968 resultados para CATECHOLAMINERGIC NEURONS


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Aquaporin 9 facilitates the diffusion of water but also glycerol and monocarboxylates, known as brain energy substrates. AQP9 was recently observed in catecholaminergic neurons that are implicated in energy homeostasis and also possibly in neuroendocrine effects of diabetes. Recently it has been observed that the level of AQP9 expression in hepatocytes is sensitive to the blood concentration of insulin. Furthermore, insulin injection in the brain is known to be related to the energy homeostasis. Based on these observations, we investigated if the concentration of insulin affects the level of brain AQP9 expression and if so, in which cell types. This study has been carried out, in a model of the diabetic rat generated by streptozotocin injection and on brainstem slices. In diabetic rats showing a decrease in systemic insulin concentration, AQP9 is only increased in brain areas containing catecholaminergic neurons. In contrast, no significant change is detected in the cerebral cortex and the cerebellum. Using immunocytochemistry, we are able to show that the increase in AQP9 expression is specifically present in catecholaminergic neurons. In brainstem slice cultures, 2 microM insulin induces a significant decrease in AQP9 protein levels 6 h after application, suggesting that brain AQP9 is also regulated by the insulin. These results show that the level of expression of brain AQP9 is affected by variations of the concentration of insulin in a diabetic model and in vitro.

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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)

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Intermittent electrical footshock induces c-fos expression in parvocellular neurosecretory neurons expressing corticotropin-releasing factor and in other visceromotor cell types of the paraventricular hypothalamic nucleus (PVH). Since catecholaminergic neurons of the nucleus of the solitary tract and ventrolateral medulla make up the dominant loci of footshock-responsive cells that project to the PVH, these were evaluated as candidate afferent mediators of hypothalamic neuroendocrine responses. Rats bearing discrete unilateral transections of this projection system were exposed to a single 30-min footshock session and sacrificed 2 hr later. Despite depletion of the aminergic innervation on the ipsilateral side, shock-induced up-regulation of Fos protein and corticotropin-releasing factor mRNA were comparable in strength and distribution in the PVH on both sides of the brain. This lesion did, however, result in a substantial reduction of Fos expression in medullary aminergic neurons on the ipsilateral side. These results contrast diametrically with those obtained in a systemic cytokine (interleukin 1) challenge paradigm, where similar cuts ablated the Fos response in the ipsilateral PVH but left intact the induction seen in the ipsilateral medulla. We conclude that (i) footshock-induced activation of medullary aminergic neurons is a secondary consequence of stress, mediated via a descending projection transected by our ablation, (ii) stress-induced activation of medullary aminergic neurons is not necessarily predictive of an involvement of these cell groups in driving hypothalamic visceromotor responses to a given stressor, and (iii) despite striking similarities in the complement of hypothalamic effector neurons and their afferents that may be activated by stresses of different types, distinct mechanisms may underlie adaptive hypothalamic responses in each.

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We assessed the role of NK-1 receptors (NK1R) expressing neurons in the locus coeruleus (LC) on cardiorespiratory responses to hypercapnia. To this end, we injected substance P-saporin conjugate (SP-SAP) to kill NK-1 immunoreactive (NK1R-ir) neurons or SAP alone as a control. Immunohistochemistry for NK1R, tyrosine hydroxylase (TH-ir) and Glutamic Acid Decarboxylase (GAD-ir) were performed to verify if NK1R-expressing neurons, catecholaminergic and/or GABAergic neurons were eliminated. A reduced NK1R-ir in the LC (72%) showed the effectiveness of the lesion. SP-SAP lesion also caused a reduction of TH-ir (66%) and GABAergic neurons (70%). LC SP-SAP lesion decreased by 30% the ventilatory response to 7% CO(2) and increased the heart rate (fH) during hypercapnia but did not affect MAP. The present data suggest that different populations of neurons (noradrenergic, GABAergic, and possibly others) in the LC express NK1R modulating differentially the hypercapnic ventilatory response, since catecholaminergic neurons are excitatory and GABAergic ones are inhibitory. Additionally, NK1R-ir neurons in the LC, probably GABAergic ones, seem to modulate fH during CO(2) exposure, once our previous data demonstrated that catecholaminergic lesion does not affect this variable. (C) 2010 Elsevier B.V. All rights reserved.

