994 resultados para Neuronal Development


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Les maladies cardiovasculaires (MCV) sont les principales causes de mortalité et de morbidité à travers le monde. En Amérique du Nord, on estime à 90 millions le nombre d’individus ayant une ou plusieurs MCV, à près de 1 million le nombre de décès reliés par année et à 525 milliards de dollars les coûts directs et indirects en 2010. En collaboration avec l’équipe du Dre. Boileau, notre laboratoire a récemment identifié, le troisième locus impliqué dans l’hypercholestérolémie familiale. Une étude publiée dans le New Engl J Med a révélé que l’absence de la convertase PCSK9 réduit de 88% le risque de MCV, corrélé à une forte réduction du taux de cholestérol plasmatique (LDL-C). Il fut démontré que PCSK9 lie directement le récepteur aux lipoprotéines de faible densité (LDLR) et, par un mécanisme méconnu, favorise sa dégradation dans les endosomes/lysosomes provoquant ainsi une accumulation des particules LDL-C dans le plasma. Dans cet ouvrage, nous nous sommes intéressés à trois aspects bien distincts : [1] Quels sont les cibles de PCSK9 ? [2] Quelle voie du trafic cellulaire est impliquée dans la dégradation du LDLR par PCSK9 ? [3] Comment peut-on inhiber la fonction de PCSK9 ? [1] Nous avons démontré que PCSK9 induit la dégradation du LDLR de même que les récepteurs ApoER2 et VLDLR. Ces deux membres de la famille du LDLR (fortes homologies) sont impliqués notamment dans le métabolisme des lipides et de la mise en place de structures neuronales. De plus, nous avons remarqué que la présence de ces récepteurs favorise l’attachement cellulaire de PCSK9 et ce, indépendamment de la présence du LDLR. Cette étude a ouvert pour la première fois le spectre d’action de PCSK9 sur d’autres protéines membranaires. [2] PCSK9 étant une protéine de la voie sécrétoire, nous avons ensuite évalué l’apport des différentes voies du trafic cellulaire, soit extra- ou intracellulaire, impliquées dans la dégradation du LDLR. À l’aide de milieux conditionnées dérivés d’hépatocytes primaires, nous avons d’abord démontré que le niveau extracellulaire de PCSK9 endogène n’a pas une grande influence sur la dégradation intracellulaire du LDLR, lorsqu’incubés sur des hépatocytes provenant de souris déficientes en PCSK9 (Pcsk9-/-). Par analyses de tri cellulaire (FACS), nous avons ensuite remarqué que la surexpression de PCSK9 diminue localement les niveaux de LDLR avec peu d’effet sur les cellules voisines. Lorsque nous avons bloqué l’endocytose du LDLR dans les cellules HepG2 (lignée de cellules hépatiques pour l’étude endogène de PCSK9), nous n’avons dénoté aucun changement des niveaux protéiques du récepteur. Par contre, nous avons pu démontrer que PCSK9 favorise la dégradation du LDLR par l’intermédiaire d’une voie intracellulaire. En effet l’interruption du trafic vésiculaire entre le réseau trans-Golgien (RTG) et les endosomes (interférence à l’ARN contre les chaînes légères de clathrine ; siCLCs) prévient la dégradation du LDLR de manière PCSK9-dépendante. [3] Par immunobuvardage d’affinité, nous avons identifié que la protéine Annexine A2 (AnxA2) interagit spécifiquement avec le domaine C-terminal de PCSK9, important pour son action sur le LDLR. Plus spécifiquement, nous avons cartographié le domaine R1 (acides aminés 34 à 108) comme étant responsable de l’interaction PCSK9AnxA2 qui, jusqu’à présent, n’avait aucune fonction propre. Finalement, nous avons démontré que l’ajout d’AnxA2 prévient la dégradation du LDLR induite par PCSK9. En somme, nos travaux ont pu identifier que d’autres membres de la famille du LDLR, soit ApoER2 et VLDLR, sont sensibles à la présence de PCSK9. De plus, nous avons mis en évidence que l’intégrité du trafic intracellulaire est critique à l’action de PCSK9 sur le LDLR et ce, de manière endogène. Finalement, nous avons identifié l’Annexine A2 comme unique inhibiteur naturel pouvant interférer avec la dégradation du LDLR par PCSK9. Il est indéniable que PCSK9 soit une cible de premier choix pour contrer l’hypercholestérolémie afin de prévenir le développement de MCV. Cet ouvrage apporte donc des apports considérables dans notre compréhension des voies cellulaires impliquées, des cibles affectées et ouvre directement la porte à une approche thérapeutique à fort potentiel.

