Littérature scientifique sur le sujet « Absorption intestinale de glucose »
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Articles de revues sur le sujet "Absorption intestinale de glucose"
Play, B., Z. Haikal, I. Fromont, O. Ghiringhelli, D. Lairon et D. Jourdheuil-Rahmani. « C28 - Absorption intestinale du cholesterol : regulation par le glucose apical ». Gastroentérologie Clinique et Biologique 30, no 1 (janvier 2006) : 87. http://dx.doi.org/10.1016/s0399-8320(06)73110-4.
Texte intégralCottrell, J. J., B. Stoll, R. K. Buddington, J. E. Stephens, L. Cui, X. Chang et D. G. Burrin. « Glucagon-like peptide-2 protects against TPN-induced intestinal hexose malabsorption in enterally refed piglets ». American Journal of Physiology-Gastrointestinal and Liver Physiology 290, no 2 (février 2006) : G293—G300. http://dx.doi.org/10.1152/ajpgi.00275.2005.
Texte intégralLeonie Los, E., Henk Wolters, Frans Stellaard, Folkert Kuipers, Henkjan J. Verkade et Edmond H. H. M. Rings. « Intestinal capacity to digest and absorb carbohydrates is maintained in a rat model of cholestasis ». American Journal of Physiology-Gastrointestinal and Liver Physiology 293, no 3 (septembre 2007) : G615—G622. http://dx.doi.org/10.1152/ajpgi.00188.2007.
Texte intégralBalakrishnan, A. « Micromanaging the gut : unravelling the regulatory pathways that mediate the intestinal adaptive response ». Annals of The Royal College of Surgeons of England 100, no 3 (mars 2018) : 165–71. http://dx.doi.org/10.1308/rcsann.2017.0174.
Texte intégralStümpel, Frank, Tomas Kucera et Kurt Jungermann. « Impaired stimulation of intestinal glucose absorption via hepatoenteral nerves in streptozotocin-diabetic rats ». American Journal of Physiology-Gastrointestinal and Liver Physiology 277, no 2 (1 août 1999) : G285—G291. http://dx.doi.org/10.1152/ajpgi.1999.277.2.g285.
Texte intégralDyer, J., K. Daly, K. S. H. Salmon, D. K. Arora, Z. Kokrashvili, R. F. Margolskee et S. P. Shirazi-Beechey. « Intestinal glucose sensing and regulation of intestinal glucose absorption ». Biochemical Society Transactions 35, no 5 (25 octobre 2007) : 1191–94. http://dx.doi.org/10.1042/bst0351191.
Texte intégralGromova, Lyudmila V., Serguei O. Fetissov et Andrey A. Gruzdkov. « Mechanisms of Glucose Absorption in the Small Intestine in Health and Metabolic Diseases and Their Role in Appetite Regulation ». Nutrients 13, no 7 (20 juillet 2021) : 2474. http://dx.doi.org/10.3390/nu13072474.
Texte intégralWang, Yun, Zhangjian Chen, Shi Chen, Lin Zhuo, Lin Zhao et Guang Jia. « Effect of Short-Term Exposure to Titanium Dioxide Nanoparticles on Intestinal Absorption of Glucose by Ex Vivo Everted Rat Gut Sac Model ». Journal of Nanoscience and Nanotechnology 21, no 9 (1 septembre 2021) : 4586–95. http://dx.doi.org/10.1166/jnn.2021.19350.
Texte intégralRhoads, J. M., E. O. Keku, L. E. Bennett, J. Quinn et J. G. Lecce. « Development of L-glutamine-stimulated electroneutral sodium absorption in piglet jejunum ». American Journal of Physiology-Gastrointestinal and Liver Physiology 259, no 1 (1 juillet 1990) : G99—G107. http://dx.doi.org/10.1152/ajpgi.1990.259.1.g99.
