940 resultados para glucose transporter protein 1


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RESUME Ce mémoire de thèse traite de l'étude de la « scaffold »protéine ou protéine «échafaud», « Islet-Brain1/ JNK Interacting Protein 1 » (IB1/JIP-1) dans la vessie et la prostate, deux organes importants de l'appareil uro-genital. Cette protéine, mise en évidence dans notre laboratoire à la fin des année 90, a été reconnue pour réguler la voie de signalisation des « Mitogen-Activated Protein Kinases » (MAPKs), et en particulier de la MAPK appelée c-Jun N-terminal Kinase (JNK). Le réseau de voie de signalisation permet aux cellules de percevoir les changements dans le milieu extracellulaire et de permettre une réponse appropriée à ces différents stimuli. La connaissance des voies de signalisation a permis de mettre en évidence leur rôle crucial tant dans l'homéostase des tissus sains que dans des processus pathologiques comme l'oncogenèse. Parmi une vingtaine de voie de signalisation, la voie de signalisation des «MAPKinases » est une des plus importantes et a été montrée pour participer à diverses fonctions cellulaires telles que la différentiation, la motilité, la division et la mort cellulaire. La voie de signalisation des « MAPKinases » est typiquement constituée d'un module de trois kinases qui s'activent séquentiellement par phosphorylation. On note la présence d'une MAPK, d'un activateur de MAPK et d'un activateur de l'activateur de MAPK. Une fois la MAPK activée, elle permettra la régulation de différentes cibles dont certain facteur de transcription. Chez les mammifères, il existe 3 grands groupes de MAPKs : the extracellular signal-regulated kinase 1 and 2 (ERK 1/2) cascade, qui régule préférentiellement la croissance et la différentiation cellulaire, ainsi que les cascades JNK et p38 qui régulent préférentiellement la réponse à différents stress cellulaires telle que l'inflammation ou l'apoptose. JNK est activé par différents stress cellulaire telle que les cytokines inflammatoires. JNK est également requis au cours du développement embryonnaire et contribue à la mort (apoptose) ou à la prolifération cellulaire. Plusieurs études ont mis en évidence le rôle de JNK durant le processus tumoral, sans que son rôle soit clairement identifié. JNK pourrait avoir des fonctions différentes durant l'initiation puis de la progression tumorale. Chez les mammifères, les voies de signalisation intracellulaires forment un réseau complexe et elles interagissent entre elles, ce qui permet aux cellules une réponse adéquate aux multitudes de stimuli existants dans les organismes pluricellulaires. Parmi plusieurs mécanismes de régulation, les protéines dites « scaffold » ou «échafaud » jouent un rôle crucial dans l'homéostase de la voie de signalisation des «MAPKinase ». L'introduction revoit brièvement ces différents aspects, de la voie de signalisation des «MAPKinase et des connaissance sur IB1/JIP-1. Les premières études effectuées sur IB1/JIP-1 ont montré une expression relativement spécifique de cette protéine dans certains types de neurones ainsi que dans la cellule beta-sécrétrice d'insuline. IB1/JIP-1 régule la voie de signalisation JNK par interaction avec les différents composants du module, modifiant ainsi le spectre de substrats activés par JNK. La fonction précise de IB1/JIP-1 n'était pas encore élucidée, mais plusieurs travaux mettaient en lumière un rôle dans la régulation, et la sous-location cellulaire des composants de la voie de signalisation JNK, ainsi que dans la survie cellulaire à certain stress. Cette expression relativement spécifique est intrigante car elle suggère que sa présence serait nécessaire à une régulation spécifique de la MAPKinase JNK ou à certaines autres fonctions cellulaires également spécifiques de certains tissus. Le premier but de ce travail a consisté à mettre en évidence l'expression de IB1/JIP-1 dans l'appareil uro-génital et plus particulièrement dans la vessie et la prostate. Nos résultats ont montré que IB1/JIP-1 est spécifiquement exprimé au niveau de l'urothélium vésical, mais pas dans le muscle lisse. Il en est de même au niveau de la prostate où IB1/JIP-1 est exprimé spécifiquement au niveau de l'épithélium sécrétoire et absent au niveau du stroma fibro-musculaire. La vessie et la prostate sont des organes ou l'activité JNK pourrait être crucial tant dans l' homeostase tissulaire que dans le développement de pathologies bénignes ou malignes. La vessie et la prostate sont le siège fréquent de tumeur. La base pour le développement du cancer est complexe et implique plusieurs anomalies génétiques. Ce processus complexe lié au développement tumoral est encore loin d`être complètement élucidé, raison pour laquelle il est crucial de poursuivre l'étude des différents gènes pouvant être impliqué dans ces processus ou pouvant être utilisé comme outil thérapeutique. Dans l'urothelium de la vessie, la fonction de la MAPK JNK n'a été que très peu étudiée. Il existe quelques études, in vitro, suggérant une implication possible de cette voie de signalisation dans des processus telle que le développement ou la progression tumorale. Le chapitre 1 décrit une étude in vivo dans la vessie un modèle de stress mécanique, connu pour activer les MAPKinase. La dilatation vésicale, due à une obstruction urétrale, a mis en évidence une diminution de l'expression de IB1/JIP-1 ainsi qu'une activation de la MAPKinase JNK. Dans ce modèle, la régulation de IB1/JIP-1, par l'intermédiaire d'un vecteur viral, a permis de démontrer que IB1/JIP-1 régulait l'activité de JNK dans ce tissu. Pour poursuivre l'étude de cette fonction d' IB1/JIP-1 dans l'urothélium, nous avons investigué l'activité JNK dans des souris génétiquement modifiées et porteuse d'une délétion de 1 des 2 allèles du gène codant pour IB1/JIP-1, avec un contenu en IB1/JIP-1 diminué de moitié. L'activation de JNK est également augmentée dans