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In the rodent forebrain GABAergic neurons are generated from progenitor cells that express the transcription factors Dlx1 and Dlx2. The Rap-1 guanine nucleotide exchange factor, MR-GEF, is turned on by many of these developing GABAergic neurons. Expression of both Dlx1/2 and MR-GEF is retained in both adult mouse and human forebrain where, in human, decreased Dlx1 expression has been associated with psychosis. Using in situ hybridization studies we show that MR-GEF expression is significantly down-regulated in the forebrain of Dlx1/2 double mutant mice suggesting that MR-GEF and Dlx1/2 form part of a common signalling pathway during GABAergic neuronal development. We therefore compared MR-GEF expression by in situ hybridization in individuals with major psychiatric disorders (schizophrenia, bipolar disorder, major depression) and control individuals. We observed a significant positive correlation between layers II and IV of the dorso-lateral prefrontal cortex (DLPFC) in the percentage of MR-GEF expressing neurons in individuals with bipolar disorder, but not in individuals with schizophrenia, major depressive disorder or in controls. Since MR-GEF encodes a Rap1 GEF able to activate G-protein signalling, we suggest that changes in MR-GEF expression could potentially influence neurotransmission.

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Thyroid hormones influence both neuronal development and anxiety via the thyroid hormone receptors (TRs). The TRs are encoded by two different genes, TRalpha and TRbeta. The loss of TRalpha1 is implicated in increased anxiety in males, possibly via a hippocampal increase in GABAergic activity. We compared both social behaviors and two underlying and related non-social behaviors, state anxiety and responses to acoustic and tactile startle in the gonadally intact TRalpha1 knockout (alpha1KO) and TRbeta (betaKO) male mice to their wild-type counterparts. For the first time, we show an opposing effect of the two TR isoforms, TRalpha1 and TRbeta, in the regulation of state anxiety, with alpha1 knockout animals (alpha1KO) showing higher levels of anxiety and betaKO males showing less anxiety compared to respective wild-type mice. At odds with the increased anxiety in non-social environments, alpha1KO males also show lower levels of responsiveness to acoustic and tactile startle stimuli. Consistent with the data that T4 is inhibitory to lordosis in female mice, we show subtly increased sex behavior in alpha1KO male mice. These behaviors support the idea that TRalpha1 could be inhibitory to ERalpha driven transcription that ultimately impacts ERalpha driven behaviors such as lordosis. The behavioral phenotypes point to novel roles for the TRs, particularly in non-social behaviors such as state anxiety and startle.

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Chromosome microdeletions or duplications are detected in 10-20% of patients with mental impairment and normal karyotypes. A few cases have been reported of mental impairment with microdeletions comprising tumor suppressor genes. By array-CGH we detected 4 mentally impaired individuals carrying de novo microdeletions sharing an overlapping segment of similar to 180 kb in 17p13.1. This segment encompasses 18 genes, including 3 involved in cancer, namely KCTD11/REN, DLG4/PSD95, and GPS2. Furthermore, in 2 of the patients, the deletions also included TP53, the most frequently inactivated gene in human cancers. The 3 tumor suppressor genes KCTD11, DLG4, and GPS2, in addition to the GABARAP gene, have a known or suspected function in neuronal development and are candidates for causing mental impairment in our patients. Among our 4 patients with deletions in 17p13.1, 3 were part of a Brazilian cohort of 300 mentally retarded individuals, suggesting that this segment may be particularly prone to rearrangements and appears to be an important cause (similar to 1%) of mental retardation. Further, the constitutive deletion of tumor suppressor genes in these patients, particularly TP53, probably confers a significantly increased lifetime risk for cancer and warrants careful oncological surveillance of these patients. Constitutional chromosome deletions containing tumor suppressor genes in patients with mental impairment or congenital abnormalities may represent an important mechanism linking abnormal phenotypes with increased risks of cancer. Copyright (C) 2009 S. Karger AG, Basel

