Browse > Article
http://dx.doi.org/10.5713/ajas.14.0924

Consumption of Oxidized Soybean Oil Increased Intestinal Oxidative Stress and Affected Intestinal Immune Variables in Yellow-feathered Broilers  

Liang, Fangfang (College of Animal Science, South China Agricultural University)
Jiang, Shouqun (Guangdong Public Laboratory of Animal Breeding and Nutrition, Institute of Animal Science, Guangdong Academy of Agricultural Sciences)
Mo, Yi (Guangxi Research Center for Population and Family Planning)
Zhou, Guilian (Guangdong Public Laboratory of Animal Breeding and Nutrition, Institute of Animal Science, Guangdong Academy of Agricultural Sciences)
Yang, Lin (College of Animal Science, South China Agricultural University)
Publication Information
Asian-Australasian Journal of Animal Sciences / v.28, no.8, 2015 , pp. 1194-1201 More about this Journal
Abstract
This study investigated the effect of oxidized soybean oil in the diet of young chickens on growth performance and intestinal oxidative stress, and indices of intestinal immune function. Corn-soybean-based diets containing 2% mixtures of fresh and oxidized soybean oil provided 6 levels (0.15, 1.01, 3.14, 4.95, 7.05, and $8.97meqO_2/kg$) of peroxide value (POV) in the diets. Each dietary treatment, fed for 22 d, had 6 replicates, each containing 30 birds (n = 1,080). Increasing POV levels reduced average daily feed intake (ADFI) of the broilers during d 1 to 10, body weight and average daily gain at d 22 but did not affect overall ADFI. Concentrations of malondialdehyde (MDA) increased in plasma and jejunum as POV increased but total antioxidative capacity (T-AOC) declined in plasma and jejunum. Catalase (CAT) activity declined in plasma and jejunum as did plasma glutathione S-transferase (GST). Effects were apparent at POV exceeding $3.14meqO_2/kg$ for early ADFI and MDA in jejunum, and POV exceeding $1.01meqO_2/kg$ for CAT in plasma and jejunum, GST in plasma and T-AOC in jejunum. Relative jejunal abundance of nuclear factor kappa B ($NF-{\kappa}B$) P50 and $NF-{\kappa}B$ P65 increased as dietary POV increased. Increasing POV levels reduced the jejunal concentrations of secretory immunoglobulin A and cluster of differentiation (CD) 4 and CD8 molecules with differences from controls apparent at dietary POV of 3.14 to $4.95meqO_2/kg$. These findings indicated that growth performance, feed intake, and the local immune system of the small intestine were compromised by oxidative stress when young broilers were fed moderately oxidized soybean oil.
Keywords
Oxidized Soybean Oil; Yellow-feathered Broilers; Oxidative Stress; Intestinal Immunity;
Citations & Related Records
연도 인용수 순위
  • Reference
1 Takahashi, K. and Y. Akiba. 1999. Effect of oxidized fat on performance and some physiological responses in broiler chickens. Jpn. J. Poult. Sci. 36:304-310.   DOI
2 Tavarez, M. A., D. D. Boler, K. N. Bess, J. Zhao, F. Yan, A. C. Dilger, F. K. Mckeith, and J. Killefer. 2011. Effect of antioxidant inclusion and oil quality on broiler performance, meat quality, and lipid oxidation. Poult. Sci. 90:922-930.   DOI   ScienceOn
3 Varady J., K. Eder, and R. Ringseis. 2011. Dietary oxidized fat activates the oxidative stress-responsive transcription factors NF-$\kappa{B}$ and Nrf2 in intestinal mucosa of mice. Eur. J. Nutr. 50:601-609.   DOI   ScienceOn
4 Wijeratne, S. S. K. and S. L. Cuppett. 2007. Oxidative stress induced by lipid hydroperoxides in the intestine. Agro. Food Idustry Hi-Tech. 18:27-29.
5 Zhang, W. G, S. Xiao, E. J. Lee, and D. U. Ahn. 2011. Consumption of oxidized oil increases oxidative stress in broilers and affects the quality of breast meat. J. Agric. Food Chem. 59:969-974.   DOI   ScienceOn
6 Zumrut, A., H. Bayraktar, O. Altan, S. T. Akhisaroglu, F. Kirkpinar, and Z. Altun. 2011. The effects of moderately oxidised dietary oil with or without vitamin E supplementation on performance, nutrient digestibility, some blood traits, lipid peroxidation and antioxidant defence of male broilers. J. Sci. Food Agric. 91:1277-1282.   DOI   ScienceOn
7 Awada, M., C. O. Soulage, A. Meynier, C. Debard, P. Plaisancie, B. Benoit, G. Picard, E. Loizon, M. A. Chauvin, M. Estienne, N. Peretti, M. Guichardant, M. Lagarde, C. Genot, and M. C. Michalski. 2012. Dietary oxidized n-3 PUFA induce oxidative stress and inflammation: role of intestinal absorption of 4-HHE and reactivity in intestinal cells. J. Lipid Res. 53:2069-2080.   DOI
8 Bayraktar, H., O. Altan, Z. Ackgoz, S. H. Baysal, and C. Seremet. 2011. Effects of oxidised oil and vitamin E on performance and some blood traits of heat-stressed male broilers. S. Afr. J. Anim. Sci. 41:288-296.
