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Comparing Hematological and Biochemical Profiles of Pregnant and Non-pregnant Barb Mares Raised in Tiaret, Algeria | ||
Iranian Journal of Veterinary Medicine | ||
مقاله 3، دوره 17، شماره 4، دی 2023، صفحه 309-320 اصل مقاله (888.8 K) | ||
نوع مقاله: Original Articles | ||
شناسه دیجیتال (DOI): 10.32598/ijvm.17.4.1005365 | ||
نویسندگان | ||
Mira Chikhaoui* 1؛ Fadhéla Smail1؛ Souad Aiche2؛ Naceur Benamor2 | ||
1Department of Animal Health, Veterinary Sciences Institute, University of Tiaret, Tiaret, Algeria. | ||
2Department of Animal Health, Faculty of Nature and Life Sciences, University of Tiaret, Tiaret, Algeria. | ||
چکیده | ||
Background: The pure-bred Barb horse is a beloved breed from the Great Maghreb. Despite the breed’s prominence in Algeria, no gestational hematological or biochemical research has been done on this breed. Objectives: This study aimed to compare the hematological and biochemical parameters of pregnant and non-pregnant Barb mares in the first, second, and third trimesters of pregnancy. Methods: From 12 pregnant and 6 non-pregnant mares, 102 venous blood samples were taken, and their glucose (Glu), cholesterol (Cho), triglycerides (TG), total protein (TP), urea (Urea), Aspartate aminotransferase (AST), alanine aminotransferase (ALT), alkaline phosphatase (ALP), gamma-glutamyl transferase (GGT), iron (Fer), calcium (Ca), phosphorus (P), and ferric reducing ability of plasma (FRAP) were assessed as biochemical variables. Also, red blood cells, hemoglobin, hematocrit, mean corpuscular volume, mean corpuscular hemoglobin concentration, white blood cells, and platelets were all measured as hematological variables. Results: The levels of ALP, ALT, GGT, and P decreased significantly throughout gestation, while Ca, TG, Fe, and Glu levels increased. AST concentrations decreased in the second and third trimesters, whereas Cho levels increased in the first and second trimesters. Urea levels increased significantly in the third trimester, and FRAP showed significant differences at different stages of pregnancy. Mean corpuscular hemoglobin concentration was significantly lower in the first and second trimesters, and hemoglobin values were significantly lower in the second trimester. The mean value of white blood cell count was slightly higher in late pregnancy, while platelet values significantly increased throughout all trimesters. Conclusion: The study provides valuable information on the changes in hematological and biochemical parameters during pregnancy in Barb mares. These findings can be used as a reference for future studies on the reproductive physiology of this breed. | ||
کلیدواژهها | ||
Barb mares؛ Gestation؛ Biochemical parameters؛ Hematology؛ Oxidative stress | ||
اصل مقاله | ||
1. Introduction
Hematological examination
Bioactive lipids also play a significant role in the function of the corpus luteum responsible for maintaining pregnancy, as indicated by a study conducted by de Oliveira Gobesso et al. (2020). In the present study, ALP, which is present in several tissues, mostly the liver and bones, significantly decreased in pregnant Barb mares compared with non-pregnant ones (P<0.003) but did not change during pregnancy, which is in agreement with the findings of other studies (Mariella et al., 2014; Satué and Montesinos, (2013)) who reported no significant changes in ALP activity throughout gestation. On the contrary, Harvey et al. (2005) found that serum ALP activity was significantly higher during early pregnancy compared to mid and late gestation in pregnant mares of various breeds. These researchers suggested that the liver may experience physiological strain postpartum (Mariella et al., 2014). It is worth noting that the wide range of individual variation among mares (Reese et al., 1984) and the influence of aging (Zinkl et al., 1990) could contribute to the observed variations in ALT activity. According to GAAL (1999), due to the increased activity of osteoclastic cells during this anabolic phase of pregnancy and the placenta’s capacity to produce ALP, ALP activity may be higher in late pregnancy in mammals.
