Biochemical Investigation of Serum Iron Level in Water Buffaloes in Three Regions of Babylon, Iraq
DOI:
https://doi.org/10.6000/1927-520X.2025.14.17Keywords:
Iron, Buffalo, Soil, Forages, biochemical, SerumAbstract
Buffalo is a multipurpose ruminant that can adjust to a variety of environmental conditions. The quality of soil and forages determines iron (Fe) availability to ruminants. The objectives of this study were to examine how serum Fe levels and related physiological and biochemical indices in water buffaloes affected by regional differences in Fe levels of soil and forages from three regions (South, Middle, and North) of the Babylon Province, Iraq. A total of 180 water buffaloes of various ages and sexes were randomly selected from three regions (South, Middle, and North) of Babylon Province, Iraq. All buffaloes were clinically examined. Then, fecal samples for parasitology examination and blood samples were collected for use in hematology and biochemical analysis.Soil and forage samples were collected and analyzed for Fe levels using atomic absorption spectrophotometry (AAS). Data were statistically evaluated by using SPSS. Our study revealed a significant regional variation in soil Fe levels, highest in the South, moderate in the Middle, and lowest in the North. Forage Fe content varied by type and region, with decreased Fe levels in barley grasses in the North region, while other regions showed Fe levels within the normal range. The Fe levels in alfalfa grass in the North region declined, while Fe levels in the South and Middle regions were within normal range. The Fe level in fresh rice straw decreased in the South, Middle, and North regions. Markedly, 96.11% of buffaloes had serum Fe levels below the normal range. The body temperature was within normal range, while respiratory and pulse rates were increased. (92.22%), (0%), and (2.22%) of buffaloes had ferritin, transferrin, and total iron binding capacity (TIBC) below normal levels, respectively; and (6.11%), (3.33%), and (0%) of buffaloes had normal levels, respectively; and (1.66%), (96.66%), and (97.77%) of buffaloes had higher than normal levels, respectively. (98.88%), (95.55%), and (98.88%) of buffaloes had red blood cells (RBCs), hemoglobin (Hb), and hematocrit (Hct) below normal levels, respectively; (1.12%), (4.44%), and (1.12%) of buffaloes had normal levels, respectively; and (0%) of buffaloes had greater than normal levels. To the best of our knowledge, this is the first study in Babylon province, Iraq, to identify how the serum Fe levels of buffaloes are affected by the regional differences in levels of Fe in soil and three different types of forages.
References
Fernández AH, Romero O, Montiel N, Trujillo HN, Cahuao N. Determination of hematological reference values in buffalo (Bubalus bubalis) prepartum and postpartum in a production unit in the south of Lake Maracaíbo, Venezuela. Rev Cient 2005; 15(2): 119-24.
Wysocka D, Snarska A, Sobiech P. Iron in cattle health. J Elementol 2020; 25(3): 1175-85. DOI: https://doi.org/10.5601/jelem.2020.25.2.1960
Piskin E, Cianciosi D, Gulec S, Tomas M, Capanoglu E. Iron absorption: factors, limitations, and improvement methods. ACS Omega 2022; 7(24): 20441-56. DOI: https://doi.org/10.1021/acsomega.2c01833
Abbaspour N, Hurrell R, Kelishadi R. Review on iron and its importance for human health. J Res Med Sci 2014; 19(2): 164.
von Drygalski A, Adamson JW. Iron metabolism in man. JPEN J Parenter Enteral Nutr 2013; 37(5): 599-606. DOI: https://doi.org/10.1177/0148607112459648
Baloda S. A review: status of macro and micro minerals in feed, fodder, blood, and hair of buffaloes. Pharma Innov J 2018; 7(4): 984-7.
Kerr BJ, Ziemer CJ, Weber TE, et al. Comparative sulfur analysis using thermal combustion or inductively coupled plasma methodology and mineral composition of common livestock feedstuffs. J Anim Sci 2008; 86(9): 2377-84. DOI: https://doi.org/10.2527/jas.2007-0811
Marijanušić K, Manojlović M, Bogdanović D, Čabilovski R, Lombnaes P. Mineral composition of forage crops in respect to dairy cow nutrition. Bulg J Agric Sci 2017; 23(2): 204-12.
