Original Scientific Article
The dynamics of biochemical parameters in blood of clinically healthy holstein cows from day 5 before to day 60 after calving
Irena Celeska * ,
Aleksandar Janevski ,
Igor Dzadzovski ,
Igor Ulchar ,
Danijela Kirovski

Mac Vet Rev 2015; 38 (2): 189 - 193

10.14432/j.macvetrev.2015.07.049

Received: 30 April 2015

Received in revised form: 10 June 2015

Accepted: 16 June 2015

Available Online First: 06 July 2015

Published on: 15 October 2015

Correspondence: Irena Celeska, iceleska@fvm.ukim.edu.mk
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Abstract

The peripartal period in Holstein dairy cows is critical, due to the transition from pregnancy to lactation. We have studied the dynamics of biochemical parameters from day 5 before to day 60 after calving. The study included 10 multiparous Holstein cows, examined at days -5, 5, 10, 30 and 60 relative to calving. Blood samples were taken from vena jugularis. Analyzed biochemical parameters were glucose, triglycerides, total cholesterol, total bilirubin, albumin, total protein, urea, NEFA and BHBA. Milk production and body condition score were also estimated. Obtained results showed that cows were exposed to mild to marked metabolic distress. Energy status was changed due to increased values of NEFA and BHBA and decreased value of glucose after calving. Protein concentrations were increased at day 10 after calving, despite the decrease of the level of albumin. Urea concentrations before and after calving were within physiological range indicating an optimal protein diet. Increased values of total bilirubin at day 5 after calving indicated liver increased activity. Lipid status presented by triglycerides and total cholesterol revealed no differences in blood concentrations. Milk production was highest at day 30 after calving. BCS were highest in dry cows, thereafter they declined and recovered at day 60 after calving. In conclusion, biochemical parameters can be used as relevant indicators of metabolic distress in cows around calving with milk and BCS recording as aside parameters. Changes in some biochemical parameters indicate liver increased activity and metabolic stress, that could lead to decreased milk production, impaired reproductive performance and, finally, to illness.

