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Effect of diets containing graded levels of low glucosinolate rapeseed press cake on reproductive organs and hormonal status in gilts and their female piglets

Published online by Cambridge University Press:  18 August 2016

M. Opalka*
Affiliation:
Department of Animal Physiology, University of Warmia and Mazury, Olsztyn, Poland
J. Tywonczuk
Affiliation:
Institute of Animal Nutrition and Feed Management, University of Warmia and Mazury, Olsztyn, Poland
M. Koziorowski
Affiliation:
Department of Animal Physiology and Reproduction, University of Rzeszow, Rzeszow, Poland
L. Dusza
Affiliation:
Department of Animal Physiology, University of Warmia and Mazury, Olsztyn, Poland
*
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Abstract

Crossbred gilts were offered rapeseed press cake (RSP) as follows: control (no RSP in diet during growth/ pregnancy/lactation), M-RSP (medium RSP levels: 100/50/100 g/kg RSP) and H-RSP (high RSP levels: 150/80/ 150 g/kg RSP). Plasma concentrations of free thyroxine (FT4), tri-iodothyronine (T3), luteinizing hormone (LH), prolactin (PRL), progesterone (P4) and androstenedione (A4), weights of thyroid gland, ovaries and uterus, length of uterine horns, and number of corpora lutea (CL) were measured in gilts during the mid-luteal phase of their first oestrous cycle. Serum concentrations of FT4, T3, LH and PRL, weights of thyroids, ovaries, uteri, adrenals, kidneys, liver and spleen were measured in female piglets on 2nd and 28th day of lactation. RSP diets, affected thyroid weights, number of CL, uterine horn length, mean concentrations of plasma FT4, T3, PRL, and P4 in gilts. Changes of weights of ovaries in 2-day-old piglets and weights of uterus, adrenal gland and kidneys in 28-day-old piglets from RSP groups were observed.

