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Effect of n-3 and n-6 polyunsaturated fatty acids on hare reproductive performances

Published online by Cambridge University Press:  07 January 2010

V. Tufarelli*
Affiliation:
Department of Animal Health and Welfare, Faculty of Veterinary Medicine, University of Bari, Valenzano 70010, Italy
L. Valentini
Affiliation:
Department of Animal Production, Faculty of Veterinary Medicine, University of Bari, Valenzano 70010, Italy
M. Dario
Affiliation:
Department of Animal Health and Welfare, Faculty of Veterinary Medicine, University of Bari, Valenzano 70010, Italy
V. Laudadio
Affiliation:
Department of Animal Health and Welfare, Faculty of Veterinary Medicine, University of Bari, Valenzano 70010, Italy
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Abstract

The study was carried out on 42 breeder couples (42 males and 42 females) of European brown hare (Lepus europaeus), divided into three groups fed three different experimental diets (14 couples/treatment). Two diets were supplemented with n-3 and n-6 polyunsaturated fatty acids (PUFAs; 2% of linseed oil and soybean oil, respectively) and were compared with a control diet supplemented with a monounsaturated fatty acids (2% of olive oil). During the experimental period (from 15 April to 30 September), the following parameters were recorded: days from the beginning of trial to the first parturition, parturition interval, number of parturitions, number of leverets born (alive and dead), dead during suckling, the total number of leverets weaned and feed intake per cage (of males, females and leverets until weaning). Feed intake was not influenced by treatments. In hares fed n-3 and n-6 diets, the days from the beginning of the trial to the first parturition and the parturition interval were similar and were lower compared with control group (63.1 v. 70.6 days, and 37.8 v. 40.9 days, respectively; P < 0.05). Hares from n-6 group had a higher (P < 0.05) number of parturitions per cage during the experimental period than the n-3 and control group that showed a similar value (3.00 v. 2.36, respectively). The total number of leverets born per cage and parturition in n-6 and n-3 groups increased with respect to those fed control diet (P < 0.05). The leverets’ mortality rate at birth was higher in n-6 than in n-3 and control group (3.50 v. 2.17, respectively; P < 0.05). In control group, leverets’ mortality rate during suckling was lower with respect to n-3 (P < 0.05) and n-6 (P < 0.05), showing the highest value for the latter (P < 0.05). In spite of this higher mortality, the number of leverets weaned per cage and parturition was higher (P < 0.05) in n-6 compared with n-3 group, being the latter higher than the control group (3.12, 2.79 and 2.43, respectively). Our results show that the dietary PUFAs, particularly n-6 supplementation, have a positive influence on the reproductive performances of the European brown hare.

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Full Paper
Copyright
Copyright © The Animal Consortium 2009