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The present study describes the distribution and cellular morphology of catecholaminergic neurons in the CNS of two species of monotreme, the platypus (Ornithorhynchus anatinus) and the short-beaked echidna (Tachyglossus aculeatus). Tyrosine hydroxylase immunohistochemistry was used to visualize these neurons. The standard A1-A17, C1-C3 nomenclature was used for expediency, but the neuroanatomical names of the various nuclei have also been given. Monotremes exhibit catecholaminergic neurons in the diencephalon (All, A12, A13, A14, A15), midbrain (A8, A9, A10), rostral rhombencephalon (A5, A6, A7), and medulla (A1, A2, C1, C2). The subdivisions of these neurons are in general agreement with those of other mammals, and indeed other amniotes. Apart from minor differences, those being a lack of A4, A3, and C3 groups, the catecholaminergic system of monotremes is very similar to that of other mammals. Catecholaminergic neurons outside these nuclei, such as those reported for other mammals, were not numerous with occasional cells observed in the striatum. It seems unlikely that differences in the sleep phenomenology of monotremes, as compared to other mammals, can be explained by these differences. The similarity of this system across mammalian and amniote species underlines the evolutionary conservatism of the catecholaminergic system. Copyright (C) 2002 S. Karger AG, Basel.

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Three populations of neurons expressing the vesicular glutamate transporter 2 (Vglut2) were recently described in the A10 area of the mouse midbrain, of which two populations were shown to express the gene encoding, the rate-limiting enzyme for catecholamine synthesis, tyrosine hydroxylase (TH).One of these populations (‘‘TH– Vglut2 Class1’’) also expressed the dopamine transporter (DAT) gene while one did not ("TH–Vglut2 Class2"), and the remaining population did not express TH at all ("TH-Vglut2-only"). TH is known to be expressed by a promoter which shows two phases of activation, a transient one early during embryonal development, and a later one which gives rise to stable endogenous expression of the TH gene. The transient phase is, however, not specific to catecholaminergic neurons, a feature taken to advantage here as it enabled Vglut2 gene targeting within all three A10 populations expressing this gene, thus creating a new conditional knockout. These knockout mice showed impairment in spatial memory function. Electrophysiological analyses revealed a profound alteration of oscillatory activity in the CA3 region of the hippocampus. In addition to identifying a novel role for Vglut2 in hippocampus function, this study points to the need for improved genetic tools for targeting of the diversity of subpopulations of the A10 area

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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During exercise, intense brain activity orchestrates an increase in muscle tension. Additionally, there is an increase in cardiac output and ventilation to compensate the increased metabolic demand of muscle activity and to facilitate the removal of CO2 from and the delivery of O-2 to tissues. Here we tested the hypothesis that a subset of pontomedullary and hypothalamic neurons could be activated during dynamic acute exercise. Male Wistar rats (250-350 g) were divided into an exercise group (n = 12) that ran on a treadmill and a no-exercise group (n = 7). Immunohistochemistry of pontomedullary and hypothalamic sections to identify activation (c-Fos expression) of cardiorespiratory areas showed that the no-exercise rats exhibited minimal Fos expression. In contrast, there was intense activation of the nucleus of the solitary tract, the ventrolateral medulla (including the presumed central chemoreceptor neurons in the retrotrapezoid/parafacial region), the lateral parabrachial nucleus, the Kolliker-Fuse region, the perifornical region, which includes the perifornical area and the lateral hypothalamus, the dorsal medial hypothalamus, and the paraventricular nucleus of the hypothalamus after running exercise. Additionally, we observed Fos immunoreactivity in catecholaminergic neurons within the ventrolateral medulla (C1 region) without Fos expression in the A2, A5 and A7 neurons. In summary, we show for the first time that after acute exercise there is an intense activation of brain areas crucial for cardiorespiratory control. Possible involvement of the central command mechanism should be considered. Our results suggest whole brain-specific mobilization to correct and compensate the homeostatic changes produced by acute exercise. (c) 2012 IBRO. Published by Elsevier Ltd. All rights reserved.

