Effect of Two New Calcium Limiting Methods on Milk Traits, Hypocalcaemia and Prevention of some Reproductive Disorders in Early Lactating Cows
محورهای موضوعی : CamelM.M. Masoumipour 1 , F. Foroudi 2 , N. Karimi 3 , M.R. Abedini 4 , K. Karimi 5
1 - Department of Animal Science, Varamin-Pishva Branch, Islamic Azad University, Varamin, Iran
2 - FacultyDepartment of Animal Science, Varamin-Pishva Branch, Islamic Azad University, Varamin, Iran Member
3 - Department of Animal Science, Varamin-Pishva Branch, Islamic Azad University, Varamin, Iran
4 - Department of Animal Science, Varamin-Pishva Branch, Islamic Azad University, Varamin, Iran
5 - Department of Animal Science, Varamin-Pishva Branch, Islamic Azad University, Varamin, Iran
کلید واژه: early lactating cows, hypocalcaemia, reproductive disorders,
چکیده مقاله :
New methods of dietary calcium restriction to control hypocalcaemia and reproductive problems have always been the focus of research. This study was conducted to compare two new methods including two diets containing Zeolite and anionic salt with a conventional method of the low-Ca diet. Sixty periparturient cows were used through a completely randomized statistical design (CRD) with repeated measurements in time. Experimental diets were included: 1. low-Ca (Ca=0.44%), 2. anionic-Kipro (Ca=1%), 3. zeolite (Ca=0.44%). Traits were included: feed and nutrients intake, milk characteristics, plasma calcium concentration, body condition score (BCS), and incidence of reproductive problems. Feed, energy, and nutrient intake of low-Ca were higher than anionic-Kipro and zeolite groups (P≤0.01). Raw and corrected milk yield of anionic-Kipro was at maximum, but fat% and fat yield of zeolite was higher than other groups (P≤0.01). Total plasma and ionized calcium concentration at 6 and 12 hours after calving of low-Ca and zeolite diets were higher than the anionic-Kipro group (P≤0.01). BCS of zeolite and anionic-Kipro diets (2.98 and 2.95) was higher than the low-Ca diet (2.86) significantly (P≤0.01). The frequency of severe and subclinical hypocalcaemia and reproductive problems in two new proposed methods and younger cows was at least (P≤0.01). New dietary calcium limiting methods with zeolite and anionic-Kipro supplementation had good results on milk traits with better control on plasma calcium concentration and prevention of reproductive disorders and could be advised.
AOAC. (2010). Official Methods of Analysis. 18th Ed. Association of Official Analytical Chemists, Arlington, VA, USA.
Bondoc I. (2007). Technology and Quality Control of Milk and Dairy Products. Ion Ionescu de la Brad Iași Publishing, Iași, Romania.
Chapinal N., Carson M., Duffield T.F., Capel M., Godden S., Overton M., Santos J.E.B. and LeBlanc S.J. (2011). The association of serum metabolites with clinical disease during the transition period. J. Dairy. Sci. 94, 4897-4903.
Crookenden M.A., Phyn C.V.C., Turner S.A., Loor J.J., Smith A.I. and Lopreiato V. (2020). Feeding synthetic zeolite to transition dairy cows alters neutrophil gene expression. J. Dairy Sci. 103, 723-736.
Emtenan M., Hanafi W.M., Ahmed H.H., Khadrawy E. and Zabaal M.M. (2011). An Overview on placental retention in farm animals. Middle-East J. Sci. Res. 7(5), 651-643.
Goff J.P. (2000). Pathophisiology of calcium and phosphorus disorders. Vet. Clin. North America Food Anim. Pract. 16(2), 319-337.
Goff J.P. and Koszewski N.J. (2018). Comparison of 0.46% calcium diets with and without added anions with a 0.7% calcium anionic diet as a means to reduce periparturient hypocalcemia. J. Dairy Sci. 101, 5033-5045.
Grabherr H., Spolders M., Flachowsky G. and Furll M. (2009). Effect of several doses of zeolite A on feed intake,energy metabolism and on mineral metabolism in dairy cows around calving. J. Anim. Physiol. Anim. Nutr. 93(2), 221-236.
Jahani-Moghadam M., Yansari A., Chashnidel Y., Dirandeh E. and Mahjoubi E. (2020). Short- and long-term effects of postpartum oral bolus v. subcutaneous Ca supplements on blood metabolites and productivity of Holstein cows fed a prepartum anionic diet. Anim. 14(5), 983-990.
Karimi M.T., Ghorbani G.R., Kargar S. and Drackley J.K. (2015). Late-gestation heat stress abatement on performance and behavior of Holstein dairy cows. J. Dairy Sci. 98, 1-11.
Katsoulos P.D., Panousis N., Roubies N., Christaki E., Arsenos G. and Karatzias H. (2006). Effects of long-term feeding of a diet supplemented with clinoptilolite to dairy cows on the incidence of ketosis, milk yield and liver function. Vet. Record. 159(13), 415-418.
