Effect of Adding Different Concentrations of Mix-Oil Solution to Drinking Water of Broiler Chickens Ross 308 and Breeders at Elevated Temperatures on Blood Biochemical Characteristics and Oxidative Enzymes at the Age of 14 Days
DOI:
https://doi.org/10.55677/ijlsar/V03I12Y2024-08Keywords:
chickens, oil, biochemical characteristics, Oxidative enzymes, blood.Abstract
This study was conducted at Al-Anwar Poultry Station located in Babil Governorate for a period of 35 days, from 10/7/2022 to 14/8/2022, to demonstrate the effect of the mix-oil solution added to the drinking water of broiler chickens on some blood biochemical characteristics and oxidation enzymes at the age of 14. day and under conditions of heat stress, where 300 Ross308 broiler chicks were used, one day old, unsexed, and the average weight of the chicks was 40 gm. The mix-oil was added to the drinking water from the first day, as follows: T1: control treatment without addition, T2: adding 0.25 ml of mix-oil / liter of water, T3: adding 0.50 ml of mix-oil / liter of water, T4: adding 0.75 ml of mix-oil / liter of water, T5: Add 1 ml of mix-oil / liter of water. The experimental birds were exposed to periodic temperatures (28-35-28).
The most important results we obtained are summarized as follows:
- A highly significant (p≤0.01) increase in the blood serum glucose concentration of the T5-treated birds compared to the control treatment. A significant increase was also observed (p≤0.01) in the concentration of total protein, albumin and globulin in the T4 treatment compared to the control treatment, while serum cholesterol was observed. The results of our experiment witnessed a "significant" rise and within the normal limits in the concentration of cholesterol for T4-treated birds on T5, T3, and T2 treatments, but it was "significantly similar" in its concentration with the T1 control treatment.
- The results showed that there was a highly significant increase (p≤0.01) in the rate of triglycerides for the T4 treatment compared to "with all treatments, while high-density lipoproteins (HDL) and low-density lipoproteins (LDL) witnessed a significant decrease (p≤0.01) in all addition treatments compared to" control treatment.
- There was a "significant" decrease (P≤ 0.01) for all addition treatments in the concentration of ALT enzyme compared to the "control treatment", while the T3 treatment had a significant (P≤ 0.01) superiority in the concentration of AST and GSH-PX enzyme compared with the control treatment, while the concentration of the enzyme CAT value decreased in all addition treatments compared to the control treatment, and the rate of MDA increased in the blood serum of T2 treatment birds compared to the control, which recorded the lowest measured rates, but it did not differ significantly with the T5 treatment in its concentration.
References
Al-Darraji, H. J. (1995). A study of some physiological characteristics and thermal resistance of Fauber broiler chickens and their comparison with some commercial broiler crosses (Master's thesis). College of Agriculture, University of Baghdad.
Al-Darraji, H. J., & Al-Hasani, D. H. (2000). The effect of heat stress on blood characteristics of some broiler breeds. Iraqi Journal of Agricultural Sciences, 31, 319–336.
Al-Jebory, H.H. and S.A.H. Naji. 2021. Effect of Pelleted Fermented Feed in Production Performance of Laying Hens. Fourth International Conference for Agricultural and Sustainability Sciences I.O.P. Conf. Series: Earth and Environmental Science 910 (2021) 012007 IOP Publishing doi:10.1088/1755-1315/910/1/012007.
Al-Jebory, H.H., M. K. I. Al-Saeedi., I. L. Al-Jaryan., and F.R.Al-Khfaji.,2023 a. Impact of Neem (Azadirachta Indica) leaves powder on growth performance of broiler (Ross 308) exposed to H.S. Research Journal of Agriculture and Biological Sciences, 15(2): 1-5. DOI: 10.22587/rjabs.2023.15.2.1
Al-Jebory, H.H., M. K. I. Al-Saeedi., I. L. Al-Jaryan., and F.R.Al-Khfaji. 2023 b Impact of Neem (Azadirachta Indica) leaves powder on growth performance of broiler (Ross 308) exposed to heat stress. Research Journal of Agriculture and Biological Sciences, 15(2): 1-5. DOI: 10.22587/rjabs.2023.15.2.1.