Texte intégralInoue, Makoto, Yuichi Tanaka, Sakiko Matsushita, Yuri Shimozaki, Hirohito Ayame et Hidenori Akutsu. « Xenogeneic-Free Human Intestinal Organoids for Assessing Intestinal Nutrient Absorption ». Nutrients 14, no 3 (19 janvier 2022) : 438. http://dx.doi.org/10.3390/nu14030438.
Texte intégralThèses sur le sujet "Absorption intestinale de glucose"
UNTERSTOCK, LAURENCE. « Sucres et absorption intestinale du calcium ». Strasbourg 1, 1993. http://www.theses.fr/1993STR15044.
Texte intégralMorgan, Emma Louise. « Intestinal glucose and calcium absorption ». Thesis, University of York, 2004. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.424573.
Texte intégralHabold, Caroline. « Mécanismes cellulaires et moléculaires de l'absorption intestinale au cours du jeûne et après réalimentationTitre ». Université Louis Pasteur (Strasbourg) (1971-2008), 2004. https://publication-theses.unistra.fr/public/theses_doctorat/2004/HABOLD_Caroline_2004.pdf.
Texte intégralAfter the early adaptation to fasting (phase I), an atrophy of the intestinal mucosa occurs during the period which is characterized by the mobilization of fat stores and an efficient protein sparing. This atrophy is aggravated during the further rise in protein utilization (phase III). Cell proliferation and migration decrease during phase II, but strongly increase during a phase III fast and may therefore initiate mucosal repair well before food becomes available. Also, a phase III fast induces an arrest in intestinal epithelial apoptosis at the tip of the villi, suggesting preservation of absorptive cells. The lack of apoptosis and initiation of cell proliferation during phase III fasting may be triggered by a decrease in the cytokines TGFb1, and TNF and in the intestine specific transcription factor Cdx2. They are concomitant with a peak of locomotor activity in these animals induced by a rise in plasma corticosterone and reflecting the search for food. Intestinal gluconeogenesis is increased during a phase III fast, when the availability of amino acids used as precursors raises. At the same time, the active glucose and peptide transporters are enhanced. Glucose can then, be immediately absorbed at low concentrations through SGLT1. Glucose and peptides should be used as a source of energy and peptides should also provide body protein precursors. Finally, refeeding following either a phase II or a phase III fast stimulates facilitative fatty acids and glucose transports, so that large amounts of these metabolites can be transported from the intestinal lumen to the blood stream and provides energy. The unaltered and even increased absorption capabilities of the intestine during a phase III fast when the animal reaches a low threshold in nutrient reserves, coincides with a search for food activity and could permit food assimilation immediately after refeeding
Baud, Grégory. « Modulation de l’absorption intestinale postprandiale du glucose apès Roux-en-Y Gastric Bypass chez le miniporc ». Thesis, Lille 2, 2016. http://www.theses.fr/2016LIL2S042/document.
Texte intégralType 2 diabetes (T2D) is characterized primarily as a combined defect of insulin secretion and insulin action. For nearly a decade, the somewhat mysterious but spectacular benefit of metabolic surgery, and more specifically of Roux-en-Y gastric bypass (RYGB), on glucose control has been caused a questioning the current paradigm of T2D management. Gastro-intestinal exclusion by RYGB improves glucose metabolism, independent of weight loss. Although changes in intestinal bile trafficking have been shown to play a role, the underlying mechanisms are unclear. We performed RYGB in minipigs and showed that the intestinal uptake of ingested glucose is blunted in the bile deprived alimentary limb (AL). Glucose uptake in the AL was restored by the addition of bile, and this effect was abolished when active glucose intestinal transport was blocked with phlorizin. Sodium-glucose cotransporter 1 remained expressed in the AL, while intraluminal sodium content was markedly decreased. Adding sodium to the AL had the same effect as bile on glucose uptake. It also increased postprandial blood glucose response in conscious minipigs following RYGB. The decrease in intestinal uptake of glucose after RYGB was confirmed in humans. Our results demonstrate that bile diversion affects postprandial glucose metabolism by modulating sodium-glucose intestinal cotransport
Ogawa, Eiichi. « The effect of gastric inhibitory polypeptide on intestinal glucose absorption and intestinal motility in mice ». Kyoto University, 2011. http://hdl.handle.net/2433/142540.
