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The Effect of Hydrothermally Processed Soybean- and Rapeseed-Based Diets on Performance, Meat and Carcass Quality Characteristics in Growing-Finishing Pigs

Open Access
|Oct 2019

References

  1. AOAC (2005). Official Methods of Analysis of the Association of Official Analytical Chemists. 16th Edition, Arlington, Virginia, USA.
  2. Barowicz T., Brzóska F., Pietras M. (2000). Hypocholesterolemic effect of dietary fat in diets of growing pigs. Med. Weter., 56: 746–749.
  3. Baryłko-Pikielna N. (1975). Outline of sensory analysis (in Polish). WNT Warszawa.
  4. Bertol T.M., Campos R.M., Ludke J.V., Terra N.N., Figueiredo E.A., Coldebella A. (2013). Effects of genotype and dietary oil supplementation on performance, carcass traits, pork quality and fatty acid composition of backfat and intramuscular fat. Meat Sci., 93: 507–516.10.1016/j.meatsci.2012.11.012
  5. Brzóska F., Śliwinski B., Michalik-Rutkowska O. (2010). Rapeseed-based feeds and their contribution to the national protein supply and nutritional value (in Polish). Part 1. Wiad. Zoot., 48: 11–18.
  6. Chen C.C., Chiou P.W.S., Yu B. (2010). Evaluating nutritional quality of single stage- and two stage-fermented soybean meal. Asian-Australas. J. Anim. Sci., 23: 598–606.10.5713/ajas.2010.90341
  7. Choct M., Dersjant -Li Y., McLeish J., Peisker M. (2010). Soy oligosaccharides and soluble non-starch polysaccharides: a review of digestion, nutritive and anti-nutritive effects in pigs and poultry. Asian-Australas. J. Anim. Sci., 23: 1386–1398.10.5713/ajas.2010.90222
  8. CVB 2004. Veevoedertable 2004, Centraal Veevoederbureau, Lelystad, Holland.
  9. Dzwonkowski W., Bodyl M.R. (2014). Changes in demand for protein feed in the context of the development of animal production and the situation on the world market for raw materials of high protein. Zesz. Nauk. SGGW Probl. Roln. Świat., 14: 5–15.
  10. Eklund M., Sauer N., Schöne F., Messerschmidt U., Rosenfelder P., Htoo J.K., Mosenthin R. (2015). Effect of processing of rapeseed under defined conditions in a pilot plant on chemical composition and standardized ileal amino acid digestibility in rapeseed meal for pigs. J. Anim. Sci., 93: 2813–2825.10.2527/jas.2014-8210
  11. Galli C., Calder P.C. (2009). Effects of fat and fatty acid intake on inflammatory and immune responses: a critical review. Ann. Nutr. Metab., 55: 123–139.10.1159/000228999
  12. Gjerlaug-Enger E., Haug A., Gaarder M., Ljøkjel K., Stenseth R.S., Sigfridson K., Egelandsdal B., Saarem K. Berg P. (2015). Pig feeds rich in rapeseed products and organic selenium increased omega-3 fatty acids and selenium in pork meat and backfat. Food Sci. Nutr., 3: 120–128.10.1002/fsn3.182
  13. Grageola F., Landero J.L., Beltranena E., Cervantes M., Araiza A., Zijlstra R.T. (2013). Energy and amino acid digestibility of expeller-pressed canola meal and cold-pressed canola cake in ileal-cannulated finishing pigs. Anim. Feed Sci. Tech., 186: 169–176.10.1016/j.anifeedsci.2013.10.010
  14. Grau R., Hamm R. (1952). Eine einfache Metode zur Bestimmung der Wasserbindung in Fleisch. Fleischwirtschaft., 4: 295–297.
  15. Hanczakowska E., Światkiewicz M. (2014). Legume seeds and rapeseed press cake as replacers of soybean meal in feed for fattening pigs. Ann. Anim. Sci., 14: 921–934.10.2478/aoas-2014-0068
  16. Hanczakowska E., Węglarzy K., Bereza M. (2012). Effectiveness of rapeseed press cake (RPC) in sow feeding in two reproduction cycles. Ann. Anim. Sci., 12: 95–104.10.2478/v10220-012-0008-4
  17. Heaney R.K., Spinks E.A., Fenwick G.R. (1988). Improved method for the determination of the total glucosinolate content of rapeseed by determination of enzymically released glucose. Analyst, 113: 1515–1517.10.1039/an9881301515
  18. Kaczmarek P., Korniewicz D., Lipiński K., Mazur M. (2016). Chemical composition of rapeseed products and their use in pig nutrition. Pol. J. Nat. Sci. 31: 545–562.
  19. Kaldmäe H., Leming R., Kass M., Lember A., Tölp S., Kärt O. (2010). Chemical composition and nutritional value of heat-treated and cold-pressed rapeseed cake. Vet. Zootech-Lith., 49: 55–60.