Al-Jebory, H.H., M.A. Elsagheer, H.Q. Baqer, M.K.I. Al-Saeedi, I.L. Al-jeryan, and F. Al-Khfaji. 2023 c. Histological Study of Jejunum in Broiler Chicks Fed in the Embryonic Period with Silver Nanoparticles and Exposed to Heat Stress. Syrian Journal of Agricultural Research – SJAR. 10(5): 138-149.
Al-Jebory, H.H., M.K.I. Al-Saeedi, S.A. Sakr, F.R. Al-Khafaji, N.A.L. Ali, B.A.M. Lehmood, H. Taheri. A.A. A. Qotbi, and S. Ghazi. 2023 d. Improving Chicken Growth Performance with Nano Silver Added to Drinking Water. International Journal of Scientific Research in Biological Sciences. 10 (6): 01-04.
Aljebory, H.H.D S.A.H. Naji. 2021. Effect of Pelleted Fermented Feed-in Egg Quality of Laying Hens. Diyala Agricultural Sciences Journal 13 (1): 41-57. https://dx.doi.org/10.52951/dasj.21130105.
Al-Khafaji, F. R., and AL-Jebory, H. H. 2019. Effect Of Injection In Hatching Eggs With Different Concentrations Of Nanosilver At 17.5 Days Age In Some Hatching Traits And Blood Parameters For Broiler Chickens (Ross 308). Plant Arch., 19(2):1234–1238.
Al-Khafaji, F.R.A., H.H.D. Al-Gburi, and N.M.A. Al-Gburi. 2022. Effect of injecting hatching eggs with different concentrations of nanosilver at the age of 17.5 days from the age of the embryos on the qualitative traits for the carcass and some lymphatic organs for the broiler chickens (Ross 308). NeuroQuantology. 20(11): 2768 -2774. doi: 10.14704/NQ.2022.20.11.NQ66281.
Allen, H. K., Levine, U. Y., Looft, T., Bandrick, M., & Casey, T. A. (2013). Treatment, promotion, commotion: Antibiotic alternatives in food-producing animals. Trends in Microbiology, 21(3), 114–119.
Al-Saeedi, M. K. I., Ajafar, M., & Al-Jeobry, H. H. (2024). Immunity and glycogen metabolism of laying hens fed diets supplemented with manganese sulfate during the forced molting. Journal of Animal Health Production, 12(3), 413–419.
Assmann, S. M. (1993). Signal transduction in guard cells. Annual Review of Plant Physiology and Plant Molecular Biology, 44, 345–375.
Barrow, S., Oyen, L. P. A., & Dung, N. X. (1999). Plant Resources of South-East Asia No. 19. Essential-Oil Plants. Kew Bulletin, 54(2), 502.
Bedáňová, I., Voslářová, E., Večerek, V., Strakova, E., & Suchý, P. (2003). The hematological profile of broilers under acute and chronic heat stress at 30±1°C level. Folia Veterinaria, 47, 188–192.
Bishop, A. L., & Hall, A. (2000). Rho GTPases and their effector proteins. Biochemical Journal, 348(2), 241–255.
Buege, J. A., & Aust, S. D. (1978). [30] Microsomal lipid peroxidation. In Methods in Enzymology (Vol. 52, pp. 302–310). Academic Press.
Burstein, M. S. H. R., Scholnick, H. R., & Morfin, R. (1970). Rapid method for the isolation of lipoproteins from human serum by precipitation with polyanions. Journal of Lipid Research, 11(6), 583–595.
Christie, L. G. (2016). Use of essential oils on the development of academic and social skills in an autistic child (Doctoral dissertation, Master of Education Thesis, University of Canterbury).
https://doi.org/10.13140/RG.2.2.10783.18080
Elwinger, K., Fisher, C., Jeroch, H., Sauveur, B., Tiller, H., & Whitehead, C. C. (2016). A brief history of poultry nutrition over the last hundred years. World's Poultry Science Journal, 72(4), 701–720.
Franey, R. J., & Amador, E. (1968). Serum cholesterol measurement based on ethanol extraction and ferric chloride-sulfuric acid. Clinica Chimica Acta, 21(2), 255–263.
Freeman, B. M. (1987). The stress syndrome. World's Poultry Science Journal, 43(1), 15–19.
