741 resultados para metabolism, glutamate uptake, PPARp, astrocyte, métabolisme, import du glutamate, stellation


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Glycerol is one of the few carbon sources that can be utilized by Mycoplasma pneumoniae. Glycerol metabolism involves uptake by facilitated diffusion, phosphorylation, and the oxidation of glycerol 3-phosphate to dihydroxyacetone phosphate, a glycolytic intermediate. We have analyzed the expression of the genes involved in glycerol metabolism and observed constitutive expression irrespective of the presence of glycerol or preferred carbon sources. Similarly, the enzymatic activity of glycerol kinase is not modulated by HPr-dependent phosphorylation. This lack of regulation is unique among the bacteria for which glycerol metabolism has been studied so far. Two types of enzymes catalyze the oxidation of glycerol 3-phosphate: oxidases and dehydrogenases. Here, we demonstrate that the enzyme encoded by the M. pneumoniae glpD gene is a glycerol 3-phosphate oxidase that forms hydrogen peroxide rather than NADH(2). The formation of hydrogen peroxide by GlpD is crucial for cytotoxic effects of M. pneumoniae. A glpD mutant exhibited a significantly reduced formation of hydrogen peroxide and a severely reduced cytotoxicity. Attempts to isolate mutants affected in the genes of glycerol metabolism revealed that only the glpD gene, encoding the glycerol 3-phosphate oxidase, is dispensable. In contrast, the glpF and glpK genes, encoding the glycerol facilitator and the glycerol kinase, respectively, are essential in M. pneumoniae. Thus, the enzymes of glycerol metabolism are crucial for the pathogenicity of M. pneumoniae but also for other essential, yet-to-be-identified functions in the M. pneumoniae cell.

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The mitochondrial outer membrane (MOM) separates the mitochondria from the cytoplasm, serving both as a barrier and as a gateway. Protein complexes — believed to be universally conserved in all eukaryotes — reside in the MOM to orchestrate and control metabolite exchange, lipid metabolism and uptake of biopolymers such as protein and RNA. African trypanosomes are the causative agent of the sleeping sickness in humans. The parasites are among the earliest diverging eukaryotes that have bona fide mitochondria capable of oxidative phosphorylation. Trypanosomes have unique mitochondrial biology that concerns their mitochondrial metabolism and their unusual mitochondrial morphology that differs to great extent between life stages. Another striking feature is the organization of the mitochondrial genome that does not encode any tRNA genes, thus all tRNAs needed for mitochondrial translation have to be imported. However, the MOM of T. brucei is essentially unchartered territory. It lacks a canonical protein import machinery and facilitation of tRNA translocation remains completely elusive. Using biochemical fractionation and label-free quantitative mass spectrometry for correlated protein abundance-profiling we were able to identify a cluster of 82 candidate proteins that can be localized to the trypanosomal MOM with high confidence. This enabled us to identify a highly unusual, potentially archaic protein import machinery that might also transport tRNAs. Moreover, two-thirds of the identified polypeptides present on the MOM have never been associated with mitochondria before. 40 proteins share homology with proteins of known functions. The function of 42 proteins remains unknown. 11 proteins are essential for the disease-causing bloodstream form of T. brucei and therefore may be exploited as novel drug targets. A comparison with the outer membrane proteome of yeast defines a set of 17 common proteins that are likely present in the MOM of all eukaryotes. Known factors involved in the regulation of mitochondrial morphology are virtually absent in T. brucei. Interestingly, RNAi-mediated ablation of three outer membrane proteins of unknown function resulted in a collapse of the network-like mitochondrion of insect-stage parasites and therefore directly or indirectly are involved in the regulation of mitochondrial morphology.

