937 resultados para Glucose-transporter Isoforms


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Summary Prevalence of type 2 diabetes is increasing worldwide at alarming rates, probably secondarily to that of obesity. As type 2 diabetes is characterized by blood hyperglycemia, controlling glucose entry into tissues from the bloodstream is key to maintain glycemia within acceptable ranges. In this context, several glucose transporter isoforms have been cloned recently and some of them have appeared to play important regulatory roles. Better characterizing two of them (GLUT8 and GLUT9) was the purpose of my work. The first part of my work was focused on GLUT8, which is mainly expressed in the brain and is able to transport glucose with high affinity. GLUT8 is retained intracellularly at basal state depending on an N-terminal dileucine motif, thus implying that cell surface expression may be induced by extracellular triggers. In this regard, I was interested in better defining GLUT8 subcellular localization at basal state and in finding signals promoting its translocation, using an adenoviral vector expressing a myc epitope-tagged version of the transporter, thus allowing expression and detection of cell-surface GLUT8 in primary hippocampal neurons and PC 12 cells. This tool enabled me to found out that GLUT8 resides in a unique compartment different from lysosomes, endoplasmic reticulum, endosomes and the Golgi. In addition, absence of GLUT8 translocation following pharmacological activation of several signalling pathways suggests that GLUT8 does not ever translocate to the cell surface, but would rather fulfill its role in its unique intracellular compartment. The second part of my work was focused on GLUT9, which -contrarily to GLUT8 - is unable to transport glucose, but retains the ability to bind glucose-derived cross-linker molecules, thereby suggesting that it may be a glucose sensor rather than a true glucose transporter. The aim of the project was thus to define if GLUT9 triggers intracellular signals when activated. Therefore, adenoviral vectors expressing GLUTS were used to infect both ßpancreatic and liver-derived cell lines, as GLUTS is endogenously expressed in the liver. Comparison of gene expression between cells infected with the GLUTS-expressing adenovirus and cells infected with a GFP-expressing control adenovirus ended up in the identification of the transcription factor HNF4α as being upregulated in aGLUT9-dependent manner. Résumé La prévalence du diabète de type 2 augmente de façon alarmante dans le monde entier, probablement secondairement à celle de l'obésité. Le diabète de type 2 étant caractérisé par une glycémie sanguine élevée, l'entrée du glucose dans les tissus depuis la circulation sanguine constitue un point de contrôle important pour maintenir la glycémie à des valeurs acceptables. Dans ce contexte, plusieurs isoformes de transporteurs au glucose ont été clonées récemment et certaines d'entre elles sont apparues comme jouant d'importants rôles régulateurs. Mieux caractériser deux d'entre elles (GLUT8 et GLUT9) était le but de mon travail. La première partie de mon travail a été centrée sur GLUT8, qui est exprimé principalement dans le cerveau et qui peut transporter le glucose avec une haute affinité. GLUT8 est retenu intracellulairement à l'état basal de façon dépendante d'un motif dileucine N-terminal, ce qui implique que son expression à la surface cellulaire pourrait être induite par des stimuli extracellulaires. Dans cette optique, je me suis intéressé à mieux définir la localisation subcellulaire de GLUT8 à l'état basal et à trouver des signaux activant sa translocation, en utilisant comme outil un vecteur adénoviral exprimant une version marquée (tag myc) du transporteur, me permettant ainsi d'exprimer et de détecter GLUT8 à la surface cellulaire dans des neurones hippocampiques primaires et des cellules PC12. Cet outil m'a permis de montrer que GLUT8 réside dans un compartiment unique différent des lysosomes, du réticulum endoplasmique, des endosomes, ainsi que du Golgi. De plus, l'absence de translocation de GLUT8 à la suite de l'activation pharmacologique de plusieurs voies de signalisation suggère que GLUT8 ne transloque jamais à la membrane plasmique, mais jouerait plutôt un rôle au sein même de son compartiment intracellulaire unique. La seconde partie de mon travail a été centrée sur GLUT9, lequel -contrairement à GLUT8 -est incapable de transporter le glucose, mais conserve la capacité de se lier à des molécules dérivées du