Keywords: Holstein cows, biochemical parameters, transition period


References

1. Drackley J.K, ADSA Foundation Scholar Award. Biology of dairy cows during the transition period:the final frontier?J Dairy Sci 1999; 82: 112259-2273.
http://dx.doi.org/10.3168/jds.S0022-0302(99)75474-3.
2. Wathes D.C, Cheng Z, Chowdhury W, Fenwick M.A, Fitzpatrick R, Morris D.G, Patton J, Murphy J. J, Negative energy balance alters global gene expression and immune responses in the uterus of postpartum dairy cowsPhysiol Genomics 2009; 39: 11-13. http://dx.doi.org/10.1152/physiolgenomics.00064.2009. PMid:19567787 PMCid:PMC2747344
3. Bell A.W, Bauman D. E, Adaptations of glucose metabolism during pregnancy and lactationJournal of Mammary Gland Biology and Neoplasia 1997; 2: 3265-278.
http://dx.doi.org/10.1023/A:1026336505343. PMid:10882310
4. Yasothai R, Importance of energy on reproduction in dairy cattleInternational Journal of Science, Environment and Technology 2014; 6: 32020-2023.
5. Herdt T.H, Fuel homeostasis in the ruminantVet. Clin. North. Am Food Anim Pract 1988; 4: 213-231.PMid:3061608
6. Kunz P.L, Blum J.W, Relationship energy balances and blood levels of hormones and metabolites in dairy cows during late pregnancy and early lactationZ. Z. Tierphysiol. Tierernhrg. u. Futtermittelkde 1985; 54: 239-248. http://dx.doi.org/10.1111/j.1439-0396.1985.tb01537.x.
7. Mahapatra R.K, Sahoo A, Ketosis and fatty liver in dairy animals:preventive nutritional approachesClinical Nutrition of Livestock and Pets 2006; 23: 345-53.
8. García A.M.B, Cardoso F.C, Campos R, Thedy X.D, González H.D.F, Metabolic evaluation of dairy cows submitted to three different strategies to decrease the effects of negative energy balance in early postpartumPesq.Vet. Bras 2011; 31: 111-17. http://dx.doi.org/10.1590/s0100-736x2011001300003.
9. Drackley J.K, Overton T.R, Douglas G.N, Adaptations of glucose and long-chain fatty acid metabolism in liver of dairy cows during the periparturient periodJournal of Dairy Science 2001; 84: 100-112. http://dx.doi.org/10.3168/jds.S0022-0302(01)70204-4.
10. Šamanc H, Kirovski D, Lakić N, Celeska I, Bojković-Kovačević S, Sladojević Ž, Ivanov I, A comparison of the concentrations of energy-balance-related variables in jugular and mammary vein blood of dairy cows with different milk yieldActa Veterinaria Hungarica 2014; 62: 152-63. http://dx.doi.org/10.1556/AVet.2013.055. PMid:24334081
11. Bobe G, Young J.W, Beitz D.C, Invited review:pathology, etiology, prevention, and treatment of fatty liver in dairy cows 2004; 87: 103105-3124.
http://dx.doi.org/10.3168/jds.s0022-0302(04)73446-3.
12. Veenhuizen J.J, Drackley J.K, Richard M.J, Sanderson T.P, Miller L.D, Joung J.W, Metabolic changes in blood and liver during development and early treatment of experimental fatty liver and ketosis in cowsJ. Dairy Sci 1991; 74: 4238-4253. http://dx.doi.org/10.3168/jds.s0022-0302(91)78619-0.
13. Pullen D.L, Liesman J.S, Emery R.S, A species comparison of liver slice synthesis and secretion of triacylglycerol from nonesterified fatty acids in mediaJ Anim Sci 1990; 68: 51395-1399.PMid:2365651
14. McCabe M, Waters S, Morris D, Kenny D, Lynn D, Creevey C, RNA-seq analysis of differential gene expression in liver from lactating dairy cows divergent in negative energy balanceBMC Genomics 2012; 13: 193- http://dx.doi.org/10.1186/1471-2164-13-193. PMid:22607119 PMCid:PMC3465249
15. Dezfouli M.M, Eftekhari Z, Sadeghian S, Bahounar A, Jeloudari M, Evaluation of hematological and biochemical profiles in dairy cows with left displacement of the abomasumComp Clin Path 2013; 22: 2175-179. http://dx.doi.org/10.1007/s00580-011-1382-5. PMid:23483814 PMCid:PMC3590408
16. Mallard B.A, Dekkers J.C, Ireland M.J, Leslie K.E, Sharif S, Vankampen C.L, Wagter L, Wilkie B.N, Alteration in immune responsiveness during the peripartum period and its ramification on dairy cow and calf healthJ. Dairy Sci 1998; 81: 585-595. http://dx.doi.org/10.3168/jds.S0022-0302(98)75612-7.
17. Leslie K.E, Duffield T.F, Schukken Y.H, LeBlanc S.J, The influence of negative energy balance on udder healthNational Mastitis Council Regional Meeting Proceedings 2000; 25-33-
18. Van Saun R.J, Metabolic profiling and health risk in transition cowsProc Am Assoc Bov Pract 2004; 37: 212-213.


Copyright

© 2015 Celeska I. This is an Open Access article distributed under the terms of the Creative Commons Attribution-Non Commercial License (http://creativecommons.org), which permits unrestricted non-commercial use, distribution, and reproduction in any medium provided the original work is properly cited.

Conflict of Interest Statement

The authors declared that they have no potential conflict of interest with respect to the authorship and/or publication of this article.

Citation Information

Macedonian Veterinary Review. Volume 38, Issue 2, Pages 189-193, p-ISSN 1409-7621, e-ISSN 1857-7415, DOI:  10.14432/j.macvetrev.2015.07.049, 2015