935 resultados para Centrin, visuelles G-Protein Transducin, Calcium, Phosphorylierung, CK2


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Centrine sind kleine Ca2+-bindende Proteine aus der Familie der EF-Hand Proteine. Erstmals wurden Centrine als Hauptbestandteil der kontraktilen Flagellenwurzeln von Grünalgen beschrieben. Mittlerweile konnten Centrine in nahezu allen eukaryotischen Organismen nachgewiesen werden. In Säugetieren wurden bis zu vier Isoformen identifiziert, die an Centrosomen oder davon abgeleiteten Strukturen, wie Spindelpolkörpern und Basalkörper, aber auch in Übergangszonen von Cilien exprimiert werden. In der vorliegenden Arbeit konnte gezeigt werden, dass die Centrine im zellulären Kontext der Photorezeptorzellen nicht nur durch die Bindung von Ca2+ reguliert werden, sondern auch durch reversible Phosphorylierungen. Die Phosphorylierung der Centrin-Isoformen findet in der Retina von Vertebraten lichtabhängig während der Dunkeladaption statt. Die Protein Kinase CK2 (CK2) ist für die beschriebenen lichtabhängigen Phosphorylierungen hauptverantwortlich. Obwohl alle Centrin-Isoformen mehrere mögliche Zielsequenzen für die CK2 besitzen, kommt es nur zur Phosphorylierung einer einzigen Aminosäure in Cen1p, Cen2p und Cen4p. Im Gegensatz dazu stellt die Isoform Cen3p kein Substrat für die CK2 dar. Zudem wurden hier erstmals Phosphatasen identifiziert, die in der Lage sind Centrine zu dephosphorylieren. Die Dephosphorylierung durch die PP2Cund PP2C ist sehr spezifisch, da keine andere Phosphatase der Retina die CK2-vermittelte Phosphorylierung der Centrine rückgängig machen kann. Hoch auflösende licht- und elektronenmikroskopische Analysen zeigten erstmals, dass die Centrine sowohl mit der CK2 als auch mit der PP2C im Verbindungscilium der Photorezeptorzellen colokalisiert sind. Cen1p und CK2 sind in der Lage, direkt an Mikrotubuli zu binden, was die notwendige räumliche Nähe zwischen Enzymen und Substrat herstellt. Bisherige Arbeiten zeigten, dass alle Centrine Ca2+-abhängig mit dem visuellen G-Protein Transducin interagieren. Diese Wechselwirkung dürfte an der Regulation der lichtabhängigen Translokation des visuellen G-Proteins Transducin zwischen dem Außen- und dem Innensegment der Photorezeptorzelle beteiligt sein. In der vorliegenden Arbeit zeigten Interaktionsstudien, dass die Bindungsaffinitäten der Centrine für Transducin durch die CK2-vermittelte Phosphorylierung drastisch verringert wurden. Dieser beobachtete Effekt beruht auf deutlich verringerten Ca2+-Affinitäten der Centrin-Isoformen nach der CK2-vermittelten Phosphorylierung. In der vorliegenden Arbeit wurde ein neuartiger Regulationsmechanismus der Centrine in den Photorezeptorzellen der Vertebraten beschrieben. Centrine werden nicht nur durch Ca2+-Bindung zur Bildung von Protein Komplexen stimuliert, sondern durch die Phosphorylierung zum Auflösen dieser Komplexe angeregt. Damit reguliert die CK2-vermittelte, lichtabhängige Phosphorylierung der Centrine möglicherweise ebenfalls die adaptive Translokation des visuellen G-Proteins Transducin zwischen dem Außen- und Innensegment der Photorezeptorzellen.