l'urothelium au repos de ces souris, ce qui confirme la fonction régulatrice de JNK par IB1/JIP-1. Ces résultats ont permis de mettre en évidence un rôle critique de celle-ci dans l'homéostase de I`urothelium et suggère une nouvelle cible pour réguler la voie de signalisation dans ce tissu. En outre, la modulation des niveaux d'expression d'IB1/JIP-1 dans la vessie, in vivo, par l'intermédiaire de vecteurs viraux s'est révélée réalisable et indique un moyen élégant pour développer une thérapie génique dans cet organe. Un autre élément de ce travail de thèse, révélée au chapitre 2, a été d'étudier la régulation dans la vessie de rat de la communication intercellulaire de type « GAP ». Les cellules adjacentes partagent des ions, messagers secondaires et des petits métabolites par l'intermédiaire de canaux intercellulaire qui forment les jonctions de type « GAP ». Ce type de communications intercellulaire permet une activité cellulaire coordonnée, une caractéristique importante pour l'homéostase des organismes multicellulaire. Ce type de communication intercellulaire est formé de 2 demi-canaux appelés connexons. Chaque connexon est formé de six protéines appelées connexins (Cx). Il existe environ vingt connexines différentes nommées par leur poids moléculaire respectif. Les jonctions de type canaux "GAP" permettent aux cellules de communiquer avec les cellules voisines au quelles elles sont mécaniquement ou électriquement couplées. La vessie peut être particulièrement dépendante de la communication intercellulaire par les canaux « Gap » qui permettrait de coordonner la réponse de la musculature ainsi que de l'urothélium à l'augmentation de la pression transmurale du à l'accumulation d'urine, situation fréquemment observée dans le cadre de l'hyperplasie bénigne de la prostate. Dans la vessie de rat, la connexine26 est exprimée uniquement dans l'urothelium. La Cx26, a été montrée pour être un possible « tumor suppressor gene » dans le cancer de vessie. Une augmentation de la Cx26 ainsi que du couplage des cellules urothéliales a été démontré dans notre modèle de stress mécanique sur la vessie de rat et est dépendante de 2 éléments de réponses connues pour interagir avec AP-1. La régulation de IB1/JIP-1 a permis de montrer que celle-ci régulait l'activité JNK, ainsi que l'activité du facteur de transcription AP-1, composé de c-Jun lui-même cible de JNK. Cette réduction de l'activité de AP-1 est associée à une diminution de l'expression du transcipt de la Cx26. En résumé, la Cx26 pourrait être régulée par le complexe AP-1 lui-même dépendant du contenu en IB1/JIP-1. Dans le chapitre 3, l'étude de IB1/J1P-1 s'est portée sur la prostate. Cet organe, siège fréquent de pathologie telle que le cancer ou l'hyperplasie bénigne de la prostate, exprime IB1/JIP-1 au niveau de son épithélium sécrétoire. Cette expression est maintenue dans une lignée cellulaire humaine largement étudiée est reconnue comme un modèle adéquat de cellules tumorales de type androgène-sensible. IB1/JIP-1 a été investigué dans un modèle in vitro d'apoptose en réponse à un agent appelé N-(4-hydroxyphenyl)retinamide (4-HPR) qui induit une activation de la MAPK JNK ainsi que également un diminution du contenu en IB1/JIP-1. La surexpression de IB1/JIP-1 en utilisant à nouveau des virus comme vecteur a démontré que IB1/JIP-1 était capable de réguler l'activité de JNK ainsi que les taux d'apoptose. Dans le cancer de la prostate, certains travaux ont montré que la différentiation neuroendocrine des cellules tumorales est associée à la progression tumorale et à la perte de sensibilité aux androgènes. Ce travail a permis de dévoiler l'augmentation d'expression de IB1/JIP-1 dans un modèle de neurodifferentiation des cellules d'une lignée prostatique humaine (LNCaP). Les mécanismes qui permettent une expression spécifique de IB1/JIP-1 ont été partiellement investiguée dans notre laboratoire. Son promoteur humain contient un « Neuron Restricive Silencer Element » (NRSE) connu pour se lier a répresseur transcriptionel appelé « RE-1 Silencer Transcription Factor » ou « Neuron Restrictive Silencer Factor » (REST/NRSF). NRSF/REST est capable de réprimer l'expression de gènes neuronaux en dehors du système neuronal. Il prend part à la différentiation terminale des gènes neuronaux. Dans le chapitre 3, on observe que l'activité de REST/NRSF est diminuée dans les cellules LNCaP qui se transdifferencient de manière neuroendocrine, et que REST/NRSF est capable de moduler l'expression de ces gènes cibles dans ce type cellulaire. Ces travaux laissent suggérer que NRSF/REST participe à l'acquisition du phénotype neuroendocrinien et pourrait être une cible pour réguler ce phénomène. En conclusion, ce travail de thèse présente l'expression de IB1/JIP-1 dans 2 organes de l'appareil uro-génital ; la vessie et la prostate. La fonction de IB1/JIP-1 a été étudiée in vivo dans la vessie de rat, ce qui a mis en évidence sa fonction régulatrice de l'activité de la MAPKinase JNK, et de l'activité du facteur de transcription AP-1 ; ainsi que sa possible implication régulatrice de gène cible tel que la Connexin 26 (Cx26). AP-1 et la Cx26 pourraient jouer un rôle dans le processus oncologique, tant dans le control de l'invasion cellulaire ou le control de la croissance cellulaire. Dans la prostate, IB1/JIP-1 régule également l'activité JNK; crucial dans la transmission de certains stimulis pro-apoptotiques. Dans un modèle de transdifférenciation neuroendocrinienne, phénotype possiblement lié au caractère agressif du cancer de la prostate, l'expression de IB1/JIP-1 est augmenté, suggérant soit un rôle possible dans le développement du phénotype neuronal ou une implication dans une fonction anti-apoptotique. Ce travail a donc permis d'élargir nos connaissances sur la régulation et le control de la voie de signalisation des MAPKinases par IB1/JIP-1, qui pourrait avoir encore d'autres fonctions dans ces tissus.

