944 resultados para Synaptic Vesicle Endocytosis
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O presente trabalho propõe-se esclarecer o papel que a progesterona e os seus metabolitos exercem no sistema nervoso central. Nos últimos anos, com a descoberta da síntese local de esteróides no cérebro, a progesterona, assim como outras hormonas sexuais, ganharam uma relevância crescente em fenómenos tais como plasticidade neuronal e neuroprotecção. Ainda que já se comece a entender o papel de muitas hormonas no cérebro, tal como o estrogénio, o papel da progesterona continua menos conhecido. Deste modo, o nosso trabalho centrou-se na elucidação dos efeitos da progesterona em fenómenos de sobrevivência celular, plasticidade neuronal/sináptica. Graças à colaboração com um grupo pioneiro em estudos sobre hormonas sexuais neuroactivas, o presente trabalho fornece uma importante contribuição ao entendimento do papel desta hormona no sistema nervoso central. Este trabalho fornece novos dados, relativamente ao papel da progesterona e dos seus metabolitos reduzidos na regulação de vias de sinalização associadas com sobrevivência celular, tal como Akt/PI3K e ERK. Também é analisado o efeito do tratamento hormonal na expressão e estado de fosforilação da proteína Tau, sendo ainda motivo de estudo cinases e fosfatases envolvidas nestes mecanismos.
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Communication and cooperation between billions of neurons underlie the power of the brain. How do complex functions of the brain arise from its cellular constituents? How do groups of neurons self-organize into patterns of activity? These are crucial questions in neuroscience. In order to answer them, it is necessary to have solid theoretical understanding of how single neurons communicate at the microscopic level, and how cooperative activity emerges. In this thesis we aim to understand how complex collective phenomena can arise in a simple model of neuronal networks. We use a model with balanced excitation and inhibition and complex network architecture, and we develop analytical and numerical methods for describing its neuronal dynamics. We study how interaction between neurons generates various collective phenomena, such as spontaneous appearance of network oscillations and seizures, and early warnings of these transitions in neuronal networks. Within our model, we show that phase transitions separate various dynamical regimes, and we investigate the corresponding bifurcations and critical phenomena. It permits us to suggest a qualitative explanation of the Berger effect, and to investigate phenomena such as avalanches, band-pass filter, and stochastic resonance. The role of modular structure in the detection of weak signals is also discussed. Moreover, we find nonlinear excitations that can describe paroxysmal spikes observed in electroencephalograms from epileptic brains. It allows us to propose a method to predict epileptic seizures. Memory and learning are key functions of the brain. There are evidences that these processes result from dynamical changes in the structure of the brain. At the microscopic level, synaptic connections are plastic and are modified according to the dynamics of neurons. Thus, we generalize our cortical model to take into account synaptic plasticity and we show that the repertoire of dynamical regimes becomes richer. In particular, we find mixed-mode oscillations and a chaotic regime in neuronal network dynamics.
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La cellule utilise des nœuds d’interactions protéiques relativement stables, conservés et souvent constitués d’adaptateurs moléculaires pour gérer des signaux reçus (synthèse, sécrétion, traffic, métabolisme, division), des problèmes de sécurité et de niveaux d’énergie. Nos résultats montrent que la cellule utilise aussi des nœuds relativement petits et dynamiques où des informations propres concernant des voies métaboliques apparemment indépendantes sont évaluées. Ces informations y sont intégrées localement et une décision y est prise pour action immédiate. Cette idée est supportée par notre étude sur le récepteur de l’insuline (RI). Ce récepteur transmembranaire à activité tyrosine kinase reconnaît un signal externe (insuline circulante) et engage la signalisation de l’insuline, les réponses métaboliques et le contrôle du glucose circulant. Le RI est aussi impliqué dans l’internalisation de l’insuline et sa dégradation dans les endosomes (clairance). Il régule donc indirectement la sécrétion de l’insuline par les cellules du pancréas endocrine. La signification pathophysiologique de l’endocytose du RI ainsi que les bases moléculaires d’une telle coordination sont peu connues. Nous avons construit un réseau d’interactions du RI (IRGEN) à partir d’un protéome de fractions Golgi-endosomales (G/E) hépatiques. Nous démontrons une forte hétérogénéité fonctionnelle autour du RI avec la présence des protéines ATIC, PTPLAD1, AMPKα et ANXA2. ANXA2 est une protéine impliquée dans la biogénèse et le transport endosomal. Nos résultats identifient un site de SUMOylation régulé par l’insuline dans sa région N-terminale. ATIC est une enzyme de la voie de synthèse des purines de novo dont le substrat AICAR est un activateur de l’AMPKα. Des analyses biochimiques in vitro et in vivo nous montrent que ATIC favorise la tyrosine phosphorylation du RI par opposition fonctionnelle à PTPLAD1. Une délétion partielle d’ATIC stimule l’activation de l’AMPK dont la sous-unité AMPKα2 apparaît déterminante pour le trafic du RI. Nous démontrons que ATIC, PTPLAD1, AMPKα, AICAR et ANXA2 contrôlent l’endocytose du RI à travers le cytosquelette d’actine et le réseau de microtubules. Nous ressortons un nœud de signalisation (ATIC, PTPLAD1, AMPKα) capable de détecter les niveaux d’activation du RI, d’énergie cellulaires (rapports AMP/ATP) et aussi d’agir sur la signalisation et l’endocytose du RI. Cette proximité moléculaire expliquerait le débat sur le mécanisme primaire du diabète de type 2 (DT2), notamment entre la sensibilité à l’insuline et sa clairance. Nous avons calculé un enrichissement de 61% de variants communs du DT2 parmi les protéines fonctionnellement proches du RI incluant RI, ATIC, AMPKα, KIF5A et GLUT2. Cet enrichissement suggère que l’hétérogénéité génétique révélée par les consortiums sur études génomiques (GWAS) converge vers des mécanismes peu étudiés de biologie cellulaire.