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Transitory binding between photoactivated rhodopsin (Rho* or Meta II) and the G protein transducin (Gt-GDP) is the first step in the visual signaling cascade. Light causes photoisomerization of the 11-cis-retinylidene chromophore in rhodopsin (Rho) to all-trans-retinylidene, which induces conformational changes that allow Gt-GDP to dock onto the Rho* surface. GDP then dissociates from Gt, leaving a transient nucleotide-empty Rho*-Gt(e) complex before GTP becomes bound, and Gt-GTP then dissociates from Rho*. Further biochemical advances are required before structural studies of the various Rho*-Gt complexes can be initiated. Here, we describe the isolation of n-dodecyl-beta-maltoside solubilized, stable, functionally active, Rho*-Gt(e), Rho(e)*-Gt(e), and 9-cis-retinal/11-cis-retinal regenerated Rho-Gt(e) complexes by sucrose gradient centrifugation. In these complexes, Rho* spectrally remained in its Meta II state, and Gt(e) retained its ability to interact with GTPgammaS. Removal of all-trans-retinylidene from Rho*-Gt(e) had no effect on the stability of the Rho(e)*-Gt(e) complex. Moreover, opsin in the Rho(e)*-Gt(e) complex with an empty nucleotide-binding pocket in Gt and an empty retinoid-binding pocket in Rho was regenerated up to 75% without complex dissociation. These results indicate that once Rho* couples with Gt, the chromophore plays a minor role in stabilizing this complex. Moreover, in complexes regenerated with 9-cis-retinal/11-cis-retinal, Rho retains a conformation similar to Rho* that is stabilized by Gt(e) apo-protein.

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Proteins of the regulators of G protein signaling (RGS) family modulate the duration of intracellular signaling by stimulating the GTPase activity of G protein α subunits. It has been established that the ninth member of the RGS family (RGS9) participates in accelerating the GTPase activity of the photoreceptor-specific G protein, transducin. This process is essential for timely inactivation of the phototransduction cascade during the recovery from a photoresponse. Here we report that functionally active RGS9 from vertebrate photoreceptors exists as a tight complex with the long splice variant of the G protein β subunit (Gβ5L). RGS9 and Gβ5L also form a complex when coexpressed in cell culture. Our data are consistent with the recent observation that several RGS proteins, including RGS9, contain G protein γ-subunit like domain that can mediate their association with Gβ5 (Snow, B. E., Krumins, A. M., Brothers, G. M., Lee, S. F., Wall, M. A., Chung, S., Mangion, J., Arya, S., Gilman, A. G. & Siderovski, D. P. (1998) Proc. Natl. Acad. Sci. USA 95, 13307–13312). We report an example of such a complex whose cellular localization and function are clearly defined.

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The guanine nucleotide binding protein (G protein) cascade underlying phototransduction is one of the best understood of all signaling pathways. The diffusional interactions of the proteins underlying the cascade have been analyzed, both at a macroscopic level and also in terms of the stochastic nature of the molecular contacts. In response to a single activated rhodopsin (R*) formed as a result of a single photon hit, it can be shown that molecules of the G-protein transducin will be activated approximately linearly with time. This, in turn, will cause the number of activated molecules of the effector protein (the phosphodiesterase) also to increase linearly with time. These kinetics of protein activation provide an accurate description of the time course of the rising phase of the photoreceptor's electrical response over a wide range of flash intensities. Recent estimates indicate that at room temperature each R* triggers activation of the phosphodiesterase at a rate of 1000-2000 subunits.s-1. Now that a quantitative description of the activation steps in transduction has been obtained, perhaps the greatest challenge for the future is to provide a comprehensive description of the shutoff reactions, so that a complete account of the photoreceptor's response to light can be achieved.