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In insulin-secreting cells, cytokines activate the c-Jun N-terminal kinase (JNK), which contributes to a cell signaling towards apoptosis. The JNK activation requires the presence of the murine scaffold protein JNK-interacting protein 1 (JIP-1) or human Islet-brain 1(IB1), which organizes MLK3, MKK7 and JNK for proper signaling specificity. Here, we used adenovirus-mediated gene transfer to modulate IB1/JIP-1 cellular content in order to investigate the contribution of IB1/JIP-1 to beta-cell survival. Exposure of the insulin-producing cell line INS-1 or isolated rat pancreatic islets to cytokines (interferon-gamma, tumor necrosis factor-alpha and interleukin-1beta) induced a marked reduction of IB1/JIP-1 content and a concomitant increase in JNK activity and apoptosis rate. This JNK-induced pro-apoptotic program was prevented in INS-1 cells by overproducing IB1/JIP-1 and this effect was associated with inhibition of caspase-3 cleavage. Conversely, reducing IB1/JIP-1 content in INS-1 cells and isolated pancreatic islets induced a robust increase in basal and cytokine-stimulated apoptosis. In heterozygous mice carrying a selective disruption of the IB1/JIP-1 gene, the reduction in IB1/JIP-1 content in happloinsufficient isolated pancreatic islets was associated with an increased JNK activity and basal apoptosis. These data demonstrate that modulation of the IB1-JIP-1 content in beta cells is a crucial regulator of JNK signaling pathway and of cytokine-induced apoptosis.

