Academic literature on the topic 'ARN – Troubles du métabolisme'
Create a spot-on reference in APA, MLA, Chicago, Harvard, and other styles
Consult the lists of relevant articles, books, theses, conference reports, and other scholarly sources on the topic 'ARN – Troubles du métabolisme.'
Next to every source in the list of references, there is an 'Add to bibliography' button. Press on it, and we will generate automatically the bibliographic reference to the chosen work in the citation style you need: APA, MLA, Harvard, Chicago, Vancouver, etc.
You can also download the full text of the academic publication as pdf and read online its abstract whenever available in the metadata.
Journal articles on the topic "ARN – Troubles du métabolisme"
Jabi, R., and M. Bouziane. "Phéochromocytome et les troubles du métabolisme glucidique." Journal de Chirurgie Viscérale 159, no. 4 (September 2022): S100. http://dx.doi.org/10.1016/j.jchirv.2022.07.101.
Full textThauvin-Robinet, C., and E. Roze. "Troubles du métabolisme des cobalamines chez l’adulte." Revue Neurologique 163, no. 10 (October 2007): 911–18. http://dx.doi.org/10.1016/s0035-3787(07)92634-x.
Full textMarcelli, Christian. "Maladies génétiques avec troubles du métabolisme phosphocalcique." Revue du Rhumatisme Monographies 79, no. 4 (September 2012): 262–68. http://dx.doi.org/10.1016/j.monrhu.2012.09.001.
Full textJabi, R., and M. Bouziane. "Phéochromocytome et les troubles du métabolisme glucidique." Journal de Chirurgie Viscérale 157, no. 3 (September 2020): S171. http://dx.doi.org/10.1016/j.jchirv.2020.07.094.
Full textBauduer, F. "Anémies par troubles du métabolisme du fer." EMC - Hématologie 4, no. 1 (January 2009): 1–11. http://dx.doi.org/10.1016/s1155-1984(09)50262-2.
Full textMilh, M., A. Cano, C. Halbert, and B. Chabrol. "Déficit moteur aigu et troubles du métabolisme énergétique." Archives de Pédiatrie 18, no. 5 (May 2011): H136—H137. http://dx.doi.org/10.1016/s0929-693x(11)71005-3.
Full textTeboul, Michèle, and Franck Delaunay. "Les oscillations harmoniques des rythmes circadiens sortent de l’ombre." médecine/sciences 39, no. 6-7 (June 2023): 544–50. http://dx.doi.org/10.1051/medsci/2023079.
Full textCortet, Bernard. "Endocrinopathies avec troubles du métabolisme phosphocalcique (hors hyperparathyroïdies primitives)." Revue du Rhumatisme Monographies 79, no. 4 (September 2012): 244–47. http://dx.doi.org/10.1016/j.monrhu.2012.03.003.
Full textAnosa, V. O. "Changements hématologique et biochimique dans la trypanosomose humaine et animale." Revue d’élevage et de médecine vétérinaire des pays tropicaux 41, no. 2 (February 1, 1988): 151–64. http://dx.doi.org/10.19182/remvt.8716.
Full textAnosa, V. O. "Changements hématologique et biochimique dans la trypanosomosc humaine et animale." Revue d’élevage et de médecine vétérinaire des pays tropicaux 41, no. 1 (January 1, 1988): 65–78. http://dx.doi.org/10.19182/remvt.8732.
Full textDissertations / Theses on the topic "ARN – Troubles du métabolisme"
Clapé, Cyrielle. "Contrôle du métabolisme et de la prolifération par les microARN et les acteurs du cycle cellulaire." Montpellier 1, 2009. http://www.theses.fr/2009MON1T008.
Full textParticipation of cell cycle regulators in metabolic processes represents a new link between cell proliferation and cell metabolism. External stimuli, like cold and fasting conditions, could induce a proliferative response, but also a metabolic response. Previously, we have shown that the cell cycle regulators, CDK4, pRB and E2F1 play a crucial role during adipogenesis and pancreatic function. Here we show that E2F1 could actively participate in regulation of mitochondrial biogenesis and function. E2FA represses the expression of Pgc-1 alpha, which is master regulator of energy homeostasy in brown adipose tissue and muscle. Interestingly mitochondrial genes in cdk4-/- mice seems to be inversely correlated with gene expression in e2fl-/- mice. Finally, CDK4 coould [i. E. Could] play a role in lipid metabolism. MicroRNAs are endogenous, non-coding and small RNAs, which negatively regulate gene expression and are implicated in many cellular processes. We showed that mir-143 expression is inversely correlated with advanced stages of prostate cancer. ERK5, a target of mir-143, is known to promote the proliferation and its expression is aberrant in prostate cancer. Mir-143 could be directly implicated in carcinogenesis througe [i. E. Through] ERK5. This suggest taht [i. E. That] mir-143 could be a tumor suppressor in prostate cancer. Our results show that metabolic and proliferative changes observed in cancer development are closely linked, but also regulated by cell cycle regulators and microRNAs
Marguet, Christophe. "Contribution à l'étude des pathologies du métabolisme phosphocalcique : étude de la sous-unité de la proteine G stimulatrice de l'adényl-cyclase (Gsα)." Rouen, 1998. http://www.theses.fr/1999ROUES035.
