233 resultados para Greffe hépatique


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OBJECTIF: La mauvaise clairance des lipoprotéines riches en triglycérides par le tissu adipeux blanc (TAB) entraîne l’hypertriglycéridémie, la résistance à l’insuline et la sécrétion hépatique d’apolipoprotéine B (apoB). Ce mémoire tente de déterminer si le LDL entraîne une clairance réduite des lipoprotéines riches en triglycérides par le TAB. MÉTHODES/RÉSULTATS: Suivant l’ingestion d’un repas riche en gras marqué à la trioléine-13C, des femmes obèses postménopausées avec apoB plasmatique élevé (> médiane 0.93 g/L, N=22, 98% sous forme de IDL/LDL) avaient une clairance réduite de triglycérides-13C et acides gras non-estérifiés-13C (AGNE), comparées à celles avec un apoB plus bas. L'aire sous la courbe à 6 heures des triglycérides-13C et AGNE-13C plasmatiques corrélait avec l'apoB, suggérant une moindre captation dans les tissus périphériques chez les femmes avec apoB élevé. Ex vivo, suivant une incubation de 4 heures de biopsies de TAB avec de la trioléine-3H, l’apoB des patientes corrélait négativement avec les lipides-3H intracellulaires. Le traitement des biopsies de TAB des participantes avec leur propre LDL menait à une réduction de l’hydrolyse et de la captation de la trioléine-3H et à l’accumulation d’AGNE-3H dans le médium. In vitro, le LDL inhibait l’activité de la LPL. De plus, les adipocytes 3T3-L1 différenciés en présence de LDL avaient une hydrolyse et une captation réduite des lipoprotéines riches en trioléine-3H. CONCLUSION: Ce mémoire suggère que le LDL diminue la clairance des lipoprotéines riches en triglycérides par le TAB humain, ce qui pourrait expliquer la résistance à l’insuline observée chez des sujets avec apoB élevé.

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L’eugénol permet d’induire une anesthésie chirurgicale chez la grenouille africaine à griffes (Xenopus laevis) sans causer de lésions chez des grosses grenouilles (90-140g). Le premier objectif de la présente étude était de déterminer la durée de l’anesthésie et d’évaluer la dépression du système nerveux central ainsi que les changements de saturation en oxygène et de fréquence cardiaque chez des petites (7.5 ± 2.1 g) et moyennes (29.2 ± 7.4 g) grenouilles Xenopus laevis en fonction du temps d’exposition à un bain d’eugénol de 350 µL/L. Suite à une immersion de 5 ou 10 minutes, la réponse au test à l’acide acétique, au réflexe de retrait et au réflexe de retournement était absente pendant 1 heure (petites grenouilles) et 0,5 heure (moyennes) et l’anesthésie chirurgicale durait au maximum 15 et 30 minutes chez les petites et moyennes grenouilles respectivement. La saturation en oxygène n’était pas affectée de façon significative, mais la fréquence cardiaque était diminuée jusqu’à 1 heure post-immersion dans les deux groupes. Le deuxième objectif était de déterminer la toxicité de l’eugénol chez des grenouilles de taille moyenne après une ou trois administrations à une dose anesthésique, avec ou sans période de récupération d’une semaine. Histologiquement, il y avait de l’apoptose tubulaire rénale et des membranes hyalines pulmonaires après une administration, et de la nécrose hépatique et des hémorragies dans les tissus adipeux après trois administrations. Ces résultats suggèrent que le poids corporel est un paramètre important à considérer lors de l’anesthésie de grenouilles Xenopus laevis par immersion dans l’eugénol.