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Coordinated proliferation and differentiation of progenitor cells is the base for production of appropriate numbers of neurons and glia during neuronal development in order to establish normal brain functions. We have used murine embryonal carcinoma P19 cells as an in vitro model for early differentiation to study participation of nicotinic (nAChR) and muscarinic acetylcholine (mAChR) receptors in the proliferation of neural progenitor cells and their differentiation to neurons. We have previously shown that functional nicotinic acetylcholine receptors (nAChRs) already expressed in embryonic cells mediate elevations in cytosolic free calcium concentration ([Ca2+](i)) via calcium influx through nAChR channels whereas intracellular stores contribute to nAChR- and mAChR-mediated calcium fluxes in differentiated cells [Resende et al., Cell Calcium 43 (2008) 107-121]. In the present study, we have demonstrated that nicotine provoked inhibition of proliferation in embryonic cells as determined by BrdU labeling. However, in neural progenitor cells nicotine stimulated proliferation which was reversed in the presence of inhibitors of calcium mobilization from intracellular stores, indicating that liberation of intracellular calcium contributed to this proliferation induction. Muscarine induced proliferation stimulation in progenitor cells by activation of G alpha(q/11)-coupled M-1, M-3 and M-5 receptors and intracellular calcium stores, whereas G alpha(i/o)-protein coupled M-2 receptor activity mediated neuronal differentiation. (C) 2008 Elsevier Inc. All rights reserved.

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Brain insulin has had widespread metabolic, neurotrophic, and neuromodulatory functions and has been involved in the central regulation of food intake and body weight, learning and memory, neuronal development, and neuronal apoptosis. Purpose: The present study investigated the role of swimming training on cerebral metabolism on insulin concentrations in cerebellum and the body balance performance of diabetic rats. Methods: Forty Male Wistar rats were divided in four groups: sedentary control (SC), trained control (TC), sedentary diabetic (SD), and trained diabetic (TD). Diabetes was induced by alloxan (32 mg kg b.w.), single dose injection. The mean blood glucose of diabetic groups was 367 ± 40 mg/dl. Training program consisted in swimming 5 days/week, 1 h/day, 8 weeks, supporting a workload corresponding to 90% of maximal lactate steady state (MLSS). For the body balance testing rats were trained to traverse for 5 min daily for 5-7 days. All dependent variables were analyzed by one-way analysis of variance (ANOVA) and a significance level of p < 0.05 was used for all comparisons. Results: The body balance testing scores were different between groups. Insulin concentrations in cerebellum were not different between groups. Conclusion: It was concluded that in diabetic rats, aerobic training does not induce alterations on cerebellum insulin but induces important metabolic, hormonal and behavioral alterations which are associated with an improvement in glucose homeostasis, serum insulin concentrations and body balance. © 2013 Elsevier Inc.