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The pancreatic beta cell presents functional abnormalities in the early stages of development of non-insulin dependent diabetes mellitus (NIDDM). The disappearance of the first phase of insulin secretion induced by a glucose load is a early marker of NIDDM. This abnormality could be secondary to the low expression of the pancreatic glucose transporter GLUT2. Together with the glucokinase enzyme, GLUT2 is responsible for proper beta cell sensing of the extracellular glucose levels. In NIDDM, the GLUT2 mRNA levels are low, a fact which suggests a transcriptional defect of the GLUT2 gene. The first phase of glucose-induced insulin secretion by the beta pancreatic cell can be partly restored by the administration of a peptide discovered by a molecular approach, the glucagon-like peptide 1 (GLP-1). The gene encoding for the glucagon is expressed in a cell-specific manner in the A cells of the pancreatic islet and the L cells of the intestinal tract. The maturation process of the propeptide encoded by the glucagon gene is different in the two cells: the glucagon is the main hormone produced by the A cells whereas the glucagon-like peptide 1 (GLP-1) is the major peptide synthesized by the L cells of the intestine. GLP-1 is an incretin hormone and is at present the most potent insulinotropic peptide. The first results of the administration of GLP-1 to normal volunteers and diabetic patients are promising and may be a new therapeutic approach to treating diabetic patients.

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OBJECTIVE: To investigate the influence of obesity on the regulation of myocardial glucose metabolism following protein kinase C (PKC) activation in obese (fa/fa) and lean (Fa/?) Zucker rats. DESIGN: Isolated hearts obtained from 17-week-old lean and obese Zucker rats were perfused with 200 nM phorbol 12-myristate 13-acetate (PMA) for different time periods prior to the evaluation of PKC and GLUT-4 translocation. For metabolic studies isolated hearts from 48 h starved Zucker rats were perfused with an erythrocytes-enriched buffer containing increased concentrations (10-100 nM) of PMA. MEASUREMENTS: Immunodetectable PKC isozymes and GLUT-4 were determined by Western blots. Glucose oxidation and glycolysis were evaluated by measuring the myocardial release of 14CO2 and 3H2O from [U-14C]glucose and [5-3H]glucose, respectively. RESULTS: PMA (200 nM) induced maximal translocation of ventricular PKCalpha from the cytosol to the membranes within 10 min. This translocation was 2-fold lower in the heart from obese rats when compared to lean rats. PMA also induced a significant translocation of ventricular GLUT-4 from the microsomal to the sarcolemmal fraction within 60 min in lean but not in obese rats. Rates of basal cardiac glucose oxidation and glycolysis in obese rats were approximately 2-fold lower than those of lean rats. Perfusion with increasing concentrations of PMA (10-100 nM) led to a significant decrease of cardiac glucose oxidation in lean but not in obese rats. CONCLUSION: Our results show that in the heart of the genetically obese Zucker rat, the impairment in PKCalpha activation is in line with a diminished activation of GLUT-4 as well as with the lack of PMA effect on glucose oxidation.