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References

Alves, PC, Rocha, A 2003. Environmental factors have little influence on the reproductive activity of the Iberian hare (Lepus granatensis). Wildlife Research 30, 639647.CrossRefGoogle Scholar
Association of Official Analytical Chemists (AOAC) 2000. Official methods of analysis, 17th edition. AOAC, Washington, DC, USA.Google Scholar
Caillol, M, Martinet, L 1976. Preliminary results on plasma progesterone levels during pregnancy and superfetation in the hare, Lepus europaeus. Journal of Reproduction and Fertility 46, 6164.CrossRefGoogle ScholarPubMed
Calamera, J, Buffone, M, Ollero, M, Alvarez, J, Doncel, GF 2003. Superoxide dismutase content and fatty acid composition in subsets of human spermatozoa from normozoospermic, asthenozoospermic and polyzoospermich semen samples. Molecular Reproduction and Development 66, 422430.CrossRefGoogle ScholarPubMed
Connor, WE, Lin, DS, Wolf, DP, Alexander, M 1998. Uneven distribution of desmosterol and docosahexaenoic acid in the heads and tails of monkey sperm. Journal of Lipid Research 39, 14041411.CrossRefGoogle ScholarPubMed
Fernandez-Carmona, J, Cervera, C, Blas, E 1996. Prediction of the energy value of rabbit feeds varying widely in fibre content. Animal Feed Science and Technology 64, 6175.CrossRefGoogle Scholar
Flesch, FM, Gadella, BM 2000. Dynamics of the mammalian sperm plasma membrane in the process of fertilization. Biochimica et Biophysica Acta 1469, 197235.CrossRefGoogle ScholarPubMed
González-Redondo, P 2006. Proposal of a nest box for the reproduction of wild rabbits (Oryctolagus cuniculus) in cages. World Rabbit Science 14, 115121.Google Scholar
Hacklander, K, Arnold, W, Ruf, T 2002. Postnatal development and thermoregulation in the precocial European hare (Lepus europaeus). Journal of Comparative Physiology, B: Biochemical, Systematic, and Environmental Physiology 172, 183190.Google ScholarPubMed
Homolka, M, Zima, J 1999. Lepus europaeus Pallas, 1778. In The atlas of European mammals (ed. AJ Mitchell-Jones), pp. 166167. T&AD Poyser, London, UK.Google Scholar
Kelso, KA, Cerolini, S, Noble, RC, Sparks, NH, Speake, BK 1997. The effects of dietary supplementation with docosahexaenoic acid on the phospholipid fatty acid composition of avian spermatozoa. Comparative Biochemistry and Physiology – Part B: Biochemistry and Molecular Biology 118, 6569.CrossRefGoogle ScholarPubMed
Kozdrowski, R, Dubiel, A 2005. Collection and properties of European brown hare semen. Medycyna Weterynaryjna 61, 571572.Google Scholar
Leat, WMF 1983. The pools of tissue constituents and products: adipose tissue and structural lipids. In Dynamic biochemistry of animal production (ed. P Riis), pp. 109136. Elsevier, Amsterdam, Holland.Google Scholar
Lenzi, A, Gandini, L, Picaro, M, Tramer, F, Sandri, G, Panfili, E 2000. Lipoperoxidation damage of spermatozoa polyunsaturated fatty acids (PUFA): scavenger mechanisms and possible scavenger therapies. Frontiers in Bioscience 5, 115.Google ScholarPubMed
Mertens, DR 2002. Gravimetric determination of amylase-treated neutral detergent fibre in feeds with refluxing beakers or crucibles: collaborative study. Journal of the Association of Official Analytical Chemists 85, 12171240.Google ScholarPubMed
Müller, K, Pomorski, T, Muller, P, Herrmann, A 1999. Stability of transbilayer phospholipid asymmetry in viable ram sperm cells after cryotreatment. Journal of Cell Science 112, 1120.CrossRefGoogle ScholarPubMed
Sahin, K, Sahin, N, Yaralioglu, S, Ondereci, M 2002. Protective role of supplemental vitamin E and selenium on lipid peroxidation, vitamin E, vitamin A, and some mineral concentrations of Japanese quails reared under heat stress. Biological Trace Element Research 85, 5970.CrossRefGoogle ScholarPubMed
SAS 1999. SAS/STAT user’s guide, release 6, 12th edition. SAS Institute Inc., Cary, NC, USA.Google Scholar
Stott, P, Wight, N 2004. Female reproductive tract abnormalities in European brown hare (Lepus Europeaus) in Australia. Journal of Wildlife Disease 40, 696703.CrossRefGoogle Scholar
Tume, L 2000. Farming European brown hare. A report for the rural industries research and development corporation. RIRDC Publication, Barton, Australia.Google Scholar
Wathes, DC, Abayasekara, DRE, Aitken, RJ 2007. Polyunsaturated fatty acids in male and female reproduction. Biology of Reproduction 77, 190201.CrossRefGoogle ScholarPubMed
Yanagimachi, R 1981. Mechanism of fertilization in mammals. In Fertilization and embryonic development in vitro (ed. L Mastroianni and JD Biggers), pp. 181182. Plenum Press, New York, NY, USA.Google Scholar
Zachut, M, Arieli, A, Lehre, H, Argov, N, Moallem, U 2008. Dietary unsaturated fatty acids influence preovulatory follicle characteristics in dairy cows. Reproduction 135, 683692.CrossRefGoogle ScholarPubMed
Zalata, A, Hafez, T, Mahmoud, A, Comhaire, F 1995. Relationship between resazurin reduction test, reactive oxygen species, and γ-glutaminotransferase. Human Reproduction 10, 11361140.CrossRefGoogle Scholar
Zaneveld, LJD, De Jonge, CJ, Anderson, RA, Mack, SR 1991. Human sperm capacitation and the acrosome reaction. Human Reproduction 6, 12651274.CrossRefGoogle ScholarPubMed
Zaniboni, L, Gliozzi, T, Maldjian, A, Luzi, F, Cerolini, S 2004. Fatty acid and tocopherol composition of semen components in the rabbit. In Proceedings of the 8th World Rabbit Congress, Puebla City, Mexico, September 2004, 365–370.Google Scholar
Zar, JH 1996. Biostatistical analysis, 3rd edition. Prentice-Hall, Upper Saddle River, NJ, USA.Google Scholar
Zorner, H 1996. Der Feldhase. 2. Unveranderte Auflage, Nachdruck. Spektrum Akademischer Verlag, Heidelberg.Google Scholar