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Depuis plus de 40 ans, il est connu que les fœtus de mammifères sont sensibles aux conditions métaboliques de la mère durant la gestation. On commence à comprendre aujourd’hui les principes moléculaires de ces observations épidémiologiques. L’épigénétique définit cette nouvelle réalité et semble être la voie par laquelle l’environnement influence l’expression des gènes à plus ou moins long terme. Cette réalité est aussi présente en production laitière où les vaches en plus de montrer une production de lait accrue doivent soutenir le développement d’un fœtus. La forte mobilisation des réserves graisseuses associées à cette condition peut venir modifier la composition du milieu ovarien ainsi qu’utérin, et par le fait même, créer une dysfonction du métabolisme mitochondriale qui provoquera une augmentation du stress oxydatif. Cette modification peut pousser l’ovule ou l’embryon à modifier considérablement sa programmation épigénétique dans le but de s’adapter à ce signe de déficit métabolique. Dans cette étude, nous avons fait subir un stress métabolique à des embryons bovins in vitro afin de valider l’impact d’une telle perturbation sur l’épigénome embryonnaire. Les résultats obtenus ont permis de mettre en évidence une tendance à l’hypométhylation dans les régions télomériques de la majorité des chromosomes ainsi que des modifications sur des gènes reliés au métabolisme énergétique. Il devient donc important d’étudier ces modifications sur le développement et les performances futures de l’embryon et ce afin de mieux comprendre les impacts que certains types de rations ou habitudes de régie peuvent avoir sur le potentiel productif et reproductif des animaux de relève. Ces connaissances nous permettront d’adapter notre régie afin de maximiser le potentiel productif des animaux de l’industrie laitière québécoise et de conserver notre place parmi les leaders mondiaux de ce secteur de production.

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L’insuffisance rénale chronique (IRC) se définit par un défaut de filtration glomérulaire et est associée à plusieurs désordres. La perturbation de l’homéostasie glucidique en fait partie. L’homéostasie glucidique est contrôlée principalement par l’insuline, soit l’hormone sécrétée en réponse au glucose par les cellules bêta-pancréatiques contenues dans les îlots de Langerhans. La préservation de la fonction de la cellule bêta est essentielle au maintien de l’homéostasie glucidique. Il a été démontré que la sécrétion de l'insuline est altérée au cours l'IRC, cependant les mécanismes demeurent peu connus. Au cours de l’IRC, l’accumulation chronique de toxines urémiques pourrait contribuer à la défaillance de la cellule bêta. L’urée est une toxine urémique majeure et sa toxicité a été récemment rapportée dans plusieurs tissus. Le but de ce mémoire était donc de vérifier le rôle de l’urée dans la dysfonction de la cellule bêta-pancréatique au cours de l’IRC. Nous avons démontré que l’exposition des îlots de souris à des concentrations pathologiques d’urée entraîne une diminution de la sécrétion d’insuline via l’augmentation du stress oxydant et des O-glycosylations. Ce défaut est dû à une perturbation du métabolisme intracellulaire du glucose. Entre autres, nous avons observé une baisse de la glycolyse associée à la réduction de l’activité enzymatique de la phosphofructokinase-1. Ces résultats démontrent un effet toxique direct de l’urée sur la sécrétion d’insuline et permettent de mieux comprendre le mécanisme de dysfonction de la cellule bêta-pancréatique au cours de l’IRC.

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L’insuffisance rénale chronique (IRC) se définit par un défaut de filtration glomérulaire et est associée à plusieurs désordres. La perturbation de l’homéostasie glucidique en fait partie. L’homéostasie glucidique est contrôlée principalement par l’insuline, soit l’hormone sécrétée en réponse au glucose par les cellules bêta-pancréatiques contenues dans les îlots de Langerhans. La préservation de la fonction de la cellule bêta est essentielle au maintien de l’homéostasie glucidique. Il a été démontré que la sécrétion de l'insuline est altérée au cours l'IRC, cependant les mécanismes demeurent peu connus. Au cours de l’IRC, l’accumulation chronique de toxines urémiques pourrait contribuer à la défaillance de la cellule bêta. L’urée est une toxine urémique majeure et sa toxicité a été récemment rapportée dans plusieurs tissus. Le but de ce mémoire était donc de vérifier le rôle de l’urée dans la dysfonction de la cellule bêta-pancréatique au cours de l’IRC. Nous avons démontré que l’exposition des îlots de souris à des concentrations pathologiques d’urée entraîne une diminution de la sécrétion d’insuline via l’augmentation du stress oxydant et des O-glycosylations. Ce défaut est dû à une perturbation du métabolisme intracellulaire du glucose. Entre autres, nous avons observé une baisse de la glycolyse associée à la réduction de l’activité enzymatique de la phosphofructokinase-1. Ces résultats démontrent un effet toxique direct de l’urée sur la sécrétion d’insuline et permettent de mieux comprendre le mécanisme de dysfonction de la cellule bêta-pancréatique au cours de l’IRC.