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Centrine sind Mitglieder einer hoch konservierten Überfamilie von Ca2+-bindenden Proteinen mit EF-Hand Motiven. Bislang sind vier Centrin-Isoformen bei Säugern beschrieben worden, die in diversen Zellen in der Regel mit Centriolen von Centrosomen oder Centrosomen-verwandten Strukturen assoziiert sind. Im Rahmen der vorliegenden Dissertation wurden die vier Centrin-Isoformen bezüglich der Expression in verschiedenen Geweben untersucht. Dabei lag der Hauptfokus auf Untersuchungen der Centrine in den Photorezeptorzellen der Retina. Analysen auf subzellulärer Ebene brachten Klarheit über die differenzielle Lokalisation der verschiedenen Isoformen in der Retina. Mit Hilfe von verschiedenen Methoden konnten Wechselwirkungspartner in der Retina identifiziert werden, die eine Rolle in der visuellen Signaltransduktionskaskade spielen. Dabei könnten Centrine einem Regelmechanismus angehören, der wichtige Translokationsprozesse dieser Proteine regelt. In den Photorezeptorzellen der Säugetierretina werden die vier Isoformen exprimiert, die in den Strukturen des Cilienapparates differenziell lokalisiert sind. Dabei beschränkt sich ihre Lokalisation entweder auf den Basalkörper (Centrin 4), auf das Verbindungscilium (Centrin 1) oder sie sind in beiden Strukturen zu finden (Centrin 2 und 3). In den nicht- Photorezeptorzellen der Retina sind die Isoformen Centrin 2 und 3 zudem an den Centriolen der Centrosomen lokalisiert. In der vorliegenden Arbeit wurde zum ersten Mal gezeigt, dass alle Centrin-Isoformen in ein und derselben Zelle, der Photorezeptorzelle, koexprimiert werden und dabei subzellulär kolokalisiert sind. Im Weiteren konnte die ubiquitäre Expression von Centrin 2 und 3 in allen untersuchten Geweben an Centrosomen bestätigt werden. Centrin 1 und 4 hingegen werden nur in Geweben mit Cilien-tragenden Zellen exprimiert. Die Funktion der Centrine wird nicht nur durch Bindung von Ca2+, sondern auch durch Phosphorylierungen reguliert. Alle Sequenzen der Centrine weisen diverse mögliche Phosphorylierungsstellen für unterschiedliche Proteinkinasen auf. Die Ergebnisse aller durchgeführten in vitro und ex vivo Phosphorylierungs „Assays“ zeigen eine licht-abhängige Phosphorylierung der Centrin-Isoformen in der Retina. Dabei war in der dunkel-adaptierten Retina die Phosphorylierung vor allem von Centrin 1 und 2 erhöht. Weiterführende Experimente mit Kinase-Inhibitoren wiesen darauf hin, dass vor allem die Proteinkinase CKII eine bedeutende Rolle bei der Centrin-Phosphorylierung in der Retina einnimmt. Centrine sind die ersten Cytoskelettkomponenten, deren Phosphorylierungsgrad lichtabhängig moduliert wird. Diese Ergebnisse weisen auf einen Signalweg, der zwischen der visuellen Signaltransduktionskaskade und der Regulation der Centrin-Aktivität vermittelt, hin. Bei der Suche nach Centrin-Bindungspartnern gelang mit Hilfe von Centrin 1 Blot „Overlay Assays“ der Durchbruch. Der neuartige Ansatz zeigte, dass ausschließlich Ca2+-aktiviertes Centrin 1 mit Proteinen aus der Retina interagierte. Nach der Identifikation eines 37 kDa-Proteins als die β-Untereinheit des visuellen G-Proteins Transducin wurden die Untersuchungen auf diesen Interaktionspartner fokussiert. Die Ergebnisse der hier durchgeführten biochemischen und biophysikalischen Protein-Protein Interaktionsexperimente zeigen insgesamt folgendes: ⇒ Alle vier Centrine interagieren mit Transducin, wobei Centrin 3 die geringste Affinität zu Transducin hat. ⇒ Die Assemblierung der Centrin•G-Protein-Komplexe ist strikt Ca2+-abhängig. ⇒ Die Centrine binden sowohl an das isolierte Gtβγ-Heterodimer als auch an den heterotrimeren Gt-holo-Proteinkomplex, nicht aber an Gtα. Die quantitativen immunoelektronenmikroskopischen Analysen zeigen im Weiteren, dass sich die Komplexe aus Transducin und Centrin 1 bis 3 wahrscheinlich in einer Subdomäne des Verbindungsciliums der Photorezeptorzellen ausbilden. Dabei dürfte die Ausbildung der Komplexe an der Regulation der lichtinduzierten Translokation von Transducin zwischen Innen- und Außensegment der Photorezeptorzellen beteiligt sein. Dieser Translokationsmechanismus wird als ein wichtiger Bestandteil der Langzeitadaption der Signaltransduktionskaskade der Säugerretina diskutiert. Der neuartige Regelmechanismus der molekularen Translokationen, in dem Centrine involviert sind, ist außergewöhnlich und dürfte über die speziellen Photorezeptorzellen hinaus von weit reichender Bedeutung sein.