glucose, suggérant que ce pourrait être un senseur de glucose plutôt qu'un vrai transporteur. Le but du projet a donc été de définir si GLUT9 active des signaux intracellulaires quand il est lui-même activé. Pour ce faire, des vecteurs adénoviraux exprimant GLUT9 ont été utilisés pour infecter des lignées cellulaires dérivées de cellules ßpancréatiques et d'hépatocytes, GLUT9 étant exprimé de façon endogène dans le foie. La comparaison de l'expression des gènes entre des cellules infectées avec l'adénovirus exprimant GLUT9 et un adénovirus contrôle exprimant la GFP a permis d'identifier le facteur de transcription HNF4α comme étant régulé de façon GLUT9-dépendante. Résumé tout public Il existe deux types bien distincts de diabète. Le diabète de type 1 constitue environ 10 des cas de diabète et se déclare généralement à l'enfance. Il est caractérisé par une incapacité du pancréas à sécréter une hormone, l'insuline, qui régule la concentration sanguine du glucose (glycémie). Il en résulte une hyperglycémie sévère qui, si le patient n'est pas traité à l'insuline, conduit à de graves dommages à divers organes, ce qui peut mener à la cécité, à la perte des membres inférieurs, ainsi qu'à l'insuffisance rénale. Le diabète de type 2 se déclare plus tard dans la vie. Il n'est pas causé par une déficience en insuline, mais plutôt par une incapacité de l'insuline à agir sur ses tissus cibles. Le nombre de cas de diabète de type 2 augmente de façon dramatique, probablement à la suite de l'augmentation des cas d'obésité, le surpoids chronique étant le principal facteur de risque de diabète. Chez l'individu sain, le glucose sanguin est transporté dans différents organes (foie, muscles, tissu adipeux,...) où il est utilisé comme source d'énergie. Chez le patient diabétique, le captage de glucose est altéré, expliquant ainsi l'hyperglycémie. Il est ainsi crucial d'étudier les mécanismes permettant ce captage. Ainsi, des protéines permettant l'entrée de glucose dans la cellule depuis le milieu extracellulaire ont été découvertes depuis une vingtaine d'années. La plupart d'entre elles appartiennent à une sous-famille de protéines nommée GLUT (pour "GLUcose Transporters") dont cinq membres ont été caractérisés et nommés selon l'ordre de leur découverte (GLUT1-5). Néanmoins, la suppression de ces protéines chez la souris par des techniques moléculaires n'affecte pas totalement le captage de glucose, suggérant ainsi que des transporteurs de glucose encore inconnus pourraient exister. De telles protéines ont été isolées ces dernières années et nommées selon l'ordre de leur découverte (GLUT6-14). Durant mon travail de thèse, je me suis intéressé à deux d'entre elles, GLUT8 et GLUT9, qui ont été découvertes précédemment dans le laboratoire. GLUT8 est exprimé principalement dans le cerveau. La protéine n'est pas exprimée à la surface de la cellule, mais est retenue à l'intérieur. Des mécanismes complexes doivent donc exister pour déplacer le transporteur à la surface cellulaire, afin qu'il puisse permettre l'entrée du glucose dans la cellule. Mon travail a consisté d'une part à définir où se trouve le transporteur à l'intérieur de la cellule, et d'autre part à comprendre les mécanismes capables de déplacer GLUT8 vers la surface cellulaire, en utilisant des neurones exprimant une version marquée du transporteur, permettant ainsi sa détection par des méthodes biochimiques. Cela m'a permis de montrer que GLUT8 est localisé dans une partie de la cellule encore non décrite à ce jour et qu'il n'est jamais déplacé à la surface cellulaire, ce qui suggère que le transporteur doit jouer un rôle à l'intérieur de la cellule et non à sa surface. GLUT9 est exprimé dans le foie et dans les reins. Il ressemble beaucoup à GLUT8, mais ne transporte pas le glucose, ce qui suggère que ce pourrait être un récepteur au glucose plutôt qu'un transporteur à proprement parler. Le but de mon travail a été de tester cette hypothèse, en comparant des cellules du foie exprimant GLUT9 avec d'autres n'exprimant pas la protéine. Par des méthodes d'analyses moléculaires, j'ai pu montrer que la présence de GLUT9 dans les cellules du foie augmente l'expression de HNF4α, une protéine connue pour réguler la sécrétion d'insuline dans le pancréas ainsi que la production de glucose dans le foie. Des expériences complémentaires seront nécessaires afin de mieux comprendre par quels mécanismes GLUT9 influence l'expression de HNF4α dans le foie, ainsi que de définir l'importance de GLUT9 dans la régulation de la glycémie chez l'animal entier.

