Search results for "Homéostasie énergétique"

showing 7 items of 7 documents

Hypothalamic glucose sensing : mitochondrial dynamic involument in reactive oxygen species signaling

2011

Energetic homeostasis results in the balance between energy intake and expenditure. The hypothalamus plays an important role in the regulation of both energetic metabolism and food intake in sensing hormonal and metabolic signals. For instance, changes in hypothalamic glucose level modulate food intake and insulin secretion. We have previously found that 1) increased hypothalamic glucose level triggers production of mitochondrial reactive oxygen species (mROS) from the electron transport chain; 2) hypothalamic mROS production is involved in glucose homeostasis and food intake control. The molecular mechanisms involved in glucose-induced hypothalamic mROS production are still unknown. Mitoch…

Energetic homeostasis[SDV.MHEP] Life Sciences [q-bio]/Human health and pathologyHypothalamusGlucose sensingMitochondrial dynamicsEspèces Actives de l’Oxygène mitochondriales (mEAOs)Homéostasie énergétiqueDétection du glucoseDynamique mitochondrialeReactive Oxygen Species (mROS)
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Role of polysialic acid (PSA) in the control of food intake and body weight

2013

Hypothalamus plays a major role in the regulation of energy homeostasis by the presence of neural circuits controlling food intake. These circuits are plastic and can be rewired during adulthood. We hypothesized that synaptic plasticity can occur during physiological conditions. We have shown that synaptic contact on hypothalamic anorexigen POMC neurons are rewired in mouse upon high fat diet (HFD). This synaptic process is mandatory to adjust energy intake and requires the glycan PSA (polysialic acid). PSA promotes synaptic plasticity in the brain by the weakening of cell-to-cell interaction by addition on NCAM (neural cell adhesion molecule). We hypothesized that a defect in brain synapti…

Food intakePlasticité synaptique[SDV.MHEP.PHY] Life Sciences [q-bio]/Human health and pathology/Tissues and Organs [q-bio.TO]HypothalamusPrise alimentaireEnergy homeostasisHoméostasie énergétique[SDV.NEU] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]Synaptic plasticity
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A new actor involved in hypothalamic glucose detection : the Transient Receptor Potential Canonical (TRPC) channels

2015

Hyperglycemia is detected and integrated by the mediobasal hypothalamus (MBH) which, in turn, inhibits food intake and triggers insulin secretion. The MBH houses specialized glucose-sensitive (GS) neurons, which directly or indirectly modulate their electrical activity in response to changes in glucose level. In a first study, we hypothesized that indirect detection of glucose by MBH GS neurons involves the secretion of endozepine by astrocytes, a gliotransmitter known to inhibit food intake in response to hyperglycemia. The present work shows that endozepines selectively activate anorexigenic MBH pro-opiomelanotortine (POMC) neurons. In the second study, we show that the direct detection o…

Glucose-sensing neuronsEspèces actives de l’oxygèneEndozépines[SDV.MHEP.PHY] Life Sciences [q-bio]/Human health and pathology/Tissues and Organs [q-bio.TO]Glucose detectionHypothalamusHoméostasie énergétiqueTRPC channelsCanaux TRPCAstrocytesEnergy homeostasisNeurones gluco-sensibles[SDV.NEU] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]Détection du glucoseReactive oxygen species
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Role of polysialic acid (PSA) in the control of food intake and body weight

2013

Hypothalamus plays a major role in the regulation of energy homeostasis by the presence of neural circuits controlling food intake. These circuits are plastic and can be rewired during adulthood. We hypothesized that synaptic plasticity can occur during physiological conditions. We have shown that synaptic contact on hypothalamic anorexigen POMC neurons are rewired in mouse upon high fat diet (HFD). This synaptic process is mandatory to adjust energy intake and requires the glycan PSA (polysialic acid). PSA promotes synaptic plasticity in the brain by the weakening of cell-to-cell interaction by addition on NCAM (neural cell adhesion molecule). We hypothesized that a defect in brain synapti…

