ZINC CITRATE INFLUENCE ON THE CONCENTRATION OF SOME MACRO- AND MICROELEMENTS IN THE RABBITS BODY TISSUES
DOI: http://dx.doi.org/10.30970/sbi.1604.697
Abstract
Background. Some of the humanity’s problems in the 21st century are related to insufficient mineral nutrition according to the World Health Organization. The reason for this conclusion is not in the amount of mineral substances supplied with food, but in their bioavailability in the body. The problem of rabbit high-quality mineral nutrition is not solved during industrial maintenance. Research on the impact of organic compounds of trace elements on the human and animal body has intensified over the last decade. Studies show the effectiveness of the use of organic compounds of microelements with unique physiological properties to penetrate the cell and exert an activating effect on the course of biochemical reactions, which positively affects the whole organism. However, the physiological effect occurs under the condition of receiving and assimilation of organic compounds of trace elements in optimal amounts. Therefore, the main task of this research was to study the effect of the investigated doses of zinc citrate, which was fed in rabbits for 36 days after weaning to assess the change in the content of minerals in the tissues of their body.
Materials and Methods. Studies were conducted on 16 rabbits that were close by clinical and visual indicators aged 40 days from birth, kept in a laboratory room of a research institution equipped with mesh industrial cages for rabbits. Rabbits of the control group were kept with free access to complete nutrient and mineral supplementation in feed and water. The animals were kept separately in cages and an appropriate amount of zinc citrate was added to the daily amount of water (100 mL) every day. Rabbits of this age drink an average of 100 mL of water per day. Rabbits of study groups I, II, and III used the same feeding as in the control, in addition, for 24 hours, zinc citrate was additionally used with water in the amount of: I – 0.25; II – 0.50; III – 0.75 mg Zn/kg of body weight. The comparative period was 10 days, the experimental period was 36 days. On day 36 of the study, animals of all groups were euthanized; their blood and tissues: liver, kidney, ribeye, spleen, and hair from the thigh area of rabbits were taken to determine the content of mineral elements using an atomic absorption spectrophotometer.
Results. Feeding zinc citrate with water in the amount of 0.25 mg Zn/kg of body weight was marked by a probable increase in the content of Co and Cu (P <0.05) in the blood. Administration of zinc citrate in the amount of 0.50 mg Zn/kg of body weight was characterized by a probable increase in Zn (P <0.001), Co (P <0.001), Fe (P <0.05), Cu (P <0.05) in the blood; the level of Z (P <0.05), Cr (P <0.05), Co (P <0.01), Fe (P <0.05), Cu (P <0.01) in the liver; Fe (P <0.05) and Cu (P <0.05) in the spleen, Zn (P <0.05) in muscle and hair compared to control. The use of zinc citrate at the rate of 0.75 mg Zn/kg of body weight induced the most probable changes: the content of Zn (P <0.01) in the blood, liver (P <0.05), spleen (P <0.01), muscle (P <0.05) and hair (P <0.01), Cr in the liver (P <0.05), Co in the blood (P <0.01), liver (P <0.01), spleen (P <0.01), Fe (P <0.01) and Cu (P <0.05) in the blood, liver (P <0.05–0.01), kidneys (P <0.05–0.01), Fe in the spleen (P <0.01) and muscle (P <0.05) compared with the control group.
Conclusions. Additional administration of zinc citrate (0.25 mg Zn/kg body weight) with water for 36 days was marked by the smallest changes in the studied mineral substances concentration of rabbits’ tissues, with the exception of an increase in the Co and Cu blood content. With an increase in the daily amount of zinc citrate (0.50 and 0.75 mg Zn/kg body weight), the concentration of Zn, Co, Fe, and Cu in the blood and liver tissue mainly increased, while less prominent changes were noted in the tissue of the spleen and kidneys compared to the control group. Macro- and microelements concentration changes may indicate a more pronounced effect of zinc citrate depending on the applied amount, in particular, a larger amount (0.75 mg Zn/kg body weight) induced the greatest probable increase in the studied microelements, with the exception of Mg and Mn in the rabbits’ body tissues.