9 Boler, D. D., D. M. Fernandez-Duenas, L. W. Kutzler, J. Zhao, R. J. Harrell, D. R. Campion, F. K. Mckeith, J. Killefer, and A. C. Dilger. 2012. Effects of oxidized corn oil and a synthetic antioxidant blend on performance, oxidative status of tissues, and fresh meat quality in finishing barrows. J. Anim. Sci. 90:5159-5169.   DOI   ScienceOn
10 Bou, R., R. Codony, M. D. Baucells, and F. Guardiola. 2005. Effect of heated sunflower oil and dietary supplements on the composition, oxidative stability, and sensory quality of dark chicken meat. J. Agric. Food Chem. 53:7792-7801.   DOI   ScienceOn
11 Brown, M. A. 2008. IL-4 production by T cells: You need a little to get a lot. J. Immunol. 181:2941-2942.   DOI
12 Casado, C., V. J. Moya, C. Fernandez, J. J. Pascual, E. Blas, and C. Cervera. 2010. Diet digestibility in growing rabbits: Effect of origin and oxidation level of dietary fat and vitamin E supplementation. World Rabbit Sci. 18:57-63.   DOI
13 Gupta, A., A. Kaul, A. G. Tsolaki, U. Kishore, and S. Bhakta. 2012. Mycobacterium tuberculosis: Immune evasion, latency and reactivation. Immunobiology 217:363-374.   DOI   ScienceOn
14 David, R. O., S. Bastida, A. Schultz, L. G. Torres, M. J. Gonzalez-Munoz, F. J. Sanchez-Muniz, and J. Benedi. 2010. Fasting status and thermally oxidized sunflower oil ingestion affect the intestinal antioxidant enzyme activity and gene expression of male wistar rats. J. Agric. Food Chem. 58:2498-2504.   DOI   ScienceOn
15 Dibner, J. J., C. A. Atwell, M. L. Kitchell, W. D. Shermer, and F. J. Ivey. 1996. Feeding of oxidized fats to broilers and swine: Effects on enterocyte turnover, hepatocyte proliferation and the gut associated lymphoid tissue. Anim. Feed Sci. Technol. 62:1-13.   DOI   ScienceOn
16 Fagarasan, S. 2008. Evolution, development, mechanism and function of IgA in the gut. Curr. Opin. Immunol. 20:170-177.   DOI   ScienceOn
17 Hidalgo, F. J. and R. Zamora. 2004. Strecker-type degradation produced by the lipid oxidation products 4,5-epoxy-2-alkenals. J. Agric. Food Chem. 52:7126-7131.   DOI   ScienceOn
18 ISO. 3960. 2007. Animal and vegetable fats and oils -- determination of peroxide value -- iodometric (visual) endpoint determination. http://www.iso.org/iso/iso_catalogue/catalogue_ics/catalogue_ics_browse.htm?ICS1=67&ICS2=200&ICS3=10, Accessed July 15, 2007.
19 Liu, P. 2012. Biological Assessment and Methods to Evaluate Lipid Peroxidation When Feeding Thermally-oxidized Lipids to Young Pigs. Ph.D Thesis, The Graduate School of the University of Minnesota. Minneapolis, MN, USA.
20 Mcgill, J., E. Mcgill, A. Kamyab, and J. D. Firman. 2011. Effect of high peroxide value fats on performance of broilers in a normal immune state. Int. J. Poult. Sci. 10:241-246.   DOI
21 Rosario, Z. and F. J. Hidalgo. 1994. Modification of lysine amino groups by the lipid peroxidation product 4,5 (e)-epoxy-2 (e)-heptenal. Lipids 29:243-249.   DOI
22 NRC. 1994. Nutrient Requirements of Poultry. Washington, DC, USA.
23 Oarada, M., T. Majima, T. Miyazawa, K. Fujimoto, and T. Kaneda. 1989. The effect of dietary autoxidized oils on immunocompetent cells in mice. Biochim. Biophys. Acta. 1012:156-160.   DOI   ScienceOn
24 Ringseis, R., N. Piwek, and K. Eder. 2007. Oxidized fat induces oxidative stress but has no effect on NF-$\kappa{B}$-mediated proinflammatory gene transcription in porcine intestinal epithelial cells. Inflamm. Res. 56:118-125.   DOI
25 SAS. 1996. SAS User's Guide Statistics. SAS Institute. Cary, NC, USA.
26 Schoenborn, J. R. and C. B. Wilson 2007. Regulation of interferon-gamma during innate and adaptive immune responses. Adv. Immunol. 96:41-101.   DOI   ScienceOn
27 Scurtu, I., S. Andrei, C. Catoi, A. I. Baba, and F. Bolos. 2003. Preliminary data regarding the influence of oxidized oil administration on antioxidant enzymes' activity in broiler chickens. In: 2nd International Symposium on Prospects for the 3rd Millennium Agriculture. Cluj Napoca, Romania.
28 Shafaeizadeh, S., J. Jamalian, A. A. Owji, L. Azadbakht, R. Ramezani, N. Karbalaei, A. Rajaeifard, and N. Tabatabai. 2011. The effect of consuming oxidized oil supplemented with fiber on lipid profiles in rat model. J. Res. Med. Sci. 16:1541-1549.
29 Shale, M., C. Schiering, and F. Powrie 2013. $CD4^{+}$ T-cell subsets in intestinal inflammation. Immunol. Rev. 252:164-182.   DOI   ScienceOn