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Nutritional regulation of body condition score at the initiation of the transition period in primiparous and multiparous dairy cows under grazing conditions: milk production, resumption of post-partum ovarian cyclicity and metabolic parameters

Published online by Cambridge University Press:  22 August 2011

M. L. Adrien*
Affiliation:
Departamento de Salud en los Sistemas Pecuarios, Facultad de Veterinaria, Universidad de la República, Ruta 3, km 363, Paysandú, Uruguay
D. A. Mattiauda
Affiliation:
Departamento de Producción Animal y Pasturas, Facultad de Agronomia, Universidad de la República, Ruta 3, km 363, Paysandú, Uruguay
V. Artegoitia
Affiliation:
Laboratorio de Técnicas Nucleares, Facultad de Veterinaria, Universidad de la República, Alberto Lasplaces 1620, Montevideo, Uruguay
M. Carriquiry
Affiliation:
Departamento de Producción Animal y Pasturas, Facultad de Agronomia, Universidad de la República, Av. Garzón 780, Montevideo, Uruguay
G. Motta
Affiliation:
Departamento de Producción Animal y Pasturas, Facultad de Agronomia, Universidad de la República, Ruta 3, km 363, Paysandú, Uruguay
O. Bentancur
Affiliation:
Departamento de Biometría, Estadistica y computación, Facultad de Agronomia, Universidad de la República, Ruta 3, km 363, Paysandú, Uruguay
A. Meikle
Affiliation:
Laboratorio de Técnicas Nucleares, Facultad de Veterinaria, Universidad de la República, Alberto Lasplaces 1620, Montevideo, Uruguay
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Abstract

The objective of this study was to investigate the effect of different body condition score (BCS) at 30 days before calving (−30 days) induced by a differential nutritional management from −100 days until −30 days on productive parameters, the interval to first ovulation and blood parameters in primiparous and multiparous Holstein cows under grazing conditions until 60 days post partum. The experimental arrangement was a randomized complete block design, where cows were blocked according to BW and expected calving date and then randomly assigned to different nutritional treatments from –100 to –30 days relative to calving to induce different BCS. As the assignment of cows to treatments was random, cows had to lose, maintain or gain BCS; thus, different planes of nutrition were offered with approximately 7, 14 or 20 kg dry matter per day. The BCS score was assessed every 15 days and animals were reassigned in order to achieve the desired BCS at –30 days. Only animals that responded to nutritional treatment were considered and this was defined as follows: primiparous and multiparous high cows (PH and MH) had to gain 0.5 points of BCS, primiparous low (PL) had to lose 0.5 points of BCS and multiparous low (ML) had to maintain BCS at least in two subsequent observations from −100 to −30 days. From −30 days to calving, primiparous and multiparous cows (P and M cows) were managed separately and cows were offered a diet once a day. From calving to 60 days post partum, cows of different groups grazed in separate plots a second year pasture. Cows were also supplemented individually with whole-plant maize silage and commercial concentrate. Cows had similar BCS at −100 days and differed after the nutritional treatment; however, all groups presented similar BCS at 21 days post partum. The daily milk production and milk yield at 60 days post partum was higher in M than P cows. The percentage of milk fat was higher in PH cows compared with PL cows. Concentrations of non-esterified fatty acids (NEFA) were affected by the BCS at −30 days within parity, and in PH cows the concentration of NEFA was higher than in PL cows. The concentrations of total protein were higher in M cows. A lower probability of cycling was found in PL than in PH cows (P < 0.05) and in ML than in MH cows (P < 0.05). Treatment affected various endocrine/metabolic profiles according to parity, suggesting that the metabolic reserves signal the productive/reproductive axis so as to induce a differential nutrient partitioning in adult v. first-calving cows.

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Full Paper
Copyright
Copyright © The Animal Consortium 2011

