in the repertoires of Trace Amine-Associated Receptors (TAARs), which are relatives of the biogenic amine receptors. The human, mouse and rat TAAR genes are located in only one locus and are therefore most likely the result of gene tandem duplications. 47 of the 57 zebrafish TAARs were mapped to nine different loci on six chromosomes containing from 1 to 27 genes each. This study suggests that the TAARs arose through several different mechanisms involving tetraploidisation, block duplications, and local duplication events. </p><p>Papers V and VI are overall analyses of the repertoires of GPCRs in humans, mice and rats; which contain approximately 800, 1800 and 1900 members, respectively. The repertoires were compared to distinguish between species-specific and common (orthologous) members, something which is important for example when predicting drug effects from experiments in rodents. The Glutamate, Adhesion, Frizzled and Secretin families show no or very little variation between human and rodents, whereas the repertoires of olfactory, vomeronasal and Taste2 receptors display large differences between all three species. </p>
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Development of Proteochemometrics—A New Approach for Analysis of Protein-Ligand InteractionsLapins, Maris January 2006 (has links)
<p>A new approach to analysis of protein-ligand interactions, termed proteochemometrics, has been developed. Contrary to traditional quantitative structure-activity relationship (QSAR) methods that aim to correlate a description of ligands to their interactions with one particular target protein, proteochemometrics considers many targets simultaneously.</p><p>Proteochemometrics thus analyzes the experimentally determined protein-ligand interaction activity data by correlating the data to a complex description of all interaction partners and; in a more general case even to interaction environment and assaying conditions, as well. In this way, a proteochemometric model analyzes an “interaction space,” from which only one cross-section would be contemplated by any one QSAR model.</p><p>Proteochemometric models reveal the physicochemical and structural properties that are essential for protein-ligand complementarity and determine specificity of molecular interactions. From a drug design perspective, models may find use in the design of drugs with improved selectivity and in the design of drugs for multiple targets, such as mutated proteins (e.g., drug resistant mutations of pathogens).</p><p>In this thesis, a general concept for creating of proteochemometric models and approaches for validation and interpretation of models are presented. Different types of physicochemical and structural description of ligands and macromolecules are evaluated; mathematical algorithms for proteochemometric modeling, in particular for analysis of large-scale data sets, are developed. Artificial chimeric proteins constructed according to principles of statistical design are used to derive high-resolution models for small classes of proteins.</p><p>The studies of this thesis use data sets comprising ligand interactions with several families of G protein-coupled receptors. The presented approach is, however, general and can be applied to study molecular recognition mechanisms of any class of drug targets.</p>
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Reduction in pre-retinal neovascularization by ribozymes that cleave the A2B receptor mRNAAfzal, Aqeela. January 2003 (has links)
Thesis (Ph. D.)--University of Florida, 2003. / Title from title page of source document. Includes vita. Includes bibliographical references.
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Klonierung und Charakterisierung aminerger Rezeptoren der Amerikanischen Schabe Periplaneta americana / Characterization of biogenic amine receptors of the american cockroach Periplaneta americanaTroppmann, Britta January 2009 (has links)
Biogene Amine sind kleine organische Verbindungen, die sowohl bei Vertebraten als auch bei Invertebraten als Neurotransmitter, Neuromodulatoren und/oder Neurohormone wirken. Sie bilden eine bedeutende Gruppe von Botenstoffen und entfalten ihre Wirkungen vornehmlich über die Bindung an G-Protein-gekoppelte Rezeptoren.
Bei Insekten wurde eine Vielzahl von Wirkungen biogener Amine beschrieben. Das führte schon frühzeitig zur Vermutung, dass Insekten (u. a. Invertebraten) wie die Wirbeltiere ein diverses Repertoire an aminergen Rezeptoren besitzen. Für ein umfassendes Verständnis der komplexen physiologischen Wirkungen biogener Amine fehlten jedoch wichtige Informationen über die molekulare Identität der entsprechenden Rezeptorproteine und ihrer pharmakologischen Eigenschaften, ihre Lokalisation und ihre intrazellulären Reaktionspartner. Viele bei Schaben gut untersuchte (neuro)physiologische Prozesse sowie Verhaltensweisen werden durch Serotonin und Dopamin gesteuert bzw. moduliert. Über die beteiligten Rezeptoren ist jedoch bisher vergleichsweise wenig bekannt. Die Klonierung und Charakterisierung von Serotonin- und Dopaminrezeptoren der Amerikanischen Schabe P. americana ist damit ein längst überfälliger Schritt auf dem Weg zu einem umfassenden Verständnis der vielfältigen Wirkungen biogener Amine bei Insekten.
