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Archives of Physiology and Biochemistry
The Journal of Metabolic Diseases
Volume 128, 2022 - Issue 3
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Original Articles

Lactobacillus plantarum improves lipogenesis and IRS-1/AKT/eNOS signalling pathway in the liver of high-fructose-fed rats

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Pages 786-794 | Received 06 Dec 2019, Accepted 03 Feb 2020, Published online: 18 Feb 2020

References

  • Ackerman, Z., et al., 2005. Fructose-induced fatty liver disease. Hypertension, 45 (5), 1012–1018.
  • Alwahsh, S.M., 2014. Diet high in fructose leads to an overexpression of lipocalin-2 in rat fatty liver. World journal of gastroenterology, 20 (7), 1807.
  • Armutcu, F., et al., 2005. Thymosin alpha 1 attenuates lipid peroxidation and improves fructose-induced steatohepatitis in rats. Clinical biochemistry, 38 (6), 540–547.
  • Babacanoglu, C., et al., 2013. Resveratrol prevents high fructose corn syrup-induced vascular insulin resistance and dysfunction in rats. Food and chemical toxicology, 60, 160–167.
  • Baena, M., et al., 2016. Fructose, but not glucose, impairs insulin signaling in the three major insulin-sensitive tissues. Scientific reports, 6 (1), 26149.
  • Brown, M.S. and Goldstein, J.L., 2008. Selective versus total insulin resistance: a pathogenic paradox. Cell metabolism, 7 (2), 95–96.
  • Choi, I.D., et al., 2016. Triglyceride-lowering effects of two probiotics, Lactobacillus plantarum KY1032 and Lactobacillus curvatus HY7601, in a rat model of high-fat diet-induced hypertriglyceridemia. Journal of microbiology and biotechnology, 26 (3), 483–487.
  • Eccleston, H.B., et al., 2011. Chronic exposure to a high-fat diet induces hepatic steatosis, impairs nitric oxide bioavailability, and modifies the mitochondrial proteome in mice. Antioxidants & redox signaling, 15 (2), 447–459.
  • Haas, J.T., et al., 2012. Hepatic insulin signaling is required for obesity-dependent expression of SREBP-1c mRNA but not for feeding-dependent expression. Cell metabolism, 15 (6), 873–884.
  • Honda, K., et al., 2012. Anti-diabetic effects of lactic acid bacteria in normal and type 2 diabetic mice. Journal of clinical biochemistry and nutrition, 51 (2), 96–101.
  • Hsieh, F.C., et al., 2013. Oral administration of Lactobacillus reuteri GMNL-263 improves insulin resistance and ameliorates hepatic steatosis in high fructose-fed rats. Nutrition & metabolism, 10 (1), 35.
  • Huang, H.Y., et al., 2013. Supplementation of Lactobacillus plantarum K68 and fruit-vegetable ferment along with high fat-fructose diet attenuates metabolic syndrome in rats with insulin resistance. Evidence-based complementary and alternative medicine, 2013. Article ID 943020.
  • Janevski, M., et al., 2012. Fructose containing sugars modulate mRNA of lipogenic genes ACC and FAS and protein levels of transcription factors ChREBP and SREBP1c with no effect on body weight or liver fat. Food function, 3 (2), 141–149.
  • Jensen, T., et al., 2018. Fructose and sugar: a major mediator of non-alcoholic fatty liver disease. Journal of hepatology, 68 (5), 1063–1075.
  • Kanuri, G., et al., 2011. Role of tumor necrosis factor α (TNFα) in the onset of fructose-induced nonalcoholic fatty liver disease in mice. The journal of nutritional biochemistry, 22 (6), 527–534.
  • Kishi, K., et al., 1999. Sucrase-isomaltase and hexose transporter gene expressions are coordinately enhanced by dietary fructose in rat jejunum. The journal of nutrition, 129 (5), 953–956.
  • Korkmaz, O.A., et al., 2019a. Lactobacillus helveticus and Lactobacillus plantarum modulate renal antioxidant status in a rat model of fructose-induced metabolic syndrome. Archives of biological sciences, 71 (2), 265–273.
  • Korkmaz, O.A., et al., 2019b. Effects of Lactobacillus plantarum and Lactobacillus helveticus on renal insulin signaling, inflammatory markers, and glucose transporters in high-fructose-fed rats. Medicina (Medicina), 55 (5), 207.
  • Kubota, N., et al., 2008. Dynamic functional relay between insulin receptor substrate 1 and 2 in hepatic insulin signaling during fasting and feeding. Cell metabolism, 8 (1), 49–64.
  • Li, X., et al., 2016. Effects of Lactobacillus plantarum CCFM0236 on hyperglycaemia and insulin resistance in high-fat and streptozotocin-induced type 2 diabetic mice. Journal of applied microbiology, 121 (6), 1727–1736.
  • Li, S., Brown, M.S., and Goldstein, J.L., 2010. Bifurcation of insulin signaling pathway in rat liver: mTORC1 required for stimulation of lipogenesis, but not inhibition of gluconeogenesis. Proceedings of the national academy of sciences, 107 (8), 3441–3446.
