Antioxidant and anti–inflammatory activities of Gallic acid in Japanese quails induced by oxidative stress

  • Mehmet Mustafa İşgör Hatay Mustafa Kemal University, Faculty of Veterinary, Department of Biochemistry. Antakya, Turkey
  • Altuğ Küçükgül Hatay Mustafa Kemal University, Faculty of Veterinary, Department of Biochemistry. Antakya, Turkey
  • Sema Alaşahan Hatay Mustafa Kemal University, Faculty of Veterinary, Zootechnical department. Antakya, Turkey
Keywords: Gallic acid, growth performance, oxidative stress, inflammation, quails

Abstract

Gallic acid is a phenolic compound found in many plant sources with strong antioxidant activity. In this study, the bioactivity of Gallic acid was investigated in Japanese quails induced by oxidative stress. The study was performed on four groups of 40–day–old male Japanese quail (Coturnix japonica). Oxidative stress was created for 1 week by adding 0.5% hydrogen peroxide. The study was terminated by administering 100 mg·kg-1 body weight Gallic acid intraperitoneally. Total antioxidant and total oxidant level analyzes from liver tissue homogenates were performed using a ready–made commercial kit. TNF–α levels from blood samples taken for anti–inflammatory activity were investigated by ELISA method. There were no statistically significant results on live weight gain between the experimental groups and control group. However, Gallic acid in liver homogenates together with H2O2 increased total antioxidant state (TAS) compared to H2O2 application, while it decreased total oxidant state (TOS) in the same groups. Moreover, while the oxidative stress index increased in the H2O2 group, it decreased significantly in both the Gallic acid and Gallic acid + H2O2 groups. Gallic acid application also caused regression in blood TNF–α expression levels, which were increased by H2O2 . In quails, Gallic acid showed antioxidant activity by increasing TAS levels and decreasing TOS levels, providing a significant decrease in oxidative stress index. It also provided anti–inflammatory activity by suppressing TNF–a levels. However, advanced molecular analyzes are needed to obtain more detailed information on the subject.

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References

Gadde U, Kim WH, Oh ST, Lillehoj HS. Alternatives to antibiotics for maximizing growth performance and feed efficiency in poultry: a review. Anim. Health Res. Rev. 2017; 18(1):26–45.

Lee MT, Lin WC, Lee TT. Potential crosstalk of oxidative stress and immune response in poultry through phytochemicals – A review. Asian–Australasian J. Anim. Sci. 2019; 32(3):309–19.

Kumar N, Goel N. Phenolic acids: Natural versatile molecules with promising therapeutic applications. Biotechnol. Rep. (Amst). 2019; 24:e00370.

Siah M, Farzaei MH, Ashrafi–Kooshk MR, Adibi H, Arab SS, Rashidi MR, Khodarahmi R. Inhibition of guinea pig aldehyde oxidase activity by different flavonoid compounds: An in vitro study. Bioorganic. Chem. 2016; 64:74–84.

Kahkeshani N, Farzaei F, Fotouhi M, Alavi SS, Bahramsoltani R, Naseri R, Momtaz S, Abbasabadi Z, Rahimi R, Farzaei MH, Bishayee A. Pharmacological effects of gallic acid in health and disease: A mechanistic review. Iranian J. Basic Med. Sci. 2019; 22(3):225–237. doi: https://doi.org/gng34z

Fernandes FHA, Salgado HRN. Gallic acid: review of the methods of determination and quantification. Critic. Rev. Analytical Chem. 2016; 46(3):257–65.

Hsieh HM, Ju YM. Medicinal components in Termitomyces mushrooms. Appl. Microbiol. Biotechnol. 2018; 102(12):4987–94.

Zhang T, Ma L, Wu P, Li W, Li T, Gu R, Dan X, Li Z, Fan X, Xiao Z. Gallic acid has anticancer activity and enhances the anticancer effects of cisplatin in non‑small cell lung cancer A549 cells via the JAK/STAT3 signaling pathway. Oncol. Rep. 2019; 41(3):1779–1788.

Rivero–Buceta E, Carrero P, Doyagüez EG, Madrona A, Quesada E, Camarasa MJ, Peréz–Pérez MJ, Leyssen P, Paeshuyse J, Balzarini J, Neyts J, San–Félix A. Linear and branched alkyl–esters and amides of gallic acid and other (mono–, di– and tri–) hydroxy benzoyl derivatives as promising anti–HCV inhibitors. Europ. J. Med. Chem. 2015; 92:656–71.