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The repressor element 1-silencing transcription factor (REST) was first identified as a protein that binds to a 21-bp DNA sequence element (known as repressor element 1 (RE1)) resulting in transcriptional repression of the neural-specific genes [Chong et al., 1995; Schoenherr and Anderson, 1995]. The original proposed role for REST was that of a factor responsible for restricting neuronal gene expression to the nervous system by silencing expression of these genes in non-neuronal cells. Although it was initially thought to repress neuronal genes in non-neuronal cells, the role of REST is complex and tissue dependent. In this study I investigated any role played by REST in the induction and patterning of differentiation of SH-SY5Y human neuroblastoma cells exposed to IGF-I. and phorbol 12- myristate 13-acetate (PMA) To down-regulate REST expression we developed an antisense (AS) strategy based on the use of phosphorothioate oligonucleotides (ODNs). In order to evaluate REST mRNA levels, we developed a real-time PCR technique and REST protein levels were evaluated by western blotting. Results showed that nuclear REST is increased in SH-SY5Y neuroblastoma cells cultured in SFM and exposed to IGF-I for 2-days and it then declines in 5-day-treated cells concomitant with a progressive neurite extension. Also the phorbol ester PMA was able to increase nuclear REST levels after 3-days treatment concomitant to neuronal differentiation of neuroblastoma cells, whereas, at later stages, it is down-regulated. Supporting these data, the exposure to PKC inhibitors (GF10923X and Gö6976) and PMA (16nM) reverted the effects observed with PMA alone. REST levels were related to morphological differentiation, expression of growth coneassociated protein 43 (GAP-43; a gene not regulated by REST) and of synapsin I and βIII tubulin (genes regulated by REST), proteins involved in the early stage of neuronal development. We observed that differentiation of SH-SY5Y cells by IGF-I and PMA was accompanied by a significant increase of these neuronal markers, an effect that was concomitant with REST decrease. In order to relate the decreased REST expression with a progressive neurite extension, I investigated any possible involvement of the ubiquitin–proteasome system (UPS), a multienzymatic pathway which degrades polyubiquinated soluble cytoplasmic proteins [Pickart and Cohen, 2004]. For this purpose, SH-SY5Y cells are concomitantly exposed to PMA and the proteasome inhibitor MG132. In SH-SY5Y exposed to PMA and MG 132, we observed an inverse pattern of expression of synapsin I and β- tubulin III, two neuronal differentiation markers regulated by REST. Their cytoplasmic levels are reduced when compared to cells exposed to PMA alone, as a consequence of the increase of REST expression by proteasome inhibitor. The majority of proteasome substrates identified to date are marked for degradation by polyubiquitinylation; however, exceptions to this principle, are well documented [Hoyt and Coffino, 2004]. Interestingly, REST degradation seems to be completely ubiquitin-independent. The expression pattern of REST could be consistent with the theory that, during early neuronal differentiation induced by IGF-I and PKC, it may help to repress the expression of several genes not yet required by the differentiation program and then it declines later. Interestingly, the observation that REST expression is progressively reduced in parallel with cell proliferation seems to indicate that the role of this transcription factor could also be related to cell survival or to counteract apotosis events [Lawinger et al., 2000] although, as shown by AS-ODN experiments, it does not seem to be directly involved in cell proliferation. Therefore, the decline of REST expression is a comparatively later event during maturation of neuroroblasts in vitro. Thus, we propose that REST is regulated by growth factors, like IGF-I, and PKC activators in a time-dependent manner: it is elevated during early steps of neural induction and could contribute to down-regulate genes not yet required by the differentiation program while it declines later for the acquisition of neural phenotypes, concomitantly with a progressive neurite extension. This later decline is regulated by the proteasome system activation in an ubiquitin-indipendent way and adds more evidences to the hypothesis that REST down-regulation contributes to differentiation and arrest of proliferation of neuroblastoma cells. Finally, the glycosylation pattern of the REST protein was analysed, moving from the observation that the molecular weight calculated on REST sequence is about 116 kDa but using western blotting this transcription factor appears to have distinct apparent molecular weight (see Table 1.1): this difference could be explained by post-translational modifications of the proteins, like glycosylation. In fact recently, several studies underlined the importance of O-glycosylation in modulating transcriptional silencing, protein phosphorylation, protein degradation by proteasome and protein–protein interactions [Julenius et al., 2005; Zachara and Hart, 2006]. Deglycosilating analysis showed that REST protein in SH-SY5Y and HEK293 cells is Oglycosylated and not N-glycosylated. Moreover, using several combination of deglycosilating enzymes it is possible to hypothesize the presence of Gal-β(1-3)-GalNAc residues on the endogenous REST, while β(1-4)-linked galactose residues may be present on recombinant REST protein expressed in HEK293 cells. However, the O-glycosylation process produces an immense multiplicity of chemical structures and monosaccharides must be sequentially hydrolyzed by a series of exoglycosidase. Further experiments are needed to characterize all the post-translational modification of the transcription factor REST.