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L’obésité est définie comme un surplus de masse adipeuse. Cette condition représente un problème de santé publique devenu pandémique dans les pays industrialisés. Elle prédispose à des maladies potentiellement mortelles comme le diabète de type 2, les maladies cardiovasculaires et la stéatose hépatique non-alcoolique. L’accumulation du tissu adipeux intra-abdominal, formé d’adipocytes, est corrélée avec la résistance à l’insuline. L’augmentation de la masse adipeuse se fait par l’hyperplasie des préadipocytes, la différenciation des préadipocytes en adipocytes et l’hypertrophie des adipocytes. La différenciation des préadipocytes se fait selon l’adipogenèse qui est régulée par une multitude de facteurs, mais qui est inhibée pas les stimuli inflammatoires qui sont aussi responsables de la résistance à l’insuline et de l’apparition des problèmes de santé liés à l’obésité. Nous avons identifié un nouveau système de régulation autocrine/paracrine de l’adipogenèse dans les cellules du tissu adipeux. Le pyroglutamylated RF-amide peptide (QRFP), qui était connu pour son rôle dans la régulation de l’appétit, est un activateur de l’adipogenèse par l’activation de son récepteur, le G protein-coupled receptor 103 (GPR103). Le QRFP est exprimé dans les macrophages et les adipocytes alors que le GPR103 de sous-type b est exprimé dans les adipocytes seulement. Un traitement des adipocytes avec le QRFP augmente le captage des acides gras, l’accumulation de lipides ainsi que l’expression et l’activité de l’enzyme LPL. Le QRFP augmente aussi l’expression des gènes des transporteurs d’acides gras CD36 et FATP1, de l’enzyme activatrice d’acides gras ACSL1 et des facteurs de transcription PPAR-γ et C/EBP-α, qui sont tous impliqués dans l’adipogenèse. En plus de ses effets sur l’adipogenèse, le QRFP possède aussi un effet inhibiteur sur l’activité lipolytique induite par les catécholamines. Nous avons montré que l’expression du QRFP est diminuée dans le tissu adipeux des souris obèses. Selon nos résultats, cette diminution pourrait être expliquée par une augmentation des endotoxines circulantes chez les obèses, appelée endotoxémie métabolique, qui agirait, entre autres, par l’induction des interférons dans les macrophages. Les voies de signalisation de ces effets ont aussi été identifiées. Nous avons montré un autre exemple de stimulus inflammatoire qui régule les signaux adipogènes à la baisse.

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En partant des travaux en cours tendant au développement de la cyberjustice ­ soit la greffe en ligne (e-filing) et les systèmes intégrés d’information de justice (integrated justice information systems), l’auteur nous propose une analyse quant à l’interopérabilité et à la normalisation des outils « visant à faciliter le traitement et la solution judiciaire et extrajudiciaire des différends et qui tiennent compte de la complexité des paramètres juridiques et des flux d’information concernés ». Pour répondre à cette complexité, l’auteur propose la mise en place d’une grille d’analyse des risques juridiques aussi bien pour la justice civile que pénale.

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The principal cause of mortality in patients with acute liver failure (ALF) is brain herniation resulting from intracranial hypertension caused by a progressive increase of brain water. In the present study, ex vivo high-resolution 1H-NMR spectroscopy was used to investigate the effects of ALF, with or without superimposed hypothermia, on brain organic osmolyte concentrations in relation to the severity of encephalopathy and brain edema in rats with ALF due to hepatic devascularization. In normothermic ALF rats, glutamine concentrations in frontal cortex increased more than fourfold at precoma stages, i.e. prior to the onset of severe encephalopathy, but showed no further increase at coma stages. In parallel with glutamine accumulation, the brain organic osmolytes myo-inositol and taurine were significantly decreased in frontal cortex to 63\% and 67\% of control values, respectively, at precoma stages (p<0.01), and to 58\% and 67\%, respectively, at coma stages of encephalopathy (p<0.01). Hypothermia, which prevented brain edema and encephalopathy in ALF rats, significantly attenuated the depletion of myo-inositol and taurine. Brain glutamine concentrations, on the other hand, did not respond to hypothermia. These findings demonstrate that experimental ALF results in selective changes in brain organic osmolytes as a function of the degree of encephalopathy which are associated with brain edema, and provides a further rationale for the continued use of hypothermia in the management of this condition.

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Ammonia is neurotoxic and believed to play a major role in the pathogenesis of hepatic encephalopathy (HE). It has been demonstrated, in vitro and in vivo, that acute and high ammonia treatment induces oxidative stress. Reactive oxygen species (ROS) are highly reactive and can lead to oxidization of proteins resulting in protein damage. The present study was aimed to assess oxidative status of proteins in plasma and brain (frontal cortex) of rats with 4-week portacaval anastomosis (PCA). Markers of oxidative stress, 4-hydroxy-2-nonenal (HNE) and carbonylation were evaluated by immunoblotting in plasma and frontal cortex. Western blot analysis did not demonstrate a significant difference in either HNE-linked or carbonyl derivatives on proteins between PCA and sham-operated control rats in both plasma and frontal cortex. The present study suggests PCA-induced hyperammonemia does not lead to systemic or central oxidative stress.

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Encephalopathy, brain edema and intracranial hypertension are neurological complications responsible for substantial morbidity/mortality in patients with acute liver failure (ALF), where, aside from liver transplantation, there is currently a paucity of effective therapies. Mirroring its cerebro-protective effects in other clinical conditions, the induction of mild hypothermia may provide a potential therapeutic approach to the management of ALF. A solid mechanistic rationale for the use of mild hypothermia is provided by clinical and experimental studies showing its beneficial effects in relation to many of the key factors that determine the development of brain edema and intracranial hypertension in ALF, namely the delivery of ammonia to the brain, the disturbances of brain organic osmolytes and brain extracellular amino acids, cerebro-vascular haemodynamics, brain glucose metabolism, inflammation, subclinical seizure activity and alterations of gene expression. Initial uncontrolled clinical studies of mild hypothermia in patients with ALF suggest that it is an effective, feasible and safe approach. Randomized controlled clinical trials are now needed to adequately assess its efficacy, safety, clinical impact on global outcomes and to provide the guidelines for its use in ALF.