Texte intégralDursoniah, Danilo. « Modélisation computationnelle de l’absorption intestinale du glucose pour la prédiction du diabète de Type 2 ». Electronic Thesis or Diss., Université de Lille (2022-....), 2024. http://www.theses.fr/2024ULILB023.
Texte intégralResearch on type 2 diabetes (T2D) has so far predominantly focused on the role of pancreatic beta function and insulin sensitivity. Numerous indices, of varying precision and relevance, have been proposed to measure these factors. These indices are calculated using more or less complex models based on static fasting glucose data or dynamic oral glucose test data.Bariatric surgery has highlighted the existence of a third parameter that could potentially be a cause of T2D: intestinal glucose absorption (IGA). Unlike pancreatic beta function and insulin sensitivity, no index has yet been proposed to measure the effect of this parameter on T2D. Experimentally measuring intestinal glucose absorption requires access to the portal vein, which is practically impossible in humans. An experimental multi-tracer technique using labeled glucose has been proposed as an alternative, but it remains very difficult to implement and requires expertise that prevents its routine clinical use. It should also be noted that the modeling approaches proposed so far to predict the postprandial glucose response require this gold standard. The few existing models are only partially mechanistic and relatively complex. This thesis proposes to overcome these problems.Thus, as a first contribution, we initially reproduce the postprandial model of Dalla Man and the simulations from the reference article (Dalla Man et al., 2007). Since this model is exclusively described using ODEs, we have partially transcribed it into a system of chemical reactions to put the relevant physiological mechanisms into perspective. This implementation first allowed us to carry out reproducibility work - despite the absence of the original data from the reference article - and then to compare the model with our OBEDIAB clinical data, thus showing its limitations in terms of estimations and identifiability.As a second major contribution, to circumvent the use of the multi-tracer gold standard, we used D-xylose, a glucose analog, as a biomarker to directly observe IGA, available in our pre-clinical dataset from experiments conducted on minipigs. To our knowledge, we developed the first D-xylose model. This model was selected through parameter estimation on our datasets, followed by a practical identifiability analysis and a global sensitivity analysis. These analyses also allowed us to study the relative contributions of gastric emptying and intestinal absorption on the D-xylose dynamic profile. Finally, we will explore the links between blood glucose modeling and postprandial D-xylose response modeling while considering the clinical applications and limitations of the D-xylose model.Keywords: Systems biology, modeling, chemical reaction networks, ordinary differential equations, parameter estimation, identifiability analysis, type 2 diabetes, D-xylose
Pennington, Adele Marie. « Short-term regulation of glucose absorption, transport and utilisation by rat small intestine ». Thesis, University of York, 1992. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.306419.
Texte intégralStearns, Adam T. « Regulation of the intestinal sodium/glucose cotransporter SGLT1 in health and disease ». Thesis, University of Oxford, 2009. http://ora.ox.ac.uk/objects/uuid:68a7c42c-33f7-47e9-86eb-04575d4baa36.
Texte intégralSnoussi, Chahira. « Effet du thé en décoction et ses dérivés polyphénoliques sur l'absorption intestinale des carbohydrates et des lipides ». Sorbonne Paris Cité, 2016. http://www.theses.fr/2016USPCC007.
Texte intégralTea containing polyphenols has been reported to exert anti-diabetic and anti-obesity effects but the impact of chronic consumption of tea decoction was poorly reported. The aim of this study was to explore in rat fed normal or high-fat diet, the effects of green tea decoction (GTD) or black tea decoction (BTD) on intestinal glucose and lipids absorption. We demonstrate that tea leaves cooked in water for only 15 min contain higher amounts of polyphenols compounds. The acute or chronic oral administration of GTD reduced intestinal SGLT1 :GLUT2 ratio. Consumption of GTD and BTD reduce intestinal absorption of lipids in rats fed high fat diet by enhancing their fecal excretion with a more pronounced effect of BTD. In conclusion, the tradional cooking of tea in Tunisia containing higher amounts of polyphenols compounds, a natural alternative in the prevention of obesity and diabetes
Salvini, Séverine. « Influence des glucides alimentaires sur l'absorption intestinale du cholestérol : études chez l'homme sain et sur modèle entérocytaire humain Caco-2 ». Aix-Marseille 2, 2001. http://theses.univ-amu.fr.lama.univ-amu.fr/2001AIX20694.pdf.