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We have taken advantage of the natural milieu of matched pair of azole sensitive (AS) and azole resistant (AR) clinical isolates of Candida glabrata for expressing its major ABC multidrug transporter, CgCdr1p for structure and functional analysis. This was accomplished by tagging a green fluorescent protein (GFP) downstream of ORF of CgCDR1 and integrating the resultant fusion protein at its native chromosomal locus in AS and AR backgrounds. The characterization confirmed that in comparison to AS isolate, CgCdr1p-GFP was over-expressed in AR isolates due to its hyperactive native promoter and the GFP tag did not affect its functionality in either construct. We observed that in addition to Rhodamine 6 G (R6G) and Fluconazole (FLC), a recently identified fluorescent substrate of multidrug transporters Nile Red (NR) could also be expelled by CgCdr1p. Competition assays with these substrates revealed the presence of overlapping multiple drug binding sites in CgCdr1p. Point mutations employing site directed mutagenesis confirmed that the role played by unique amino acid residues critical to ATP catalysis and localization of ABC drug transporter proteins are well conserved in C. glabrata as in other yeasts. This study demonstrates a first in vivo novel system where over-expression of GFP tagged MDR transporter protein can be driven by its own hyperactive promoter of AR isolates. Taken together, this in vivo system can be exploited for the structure and functional analysis of CgCdr1p and similar proteins wherein the artefactual concerns encountered in using heterologous systems are totally excluded.

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The signaling pathway that regulates glucose-stimulated insulin secretion depends on glucose metabolism, which is itself controlled by glucokinase. In a recent issue of Cell, show that altering N-glycosylation of the GLUT2 glucose transporter prevents its anchoring and retention at the cell surface; this impairs glucose uptake and insulin secretion.

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While chronic hypoglycaemia has been reported to increase unidirectional glucose transport across the blood-brain barrier (BBB) and to increase GLUT1 expression at the endothelium, the effect on steady-state brain d-glucose and brain glycogen content is currently unknown. Brain glucose and glycogen concentrations were directly measured in vivo using localized 13C magnetic resonance spectroscopy (MRS) following 12-14 days of hypoglycaemia. Brain glucose content was significantly increased by 48%, which is consistent with an increase in the maximal glucose transport rate, Tmax, by 58% compared with the sham-treated animals. The localized 13C NMR measurements of brain glucose were directly validated by comparison with biochemically determined brain glucose content after rapid focused microwave fixation (1.4 s at 4 kW). Both in vivo MRS and biochemical measurements implied that brain glycogen content was not affected by chronic hypoglycaemia, consistent with brain glucose being a major factor controlling brain glycogen content. We conclude that the increased glucose transporter expression in chronic hypoglycaemia leads to increased brain glucose content at a given level of glycaemia. Such increased brain glucose concentrations can result in a lowered glycaemic threshold of counter-regulation observed in chronic hypoglycaemia.