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Tetraspan vesicle membrane proteins (TVPs) sind ubiquitäre Komponenten von Transportvesikeln. Bei den Säugetieren unterscheidet man drei Familien, die Physine, Gyrine und SCAMPs (secretory carrier-associated membrane proteins). Ihre Funktion ist weitgehend unbekannt, es wird jedoch vermutet, dass sie eine Rolle bei der Vesikelbildung und der Vesikelrezirkulierung spielen. In Caenorhabditis elegans existiert von jeder Familie jeweils nur ein einziges Polypeptid: für die Physine Synaptophysin (SPH-1), für die Gyrine Synaptogyrin (SNG-1) und für die SCAMPs SCAMP (SCM-1). Ziel der Arbeit war es die Verteilung der C. elegans TVPs zu untersuchen und ihre Funktion unter besonderer Berücksichtigung der vesikelvermittelten synaptischen Kopplung zu bestimmen. Wenn die C. elegans TVPs in humanen Epithelzellen synthetisiert werden, lokalisieren sie in zytoplasmatischen Vesikeln. In Kotransfektionsexperimenten wurde gezeigt, dass sie größtenteils in den gleichen Strukturen enthalten sind. In C. elegans synthetisierte TVP-Reporterkonstrukte können in unterschiedlichen Geweben nachgewiesen werden. Dabei ist SNG-1 fast ausschließlich in Neuronen zu finden. SPH-1 und SCM-1 hingegen weisen komplexe und teilweise überlappende Verteilungsmuster auf. Während für SPH-1 eine starke Fluoreszenz im Pharynx, auf der apikalen Seite der Darmzellen oberhalb des sog. terminal webs und in adluminalen Regionen von exkretorischen Geweben gefunden wurde, war SCM-1 stark in der Muskulatur und den Coelomozyten vertreten. Die Expression von SCM-1 in Pharynx und Darm war deutlich schwächer. Die C. elegans TVPs werden früh in der Entwicklung ab der Gastrulation (SPH-1 und SCM-1) bzw. ab der Neurulation im sog. Komma-Stadium (SNG-1) produziert. Um die Funktion der TVPs in C. elegans zu untersuchen, wurden TVP-Mutanten analysiert. Durch Kombination aller drei TVP-Gen-Mutanten wurden TVP-Dreifachmutanten generiert. Diese wiesen keinen offensichtlichen Defekt im Bewegungsmuster auf, entwickelten sich normal und bildeten ein normales Nervensystem aus. Auch auf unterschiedliche chemische und physikalische Reize in sensorischen Tests reagierten die TVP-Dreifachmutanten in gleicher Weise wie Wildtyptiere. Ebenso zeigen die TVP-Dreifachmutanten elektrophysiologisch unter normalen Bedingungen keine anormalen Reaktionsmuster. In ultrastrukturellen Untersuchungen wurde lediglich eine signifikant erhöhte Anzahl Clathrin-ummantelter Vesikel in cholinergen Synapsen gefunden. Erst unter Stressbedingungen, hervorgerufen durch den GABA-Antagonisten Pentylentetrazol (PTZ), wiesen sowohl die TVP-Dreifach- als auch die TVP-Einzelmutanten eine deutlich erhöhte Krampfbereitschaft auf. Zusammengenommen zeigen die Analysen, dass TVPs zwar für grundlegende neuronale Prozesse nicht notwendig sind, dass sie aber auf der anderen Seite vermutlich an alternativen redundanten Wegen der Neurotransmitterfreisetzung beteiligt sind.

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Die Apoptose spielt eine entscheidende Rolle während der normalen Entwicklung des zentralen Nervensystems. Elektrische Aktivität und die Versorgung mit trophischen Faktoren sind ausschlaggebend für das Überleben von Neuronen. Um zu untersuchen, welche zellulären Prozesse die aktivitätsabhängige Apoptose in organotypischen Schnittkulturen des neugeborenen Neokortex beeinflussen, wurde in der vorliegenden Arbeit immunzytochemisch das Auftreten aktivierter Caspase-3, nach pharmakologischer Beeinflussung von Ionenkanälen und membranständigen Rezeptoren analysiert. Die Unterdrückung neuronaler Aktivität durch den Natriumionenkanalblocker TTX führte zu einem signifikanten Verlust kortikaler Neuronen. Ein ähnlicher Anstieg der Zahl apoptotischer Neurone konnte durch Applikation von Antagonisten ionotroper Glutamatrezeptoren, GABAA-Rezeptoren oder neuronaler Gap Junctions induziert werden. Jedoch konnte bei einigen Antagonisten die apoptosefördernde Wirkung erst nach längerer Einwirkung beobachtet werden. Im Weiteren wurde eine Methode etabliert, mit deren Hilfe eine Echtzeitanalyse der Apoptose kortikaler Neurone unter dem Entzug trophischer Faktoren in Gegenwart unterschiedlicher extrazellulärer Kaliumkonzentrationen ermöglicht wurde. Dazu wurden dissoziierte kortikale Kulturen mit dem pCaspase3-sensor Vektor transfiziert. Das durch dieses Plasmid codierte fluoreszente Protein wird Caspase-3 abhängig gespalten. In der vorliegenden Arbeit konnte gezeigt werden, dass der Caspase3-sensor spezifisch für die Aktivierung der Caspase-3 ist, und dass die Überlebensfähigkeit der transfizierten Neurone durch das Transfektionsprotokoll nicht beeinflusst wird.

