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Research Paper

Adipocytes as lipid sensors of oleic acid transport through a functional Caco-2/HT29-MTX intestinal barrier

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Pages 83-97 | Received 23 Oct 2018, Accepted 25 Jan 2019, Published online: 23 Mar 2019

References

  • Kaur N, Chugh V, Gupta AK. Essential fatty acids as functional components of foods- a review. J Food Sci Technol. 2014;51(10):2289–2303.
  • Aon MA, Bhatt N, Cortassa C. Mitochondrial and cellular mechanisms for managing lipid excess. Front Physiol. 2014;5:282.
  • Ali A, Koutsari C, Mundi M, et al. Free fatty acid storage in human visceral and subcutaneous adipose tissue: role of adipocyte proteins. Diabetes. 2011;60(9):2300–2307.
  • Ress C, Kaser S. Mechanisms of intrahepatic triglyceride accumulation. World J Gastroenterol. 2016;22(4):1664–1673.
  • Marcellin P, Kutala BK. Liver diseases: a major, neglected global public health problem requiring urgent actions and large-scale screening. Liver Int. 2018;38(Suppl 1):2–6.
  • Byass P. The global burden of liver disease: a challenge for methods and for public health. BMC Med. 2014;12:159.
  • Bellentani S. The epidemiology of non-alcoholic fatty liver disease. Liver Int. 2017;37(Suppl 1):81–84.
  • Cohen JC, Horton JD, Hobbs HH. Human fatty liver disease: oldquestions and new insights. Sciences. 2011;332:1519–1523.
  • Haas JT, Francque S, Staels B. Pathophysiology and mechanisms of nonalcoholic fatty liver disease. Annu Rev Physiol. 2016;78:181–205.
  • Berger E, Héraud S, Mojallal A, et al. Pathways commonly dysregulated in mouse and human obese adipose tissue: FAT/CD36 modulates differentiation and lipogenesis. Adipocyte. 2015;4(3):161–180.
  • Berger E, Nassra M, Atgié C, et al. Oleic acid uptake reveals the rescued enterocyte phenotype of colon cancer Caco-2 by HT29-MTX cells in co-culture mode. Int J Mol Sci. 2017;18(7):1573.
  • Dash S, Xiao C, Morgantini C, et al. Glucagon-like peptide-2 regulates release of chylomicrons from the intestine. Gastroenterology. 2014;147(6):1275–1284.e4.
  • Buttet M, Traynard V, Tran TT, et al. From fatty-acid sensing to chylomicron synthesis: role of intestinal lipid-binding proteins. Biochimie. 2014;96:37–47.
  • Gao G, Chen FJ, Zhou L, et al. Control of lipid droplet fusion and growth by CIDE family proteins. Biochim Biophys Acta. 2017;1862(10 Pt B):1197–1204.
  • Kramer AH, Joos-Vandewalle J, Edkins AL, et al. Real-time monitoring of 3T3-L1 preadipocyte differentiation using a commercially available electric cell-substrate impedance sensor system. Biochem Biophys Res Commun. 2014;443(4):1245–1250.
  • Ebbert JO, Jensen MD. Fat depots, free fatty acids, and dyslipidemia. Nutrients. 2013;5(2):498–508.
  • Hsieh J, Trajcevski KE, Farr SL, et al. Glucagon-like peptide 2 (GLP-2) stimulates postprandial chylomicron production and postabsorptive release of intestinal triglyceride storage pools via induction of nitric oxide signaling in male hamsters and mice. Endocrinology. 2015;156(10):3538–3547.
  • Glatz JF, Luiken JJ. From fat to FAT (CD36/SR-B2): understanding the regulation of cellular fatty acid uptake. Biochimie. 2017;136:21–26.
  • Hsieh J, Longuet C, Maida A, et al. Glucagon-like peptide-2 increases intestinal lipid absorption and chylomicron production via CD36. Gastroenterology. 2009;137(3):997–1005.
  • Lynes MD, Widmaier EP. Involvement of CD36 and intestinal alkaline phosphatases in fatty acid transport in enterocytes, and the response to a high-fat diet. Life Sci. 2011;88(9–10):384–391.
  • Tran TT, Poirier H, Clément L, et al. Luminal lipid regulates CD36 levels and downstream signaling to stimulate chylomicron synthesis. J Biol Chem. 2011;286(28):25201–25210.
  • Berger E, Vega N, Weiss-Gayet M, et al. Gene network analysis of glucose linked signaling pathways and their role in human hepatocellular carcinoma cell growth and survival in HuH7 and HepG2 cell lines. Biomed Res Int. 2015;2015:821761.