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Three populations of neurons expressing the vesicular glutamate transporter 2 (Vglut2) were recently described in the A10 area of the mouse midbrain, of which two populations were shown to express the gene encoding, the rate-limiting enzyme for catecholamine synthesis, tyrosine hydroxylase (TH).One of these populations (‘‘TH– Vglut2 Class1’’) also expressed the dopamine transporter (DAT) gene while one did not ("TH–Vglut2 Class2"), and the remaining population did not express TH at all ("TH-Vglut2-only"). TH is known to be expressed by a promoter which shows two phases of activation, a transient one early during embryonal development, and a later one which gives rise to stable endogenous expression of the TH gene. The transient phase is, however, not specific to catecholaminergic neurons, a feature taken to advantage here as it enabled Vglut2 gene targeting within all three A10 populations expressing this gene, thus creating a new conditional knockout. These knockout mice showed impairment in spatial memory function. Electrophysiological analyses revealed a profound alteration of oscillatory activity in the CA3 region of the hippocampus. In addition to identifying a novel role for Vglut2 in hippocampus function, this study points to the need for improved genetic tools for targeting of the diversity of subpopulations of the A10 area

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Three populations of neurons expressing the vesicular glutamate transporter 2 (Vglut2) were recently described in the A10 area of the mouse midbrain, of which two populations were shown to express the gene encoding, the rate-limiting enzyme for catecholamine synthesis, tyrosine hydroxylase (TH).One of these populations (‘‘TH– Vglut2 Class1’’) also expressed the dopamine transporter (DAT) gene while one did not ("TH–Vglut2 Class2"), and the remaining population did not express TH at all ("TH-Vglut2-only"). TH is known to be expressed by a promoter which shows two phases of activation, a transient one early during embryonal development, and a later one which gives rise to stable endogenous expression of the TH gene. The transient phase is, however, not specific to catecholaminergic neurons, a feature taken to advantage here as it enabled Vglut2 gene targeting within all three A10 populations expressing this gene, thus creating a new conditional knockout. These knockout mice showed impairment in spatial memory function. Electrophysiological analyses revealed a profound alteration of oscillatory activity in the CA3 region of the hippocampus. In addition to identifying a novel role for Vglut2 in hippocampus function, this study points to the need for improved genetic tools for targeting of the diversity of subpopulations of the A10 area

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Uchoa ET, Sabino HA, Ruginsk SG, Antunes-Rodrigues J, Elias LL. Hypophagia induced by glucocorticoid deficiency is associated with an increased activation of satiety-related responses. J Appl Physiol 106: 596-604, 2009. First published November 20, 2008; doi: 10.1152/japplphysiol.90865.2008.-Glucocorticoids have major effects on food intake, demonstrated by the decrease of food intake following adrenalectomy. Satiety signals are relayed to the nucleus of the solitary tract (NTS), which has reciprocal projections with the arcuate nucleus (ARC) and paraventricular nucleus (PVN) of the hypothalamus. We evaluated the effects of glucocorticoids on the activation of hypothalamic and NTS neurons induced by food intake in rats subjected to adrenalectomy (ADX) or sham surgery 7 days before the experiments. One-half of ADX animals received corticosterone (ADX + B) in the drinking water (B: 25 mg/l). Fos/tyrosine hydroxylase (TH), Fos/corticotrophin-releasing factor (CRF) and Fos immunoreactivity were assessed in the NTS, PVN, and ARC, respectively. Food intake and body weight were reduced in the ADX group compared with sham and ADX + B groups. Fos and Fos/TH in the NTS, Fos, and Fos/CRF immunoreactive neurons in the PVN and Fos in the ARC were increased after refeeding, with higher number in the ADX group, compared with sham and ADX + B groups. CCK administration showed no hypophagic effect on ADX group despite a similar increase of Fos/TH immunoreactive neurons in the NTS compared with sham and ADX + B groups, suggesting that CCK alone cannot further increase the anorexigenic effect induced by glucocorticoid deficiency. The present data indicate that glucocorticoid withdrawal reduced food intake, which was associated with higher activation of ARC, CRF neurons of the PVN, and catecholaminergic neurons of the NTS. In the absence of glucocorticoids, satiety signals elicited during a meal lead to an augmented activation of brain stem and hypothalamic pathways.

