Cite

Andrés A.I., Cava R., MayoralA.I., Tejeda J.F., Morcuende D., Ruiz J. (2001). Oxidative stability and fatty acid composition of pig muscles as affected by rearing system, crossbreeding and metabolic type of muscle fibre. Meat Sci., 59: 39-47.Search in Google Scholar

AOAC (1990). Official Methods of Analysis of the Associated Official Analytical Chemists, Chapter 32, Washington, DC.Search in Google Scholar

Beaulieu A.D., Aalhus J.L., Williams N.H., PatienceJ.F. (2010). Impact of piglet birth weight, birth order, and litter size on subsequent growth performance, carcass quality, muscle composition and eating quality of pork. J. Anim. Sci., 88: 2767-2778.Search in Google Scholar

Bee G. (2004). Effect of early gestation feeding, birth weight, and gender of progeny on muscle fiber characteristics of pigs at slaughter. J. Anim. Sci., 82: 826-836.Search in Google Scholar

Bee G., Calderini M., Biolley C., Guex G., Herzog W., Lindemann M.D. (2007). Changes in the histochemical properties and meat quality traits of porcine muscles during the growing- finishing period as affected by feed restriction, slaughter age, or slaughter weight. J. Anim. Sci., 85: 1030-1045.Search in Google Scholar

BérardJ., Kreuzer M., BeeG. (2008). Effect of litter size and birth weight on growth, carcass and pork quality, and their relationship to postmortem proteolysis. J. Anim. Sci., 86: 2357-2368.Search in Google Scholar

Bocian M., Grajewska S., Kapelańska J., Wiśniewska J., Włodarski W. (2011). Influence of piglet birth weight on rearing and fattening results (in Polish). Rocz. Nauk. Zoot., 38: 189-195.Search in Google Scholar

Campos P.H., Silva B.A.N., Donzele J.L., Oliveira R.F.M., Knol E.F. (2012). Effects of sow nutrition during gestation on within litter birth weight variation: a review. Animal, 6: 797-806.Search in Google Scholar

Daza A., Rey A.I., Menoyo D., Bautista J.M., Olivare s A., López - Bote C.J. (2007). Effect of level of feed restriction during growth and/or fattening on fatty acid composition and lipogenic enzyme activity in heavy pigs. Anim. Feed Sci. Technol., 138: 61-74.Search in Google Scholar

De Smet S., Raes K., Demeyer D. (2004). Meat fatty acid composition as affected by fatness and genetic factors: a review. Anim. Res., 53: 81-98.Search in Google Scholar

Enser M., Richardson R.I., Wood J.D., Gill B.P., Sheard P.R. (2000). Feeding linseed to increase the n-3 PUFA of pork: fatty acid composition of muscle, adipose tissue, liver and sausages. Meat Sci., 55: 201-212.Search in Google Scholar

Foxcroft G.R., Dixon W.T., Novak S., Putman C.T., Town S.C., Vinsky M.D. (2006). The biological basis for prenatal programming of postnatal performance in pigs. J. Anim. Sci., 84 (E Suppl.): E105-E112.Search in Google Scholar

Gondret F., Le faucheur L., Louveau I., Lebret B. (2005). The long-term influences of birth weight on muscle characteristics and eating meat quality in pigs reared and fed during fattening. Archiv. Anim. Breed., 48: 68-73.Search in Google Scholar

Gondret F., Le faucheur L., JuinH., Louveau I., Lebret B. (2006). Low birth weight is associated with enlarged muscle fiber area and impaired meat tenderness of longissimus muscle in pigs. J. Anim. Sci., 84: 93-103.Search in Google Scholar

Hernández P., Navarro J.L., T oldrá F. (1998). Lipid composition and lipolytic enzyme activities in porcine skeletal muscles with different oxidative pattern. Meat Sci., 49: 1-10.Search in Google Scholar

Heyer A., Andersson H.K., Lindberg J.E., Lundström K. (2004). Effect of extra maternal feed supply in early gestation on sow and piglet performance and production and meat quality of growing/finishing pigs. Acta Agricult. Scand. Sect. A - Anim. Sci., 54: 44-55.Search in Google Scholar

Karunarante J., Bayol S., Ashton C., Stickland N. (2007). Potential mechanisms for the nutritional control of muscle composition in developing pigs. Archiv. Anim. Breed., 50 (Special Issue): 50.Search in Google Scholar