Ali, F., Lodhi, L A., Qureshi, Z I., Ahmed, I., & Hussain, R. (2013). Serum mineral profile in various reproductive phases of mares. Pakistan Veterinary Journal, 33(3). [Link] Alimen, H., & Brodrick, A. H. (1957). The prehistory of AfricaHutchinson, Paris. 578 pp. [Link] Aoki, T., & Ishii, M. (2012). Hematological and biochemical profiles in peripartum mares and neonatal foals (heavy draft horse). Journal of Equine Veterinary Science, 32(3), 170-176. [DOI:10.1016/j.jevs.2011.08.015] Barbosa, F. C., da Silva, M. V., Costa, P. C., de Souza, R. R., Guimarães, E. C., & Mundim, A. V. (2018). Physiological variations of serum biochemical profile in Quarter Horse mares at peripartum and in their neonatal foals. Bioscience Journal, 34(4), 970-978. [DOI:10.14393/BJ-v34n1a2018-39096] Bazzano, M., Giannetto, C., Fazio, F., Arfuso, F., Giudice, E., & Piccione, G. (2014). Metabolic profile of broodmares during late pregnancy and early post-partum. Reproduction in Domestic Animals, 49(6), 947-953. [DOI:10.1111/rda.12411] [PMID] Bazzano, M., Giannetto, C., Fazio, F., Rizzo, M., Giudice, E., & Piccione, G. (2014). Physiological adjustments of haematological profile during the last trimester of pregnancy and the early post partum period in mares. Animal Reproduction Science, 149(3-4), 199-203. [DOI:10.1016/j.anireprosci.2014.07.005] [PMID] Bazzano, M., Giudice, E., Giannetto, C., Fazio, F., Scollo, C., & Piccione, G. (2016). The peripartum period influenced the serum macromineral profile in mares. Archives Animal Breeding, 59(1), 65-70. [DOI:10.5194/aab-59-65-2016] Benhamadi, M. E. A., Berber, N., Benyarou, M., Ameur, A. A., Haddam, H. Y., & Piro, M., et al (2020). Molecular characterization of eight horse breeds in Algeria using microsatellite markers. Biodiversitas Journal of Biological Diversity, 21(9).DOI: [DOI:10.13057/biodiv/d210923] Benzie, I. F., & Strain, J. J. (1996). The ferric reducing ability of plasma (FRAP) as a measure of “antioxidant power”: The FRAP assay. Analytical Biochemistry, 239(1), 70-76. [DOI:10.1006/abio.1996.0292] [PMID] Butte, N. F. (2000). Carbohydrate and lipid metabolism in pregnancy: Normal compared with gestational diabetes mellitus. The American Journal of Clinical Nutrition, 71(5), 1256S-1261S. [DOI:10.1093/ajcn/71.5.1256s] [PMID] Castagnetti, C., Mariella, J., & Pirrone, A. (2009, July). Monitoring of lactate during the peripartum period in the equine species. In Atti VII congresso SIRA (pp. 68-71). Chaid-Saoudi, Y. (2006). [The origins of Equus Caballus in Algeria and the origins of domestication (French)]. Revue de l’OMCB, 46-52. Chikhaoui, M., Smail, F., & Adda, F. (2018). Blood hematological values of Barb horses in Algeria. Open Veterinary Journal, 8(3), 330-334. [DOI:10.4314/ovj.v8i3.13] [PMID] [PMCID] Danyer, E., & Bilal, T. (2021). Effects of dietary fish oil and alpha-tocopherol supplementation on selected blood parameters and fatty acid profiles in mares and their foals. Journal of Animal Physiology and Animal Nutrition, 105, 3-17. [DOI:10.1111/jpn.13437] [PMID] de Oliveira Gobesso, A. A., Mazzo, H. C., Bianconi, C., Freitas, F. V., do Vale Pombo, G., & Pereira, Y. S., et al. (2020). The effect of supplementation with omega-3 and 6 fatty acids to mares during late gestation and early lactation on the transfer of passive immunity in foals. Livestock Science, 237, 104072. [DOI:10.1016/j.livsci.2020.104072] Esmaeili, H., Hamedi, M., & Khanjari, A. (2023). An outbreak of pre-parturient and postparturient clinical hypocalcemia in a Camel’s Herd in Iran. Iranian Journal