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Aquaglyceroporin-9 (AQP9) facilitates diffusion of water and energy substrates such as glycerol and monocarboxylates. AQP9 is present in plasma membrane and mitochondria of astrocytes and catecholaminergic neurons, suggesting that it plays a role in the energetic status of these cells. Using specific small interference RNA directed against AQP9 in astrocyte cultures, we showed that glycerol uptake is decreased which is associated with an increase in glucose uptake and oxidative metabolism. Our results not only confirm the presence of AQP9 in astrocytes but also suggest that changes in AQP9 expression alter glial energy metabolism.

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The presence of three water channels (aquaporins, AQP), AQP1, AQP4 and AQP9 were observed in normal brain and several rodent models of brain pathologies. Little is known about AQP distribution in the primate brain and its knowledge will be useful for future testing of drugs aimed at preventing brain edema formation. We studied the expression and cellular distribution of AQP1, 4 and 9 in the non-human primate brain. The distribution of AQP4 in the non-human primate brain was observed in perivascular astrocytes, comparable to the observation made in the rodent brain. In contrast with rodent, primate AQP1 is expressed in the processes and perivascular endfeet of a subtype of astrocytes mainly located in the white matter and the glia limitans, possibly involved in water homeostasis. AQP1 was also observed in neurons innervating the pial blood vessels, suggesting a possible role in cerebral blood flow regulation. As described in rodent, AQP9 mRNA and protein were detected in astrocytes and in catecholaminergic neurons. However additional locations were observed for AQP9 in populations of neurons located in several cortical areas of primate brains. This report describes a detailed study of AQP1, 4 and 9 distributions in the non-human primate brain, which adds to the data already published in rodent brains. This relevant species differences have to be considered carefully to assess potential drugs acting on AQPs non-human primate models before entering human clinical trials.

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Aim: Aquaglyceroporin-9 (AQP9) is a member of the Aquaporin channel family involved in water flux through plasma membranes and exhibits the distinctive feature of also being permeable to glycerol and monocarboxylates. AQP9 is detected in astrocytes and catecholaminergic neurons.1 However, the presence of AQP9 in the brain is now debated after a recent publication claiming that AQP9 is not expressed in the brain.2 Based on our results,3 we have evidence of the presence of AQP9 in the brain and we further hypothesize that AQP9 plays a functional role in brain energy metabolism. Methods: The presence of AQP9 in brain of OF1 mice was studied by RT-PCR and immunohistochemistry. To address the role of AQP9 in brain, we used commercial siRNA against AQP9 to knockdown its expression in 2 cultures of astrocytes from two distinct sources (from differentiated stem cells4 and primary astrocyte cultures). After assessment of the decrease of AQP9, glycerol uptake was measured using [H3]-glycerol. Then, modifications of the astrocytic energy metabolism was evaluated by measurement of glucose consumption, lactate release5 and evaluation of the mitochondrial activity by MTT staining. Results: AQP9 is expressed in astrocytes of OF1 mouse brain (mRNA and protein levels). We also showed that AQP9 mRNA and protein are present in cultured astrocytes. Four days after AQP9 siRNA application, the level of expression is significantly decreased by 76% compared to control. Astrocytes with AQP9 knockdown exhibit a 23% decrease of glycerol uptake, showing that AQP9 is a glycerol channel in cultured astrocytes. In parallel, astrocytes with AQP9 knockdown have a 155% increase of their glucose consumption without modifications of lactate release. Moreover, considering the observed glucose consumption increase and the absence of proliferation induction, the significant MTT activity increase (113%) suggests an increase of oxidative metabolism in astrocytes with AQP9 knockdown. Discussion: The involvement of AQP9 in astrocyte energy metabolism adds a new function for this channel in the brain. The determination of the role of AQP9 in astrocytes provides a new perspective on the controversial expression of AQP9 in brain. We also suggest that AQP9 may have a complementary role to monocarboxylate transporters in the regulation of brain energy metabolism.