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BACKGROUND: Increased intracranial pressure (ICP) worsens the outcome of acute liver failure (ALF). This study investigates the underlying pathophysiological mechanisms and evaluates the therapeutic effect of albumin dialysis in ALF with use of the Molecular Adsorbents Recirculating System without hemofiltration/dialysis (modified, M-MARS). METHODS: Pigs were randomized into three groups: sham, ALF, and ALF + M-MARS. ALF was induced by hepatic devascularization (time = 0). M-MARS began at time = 2 and ended with the experiment at time = 6. ICP, arterial ammonia, brain water, cerebral blood flow (CBF), and plasma inflammatory markers were measured. RESULTS: ICP and arterial ammonia increased significantly over 6 hrs in the ALF group, in comparison with the sham group. M-MARS attenuated (did not normalize) the increased ICP in the ALF group, whereas arterial ammonia was unaltered by M-MARS. Brain water in the frontal cortex (grey matter) and in the subcortical white matter at 6 hrs was significantly higher in the ALF group than in the sham group. M-MARS prevented a rise in water content, but only in white matter. CBF and inflammatory mediators remained unchanged in all groups. CONCLUSION: The initial development of cerebral edema and increased ICP occurs independently of CBF changes in this noninflammatory model of ALF. Factor(s) other than or in addition to hyperammonemia are important, however, and may be more amenable to alteration by albumin dialysis.

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Hepatic encephalopathy (HE) is a complex neuropsychiatric syndrome which develops as a result of liver failure or disease. Increased concentrations of brain lactate (microdialysate, cerebrospinal fluid, tissue) are commonly measured in patients with HE induced by either acute or chronic liver failure. Whether an increase in brain lactate is a cause or a consequence of HE remains undetermined. A rise in cerebral lactate may occur due to (1) blood-borne lactate (hyperlactataemia) crossing the blood-brain barrier, (2) increased glycolysis due to energy failure or impairment and (3) increased lactate production/release or decreased lactate utilization/uptake. This review explores the different reasons for lactate accumulation in the brain during liver failure and describes the possible roles of lactate in the pathogenesis of HE.

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BACKGROUND & AIMS: Manganese (Mn) deposition could be responsible for the T(1)-weighted magnetic resonance signal hyperintensities observed in cirrhotic patients. These experiments were designed to assess the regional specificity of the Mn increases as well as their relationship to portal-systemic shunting or hepatobiliary dysfunction. METHODS: Mn concentrations were measured in (1) brain samples from basal ganglia structures (pallidum, putamen, caudate nucleus) and cerebral cortical structures (frontal, occipital cortex) obtained at autopsy from 12 cirrhotic patients who died in hepatic coma and from 12 matched controls; and from (2) brain samples (caudate/putamen, globus pallidus, frontal cortex) from groups (n = 8) of rats either with end-to-side portacaval anastomosis, with biliary cirrhosis, or with fulminant hepatic failure as well as from sham-operated and normal rats. RESULTS: Mn content was significantly increased in frontal cortex (by 38\%), occipital cortex (by 55\%), pallidum (by 186\%), putamen (by 66\%), and caudate (by 54\%) of cirrhotic patients compared with controls. Brain Mn content did not correlate with patient age, etiology of cirrhosis, or history of chronic hepatic encephalopathy. In cirrhotic and portacaval-shunted rats, Mn content was increased in pallidum (by 27\% and 57\%, respectively) and in caudate/putamen (by 57\% and 67\%, respectively) compared with control groups. Mn concentration in pallidum was significantly higher in portacaval-shunted rats than in cirrhotic rats. No significant changes in brain Mn concentrations were observed in rats with acute liver failure. CONCLUSIONS: These findings suggest that brain Mn deposition results both from portal-systemic shunting and from liver dysfunction.

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Glutamatergic dysfunction has been suggested to play an important role in the pathogenesis of hepatic encephalopathy (HE) in acute liver failure (ALF). Increased extracellular brain glutamate concentrations have consistently been described in different experimental animal models of ALF and in patients with increased intracranial pressure due to ALF. High brain ammonia levels remain the leading candidate in the pathogenesis of HE in ALF and studies have demonstrated a correlation between ammonia and increased concentrations of extracellular brain glutamate both clinically and in experimental animal models of ALE Inhibition of glutamate uptake or increased glutamate release from neurons and/or astrocytes could cause an increase in extracellular glutamate. This review analyses the effect of ammonia on glutamate release from (and uptake into) both neurons and astrocytes and how these pathophysiological mechanisms may be involved in the pathogenesis of HE in ALF.