  • Lowry, O.H., et al., 1951. Protein measurement with the folin phenol reagent. Journal of biological chemistry, 193 (1), 265–275.
  • Montagnani, M., et al., 2001. Insulin-stimulated activation of eNOS is independent of Ca2 but requires phosphorylation by Akt at Ser1179. Journal of biological chemistry, 276 (32), 30392–30398.
  • Narasimhan, A., Chinnaiyan, M., and Karundevi, B., 2015. Ferulic acid regulates hepatic GLUT2 gene expression in high fat and fructose-induced type-2 diabetic adult male rat. European journal of pharmacology, 761, 391–397.
  • Nomura, K. and Yamanouchi, T., 2012. The role of fructose-enriched diets in mechanisms of nonalcoholic fatty liver disease. The journal of nutritional biochemistry, 23 (3), 203–208.
  • Park, D.Y., 2013. Dual probiotic strains suppress high fructose-induced metabolic syndrome. World journal of gastroenterology, 19 (2), 274.
  • Pasarín, M., et al., 2012. Sinusoidal endothelial dysfunction precedes inflammation and fibrosis in a model of NAFLD. PLoS one, 7 (4), e32785.
  • Pektas, M.B., et al., 2016. Dietary fructose activates insulin signaling and inflammation in adipose tissue: modulatory role of resveratrol. Biomed research international, 2016. Article ID 8014252.
  • Pektas, M.B., et al., 2017. Dietary fructose-induced hepatic injury in male and female rats: Influence of resveratrol. Drug research, 67, 103–110.
  • Pektas, M.B., Sadi, G., and Akar, F., 2015. Long-term dietary fructose causes gender different metabolic and vascular dysfunction in rats: modulatory effects of resveratrol. Cellular physiology and biochemistry, 37, 1407–1420.
  • Rebollo, A., et al., 2014. Liquid fructose down-regulates liver insulin receptor substrate 2 and gluconeogenic enzymes by modifying nutrient sensing factors in rats. The journal of nutritional biochemistry, 25 (2), 250–258.
  • Ritze, Y., et al., 2014. Lactobacillus rhamnosus GG protects against non-alcoholic fatty liver disease in mice. PLoS one, 9 (1), e80169.
  • Sadi, G., et al., 2015. High-fructose corn syrup-induced hepatic dysfunction in rats: improving effect of resveratrol. European journal of nutrition, 54 (6), 895–904.
  • Sakar, Y., et al., 2009. Positive regulatory control loop between gut leptin and intestinal GLUT2/GLUT5 transporters links to hepatic metabolic functions in rodents. PLoS one, 4 (11), e7935.
  • Shimada, M., Hibino, M., and Takeshita, A., 2017. Dietary supplementation with myo-inositol reduces hepatic triglyceride accumulation and expression of both fructolytic and lipogenic genes in rats fed a high-fructose diet. Nutrition research, 47, 21–27.
  • Spruss, A., et al., 2011. Role of the inducible nitric oxide synthase in the onset of fructose-induced steatosis in mice. Antioxidants and redox signaling, 14 (11), 2121–2135.
  • Taniguchi, C.M., Emanuelli, B., and Kahn, C.R., 2006. Critical nodes in signalling pathways: insights into insulin action. Nature reviews molecular cell biology, 7 (2), 85–96.
  • Tateya, S., et al., 2011. Endothelial NO/cGMP/VASP signaling attenuates kupffer cell activation and hepatic insulin resistance induced by high-fat feeding. Diabetes, 60 (11), 2792–2801.
  • Vatner, D.F., et al., 2015. Insulin-independent regulation of hepatic triglyceride synthesis by fatty acids. Proceedings of the national academy of sciences, 112 (4), 1143–1148.
  • Wu, C.C., et al., 2015. Effect of Lactobacillus plantarum strain K21 on high-fat diet-fed obese mice. Evidence-based complementary and alternative medicine, 2015. Article ID 391767.
  • Xu, X., et al., 2011. CYP2J3 gene delivery reduces insulin resistance via regulation of eNOS in fructose-treated rats. Cardiovascular diabetology, 10 (1), 114.
  • Yadav, H., Jain, S., and Sinha, P.R., 2007. Antidiabetic effect of probiotic dahi containing Lactobacillus acidophilus and Lactobacillus casei in high fructose fed rats. Nutrition, 23 (1), 62–68.
  • Zhang, D., et al., 2017. Lipogenic transcription factor ChREBP mediates fructose-induced metabolic adaptations to prevent hepatotoxicity. Journal of clinical investigation, 127 (7), 2855–2867.
  • Zhao, C.X., et al., 2009. Increased endothelial nitric-oxide synthase expression reduces hypertension and hyperinsulinemia in fructose-treated rats. Journal of pharmacology and experimental therapeutics, 328 (2), 610–620.
  • Zhao, Z., et al., 2019. Lactobacillus plantarum NA136 improves the non-alcoholic fatty liver disease by modulating the AMPK/Nrf2 pathway. Applied microbiology and biotechnology, 103 (14), 5843–5848.

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