[ SDV.MHEP.PHY ] Life Sciences [q-bio]/Human health and pathology/Tissues and Organs [q-bio.TO]HypothalamusPrise alimentaireHoméostasie énergétiqueSynaptic plasticity[SDV.AEN] Life Sciences [q-bio]/Food and NutritionFood intakePlasticité synaptique[ SDV.NEU ] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC][SDV.MHEP.PHY]Life Sciences [q-bio]/Human health and pathology/Tissues and Organs [q-bio.TO]Energy homeostasis[SDV.NEU]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC][SDV.NEU] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]these[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition
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Détection hypothalamique de l’hyperglycémie : rôle de la dynamique mitochondriale dans la signalisation par les espèces actives de l’oxygène

2011

[SDV.AEN] Life Sciences [q-bio]/Food and Nutritionenergetic homeostasis ; hypothalamus ; glucose sensing ; mitochondrial dynamic ; reactive oxygen species (mros)[SDV.AEN]Life Sciences [q-bio]/Food and Nutritionhoméostasie énergétique ; hypothalamus ; détection du glucose ; dynamique mitochondriale ; espèce active de l'oxygène mitochondriale (meaos)
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Astrocytes and hypothalamic glucose sensing: metabolic role and involvement of astroglial connexins

2012

The hypothalamus plays a pivotal role in the nervous control of glucose homeostasis. This area contains gluco-sensitive neurons. Some of them detect increases in glucose levels and regulate glucose homeostasis by stimulating insulin secretion or inhibiting food intake. It is widely accepted that astrocytes are metabolically coupled to neurons. Lactate, resulting from the metabolism of glucose by astrocytes, is transported via the monocarboxylate transporters (MCTs). In addition, gap junctions (GJ), that form networks within astrocytes, are essential to transfer glucose from the bloodstream to the active neurons. These astroglial GJ mainly consist of connexins 43 and 30 (Cxs).The aims of my …

[SDV.SA] Life Sciences [q-bio]/Agricultural sciences[SDV.MHEP] Life Sciences [q-bio]/Human health and pathologyConnexins 30 et 43connexines 30 et 43Monocarboxylate Transporters (MCTs)Transporteurs aux Monocarboxylates (MCTs)détection hypothalamique du glucose et du lactateastrocytehypothalamic glucose sensingAstrocytesclhoméostasie énergétiqueenergy homeostasis[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition[SDV.MHEP]Life Sciences [q-bio]/Human health and pathology
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Implication de la plasticité cérébrale hypothalamique dans la régulation de l'homéostasie énergétique chez la souris : effet d'un régime gras

2012

The hypothalamus plays a crucial role in the control of energy balance. In adult brain, this area remain plastic and the cellular network can be rapidly modified under environmental pressures. Studies show than hypothalamic remodeling are disturbed when metabolic diseases such as obesity or type II diabetes are declared. In this study we hypothesized that a high fat diet (HFD) inducing obesity could rapidly causes cell modifications in the adult hypothalamus network. To answer this question, we have established a one week HFD mouse model, and evaluated to type of hypothalamic plasticity which are synaptic plasticity and neurogenesis. Our results show that HFD leads to an increase of the exc…

[SDV.SA]Life Sciences [q-bio]/Agricultural sciences[SDV.SA] Life Sciences [q-bio]/Agricultural sciences[SDV.MHEP] Life Sciences [q-bio]/Human health and pathologyPlasticityRégime grasHigh fat dietNeurogenesisHypothalamusHoméostasie énergétique[SDV.AEN] Life Sciences [q-bio]/Food and NutritionPlasticité[ SDV.MHEP ] Life Sciences [q-bio]/Human health and pathologyEnergy homeostasisNeurogenèse[ SDV.SA ] Life Sciences [q-bio]/Agricultural sciences[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition[SDV.MHEP]Life Sciences [q-bio]/Human health and pathology
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