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References

Agenas, S, Burstedt, E, Holtenius, K 2003. Effects of feeding intensity during the dry period. 1. Feed intake, body weight, and milk production. Journal of Dairy Science 86, 870882.CrossRefGoogle ScholarPubMed
Burke, CR, Roche, R 2007. Effects of pasture feeding during the periparturient period on postpartum anovulation in grazed dairy cows. Journal of Dairy Science 90, 43044312.CrossRefGoogle ScholarPubMed
Butler, WR 2000. Nutritional interactions with reproductive performance in dairy cattle. Animal Reproduction Science 60–61, 449457.CrossRefGoogle ScholarPubMed
Cavestany, D, Viñoles, C, Crowe, MA, La Manna, A, Mendoza, A 2009. Effect of prepartum diet on postpartum ovarian activity in Holstein cows in a pasture-based dairy system. Animal Reproduction Science 114, 113.CrossRefGoogle Scholar
Cavestany, D, Blanc, JE, Kulcsar, M, Uriarte, G, Chilibroste, P, Meikle, A, Febel, H, Ferraris, A, Krall, E 2005. Studies of the transition cow under and pasture-based milk production system: metabolic profiles. Journal of Veterinary Medicine – Series A 52, 17.CrossRefGoogle ScholarPubMed
Chagas, LM, Rhodes, FM, Blache, D, Gore, PJ, Macdonald, KA, Verkerk, GA 2006. Precalving effects on metabolic responses and postpartum anestrus in grazing primiparous dairy cows. Journal of Dairy Science 89, 19811989.CrossRefGoogle ScholarPubMed
Douglas, GN, Overton, TR, Bateman, HG, Dann, HM, Drackley, JK 2006. Prepartal plane of nutrition, regardless of dietary energy source, affects periparturient metabolism and dry matter intake in Holstein cows. Journal of Dairy Science 89, 21412157.CrossRefGoogle ScholarPubMed
Drackley, JK 1999. Biology of dairy cow during the transition period: the final frontier? Journal of Dairy Science 82, 22592273.CrossRefGoogle ScholarPubMed
Edmonson, AJ, Lean, LJ, Weaver, LD, Farver, T, Webster, G 1989. A body condition scoring chart for Holstein dairy cows. Journal of Dairy Science 72, 6878.CrossRefGoogle Scholar
Francisco, CC, Spicer, LJ, Payton, ME 2003. Predicting cholesterol, progesterone, and days to ovulation using postpartum metabolic and endocrine measures. Journal of Dairy Science 86, 28522863.CrossRefGoogle ScholarPubMed
Gallo, L, Carnier, P, Cassandro, M, Mantovani, R, Bailoni, L, Contiero, B, Bittante, G 1996. Change in body condition score of Holstein cows as affected by parity and mature equivalent milk yield. Journal of Dairy Science 79, 10091015.CrossRefGoogle ScholarPubMed
Grummer, RR 1995. Impact of changes in organic nutrient metabolism on feeding the transition dairy cow. Journal of Animal Science 73, 28202833.CrossRefGoogle ScholarPubMed
Grummer, RR, Mashek, DG, Hayirli, A 2004. Dry matter intake and energy balance in the transition period. Veterinary Clinics of North American. Food Animal Practice 20, 447470.CrossRefGoogle Scholar
Herdt, T 2000. Ruminant adaptation to negative energy balance: influence on the etiology of ketosis and fatty liver. Metabolic disorders of ruminants. Veterinary Clinics of North American. Food Animal Practice 16, 215230.CrossRefGoogle Scholar
Ingvartsen, KL, Andersen, JB 2000. Integration of metabolism and intake regulation: a review focusing on periparturient animals. Journal of Dairy Science 83, 15731597.CrossRefGoogle ScholarPubMed
Kawashima, Ch, Sakaguchi, M, Susuki, T, Sasamoto, Y, Takahashi, Y, Matsui, M, Miyamoto, A 2007. Metabolic profiles in ovulatory and anovulatory primiparous dairy cows during the first follicular wave postpartum. Journal of Reproduction and Development 53, 113120.CrossRefGoogle ScholarPubMed
Kawashima, Ch, Kaneko, E, Amaya, C, Matsui, M, Yamagishi, N, Matsunaga, N, Ishii, M, Kida, K, Miyake, Y, Miyamoto, A 2006. Relationship between the first ovulation within three week pospartum and subsequent ovarian cycles and fertility in high producing dairy cows. Journal of Reproduction and Development 52, 479486.CrossRefGoogle Scholar
Komaragiri, MV, Erdman, R 1997. Factors affecting body tissue mobilization in early lactation dairy cows. 1. Effect of dietary protein on mobilization of body fat and protein. Journal of Dairy Science 80, 929937.CrossRefGoogle ScholarPubMed
Komaragiri, MV, Casper, DP, Erdman, R 1998. Factors affecting body tissue mobilization in early lactation dairy cows. 2. Effect of dietary fat on mobilization of body fat and protein. Journal of Dairy Science 81, 169175.CrossRefGoogle ScholarPubMed
Lucy, MC 2000. Regulation of ovarian follicular growth by somatotropin and insulin-like growth factors in cattle. Journal of Dairy Science 83, 16351647.CrossRefGoogle ScholarPubMed