Lauridsen C., Nielsen J.H., Henckel P., Sorensen M.T. (1999). Antioxidative and oxidative status in muscles of pigs fed rapeseed oil, vitamin E, and copper. J. Anim. Sci., 77: 105-115.Search in Google Scholar

Lawlor P.G., Lynch P.B., O ’ Connell M.K., Mc Namara L., Reid P., Stickland N.C. (2007). The influence of overfeeding sows during gestation on reproductive performance and pig growth to slaughter. Archiv. Anim. Breed., 50 (Special Issue): 82-91.Search in Google Scholar

Lengerken G., Wicke M., Maak K. (1997). Stress susceptibility and meat quality situation and prospects in animal breeding and research. Archiv. Anim. Breed., 40 (Suppl.): 163-171.Search in Google Scholar

Maltin C.A., Warkup C.C., Matthews K.R., Grant C.M., Porter A.D., Delday M.I. (1997). Pig muscle fiber characteristics as a source of variation in eating quality. Meat Sci., 47: 237-248.Search in Google Scholar

Mucha A. (2013). Results of reproductive performance of breeding sows. Report on pig breeding in Poland in 2012 (in Polish). Kraków, XXIX: 3-18.Search in Google Scholar

Oksbjerg N., NissenP.M., Therkildsen M., Møller H.S., Larsen L.B., Andersen M., YoungJ.F. (2013). In utero nutrition related to fetal development, postnatal performance and meat quality of pork. J. Anim. Sci., 91: 1443-1453.Search in Google Scholar

Prange H., Jugert L., Schamer E. (1977). Untersuchungen zur Muskelfleischqualität beim Schwein. Arch. Exper. Veterinarmed. Leipzig, 31: 235-248.Search in Google Scholar

Raes K., DeSmet S., Demeyer D. (2004). Effect of dietary fatty acids on incorporation of long chain polyunsaturated fatty acids and conjugated linoleic acid in lamb, beef and pork meat: a review. Anim. Feed Sci. Technol., 113: 199-221.Search in Google Scholar

Rehfeldt C., KuhnG. (2006). Consequences of birth weight for postnatal growth performance and carcass quality in pigs as related to myogenesis. J. Anim. Sci., 84 (E. Suppl.): 113-123.Search in Google Scholar

Rehfeldt C., Tuchscherer A., Hartung M., Kuhn G. (2008). A second look at the influence of birth weight on carcass and meat quality in pigs. Meat Sci., 78: 170- 175.Search in Google Scholar

Rehfeldt C., Te Pas M.F.W., Wimmers K., Brameld J.M., Nissen P.M., Berri C., Valente L.M.P., Power D.M., Picard B., Stickland N.C., Oksbjerg N. (2011). Advances in research on the prenatal development of skeletal muscle in farm animals in relation to the quality of muscle-based food I. Regulation of myogenesis and environmental impact. Animal, 5: 703-717.Search in Google Scholar

Rehfeldt C., Stabenow B., Pfuhl R., Block J., Nürnberg G., Otten W., Metges C.C., Kalbe C. (2012). Effects of limited and excess protein intakes of pregnant gilts on carcass quality and cellular properties of skeletal muscle and subcutaneous adipose tissue in fattening pigs. J. Anim. Sci., 90: 184-196.Search in Google Scholar

Rekiel A., Więcek J., Batorska M., Kulisiewicz J. (2014). Effect of sow prolificacy and nutrition on pre- and postnatal growth of progeny: a review. Ann. Anim. Sci., 14: 3-15.Search in Google Scholar

Wu G., Bazer F.W., Wallace J.M., Spencer T.E. (2006). Board-invited review: Intrauterine growth retardation: implications for the animal sciences. J. Anim. Sci., 84: 2316-2337.Search in Google Scholar

Zhu M.J., Ford S.P., Means W.J., Hess B.W., Nathanielsz P.W., Du M. (2006). Maternal nutrient restriction affects properties of skeletal muscle in offspring. J. Physiol., 575: 241-250.Search in Google Scholar

Żak G., Pieszka M. (2009). Improving pork quality through genetics and nutrition. Ann. Anim. Sci., 9: 327-338. Search in Google Scholar

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