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The c-Jun N-terminal kinase (JNK) is critical for cell survival, differentiation, apoptosis and tumorigenesis. This signalling pathway requires the presence of the scaffold protein Islet-Brain1/c-Jun N-terminal kinase interacting protein-1 (IB1/JIP-1). Immunolabeling and in situ hybridisation of bladder sections showed that IB1/JIP-1 is expressed in urothelial cells. The functional role of IB1/JIP-1 in the urothelium was therefore studied in vivo in a model of complete rat bladder outlet obstruction. This parietal stress, which is due to urine retention, reduced the content of IB1/JIP-1 in urothelial cells and consequently induced a drastic increase in JNK activity and AP-1 binding activity. Using a viral gene transfer approach, the stress-induced activation of JNK was prevented by overexpressing IB1/JIP-1. Conversely, the JNK activity was increased in urothelial cells where the IB1/JIP-1 content was experimentally reduced using an antisense RNA strategy. Furthermore, JNK activation was found to be increased in non-stressed urothelial cells of heterozygous mice carrying a selective disruption of the IB1/JIP-1 gene. These data established that mechanical stress in urothelial cells in vivo induces a robust JNK activation as a consequence of regulated expression of the scaffold protein IB1/JIP-1. This result highlights a critical role for that scaffold protein in the homeostasis of the urothelium and unravels a new potential target to regulate the JNK pathway in this tissue.

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Proper function of the wall of bladder requires gap junctional communication for coordinating the responses of smooth muscle (SMC) and urothelial cells exposed to urine pressure. In the rat bladder, Cx43 is expressed by SMC and urothelial cells, whereas Cx26 expression is restricted to the epithelium. We used a model of bladder outlet obstruction, in which a ligature is placed around the urethra to increase voiding pressure. Increased fluid pressure was associated with increased Cx43 and Cx26 mRNA expression and with the activation of a signaling cascade including the transcription factor c-Jun, which is a component of the AP-1 complex. The signaling pathway of the c-Jun NH2 terminal kinase (JNK) requires the presence of the scaffold protein Islet-Brain1/c-Jun amino-terminal kinase Interacting Protein-1 (IB1/JIP-1). Under stress conditions resulting from urine retention, we have found a reduced content of IB1/JIP-1 in urothelial cells, which in turn induced a drastic increase of JNK and AP-1 binding activities. The stress-induced activation of JNK was prevented by overexpressing IB1/JIP-1, using a viral gene transfer approach, a condition which also resulted in a decrease in Cx26 mRNA. The data show that: 1) mechanical stress of urothelial cells activates in vivo JNK, as a consequence of a regulated expression of IB1/JIP-1 and 2) that urothelial Cx26 may be directly regulated by the AP-1 complex.

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During the last 2 years, several novel genes that encode glucose transporter-like proteins have been identified and characterized. Because of their sequence similarity with GLUT1, these genes appear to belong to the family of solute carriers 2A (SLC2A, protein symbol GLUT). Sequence comparisons of all 13 family members allow the definition of characteristic sugar/polyol transporter signatures: (1) the presence of 12 membrane-spanning helices, (2) seven conserved glycine residues in the helices, (3) several basic and acidic residues at the intracellular surface of the proteins, (4) two conserved tryptophan residues, and (5) two conserved tyrosine residues. On the basis of sequence similarities and characteristic elements, the extended GLUT family can be divided into three subfamilies, namely class I (the previously known glucose transporters GLUT1-4), class II (the previously known fructose transporter GLUT5, the GLUT7, GLUT9 and GLUT11), and class III (GLUT6, 8, 10, 12, and the myo-inositol transporter HMIT1). Functional characteristics have been reported for some of the novel GLUTs. Like GLUT1-4, they exhibit a tissue/cell-specific expression (GLUT6, leukocytes, brain; GLUT8, testis, blastocysts, brain, muscle, adipocytes; GLUT9, liver, kidney; GLUT10, liver, pancreas; GLUT11, heart, skeletal muscle). GLUT6 and GLUT8 appear to be regulated by sub-cellular redistribution, because they are targeted to intra-cellular compartments by dileucine motifs in a dynamin dependent manner. Sugar transport has been reported for GLUT6, 8, and 11; HMIT1 has been shown to be a H+/myo-inositol co-transporter. Thus, the members of the extended GLUT family exhibit a surprisingly diverse substrate specificity, and the definition of sequence elements determining this substrate specificity will require a full functional characterization of all members.