Al-Shawi AFS. Conformation of the clinical diagnoses of some malnutrition diseases in local and Shammi goats in Baghdad province. Iraqi J Vet Med 2012; 36(1): 8-14. DOI: https://doi.org/10.30539/iraqijvm.v36i1.561
Constable PD, Hinchcliff KW, Done SH, Grünberg W. Veterinary medicine: a textbook of the diseases of cattle, horses, sheep, pigs, and goats. 11th ed. W.B. Saunders Ltd; 2017; p. 2308.
Abdulkareem TA, Eidan SM, Shubber AM, Ibrahim FF, Ali MD, Mohammed OA. Reference physiological values in different animal species. Ministry of Agriculture, Iraq 2020; p. 96-97.
Shareef ABO, Luaibi OK. Clinical and biochemical profile of Iraqi local breed cows during pregnancy and early lactation. Iraqi J Vet Med 2020; 44(E0): 51-56. DOI: https://doi.org/10.30539/ijvm.v44i(E0).1021
Al-Wasmee AKK, Hassone WS, Al-Janabi HT, Al-Jabory HAH. Molecular prevalence of theileriosis in calf at Babylon, Iraq. Adv Anim Vet Sci 2024; 12(6): 1061-5. DOI: https://doi.org/10.17582/journal.aavs/2024/12.6.1061.1065
Al-Hadithy HAH, Badawi NM. Determination of serum proteins and glucose concentrations in clinically normal and anemic Awassi sheep. World Vet J 2015; 1: 1-6. DOI: https://doi.org/10.5455/wvj.20150246
Coles EH. Veterinary clinical pathology. 4th ed. Philadelphia: WB Saunders Company 1986; 136-70.
Zajac AM, Conboy GA, Little SE, Reichard MV. Veterinary clinical parasitology. 9th ed. Wily-Black 2021; p. 432.
Chia RW, Lee JY, Cha J, Rodríguez-Seijo A. Methods of soil sampling for microplastic analysis: a review. Environ Chem Lett 2024; 22(1): 227-38. DOI: https://doi.org/10.1007/s10311-023-01652-9
Simpson MG. Plant systematics. 3rd ed. Academic Press 2019. DOI: https://doi.org/10.1016/B978-0-12-812628-8.50001-8
Drake D, Nader G, Forero L. Feeding rice straw to cattle. UCANR Publications 2002. DOI: https://doi.org/10.3733/ucanr.8079
Thrall M, Weiser G, Allison RW, and Campbell TW. Veterinary hematology, clinical chemistry, and cytology. 3rd ed. John Wiley and Sons 2022.
Alhtheal ED, Salman SS, AL-Kubaisi SM. Antianemic effect of cyclosporine loaded with chitosan nanoparticles on induced aplastic anemia in adult male dogs. Adv Anim Vet Sci 2024; 12(9): 1836-45. DOI: https://doi.org/10.17582/journal.aavs/2024/12.9.1836.1845
Weiss DJ, Wardrop KJ. Schalm's veterinary hematology. John Wiley & Sons 2011.
Al-Zubaidy IA, Waheed LS, Al-Jabory HA, Abbas SM, Salh AH. Investigation on serum trace element status (copper, iron and zinc) in Iraqi camels (Camelus dromedarius). Plant Arch 2020; 20(2).
Alhtheal ED. Studies on morphological classification of anemia and clinical examination in Iraqi buffaloes [MS thesis]. Baghdad: College of Veterinary Medicine, University of Baghdad 2012.