of Veterinary Medicine, 17(2), 149-154. [DOI:10.32598/IJVM.17.2.1005155] EL-Kohen, M. (2006). Le cheval barbe: présentation. Rev Organis Mond Cheval Barbe, 3, 7-8. Faramarzi, B., Rich, L. J., & Wu, J. (2018). Hematological and serum biochemical profile values in pregnant and non-pregnant mares. Canadian Journal of Veterinary Research, 82(4), 287-293. [PMID][PMCID] Farver, T. B. (2008). Concepts of normality in clinical biochemistry. In J. J Kaneko, J. W. Harvey, & M. L. Bruss (Eds), Clinical biochemistry of domestic animals (pp. 1-19). Academic Press, Cambridge. [Link] FlisiŃska-Bojanowska, A., Komosa, M., & Gill, J. (1991). Influence of pregnancy on diurnal and seasonal changes in glucose level and activity of FDPA, AlAT and AspAT in mares. Comparative Biochemistry and Physiology. A: Physiology, 98(1), 31-35. [DOI:10.1016/0300-9629(91)90572-T] Fowden, A. L., Forhead, A. J., White, K. L., & Taylor, P. M. (2000). Equine uteroplacental metabolism at mid-and late gestation. Experimental Physiology, 85(5), 539-545. [DOI:10.1111/j.1469-445X.2000.02067.x] [PMID] GAÁL, T. (1999). [Veterinary Clinical Laboratory Diagnostics (in Hungarian)]. Sík Kiadó, Budapest. Gurgoze, S. Y., & Icen, H. (2010). The influence of age on clinical biochemical parameters in pure-bred Arabian mares. Journal of Equine Veterinary Science, 30(10), 569-574. [DOI:10.1016/j.jevs.2010.09.006] Harvey, J. W., Pate, M. G., Kivipelto, J., & Asquith, R. L. (2005). Clinical biochemistry of pregnant and nursing mares. Veterinary Clinical Pathology, 34(3), 248-254. [DOI:10.1111/j.1939-165X.2005.tb00049.x] [PMID] Hoffman, R. M., Kronfeld, D. S., Cooper, W. L., & Harris, P. A. (2003). Glucose clearance in grazing mares is affected by diet, pregnancy, and lactation. Journal of Animal Science, 81(7), 1764-1771. [DOI:10.2527/2003.8171764x] [PMID] Karaşahin, T., Dursun, S., Aksoy, N. H., İpek, H., & Şentürk, G. (2023). Hematological parameters in hair goats during and out of breeding season hair goats seasonal hematological parameters. Iranian Journal of Veterinary Medicine, 17(2), 113-118. [DOI:10.32598/IJVM.17.2.1005334] Kavazis, A. N., Kivipelto, J., & Ott, E. A. (2002). Supplementation of broodmares with copper, zinc, iron, manganese, cobalt, iodine, and selenium. Journal of Equine Veterinary Science, 22(10), 460-464. 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مراجع | ||
Ali, F., Lodhi, L A., Qureshi, Z I., Ahmed, I., & Hussain, R. (2013). Serum mineral profile in various reproductive phases of mares. Pakistan Veterinary Journal, 33(3). [Link]
Alimen, H., & Brodrick, A. H. (1957). The prehistory of AfricaHutchinson, Paris. 578 pp. [Link]
Aoki, T., & Ishii, M. (2012). Hematological and biochemical profiles in peripartum mares and neonatal foals (heavy draft horse). Journal of Equine Veterinary Science, 32(3), 170-176. [DOI:10.1016/j.jevs.2011.08.015]
Barbosa, F. C., da Silva, M. V., Costa, P. C., de Souza, R. R., Guimarães, E. C., & Mundim, A. V. (2018). Physiological variations of serum biochemical profile in Quarter Horse mares at peripartum and in their neonatal foals. Bioscience Journal, 34(4), 970-978. [DOI:10.14393/BJ-v34n1a2018-39096]
Bazzano, M., Giannetto, C., Fazio, F., Arfuso, F., Giudice, E., & Piccione, G. (2014). Metabolic profile of broodmares during late pregnancy and early post-partum. Reproduction in Domestic Animals, 49(6), 947-953. [DOI:10.1111/rda.12411] [PMID]
