590
Views
2
CrossRef citations to date
0
Altmetric
Original Articles

Cytoprotective mechanism of ferulic acid against high glucose-induced oxidative stress in cardiomyocytes and hepatocytes

, , , , , , , & show all
Article: 30323 | Received 06 Nov 2015, Accepted 15 Jan 2016, Published online: 10 Feb 2016

References

  • Mancuso C, Santangelo R. Ferulic acid: pharmacological and toxicological aspects. Food Chem Toxicol. 2014; 65: 185–95.
  • Manach C, Scalbert A, Morand C, Rémésy C, Jiménez L. Polyphenols: food sources and bioavailability. Am J Clin Nutr. 2004; 79: 727–47. [PubMed Abstract].
  • Rechner AR, Pannala AS, Rice-Evans CA. Caffeic acid derivatives in artichoke extract are metabolised to phenolic acids in vivo. Free Radic Res. 2001; 35: 195–202.
  • Ou S, Kwok KC. Ferulic acid: pharmaceutical functions, preparation and applications in foods. J Sci Food Agric. 2004; 84: 1261–9.
  • Shahidi F, Chandrasekara A. Millet grain phenolics and their role in disease risk reduction and health promotion: a review. J Funct Foods. 2013; 5: 570–81.
  • Zhao Z, Moghadasian MH. Chemistry, natural sources, dietary intake and pharmacokinetic properties of ferulic acid: a review. Food Chem. 2008; 109: 691–702.
  • Roy S, Metya SK, Sannigrahi S, Rahaman N, Ahmed F. Treatment with ferulic acid to rats with streptozotocin-induced diabetes: effects on oxidative stress, pro-inflammatory cytokines, and apoptosis in the pancreatic β cell. Endocrine. 2013; 44: 369–79.
  • Ramar M, Manikandan B, Raman T, Priyadarsini A, Palanisamy S, Velayudam M, etal. Protective effect of ferulic acid and resveratrol against alloxan-induced diabetes in mice. Eur J Pharmacol. 2012; 690: 226–35.
  • Trombino S, Cassano R, Ferrarelli T, Barone E, Picci N, Mancuso C. Trans-ferulic acid-based solid lipid nanoparticles and their antioxidant effect in rat brain microsomes. Colloids Surf B Biointerfaces. 2013; 109: 273–9.
  • Jung EH, Ran Kim S, Hwang IK, Youl Ha T. Hypoglycemic effects of a phenolic acid fraction of rice bran and ferulic acid in C57BL/KsJ-db/db mice. J Agric Food Chem. 2007; 55: 9800–4.
  • Prabhakar PK, Prasad R, Ali S, Doble M. Synergistic interaction of ferulic acid with commercial hypoglycemic drugs in streptozotocin induced diabetic rats. Phytomedicine. 2013; 20: 488–94.
  • Naudi A, Jove M, Ayala V, Cassanye A, Serrano J, Gonzalo H, etal. Cellular dysfunction in diabetes as maladaptive response to mitochondrial oxidative stress. Exp Diabetes Res. 2012; 2012: 696215.
  • Rolo AP, Palmeira CM. Diabetes and mitochondrial function: role of hyperglycemia and oxidative stress. Toxicol Appl Pharmacol. 2006; 212: 167–78.
  • Avignon A, Hokayem M, Bisbal C, Lambert K. Dietary antioxidants: do they have a role to play in the ongoing fight against abnormal glucose metabolism?. Nutrition. 2012; 28: 715–21.
  • Meakin PJ, Chowdhry S, Sharma RS, Ashford FB, Walsh SV, McCrimmon RJ, etal. Susceptibility of Nrf2-null mice to steatohepatitis and cirrhosis upon consumption of a high-fat diet is associated with oxidative stress, perturbation of the unfolded protein response, and disturbance in the expression of metabolic enzymes but not with insulin resistance. Mol Cell Biol. 2014; 34: 3305–20.
  • Song Y, Wu T, Yang Q, Chen X, Wang M, Wang Y, etal. Ferulic acid alleviates the symptoms of diabetes in obese rats. J Funct Foods. 2014; 9: 141–7.
  • Kim D, Han GD. Ameliorating effects of fermented rice bran extract on oxidative stress induced by high glucose and hydrogen peroxide in 3T3-L1 adipocytes. Plant Food Hum Nutr. 2011; 66: 285–90.
  • Yu X, Kensler T. Nrf2 as a target for cancer chemoprevention. Mutat Res. 2005; 591: 93–102.
  • Dong DS, Xu LN, Yin LH, Qi Y, Peng JY. Naringin prevents carbon tetrachloride-induced acute liver injury in mice. J Funct Foods. 2015; 12: 179–91.
  • Kim S-W, Lee H-K, Shin J-H, Lee J-K. Up-down regulation of HO-1 and iNOS gene expressions by ethyl pyruvate via recruiting p300 to Nrf2 and depriving it from p65. Free Radic Biol Med. 2013; 65: 468–76.