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Butyrate is a short-chain fatty acid (SCFA) closely related to the ketone body ß-hydroxybutyrate (BHB), which is considered to be the major energy substrate during prolonged exercise or starvation. During fasting, serum growth hormone (GH) rises concomitantly with the accumulation of BHB and butyrate. Interactions between GH, ketone bodies and SCFA during the metabolic adaptation to fasting have been poorly investigated to date. In this study, we examined the effect of butyrate, an endogenous agonist for the two G-protein-coupled receptors (GPCR), GPR41 and 43, on non-stimulated and GH-releasing hormone (GHRH)-stimulated hGH secretion. Furthermore, we investigated the potential role of GPR41 and 43 on the generation of butyrate-induced intracellular Ca2+ signal and its ultimate impact on hGH secretion. To study this, wt-hGH was transfected into a rat pituitary tumour cell line stably expressing the human GHRH receptor. Treatment with butyrate promoted hGH synthesis and improved basal and GHRH-induced hGH-secretion. By acting through GPR41 and 43, butyrate enhanced intracellular free cytosolic Ca2+. Gene-specific silencing of these receptors led to a partial inhibition of the butyrate-induced intracellular Ca2+ rise resulting in a decrease of hGH secretion. This study suggests that butyrate is a metabolic intermediary, which contributes to the secretion and, therefore, to the metabolic actions of GH during fasting.

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The modulation of a family of cloned neuronal calcium channels by stimulation of a coexpressed mu opioid receptor was studied by transient expression in Xenopus oocytes. Activation of the morphine receptor with the synthetic enkephalin [D-Ala2,N-Me-Phe4,Gly-ol5]enkephalin (DAMGO) resulted in a rapid inhibition of alpha1A (by approximately 20%) and alpha1B (by approximately 55%) currents while alpha1C and alpha1E currents were not significantly affected. The opioid-induced effects on alpha1A and alpha1B currents were blocked by pertussis toxin and the GTP analogue guanosine 5'-[beta-thio]diphosphate. Similar to modulation of native calcium currents, DAMGO induced a slowing of the activation kinetics and exhibited a voltage-dependent inhibition that was partially relieved by application of strong depolarizing pulses. alpha1A currents were still inhibited in the absence of coexpressed Ca channel alpha2 and beta subunits, suggesting that the response is mediated by the alpha1 subunit. Furthermore, the sensitivity of alpha1A currents to DAMGO-induced inhibition was increased approximately 3-fold in the absence of a beta subunit. Overall, the results show that the alpha1A (P/Q type) and the alpha1B (N type) calcium channels are selectively modulated by a GTP-binding protein (G protein). The results raise the possibility of competitive interactions between beta subunit and G protein binding to the alpha1 subunit, shifting gating in opposite directions. At presynaptic terminals, the G protein-dependent inhibition may result in decreased synaptic transmission and play a key role in the analgesic effect of opioids and morphine.