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Objective: The aim of this study was to assess the effects of protein restriction in growing rats. Methods: Rats (approximate weight, 100 g) were maintained with low-protein (LP; 6%) or normo-proteic (control; 17%) diets, and at the end of the 15th day, hormonal and biochemistry parameters and energetic balance were evaluated. Data were analyzed using Student`s t test (with statistical significance set at P <= .05). Results: LP animals were hyperphagic and showed increased energetic gain (24%) and energy expenditure (EE) compared with controls. The increase in EE was followed by increased sympathetic activity in brown adipose tissue, evidenced by increased norepinephrine turnover, suggesting increased thermogenesis. In spite of hyperphagia, protein ingestion in LP animals was lower than that of controls (P < 0.01). The LP diet impaired body growth and caused deep alterations in body chemical composition, with an increase in carcass lipid content (64%) and reductions of protein and water. In LP animals, postprandial glycemia was unchanged, and insulinemia was lower than in controls (P <= .01). Reduction in fasting glycemia without changes in insulinemia also was detected (P < .01), suggesting increased insulin sensitivity. The LP diet caused a 100% increase in serum leptin (P < .01). Conclusions: Protein restriction led to an increase in EE, with probable activation of thermogenesis in brown adipose tissue, evidenced by an increase in catecholamines levels. Despite the higher EE, energetic gain and lipids increased. The high level of leptin associated with hyperphagia led to the supposition that these animals are leptin resistant, and the increase in insulin sensitivity, suggested by the relation between insulin and glycemia in fasting and fed animals, might contribute to lipid accumulation. (C) 2009 Elsevier Inc. All rights reserved.

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Serum-free aggregating cell cultures of fetal rat telencephalon were examined by a combined biochemical and double-labeling immunocytochemical study for the developmental expression of glial fibrillary acidic protein (GFAP) and glutamine synthetase (GS). It was found that these two astroglial markers are co-expressed at different developmental stages in vitro. During the phase of cellular maturation (i.e. between days 14 and 34), GFAP levels and GS activity increase rapidly and in parallel. At the same time, the number of immunoreactive cells increase while the long and thick processes staining in early cultures gradually disappear. The present results demonstrate that in this particular cell culture system only one type of astrocytes develops which expresses both GFAP and GS and which attains a relatively high degree of maturation.

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Despite a wealth of data on the neurotoxic effects of lead at the cellular and molecular levels, the reasons for its development-dependent neurotoxicity are still unclear. Here, the maturation-dependent effects of lead acetate were analyzed in immature and differentiated brain cells cultured in aggregates. Markers of general cytotoxicity as well as cell-type-specific markers of glial and neuronal cells showed that immature brain cells were more sensitive to lead than the differentiated counterparts, demonstrating that the development-dependent neurotoxicity of lead can be reproduced in aggregating brain cell cultures. After 10 days of treatment, astrocytes were found to be more affected by lead acetate than neurons in immature cultures, and microglial cells were strongly activated. Eleven days after cessation of the treatment, lead acetate caused a partial loss of astrocytes and an intense reactivity of the remaining ones. Furthermore, microglial cells expressed a macrophagic phenotype, and the loss of activity of neuron-specific enzymes was aggravated. In differentiated cultures, no reactive gliosis was found. It is hypothetized that the intense glial reactions (microgliosis and astrogliosis) observed in immature cultures contribute to the development-dependent neurotoxicity of lead.

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We report a novel technique for computing diet-induced thermogenesis using data from 24-h respiration chamber measurements of 76 subjects. Physical activity (PA) was determined using a radar system to assess its duration and an accelerometer to evaluate its intensity. The regression line relating PA and energy expenditure facilitated calculation of the integrated thermogenic response to the total energy ingested (11.4% ± 3.8%), which is consistent with the values classically reported in the literature (10%) at the group level.

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To study inflammatory reactions occurring in relation to demyelination, aggregating rat brain cell cultures were subjected to three different demyelinating insults, i.e., (i) lysophosphatidylcholine (LPC), (ii) interferon-gamma combined with lipopolysaccharide (IFN-gamma+LPS), and (iii) anti-MOG antibodies plus complement (alpha-MOG+C). Demyelination was assessed by measuring the expression of myelin basic protein (MBP) and myelin oligodendrocyte glycoprotein (MOG), and the activity of 2',3'-cyclic nucleotide 3'-phosphohydrolase (CNP). The accompanying inflammatory reactions were examined by the quantification of microglia-specific staining, by immunostaining for glial fibrillary acidic protein (GFAP), and by measuring the mRNA expression of a panel of inflammation-related genes. It was found that all three demyelinating insults decreased the expression of MBP and MOG, and induced microglial reactivity. LPC and alpha-MOG+C, but not IFN-gamma+LPS, decreased CNP activity; they also caused the appearance of macrophagic microglia, and increased GFAP staining indicating astrogliosis. LPC affected also the integrity of neurons and astrocytes. LPC and IFN-gamma+LPS upregulated the expression of the inflammation-related genes IL-6, TNF-alpha, Ccl5, Cxcl1, and iNOS, although to different degrees. Other inflammatory markers were upregulated by only one of the three insults, e.g., Cxcl2 by LPC; IL-1beta and IL-15 by IFN-gamma+LPS; and IFN-gamma by alpha-MOG+C. These findings indicate that each of the three demyelinating insults caused distinct patterns of demyelination and inflammatory reactivity, and that of the demyelinating agents tested only LPC exhibited general toxicity.