Bazzano, M., Giannetto, C., Fazio, F., Rizzo, M., Giudice, E., & Piccione, G. (2014). Physiological adjustments of haematological profile during the last trimester of pregnancy and the early post partum period in mares. Animal Reproduction Science, 149(3-4), 199-203. [DOI:10.1016/j.anireprosci.2014.07.005] [PMID]
Bazzano, M., Giudice, E., Giannetto, C., Fazio, F., Scollo, C., & Piccione, G. (2016). The peripartum period influenced the serum macromineral profile in mares. Archives Animal Breeding, 59(1), 65-70. [DOI:10.5194/aab-59-65-2016]
Benhamadi, M. E. A., Berber, N., Benyarou, M., Ameur, A. A., Haddam, H. Y., & Piro, M., et al (2020). Molecular characterization of eight horse breeds in Algeria using microsatellite markers. Biodiversitas Journal of Biological Diversity, 21(9).DOI: [DOI:10.13057/biodiv/d210923]
Benzie, I. F., & Strain, J. J. (1996). The ferric reducing ability of plasma (FRAP) as a measure of “antioxidant power”: The FRAP assay. Analytical Biochemistry, 239(1), 70-76. [DOI:10.1006/abio.1996.0292] [PMID]
Butte, N. F. (2000). Carbohydrate and lipid metabolism in pregnancy: Normal compared with gestational diabetes mellitus. The American Journal of Clinical Nutrition, 71(5), 1256S-1261S. [DOI:10.1093/ajcn/71.5.1256s] [PMID]
Castagnetti, C., Mariella, J., & Pirrone, A. (2009, July). Monitoring of lactate during the peripartum period in the equine species. In Atti VII congresso SIRA (pp. 68-71).
Chaid-Saoudi, Y. (2006). [The origins of Equus Caballus in Algeria and the origins of domestication (French)]. Revue de l’OMCB, 46-52.
Chikhaoui, M., Smail, F., & Adda, F. (2018). Blood hematological values of Barb horses in Algeria. Open Veterinary Journal, 8(3), 330-334. [DOI:10.4314/ovj.v8i3.13] [PMID] [PMCID]
Danyer, E., & Bilal, T. (2021). Effects of dietary fish oil and alpha-tocopherol supplementation on selected blood parameters and fatty acid profiles in mares and their foals. Journal of Animal Physiology and Animal Nutrition, 105, 3-17. [DOI:10.1111/jpn.13437] [PMID]
de Oliveira Gobesso, A. A., Mazzo, H. C., Bianconi, C., Freitas, F. V., do Vale Pombo, G., & Pereira, Y. S., et al. (2020). The effect of supplementation with omega-3 and 6 fatty acids to mares during late gestation and early lactation on the transfer of passive immunity in foals. Livestock Science, 237, 104072. [DOI:10.1016/j.livsci.2020.104072]
Esmaeili, H., Hamedi, M., & Khanjari, A. (2023). An outbreak of pre-parturient and postparturient clinical hypocalcemia in a Camel’s Herd in Iran. Iranian Journal of Veterinary Medicine, 17(2), 149-154. [DOI:10.32598/IJVM.17.2.1005155]
EL-Kohen, M. (2006). Le cheval barbe: présentation. Rev Organis Mond Cheval Barbe, 3, 7-8.
Faramarzi, B., Rich, L. J., & Wu, J. (2018). Hematological and serum biochemical profile values in pregnant and non-pregnant mares. Canadian Journal of Veterinary Research, 82(4), 287-293. [PMID][PMCID]
Farver, T. B. (2008). Concepts of normality in clinical biochemistry. In J. J Kaneko, J. W. Harvey, & M. L. Bruss (Eds), Clinical biochemistry of domestic animals (pp. 1-19). Academic Press, Cambridge. [Link]
FlisiŃska-Bojanowska, A., Komosa, M., & Gill, J. (1991). Influence of pregnancy on diurnal and seasonal changes in glucose level and activity of FDPA, AlAT and AspAT in mares. Comparative Biochemistry and Physiology. A: Physiology, 98(1), 31-35. [DOI:10.1016/0300-9629(91)90572-T]
Fowden, A. L., Forhead, A. J., White, K. L., & Taylor, P. M. (2000). Equine uteroplacental metabolism at mid-and late gestation. Experimental Physiology, 85(5), 539-545. [DOI:10.1111/j.1469-445X.2000.02067.x] [PMID]
GAÁL, T. (1999). [Veterinary Clinical Laboratory Diagnostics (in Hungarian)]. Sík Kiadó, Budapest.