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Glutamat ist der wichtigste exzitatorische Neurotransmitter im Gehirn. Folglich spielen Glutamat-kontrollierte Rezeptorsysteme eine entscheidende Rolle in neurologischen Vorgängen, wie beispielsweise in Lern- und Gedächtnisprozessen. Gerade der NMDA-Rezeptor ist in eine Vielzahl solcher Vorgänge involviert und wird vor allem mit neurodegenerativen Erkrankungen wie Chorea Huntington, Morbus Alzheimer, Morbus Parkinson und zerebraler Ischämie in Verbindung gebracht. Folglich stellt die Visualisierung des NMDA-Rezeptorstatus eine Möglichkeit dar, den Verlauf solcher Prozesse zu untersuchen.rnDie Positronen-Emissions-Tomographie (PET) ist eine leistungsstarke Anwendung in der molekularen Bildgebung und erlaubt die in vivo-Visualisierung sowie Quantifizierung biochemischer Prozesse. Durch die Verwendung geeigneter Tracer können bestimmte pathologische und neurologische Abläufe beurteilt werden. rnZurzeit sind keine geeigneten PET-Tracer zur Untersuchung des NMDA-Rezeptors verfügbar. Bisher dargestellte PET-Liganden zeichneten sich durch nicht zufriedenstellende Affinitäten und Selektivitäten aus und führten meist auf Grund der hohen Lipophilie zu einem hohen Maß an unspezifischer Bindung. rnDie Strychnin-insensitive Glycinbindungsstelle des NMDA-Rezeptors stellt ein vielversprechendes Target dar, spezifische Liganden für diese Bindungsstelle zu synthetisieren. Hier zeichnen sich einige Verbindungsklassen durch exzellente Affinitäten und Selektivitäten sowie durch vielversprechende in vivo-Eigenschaften aus. rnAuf Grundlage dieser biologischen Daten wurden zwei Substanzen der 2-Indolcarbonsäure, nämlich die 4,6-Dichlor-3-(2-oxo-3-phenylimidazolidin-1-ylmethyl)-1H-indol-2-carbonsäure (MDJ-114) und die (E)-4,6-Dichlor-3-(2-phenylcarbamoylvinyl)-1H-indol-2-carbonsäure (GV150526), als Leitstruktur gewählt. Ferner wurde das 7-Chlor-4-hydroxy-3-(3-phenoxyphenyl)-1H-chinolin-2-on (L-701,324) aus der Substanzklasse der 4-Hydroxy-1H-chinolin-2-one als dritte Leitstruktur gewählt.rnFür diese Substanzen wurden 19F-markierte Analogverbindungen synthetisiert, um als inaktive Referenzverbindungen auf ihre Eignung überprüft zu werden. Hierzu wurde eine Fluorethoxygruppierung im terminalen Phenylring der entsprechenden Leitstruktur eingeführt. Durch Variation der Fluorethoxysubstitution in ortho-, meta- und para-Stellung, konnten die besten Affinitäten in einem kompetitiven Rezeptorbindungsassay durch Verdrängung von [3H]MDL-105,519 bestimmt werden. Als Maß für die Lipophilie wurden die entsprechenden log D-Werte über die HPLC-Methode bestimmt. Basierend auf den Ergebnissen der Evaluierung wurden zwei Derivate identifiziert, welche zur 18F-Markierung genutzt werden sollten (GV150526-Derivat 34: log D = 0,23 ± 0,03, IC50 = 0,20 ± 0,25 µM, Ki = 0,13 ± 0,16 µM; L701,324-Derivat 55: log D = - 0,25 ± 0,01, IC50 = 78 ± 37 µM, Ki = 51 ± 24 µM). Die 18F-Markierung erfolgte durch die Reaktion des entsprechenden Markierungsvorläufers mit dem Markierungssynthon 2-[18F]Fluorethyltosylat, welches durch die Umsetzung von Ethylenditosylat mit [18F]Fluorid hergestellt wurde. Die Radiosynthesen der beiden 18F-markierten Verbindungen [18F]34 (4,6-Dichlor-3-{2-[4-(2-[18F]fluorethoxy)-phenylcarbamoyl]-vinyl}-1H-indol-2-carbonsäure) und [18F]55 (7-Chlor-3-{3-[4-(2-[18F]fluorethoxy)-phenoxy]-phenyl}-4-hydroxy-1H-chinolin-2-on) wurden optimiert sowie semipräparative Abtrennverfahren entwickelt. Beide Tracer wurden auf ihre in vivo-Eignung im µPET-Experiment untersucht. Die Zeitaktivitätskurven lassen erkennen, dass beide Tracer entgegen der Erwartung nicht die Blut-Hirn-Schranke überwinden können. Für das GV150526-Derivat ([18F]34) wurden zusätzlich Autoradiographiestudien durchgeführt. Die erhaltenen Aufnahmen zeigten ein heterogenes Verteilungsmuster der Aktivitätsanreicherung. Ebenso wurde ein hohes Maß an unspezifischer Bindung beobachtet. Möglicherweise sind Cross-Affinitäten zu anderen Rezeptorsystemen oder der recht hohe lipophile Rest des Moleküls hierfür verantwortlich. Ein Grund für die unzureichende Hirngängigkeit der Radioliganden kann sich in der Carboxylatfunktion des GV150526-Derivats bzw. in der 4-Hydroxy-1H-chinolin-2-on-Einheit des L-701,324-Derivats wiederspiegeln. rnAuf Grundlage dieser Resultate können Versuche unternommen werden, für die Verbindungsklasse der 2-Indolcarbonsäuren entsprechende Ester als Prodrugs mit einer verbesserten Bioverfügbarkeit darzustellen. Ebenso können neue Strukturen als Grundlage für neue PET-Tracer untersucht werden.rnrn