Jung J, Bae KH, Jeong CS. Anti–Helicobacter pylori and antiulcerogenic activities of the root cortex of Paeonia suffruticosa. Biol. Pharmac. Bull. 2013; 36(10):1535–9.

Couto AG, Kassuya CAL, Calixto JB, Petrovick PR. Anti–inflammatory, antiallodynic effects and quantitative analysis of gallic acid in spray dried powders from Phyllanthus niruri leaves, stems, roots and whole plant. Rev. Brasileira Farmacognosia. 2013; 23(1):124–31.

Sarjit A, Wang Y, Dykes GA. Antimicrobial activity of gallic acid against thermophilic Campylobacter is strain specific and associated with a loss of calcium ions. Food Microbiol. 2015; 46:227–33.

Li ZJ, Liu M, Dawuti G, Dou Q, Ma Y, Liu HG, Aibai S. Antifungal activity of gallic acid in vitro and in vivo. Phytother. Res. 2017; 31(7):1039–45.

Badavi M, Sadeghi N, Dianat M, Samarbafzadeh A. Effects of gallic acid and cyclosporine a on antioxidant capacity and cardiac markers of rat isolated heart after ischemia/reperfusion. Iranian Red Crescent Med. J. 2014; 16(6):1–7.

Estévez M. Oxidative damage to poultry: from farm to fork. Poult. Sci. 2015; 94(6):1368–78.

Zhang YJ, Gan RY, Li S, Zhou Y, Li AN, Xu DP, Li HB. Antioxidant phytochemicals for the prevention and treatment of chronic diseases. Molecules. 2015; 20(12):21138–56.

Hu R, He Y, Arowolo M, Wu S, He J. Polyphenols as potential attenuators of heat stress in poultry production. Antioxid. 2019; 8(3):67.

Kucukgul A, Erdogan S. Caffeic acid phenethyl ester (CAPE) protects lung epithelial cells against H2O2–induced inflammation and oxidative stress. Health Med. 2014; 8(3):329–338.

Abdel–Wahab A, Abdel–Kader I, Ahmad E. Effect of dietary grape seed supplementation as a natural growth promoter on the growth performance of japanese quail. Egypt. J. Nutr. Feeds. 2018; 21(2):537–48.

Silici S, Güçlü BK, Kara K. Yumurtacı damızlık bıldırcın (Coturnix coturnix japonica) yemlerine öğütülmüş üzüm çekirdeği ilavesinin verim ve kuluçka performansı ile yumurta kalitesine etkisi. ERU Sağlık Bilimleri Dergisi. 2011; 20(1):68–76.

Abu Hafsa SH, Ibrahim SA. Effect of dietary polyphenol–rich grape seed on growth performance, antioxidant capacity and ileal microflora in broiler chicks. J. Anim. Physiol. Anim. Nutr. 2018; 102(1):268–75.

Ao X, Kim IH. Effects of grape seed extract on performance, immunity, antioxidant capacity, and meat quality in Pekin ducks. Poult. Sci. 2020; 99(4):2078–86.

Surai PF, Kochish II, Fisinin VI, Kidd MT. Aantioxidant defence systems and oxidative stress in poultry biology: an update. Antioxid. 2019; 8(7):235.

Lee MT, Lin WC, Yu B, Lee TT. Antioxidant capacity of phytochemicals and their potential effects on oxidative status in animals — A review. Asian–Australasian J. Anim. Sci. 2017; 30(3):299–308.

Surai PF, Kochish II. Nutritional modulation of the antioxidant capacities in poultry: the case of selenium. Poult. Sci. 2019; 98(10):4231–9.

Saibabu V, Fatima Z, Khan LA, Hameed S. Therapeutic potential of dietary phenolic acids. Adv. Pharmacol. Sci. 2015; 2015:823539.

Makihara H, Koike Y, Ohta M, Horiguchi–Babamoto E, Tsubata M, Kinoshita K, Akase T, Goshima Y, Aburada M, Shimada T. Gallic acid, the active ingredient of Terminalia bellirica, enhances adipocyte differentiation and adiponectin secretion. Biol. Pharmac. Bull. 2016; 39(7):1137–43.

