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Research Article

Anti-obesity effects of corn peptide on 3T3-L1 preadipocytes and C57BL/6J obese mice

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Pages 205-220 | Received 18 Sep 2022, Accepted 15 Dec 2022, Published online: 16 Jan 2023

References

  • Albuquerque D, Nobrega C, Manco L, Padez C. 2017. The contribution of genetics and environment to obesity. Br Med Bull. 123:159–173.
  • Alves-Bezerra M, Cohen DE. 2017. Triglyceride metabolism in the liver. Compr Physiol. 8:1–8.
  • Aursuwanna T, Noitang S, Sangtanoo P, Srimongkol P, Saisavoey T, Puthong S, Reamtong O, Karnchanatat A. 2022. Investigating the cellular antioxidant and anti-inflammatory effects of the novel peptides in lingzhi mushrooms. Heliyon. 8:e11067.
  • Browning JD, Horton JD. 2004. Molecular mediators of hepatic steatosis and liver injury. J Clin Invest. 114:147–152.
  • Canbay A, Bechmann L, Gerken G. 2007. Lipid metabolism in the liver. Z Gastroenterol. 45:35–41.
  • Chatterjee C, Gleddie S, Xiao C. 2018. Soybean bioactive peptides and their functional properties. Nutrients. 10:1211.
  • Diaz-Gomez JL, Castorena-Torres F, Preciado-Ortiz RE, Garcia-Lara S. 2017. Anti-cancer activity of maize bioactive peptides. Front Chem. 5:44.
  • Ducharme NA, Bickel PE. 2008. Minireview: lipid droplets in lipogenesis and lipolysis. Endocrinology. 149:942–949.
  • Farmer SR. 2005. Regulation of PPAR γ activity during adipogenesis. Int J Obes. 29:S13–16.
  • Gadde KM, Martin CK, Berthoud HR, Heymsfield SB. 2018. Obesity: pathophysiology and management. J Am Coll Cardiol. 71:69–84.
  • Gioia LD, Cuo B, Guilbert S. 1998. Effect of hydrophilic plasticizers on thermomechanical properties of corn gluten meal. Cereal Chem. 75:514–9.
  • Guo H, Sun J, He H, Yu GC, Du J. 2009. Antihepatotoxic effect of corn peptides against bacillus Calmette-Guerin/lipopolysaccharide-induced liver injury in mice. Food Chem Toxicol. 47:2431–2435.
  • Huang WH, Sun J, He H, Dong HW, Li JT. 2011. Antihypertensive effect of corn peptides, produced by a continuous production in enzymatic membrane reactor, in spontaneously hypertensive rats. Food Chem. 4:968–973.
  • Kim MJ, Chilakala R, Jo HG, Lee SJ, Lee DS, Cheong SH. 2022. Anti-obesity and anti-hyperglycemic effects of Meretrix lusoria Protamex hydrolysate in ob/ob mice. Int J Mol Sci. 37:4015.
  • Kim JB, Spiegelman BM. 1996. ADD1/SREBP1 promotes adipocyte differentiation and gene expression linked to fatty acid metabolism. Genes Dev. 10:1096–1107.
  • Kong XZ, Zhou HM, Qian HF. 2007. Enzymatic hydrolysis of wheat gluten by proteases and properties of the resulting hydrolysates. Food Chem. 102:759–763.
  • Lafotan M. 2005. Fat cells: afferent and efferent messages define new approaches to treat obesity. Annu Rev Pharmacol Toxicol. 45:119–146.
  • Lim G, Lim Y. 2022. Effects of Whey peptide supplementation on Sarcopenic obesity in high-fat diet-fed mice. Nutrients. 14:4402.
  • Lin F, Chen L, Liang R, Zhang ZF, Wang JB, Cai MY, Li Y. 2011. Pilot-scale production of low molecular weight peptides from corn wet milling byproducts and the anti- hypertensive effects in vivo and in vitro. Food Chem. 124:801–807.
  • Liu XL, Zheng XQ, Song ZL, Liu XF, Kopparapu N, Wang XJ, Zheng Y. 2015. Preparation of enzymatic pretreated corn gluten meal hydrolysate and in vivo evaluation of its antioxidant activity. J Funct Foods. 18:1147–1157.
  • Lollo PC, Amaya-Farfan J, Faria IC, Salgado JV, Chacon-Mikahil MP, Cruza G, Oliveira CAF, Montagner PC, Arruda M. 2014. Hydrolysed whey protein reduces muscle damage markers in Brazilian elite soccer players compared with whey protein and maltodextrin: a twelve week in-champion-ship intervention. Int Dairy J. 34:19–24.
