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Effect of cooling water and inverse lighting on short chain fatty acid and blood lipid of broiler chickens in closed poultry house during hot weather

혹서기 무창계사에서 육계의 혈액지질 및 짧은 사슬지방산에 관한 역전점등과 냉각수 효과

  • Received : 2014.01.28
  • Accepted : 2014.03.10
  • Published : 2014.03.30

Abstract

This experiment evaluated the interaction effect of extreme heat diet(EHD), inverse lighting, and cool water on the growth performance of broiler chickens under extreme heat stress. There were 4 experimental groups (T1: EHD 1, 10:00-19:00 dark, 19:00-10:00 light, cold water $9^{\circ}C$; T2: EHD 2, 10:00-19:00 dark, 19:00-10:00 light, cold water $9^{\circ}C$; T3: EHD 1, 09:00-18:00 dark, 18:00-09:00 light, cold water $14^{\circ}C$; T4: EHD 2, 09:00-18:00 dark, 18:00-09:00 light, cold water $14^{\circ}C$), each group composed of 25 broilers and the experiment was repeated 3 times. EHD 1 contained soybean oil, molasses, methionine and lysine. EHD 2 contained all nutrients of EHD 1 and vitamin C additionally. As a result, T1 and T2 displayed higher body weight increase and diet intake compared to T3 and T4 (p<0.05). The weights of their liver and gizzard were similar but the weights of the thymus and bursa F were higher for T1 and T2 compared to that of T3 and T4 (p<0.05). It was observed that T1 and T2 displayed higher concentrations of blood triglyceride, total cholesterol, HDL-C and blood sugar compared to that of T3 and T4 but LDL-C level was higher for T3 and T4 compared to that of T1 and T2 (p<0.05). T1 and T2 displayed higher levels of immunity substances such as IgG, IgA and IgM compared to T3 and T4 but the blood level of corticosterone displayed to be lower for T1 and T2 compared to T3 and T4 (p<0.05). The T1 and T2 contained a higher amount of fecal lactobacillus compared to that of T3 and T4 but the T3 and T4 contained a higher amount of fecal E. coli, total aerobic bacteria, coliform bacteria compared to that of T1 and T2 (p<0.05). T1 and T2 displayed higher concentrations of cecal acetic acid, propionic acid and total short chain fatty acids compared to T3 and T4 but T3 and T4 displayed higher concentrations of butyric acid, isobutyric acid, valeric acid and isovaleric acid compared to T1 and T2 (p<0.05). These results have been observed that broiler chickens exposed to extreme heat stress with feeding EHD, inverse lighting and cold water would improve blood lipid, and elevate the production of immunity substance, beneficial microorganisms, and short chain fatty acids. This provision would also reduce the blood sugar consumption rate as energy sources and these effects will improve the growth performance of the broilers exposed to extreme heat.