Gandhi GR, Jothi G, Antony PJ, Balakrishna K, Paulraj MG, Ignacimuthu S, Stalin A, Al–Dhabi NA. Gallic acid attenuates high–fat diet fed–streptozotocin–induced insulin resistance via partial agonism of PPARγ in experimental type 2 diabetic rats and enhances glucose uptake through translocation and activation of GLUT4 in PI3K/p–Akt signaling pathway. Europ. J. Pharmacol. 2014; 745:201–16.

Totani N, Tateishi S, Takimoto T, Maeda Y, Sasaki H. Gallic acid glycerol ester promotes weight–loss in rats. J. Oleo Sci. 2011; 60(9):457–62.

Locatelli C, Filippin–Monteiro FB, Creczynski–Pasa TB. Alkyl esters of gallic acid as anticancer agents: A review. Europ. J. Med. Chem. 2013; 60:233–9.

Choubey S, Varughese LR, Kumar V, Beniwal V. Medicinal importance of gallic acid and its ester derivatives: a patent review. Pharmac. Patent Analyst. 2015; 4(4):305–15.

Samuel KG, Wang J, Yue HY, Wu SG, Zhang HJ, Duan ZY, Qi GH. Effects of dietary gallic acid supplementation on performance, antioxidant status, and jejunum intestinal morphology in broiler chicks. Poult. Sci. 2017; 96(8):2768–75.

Nouri A, Heibati F, Heidarian E. Gallic acid exerts anti–inflammatory, anti–oxidative stress, and nephroprotective effects against paraquat–induced renal injury in male rats. Naunyn Schmiedebergs Arch Pharmacol. 2021; 394(1):1–9.

Ahmadvand H, Yalameha B, Adibhesami G, Nasri M, Naderi N, Babaeenezhad E, Nouryazdan N. The Protective Role of Gallic Acid Pretreatment On Renal Ischemia–reperfusion Injury in Rats. Rep. Biochem. Mol. Biol. 2019;8(1):42–48.

Ignea C, Dorobanţu CM, Mintoff CP, Branza–Nichita N, Ladomery MR, Kefalas P, Chedea VS. Modulation of the antioxidant/pro–oxidant balance, cytotoxicity and antiviral actions of grape seed extracts. Food Chem. 2013; 141(4):3967–76

Jung S, Choe JH, Kim B, Yun H, Kruk ZA, Jo C. Effect of dietary mixture of gallic acid and linoleic acid on antioxidative potential and quality of breast meat from broilers. Meat Sci. 2010; 86(2):520–6.

Lee KH, Jung S, Kim HJ, Kim IS, Lee JH, Jo C. Effect of dietary supplementation of the combination of gallic and linoleic acid in thigh meat of broilers. Asian–Australasian J. Anim. Sci. 2012; 25(11):1641–8.

Jung S, Han BH, Nam K, Ahn DU, Lee JH, Jo C. Effect of dietary supplementation of gallic acid and linoleic acid mixture or their synthetic salt on egg quality. Food Chem. 2011; 129(3):822–9.

Medzhitov R. Inflammation 2010: New adventures of an old flame. Cell. 2010; 140(6):771–6.

Pantano C, Reynaert NL, Vliet AVD, Janssen–Heininger YMW. Redox–sensitive kinases of the nuclear factor–κB signaling pathway. Antioxid. Redox Signaling. 2006; 8(9–10):1791–806.

Li HL, Li ZJ, Wei ZS, Liu T, Zou XZ, Liao Y, Luo Y. Long–term effects of oral tea polyphenols and Lactobacillus brevis M8 on biochemical parameters, digestive enzymes, and cytokines expression in broilers. J. Zhejiang University–Science B. 2015; 16(12):1019–26.

Published
2023-06-21
How to Cite
1.
İşgör MM, Küçükgül A, Alaşahan S. Antioxidant and anti–inflammatory activities of Gallic acid in Japanese quails induced by oxidative stress. Rev. Cient. FCV-LUZ [Internet]. 2023Jun.21 [cited 2024Jun.3];33(2):1-. Available from: https://www.produccioncientificaluz.org/index.php/cientifica/article/view/40417
Section
Veterinary Medicine