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We describe the localization of the recently identified glucose transporter GLUTx1 and the regulation of GLUTx1 in the hippocampus of diabetic and control rats. GLUTx1 mRNA and protein exhibit a unique distribution when compared with other glucose transporter isoforms expressed in the rat hippocampus. In particular, GLUTx1 mRNA was detected in hippocampal pyramidal neurons and granule neurons of the dentate gyrus as well as in nonprincipal neurons. With immunohistochemistry, GLUTx1 protein expression is limited to neuronal cell bodies and the most proximal dendrites, unlike GLUT3 expression that is observed throughout the neuropil. Immunoblot analysis of hippocampal membrane fractions revealed that GLUTx1 protein expression is primarily localized to the intracellular compartment and exhibits limited association with the plasma membrane. In streptozotocin diabetic rats compared with vehicle-treated controls, quantitative autoradiography showed increased GLUTx1 mRNA levels in pyramidal neurons and granule neurons; up-regulation of GLUTx1 mRNA also was found in nonprincipal cells, as shown by single-cell emulsion autoradiography. In contrast, diabetic and control rats expressed similar levels of hippocampal GLUTx1 protein. These results indicate that GLUTx1 mRNA and protein have a unique expression pattern in rat hippocampus and suggest that streptozotocin diabetes increases steady-state mRNA levels in the absence of concomitant increases in GLUTx1 protein expression.

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We previously demonstrated that distinct facilitative glucose transporter isoforms display differential sorting in polarized epithelial cells. In Madin-Darby canine kidney (MDCK) cells, glucose transporter 1 and 2 (GLUT1 and GLUT2) are localized to the basolateral cell surface whereas GLUTs 3 and 5 are targeted to the apical membrane. To explore the molecular mechanisms underlying this asymmetric distribution, we analyzed the targeting of chimeric glucose transporter proteins in MDCK cells. Replacement of the carboxy-terminal cytosolic tail of GLUT1, GLUT2, or GLUT4 with that from GLUT3 resulted in apical targeting. Conversely, a GLUT3 chimera containing the cytosolic carboxy terminus of GLUT2 was sorted to the basolateral membrane. These findings are not attributable to the presence of a basolateral signal in the tails of GLUTs 1, 2, and 4 because the basolateral targeting of GLUT1 was retained in a GLUT1 chimera containing the carboxy terminus of GLUT5. In addition, we were unable to demonstrate the presence of an autonomous basolateral sorting signal in the GLUT1 tail using the low-density lipoprotein receptor as a reporter. By examining the targeting of a series of more defined GLUT1/3 chimeras, we found evidence of an apical targeting signal involving residues 473 - 484 (DRSGKDGVMEMN) in the carboxy tail. We conclude that the targeting of GLUT3 to the apical cell surface in MDCK cells is regulated by a unique cytosolic sorting motif.

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P>Mucoepidermoid carcinoma (MEC), the most common primary salivary malignancy, shows great variability in clinical behaviour, thus demanding investigation to identify of prognostic markers. Since Warburg`s studies, unrestricted cell growth during tumorigenesis has been linked to altered metabolism, implying hypoxic stimulation of glycolysis and diminished contribution of mitochondrial oxidative phosphorylation to cellular ATP supply. Hypothesizing that the study of MEC metabolic status could lead to the discovery of prognostic markers, we investigated by immunohistochemistry the expression of glucose transporter 1 (Glut-1), mitochondrial antigen and peroxiredoxin I (Prx I) in samples of MEC from different histological grades. Our results showed that mitochondrial antigen and Prx I were expressed in the majority of the MEC cases independent of the histological grade. In contrast Glut-1 expression increased significantly as the tumours became more aggressive. These results suggested that oxidative phosphorylation may contribute to ATP supply in all stages of MEC progression, and that the relative contribution of glycolysis over mitochondria for cellular ATP supply increases during MEC progression, favouring growth under low oxygen concentration. In addition, the observed high Prx I protein levels could provide protection to tumour cells against reactive oxygen species generated as a consequence of mitochondrial function and hypoxia-reoxygenation cycling. Altogether our findings suggest that upregulation of Glut-1 and Prx I constitute successful adaptive strategies of MEC cells conferring a growth advantage over normal salivary gland cells in the unstable oxygenation tumour environment.