Texte intégralLivres sur le sujet "Absorption intestinale de glucose"
Starp, Christiane. Intestinale Absorption von Flavan-3-olen : In vitro Studien an Bürstensaummenbranvesikeln (BSMV) aus Schweinedünndarm. [s.l.] : [s.n.], 2003.
Trouver le texte intégralMendel, Friedman, dir. Absorption and utilization of amino acids. Boca Raton, Fla : CRC Press, 1989.
Trouver le texte intégralBonn, Universität, dir. Der [13C2]Oxalat-Absorptionstest : Referenzwerte und Einfluss von Calium und Magnesium auf die intestinale Oxalat-Absorption. [s.l.] : [s.n.], 2003.
Trouver le texte intégral1934-, Kies Constance, American Chemical Society Meeting et American Chemical Society. Division of Agricultural and Food Chemistry., dir. Nutritional bioavailability of calcium. Washington, D.C : American Chemical Society, 1985.
Trouver le texte intégralR, Friend David, dir. Oral colon-specific drug delivery. Boca Raton : CRC Press, 1992.
Trouver le texte intégralPouros, Jeff. METFORMIN : Improves Glycemic Control by Improving Insulin Sensitivity and Decreasing Intestinal Absorption of Glucose. Independently Published, 2019.
Trouver le texte intégralTewelde, Estifanos Hagos. The effects of oral hypoglycaemic sulfonylureas on intestinal glucose absorption and on the refractory period of isolated atrium. Bradford, 1985.
Trouver le texte intégralFat Absorption. Taylor & Francis Group, 2017.
Trouver le texte intégralFat Absorption. Taylor & Francis Group, 2017.
Trouver le texte intégralFriedman, Mendel. Absorption and Utilization of Amino Acids : Volume I. Taylor & Francis Group, 2019.
Trouver le texte intégralChapitres de livres sur le sujet "Absorption intestinale de glucose"
Toeller, M. « Modulation of intestinal glucose absorption : postponement of glucose absorption by a-glucosidase inhibitors ». Dans Pharmacology of Diabetes, sous la direction de C. E. Mogensen et E. Standl, 93–112. Berlin, Boston : De Gruyter, 1990. http://dx.doi.org/10.1515/9783110850321-009.
Texte intégralMcNeish, A. S., D. A. Ducker, I. F. Warren, D. P. Davies, M. J. Harran et C. A. Hughes. « The Influence of Gestational Age and Size on the Absorption of D-Xylose and D-Glucose from the Small Intestine of the Human Neonate ». Dans Ciba Foundation Symposium 70 - Development of Mammalian Absorptive Processes, 267–80. Chichester, UK : John Wiley & Sons, Ltd., 2008. http://dx.doi.org/10.1002/9780470720530.ch15.
Texte intégralMüller, Günter. « Measurement of Glucose Absorption ». Dans Drug Discovery and Evaluation : Pharmacological Assays, 3059–70. Cham : Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-05392-9_153.
Texte intégralMüller, Günter. « Measurement of Glucose Absorption ». Dans Drug Discovery and Evaluation : Pharmacological Assays, 1–13. Berlin, Heidelberg : Springer Berlin Heidelberg, 2015. http://dx.doi.org/10.1007/978-3-642-27728-3_153-1.
Texte intégralPehlivan, Melisa. « Biochemistry of Alcohols ». Dans Medicolegal Aspect of Alcohol, 59–76. Istanbul : Nobel Tip Kitabevleri, 2024. http://dx.doi.org/10.69860/nobel.9786053359487.4.