Keywords

References

  1. S. O. Park, H. W. Jong, B. S. Park, and H. C. Choi, Effects of inverse lighting and extreme heat diet on short chain fatty acid and blood lipid profile in extreme heat stress-exposed broilers, J. of Korean Oil Chemists' Soc, 30, 400-410 (2013). https://doi.org/10.12925/jkocs.2013.30.3.400
  2. W. M. Quinteiro-Filho, A. Ribeiro, V. Ferraz-de-Paula, M. L. Pinheiro, M. Sakai, L. R. M. Sá, A. J. P. Ferreira and J. Palermo-Neto,Heat stress impairs performance parameters, induces intestinal injury, and decreases macrophage activity in broiler chickens, Poult. Sci, 89, 1905-1914 (2010). https://doi.org/10.3382/ps.2010-00812
  3. J. S Yoon, H. K. Kang, S. O. Park, B. S. Park, J. Hwangbo, O. S. Seo, H. S. Chae, H. C. Choi, and Y. H. Choi, Effects of inverse lighting and diet with soy oil on growth performance and short chain fatty acid of broiler exposed to extreme heat stress, J. of Korean Oil Chemists' Soc, 30, 127-138 (2013). https://doi.org/10.12925/jkocs.2013.30.1.127
  4. S. O Park, J. Hwangbo, B. S. Park, H. K. Kang, O. S. Seo, H. S. Chae, H. C. Choi, and Y. H. Choi, Effects of extreme heat stress and continuous lighting on growth performance and blood lipid in broiler chickens. J. of Korean Oil Chemists' Soc, 30, 78-87 (2013). https://doi.org/10.12925/jkocs.2013.30.1.078
  5. H. A. Olanrewaju, J.P. Thaxton, W.P. Dizier, J. Pursuel, W.B. Roush, and S.L. Branton, A review of lighting programs for broiler production, Int. J. Poult. Sci, 5, 301-308 (2006). https://doi.org/10.3923/ijps.2006.301.308
  6. S. D. Sharifi, A. Dibamehr, H. Lotfollahian, and B. Baurhoo, Effects of flavomycin and probiotic supplementation to diets containing different sources of fat on growth performance, intestinal morphology, apparent metabolizable energy, and fat digestibility in broiler chickens, Poult. Sci, 91, 918-927 (2012). https://doi.org/10.3382/ps.2011-01844
  7. S. Leeson, andJ. D. Summers, Commercial poultry nutrition.University books. Guelph. Ontario. NIH 6N8, Canada. (1991).
  8. S. Ozkan, S. Yalcin, E. Babacanoglu, H. Kozanoglu, F. Karadas, and S. Uysal, Photoperiodic lighting (16 hours of light:8 hours of dark) programs during incubation: 1. Effects on growth and circadian physiological traits of embryos and early stress response of broiler chickens, Poult.Sci, 91,2912-2921 (2012). https://doi.org/10.3382/ps.2012-02426
  9. G. S. Archer, H. L. Shivaprasad, and J. A. Mench, Effect of providing light during incubation on the health, productivity, and behavior of broiler chickens, Poult. Sci, 88, 29-37 (2009). https://doi.org/10.3382/ps.2008-00221
  10. M. Sahraei, Feed restriction in broiler chickens production: A review. Global Veterinaria, 8, 449-458 (2012),
  11. L. D. G. Bruno, A. Maiorka, M. Macari, R. L. Furlan, and P. E. N. Givisiez, Water intake behavior of broiler chickens exposed to heat stress and drinking from bell or and nipple drinkers, Brazilian J. Poult. Sci, 13, 147-152 (2011).
  12. Scot PIL training manual. Glasgow Univ, UK. (1994).
  13. National Research Council, Nutrient Requirements of Poultry.9th rev. ed. National Academy Press, Washington, DC. (1994).
  14. W. F. Zhang, D. F. Li, W. Q. Lu, and G. F. Yi, Effects of isomalto oligosaccharides on broiler performance and intestinal microflora, Poult. Sci, 82, 657-663 (2003). https://doi.org/10.1093/ps/82.4.657
  15. SAS, SAS/STAT User's Guide: Statistics. SAS Inst. Inc, Cary, NC. (2004)
  16. M. A. Cooper, and K. W. Washburn, The relationships of body temperature to weight gain, feed consumption, and feed utilization in broilers under heat stress, Poult. Sci, 77, 237-242 (1998). https://doi.org/10.1093/ps/77.2.237
  17. R. E. Austic, Feeding poultry in hot and cold climates. Pages 123-136 in Stress physiology in livestock. Vol. 3. M. K. Yousef. ed. CRC press. Boca Raton. FL. (1985).
  18. P. A. Geraert, J. C. F. Padilha, and S. Guillaumin, Metabolic and endocrine changes induced by chronic heatexposure in broiler chicks: Growth performance, body composition and energy retention, Br. J. Nutr, 63, 1697-1702 (1996).
  19. Y. Guo, G. Zhang, J. Yuan, and W. Nie, Effect of source and level of magnesium and vitamin E on prevention of hepatic peroxidation and oxidative deterioration of broiler meat, Anim. Feed Sci. Technol, 107, 143-150 (2003). https://doi.org/10.1016/S0377-8401(03)00116-0
  20. J. P. Jacob, and C. A. Carter, Inclusion of buckwheat in organic broiler diets, J. Appl. Poult. Res, 17, 522-528 (2008). https://doi.org/10.3382/japr.2008-00004
  21. A. A. Mendes, S. E. Watkins, J. E. England, E. A. Saleh, A. L. Waldroup, and P.W. Waldroup, Influence of dietary lysine levels and arginine:lysine ratios on performance of broilers exposed to heat or cold stress during the period of three to six weeks of age, Poult. Sci, 76, 472-481 (1997). https://doi.org/10.1093/ps/76.3.472
  22. R. Gonzalez-Esquerra, and S. Leeson, Effect of arginine:lysine ratios and source of methionine on growth and body protein accretion in acutely and chronically heat-stressed broilers, Poult. Sci, 85, 1594-1602 (2006). https://doi.org/10.1093/ps/85.9.1594