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The subiculum, which is the primary target of CA1 pyramidal neurons and sending efferent fibres to many brain regions, serves as a hippocampal interface in the neural information processes between hippocampal formation and neocortex. Long-term depression (LTD) is extensively studied in the hippocampus, but not at the CA1-subicular synaptic transmission. Using whole-cell EPSC recordings in the brain slices of young rats, we demonstrated that the pairing protocols of low frequency stimulation (LFS) at 3 Hz and postsynaptic depolarization of -50 mVelicited a reliable LTD in the subiculum. The LTD did not cause the changes of the paired-pulse ratio of EPSC. Furthermore, it did not depend on either NMDA receptors or voltage-gated calcium channels (VGCCs). Bath application of the G-protein coupled muscarinic acetylcholine receptors (mAChRs) antagonists, atropine or scopolamine, blocked the LTD, suggesting that mAChRs are involved in the LTD. It was also completely blocked by either the Ca2+ chelator BAPTA or the G-protein inhibitor GDP-beta-S in the intracellular solution. This type of LTD in the subiculum may play a particular role in the neural information processing between the hippocampus and neocortex. (c) 2005 Elsevier Ireland Ltd and the Japan Neuroscience Society. All rights reserved.

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Guanine nucleotide-binding regulatory protein (G protein)-coupled receptor kinases (GRKs) constitute a family of serine/threonine kinases that play a major role in the agonist-induced phosphorylation and desensitization of G-protein-coupled receptors. Herein we describe the generation of monoclonal antibodies (mAbs) that specifically react with GRK2 and GRK3 or with GRK4, GRK5, and GRK6. They are used in several different receptor systems to identify the kinases that are responsible for receptor phosphorylation and desensitization. The ability of these reagents to inhibit GRK- mediated receptor phosphorylation is demonstrated in permeabilized 293 cells that overexpress individual GRKs and the type 1A angiotensin II receptor. We also use this approach to identify the endogenous GRKs that are responsible for the agonist-induced phosphorylation of epitope-tagged beta2- adrenergic receptors (beta2ARs) overexpressed in rabbit ventricular myocytes that are infected with a recombinant adenovirus. In these myocytes, anti-GRK2/3 mAbs inhibit isoproterenol-induced receptor phosphorylation by 77%, while GRK4-6-specific mAbs have no effect. Consistent with the operation of a betaAR kinase-mediated mechanism, GRK2 is identified by immunoblot analysis as well as in a functional assay as the predominant GRK expressed in these cells. Microinjection of GRK2/3-specific mAbs into chicken sensory neurons, which have been shown to express a GRK3-like protein, abolishes desensitization of the alpha2AR-mediated calcium current inhibition. The intracellular inhibition of endogenous GRKs by mAbs represents a novel approach to the study of receptor specificities among GRKs that should be widely applicable to many G-protein-coupled receptors.

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The mechanism of mitogen-activated protein (MAP) kinase activation by pertussis toxin-sensitive Gi-coupled receptors is known to involve the beta gamma subunits of heterotrimeric G proteins (G beta gamma), p21ras activation, and an as-yet-unidentified tyrosine kinase. To investigate the mechanism of G beta gamma-stimulated p21ras activation, G beta gamma-mediated tyrosine phosphorylation was examined by overexpressing G beta gamma or alpha 2-C10 adrenergic receptors (ARs) that couple to Gi in COS-7 cells. Immunoprecipitation of phosphotyrosine-containing proteins revealed a 2- to 3-fold increase in the phosphorylation of two proteins of approximately 50 kDa (designated as p52) in G beta gamma-transfected cells or in alpha 2-C10 AR-transfected cells stimulated with the agonist UK-14304. The latter response was pertussis toxin sensitive. These proteins (p52) were also specifically immunoprecipitated with anti-Shc antibodies and comigrated with two Shc proteins, 46 and 52 kDa. The G beta gamma- or alpha 2-C10 AR-stimulated p52 (Shc) phosphorylation was inhibited by coexpression of the carboxyl terminus of beta-adrenergic receptor kinase (a G beta gamma-binding pleckstrin homology domain peptide) or by the tyrosine kinase inhibitors genistein and herbimycin A, but not by a dominant negative mutant of p21ras. Worthmannin, a specific inhibitor of phosphatidylinositol 3-kinase (PI3K) inhibited phosphorylation of p52 (Shc), implying involvement of PI3K. These results suggest that G beta gamma-stimulated Shc phosphorylation represents an early step in the pathway leading to p21ras activation, similar to the mechanism utilized by growth factor tyrosine kinase receptors.