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Dissertation to obtain the Master Degree in Biotechnology

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Based on homology with GLUT1-5, we have isolated a cDNA for a novel glucose transporter, GLUTX1. This cDNA encodes a protein of 478 amino acids that shows between 29 and 32% identity with rat GLUT1-5 and 32-36% identity with plant and bacterial hexose transporters. Unlike GLUT1-5, GLUTX1 has a short extracellular loop between transmembrane domain (TM) 1 and TM2 and a long extracellular loop between TM9 and TM10 that contains the only N-glycosylation site. When expressed in Xenopus oocytes, GLUTX1 showed strong transport activity only after suppression of a dileucine internalization motif present in the amino-terminal region. Transport activity was inhibited by cytochalasin B and partly competed by D-fructose and D-galactose. The Michaelis-Menten constant for glucose was approximately 2 mM. When translated in reticulocytes lysates, GLUTX1 migrates as a 35-kDa protein that becomes glycosylated in the presence of microsomal membranes. Western blot analysis of GLUTX1 transiently expressed in HEK293T cells revealed a diffuse band with a molecular mass of 37-50 kDa that could be converted to a approximately 35-kDa polypeptide following enzymatic deglycosylation. Immunofluorescence microscopy detection of GLUTX1 transfected into HEK293T cells showed an intracellular staining. Mutation of the dileucine internalization motif induced expression of GLUTX1 at the cell surface. GLUTX1 mRNA was detected in testis, hypothalamus, cerebellum, brainstem, hippocampus, and adrenal gland. We hypothesize that, in a similar fashion to GLUT4, in vivo cell surface expression of GLUTX1 may be inducible by a hormonal or other stimulus.

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AIMS/HYPOTHESIS: Excess glucose transport to embryos during diabetic pregnancy causes congenital malformations. The early postimplantation embryo expresses the gene encoding the high-Km GLUT2 (also known as SLC2A2) glucose transporter. The hypothesis tested here is that high-Km glucose transport by GLUT2 causes malformations resulting from maternal hyperglycaemia during diabetic pregnancy. MATERIALS AND METHODS: Glut2 mRNA was assayed by RT-PCR. The Km of embryo glucose transport was determined by measuring 0.5-20 mmol/l 2-deoxy[3H]glucose transport. To test whether the GLUT2 transporter is required for neural tube defects resulting from maternal hyperglycaemia, Glut2+/- mice were crossed and transient hyperglycaemia was induced by glucose injection on day 7.5 of pregnancy. Embryos were recovered on day 10.5, and the incidence of neural tube defects in wild-type, Glut2+/- and Glut2-/- embryos was scored. RESULTS: Early postimplantation embryos expressed Glut2, and expression was unaffected by maternal diabetes. Moreover, glucose transport by these embryos showed Michaelis-Menten kinetics of 16.19 mmol/l, consistent with transport mediated by GLUT2. In pregnancies made hyperglycaemic on day 7.5, neural tube defects were significantly increased in wild-type embryos, but Glut2+/- embryos were partially protected from neural tube defects, and Glut2-/- embryos were completely protected from these defects. The frequency of occurrence of wild-type, Glut2+/- and Glut2-/- embryos suggests that the presence of Glut2 alleles confers a survival advantage in embryos before day 10.5. CONCLUSIONS/INTERPRETATIONS: High-Km glucose transport by the GLUT2 glucose transporter during organogenesis is responsible for the embryopathic effects of maternal diabetes.

