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Perederiy DB, Salyha YT. Impact of heat stress on redox homeostasis in the liver of laying hens and the protective role of antioxidant supplements. Bìol Tvarin. 2025; 27 (2): 14–18. DOI: 10.15407/animbiol27.02.014.
https://doi.org/10.15407/animbiol27.02.014
Received 07.01.2025 ▪ Revision 08.05.2025 ▪ Accepted 05.06.2025 ▪ Published online 10.06.2025
Impact of heat stress on redox homeostasis in the liver of laying hens and the protective role of antioxidant supplements
D. B. Perederiy, Y. T. Salyha
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Institute of Animal Biology NAAS, 38 V. Stus str., Lviv, 79034, Ukraine
Under intensive poultry farming conditions, heat stress (HS) is a major factor negatively affecting the productivity of laying hens. Elevated ambient temperatures can lead to systemic imbalances, particularly by disrupting the redox homeostasis in liver cells. A primary consequence of HS is the onset of oxidative stress (OS), marked by increased production of reactive oxygen species (ROS) and impaired function of the antioxidant defense system. Recent studies suggest that dietary supplementation with antioxidants such as betaine, taurine, and myo-inositol can enhance the liver’s resistance to oxidative injury. These compounds are thought to stabilize cellular membranes, stimulate antioxidant enzyme activity, and reduce the overall OS burden in the liver of laying hens. This study aimed to evaluate the combined effects of betaine, taurine, and myo-inositol on oxidative stress markers in the liver of laying hens under HS conditions. Thirty-two laying hens were used. The experiment was conducted at the vivarium of the Institute of Animal Biology NAAS, and consisted of two phases: during the first phase, birds were kept at 20 °C for one week (thermoneutral conditions); in the second phase, HS was induced by raising the ambient temperature to 30 °C for 6 hours daily over 7 days. The birds were divided into two groups: a control group fed a standard diet, and an experimental group whose diet was supplemented with 0,5 g/kg betaine, 5 g/kg taurine, and 2 g/kg myo-inositol. Under HS conditions, the control group exhibited a 1.5-fold increase in hepatic LOOH levels (P<0.001), indicating heightened OS. SOD and CAT activities decreased by 30% (P<0.01) and 25% (P<0.001), respectively, compared to thermoneutral conditions. GPx and GR activities declined by 25% (P<0.05) and 38% (P<0.05), respectively. In contrast, antioxidant supplementation reduced LOOH levels by 1,4-fold (P<0.001) and increased SOD and CAT activities by 21% (P<0.05) and 18% (P<0.05), respectively. GPx activity rose 1.5-fold (P<0.01) relative to the control group. These findings confirm the beneficial effects of betaine, taurine, and myo-inositol on the hepatic antioxidant system in laying hens under HS. Their inclusion in poultry diets may serve as a promising strategy to mitigate oxidative damage and support liver function during periods of elevated ambient temperature.
Key words: heat stress, antioxidant supplements, antioxidant protection, enzymes, catalase, superoxide dismutase, hydroperoxides, lipid peroxidation, glutathione peroxidase, reduced glutathione, TBA-active products
- Akbarian A, Michiels J, Degroote J, Majdeddin M, Golian A, De Smet S. Association between heat stress and oxidative stress in poultry; mitochondrial dysfunction and dietary interventions with phytochemicals. J Anim Sci Biotechnol. 2016; 7: 37. DOI: 10.1186/s40104-016-0097-5.
- Benvenga S, Marini HR, Micali A, Freni J, Pallio G, Irrera N, Squadrito F, Altavilla D, Antonelli A, Ferrari SM, Fallahi P, Puzzolo D, Minutoli L. Protective effects of myo-inositol and selenium on cadmium-induced thyroid toxicity in mice. Nutrients. 2020; 12 (5): 1222. DOI: 10.3390/nu12051222.
- Habeeb AA, Gad AE, Atta MA. Temperature-humidity indices as indicators to heat stress of climatic conditions with relation to production and reproduction of farm animals. Int J Biotechnol Rec Adv. 2018; 1 (1): 35–50. DOI: 10.18689/ijbr-1000107.
- Hunchak AV, Stefanyshyn OM, Sirko YM, Kyryliv BY, Ratych IB. Influence of exogenous enzymes and different forms of Sulfur in the diets of broiler chickens on productivity and quality of poultry products. Bìol Tvarin. 2024; 26 (4): 49–54. DOI: 10.15407/animbiol26.04.049.