Texte intégralSchroeder, P., F. Sandforth et E. Deltz. « Glucose Absorption After Heterotopic Small-Bowel Transplantation ». Dans Small-Bowel Transplantation, 74–78. Berlin, Heidelberg : Springer Berlin Heidelberg, 1986. http://dx.doi.org/10.1007/978-3-642-71087-2_16.
Texte intégralLarsen, Erik Hviid, et Jens Nørkær Sørensen. « Stationary and Nonstationary Ion and Water Flux Interactions in Kidney Proximal Tubule : Mathematical Analysis of Isosmotic Transport by a Minimalistic Model ». Dans Reviews of Physiology, Biochemistry and Pharmacology, 101–47. Cham : Springer International Publishing, 2019. http://dx.doi.org/10.1007/112_2019_16.
Texte intégralTura, Andrea, et Giovanni Pacini. « Simple Parameters Describing Gut Absorption and Lipid Dynamics in Relation to Glucose Metabolism During a Routine Oral Glucose Test ». Dans Data-driven Modeling for Diabetes, 151–63. Berlin, Heidelberg : Springer Berlin Heidelberg, 2014. http://dx.doi.org/10.1007/978-3-642-54464-4_7.
Texte intégralKelleci Celik, Feyza. « Antidiabetic Drug Interactions ». Dans Current Perspective on Diabetes Mellitus in Clinical Sciences, 27–44. Istanbul : Nobel Tip Kitabevleri, 2023. http://dx.doi.org/10.69860/nobel.9786053359111.4.
Texte intégralMactier, R. A., R. Khanna, Z. J. Twardowski et K. D. Nolph. « Lymphatic Absorption in Continuous Ambulatory Peritoneal Dialysis Patients with Normal and High Transperitoneal Glucose Transport ». Dans Ambulatory Peritoneal Dialysis, 71–75. Boston, MA : Springer US, 1990. http://dx.doi.org/10.1007/978-1-4615-9555-7_17.
Texte intégralActes de conférences sur le sujet "Absorption intestinale de glucose"
Ozawa, Shinta, Neil Irvin Cabello, Yue Zhao et Takao Fuji. « Nondestructive Detection of Low Concentrations Glucose via Broadband Background-Free Mid-Infrared Absorption Spectroscopy ». Dans 2024 Conference on Lasers and Electro-Optics Pacific Rim (CLEO-PR), 1–2. IEEE, 2024. http://dx.doi.org/10.1109/cleo-pr60912.2024.10676469.
Texte intégralMahdhani, Abbilah Ero, Venty Suryanti, Khoirun Nisa Ashar, Vicky Ahava Ferdinansyah et Alifiananda Rahmatul Dafa Kesuma. « Bioconversion of Water Hyacinth (<i>Eichhornia crassipes</i>) Cellulose into Glucose by <i>Trichoderma viride</i> ; ». Dans 8th International Conference on Advanced Material for Better Future, 13–22. Switzerland : Trans Tech Publications Ltd, 2025. https://doi.org/10.4028/p-rd26vh.
Texte intégralDursoniah, Danilo, Maxime Folschette, Rebecca Goutchtat, Violeta Raverdy, François Pattou et Cédric Lhoussaine. « Modeling Intestinal Glucose Absorption from D-Xylose Data ». Dans 15th International Conference on Bioinformatics Models, Methods and Algorithms. SCITEPRESS - Science and Technology Publications, 2024. http://dx.doi.org/10.5220/0012358300003657.
Texte intégralKumagai, Hitomi, Shigenobu Ina, Aya Hamada, Chiaki Sugimoto et Yusuke Yamaguchi,. « Rice Albumin Hydrolysates Suppress Glucose Absorption from the Small Intestine by Dual Function ». Dans Virtual 2020 AOCS Annual Meeting & Expo. American Oil Chemists' Society (AOCS), 2020. http://dx.doi.org/10.21748/am20.153.