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In pancreatic beta-cells, the high Km glucose transporter GLUT2 catalyzes the first step in glucose-induced insulin secretion by glucose uptake. Expression of the transporter has been reported to be modulated by glucose either at the protein or mRNA levels. In this study we used the differentiated insulinoma cell line INS-1 which expresses high levels of GLUT2 and show that the expression of GLUT2 is regulated by glucose at the transcriptional level. By run-on transcription assays we showed that glucose induced GLUT2 gene transcription 3-4-fold in INS-1 cells which was paralleled by a 1.7-2.3-fold increase in cytoplasmic GLUT2 mRNA levels. To determine whether glucose regulatory sequences were present in the promoter region of GLUT2, we cloned and characterized a 1.4-kilobase region of mouse genomic DNA located 5' of the translation initiation site. By RNase protection assays and primer extension, we determined that multiple transcription initiation sites were present at positions -55, -64, and -115 from the first coding ATG and which were identified in liver, intestine, kidney, and beta-cells mRNAs. Plasmids were constructed with the mouse promoter region linked to the reporter gene chloramphenicol acetyltransferase (CAT), and transiently and stably transfected in the INS-1 cells. Glucose induced a concentration-dependent increase in CAT activity which reached a maximum of 3.6-fold at 20 mM glucose. Similar CAT constructs made of the human GLUT2 promoter region and the CAT gene displayed the same glucose-dependent increase in transcriptional activity when transfected into INS-1 cells. Comparison of the mouse and human promoter regions revealed sequence identity restricted to a few stretches of sequences which suggests that the glucose responsive element(s) may be conserved in these common sequences.

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Glucose transporter-1 deficiency syndrome is caused by mutations in the SLC2A1 gene in the majority of patients and results in impaired glucose transport into the brain. From 2004-2008, 132 requests for mutational analysis of the SLC2A1 gene were studied by automated Sanger sequencing and multiplex ligation-dependent probe amplification. Mutations in the SLC2A1 gene were detected in 54 patients (41%) and subsequently in three clinically affected family members. In these 57 patients we identified 49 different mutations, including six multiple exon deletions, six known mutations and 37 novel mutations (13 missense, five nonsense, 13 frame shift, four splice site and two translation initiation mutations). Clinical data were retrospectively collected from referring physicians by means of a questionnaire. Three different phenotypes were recognized: (i) the classical phenotype (84%), subdivided into early-onset (<2 years) (65%) and late-onset (18%); (ii) a non-classical phenotype, with mental retardation and movement disorder, without epilepsy (15%); and (iii) one adult case of glucose transporter-1 deficiency syndrome with minimal symptoms. Recognizing glucose transporter-1 deficiency syndrome is important, since a ketogenic diet was effective in most of the patients with epilepsy (86%) and also reduced movement disorders in 48% of the patients with a classical phenotype and 71% of the patients with a non-classical phenotype. The average delay in diagnosing classical glucose transporter-1 deficiency syndrome was 6.6 years (range 1 month-16 years). Cerebrospinal fluid glucose was below 2.5 mmol/l (range 0.9-2.4 mmol/l) in all patients and cerebrospinal fluid : blood glucose ratio was below 0.50 in all but one patient (range 0.19-0.52). Cerebrospinal fluid lactate was low to normal in all patients. Our relatively large series of 57 patients with glucose transporter-1 deficiency syndrome allowed us to identify correlations between genotype, phenotype and biochemical data. Type of mutation was related to the severity of mental retardation and the presence of complex movement disorders. Cerebrospinal fluid : blood glucose ratio was related to type of mutation and phenotype. In conclusion, a substantial number of the patients with glucose transporter-1 deficiency syndrome do not have epilepsy. Our study demonstrates that a lumbar puncture provides the diagnostic clue to glucose transporter-1 deficiency syndrome and can thereby dramatically reduce diagnostic delay to allow early start of the ketogenic diet.