- Kim HR, Ryu C, Lee SD, Cho JH, Kang H. Effects of heat stress on the laying performance, egg quality, and physiological response of laying hens. Animals (Basel). 2024; 14 (7): 1076. DOI: 10.3390/ani14071076.
- Mangan M, Siwek M. Strategies to combat heat stress in poultry production — A review. J Anim Physiol Anim Nutr. 2023; 108 (3): 576–595. DOI: 10.1111/jpn.13916.
- Nofal M, Galal MA, Mousa SMM, Yassein DMM, Bealsh AMA. Effect of dietary betaine supplementation on productive, physiological and immunological performance and carcass characteristics of growing developed chicks under the condition of heat stress. Egypt Poult Sci J. 2015; 35 (1): 237–259. Available at: https://www.cabidigitallibrary.org/doi/full/10.5555/20153166095
- Oke OE, Akosile OA, Oni AI, Opowoye IO, Ishola CA, Adebiyi JO, Odeyemi AJ, Adjei-Mensah B, Uyanga VA, Abioja MO. Oxidative stress in poultry production. Poult Sci. 2024; 103 (9): 104003. DOI: 10.1016/j.psj.2024.104003.
- Petrovska IR, Salyha YT, Vudmaska IV. Statistical methods in biological research. The educational and methodological manual. Kyiv, Agrarian Science; 2022: 172 p. ISBN 978-966-540-551-1. (in Ukrainian)
- Perederiy DB. Effectiveness of betaine, taurine, and myo-inositol in normalizing the antioxidant status of laying hens under heat stress. Bìol. Tvarin. 2024; 26 (4): 43–48. DOI: 10.15407/animbiol26.04.043.
- Polishchuk VM, Tsekhmistrenko SI, Polishchuk SA, Ponomarenko NV, Rol NV, Cherniuk SV, Cherniavskyi OO, Kuzmenko OA, Prysiazhniuk NM, Karaulna VM, Lastovska IO, Fedoruk NM. Age-related characteristics of lipid peroxidation and antioxidant defense system of ostriches (Struthio camelus domesticus). Ukr J Ecol. 2020; 10 (1): 168–174. https://doi.org/10.15421/2020_27
- Sumanu VO, Aluwong T, Ayo JO, Ogbuagu NE. Evaluation of changes in tonic immobility, vigilance, malondialdehyde, and superoxide dismutase in broiler chickens administered fisetin and probiotic (Saccharomyces cerevisiae) and exposed to heat stress. J Vet Behav. 2019; 31: 36–42. DOI: 10.1016/j.jveb.2019.01.003.
- Valgimigli L. Lipid peroxidation and antioxidant protection. Biomolecules. 2023; 13 (9): 1291. DOI: 3390/biom13091291.
- Vlizlo VV, Fedoruk RS, Ratych IB. Laboratory Methods of Research in Biology, Animal Husbandry, and Veterinary Medicine. Lviv, Spolom; 2012: 764 p. ISBN 976-966-665-677-6. (in Ukrainian).
- Wang X, Wang C, Wang Z, Li W, Sun W, Zhang F, Hong Y, Liu X, Liu X, Lyu Q, Hu J. Antioxidant effect of taurine on chronic heat-stressed broilers. In: Schaffer SW., El Idrissi A, Murakami S. Taurine 12. A Conditionally Essential Amino Acid. Springer Nature, 2022: 161–169. DOI: 10.1007/978-3-030-93337-1_16.
- Wang Y, Branicky R, Noë A, Hekimi S. Superoxide dismutases: Dual roles in controlling ROS damage and regulating ROS signaling. J Cell Biol. 2018; 217 (6): 1915–1928. DOI: 10.1083/jcb.201708007.
- Wang Y, Jia X, Hsieh JCF, Monson MS, Zhang J, Shu D, Nie Q, Persia ME, Rothschild MF, Lamont SJ. Transcriptome response of liver and muscle in heat-stressed laying hens. Genes (Basel). 2021; 12 (2): 255. DOI: 10.3390/genes12020255.
- Wasti S, Sah N, Mishra B. Impact of heat stress on poultry health and performances, and potential mitigation strategies. Animals (Basel). 2020; 10(8): 1266. DOI: 10.3390/ani10081266.