Durch die Anwendung verschiedener Klonierungsstrategien konnten cDNAs isoliert werden, die für potentielle Serotoninrezeptoren und einen Dopaminrezeptor kodieren. Die Sequenzen weisen die größte Ähnlichkeit zu Mitgliedern der 5-HT1- und 5-HT7-Rezeptorklassen bzw. den Invertebratentyp-Dopaminrezeptoren auf. Die isolierten Rezeptoren der Amerikanischen Schabe wurden dementsprechend Pea(Periplaneta americana)5-HT1, Pea5-HT7 und PeaDop2 benannt. Das Hydropathieprofil dieser Rezeptoren postuliert das Vorhandensein der charakteristischen heptahelikalen Architektur G-Protein-gekoppelter Rezeptoren. Die abgeleiteten Aminosäuresequenzen zeigen typische Merkmale aminerger Rezeptoren. So sind Aminosäuren, die bedeutend für die Ligandenbindung, die Rezeptoraktivierung und die Kopplung an GProteine sind, in den Rezeptoren konserviert.
Expressionsstudien zeigten eine auffallend hohe Expression aller drei Rezeptor-mRNAs im Gehirn sowie in den Speicheldrüsen. Im Rahmen dieser Arbeit wurden polyklonale Antikörper gegen den Pea5-HT1-Rezeptor sowie den PeaDop2-Rezeptor hergestellt. Der anti-Pea5-HT1-Antikörper detektiert im Homogenat von Schabengehirnen, Speicheldrüsen und Pea5-HT1-exprimierenden HEK 293-Zellen die glykosylierte Form des Rezeptors. In Gehirnschnitten markiert der anti-Pea5-HT1-Antikörper spezifisch einige Zellkörper in der Pars intercerebralis und deren Axone, welche in den Corpora cardiaca Nerv I projizieren. Der PeaDop2-Rezeptor wurde durch den spezifischen anti-PeaDop2-Antikörper in Neuronen mit Somata im anterioren Randbereich der Medulla nachgewiesen. Diese Neurone innervieren die optischen Loben und projizieren in das ventrolaterale Protocerebrum.
Die intrazellulären Signalwege der heterolog exprimierten Pea5-HT1- und PeaDop2-Rezeptoren wurden in HEK 293-Zellen untersucht. Die Aktivierung des Pea5-HT1-Rezeptors durch Serotonin führt zur Hemmung der cAMP-Synthese. Des Weiteren wurde gezeigt, dass der Rezeptor konstitutive Aktivität besitzt. WAY 100635, ein hoch selektiver 5-HT1A-Rezeptorantagonist, wurde als wirksamer inverser Agonist am Pea5-HT1-Rezeptor identifiziert. Der stabil exprimierte PeaDop2-Rezeptor antwortet auf eine Aktivierung durch Dopamin mit einer Erhöhung der cAMP-Konzentration. Eine C-terminal trunkierte Variante dieses Rezeptors ist eigenständig nicht funktional.
Die Ergebnisse der vorliegenden Arbeit indizieren, dass die untersuchten aminergen Rezeptoren im zentralen Nervensystems der Schabe an der Informationsverarbeitung beteiligt sind und verschiedene physiologische Prozesse in peripheren Organen regulieren. Mit der Klonierung und funktionellen Charakterisierung der ersten Serotoninrezeptoren und eines Dopaminrezeptors ist damit eine wichtige Grundlage für die Untersuchung ihrer Funktionen geschaffen worden. / Biogenic amines are small organic compounds that act as neurotransmitters, neuromodulators and/or neurohormones in vertebrates and in invertebrates. They form an important group of messenger substances and mediate their diverse effects primarily by binding to G protein-coupled receptors. The molecular identification as well as the functional and pharmacological characterization of these receptors is crucial for the comprehension of the intracellular signaling pathways activated by biogenic amines.