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Expression of two important glucose transporter proteins, GLUT 2 (which is the typical glucose transporter in hepatocytes of adult liver) and the erythroid/brain type glucose transporter GLUT 1 (representing the typical glucose transporter in fetal liver parenchyma), was studied immunocytochemically during hepatocarcinogenesis in rats at different time points between 7 and 65 wk after cessation of 7-wk administration of 12 mg/kg of body weight of N-nitrosomorpholine p.o. (stop model). Foci of altered hepatocytes excessively storing glycogen (GSF) and mixed cell foci (MCF) composed of both glycogenotic and glycogen-poor cells were present at all time points studied. Seven wk after withdrawal of the carcinogen, GSF were the predominant type of focus of altered hepatocytes. Morphometrical evaluation of the focal lesions revealed that the number and volume fraction of GSF increased steadily until Wk 65. MCF were rare at 7 wk, increased slightly in number and size until Wk 37, but showed a pronounced elevation in their number and volume fraction from Wk 37 to Wk 65. In both GSF and MCF, GLUT 2 was generally decreased or partially absent at all time points. Consequently, foci of decreased GLUT 2 expression showed a steady increase in number and volume fraction from Wk 7 to Wk 65. GLUT 1 was lacking in GSF but occurred in some MCF from Wk 50 onward. The liver type glucose transporter GLUT 2 was decreased in all adenomas and hepatocellular carcinomas (HCC). In three of seven adenomas and 10 of 12 carcinomas, expression of GLUT 1 was increased compared with normal liver parenchyma. In two cases of adenoid HCC, cells of ductular formations coexpressed GLUT 2 and GLUT 1. In contrast, normal bile ducts, bile duct proliferations, and cystic cholangiomas expressed only GLUT 1. Seven of 12 HCC contained many microvessels intensely stained for GLUT 1, a phenomenon never observed in normal liver. Whenever adenoid tumor formations occurred, GLUT 1-positive microvessels were located in the immediate vicinity of these formations. Only in one HCC were such microvessels found in the absence of adenoid formations. Our studies indicate that a reduction of GLUT 2 expression occurs already in early preneoplastic hepatic foci and is maintained throughout hepatocarcinogenesis, including benign and malignant neoplasms. Reexpression of GLUT 1, however, appears in a few MCF and in the majority of adenomas and carcinomas.

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Following a former immunohistochemical study in the rat brain [Arluison, M., Quignon, M., Nguyen, P., Thorens, B., Leloup, C., Penicaud, L. Distribution and anatomical localization of the glucose transporter 2 (GLUT2) in the adult rat brain. I. Immunohistochemical study. J. Chem. Neuroanat., in press], we have analyzed the ultrastructural localization of GLUT2 in representative and/or critical areas of the forebrain and hindbrain. In agreement with previous results, we observe few oligodendrocyte and astrocyte cell bodies discretely labeled for GLUT2 in large myelinated fibre bundles and most brain areas examined, whereas the reactive glial processes are more numerous and often localized in the vicinity of nerve terminals and/or dendrites or dendritic spines forming synaptic contacts. Only some of them appear closely bound to unlabeled nerve cell bodies and dendrites. Furthermore, the nerve cell bodies prominently immunostained for GLUT2 are scarce in the brain nuclei examined, whereas the labeled dendrites and dendritic spines are relatively numerous and frequently engaged in synaptic junctions. In conformity with the observation of GLUT2-immunoreactive rings at the periphery of numerous nerve cell bodies in various brain areas (see previous paper), we report here that some neuronal perikarya of the dorsal endopiriform nucleus/perirhinal cortex exhibit some patches of immunostaining just below the plasma membrane. However, the presence of many GLUT2-immunoreactive nerve terminals and/or astrocyte processes, some of them being occasionally attached to nerve cell bodies and dendrites, could also explain the pericellular labeling observed. The results here reported support the idea that GLUT2 may be expressed by some cerebral neurones possibly involved in glucose sensing, as previously discussed. However, it is also possible that this transporter participate in the regulation of neurotransmitter release and, perhaps, in the release of glucose by glial cells.