  23. C. D. Knight, C. W. Wuelling, C. A. Atwell, and J. J.Dibner, Effect of intermittent periods of high environmental temperature on broiler performance responses to sources of methionine activity, Poult. Sci, 73, 627-639 (1994). https://doi.org/10.3382/ps.0730627
  24. H. Willemsen, Q. Swennen, N. Everaert, P. A. Geraert, Y. Mercier, A. Stinckens, E.Decuypere, and J. Buyse, Effects of dietary supplementation of methionine and its hydroxy analog dl-2-hydroxy-4- methylthiobutanoic acid on growth performance, plasma hormone levels, and the redox status of broiler chickens exposed to hightemperatures, Poult. Sci, 90, 2311-2320 (2011). https://doi.org/10.3382/ps.2011-01353
  25. S. Temim, A. M. Chagneau, S. Guillaumin, J. Michel, R. Peresson, and S. Tesseraud, Does excess dietary protein improve growth performance and carcass characteristics in heat-exposed chickens, Poult. Sci, 79, 312-317 (2000). https://doi.org/10.1093/ps/79.3.312
  26. J. S. McKee, P. C. Harrison, and G. L. Riskowski, Effects of supplemental ascorbic acid on the energy conversion of broiler chicks during heat stress and feed withdrawal, Poult. Sci, 76, 1278-1286 (1997). https://doi.org/10.1093/ps/76.9.1278
  27. Boyera, L. Galey, B. A. Bernard,Effect of vitamin C and its derivatives on collagen synthesis and cross-linking by normal human fibroblasts,Int. J. Cosmet. Sci, 20,151-158 (1998). https://doi.org/10.1046/j.1467-2494.1998.171747.x
  28. A. Y. Han, M. H. Zhang, X. I. Zuo, C. F. Zhao, J. H. Feng, and C. Cheng, Effect of acute heat stress on calcium concentration, proliferation, cell cycle, and interlukin-2 production in splenic lymphocytes from broiler chickens, Poult. Sci, 89, 2063-2070 (2010). https://doi.org/10.3382/ps.2010-00715
  29. J. O. Mumma, J. P. Thaxton, Y. Vizzier-Thaxton, and W. L. Dodson, Physiological stress in laying hens, Poult. Sci, 85, 761 (2006). https://doi.org/10.1093/ps/85.4.761
  30. J. R. Bartlett, and M. O. Smith, Effect of different levels of zinc on the performance and immunocompetence of broilers under heat stress, Poult. Sci, 82, 1580-1588 (2003). https://doi.org/10.1093/ps/82.10.1580
  31. S. Singh, H. Sodhi, and R. Kaur, Effects of dietary supplements of selenium, vitamin E or combination of the two on antibody response of broilers, Br. Poult. Sci, 47, 714-719 (2006). https://doi.org/10.1080/00071660601040079
  32. P. D. Schley, and C. J. Field, The immune-enhancing effects of dietary fibers and prebiotics, Br. J. Nutr, 87, S221-S230 (2002). https://doi.org/10.1079/BJN/2002541
  33. S. O. Park, and B. S. Park, Effect of dietary inuloprebiotics on performance, serum immunoglobulin and caecalmicroflora in broiler chickens, Kor. J. Organic Agric, 17, 539-555 (2009).
  34. D. A. Higgins, Physical and chemical properties of fowl immunoglobulins, The Vet. Bull, 45,139-154 (1975).
  35. J. Bienenstock, J. Gauldie, and D. Y. E. Perey Synthesis of IgG, IgA, IgM by chicken tissues: Immunofluorescent and 14C amino acid incorporation studies, The J. Immun, 111, 1112-1118 (1973).
  36. Y. W. Wang, C. J. Field, and J. S. Sim, Dietary polyunsaturated fatty acids alter lymphocyte subset proportion and proliferation, serum immunoglobulin G concentration, and immune tissue development in chicks, Poult. Sci, 79, 1742-1748 (2000).
  37. B. Tizard, The avian antibody response, Seminars in Avian and Exotic Pet Medicine, 11, 2-14 (2002). https://doi.org/10.1053/saep.2002.28216
  38. S. Devaraj, S. Vega-Lopez, N. Kaul, F. Schonlau, P. Rohdewald, and I. Jialal, Supplementation with a pine bark extract rich in polyphenols increases plasma antioxidant capacity and alters the plasma lipoprotein profile, Lipids, 37, 931-934 (2002). https://doi.org/10.1007/s11745-006-0982-3
  39. G. R. Gibson, and X. Wang, Bifidogenic properties of different types of fructo oligosaccharides, Food Microbiol, 11, 491-498 (1994). https://doi.org/10.1006/fmic.1994.1055
  40. G. R. Gibson, E. R. Bead, X. Wang, and J. H. Cummings, Selective stimulation of bifidobacteria in the human colon by oligofluctose and inulin, Gastroenterology, 108, 975-982 (1995). https://doi.org/10.1016/0016-5085(95)90192-2
  41. J. Gong, R. J. Forster, H. Yu, J. R. Chambers, P. M. Sabour, R. Wheatcroft, and S. Chen, Diversity and phylogenetic analysis of bacteria in the mucosa of chicken ceca and comparison with bacteria in the cecal lumen, FEMS Microbiol. Lett, 208, 1-7 (2002). https://doi.org/10.1111/j.1574-6968.2002.tb11051.x
  42. Z. R. Xu, C. H. Hu, and M. O. Wang, Effects of fructooligosaccharide on conversion of L-tryptophan to skatoleandindole by mixed populations of pig fecal bacteria, J. Gen. Appl. Microbiol, 48, 83-89 (2002). https://doi.org/10.2323/jgam.48.83
  43. M. R. Shakibaie, K. A. Jalilzadeh, and S. M. Yamakanamardi, Horizontal transfer of antibioticresistance gene among gram negative bacteria in sewage and lake water and influence of some physico-chemical parameters of water on conjugation process, J. Environ. Biol, 30, 45-49 (2009).

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