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GLUT2-/- mice reexpressing GLUT1 or GLUT2 in their beta-cells (RIPGLUT1 x GLUT2-/- or RIPGLUT2 x GLUT2-/- mice) have nearly normal glucose-stimulated insulin secretion but show high glucagonemia in the fed state. Because this suggested impaired control of glucagon secretion, we set out to directly evaluate the control of glucagonemia by variations in blood glucose concentrations. Using fasted RIPGLUT1 x GLUT2-/- mice, we showed that glucagonemia was no longer increased by hypoglycemic (2.5 mmol/l glucose) clamps or suppressed by hyperglycemic (10 and 20 mmol/l glucose) clamps. However, an increase in plasma glucagon levels was detected when glycemia was decreased to < or =1 mmol/l, indicating preserved glucagon secretory ability, but of reduced sensitivity to glucopenia. To evaluate whether the high-fed glucagonemia could be due to an abnormally increased tone of the autonomic nervous system, fed mutant mice were injected with the ganglionic blockers hexamethonium and chlorisondamine. Both drugs lead to a rapid return of glucagonemia to the levels found in control fed mice. We conclude that 1) in the absence of GLUT2, there is an impaired control of glucagon secretion by low or high glucose; 2) this impaired glucagon secretory activity cannot be due to absence of GLUT2 from alpha-cells because these cells do not normally express this transporter; 3) this dysregulation may be due to inactivation of GLUT2-dependent glucose sensors located outside the endocrine pancreas and controlling glucagon secretion; and 4) because fed hyperglucagonemia is rapidly reversed by ganglionic blockers, this suggests that in the absence of GLUT2, there is an increased activity of the autonomic nervous system stimulating glucagon secretion during the fed state.

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The ability to take up and metabolize glucose at the cellular level is a property shared by the vast majority of existing organisms. Most mammalian cells import glucose by a process of facilitative diffusion mediated by members of the Glut (SLC2A) family of membrane transport proteins. Fourteen Glut proteins are expressed in the human and they include transporters for substrates other than glucose, including fructose, myoinositol, and urate. The primary physiological substrates for at least half of the 14 Glut proteins are either uncertain or unknown. The well-established glucose transporter isoforms, Gluts 1-4, are known to have distinct regulatory and/or kinetic properties that reflect their specific roles in cellular and whole body glucose homeostasis. Separate review articles on many of the Glut proteins have recently appeared in this journal. Here, we provide a very brief summary of the known properties of the 14 Glut proteins and suggest some avenues of future investigation in this area.

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The major processes discussed below are protein turnover (degradation and synthesis), degradation into urea, or conversion into glucose (gluconeogenesis, Figure 1). Daily protein turnover is a dynamic process characterized by a double flux of amino acids: the amino acids released by endogenous (body) protein breakdown can be reutilized and reconverted to protein synthesis, with very little loss. Daily rates of protein turnover in humans (300 to 400 g per day) are largely in excess of the level of protein intake (50 to 80 g per day). A fast growing rate, as in premature babies or in children recovering from malnutrition, leads to a high protein turnover rate and a high protein and energy requirement. Protein metabolism (synthesis and breakdown) is an energy-requiring process, dependent upon endogenous ATP supply. The contribution made by whole-body protein turnover to the resting metabolic rate is important: it represents about 20 % in adults and more in growing children. Metabolism of proteins cannot be disconnected from that of energy since energy balance influences net protein utilization, and since protein intake has an important effect on postprandial thermogenesis - more important than that of fats or carbohydrates. The metabolic need for amino acids is essentially to maintain stores of endogenous tissue proteins within an appropriate range, allowing protein homeostasis to be maintained. Thanks to a dynamic, free amino acid pool, this demand for amino acids can be continuously supplied. The size of the free amino acid pool remains limited and is regulated within narrow limits. The supply of amino acids to cover physiological needs can be derived from 3 sources: 1. Exogenous proteins that release amino acids after digestion and absorption 2. Tissue protein breakdown during protein turnover 3. De novo synthesis, including amino acids (as well as ammonia) derived from the process of urea salvage, following hydrolysis and microflora metabolism in the hind gut. When protein intake surpasses the physiological needs of amino acids, the excess amino acids are disposed of by three major processes: 1. Increased oxidation, with terminal end products such as CO₂ and ammonia 2. Enhanced ureagenesis i. e. synthesis of urea linked to protein oxidation eliminates the nitrogen radical 3. Gluconeogenesis, i. e. de novo synthesis of glucose. Most of the amino groups of the excess amino acids are converted into urea through the urea cycle, whereas their carbon skeletons are transformed into other intermediates, mostly glucose. This is one of the mechanisms, essential for life, developed by the body to maintain blood glucose within a narrow range, (i. e. glucose homeostasis). It includes the process of gluconeogenesis, i. e. de novo synthesis of glucose from non-glycogenic precursors; in particular certain specific amino acids (for example, alanine), as well as glycerol (derived from fat breakdown) and lactate (derived from muscles). The gluconeogenetic pathway progressively takes over when the supply of glucose from exogenous or endogenous sources (glycogenolysis) becomes insufficient. This process becomes vital during periods of metabolic stress, such as starvation.