Keywords
Full Text:
PDFReferences
Abdel-Wareth, A. A. A., Amer, S. A., Mobashar, M., & El-Sayed, H. G. M. (2022). Use of zinc oxide nanoparticles in the growing rabbit diets to mitigate hot environmental conditions for sustainable production and improved meat quality. BMC Veterinary Research, 18(1), 354. doi:10.1186/s12917-022-03451-w Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
Alagawany, M., Abd El-Hack, M. E., Farag, M. R., Elnesr, S. S., El-Kholy, M. S., Saadeldin, I. M., & Swelum, A. A. (2018). Dietary supplementation of Yucca schidigera extract enhances productive and reproductive performances, blood profile, immune function, and antioxidant status in laying Japanese quails exposed to lead in the diet. Poultry Science, 97(9), 3126-3137. doi:10.3382/ps/pey186 Crossref ● PubMed ● Google Scholar | ||||
| ||||
Alagawany, M., Ibrahim, Z. A., Abdel-Latif, E. A., & Reda, F. M. (2020). Use of Aspergillus japonicas culture filtrate as a feed additive in quail breeder's nutrition. Italian Journal of Animal Science, 19(1), 1289-1296. doi:10.1080/1828051x.2020.1837022 Crossref ● Google Scholar | ||||
| ||||
Al-Nuairi, A. G., Mosa, K. A., Mohammad, M. G., El-Keblawy, A., Soliman, S., & Alawadhi, H. (2019). Biosynthesis, characterization, and evaluation of the cytotoxic effects of biologically synthesized silver nanoparticles from Cyperus conglomeratus root extracts on breast cancer cell line MCF-7. Biological Trace Element Research, 194(2), 560-569. doi:10.1007/s12011-019-01791-7 Crossref ● PubMed ● Google Scholar | ||||
| ||||
Attia, Y. A., Addeo, N. F., Abd Al-Hamid, A. A.-H. E., & Bovera, F. (2019). Effects of phytase supplementation to diets with or without zinc addition on growth performance and zinc utilization of White Pekin ducks. Animals, 9(5), 280. doi:10.3390/ani9050280 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
Boiko, О. V., Honchar, О. F., Lesyk, Y. V., Kovalchuk, І. І., & Gutyj, B. V. (2020). Influence of zinc nanoaquacitrate on the immuno-physiological reactivity and productivity of the organism of rabbits. Regulatory Mechanisms in Biosystems, 11(1), 133-138. doi:10.15421/022020 Crossref ● Google Scholar | ||||
| ||||
Boiko, О. V., Honchar, О. F., Lesyk, Y. V., Kovalchuk, І. І., & Gutyj, B. V. (2020). Effect of zinc nanoaquacitrate on the biochemical and productive parameters of the organism of rabbits. Regulatory Mechanisms in Biosystems, 11(2), 243-248. doi:10.15421/022036 Crossref ● Google Scholar | ||||
| ||||
Čobanová, K., Chrastinová, Ľ., Chrenková, M., Polačiková, M., Formelová, Z., Ivanišinová, O., Ryzner, M., & Grešáková, Ľ. (2018). The effect of different dietary zinc sources on mineral deposition and antioxidant indices in rabbit tissues. World Rabbit Science, 26(3), 241-248. doi:10.4995/wrs.2018.9206 Crossref ● Google Scholar | ||||
| ||||
de Blas, C., & Wiseman, J. (Eds.). (2020). Nutrition of the rabbit. 3rd ed. CABI Publishing CAB International; Wallingford, UK. doi:10.1079/9781789241273.0000 Crossref ● Google Scholar | ||||
| ||||
El-Moghazy, M., El-Fadaly, H., Khalifa, E., & Mohamed, M. (2019). Effect of dietary zinc-methionine on growth, carcass traits, antioxidants and immunity of growing rabbits. Journal of Animal and Poultry Production, 10(3), 59-66. doi:10.21608/jappmu.2019.40358 Crossref ● Google Scholar | ||||