Lucy, M, Jiang, H, Kobayashi, Y 2001. Changes in the somatotrophic axis associated with the initiation of lactation. Journal of Dairy Science 84, E113E119.CrossRefGoogle Scholar
Meikle, A, Kulcsar, M, Chilliard, Y, Febel, H, Delavaud, C, Cavestany, D 2004. Effects of parity and body condition at parturition on endocrine and reproductive parameters of the cow. Reproduction 127, 727737.CrossRefGoogle ScholarPubMed
Patton, J, Kenny, DA, McNamara, S, Mee, JF, O'Mara, FP, Diskin, MG, Murphy, JJ 2007. Relationships among milk production, energy balance, plasma analytes, and reproduction in Holstein–Friesian cows. Journal of Dairy Science 90, 649658.CrossRefGoogle ScholarPubMed
Pedron, O, Cheli, F, Senatore, E, Baroli, D, Rizzi, R 1993. Effect of body condition score at calving on performance, some blood parameters, and milk fatty acid composition in dairy cows. Journal of Dairy Science 76, 25282535.CrossRefGoogle ScholarPubMed
Roche, JR, Lee, JM, Macdonald, KA, Berry, DP 2007. Relationships among body condition score, body weight, and milk production variables in pasture-based dairy cows. Journal of Dairy Science 90, 38023815.CrossRefGoogle ScholarPubMed
Roche, JR, Friggens, C, Kay, JK, Fisher, W, Stafford, KJ, Berry, DP 2009. Invited review: body condition score and its association with dairy cow productivity, health, and welfare. Journal of Dairy Science 92, 57695801.CrossRefGoogle ScholarPubMed
Sakaguchi, M, Sasamoto, Y, Suzuki, T, Takahashi, Y, Yamada, Y 2004. Postpartum ovarian follicular dynamics and estrous activity in lactating dairy cows. Journal of Dairy Science 87, 21142121.CrossRefGoogle ScholarPubMed
Seifi, H, Gorji-Dooz, M, Mohri, M, Dalir-Naghadeh, B, Farzaneh, N 2007. Variations of energy-related biochemical metabolites during transition period in dairy cows. Compendium of Clinical Pathology 16, 253258.CrossRefGoogle Scholar
Shrestha, H, Nakao, T, Suzuki, T, Akita, M, Higaki, T 2005. Relationships between body condition score, body weight, and some nutritional parameters in plasma and resumption of ovarian cyclicity postpartum during pre-service period in high-producing dairy cows in a subtropical region in Japan. Theriogenology 64, 855866.CrossRefGoogle Scholar
Spicer, LJ, Tucker, WB, Adams, JD 1990. Insulin-like growth factor-I in dairy cows: relationships among energy balance, body condition, ovarian activity, and estrous behavior. Journal of Dairy Science 73, 929937.CrossRefGoogle ScholarPubMed
Spicer, LJ, Alpizar, E, Echternkamp, SE 1993. Effects of insulin, insulin-like growth factor I, and gonadotropins on bovine granulosa cell proliferation, progesterone production, estradiol production, and(or) insulin like growth factor I production in vitro. Journal of Animal Science 71, 12321241.CrossRefGoogle ScholarPubMed
Stein, DR, Allen, DT, Perry, EB, Bruner, JC, Gates, KW, Rehberger, TG, Mertz, K, Jones, D, Spicer, LJ 2006. Effects of feeding propionibacteria to dairy cows on milk yield, milk components, and reproduction. Journal of Dairy Science 89, 111125.CrossRefGoogle ScholarPubMed
Stockdale, CR 2008. Effects of body condition score at calving and feeding various types of concentrate supplements to grazing dairy cows on early lactation performance. Livestock Science 116, 191202.CrossRefGoogle Scholar
Tanaka, T, Arai, M, Ohtani, S, Uemura, S, Kuroiwa, T, Kim, S, Kamomae, H 2008. Influence of parity on follicular dynamics and resumption of ovarian cycle in postpartum dairy cows. Animal Reproduction Science 108, 134143.CrossRefGoogle ScholarPubMed
Taylor, V, Beever, D, Bryant, M, Wathes, D 2003. Metabolic profiles and progesterone cycles in first lactation dairy cows. Theriogenology 59, 16611677.CrossRefGoogle ScholarPubMed
Taylor, VJ, Cheng, Z, Pushpakumara, PGA, Beever, DE, Whates, D 2004. Relationships between the plasma concentration of insulin-like growth factor-I in dairy cows and their fertility and milk yield. The Veterinary Record 155, 583588.CrossRefGoogle ScholarPubMed
Wathes, D, Cheng, Z, Bourne, N, Taylor, V, Coffey, M, Brotherstone, S 2007. Differences between primiparous and multiparous dairy cows in the inter-relationships between metabolic traits, milk yield and body condition score in the periparturient period. Domestic Animal Endocrinology 33, 203225.CrossRefGoogle ScholarPubMed
Whitaker, D, Goodger, W, Garcia, M, Perera, B, Wittwer, F 1999. Use of metabolic profiles in dairy cattle in tropical and subtropical countries on smallholder dairy farms. Preventive Veterinary Medicine 38, 119131.CrossRefGoogle ScholarPubMed