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The activation of presynaptic G protein-coupled receptors (GPCRs) is widely reported to inhibit transmitter release; however, the lack of accessibility of many presynaptic terminals has limited direct analysis of signalling mediators. We studied GPCR-mediated inhibition of fast cholinergic transmission between superior cervical ganglion neurones (SCGNs) in culture. The adrenoceptor agonist noradrenaline (NA) caused a dose-related reduction in evoked excitatory postsynaptic potentials (EPSPs). NA-induced EPSP decrease was accompanied by effects on the presynaptic action potential (AP), reducing AP duration and amplitude of the after-hyperpolarization (AHP), without affecting the pre- and postsynaptic membrane potential. All effects of NA were blocked by yohimbine and synaptic transmission was reduced by clonidine, consistent with an action at presynaptic alpha 2-adrenoceptors. NA-induced inhibition of transmission was sensitive to pre-incubation of SCGNs with pertussis toxin (PTX), implicating the involvement of G alpha(i)/(o)beta y subunits. Expression of G alpha transducin, an agent which sequesters G protein beta gamma (G beta y) subunits, in the presynaptic neurone caused a time-dependent attenuation of NA-induced inhibition. Injection of purified G beta gamma subunits into the presynaptic neurone inhibited transmission, and also reduced the AHP amplitude. Furthermore, NA-induced inhibition was occluded by pre-injection of G beta gamma subunits. The Ca2+ channel blocker Cd2+ mimicked NA effects on transmitter release. Cd2+, NA and G beta gamma subunits also inhibited somatic Ca2+ current. In contrast to effects on AP-evoked transmitter release, NA had no clear action on AP-independent EPSPs induced by hypertonic solutions. These results demonstrate that G beta gamma subunits functionally mediate inhibition of transmitter release by alpha 2-adrenoceptors and represent important regulators of synaptic transmission at mammalian presynaptic terminals.

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Abstract: Modulation of presynaptic voltage-dependent Ca+ channels is a major means of controlling neurotransmitter release. The CaV 2.2 Ca2+ channel subunit contains several inhibitory interaction sites for Gβγ subunits, including the amino terminal (NT) and I–II loop. The NT and I–II loop have also been proposed to undergo a G protein-gated inhibitory interaction, whilst the NT itself has also been proposed to suppress CaV 2 channel activity. Here, we investigate the effects of an amino terminal (CaV 2.2[45–55]) ‘NT peptide’ and a I–II loop alpha interaction domain (CaV 2.2[377–393]) ‘AID peptide’ on synaptic transmission, Ca2+ channel activity and G protein modulation in superior cervical ganglion neurones (SCGNs). Presynaptic injection of NT or AID peptide into SCGN synapses inhibited synaptic transmission and also attenuated noradrenaline-induced G protein modulation. In isolated SCGNs, NT and AID peptides reduced whole-cell Ca2+ current amplitude, modified voltage dependence of Ca2+ channel activation and attenuated noradrenaline-induced G protein modulation. Co-application of NT and AID peptide negated inhibitory actions. Together, these data favour direct peptide interaction with presynaptic Ca2+ channels, with effects on current amplitude and gating representing likely mechanisms responsible for inhibition of synaptic transmission. Mutations to residues reported as determinants of Ca2+ channel function within the NT peptide negated inhibitory effects on synaptic transmission, Ca2+ current amplitude and gating and G protein modulation. A mutation within the proposed QXXER motif for G protein modulation did not abolish inhibitory effects of the AID peptide. This study suggests that the CaV 2.2 amino terminal and I–II loop contribute molecular determinants for Ca2+ channel function; the data favour a direct interaction of peptides with Ca2+ channels to inhibit synaptic transmission and attenuate G protein modulation. Non-technical summary: Nerve cells (neurones) in the body communicate with each other by releasing chemicals (neurotransmitters) which act on proteins called receptors. An important group of receptors (called G protein coupled receptors, GPCRs) regulate the release of neurotransmitters by an action on the ion channels that let calcium into the cell. Here, we show for the first time that small peptides based on specific regions of calcium ion channels involved in GPCR signalling can themselves inhibit nerve cell communication. We show that these peptides act directly on calcium channels to make them more difficult to open and thus reduce calcium influx into native neurones. These peptides also reduce GPCR-mediated signalling. This work is important in increasing our knowledge about modulation of the calcium ion channel protein; such knowledge may help in the development of drugs to prevent signalling in pathways such as those involved in pain perception.