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The physiological significance of the presence of GLUT2 at the food-facing pole of intestinal cells is addressed by a study of fructose absorption in GLUT2-null and control mice submitted to different sugar diets. Confocal microscopy localization, protein and mRNA abundance, as well as tissue and membrane vesicle uptakes of fructose were assayed. GLUT2 was located in the basolateral membrane of mice fed a meal devoid of sugar or containing complex carbohydrates. In addition, the ingestion of a simple sugar meal promoted the massive recruitment of GLUT2 to the food-facing membrane. Fructose uptake in brush-border membrane vesicles from GLUT2-null mice was half that of wild-type mice and was similar to the cytochalasin B-insensitive component, i.e. GLUT5-mediated uptake. A 5 day consumption of sugar-rich diets increased fructose uptake fivefold in wild-type tissue rings when it only doubled in GLUT2-null tissue. GLUT5 was estimated to contribute to 100 % of total uptake in wild-type mice fed low-sugar diets, falling to 60 and 40 % with glucose and fructose diets respectively; the complement was ensured by GLUT2 activity. The results indicate that basal sugar uptake is mediated by the resident food-facing SGLT1 and GLUT5 transporters, whose mRNA abundances double in long-term dietary adaptation. We also observe that a large improvement of intestinal absorption is promoted by the transient recruitment of food-facing GLUT2, induced by the ingestion of a simple-sugar meal. Thus, GLUT2 and GLUT5 could exert complementary roles in adapting the absorption capacity of the intestine to occasional or repeated loads of dietary sugars.

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The urate transporter, GLUT9, is responsible for the basolateral transport of urate in the proximal tubule of human kidneys and in the placenta, playing a central role in uric acid homeostasis. GLUT9 shares the least homology with other members of the glucose transporter family, especially with the glucose transporting members GLUT1-4 and is the only member of the GLUT family to transport urate. The recently published high-resolution structure of XylE, a bacterial D-xylose transporting homologue, yields new insights into the structural foundation of this GLUT family of proteins. While this represents a huge milestone, it is unclear if human GLUT9 can benefit from this advancement through subsequent structural based targeting and mutagenesis. Little progress has been made toward understanding the mechanism of GLUT9 since its discovery in 2000. Before work can begin on resolving the mechanisms of urate transport we must determine methods to express, purify and analyze hGLUT9 using a model system adept in expressing human membrane proteins. Here, we describe the surface expression, purification and isolation of monomeric protein, and functional analysis of recombinant hGLUT9 using the Xenopus laevis oocyte system. In addition, we generated a new homology-based high-resolution model of hGLUT9 from the XylE crystal structure and utilized our purified protein to generate a low-resolution single particle reconstruction. Interestingly, we demonstrate that the functional protein extracted from the Xenopus system fits well with the homology-based model allowing us to generate the predicted urate-binding pocket and pave a path for subsequent mutagenesis and structure-function studies.