| ||||
El-Rayes, T., El-Damrawy, S., El-Deeb, M., & Adel Abdelghany, I. (2019). Pre/post-hatch nano-zinc supplementations effects on hatchability, growth performance, carcass traits, bone characteristics and physiological status of inshas chicks. Egyptian Poultry Science Journal, 39(4), 771-789. doi:10.21608/epsj.2019.63532 Crossref ● Google Scholar | ||||
| ||||
El-Saadony, M. T., Abd El-Hack, M. E., Taha, A. E., Fouda, M. M. G., Ajarem, J. S., N. Maodaa, S., Allam, A. A., & Elshaer, N. (2020). Ecofriendly synthesis and insecticidal application of copper nanoparticles against the storage pest Tribolium castaneum. Nanomaterials, 10(3), 587. doi:10.3390/nano10030587 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
Geetha, K., Chellapandian, M., Arulnathan, N., & Ramanathan, A. (2020). Nano zinc oxide - an alternate zinc supplement for livestock. Veterinary World, 13(1), 121-126. doi:10.14202/vetworld.2020.121-126 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
Hassan, F., Mobarez, S., Mohamed, M., Attia, Y., Mekawy, A., & Mahrose, K. (2021). Zinc and/or selenium enriched spirulina as antioxidants in growing rabbit diets to alleviate the deleterious impacts of heat stress during summer season. Animals, 11(3), 756. doi:10.3390/ani11030756 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
Hassan, F., Mahmoud, R., & El-Araby, I. (2017). Growth performance, serum biochemical, economic evaluation and IL6 gene expression in growing rabbits fed diets supplemented with zinc nanoparticles. Zagazig Veterinary Journal, 45(3), 238-249. doi:10.21608/zvjz.2017.7949 Crossref ● Google Scholar | ||||
| ||||
Hillyer, J. F., & Albrecht, R. M. (2001). Gastrointestinal persorption and tissue distribution of differently sized colloidal gold nanoparticles. Journal of Pharmaceutical Sciences, 90(12), 1927-1936. doi:10.1002/jps.1143 Crossref ● PubMed ● Google Scholar | ||||
| ||||
Kamel, D., Abdel-Khalek, A., & Gabr, S. (2020). Effect of dietary zinc-oxide or nano-zinc oxide on growth performance, oxidative stress, and immunity of growing rabbits under hot climate conditions. Journal of Animal and Poultry Production, 11(12), 565-571. doi:10.21608/jappmu.2020.161193 Crossref ● Google Scholar | ||||
| ||||
Lesyk, Y. V., Luchka, I. V., Bosanevych, N. O., Denys, H. H., & Grabovska, O. S. (2019). Resistance of the rabbit organism under effect of different amounts of nano zinc citrate and its combination with cobalt and chrome citrate. The Animal Biology, 21(4), 51-57. doi:10.15407/animbiol21.04.051 (In Ukrainian) Crossref | ||||
Lesyk, Y., Ivanytska, A., Kovalchuk, I., Monastyrska, S., Hoivanovych, N., Gutyj, B., Zhelavskyi, M., Hulai, O., Midyk, S., Yakubchak, O., & Poltavchenko, T. (2020). Hematological parameters and content of lipids in tissues of the organism of rabbits according to the silicon connection. Ukrainian Journal of Ecology, 10(1), 30-36. doi:10.15421/2020_5 Crossref ● Google Scholar | ||||
| ||||
Li, T., He, W., Liao, X., Lin, X., Zhang, L., Lu, L., Guo, Y., Liu, Z., & Luo, X. (2021). Zinc alleviates the heat stress of primary cultured hepatocytes of broiler embryos via enhancing the antioxidant ability and attenuating the heat shock responses. Animal Nutrition, 7(3), 621-630. doi:10.1016/j.aninu.2021.01.003 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