This work describes the molecular and functional characterization of the first serotonin receptors and an invertebrate-type dopamine receptor of the American cockroach, Periplaneta americana.
Using a PCR-strategy based on degenerate primers and RACE-PCR three cDNAs encoding for putative biogenic amine receptors were isolated from P. americana brain cDNA (Pea5-ht1, Pea5-ht7, Peadop2). The deduced amino acid sequences display major characteristics common to all G protein-coupled receptors.
Primarily Distribution of receptor mRNA was investigated by RT-PCR. The analysis revealed a high mRNA expression level for all three receptors in the brain and salivary glands. The distribution of the Pea5HT1 and PeaDop2 receptor proteins was analyzed by immunohistochemistry with specific affinity-purified polyclonal antibodies. Both receptor proteins are expressed in brain and salivary glands. Furthermore the cellular distribution of the receptors was investigated by immunocytochemistry on brain sections. The anti-Pea5-HT1 receptor antibody specifically labelled some large somata in the pars intercerebralis. Labeled axons of these neurons pass down the anterior surface of the brain and cross over in the chiasma region of the corpora cardiaca nerve 1. The PeaDop2 receptor was detected in neurons with somata at the anterior edge of the medulla bilaterally innervating the optic lobes and projecting to the ventro-lateral protocerebrum.
In order to clarify the functional and pharmacological properties of the cloned receptors, we studied HEK 293 cell lines stably expressing Pea5-HT1 or PeaDop2. Activation of Pea5-HT1 expressing cells by serotonin reduced adenylyl cyclase activity in a dose-dependent manner. The Pea5-HT1 receptor was expressed as a constitutively active receptor with methiothepin acting as a neutral antagonist and WAY 100635 as an inverse agonist. The activation of the PeaDop2 receptor by dopamine induced an increase in intracellular cAMP level, whereas a C-terminally truncated splice variant of this receptor does not exhibit any functional property by itself.
The results of this work suggest important roles of the investigated receptors in various areas of the cockroach brain. The molecular and pharmacological characterization of the first serotonin receptors and a dopamine receptor of the cockroach now provides the basis for forthcoming studies regarding the significance of these particular receptors for cockroach behavior and physiology
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Charakterisierung der Serotonin-Rezeptoren in den Speicheldrüsen von Calliphora vicina / Characterization of serotonin receptors in the salivary gland of Calliphora vicinaRöser, Claudia January 2012 (has links)
Die Fähigkeit, mit anderen Zellen zu kommunizieren, ist eine grundlegende Eigenschaft aller lebenden Zellen und essentiell für die normale Funktionsweise vielzelliger Organismen. Die Speicheldrüsen der Schmeißfliege Calliphora vicina bilden ein ausgezeichnetes physiologisches Modellsystem um zelluläre Signaltransduktionsprozesse an einem intakten Organ zu untersuchen. Die Speichelsekretion wird dabei hormonell durch das biogene Amin Serotonin (5-Hydroxytryptamin; 5-HT) reguliert. 5-HT aktiviert in den sekretorischen Zellen der Drüsen über die Bindung an mindestens zwei membranständige G-Protein gekoppelte Rezeptoren (GPCR) zwei separate Signalwege, den IP3/Ca2+- und den cAMP-Signalweg.