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The intravenous, short-acting general anesthetic propofol was applied to three-dimensional (aggregating) cell cultures of fetal rat telencephalon. Both the clinically used formulation (Disoprivan, ICI Pharmaceuticals, Cheshire, England) and the pure form (2,6-diisopropylphenol) were tested at two different periods of brain development: immature brain cell cultures prior to synaptogenesis and at the time of intense synapses and myelin formation. At both time periods and for clinically relevant concentrations and time of exposure (i.e., concentrations > or = 2.0 micrograms/ml for 8 hr), propofol caused a significant decrease of glutamic acid decarboxylase activity. This effect persisted after removal of the drug, suggesting irreversible structural changes in GABAergic neurons. The gamma-aminobutyric acid type A (GABAA) blocking agents bicuculline and picrotoxin partially attenuated the neurotoxic effect of propofol in cultures treated at the more mature phase of development. This protective effect was not observed in the immature brain cells. The present data suggest that propofol may cause irreversible lesions to GABAergic neurons when given at a critical phase of brain development. In contrast, glial cells and myelin appeared resistant even to high doses of propofol.

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An in vitro model, the aggregating brain cell culture of fetal rat telencephalon, has been used to study the maturation-dependent sensitivity of brain cells to two organophosphorus pesticides (OPs), chlorpyrifos and parathion, and to their oxon derivatives. Immature (DIV 5-15) or differentiated (DIV 25-35) brain cells were treated continuously for 10 days. Acetylcholinesterase (AChE) inhibitory potency for the OPs was compared to that of eserine (physostigmine), a reversible AChE inhibitor. Oxon derivatives were more potent AChE inhibitors than the parent compounds, and parathion was more potent than chlorpyrifos. No maturation-dependent differences for AChE inhibition were found for chlorpyrifos and eserine, whereas for parathion and paraoxon there was a tendency to be more effective in immature cultures, while the opposite was true for chlorpyrifos-oxon. Toxic effects, assessed by measuring protein content as an index of general cytotoxicity, and various enzyme activities as cell-type-specific neuronal and glial markers (ChAT and GAD, for cholinergic and GABAergic neurons, respectively, and GS and CNP, for astrocytes and oligodendrocytes, respectively) were only found at more than 70% of AChE inhibition. Immature compared to differentiated cholinergic neurons appeared to be more sensitive to OP treatments. The oxon derivates were found to be more toxic on neurons than the parent compounds, and chlorpyrifos was more toxic than parathion. Eserine was not neurotoxic. These results indicate that inhibition of AChE remains the most sensitive macromolecular target of OP exposure, since toxic effects were found at concentrations in which AChE was inhibited. Furthermore, the compound-specific reactions, the differential pattern of toxicity of OPs compared to eserine, and the higher sensitivity of immature brain cells suggest that the toxic effects and inhibition of AChE are unrelated.

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An in vitro model, the aggregating brain cell culture of fetal rat telencephalon, has been used to investigate the influence of glial cells on the neurotoxicity of two organophosphorus pesticides (OPs), chlorpyrifos and parathion. Mixed-cell aggregate cultures were treated continuously for 10 days between DIV 5 and 15. Parathion induced astrogliosis at concentration at which MAP-2 immunostaining, found here to be more sensitive than neuron-specific enzyme activities, was not affected. In contrast, chlorpyrifos induced a comparatively weak gliotic reaction, and only at concentrations at which neurons were already affected. After similar treatments, increased neurotoxicity of parathion and chlorpyrifos was found in aggregate cultures deprived of glial cells. These results suggest that glial cells provide neuroprotection against OPs toxicity. To address the question of the difference in toxicity between parathion and chlorpyrifos, the toxic effects of their leaving groups, p-nitrophenol and trichloropyridinol, were studied in mixed-cell aggregates. General cytotoxicity was more pronounced for trichloropyridinol and both compounds had similar toxic effects on neuron-specific enzyme activities. In contrast, trichloropyridinol induced a much stronger decrease in glutamine synthetase activity, the enzymatic marker of astrocytes. Trichloropyridinol may exert a toxic effect on astrocytes, compromising their neuroprotective function, thus exacerbating the neurotoxicity of chlorpyrifos. This is in line with the suggestion that glial cells may contribute to OPs neurotoxicity, and with the view that OPs may exert their neurotoxic effects through different mechanisms.