Type
Reproduction
Copyright
Copyright © British Society of Animal Science 2003

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References

Bell, J. M. 1984. Nutrients and toxicants in rapeseed meal: a review. Journal of Animal Science 58: 9961009.Google Scholar
Brinkley, H. J. 1981. Endocrine signaling and female reproduction. Biology of Reproduction 24: 2243.Google Scholar
Busato, A., Bestetti, G. E., Rossi, G. L., Gerber, H., Peter, H. J. and Blum, J. W. 1991. Effects of feeding rapeseed-meal on liver and thyroid gland function and histomorphology in growing pigs. Journal of Animal Physiology and Animal Nutrition 66: 1227.CrossRefGoogle Scholar
Ciereszko, R. and Dusza, L. 1993. Exogenous prolactin elevates plasma progesterone concentrations and reduces androgen concentrations during the early luteal phase of the porcine estrous cycle. Animal Reproduction Science 31: 141154.Google Scholar
Corino, C., Baldi, A. and Bontempo, V. 1991. Influence of low-glucosinolate rapeseed meal on performance and thyroid hormone status of heavy pigs Animal Feed Science and Technology 35: 321331.CrossRefGoogle Scholar
Day, R. N. and Maurer, R. A. 1989. Thyroid hormone-responsive elements of the prolactin gene: evidence for both positive and negative regulation. Molecular Endocrinology 3: 931938.CrossRefGoogle ScholarPubMed
Devilat, J. and Skoknic, A. 1971. Feeding high levels of rapeseed meal to pregnant gilts. Canadian Journal of Animal Science 51: 715719.Google Scholar
Doroszewski, P., Podkowka, Z., Szterk, P. and Podkowka, W. 1996. Chemical composition of rapeseed, rapeseed press cake and rapeseed meal. Rosliny oleiste 27: 441446.Google Scholar
Drozdowski, B., Hazuka, Z., Tynek, M. and Pawlowicz, R. 1990. Qualitative and quantitative composition of lipids from chosen crop rapeseed type “00”. Zeszyty Problemowe IHAR – Rosliny oleiste, pp. 191197.Google Scholar
Dusza, L. and Krzymowska, H. 1979. Plasma prolactin concentrations during the oestrous cycle of sows. Journal of Reproduction and Fertility 57: 511514.CrossRefGoogle ScholarPubMed
Dusza, L., Opalka, M., Kaminska, B., Kaminski, T. and Ciereszko, R. E. 1996. The relationship between electrical resistance of vaginal mucus and plasma hormonal parameters during periestrus in sows. Theriogenology 45: 14911503.Google Scholar
Dziadkowiec, I., Danilczyk, H. and Rembiesa, R. 1982a. Biosynthesis of progesterone during pregnancy in the rat. Endokrynologia Polska 33: 201207.Google ScholarPubMed
Dziadkowiec, I., Warchol, A. and Rembiesa, R. 1982b. Biosynthesis of estrogens during pregnancy in the rat. Endokrynologia Polska 33: 46.Google Scholar
Etienne, M. and Dourmad, J. Y. 1987. Effets de la consommation de tourteau de colza normal ou a faible teneur en glucosinolates sur la reproduction chez la truie. Journées de la Recherche Porcine en France 19: 231238.Google Scholar
Etienne, M., Dourmad, J. Y. and Evrard, J. 1993. Effets de la consommation de tourteau de colza a tres basse teneur en glucosinolates pendant la croissance et la gestation chez la truie. Journées de la Recherche Porcine en France 25: 193202.Google Scholar
Etienne, M., Dourmad, J. Y. and Obidzinski, W. 1990. Effets du tourteau de colza a basse teneur en glucosinolates pendant la gestation chez la truie. Journées de la Recherche Porcine en France 22: 243250.Google Scholar
Etienne, M., Dourmad, J. Y., Obidzinski, W., Evrard, J. and Vachot, C. 1991. Effects of low glucosinolate rapeseed meal in sow pregnancy diet. GCIRC eighth international rapeseed congress, Saskatoon, Saskatchewan, program and abstracts, pp. 376381.Google Scholar
Farmer, C., Kensinger, R. S. and Hagen, D. R. 1987. Relationship of estrone and prolactin with growth and survival of piglets to 35 d of age. Journal of Animal Science 65: 10341041.Google Scholar
Gregoraszczuk, E. L. 1996. The effect of triiodothyronine (T3) and TSH treatment in vitro on progesterone production by luteal cells isolated during different stages of the luteal phase. Journal of Physiology and Pharmacology 47: (suppl. 1) 93100.Google Scholar
Gregoraszczuk, E. L. and Skalka, M. 1996. Thyroid hormone as a regulator of basal and human chorionic gonadotrophin-stimulated steroidogenesis by cultured porcine theca and granulosa cells isolated at different stages of the follicular phase. Reproduction, Fertility and Development 8: 961967.Google Scholar
Hinckley Sr, T., Clark, R. M., Bushmich, S. L. and Milvae, R. A. 1996. Long chain polyunsaturated fatty acids and bovine lutal cell function. Biology of Reproduction 55: 445449.Google Scholar
Hotchkiss, J., Atkinson, L. E. and Knobil, E. 1971. Time course of serum estrogen and luteinizing hormone (LH) concentration during the menstrual cycle of the rhesus monkey. Endocrinology 89: 177183.Google Scholar
Huisman, J. and Tolman, G. H. 1992. Antinutritional factors in the plant proteins of diets for non-ruminants. In Recent advances in animal nutrition (ed. Garnsworthy, P. C. W. Haresign, and Cole, D. J. A.), pp. 331. Butterworth-Heinemann, Oxford.Google Scholar
Jedlin´ska, M., Rozewiecka, L. and Zieçik, A. J. 1995. Effect of hypoprolactinemia and hyperprolactinemia on LH secretion, endocrine function of testes and structure of seminiferous tubules in boars Journal of Reproduction and Fertility 103: 265272.Google Scholar