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There is increasing evidence that central noradrenaline (NA) transport mechanisms are implicated in the central nervous system complications of acute liver failure. In order to assess this possibility, binding sites for the high affinity NA transporter ligand [3H]-nisoxetine were measured by quantitative receptor autoradiography in the brains of rats with acute liver failure resulting from hepatic devascularization and in appropriate controls. In vivo microdialysis was used to measure extracellular brain concentrations of NA. Severe encephalopathy resulted in a significant loss of [3H]-nisoxetine sites in frontal cortex and a concomitant increase in extracellular brain concentrations of NA in rats with acute liver failure. A loss of transporter sites was also observed in thalamus of rats with acute liver failure. This loss of NA transporter sites could result from depletion of central NA stores due to a reserpine-like effect of ammonia which is known to accumulate to millimolar concentrations in brain in ischemic liver failure. Impaired NA transport and the consequent increase in synaptic concentrations and increased stimulation of neuronal and astrocytic noradrenergic receptors could be implicated in the pathogenesis of the encephalopathy and brain edema characteristic of acute liver failure.

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Strategies aimed at the lowering of blood ammonia remain the treatment of choice in portal-systemic encephalopathy (PSE). L-ornithine-L-aspartate (OA) has recently been shown to be effective in the prevention of ammonia-precipitated coma in humans with PSE. These findings prompted the study of mechanisms of the protective effect of OA in portacaval-shunted rats in which reversible coma was precipitated by ammonium acetate administration (3.85 mmol/kg i.p.). OA infusions (300 mg/kg/h, i.v) offered complete protection in 12/12 animals compared to 0/12 saline-infused controls. This protective effect was accompanied by significant reductions of blood ammonia, concomitant increases of urea production and significant increases in blood and cerebrospinal fluid (CSF) glutamate and glutamine. Increased CSF concentrations of leucine and alanine also accompanied the protective effect of OA. These findings demonstrate the therapeutic efficacy of OA in the prevention of ammonia-precipitated coma in portacaval-shunted rats and suggest that this protective effect is both peripherally-mediated (increased urea and glutamine synthesis) and centrally-mediated (increased glutamine synthesis).

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Amongst the potential neurotoxins implicated in the pathogenesis of hepatic encephalopathy, manganese emerges as a new candidate. In patients with chronic liver diseases, manganese accumulates in blood and brain leading to pallidal signal hyperintensity on T1-weighted Magnetic Resonance (MR) Imaging. Direct measurements in globus pallidus obtained at autopsy from cirrhotic patients who died in hepatic coma reveal 2 to 7-fold increases of manganese concentration. The intensity of pallidal MR images correlates with blood manganese and with the presence of extrapyramidal symptoms occurring in a majority of cirrhotic patients. Liver transplantation results in normalization of pallidal MR signals and disappearance of extrapyramidal symptoms whereas transjugular intrahepatic portosystemic shunting induces an increase in pallidal hyperintensity with a concomitant deterioration of neurological dysfunction. These findings suggest that the toxic effects of manganese contribute to extrapyramidal symptoms in patients with chronic liver disease. The mechanisms of manganese neurotoxicity are still speculative, but there is evidence to suggest that manganese deposition in the pallidum may lead to dopaminergic dysfunction. Future studies should be aimed at evaluating the effects of manganese chelation and/or of treatment of the dopaminergic deficit on neurological symptomatology in these patients.

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It has been suggested that reduced astrocytic uptake of neuronally released glutamate contributes to the pathogenesis of hepatic encephalopathy in acute liver failure. In order to further address this issue, the recently cloned and sequenced astrocytic glutamate transporter GLT-1 was studied in brain preparations from rats with ischemic liver failure induced by portacaval anastomosis followed 24 h later by hepatic artery ligation and from appropriate sham-operated controls. GLT-1 expression was studied using reverse transcriptase-polymerase chain reaction (RT-PCR). Expression of GLT-1 transcript was significantly decreased in frontal cortex at coma stages of acute liver failure. Western blotting using a polyclonal antibody to GLT-1 revealed a concomitant decrease in expression of transporter protein in the brains of rats with acute liver failure. Reduced capacity of astrocytes to reuptake neuronally released glutamate, resulting from a GLT-1 transporter deficit and the consequently compromised neuron-astrocytic trafficking of glutamate could contribute to the pathogenesis of hepatic encephalopathy and brain edema, two major complications of acute liver failure.