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Epileptic seizures are the manifestations of epilepsy, which is a major neurological disorder and occurs with a high incidence during early childhood. A fundamental mechanism underlying epileptic seizures is loss of balance between neural excitation and inhibition toward overexcitation. Glycine receptor (GlyR) is ionotropic neurotransmitter receptor that upon binding of glycine opens an anion pore and mediates in the adult nervous system a consistent inhibitory action. While previously it was assumed that GlyRs mediate inhibition mainly in the brain stem and spinal cord, recent studies reported the abundant expression of GlyRs throughout the brain, in particular during neuronal development. But no information is available regarding whether activation of GlyRs modulates neural network excitability and epileptiform activities in the immature central nervous system (CNS). Therefore the study in this thesis addresses the role of GlyRs in the modulation of neuronal excitability and epileptiform activity in the immature rat brain. By using in vitro intact corticohippocampal formation (CHF) of rats at postnatal days 4-7 and electrophysiological methods, a series of pharmacological examinations reveal that GlyRs are directly implicated in the control of hippocampal excitation levels at this age. In this thesis I am able to show that GlyRs are functionally expressed in the immature hippocampus and exhibit the classical pharmacology of GlyR, which can be activated by both glycine and the presumed endogenous agonist taurine. This study also reveals that high concentration of taurine is anticonvulsive, but lower concentration of taurine is proconvulsive. A substantial fraction of both the pro- and anticonvulsive effects of taurine is mediated via GlyRs, although activation of GABAA receptors also considerably contributes to the taurine effects. Similarly, glycine exerts both pro- and anticonvulsive effects at low and high concentrations, respectively. The proconvulsive effects of taurine and glycine depend on NKCC1-mediated Cl- accumulation, as bath application of NKCC1 inhibitor bumetanide completely abolishes proconvulsive effects of low taurine and glycine concentrations. Inhibition of GlyRs with low concentration of strychnine triggers epileptiform activity in the CA3 region of immature CHF, indicating that intrinsically an inhibitory action of GlyRs overwhelms its depolarizing action in the immature hippocampus. Additionally, my study indicates that blocking taurine transporters to accumulate endogenous taurine reduces epileptiform activity via activation of GABAA receptors, but not GlyRs, while blocking glycine transporters has no observable effect on epileptiform activity. From the main results of this study it can be concluded that in the immature rat hippocampus, activation of GlyRs mediates both pro- and anticonvulsive effects, but that a persistent activation of GlyRs is required to prevent intrinic neuronal overexcitability. In summary, this study uncovers an important role of GlyRs in the modulation of neuronal excitability and epileptiform activity in the immature rat hippocampus, and indicates that glycinergic system can potentially be a new therapeutic target against epileptic seizures of children.