Gurgoze, S. Y., & Icen, H. (2010). The influence of age on clinical biochemical parameters in pure-bred Arabian mares. Journal of Equine Veterinary Science, 30(10), 569-574. [DOI:10.1016/j.jevs.2010.09.006]
Harvey, J. W., Pate, M. G., Kivipelto, J., & Asquith, R. L. (2005). Clinical biochemistry of pregnant and nursing mares. Veterinary Clinical Pathology, 34(3), 248-254. [DOI:10.1111/j.1939-165X.2005.tb00049.x] [PMID]
Hoffman, R. M., Kronfeld, D. S., Cooper, W. L., & Harris, P. A. (2003). Glucose clearance in grazing mares is affected by diet, pregnancy, and lactation. Journal of Animal Science, 81(7), 1764-1771. [DOI:10.2527/2003.8171764x] [PMID]
Karaşahin, T., Dursun, S., Aksoy, N. H., İpek, H., & Şentürk, G. (2023). Hematological parameters in hair goats during and out of breeding season hair goats seasonal hematological parameters. Iranian Journal of Veterinary Medicine, 17(2), 113-118. [DOI:10.32598/IJVM.17.2.1005334]
Kavazis, A. N., Kivipelto, J., & Ott, E. A. (2002). Supplementation of broodmares with copper, zinc, iron, manganese, cobalt, iodine, and selenium. Journal of Equine Veterinary Science, 22(10), 460-464. [DOI:10.1016/S0737-0806(02)70165-2]
Kaveh Baghbadorani, M., Mehrzad, J., Vodjgani, M., Khosravi, A., Akbarinejad, V. (2022). Evaluation of biochemical and hematological parameters in postpartum holstein dairy cows following supplementation of immunofin® herbal extract. Iranian Journal of Veterinary Medicine, 16(3), 274-287. [DOI: 10.22059/IJVM.2022.334623.1005210]
Kramer, J. W. (2000). Normal hematology of the horse and donkey. In B. F Feldman., J.G Zinkl., & N.C Jane. Schalm’s veterinary hematology. John Wiley & Sons, Hoboken, 1069-1074. [Link]
Kurhaluk, N., Lukash, O., & Tkachenko, H. (2022). Photoperiod-dependent changes in oxidative stress markers in the blood of Shetland pony mares and stallions involved in recreational horseback riding. Chronobiology International, 39(11), 1419-1434. [DOI:10.1080/07420528.2022.2115922] [PMID]
Lockitch, G. (1997). Clinical biochemistry of pregnancy. Critical Reviews in Clinical Laboratory Sciences, 34(1), 67-139. [DOI:10.3109/10408369709038216] [PMID]
Mariella, J., Pirrone, A., Gentilini, F., & Castagnetti, C. (2014). Hematologic and biochemical profiles in Standardbred mares during peripartum. Theriogenology, 81(4), 526-534. [DOI:10.1016/j.theriogenology.2013.11.001] [PMID]
Marlin, D. J., & Dunnett, C. E. (2007). Oxidative stress, oxidative damage and antioxidants a beginners guide. Newmarket, Suffolk, UK: David Marlin Consulting Ltd.[Link]
Martuzzi, F., Bresciani, C., Simoni, M., Basini, G., Quarantelli, A., & Righi, F. (2019). Evaluation of the oxidative status of periparturient mares supplemented with high amount of α-tocopherol. Italian Journal of Animal Science, 18(1), 1404-1409. [DOI:10.1080/1828051X.2019.1677518]
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