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Tese de doutoramento, Ciências Biomédicas (Bioquímica Médica), Universidade de Lisboa, Faculdade de Medicina, 2014
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Tese de doutoramento, Ciências Biomédicas (Neurociências), Universidade de Lisboa, Faculdade de Medicina, 2014
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Tese de doutoramento, Ciências Biomédicas (Neurociências), Universidade de Lisboa, Faculdade de Medicina, 2014
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Tese de doutoramento, Ciências Biomédicas (Neurociências), Universidade de Lisboa, Faculdade de Medicina, 2014
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Tese de mestrado. Biologia (Biologia Molecular e Genética). Universidade de Lisboa, Faculdade de Ciências,2014
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Tese de doutoramento, Ciências Biomédicas (Neurociências), Universidade de Lisboa, Faculdade de Medicina, 2015
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Tese de doutoramento, Ciências Biomédicas (Bioquímica Médica), Universidade de Lisboa, Faculdade de Medicina, 2016
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Tese de doutoramento, Biologia (Biologia do Desenvolvimento), Universidade de Lisboa, Faculdade de Ciências, 2015
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Tese de mestrado, Neurociências, Faculdade de Medicina, Universidade de Lisboa, 2015
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Tese de mestrado, Neurociências, Faculdade de Medicina, Universidade de Lisboa, 2016
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Formyl-peptide receptor type 2 (FPR2; also called ALX because it is the receptor for lipoxin A4) sustains a variety of biological responses relevant to the development and control of inflammation, yet the cellular regulation of this G-protein-coupled receptor remains unexplored. Here we report that, in response to peptide agonist activation, FPR2/ALX undergoes β-arrestin-mediated endocytosis followed by rapid recycling to the plasma membrane. We identify a transplantable recycling sequence that is both necessary and sufficient for efficient receptor recycling. Furthermore, removal of this C-terminal recycling sequence alters the endocytic fate of FPR2/ALX and evokes pro-apoptotic effects in response to agonist activation. This study demonstrates the importance of endocytic recycling in the anti-apoptotic properties of FPR2/ALX and identifies the molecular determinant required for modulation of this process fundamental for the control of inflammation.
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AMPA receptors are tetrameric glutamate-gated ion channels that mediate fast synaptic neurotransmission in mammalian brain. Their subunits contain a two-lobed N-terminal domain (NTD) that comprises over 40% of the mature polypeptide. The NTD is not obligatory for the assembly of tetrameric receptors, and its functional role is still unclear. By analyzing full-length and NTD-deleted GluA1-4 AMPA receptors expressed in HEK 293 cells, we found that the removal of the NTD leads to a significant reduction in receptor transport to the plasma membrane, a higher steady state-to-peak current ratio of glutamate responses, and strongly increased sensitivity to glutamate toxicity in cell culture. Further analyses showed that NTD-deleted receptors display both a slower onset of desensitization and a faster recovery from desensitization of agonist responses. Our results indicate that the NTD promotes the biosynthetic maturation of AMPA receptors and, for membrane-expressed channels, enhances the stability of the desensitized state. Moreover, these findings suggest that interactions of the NTD with extracellular/synaptic ligands may be able to fine-tune AMPA receptor-mediated responses, in analogy with the allosteric regulatory role demonstrated for the NTD of NMDA receptors.