Zur Identifizierung und Charakterisierung der 5-HT-Rezeptoren in den Speicheldrüsen von Calliphora wurden unter Anwendung verschiedener Klonierungsstrategien zwei cDNAs (Cv5-ht2α und Cv5-ht7) isoliert, die große Ähnlichkeit zu 5-HT2- und 5-HT7-Rezeptoren aus Säugetieren aufweisen. Die Hydropathieprofile der abgeleiteten Aminosäuresequenzen postulieren die für GPCRs charakteristische heptahelikale Architektur. Alle Aminosäuremotive, die für die Ligandenbindung, die Rezeptoraktivierung und die Kopplung an G-Proteine essentiell sind, liegen konserviert vor. Interessanterweise wurde für den Cv5-HT7-Rezeptor eine zusätzliche hydrophobe Domäne im N Terminus vorhergesagt. Die Cv5-HT2α-mRNA liegt in zwei alternativ gespleißten Varianten vor.
Mittels RT-PCR-Experimenten konnte die Expression beider Rezeptoren in Gehirn und Speicheldrüsen adulter Fliegen nachgewiesen werden. Ein Antiserum gegen den Cv5-HT7 Rezeptor markiert in den Speicheldrüsen die basolaterale Plasmamembran.
Die Expression der Rezeptoren in einem heterologen System (HEK 293-Zellen) bestätigte diese als funktionelle 5-HT Rezeptoren. So führte die Stimulation mit Serotonin für den Cv5-HT2α zu einer dosis-abhängigen Erhöhung der intrazellulären Ca2+ Konzentration ([Ca2+]i, EC50 = 24 nM). In Cv5-HT7-exprimierenden Zellen löste 5-HT dosisabhängig (EC50 = 4,1 nM) einen Anstieg der intrazellulären cAMP Konzentration ([cAMP]i) aus. Für beide heterolog exprimierten Rezeptoren wurden pharmakologische Profile erstellt. Liganden, die eine Rezeptorsubtyp-spezifische Wirkung vermuten ließen, wurden daraufhin auf ihre Wirkung auf das transepitheliale Potential (TEP) intakter Speicheldrüsenpräparate getestet. Drei 5-HT-Rezeptoragonisten: AS 19, R-(+)-Lisurid und 5-Carboxamidotryptamin führten zu einer cAMP-abhängigen Positivierung des TEP durch eine selektive Aktivierung der 5 HT7-Rezeptoren. Eine selektive Aktivierung des Ca2+-Signalweges durch den Cv5-HT2 Rezeptor ist mit Hilfe von 5-Methoxytryptamin möglich. Dagegen konnte Clozapin im TEP als selektiver Cv5-HT7-Rezeptorantagonist bestätigt werden.
Die Kombination eines molekularen Ansatzes mit physiologischen Messungen ermöglichte somit die Identifikation selektiver Liganden für 5-HT2- bzw. 5-HT7-Rezeptoren aus Calliphora vicina. Dies ermöglicht zukünftig eine separate Aktivierung der 5-HT-gesteuerten Signalwege und erleichtert dadurch die weitere Erforschung der intrazellulären Signalwege und ihrer Wechselwirkungen. / Cellular communication is a fundamental property of living cells and essential for normal functioning of multicellular organisms. The salivary glands of the blowfly Calliphora vicina are a well established physiological model system to study cellular signaling in an intact organ. Fluid secretion in this gland is hormonally regulated by the biogenic amine serotonin (5-hydroxytryptamine, 5-HT). In the secretory cells, 5-HT causes a parallel activation of the InsP3/Ca2+- and the cAMP-signaling pathways through binding and stimulation of at least two G protein coupled receptors (GPCR).
In order to characterize the respective 5-HT receptors on the secretory cells, we have cloned two cDNAs (Cv5-ht2α, Cv5-ht7) that share high similarity with mammalian 5-HT2 and 5-HT7 receptor classes. Analysis of the deduced amino acid sequences postulates the typical heptahelical architecture of GPCRs for both receptors. Sequence motifs that are essential for ligand binding, receptor activation and coupling to G-proteins are well conserved. Interestingly, a computer-based structural analysis of Cv5-HT7 predicts an additional eighth hydrophobic region in the N-terminus of the receptor. We also found an alternative splice variant of the Cv5-HT2α mRNA.
Using RT-PCR experiments, transcripts of both receptor mRNAs could be detected in brain and salivary gland tissue. An antiserum raised against the Cv5 HT7 receptor stained the basolateral region of the salivary glands.