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A defect in glucose sensing of the pancreatic beta-cells has been observed in several animal models of type II diabetes and has been correlated with a reduced gene expression of the glucose transporter type 2 (Glut2). In a transgenic mouse model, expression of Glut2 antisense RNA in pancreatic beta-cells has recently been shown to be associated with an impaired glucose-induced insulin secretion and the development of diabetes. To identify factors that may be involved in the specific decrease of Glut2 in the beta-cells of the diabetic animal, an attempt was made to localize the cis-elements and trans-acting factors involved in the control of Glut2 expression in the endocrine pancreas. It was demonstrated by transient transfection studies that only 338 base pairs (bp) of the murine Glut2 proximal promoter are needed for reporter gene expression in pancreatic islet-derived cell lines, whereas no activity was detected in nonpancreatic cells. Three cis-elements, GTI, GTII, and GTIII, have been identified by DNAse I footprinting and gel retardation experiments within these 338 bp. GTI and GTIII bind distinct but ubiquitously expressed trans-acting factors. On the other hand, nuclear proteins specifically expressed in pancreatic cell lines interact with GTII, and their relative abundance correlates with endogenous Glut2 expression. These GTII-binding factors correspond to nuclear proteins of 180 and 90 kilodaltons as defined by Southwestern analysis. The 180-kilodalton factor is present in pancreatic beta-cell lines but not in an alpha-cell line. Mutation of the GTI or GTIII cis-elements decreases transcriptional activity directed by the 338-bp promoter, whereas mutation of GTII increases gene transcription. Thus negative and positive regulatory sequences are identified within the proximal 338 bp of the GLUT2 promoter and may participate in the islet-specific expression of the gene by binding beta-cell specific trans-acting factors.

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The high Km glucose transporter GLUT2 is a membrane protein expressed in tissues involved in maintaining glucose homeostasis, and in cells where glucose-sensing is necessary. In many experimental models of diabetes, GLUT2 gene expression is decreased in pancreatic beta-cells, which could lead to a loss of glucose-induced insulin secretion. In order to identify factors involved in pancreatic beta-cell specific expression of GLUT2, we have recently cloned the murine GLUT2 promoter and identified cis-elements within the 338-bp of the proximal promoter capable of binding islet-specific trans-acting factors. Furthermore, in transient transfection studies, this 338-bp fragment could efficiently drive the expression of the chloramphenicol acetyl transferase (CAT) gene in cell lines derived from the endocrine pancreas, but displayed no promoter activity in non-pancreatic cells. In this report, we tested the cell-specific expression of a CAT reporter gene driven by a short (338 bp) and a larger (1311 bp) fragment of the GLUT2 promoter in transgenic mice. We generated ten transgenic lines that integrated one of the constructs. CAT mRNA expression in transgenic tissues was assessed using the RNAse protection assay and the quantitative reverse transcribed polymerase chain reaction (RT-PCR). Overall CAT mRNA expression for both constructs was low compared to endogenous GLUT2 mRNA levels but the reporter transcript could be detected in all animals in the pancreatic islets and the liver, and in a few transgenic lines in the kidney and the small intestine. The CAT protein was also present in Langerhans islets and in the liver for both constructs by immunocytochemistry. These findings suggest that the proximal 338 bp of the murine GLUT2 promoter contain cis-elements required for the islet-specific expression of GLUT2.

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Previous studies have shown that glucose increases the glucose transporter (GLUT2) mRNA expression in the liver in vivo and in vitro. Here we report an analysis of the effects of glucose metabolism on GLUT2 gene expression. GLUT2 mRNA accumulation by glucose was not due to stabilization of its transcript but rather was a direct effect on gene transcription. A proximal fragment of the 5' regulatory region of the mouse GLUT2 gene linked to a reporter gene was transiently transfected into liver GLUT2-expressing cells. Glucose stimulated reporter gene expression in these cells, suggesting that glucose-responsive elements were included within the proximal region of the promoter. A dose-dependent effect of glucose on GLUT2 expression was observed over 10 mM glucose irrespective of the hexokinase isozyme (glucokinase K(m) 16 mM; hexokinase I K(m) 0.01 mM) present in the cell type used. This suggests that the correlation between extracellular glucose and GLUT2 mRNA concentrations is simply a reflection of an activation of glucose metabolism. The mediators and the mechanism responsible for this response remain to be determined. In conclusion, glucose metabolism is required for the proper induction of the GLUT2 gene in the liver and this effect is transcriptionally regulated.