Texte intégralRichter, Jonathan, Gabriella Shull et Gretchen Mahler. « TiO2 nanoparticle ingestion alters glucose absorption in an in vitro model of the intestinal epithelium ». Dans 2015 41st Annual Northeast Biomedical Engineering Conference (NEBEC). IEEE, 2015. http://dx.doi.org/10.1109/nebec.2015.7117124.
Texte intégralPolozov, Alexandr, Yulia Dmitrieva, Elizaveta Savochkina, Anna Alekseeva, Anastasia Sepp, Andrey Gruzdkov et Luidmila Gromova. « COMPARATIVE CONTRIBUTION OF ACTIVE TRANSPORT AND FACILITATED DIFFUSION TO THE ABSORPTION OF GLUCOSE IN THE SMALL INTESTINE OF RATS AT EXPERIMENTAL TYPE 2 DIABETES ». Dans XVI International interdisciplinary congress "Neuroscience for Medicine and Psychology". LLC MAKS Press, 2020. http://dx.doi.org/10.29003/m1211.sudak.ns2020-16/378-379.
Texte intégralKim, Do-Hyun, Ilko K. Ilev et Jin U. Kang. « Using Mid-Infrared Glucose Absorption Peak Changes for High-Precision Glucose Detection ». Dans LEOS 2007 - IEEE Lasers and Electro-Optics Society Annual Meeting. IEEE, 2007. http://dx.doi.org/10.1109/leos.2007.4382359.
Texte intégralSaptari, Vidi A., et Kamal Youcef-Toumi. « Sensitivity analysis of near-infrared glucose absorption signals : toward noninvasive blood glucose sensing ». Dans EOS/SPIE European Biomedical Optics Week, sous la direction de Alexander V. Priezzhev et P. Ake Oberg. SPIE, 2000. http://dx.doi.org/10.1117/12.407644.
Texte intégralEigner, Gyoorgy, Katalin Koppany, Peter Pausits et Levente Kovacs. « Nonlinear identification of glucose absorption related to Diabetes Mellitus ». Dans 2017 IEEE 21st International Conference on Intelligent Engineering Systems (INES). IEEE, 2017. http://dx.doi.org/10.1109/ines.2017.8118567.
Texte intégralGyorgy, A., P. Szalay, Z. Benyo, B. Benyo, A. Kovacs et L. Kovacs. « ANFIS regulated type 1diabetic model for different glucose absorption scenarios ». Dans 2010 IEEE 14th International Conference on Intelligent Engineering Systems (INES 2010). IEEE, 2010. http://dx.doi.org/10.1109/ines.2010.5483822.
Texte intégralRapports d'organisations sur le sujet "Absorption intestinale de glucose"
Craan, Andre-Gerard. Effects of insulin, sodium and D-glucose on amino acid absorption in the intestine of rats. Portland State University Library, janvier 2000. http://dx.doi.org/10.15760/etd.1448.
Texte intégralyu, luyou, jinping yang, xi meng et yanhua lin. Effectiveness of the gut microbiota-bile acid pathway (BAS) in the treatment of Type 2 diabetes : A protocol for systematic review and meta analysis. INPLASY - International Platform of Registered Systematic Review and Meta-analysis Protocols, juillet 2022. http://dx.doi.org/10.37766/inplasy2022.7.0117.
Texte intégralHuber, John Tal, Joshuah Miron, Brent Theurer, Israel Bruckental et Spencer Swingle. Influence of Ruminal Starch Degradability on Performance of High Producing Dairy Cows. United States Department of Agriculture, janvier 1994. http://dx.doi.org/10.32747/1994.7568748.bard.
Texte intégralShenker, Moshe, Paul R. Bloom, Abraham Shaviv, Adina Paytan, Barbara J. Cade-Menun, Yona Chen et Jorge Tarchitzky. Fate of Phosphorus Originated from Treated Wastewater and Biosolids in Soils : Speciation, Transport, and Accumulation. United States Department of Agriculture, juin 2011. http://dx.doi.org/10.32747/2011.7697103.bard.
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