Heterologous receptor expression in HEK 293 cells leads to a dose-dependent increase in the intracellular Ca2+-concentration ([Ca2+]i) for Cv5-HT2α (EC50 = 24 nM) and cAMP-concentration for Cv5-HT7 (EC50 = 4,1 nM) upon application of 5-HT. A pharmacological profile was established for both receptors. Ligands that appeared to act as specific ligands of either Cv5-HT2α or Cv5-HT7 in this approach, were then tested for their effect on the transepithelial potential (TEP) of intact blowfly salivary gland preparations. Three 5-HT receptor agonists: AS 19, R-(+)-lisuride and 5-carboxamidotryptamine showed a cAMP dependent positivation of the TEP, caused by a selective activation of the Cv5-HT7 receptor. 5-methoxytryptamine exclusively activates the Ca2+ pathway via Cv5-HT2α. Clozapine antagonizes the effects of 5-HT in blowfly salivary glands and was confirmed as a Cv5-HT7 antagonist.
The combination of a molecular approach with physiological measurements enabled us to identify selective ligands for 5-HT2 and 5-HT7 receptors of Calliphora vicina. These results facilitate a selective activation of the intracellular signaling pathways activated by 5-HT and will facilitate future research on different aspects of intracellular signaling and crosstalk mechanisms.
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Analysis of two D1-like dopamine receptors from the honey bee Apis mellifera reveals agonist-independent activityBlenau, Wolfgang, Mustard, Julie A., Hamilton, Ingrid S., Ward, Vernon K., Ebert, Paul R., Mercer, Alison R. January 2003 (has links)
Dopamine is found in many invertebrate organisms, including insects, however, the mechanisms through which this amine operates remain unclear. We have expressed two dopamine receptors cloned from honey bee (AmDOP1 and AmDOP2) in insect cells (Spodoptera frugiperda), and compared their pharmacology directly using production of cAMP as a functional assay. In each assay, AmDOP1 receptors required lower concentrations of dopamine and 6,7-ADTN for maximal activation than AmDOP2 receptors. Conversely, butaclamol and cis(Z)-flupentixol were more potent at blocking the cAMP response mediated through AmDOP2 than AmDOP1 receptors. Expression of AmDOP1, but not AmDOP2, receptors significantly increased levels of cAMP even in the absence of ligand. This constitutive activity was blocked by cis(Z)-flupentixol. This work provides the first evidence of a constitutively activated dopamine receptor in invertebrates and suggests that although AmDOP1 and AmDOP2 share much less homology than their vertebrate counterparts, they display a number of functional parallels with the mammalian D1-like dopamine receptors.
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Molecular and functional characterization of an octopamine receptor from honeybee (Apis mellifera) brainBlenau, Wolfgang, Grohmann, Lore, Erber, Joachim, Ebert, Paul R., Strünker, Timo, Baumann, Arnd January 2003 (has links)
Biogenic amines and their receptors regulate and modulate many physiological and behavioural processes in animals. In vertebrates, octopamine is only found in trace amounts and its function as a true neurotransmitter is unclear. In protostomes, however, octopamine can act as neurotransmitter, neuromodulator and neurohormone. In the honeybee, octopamine acts as a neuromodulator and is involved in learning and memory formation. The identification of potential octopamine receptors is decisive for an understanding of the cellular pathways involved in mediating the effects of octopamine. Here we report the cloning and functional characterization of the first octopamine receptor from the honeybee, Apis mellifera . The gene was isolated from a brain-specific cDNA library. It encodes a protein most closely related to octopamine receptors from Drosophila melanogaster and Lymnea stagnalis . Signalling properties of the cloned receptor were studied in transiently transfected human embryonic kidney (HEK) 293 cells. Nanomolar to micromolar concentrations of octopamine induced oscillatory increases in the intracellular Ca2+ concentration. In contrast to octopamine, tyramine only elicited Ca2+ responses at micromolar concentrations. The gene is abundantly expressed in many somata of the honeybee brain, suggesting that this octopamine receptor is involved in the processing of sensory inputs, antennal motor outputs and higher-order brain functions.
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