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An impaired glutathione (GSH) synthesis was observed in several multifactorial diseases, including schizophrenia and myocardial infarction. Genetic studies revealed an association between schizophrenia and a GAG trinucleotide repeat (TNR) polymorphism in the catalytic subunit (GCLC) of the glutamate cysteine ligase (GCL). Disease-associated genotypes of this polymorphism correlated with a decrease in GCLC protein expression, GCL activity and GSH content. To clarify consequences of a decreased GCL activity at the proteome level, three schizophrenia patients and three controls have been selected based on the GCLC GAG TNR polymorphism. Fibroblast cultures were obtained by skin biopsy and were challenged with tert-butylhydroquinone (t-BHQ), a substance known to induce oxidative stress. Proteome changes were analyzed by two dimensional gel electrophoresis (2-DE) and results revealed 10 spots that were upregulated in patients following t-BHQ treatment, but not in controls. Nine corresponding proteins could be identified by MALDI mass spectrometry and these proteins are involved in various cellular functions, including energy metabolism, oxidative stress response, and cytoskeletal reorganization. In conclusion, skin fibroblasts of subjects with an impaired GSH synthesis showed an altered proteome reaction in response to oxidative stress. Furthermore, the study corroborates the use of fibroblasts as an additional mean to study vulnerability factors of psychiatric diseases.

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Introduction :¦L'hyperthyroïdie est la dysfonction thyroïdienne la plus fréquemment symptomatique et diagnostiquée. Son étiologie la plus fréquente chez l'adulte est la maladie de Basedow. Dans sa pratique le médecin se concentre sur les variables spécifiques à la maladie qui sont liées à une augmentation de la mortalité chez les patients. D'autres variables, comme la perte de poids accompagnant la maladie et le risque de reprise de ce poids suite au traitement, semblent peu prises en compte. Ce travail est une étude rétrospective¦portant sur 31 patients hyperthyroïdiens suivis ambulatoirement dans le service d'endocrinologie, diabétologie et métabolisme (EDM) du centre hospitalier universitaire vaudois (CHUV) durant 18 à 24 mois.¦Objectifs :¦Déterminer la variation de poids chez ces patients, la relation qui existe entre l'évolution des résultats des examens de laboratoire et la variation de poids, évaluer les facteurs de risque pour une prise pondérale excessive suite au traitement et comparer la variation de poids en fonction du poids de forme.¦Limites :¦Le caractère rétrospectif de l'étude, le petit nombre de patients inclus le fait que les statistiques n'ont pas été réalisées par un statisticien expérimenté limitent l'interprétation des résultats.¦Résultats et discussion :¦Il existe une perte de poids accompagnant un épisode inaugural dans 71% des cas. Les patients ont tendance à prendre du poids suite au traitement (médiane : + 7.3 kg). Le poids pris consiste en une compensation du poids perdu avant le diagnostic, avec un surplus de reprise pondérale (médiane : + 0.150 kg). Le poids de forme manque dans 41.9% des cas. Après 18 à 24 mois de suivi, la catégorie d'IMC dans¦laquelle les patients se trouvent correspond dans 73.3% des cas à la catégorie d'IMC de forme. Ni le sexe ni l'âge influencent la variation pondérale initiale (sexe : p=0.429 ; âge : p=0.241). L'importance de la perturbation des concentrations hormonales n'influe pas sur l'importance de la perte pondérale au diagnostic (TSH : R2=0.001 ; T4l : R2=0.0037). Les patients avec 6 symptômes et plus présents au moment du diagnostic ont tendance à avoir une T4 libre plus élevée (médiane : 51.26 pmol/l) que ceux qui ont moins de 6 symptômes (médiane : 40.00 pmol/l). Des facteurs prédisposants à un surplus de reprise n'ont¦pas pu être déterminés, mais des tendances peuvent être décrites. Une sur-correction iatrogène¦de l'hyperthyroïdie, avec un passage en hypothyroïdie après 18-24 mois de suivi est possiblement liée à une reprise de poids nette élevée. La reprise de poids est moindre si un suivi diététique a eu lieu (médiane : 0 kg versus 1.8 kg sans suivi diététique).