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RESUME : Les aquaporines (AQPs) sont des protéines membranaires perméables à l'eau (aquaporines strictes) et, pour certaines d'entre elles, également au glycérol (aquaglycéroporines). Ces protéines sont présentes dans les bactéries, les plantes et les différents organes des mammifères. Dans le cerveau, la moindre augmentation de volume hydrique peut avoir de graves conséquences sur son fonctionnement, d'où l'importance de la régulation de l'homéostasie de l'eau grâce aux AQPs. L'AQP4, une aquaporine stricte, est présente dans les astrocytes et est impliquée dans la formation et la résorption des oedèmes cérébraux. En revanche, l'AQP9 est une aquaglycéroporine, qui est localisée non seulement dans les astrocytes mais également dans les neurones catécholaminergiques. Bien que la distribution de l'AQP4 dans le cerveau soit clairement établie, la présence de l'AQP9 est toujours une donnée controversée et son rôle fonctionnel dans le système nerveux central n'est pas connu. Par ailleurs, aucune donnée n'existe sur l'expression des AQP4 et 9 lors de la différenciation de cellules souches neurales foetales (CSNf) en astrocytes ou en neurones catécholaminergiques. Dans la première partie de ce travail, un protocole a été mis au point permettant de différencier des CSNf de souris en astrocytes et neurones, dont des neurones catécholaminergiques. La caractérisation des cultures de CSNf et des cultures mixtes par immunofluorescence a permis de montrer que l'immunomarquage AQP9 est présent dans les CSNf et est conservé lors de leur différenciation en astrocytes ou en neurones catécholaminergiques. Les résultats obtenus ont mis en évidence une très bonne corrélation entre l'expression de la TH (tyrosine hydroxylase: enzyme limitante de la synthèse des catécholamines) et celle de l'AQP9 lors de la différenciation des CSNf en neurones catécholaminergiques. Par contre, l'immunomarquage AQP4 n'est pas présent dans les CSNf alors qu'il est observé dans les astrocytes. De plus, aucun immunomarquage AQP4 ou AQP9 n'a été observé dans les neurones NIAP2-positifs. Dans la deuxième partie de ce travail, l'expression des AQP4 et 9 a été quantifiée dans les CSNf ainsi que dans trois populations d'astrocytes présentant des propriétés métaboliques différentes. Ces trois populations astrocytaires sont issues de la différenciation des CSNf par le CNTF, le LIF ou le sérum de veau foetal. Les analyses par RTPCR quantitative et western blot ont montré une augmentation de l'expression de l'AQP9 et de l'AQP4 corrélée à l'acquisition de propriétés métaboliques spécifiques des astrocytes matures. Dans la dernière partie, la technique d'ARN interférents a permis d'étudier le rôle fonctionnel de l'AQP9 dans le modèle de culture pure d'astrocytes différenciés par le sérum. L'inhibition de l'expression d'AQP9 entraîne une diminution de la perméabilité au glycérol et une augmentation de l'utilisation de glucose, corrélée à une stimulation du métabolisme oxydatif astrocytaire. En revanche, 1a baisse d'expression d'AQP9 n'a aucun effet sur la glycolyse anaérobie ni sur la libération du lactate. En conclusion, dans ce modèle in vitro, seule l'AQP9 est exprimée dans les CSNf et les neurones catécholaminergiques alors que dans Ies astrocytes, à la fois l'AQP9 et l'AQP4 sont exprimées. Cette distribution est identique à celle observée in vivo et confirme la localisation spécifique de l'AQP9 dans les neurones catécholaminergiques. De plus, ces résultats montrent, pour la première fois, l'implication de l'AQP9 dans la perméabilité des astrocytes au glycérol et son implication dans le métabolisme énergétique astrocytaire. ABSTACT : Aquaporins (AQPs) are membrane proteins permeable to water (orthodoxes aquaporins) and some of them are also permeable to glycerol (aquaglyceroporins). These proteins are widely expressed in bacteria, plants and mammals. AQP water homeostasis regulation in brain is of primary importance as the brain volume cannot increase. AQP4, an orthodoxe aquaporin, is present in astrocytes and seems to be involved in edema formation and resorption. On the other hand, AQP9 is an aquaglyceroporin which is localised not only in astrocytes but also in catecholaminergic neurons. Although AQP4 distribution in brain is clearly established, the presence of AQP9 is still a discussed data and its functional role in the central nervous system is unknown. In addition, no data exists on AQP4 or AQP9 expression during fetal neural stem cells (fNSC) differentiation into astrocytes or catecholaminergic neurons. In the first part of this work, a protocol was developed to differentiate mouse fNSC into astrocytes and neurons, with the aim to obtain catecholaminergic neurons. By immunefluorescence, we have shown that AQP9 is expressed in fNSC cultures and also in astrocytes and catecholaminergic neurons in mixt cultures. The results obtained highlighted a very good correlation between TH expression (tyrosin hydroxylase being a limiting enzyme of catecholamines synthesis) and AQP9 in fNSC and all along their differentiation into catecholaminergic neurons. On the other hand, AQP4 immunolabelling is not observed in fNSC whereas it is in astrocytes. Moreover, neitheir AQP4, nor AQP9 immunoreactivity was observed in MAP2-positive neurons. In the second part of this work, AQP4 and AQP9 expression was quantified in fNSC and in three populations of astrocytes presenting different metabolic properties. These three astrocyte populations result from fNSC differentiation by addition of CNTF, LIF or fetal calf serum. Quantitative RT-PCR and western blot analyses have shown an increase in both AQP4 and AQP9 expression, correlated with the acquisition of specific metabolic properties of mature astrocytes. In the last part, siRNA were used to study the functional role of AQP9 in the pure astrocyte culture model differentiated by addition of fetal calf serum. Inhibition of AQP9 expression leads to a decrease of glycerol uptake and to an increase of glucose uptake, correlated with a stimulation of the astrocyte oxydative metabolism. On the other hand, inhibition of AQP9 expression does not have any effect on anaerobic glycolysis nor on lactate release. In conclusion, in this in vitro model, only AQP9 is expressed in fNSC and in catecholaminergic neurons whereas in astrocytes, both AQP9 and AQP4 are expressed. This distribution is identical to that observed in vivo and confirms the specific AQP9 localization in catecholaminergic neurons. IVloreover, these results show, for the first time, that AQP9 is implicated in glycerol uptake and in astrocyte energetic metabolism. Résumé large public : Les aquaporines, des protéines localisées dans les membranes cellulaires sont, comme leur nom l'indique, des canaux à eau. Pendant longtemps, il a été considéré que l'eau diffusait librement dans et à travers les cellules; la caractérisation des AQPs a révolutionné la vision des scientifiques concernant les mouvements d'eau entre les différents compartiments infra et extracellulaires, et a d'ailleurs valu le Prix Nobel à Peter Agre en 1992. Certaines AQPs, dites "strictes", laissent passer uniquement l'eau et participent au contrôle du volume hydrique. Ce contrôle est particulièrement important pour le bon fonctionnement du cerveau en raison de la présence de la boîte crânienne qui limite les variations de volume. D'autres AQPs, les aquaglycéroporines, sont perméables non seulement à l'eau mais également à d'autres molécules comme le glycérol. Elles facilitent, par exemple, la sortie du glycérol des cellules graisseuses et sa capture par les cellules du foie afin de produire du glucose en période de jeûne. Le cerveau est principalement composé de deux types de cellules: les neurones et les cellules gliales, majoritairement des astrocytes. L'AQP4, une AQP stricte, est présente dans les astrocytes et joue un rôle dans la formation et la résorption des oedèmes cérébraux. L'AQP9, une aquaglycéroporine, est également présente dans les astrocytes et dans une population spécifique de neurones, les neurones catécholaminergiques, touchés dans la maladie de Parkinson. A ce jour, la présence de l'AQP9 dans le cerveau est une donnée controversée et son rôle fonctionnel est inconnu. Ce travail de thèse a permis de montrer que l'AQP9 est bien présente d'une part dans les cellules souches neurales foetales et d'autre ,part dans les astrocytes et neurones catécholaminergiques issus de leur différenciation. De plus, ces expériences ont mis en évidence un rôle de l'AQP9 dans l'entrée du glycérol dans les astrocytes, ce qui pourrait être bénéfique dans des conditions d'ischémie. Enfin, les .résultats de cette étude suggèrent également un rôle de l'AQP9 dans le métabolisme énergétique des astrocytes. L'ensemble de ces travaux démontre le rôle important de l'AQP9 dans le cerveau et ouvre de nouvelles perspectives quant aux rôles des AQPs dans des situations pathologiques telles que l'ischémie cérébrale ou encore la maladie de Parkinson.