Dahman LSB, Sumaily KM, Sabi EM, et al. A comparative study for measuring serum ferritin levels with three different laboratory methods: enzyme-linked immunosorbent assay versus Cobas e411 and Cobas Integra 400 methods. Diagnostics 2022; 12(2): 320. DOI: https://doi.org/10.3390/diagnostics12020320
Smith JE. Iron metabolism and its disorders. In: Kaneko JJ, Harvey JW, Bruss ML, editors. Clinical biochemistry of domestic animals. San Diego: Academic Press 1997; pp. 223-39. DOI: https://doi.org/10.1016/B978-012396305-5/50010-5
Herdt TH, Hoff B. The use of blood analysis to evaluate trace mineral status in ruminant livestock. Vet Clin Food Anim 2011; 27(2): 255-83. DOI: https://doi.org/10.1016/j.cvfa.2011.02.004
Ishioka K, Hayakawa N, Nakamura K, Terashima K. Patient-side assay of lipase activity correlating with pancreatic lipase immunoreactivity in the dog. J Vet Med Sci 2011; 73(11): 1481-3. DOI: https://doi.org/10.1292/jvms.11-0166
Moser M, Pfister H, Bruckmaier RM, Rehage J, Blum JW. Blood serum transferrin concentration in cattle in various physiological states, in veal calves fed different amounts of iron, and in cattle affected by infectious and non‐infectious diseases. J Vet Med A 1994; 41(1-10): 413-20. DOI: https://doi.org/10.1111/j.1439-0442.1994.tb00108.x
Kaneko JJ, Harvey JW, Bruss ML. Clinical biochemistry of domestic animals. San Diego: Academic Press 2008; pp. 663-93.
Hubl W, Schmieder J, Gladrow E, Demant T. Reference Intervals for Thyroid Hormones on the Architect Analyser 2002; 40(2): 165-166. DOI: https://doi.org/10.1515/CCLM.2002.028
Imeri R, Kullaj E, Duhani E, Millaku L. Concentrations of heavy metals in apple fruits around the industrial area of Mitrovica, Kosovo. Iraqi J Agric Sci 2019; 50(1).
Manea MH, Al-Tawash BS, Al-Saady YI. Environmental geochemical assessment of heavy metals in soil and sediment of Shatt-Al-Hilla, Babil governorate, central Iraq. Iraqi J Sci 2019; 60(5): 1055-68. DOI: https://doi.org/10.24996/ijs.2019.60.5.15
Bankaji I, Kouki R, Dridi N, Ferreira R, Hidouri S, Duarte B, Caçador I. Comparison of digestion methods using atomic absorption spectrometry for the determination of metal levels in plants. Separations 2023; 10(1): 40. DOI: https://doi.org/10.3390/separations10010040
Brown JR, Hanson RG. Micro- and secondary nutrients in Missouri. Columbia: University of Missouri, Agricultural Extension Division 1977.
Ananta D. Mineral composition and nutritive value of fresh and supplemented rice straws preserved in manual stacking, balling, and wrapping storage methods. Afr J Food Agric Nutr Dev 2023; 23(10): 24907-22. DOI: https://doi.org/10.18697/ajfand.125.23900
Daniel WW, Cross CL. Biostatistics: a foundation for analysis in the health sciences. 10th ed. Hoboken: Wiley 2018.
Gokalp Z, Mohammed D. Assessment of heavy metal pollution in Heshkaro stream of Duhok city, Iraq. J Clean Prod 2019; 237: 117681. DOI: https://doi.org/10.1016/j.jclepro.2019.117681
Razzaq RA, Hussain A, Jumaah GF. Assessment of heavy metals contamination in soil and ground water in southwest of Baghdad, Yusufiyah District 2021; 9: 195-205.
Chyad AA, Saeed AM, Alhendi AS. Determination of heavy metals in irrigation water, soil, paddy, and produced rice of some paddy fields of Iraq. Iraqi J Sci 2022; 63: 4637-49. DOI: https://doi.org/10.24996/ijs.2022.63.11.2
Khan A, Javid S, Muhmood A, Mjeed T, Niaz A, Majeed A. Heavy metal status of soil and vegetables grown on peri-urban area of Lahore district. Soil Environ 2013; 32(1): 49-54.