Luis-Chincoya, H., Herrera-Haro, J. G., Pro-Martínez, A., Santacruz-Varela, A., & Jerez-Salas, M. P. (2021). Effect of source and concentration of zinc on growth performance, meat quality and mineral retention in New Zealand rabbits. World Rabbit Science, 29(3), 151-159. doi:10.4995/wrs.2021.14095 Crossref ● Google Scholar | ||||
| ||||
Mahmoud, U. T., Abdel-Mohsein, H. S., Mahmoud, M. A. M., Amen, O. A., Hassan, R. I. M., Abd-El-Malek, A. M., Rageb, S. M. M., Waly, H. S. A., Othman, A. A., & Osman, M. A. (2020). Effect of zinc oxide nanoparticles on broilers' performance and health status. Tropical Animal Health and Production, 52(4), 2043-2054. doi:10.1007/s11250-020-02229-2 Crossref ● PubMed ● Google Scholar | ||||
| ||||
Mohamed, L. A., El-Hindawy, M. M., Alagawany, M., Salah, A. S., & El-Sayed, S. A. A. (2019). Effect of low- or high-CP diet with cold-pressed oil supplementation on growth, immunity and antioxidant indices of growing quail. Journal of Animal Physiology and Animal Nutrition, 103(5), 1380-1387. doi:10.1111/jpn.13121 Crossref ● PubMed ● Google Scholar | ||||
| ||||
Nabi, F., Arain, M. A., Hassan, F., Umar, M., Rajput, N., Alagawany, M., Syed, S. F., Soomro, J., Somroo, F., & Liu, J. (2020). Nutraceutical role of selenium nanoparticles in poultry nutrition: a review. World's Poultry Science Journal, 76(3), 459-471. doi:10.1080/00439339.2020.1789535 Crossref ● Google Scholar | ||||
| ||||
Reda, F. M., El-Saadony, M. T., Elnesr, S. S., Alagawany, M., & Tufarelli, V. (2020). Effect of dietary supplementation of biological curcumin nanoparticles on growth and carcass traits, antioxidant status, immunity and caecal microbiota of Japanese quails. Animals, 10(5), 754. doi:10.3390/ani10050754 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
Soren, S., Kumar, S., Mishra, S., Jena, P. K., Verma, S. K., & Parhi, P. (2018). Evaluation of antibacterial and antioxidant potential of the zinc oxide nanoparticles synthesized by aqueous and polyol method. Microbial Pathogenesis, 119, 145-151. doi:10.1016/j.micpath.2018.03.048 Crossref ● PubMed ● Google Scholar | ||||
| ||||
Vlizlo, V. V., Fedoruk, R. S., & Ratych, I. B. (2012). Laboratorni metody doslidzhen u biolohiyi, tvarynnytstvi ta veterynarniy medytsyni [Laboratory methods of investigation in biology, stock-breeding and veterinary] Spolom, Lviv. (In Ukrainian) Google Scholar | ||||
| ||||
Wijnhoven, S. W. P., Peijnenburg, W. J. G. M., Herberts, C. A., Hagens, W. I., Oomen, A. G., Heugens, E. H. W., Roszek, B., Bisschops, J., Gosens, I., Van De Meent, D., Dekkers, S., De Jong, W. H., van Zijverden, M., Sips, A. J. A. M., & Geertsma, R. E. (2009). Nano-silver - a review of available data and knowledge gaps in human and environmental risk assessment. Nanotoxicology, 3(2), 109-138. doi:10.1080/17435390902725914 Crossref ● Google Scholar |
Refbacks
- There are currently no refbacks.
Copyright (c) 2022 O. Boiko, Ya. Lesyk, M. Bashchenko, O. Honchar, H. Denys, O. Grabovska, I. Luchka
This work is licensed under a Creative Commons Attribution 4.0 International License.