48 resultados para COACTIVATOR


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The peroxisome proliferator-activated receptors (PPARs) are a group of nuclear receptors that function as transcription factors regulating the expression of genes involved in cellular differentiation, development, metabolism and also tumorigenesis. Three PPAR isotypes (α, β/δ and γ) have been identified, among which PPARβ/δ is the most difficult to functionally examine due to its tissue-specific diversity in cell fate determination, energy metabolism and housekeeping activities. PPARβ/δ acts both in a ligand-dependent and -independent manner. The specific type of regulation, activation or repression, is determined by many factors, among which the type of ligand, the presence/absence of PPARβ/δ-interacting corepressor or coactivator complexes and PPARβ/δ protein post-translational modifications play major roles. Recently, new global approaches to the study of nuclear receptors have made it possible to evaluate their molecular activity in a more systemic fashion, rather than deeply digging into a single pathway/function. This systemic approach is ideally suited for studying PPARβ/δ, due to its ubiquitous expression in various organs and its overlapping and tissue-specific transcriptomic signatures. The aim of the present review is to present in detail the diversity of PPARβ/δ function, focusing on the different information gained at the systemic level, and describing the global and unbiased approaches that combine a systems view with molecular understanding.

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Biomechanical forces, such as fluid shear stress, govern multiple aspects of endothelial cell biology. In blood vessels, disturbed flow is associated with vascular diseases, such as atherosclerosis, and promotes endothelial cell proliferation and apoptosis. Here, we identified an important role for disturbed flow in lymphatic vessels, in which it cooperates with the transcription factor FOXC2 to ensure lifelong stability of the lymphatic vasculature. In cultured lymphatic endothelial cells, FOXC2 inactivation conferred abnormal shear stress sensing, promoting junction disassembly and entry into the cell cycle. Loss of FOXC2-dependent quiescence was mediated by the Hippo pathway transcriptional coactivator TAZ and, ultimately, led to cell death. In murine models, inducible deletion of Foxc2 within the lymphatic vasculature led to cell-cell junction defects, regression of valves, and focal vascular lumen collapse, which triggered generalized lymphatic vascular dysfunction and lethality. Together, our work describes a fundamental mechanism by which FOXC2 and oscillatory shear stress maintain lymphatic endothelial cell quiescence through intercellular junction and cytoskeleton stabilization and provides an essential link between biomechanical forces and endothelial cell identity that is necessary for postnatal vessel homeostasis. As FOXC2 is mutated in lymphedema-distichiasis syndrome, our data also underscore the role of impaired mechanotransduction in the pathology of this hereditary human disease.

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Les antipsychotiques atypiques, de deuxième génération, ont largement contribué à améliorer le traitement des patients souffrant de schizophrénie. Cependant, leur mécanisme d'action reste mal compris et leurs effets secondaires sont importants, notamment la prise de poids. CRTC1 (CREB-regulated transcription coactivator 1), aussi appelé TORC1 (transducers of regulated CREB activity 1), est un coactivateur de CREB. Il régule la transcription de Bdnf1 qui joue un rôle essentiel dans le contrôle de la balance énergétique dépendant du VMH 2, 3, 4. Nous pensons que CRTC1 est impliqué dans la prise de poids induite par certains antipsychotiques. En effet, il a été démontré que les souris Crtc1-/- devenaient hyperphagiques et obèses 5, 6, que la régulation de l'activité de CRTC1 se faisait par l'AMPK et que les antipsychotiques atypiques activaient cette kinase dans l'hypothalamus.7 L'AMPK de l'hypothalamus est liée à la régulation de la prise alimentaire, elle inverse l'action de la leptine, hormone anorexigène. Suite à ces constatations, nous proposons de suivre l'hypothèse de travail suivante : l'activation de l'AMPK par les antipsychotiques atypiques dans l'hypothalamus peut maintenir la phosphorylation de CRTC1 et le bloquer dans le cytoplasme, l'empêchant ainsi d'activer les gènes anorexigènes, comme Bdnf par exemple. En effet, la forme phosphorylée inactive de CRTC1 est séquestrée dans le cytoplasme et sa migration dans le noyau nécessite en même temps l'activation de la phosphatase calcineurine et l'inactivation des kinases de la famille de l'AMPK. Dans le travail que nous avons entamé, nous cherchons donc, par western blot et par immunohistochimie, à comprendre si les antipsychotiques atypiques inactivent CRTC1 en induisant sa phosphorylation par l'AMPK et sa rétention dans le cytoplasme.