Ahmed AM, Mohamed AS. Relationship between some soil properties and wheat and barley productivity in alluvial soil at Waset governorate. Iraqi J Agric Sci 2016; 47(4). DOI: https://doi.org/10.36103/ijas.v47i4.546
Khan ZI, Hussain A, Ashraf M, McDowell LR. Mineral status of soils and forages in Southwestern Punjab-Pakistan: Micro-minerals. Asian-Australas J Anim Sci 2006; 19(8): 1139-47. DOI: https://doi.org/10.5713/ajas.2006.1139
Tejada R, McDowell LR, Martin FG, Conrad LH. Evaluation of the macro mineral and crude protein status of cattle in specific regions in Guatemala. Nutr Rep Int 1987; 35: 989-98.
Cuesta PA, McDowell LR, Kunkle WE, Bullock F, Drew A, Wilkinson NS, Martin FG. Seasonal variation of soil and forage mineral concentrations in north Florida. Commun Soil Sci Plant Anal 1993; 24(3-4): 335-47. DOI: https://doi.org/10.1080/00103629309368803
Velásquez Pereira J, McDowell L, Conrad J, Wilkinson N, Martin F. Mineral status of soils, forages and cattle in Nicaragua. I. Microminerals. Rev Fac Agron Univ Zulia 2012; 14(1).
Prabowo A, McDowell LR, Wilkinson NS, Wilcox CJ, Conrad JH. Mineral status of grazing cattle in south Sulawesi, Indonesia: 1. Macrominerals. Asian-Australas J Anim Sci 1991; 4(2): 111-20. DOI: https://doi.org/10.5713/ajas.1991.111
Akhtar MS, Lodhi LA, Ahmad I, Qureshi ZI, Muhammad G. Serum trace mineral variations in Nili-Ravi buffaloes suffering with prepartum vaginal prolapse in two different agro-ecological zones of Punjab, Pakistan. Theriogenology 2012; 77(7): 1328-33. DOI: https://doi.org/10.1016/j.theriogenology.2011.10.037
Suttle NF, Jones DG. Recent developments in trace element metabolism and function: Trace elements, disease resistance and immune responsiveness in ruminants. J Nutr 1989; 119(7): 1055-61. DOI: https://doi.org/10.1093/jn/119.7.1055
Hidiroglou M. Zinc, copper, and manganese deficiencies and the ruminant skeleton: a review. Can J Anim Sci 1980; 60(3): 579-90. DOI: https://doi.org/10.4141/cjas80-068
Yatoo MI, Saxena A, Jhambh R, Nabi S, Melepad DP, Kumar P, Sharma MC. Status of trace mineral deficiency in sheep and goat in the Kashmir Valley. Res J Vet Pract 2013; 1(4): 43-5.
Haas JD, Brownlie IV T. Iron deficiency and reduced work capacity: a critical review of the research to determine a causal relationship. J Nutr 2001; 131(2): 676S-90S. DOI: https://doi.org/10.1093/jn/131.2.676S
Abd El-Raof YM, Ghanem MM. Clinical and haemato-bio-chemical studies on cases of alopecia in sheep due to de-ficiency of some trace elements. SCVMJ 2006; X(1): 17-25.
AL-Agealy KK, AL-Khalidi JA, AL-Kinani LM. The effect of copper deficiency on the essential component of sheep milk. Iraqi J Vet Med 2007; 31(2): 115-21. DOI: https://doi.org/10.30539/iraqijvm.v31i2.793
Usiluka L, Kambarage D. Diseases of small ruminants in Sub-Saharan Africa: a handbook. Roslin, Scotland: VETAID Centre for Tropical Veterinary Medicine 1996.
El-Sheikh AR, Attia H, Selim H. Textbook of veterinary internal medicine. Zagazig, Egypt: Shahwan Office 2004; pp. 590-99.
Smith GW. Treatment of calf diarrhea: oral fluid therapy. Vet Clin North Am Food Anim Pract 2009; 25(1): 55-72. DOI: https://doi.org/10.1016/j.cvfa.2008.10.006
Al-Saad KM, Al-Sadi HI, Abdul-Majeed MO. Clinical, hematological, biochemical and pathological studies on zinc deficiency (hypozincemia) in sheep. Vet Res (Pak) 2010; 3(2): 14-20.