Hadwan, M. H., & Abed, H. N. (2016). Data supporting the spectrophotometric method for the estimation of catalase activity. Data in Brief, 6, 194–199.
Henry, R. J., Sobel, C., & Kim, J. (1982). Determination of uric acid. In N. W. Tietz (Ed.), Fundamentals of Clinical Chemistry. W.B. Saunders Company.
Jones, D. B., Hancock, J. D., Harmon, D. L., & Walker, C. E. (1992). Effects of exogenous emulsifiers and fat sources on nutrient digestibility, serum lipids, and growth performance in weanling pigs. Journal of Animal Science, 70(11), 3473–3482.
Kaplan, M. M., & Larson, P. R. (1985). The Medical Clinics of North America (thyroid disease) (Vol. 69). W.B. Saunders Company.
Lee, J. H., Cho, S., Paik, H. D., Choi, C. W., Nam, K. T., Hwang, S. G., & Kim, S. K. (2014). Investigation on antibacterial and antioxidant activities, phenolic and flavonoid contents of some Thai edible plants as an alternative for antibiotics. Asian-Australasian Journal of Animal Sciences, 27(10), 1461.
Londok, J. J. M. R., & Rompis, J. E. G. (2019, November). Supplementation of lauric acid and feed fiber to optimize the performance of the broiler. In IOP Conference Series: Earth and Environmental Science (Vol. 387, No. 1, p. 012082). IOP Publishing.
Long, S., Xu, Y., Wang, C., Li, C., Liu, D., & Piao, X. (2018). Effects of dietary supplementation with a combination of plant oils on performance, meat quality, and fatty acid deposition of broilers. Asian-Australasian Journal of Animal Sciences, 31(11), 1773.
Malheiros, R. D., Moraes, V. M., Collin, A., Decuypere, E., & Buyse, J. (2003). Free diet selection by broilers is influenced by dietary macronutrient ratio and corticosterone supplementation. Poultry Science, 82(1), 123–131.
Millet, S., & Maertens, L. (2011). The European ban on antibiotic growth promoters in animal feed: From challenges to opportunities. The Veterinary Journal, 187(2), 143–144.
National Research Council, & Subcommittee on Poultry Nutrition. (1994). Nutrient requirements of poultry: 1994. National Academies Press.
Park, Y., Albright, K. J., Liu, W., Storkson, J. M., Cook, M. E., & Pariza, M. W. (1997). Effect of conjugated linoleic acid on body composition in mice. Lipids, 32(8), 853–858.
Preston, R. A. (2011). Acid-base, fluids, and electrolytes are made ridiculously simple.
Reitman, S., & Frankel, S. (1957). A colorimetric method for the determination of serum glutamic oxalacetic and glutamic pyruvic transaminases. American Journal of Clinical Pathology, 28(1), 56–63.
Sedlak, J., & Lindsay, R. H. (1968). Estimation of total, protein-bound, and nonprotein sulfhydryl groups in tissue with Ellman's reagent. Analytical Biochemistry, 25, 192–205.
Shokrollahi, B., Yavari, Z., & Kordestani, A. H. (2014). Effects of dietary medium-chain fatty acids on performance, carcass characteristics, and some serum parameters of broiler chickens. British Poultry Science, 55(5), 662–667.
St-Pierre, N. R., Cobanov, B., & Schnitkey, G. (2003). Economic losses from heat stress by U.S. livestock industries. Journal of Dairy Science, 86, E52–E77.
Tongnuanchan, P., & Benjakul, S. (2014). Essential oils: Extraction, bioactivities, and their uses for food preservation. Journal of Food Science, 79(7), R1231–R1249.
United States Environmental Protection Agency. (2001). Quality assurance guidance document-model quality assurance project plan for the PM ambient air (Vol. 2, p. 12).
Vecerek, V., Strakova, E., Suchy, P., & Voslarova, E. (2002). Influence of high environmental temperature on production and hematological and biochemical indexes in broiler chickens. Czech Journal of Animal Science, 47(5), 176–182.
Wootton, I. D. P. (1964). Micro-analysis in medical biochemistry.
Yang, Q. M., Wu, Q. W., Yu, Z. H., & Lin, H. (1992). A study of the influence of environmental temperature on some biochemical indices in serum of broilers.
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