Full textLallemant, Louison. "Pathologie neuronale et gliale en lien avec les atteintes neurologiques de la dystrophie myotonique de type 1 (DM1)." Electronic Thesis or Diss., Sorbonne université, 2023. https://accesdistant.sorbonne-universite.fr/login?url=https://theses-intra.sorbonne-universite.fr/2023SORUS404.pdf.
Full textMyotonic dystrophy type 1 (DM1) is a severe neuromuscular disease affecting many tissues and organs. The debilitating neurological manifestations vary from executive dysfunction in adults, to attention deficits and low processing speed in pediatric patients, to severe intellectual disability in congenital cases. DM1 neurological manifestations have a profound impact on the daily life of patients and their families, and there is currently no treatment for this disease. DM1 is caused by the abnormal expansion of a CTG repeat in DMPK gene. Expanded DMPK transcripts are toxic because they accumulate in the cell nucleus, disrupting the activity of important RNA-binding proteins. As a consequence, DM1 cells show abnormal RNA metabolism and processing of many downstream transcripts. Despite progress in the understanding of the muscle pathophysiology, the disease mechanisms remain unclear in the CNS. We still do not know which cell types and molecular pathways are primarily affected in the brain and how they contribute to DM1 neurological symptoms. In order to investigate this problem, our laboratory has developed a transgenic mouse model of DM1: DMSXL mice express expanded human DMPK transcripts in multiple tissues, notably in the brain, and display relevant behavioral, electrophysiological and neurochemical phenotypes. Using this mouse model, the objective of my thesis was to better understand the cellular and molecular mechanisms involved in the neuronal and non-neuronal impairment linked to the neurological damages of DM1. I first focused on the characterization of the different cell types in the DMSXL brain. A multi-omics study was carried out on DMSXL neurons, astrocytes and oligodendrocytes. Our results, which show that glial cells are more impacted by CTG repeats, have allowed us to better understand the cellular and molecular mechanisms of DM1 in the CNS, but above all to emphasize the importance of studying not only the neurons, but also astrocytes and oligodendrocytes in the pathological context of DM1. I then got involved in the study of astrocyte pathology in DM1. We thus demonstrated that DMSXL astrocytes exhibited reduced ramification and impaired cell adhesion, and had a strong negative impact on neuritogenesis. In the same time, I also participated in the study of oligodendroglia impairment in DM1. We found that the toxic CUG RNA disrupts the molecular program of oligodendrocyte (OL) differentiation, impairing the transcriptome changes occurring during the oligodendrocyte precursor cells (OPC)-OL transition and leading to transient hypomyelination in mice. I also studied the neuronal pathology in DMSXL mice. Our results demonstrated that the accumulation of toxic RNA foci in neurons perturbs mainly protein phosphorylation, which seems to lead to neuronal morphological defects associated with vesicle dynamics impairment and axonal transport defects. The three main cell types of the brain therefore present significant damage in the context of DM1, which could have an impact on crucial processes of cerebral functioning. Indeed, we have demonstrated an alteration in neurotransmission and synaptic plasticity in DMSXL mice. All together my work has provided novel insight into the cell-specific mechanisms operating in DM1, demonstrating the implication of astrocyte, oligodendrocyte and neuron defects in a DM1mouse model, and contributing towards an integrative understanding of brain pathology
Quessard, Laurent. "Déplétion en Adn mitochondrial chez l'enfant : à propos d'un cas d'encéphalomyopathie de révélation précoce." Bordeaux 2, 1996. http://www.theses.fr/1996BOR2M102.
Full textTartarin, Pauline. "Rôle de la voie de signalisation AMPK/mTOR dans la fonction de reproduction." Thesis, Tours, 2013. http://www.theses.fr/2013TOUR4009/document.