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Faciogenital dysplasia or Aarskog-Scott syndrome (AAS) is an X-linked disorder characterized by craniofacial, skeletal, and urogenital malformations and short stature. Mutations in the only known causative gene FGD1 are found in about one-fifth of the cases with the clinical diagnosis of AAS. FGD1 is a guanine nucleotide exchange factor (GEF) that specifically activates the Rho GTPase Cdc42 via its RhoGEF domain. The Cdc42 pathway is involved in skeletal formation and multiple aspects of neuronal development. We describe a boy with typical AAS and, in addition, unilateral focal polymicrogyria (PMG), a feature hitherto unreported in AAS. Sequencing of the FGD1 gene in the index case and his mother revealed the presence of a novel mutation (1396A>G; M466V), located in the evolutionary conserved alpha-helix 4 of the RhoGEF domain. M466V was not found in healthy family members, in >300 healthy controls and AAS patients, and has not been reported in the literature or mutation databases to date, indicating that this novel missense mutation causes AAS, and possibly PMG. Brain cortex malformations such as PMG could be initiated by mutations in the evolutionary conserved RhoGEF domain of FGD1, by perturbing the signaling via Rho GTPases such as Cdc42 known to cause brain malformation.

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In this issue of Molecular Cell, Fukao et al. (2009) report that HuD upregulates mRNA translation through direct interaction with eIF4A in the 5' cap-binding complex, revealing a posttranscriptional role for HuD in neuronal development and plasticity.

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Notch signaling is an evolutionarily conserved pathway, which is fundamental for neuronal development and specification. In the last decade, increasing evidence has pointed out an important role of this pathway beyond embryonic development, indicating that Notch also displays a critical function in the mature brain of vertebrates and invertebrates. This pathway appears to be involved in neural progenitor regulation, neuronal connectivity, synaptic plasticity and learning/memory. In addition, Notch appears to be aberrantly regulated in neurodegenerative diseases, including Alzheimer's disease and ischemic injury. The molecular mechanisms by which Notch displays these functions in the mature brain are not fully understood, but are currently the subject of intense research. In this review, we will discuss old and novel Notch targets and molecular mediators that contribute to Notch function in the mature brain and will summarize recent findings that explore the two facets of Notch signaling in brain physiology and pathology.

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BACKGROUND L-serine plays an essential role in neuronal development and function. Although a non-essential amino acid, L-serine must be synthesised within the brain because of its poor permeability by the blood-brain barrier. Within the brain, its synthesis is confined to astrocytes, and its shuttle to neuronal cells is performed by a dedicated neutral amino acid transporter, ASCT1. METHODS AND RESULTS Using exome analysis we identified the recessive mutations, p.E256K, p.L315fs, and p.R457W, in SLC1A4, the gene encoding ASCT1, in patients with developmental delay, microcephaly and hypomyelination; seizure disorder was variably present. When expressed in a heterologous system, the mutations did not affect the protein level at the plasma membrane but abolished or markedly reduced L-serine transport for p.R457W and p.E256K mutations, respectively. Interestingly, p.E256K mutation displayed a lower L-serine and alanine affinity but the same substrate selectivity as wild-type ASCT1. CONCLUSIONS The clinical phenotype of ASCT1 deficiency is reminiscent of defects in L-serine biosynthesis. The data underscore that ASCT1 is essential in brain serine transport. The SLC1A4 p.E256K mutation has a carrier frequency of 0.7% in the Ashkenazi-Jewish population and should be added to the carrier screening panel in this community.