  • Dragovic S, Venkataraman H, Begheijn S, Vermeulen NP, Commandeur JN. Effect of human glutathione S-transferase hGSTP1-1 polymorphism on the detoxification of reactive metabolites of clozapine, diclofenac and acetaminophen. Toxicol Lett. 2014; 224: 272–81.
  • Brownlee M. Biochemistry and molecular cell biology of diabetic complications. Nature. 2001; 414: 813–20.
  • Calabrese V, Calafato S, Puleo E, Cornelius C, Sapienza M, Morganti P, etal. Redox regulation of cellular stress response by ferulic acid ethyl ester in human dermal fibroblasts: role of vitagenes. Clin Dermatol. 2008; 26: 358–63.
  • Joshi G, Perluigi M, Sultana R, Agrippino R, Calabrese V, Butterfield DA. In vivo protection of synaptosomes by ferulic acid ethyl ester (FAEE) from oxidative stress mediated by 2, 2-azobis (2-amidino-propane) dihydrochloride (AAPH) or Fe2+/H2O2: insight into mechanisms of neuroprotection and relevance to oxidative stress-related neurodegenerative disorders. Neurochem Int. 2006; 48: 318–27.
  • Kanski J, Aksenova M, Stoyanova A, Butterfield DA. Ferulic acid antioxidant protection against hydroxyl and peroxyl radical oxidation in synaptosomal and neuronal cell culture systems in vitro: structure-activity studies. J Nutr Biochem. 2002; 13: 273–81.
  • Scapagnini G, Butterfield DA, Colombrita C, Sultana R, Pascale A, Calabrese V. Ethyl ferulate, a lipophilic polyphenol, induces HO-1 and protects rat neurons against oxidative stress. Antioxid Redox Signal. 2004; 6: 811–18.
  • Manikandan R, Beulaja M, Thiagarajan R, Pandi M, Arulvasu C, Prabhu NM, etal. Ameliorative effect of ferulic acid against renal injuries mediated by nuclear factor-kappaB during glycerol-induced nephrotoxicity in Wistar rats. Ren Fail. 2013; 36: 154–65.
  • You Y, Park J, Yoon H-G, Lee Y-H, Hwang K, Lee J, etal. Stimulatory effects of ferulic acid on endurance exercise capacity in mice. Biosci Biotechnol Biochem. 2009; 73: 1392–7.
  • Kim IA, Kim B-G, Kim M, Ahn J-H. Characterization of hydroxycinnamoyltransferase from rice and its application for biological synthesis of hydroxycinnamoyl glycerols. Phytochemistry. 2012; 76: 25–31.
  • Ogiwara T, Satoh K, Kadoma Y, Murakami Y, Unten S, Atsumi T, etal. Radical scavenging activity and cytotoxicity of ferulic acid. Anticancer Res. 2001; 22: 2711–17.
  • Tsai CY, Wang CC, Lai TY, Tsu HN, Wang CH, Liang HY, etal. Antioxidant effects of diallyl trisulfide on high glucose-induced apoptosis are mediated by the PI3K/Akt-dependent activation of Nrf2 in cardiomyocytes. Int J Cardiol. 2013; 168: 1286–97.
  • Niture SK, Kaspar JW, Shen J, Jaiswal AK. Nrf2 signaling and cell survival. Toxicol Appl Pharmacol. 2010; 244: 37–42.
  • Uruno A, Yagishita Y, Yamamoto M. The Keap1-Nrf2 system and diabetes mellitus. Arch Biochem Biophys. 2015; 566: 76–84.
  • Walters DM, Cho H-Y, Kleeberger SR. Oxidative stress and antioxidants in the pathogenesis of pulmonary fibrosis: a potential role for Nrf2. Antioxid Redox Signal. 2008; 10: 321–32.
  • Farombi EO, Shrotriya S, Na H-K, Kim S-H, Surh Y-J. Curcumin attenuates dimethylnitrosamine-induced liver injury in rats through Nrf2-mediated induction of heme oxygenase-1. Food Chem Toxicol. 2008; 46: 1279–87.
  • Ding Y, Zhang B, Zhou K, Chen M., Wang M., etal. Dietary ellagic acid improves oxidant-induced endothelial dysfunction and atherosclerosis: role of Nrf2 activation. Int J Cardiol. 2014; 175: 508–14.
  • He XQ, Kan H, Cai L, Ma Q. Nrf2 is critical in defense against high glucose-induced oxidative damage in cardiomyocytes. J Mol Cell Cardiol. 2009; 46: 47–58.
  • Wang X, Wang Z, Liu JZ, Hu JX, Chen HL, Li WL, etal. Double antioxidant activities of rosiglitazone against high glucose-induced oxidative stress in hepatocyte. Toxicol In Vitro. 2011; 25: 839–47.
  • Inzucchi SE, Bergenstal RM, Buse JB, Diamant M, Ferrannini E, Nauck M, etal. Management of hyperglycemia in type 2 diabetes: a patient-centered approach position statement of the American Diabetes Association (ADA) and the European Association for the Study of Diabetes (EASD). Diabetes Care. 2012; 35: 1364–79.