  • Mclellan TM. 2013. Protein supplementation for military personnel: a review of the mechanisms and performance outcomes. J Nutr. 143:1820S–1833S.
  • Moura CS, Lollo PC, Morato PN, Nisishima LH, Carneiro EM, Amaya-Farfan J. 2014. Whey protein hydrolysate enhances HSP90 but does not alter HSP60 and HSP25 in skeletal muscle of rats. PLoS One. 9:e83437.
  • Newey H, Smyth DH. 1960. Intracellular hydrolysis of dipeptides during intestinal absorption. J Physiol. 152:367–380.
  • Park J, Rho HK, Kim KH, Choe SS, Lee YS, Kim JB. 2005. Overexpression of Glucose-6-phosphate dehydrogenase is associated with lipid dysregulation and insulin resistance in obesity. Mol Cell Biol. 25:5146–5157.
  • Patel S. 2015. Emerging trends in nutraceutical applications of whey protein and its derivatives. J Food Sci Technol. 52:6847–6858.
  • Pauwels E, Stoven V, Yamanishi Y. 2011. Predicting drug side-effect profiles: a chemical fragment-based approach. BMC Bioinform. 12:169.
  • Payne VA, Au WS, Lowe CE, Rahman SM, Friedman JE, O’Rahilly S, Rochford J. 2009. C/EBP transcription factors regulate SREBP1c gene expression during adipogenesis. Biochem J. 425:215–223.
  • Rosen ED, Walkey CJ, Puigserver P, Spiegelman BM. 2000. Transcriptional regulation of adipogenesis. Genes Dev. 14:1293–1307.
  • Saunders KH, Shukla AP, Igel LI, Kumar RB, Aronne LJ. 2016. Pharmacotherapy for obesity. Endocrinol Metab Clin North Am. 45:521–538.
  • Sim WS, Choi SI, Cho BY, Choi SH, Han X, Cho HD, Kim SH, Lee BY, Kang IJ, Cho JH. 2019. Anti-obesity effect of extract from Nelumbo Nucifera L., Morus Alba L., and Raphanus Sativus mixture in 3T3-L1 adipocytes and C57BL/6J obese mice. Foods. 8:170.
  • Sun S, Zhang H, Shan K, Sun T, Lin M, Jia L, Chen YQ. 2019. Effect of different cereal peptides on the development of type 1 diabetes is associated with their anti-inflammatory ability: in vitro and in vivo studies. Mol Nutr Food Res. 63:e1800987.
  • Tang QQ, Lane MD. 2012. Adipogenesis: from stem cell to adipocyte. Annu Rev Biochem. 81:715–736.
  • Tang QQ, Otto TC, Lane MD. 2003. Mitotic clonal expansion: a synchronous process required for adipogenesis. Proc Natl Acad Sci U S A. 100:44–49.
  • Tran PHL, Duan W, Lee BJ, Tran TTD. 2019. The use of zein in the controlled release of poorly water - soluble drugs. Int J Pharmac. 566:557–564.
  • Trigueros L, Peña S, Ugidosa V, Sayas-Barberá E, Pérez-Lvarez JA, Sendra E. 2013. Food ingredients as anti-obesity agents: a review. Crit Rev Food Sci Nutr. 53:929–942.
  • Webb KE. 1990. Intestinal absorption of protein hydrolysis products: a review. J Anim Sci. 68:3011–3022.
  • Xu TC, Sun NX, Liu YH, Ye CJ, Jiang ZQ, Du FL, Wang Y. 2017. Preparation of oligopeptides from corn gluten meal by two enzymes at one step using response surface methodology and investigation of their antifatigue activities. Biomed Res. 28:3948–3956.
  • Yu GC, Li JT, He H, Huang WH, Zhang WJ. 2011. Ultrafiltration preparation of potent bioactive corn peptide as alcohol metabolism stimulator in vivo, and study on its mechanism of action. J Food Biochem. 37:161–167.
  • Yu GC, Lv J, He H, Huang W, Han Y. 2012. Hepatoprotective effects of corn peptides against carbon tetrachloride-induced liver injury in mice. J Food Biochem. 36:458–464.
  • Zhang WL, Zhu L, Jiang JG. 2014. Active ingredients from natural botanicals in the treatment of obesity. Obes Rev. 15:957–967.
  • Zhao Q, Fu Y, Zhang F, Wang C, Yang X, Bai S, Xue Y, Shen Q. 2022. Heat-treated adzuki bean protein hydrolysates reduce obesity in mice fed a high-fat diet via remodeling gut microbiota and improving metabolic function. Mol Nutr Food Res. 66:e2100907.
  • Zheng XQ, Liu XL, Wang XJ, Liu JQ, Li XM. 2011. 200910073036.1 [p]. 2011-04-27.

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