Full textIn mammals, the energy metabolism exerts a strong influence on fertility. In females as in males, either a drop or an excess of the nutritional supplies induce modulations of the hormonal synthesis as well as viable gametes production. Our objective was 1) to define the role of AMPK, the AMP-activated protein kinase, a cell sensor of the energy reserves, in male reproduction; 2) to study the involvement of mTORC1, the mammalian target of rapamycin complex 1, another indicator of metabolism, in the cells of the central nervous system that regulate fertility. We have shown a decrease of fertility, linked to a testicular hyperandrogenia and dysfunctional spermatozoa in α1AMPK deficient mice. Moreover, in utero exposure to an AMPK activator, the metformin, induced a decrease in testicular volume and testosterone concentration (17dpc). Finally, inactivation of mTORC1 by interferent RNA in the adjacents cells of the hypothalamus tends to increase litter size, linked to a rise of FSH and the terminal folliculogenesis. In conclusion, this study confirms the role of these two complexes, energetic sensors, on the functionality of the hypothalamo-pituitary-gonadal axis
Delvenne, Véronique. "Le métabolisme cérébral dans les troubles des conduites alimentaires." Doctoral thesis, Universite Libre de Bruxelles, 1995. http://hdl.handle.net/2013/ULB-DIPOT:oai:dipot.ulb.ac.be:2013/212471.
Full textShleifer, Michae͏̈l. "Troubles du métabolisme lipidique et athérosclérose-études et stratégies." Paris 5, 1997. http://www.theses.fr/1997PA05P124.
Full textLieber, Ari Leib. "Macro- et microcirculation au cours des troubles du métabolisme glucidique." Paris 7, 2012. http://www.theses.fr/2012PA077163.
Full textHigh blood pressure and glucose metabolism disorders share common comorbidities that originate from a common ground : the vessel and its annexes. Epidemiological analysis of predictors of cardiovascular risk is based on the analysis of the macrocirculation with arterial stiffness, wave reflections, pulse pressure, and of the microcirculation due to structural changes of arterioles with target organ damage. We observed in this work that arterial stiffness was present in hypertensive diabetics. Among diabetics, those on insulin had a lower augmentation index, perhaps due to the vasodilatory effects of insulin on a ground where the mitogenic effects of long-term hyperinsulinism have stiffened the arterial wall. The criterion of disorder of glucose metabolism is probably responsible for the arterial stiffness in patients with metabolic syndrome. This study found that patients receiving ACE inhibitors and insulin patients had a higher PWV and PP, probably because they had the most advanced disease. Finally the question of wave reflection was assessed by measuring its speed and magnitude and the hypothesis of increased pressure made us think that thewave reflection does not return faster, but sooner and this had been added to the systolic peak systolic because the reflection sites were closer due to the small size in women or the microcirculatory damage
Hilaire, Nathalie. "Métabolisme cellulaire des lipides neutres cytoplasmiques et myopathie à surcharge lipidique multisystémique." Toulouse 3, 1994. http://www.theses.fr/1994TOU30051.
Full textDujeancourt, Laurent. "Métabolisme et traduction des ARN mitochondriaux chez la levure S. pombe." Phd thesis, Université d'Evry-Val d'Essonne, 2012. http://tel.archives-ouvertes.fr/tel-00845328.
Full textBooks on the topic "ARN – Troubles du métabolisme"
Lamond, Angus I. Pre-mRNA processing. New York: Springer-Verlag, 1995.
Find full textLamond, Angus I. Pre-mRNA processing. Austin: R.G. Landes Co., 1995.
Find full textJ, Favus Murray, and American Society for Bone and Mineral Research., eds. Primer on the metabolic bone diseases and disorders of mineral metabolism. 6th ed. Washington, DC: American Society for Bone and Mineral Research, 2006.
Find full textPerlemuter, Léon. Diabète et maladies métaboliques. 4th ed. Paris: Masson, 2003.
Find full text1944-, Grimaldi André, ed. Dyslipidémie et athérogenèse. Paris: Elsevier, 2004.
Find full textPerlemuter, Léon. Diabète et maladies métaboliques. Paris: Masson, 1987.
Find full textDisorders of lipid metabolism. New York: Plenum Press, 1990.
Find full text1955-, Gaudet Daniel, Université Laval. Centre de recherche sur les maladies lipidiques, and Complexe hospitalier de la Sagamie. Clinique des maladies lipidiques, eds. Les dyslipoprotéinémies: L'approche clinique. 2nd ed. Sainte-Foy: Centre de recherche sur les maladies lipidiques, Centre hospitalier universitaire de Québec, Pavillon CHUL, 1997.
Find full textMundy, Gregory R. Calcium homeostasis: Hypercalcemia and hypocalcemia. London: Dunitz, 1989.
Find full textCalcium homeostasis: Hypercalcemia and hypocalcemia. 2nd ed. London: M. Dunitz, 1990.
Find full textBook chapters on the topic "ARN – Troubles du métabolisme"
Bourrillon, A. "Métabolisme – Troubles nutritionnels." In Pédiatrie, 567–97. Elsevier, 2011. http://dx.doi.org/10.1016/b978-2-294-71375-0.50020-9.
Full text