Njidda AA, Shuai’Bu AA, Isidahomen CE. Haematological and serum biochemical indices of sheep in semi-arid environ-ment of northern Nigeria. Glob J Sci Front Res 2014; 14(2): 1-9.
Lengare AS, Bhikane AU, Ghoke SS, Awaz KB. Pica in buffaloes with special reference to its etiology and treatment. Intas Polivet 2012; 13(1): 62-6.
Onmaz AC, Güneş V, Çınar M, Çitil M, Keleş İ. Hematobiochemical profiles, mineral concentrations and oxidative stress indicators in beef cattle with pica. Ital J Anim Sci 2019; 18(1): 162-7. DOI: https://doi.org/10.1080/1828051X.2018.1501283
Abdelghany H, Elkhaiat HM. The importance of copper and the effects of its deficiency and toxicity in animal health. Int J Livest Res 2015; 5(12): 1. DOI: https://doi.org/10.5455/ijlr.20151213101704
Ebrahim ZK. Clinical, hematological and biochemical studies on wool eating syndrome in sheep. Alexandria J Vet Sci 2015; 46(1): 95-9. DOI: https://doi.org/10.5455/ajvs.190796
Jones ML, Allison RW. Evaluation of the ruminant complete blood cell count. Vet Clin North Am Food Anim Pract 2007; 23(3): 377-402. DOI: https://doi.org/10.1016/j.cvfa.2007.07.002
Cerone SI, Sansinanea AS, Streitenberger SA, Garcia MC, Auza NJ. The effect of copper deficiency on the peripheral blood cells of cattle. Vet Res Commun 1998; 22(1): 47-57. DOI: https://doi.org/10.1023/A:1005935227976
Ortín A, Villanueva-Saz S, Navarro T. Hematological analysis in ruminants. In: Encyclopedia of Livestock Medicine for Large Animal and Poultry Production. Cham: Springer Nature Switzerland 2025; pp. 1-8. DOI: https://doi.org/10.1007/978-3-031-52133-1_210-1
Nikvand AA, Rashnavadi M, Tabandeh MR. A study of pica in cattle in Iran. J Vet Behav 2018; 23: 15-8. DOI: https://doi.org/10.1016/j.jveb.2017.10.006
Baydar E, Özçelik M, Gazioğlu A. Some trace elements and serum biochemistry in sheep with fleece eating. Sağlık Bilimleri Veteriner Dergisi 2015; 29(3): 187-90.
Ford RB, Mazzaferro E. Kirk and Bistner’s handbook of veterinary procedures and emergency treatment. 9th ed. St. Louis: Elsevier Health Sciences 2011. DOI: https://doi.org/10.1016/B978-1-4377-0798-4.00001-3
Russell KE, Roussel AJ. Evaluation of the ruminant serum chemistry profile. Vet Clin North Am Food Anim Pract 2007; 23(3): 403-26. DOI: https://doi.org/10.1016/j.cvfa.2007.07.003
Loguercio C, De Girolamo V, Federico A, Feng SL, Crafa E, Cataldi V, Del Vecchio Blanco C. Relationship of blood trace elements to liver damage, nutritional status, and oxidative stress in chronic nonalcoholic liver disease. Biol Trace Elem Res 2001; 81(3): 245-54. DOI: https://doi.org/10.1385/BTER:81:3:245
Shaikh HA. Diagnostic and therapeutic aspects of hepatic jaundice in cattle [dissertation]. Nagpur: Maharashtra Animal and Fishery Sciences University 2017.
Jaheed E. Study of blood serum biochemical profile and pathological changes in haemonchosis experimentally induced in goats. Am J Bio Sci 2021; 9(3): 95-104. DOI: https://doi.org/10.11648/j.ajbio.20210903.14
Sharma V, Sridhar S. Evaluation of some liver function tests in clinical cases of hepatic insufficiency in buffaloes. Ital J Anim Sci 2007; 6(Suppl 2): 984-7. DOI: https://doi.org/10.4081/ijas.2007.s2.984
Nanev V, Vladov I, Kirazov L. Serum trace elements and enzymes in lambs with introduced haemonchosis. Acta Morph Anthrop 2020; 27(3-4): 43-8.
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