Kerwin A.L., Ryan C.M., Leno B.M., Jakobsen M., Theilgaard P., Barbano D.M. and Overton T.R. (2019). Effects of feeding synthetic zeolite A during the prepartum period on serum mineral concentration, oxidant status, and performance of multiparous Holstein cows. J. Dairy Sci. 102(6), 5191-5207.
Khachlouf K., Hamed H., Gdoura R. and Gargouri A. (2018). Effects of zeolite supplement on dairy cow production and ruminal parameters—A review. Ann. Anim. Sci. 18(4), 857-877.
Khachlouf K., Hamed H., Gdoura R. and Gargouri A. (2019). Effects of dietary zeolite supplementation on milk yield and composition and blood minerals status in lactating dairy cows. J. Appl. Anim. Res. 47(1), 54-56.
Lean I.J., DeGaris P.J., McNel D.M.L. and Block E. (2006). Hypocalcemia in dairy cows: Meta-analysis and dietary cation -anion difference theory revisited. J. Dairy Sci. 89, 669-684.
Lean I. and DeGaris P.J. (2010). Transition Cow Management, A Review for Nutritional Professionals, Veterinarians and Farm Advisers. Dairy Australia Limited, Southbank, Australia.
Martinez N., Risco C.A., Lima F.S., Bisinotto R.S., Greco L.F. and Santos P. (2012). Evaluation of peripartal calcium status, energetic profile, and neutrophil function in dairy cows at low or high risk of developing uterine disease. J. Dairy Sci. 95, 7158-7172.
Melendez P., Donovan A., Risco C.A., Hall M.B., Littell R. and Goff J.P. (2002). Metabolic responses to transition Holstein cows fed anionic salts and supplemented at calving with calcium and energy. J. Dairy Sci. 85, 1085-1092.
Melendez P., Donovan G.A., Risco C.A. and Goff J.P. (2004). Plasma mineral and energy metabolite concentrations in dairy cows fed an anionic prepartum diet that did or did not have retained fetal membranes after parturition. American J. Vet. Res. 65(8), 1071-1076.
Moore S.J., Vander M.J., Sharma B.K., Pilbeam T.E., Beede D.K. and Goff J.P. (2000). Effects of altering dietary difference on calcium and energy metabolism in peripartum cows. J. Dairy Sci. 83, 2095-2104.
NRC. (2001). Nutrient Requirements of Dairy Cattle. 7th Ed. National Academy Press, Washington, DC., USA.
Oetzel G.R. (2013). Oral calcium supplementation in peripartum dairy vows. Vet. Clin. North America Food Anim. Pract. 29, 447-455.
Overton M.W. and Rapnicki P. (2015). Assessing Transition Cow Management and Performance, Elanco Knowledge Solutions-Dairy. Elanco Animal Health, Indiana, USA.
Sadeghi A. and Shawrang P. (2008). Effects of natural zeolite clinoptilolite on passive immunity and diarrhea in newborn calves. Livest. Sci. 113(2), 307-310.
SAS Institute. (2004). SAS®/STAT Software, Release 9.4. SAS Institute, Inc., Cary, NC. USA.
Seely C.R., Leno B.M., Kerwin A.L., Overton T.R. and McArt J.A.A. (2021). Association of subclinical hypocalcemia dynamics with dry matter intake, milk yield, and blood minerals during the periparturient period. J. Dairy Sci. 104(4), 4692-4702.
Shahzad A.M., Sarwar M. and Mahr-Un-Nisa, M. (2008). Influence of altering dietary cation-anion difference on milk yield and its composition by early lactating Nili-Ravi buffaloes in summer. Livest. Sci. 113(2), 133-143.
Timothy A., Reinhardt A., John D., Lippolis A., Brian J., McCluskey B., Goff J.P., Ronald L. and Horst L. (2011). Prevalence of subclinical hypocalcemia in dairy herds. Vet. J. 188, 122-124.
Thilsing H.T., Jorgensen R.J. and Ostergaard S. (2002). Milk fever control principles: A review. Acta Vet. Scandinavica. 43, 1-19.
Thilsing R., Jørgensen J. and Poulsen H.D. (2006). In vitro binding capacity of zeolite A to calcium, phosphorus and magnesium in rumen fluid as influenced by changes in pH. J. Vet. Med. 53(2), 57-64.
Underwood J.P. and Loor J.J. (2005). Physiological and pathological adaptations in dairy cows that may increase susceptibility to periparturient diseases and disorders. Italian J. Anim. Sci. 4, 344-323.
Wilkens M.R., Nelson C.D., Hernandez L.L. and McArt J.A.A. (2020). Symposium review: Transition cow calcium homeostasis—health effects of hypocalcemia and strategies for prevention. J. Dairy Sci. 103(3), 2909-2927.
Wu W.X., Liu J.X., Xu G.Z. and Ye J.A. (2008). Calcium homeostasis acid-base balance and health status in preparturient Holstein cows fed diets with low cation-anion difference. Livest. Sci. 117, 7-14.