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The 18 kDa translocator protein (TSPO) also known as the peripheral benzodiazepine receptor (PBR), mediates the transportation of cholesterol and anions from the outer to the inner mitochondrial membrane in different cells types. Although recent evidences indicate a potential role for TSPO in the development of inflammatory processes, the mechanisms involved have not been elucidated. The present study investigated the ability of the specific TSPO ligands, the isoquinoline carboxamide PK11195 and benzodiazepine Ro5-4864, on neutrophil recruitment promoted by the N-formylmethionyl-leucyl-phenylalanine peptide (fMLP), an agonist of G-protein coupled receptor (GPCR). Pre-treatment with Ro5-4864 abrograted fMLP-induced leukocyte-endothelial interactions in mesenteric postcapillary venules in vivo. Moreover, in vitro Ro5-4864 treatment prevented fMLP-induced: (i) L-selectin shedding and overexpression of PECAM-1 on the neutrophil cell surface; (ii) neutrophil chemotaxis and (iii) enhancement of intracellular calcium cations (iCa(+2)). Intriguingly, the two latter effects were augmented by cell treatment with PK11195. An allosteric agonist/antagonist relation may be suggested, as the effects of Ro5-4864 on fMLP-stimulated neutrophils were reverted by simultaneous treatment with PK11195. Taken together, these data highlight TSPO as a modulator of pathways of neutrophil adhesion and locomotion induced by GPCR, connecting TSPO actions and the onset of an innate inflammatory response. (C) 2011 Elsevier Inc. All rights reserved.

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Physicochemical experimental techniques combined with the specificity of a biological recognition system have resulted in a variety of new analytical devices known as biosensors. Biosensors are under intensive development worldwide because they have many potential applications, e.g. in the fields of clinical diagnostics, food analysis, and environmental monitoring. Much effort is spent on the development of highly sensitive sensor platforms to study interactions on the molecular scale. In the first part, this thesis focuses on exploiting the biosensing application of nanoporous gold (NPG) membranes. NPG with randomly distributed nanopores (pore sizes less than 50 nm) will be discussed here. The NPG membrane shows unique plasmonic features, i.e. it supports both propagating and localized surface plasmon resonance modes (p SPR and l-SPR, respectively), both offering sensitive probing of the local refractive index variation on/in NPG. Surface refractive index sensors have an inherent advantage over fluorescence optical biosensors that require a chromophoric group or other luminescence label to transduce the binding event. In the second part, gold/silica composite inverse opals with macroporous structures were investigated with bio- or chemical sensing applications in mind. These samples combined the advantages of a larger available gold surface area with a regular and highly ordered grating structure. The signal of the plasmon was less noisy in these ordered substrate structures compared to the random pore structures of the NPG samples. In the third part of the thesis, surface plasmon resonance (SPR) spectroscopy was applied to probe the protein-protein interaction of the calcium binding protein centrin with the heterotrimeric G-protein transducin on a newly designed sensor platform. SPR spectroscopy was intended to elucidate how the binding of centrin to transducin is regulated towards understanding centrin functions in photoreceptor cells.