Kielanowski Institute of Animal Physiology and Nutrition. 1993. Nutrient requirements of pigs. The Kielanowski Institute of Animal Physiology and Nutrition, Jablonna, Poland.Google Scholar
Koczanowski, J., Kaczmarczyk, J. and Klocek, C. 1989. Effect of the post-extraction rapeseed meal in feeding breeding gilts on their reproductive performance. Roczniki Nauk Rolniczych, Seria B 105: 1927.Google Scholar
Koczanowski, J. and Klocek, C. 1991. Effect of low thioglicoside rapeseed oil meal for sows on their reproductive ability. Zeszyty Naukowe PTZ 1: 186194.Google Scholar
Koczanowski, J. and Pawlowska, I. 1993. Rapeseed meal type “00” in feeding of gilts and sows. Trzoda Chlewna 31: 89.Google Scholar
Koczanowski, J., Tuz, R., Rzasa, J. and Mika, M. 1994. The level of steroid hormones in plasma of gilts fed rapeseed meal type “00”. Konferencja naukowa: Współczesne zasady żywienia ‘swih, Jabłonna, Poland, pp. 159162.Google Scholar
Kotwica, G. 1987. Progesterone level in the peripheral blood, and the content of cytosolic progesterone receptor in the mucosa and tunica muscularis of the uterus in sows in the sexual cycle. Polskie Archiwum Weterynaryjne 25: 7789.Google Scholar
Krasucki, W. 1997. The effect of rapeseed “00” cake in sows diets on their reproduction and biochemical indices of blood. Biuletyn Naukowy Przemysiu Paszowego 36: 2333.Google Scholar
Krasucki, W. and Grela, E. 1992. “00” rapeseed meal as a substitute of soybean meal in reproductive sow feeding. Biuletyn Informacyjny Przemyslu Paszowego 1: 1527.Google Scholar
Lee, P. A., Hill, R. and Ross, E. J. 1985. Studies on rapeseed meal from different varieties of rape in the diets of gilts. II. Effects on farrowing performance of gilts, performance of their piglets to weaning and subsequent conception of the gilts. British Veterinary Journal 141: 592602.Google Scholar
Lewis, A. J., Aherne, F. X. and Hardin, R. T. 1978. Reproductive performance of sows fed low glucosinolate (Tower) rapeseed meal. Canadian Journal of Animal Science 58: 203208.Google Scholar
Manns, J. G. and Bowland, J. P. 1963. Solvent-extracted rapeseed oil meal as a protein source for pigs and rats. I. Growth, carcass characteristics and reproduction. Canadian Journal of Animal Science 43: 252263.Google Scholar
Martinat-Botte, F., Bariteau, Y., Forgerit, C., Macar, P., Poirier, P. and Terqui, M. 1995. Synchronization of oestrus in gilts with altrenogest: effects on ovulation rate and foetal survival. Animal Reproduction Science 39: 267274.Google Scholar
Mawson, R., Heaney, R. K., Zdunczyk, Z. and Kozlowska, H. 1994. Rapeseed meal-glucosinolates and their antinutritional effects. 4. Goitrogenicity and internal organs abnormalities in animals. Nahrung 38: 178191.Google Scholar
Obidzinski, W., Horszczaruk, F. and Wojdan, J. 1984. Long-lasting feeding with low-glucosinolate rapeseed meal and its effect on the health state and reproductive ability of sows. Medycyna Weterynaryjna 40: 548551.Google Scholar
Opalka, M., Dusza, L., Koziorowski, M., Staszkiewicz, J., Lipinski, K. and Tywonczuk, J. 2001. Effect of long-term feeding with graded levels of low glucosinolate rapeseed meal on endocrine status of gilts and their piglets. Livestock Production Science 69: 233243.Google Scholar
Pusztai, A. 1989. Antinutrients in rapeseeds. Nutrition Abstracts and Reviews, Series B 59: 427433.Google Scholar
Schöne, F., Hening, A., Groppel, B., Lange, R., Schneider, A. and Jahreis, G. 1991. Evaluation of low or high glucosinolate rapeseed meals in experiments with growing pigs and poultry. GCIRC eighth international rapeseed congress, Saskatoon, Saskatchewan, program and abstracts, pp. 382389.Google Scholar
Schuld, F. W. and Bowland, J. P. 1968. Dietary rapeseed meal for swine reproduction. Canadian Journal of Animal Science 48: 5764.Google Scholar
Spiegel, C., Bestetti, G. E., Rossi, G. L. and Blum, J. W. 1993a. Normal circulating triiodothyronine concentrations are maintained despite severe hypothyroidism in growing pigs fed rapeseed presscake meal. Journal of Nutrition 123: 15541561.Google Scholar
Spiegel, C., Bestetti, G. E., Rossi, G. L. and Blum, J. W. 1993b. Feeding of rapeseed presscake meal to pigs: effects on thyroid morphology and function and on thyroid hormone blood levels, on liver and on growth performance. Journal of Veterinary Medicine, A 40: 4557.CrossRefGoogle ScholarPubMed
Spiegel, C. and Blum, J. W. 1993. Lower food intake is a primary cause of reduced growth rate in growing pigs fed rapeseed presscake meal. Journal of Nutrition 123: 15621566.Google Scholar
Zieçik, A. J., Ebenshade, K. L. and Britt, J. H. 1989. Effects of a gonadotrophin-releasing hormone antagonist on gonadotrophin secretion and gonadal development in neonatal pigs. Journal of Reproduction and Fertility 87: 281289.CrossRefGoogle ScholarPubMed
Zieçik, A. J., Ebenshade, K. L., Howard, H. J. and Britt, J. H. 1990. Sex-related differences in the control of gonadotropin concentrations in neonatal pigs. Animal Reproduction Science 23: 123133.Google Scholar
Zieçik, A. J., Goralska, M., Krzymowski, T. and Pogorzelski, K. 1978. Isolation and purification of porcine LH for radioimmunoassay and radioreceptor assay. Bulletin de L’Academie Polonaise des Sciences, Serie des Sciences Biologiques 26: 739744.Google Scholar