  20. Kargopoulos A., Dotas V., Giannenas I., Christaki E. (2018). Effect of dietary rape seed meal on growth performance and meat quality of growing-fattening pigs. S. Afr. J. Anim. Sci., 48: 897–906.10.4314/sajas.v48i5.9
  21. Koczanowski J., Orzechowska B., Migdał W. (2004). Fatty acid composition of backfat as affected by duration of feeding a diet with rapeseed oil. Rośliny Oleiste, 25: 307–313.
  22. Kołacz R., Korniewicz A., Dobrzański Z., Bykowski P., Kołacz D., Korniewicz D. (2004). Effect of dietary fish and rapeseed oils on sensory and physicochemical characteristic of pig m. longissimus dorsi and fatty acid composition. Anim. Feed Sci., 13: 143–152.10.22358/jafs/67397/2004
  23. Korniewicz A., Dobrzański Z., Kołacz R., Korniewicz D., Usydus Z. (2004). The influence of fish and rapeseed oil on the fatty acid composition of backfat in pigs. Rocz. Nauk. Zoot. Supl., 20: 103–106.
  24. Korniewicz A., Usydus Z., Kołacz R., Dobrzański Z., Kulok M., Kanderska J. (2006). Effect of halloysite on fatty acid composition in meat, liver and backfat. Acta Sci. Pol. Zootechnica 5: 49–58.
  25. Leskanich C.O., Noble R.C. (1997). Manipulation of the n-3 polyunsaturated fatty acid composition of avian eggs and meal. World Poultry Sci. J., 53: 155–184.10.1079/WPS19970015
  26. Liu Y., Song M., Maison T., Stein H.H. (2014). Effects of protein concentration and heat treatment on concentration of digestible and metabolizable energy and on amino acid digestibility in four sources of canola meal fed to growing pigs. J. Anim. Sci., 92: 4466–4477.10.2527/jas.2013-7433
  27. Mozaffarian D. (2008). Fish and n-3 fatty acids for the prevention of fatal coronary heart disease and sudden cardiac death. Am. J. Clin. Nutr., 87: 1991S–1996S.10.1093/ajcn/87.6.1991S
  28. Nishinari K., Fang Y., Guo S., Phillips G.O. (2014). Soy proteins: A review on composition, aggregation and emulsification. Food Hydrocoll., 39: 301–318.10.1016/j.foodhyd.2014.01.013
  29. Nutrient Requirements and Nutritional Value of Feeds for Swine (in Polish). 2nd Edition. Grela ER, Skomiał J (Editors). 2015. The Kielanowski Institute of Animal Physiology and Nutrition, PAS, Jabłonna (Poland).
  30. Pohja N.S., Niinivaara F.P. (1957). Bestimmung der Wasserbindung des Fleisches mittels der Konstantdruckmethode. Fleischwirtschaft., 9: 193–195.
  31. Rosiak E. (2014). The domestic market of rapeseed compared to the global market. Zesz. Nauk. SGGW Probl. Roln. Świat., 14: 86–96.10.22630/PRS.2014.14.1.9
  32. Schmitz G., Ecker J. (2008). The opposing effects of n-3 and n-6 fatty acids. Prog. Lipid Res., 47: 147–155.10.1016/j.plipres.2007.12.004
  33. Schöne F., Tischendorf F., Leiterer M., Hartung H., Bargholz J. (2001). Effects of rapeseed-press cake glucosinolates and iodine on the performance, the thyroid gland and the liver vitamin a status of pigs. Arch. Anim. Nutr., 55: 333–350.10.1080/17450390109386201
  34. Seneviratne RW., Young M.G., Beltranena E., Goonewardene L.A., Newkirk R.W., Zijlstra R.T. (2010). The nutritional value of expeller-pressed canola meal for grower-finisher pigs. J. Anim. Sci., 88: 2073–2083.10.2527/jas.2009-2437
  35. Seneviratne R.W., Beltranena E., Newkirk R.W., Goonewardene L.A., Zijlstra E.T. (2011). Processing conditions affect nutrient digestibility of cold-pressed canola cake for grower pigs. J. Anim. Sci., 89: 2452–2461.10.2527/jas.2010-3569
  36. Stein H.H., Lagos L.V., Casas G.A. (2016). Nutritional value of feed ingredients of plant origin fed to pigs. Anim. Feed Sci. Tech., 218: 33–69.10.1016/j.anifeedsci.2016.05.003
  37. Van Soest P.J., Wine R.H. (1967). Use of detergents in the analysis of fibrous feeds. IV. Determination of plant cell wall constituents. J. Assoc. Off. Anal. Chem., 50: 50–55.10.1093/jaoac/50.1.50
  38. Weber M., Stenzel P., Schöne F., Kleine Klausing H. (2006). Zum Einfluss von Rapskuchen (unbehandelt und thermisch behandelt) auf Leistung und Schilddrüsenstatus von Mastschweinen. 9 Tagung Schweine- und Geflügelernährung, 28-30.11.2006. Universitat Halle – Wittenberg, pp. 259–261.
  39. Yun H.M., Lei X.J., Lee S.I., Kim I.H. (2018). Rapeseed meal and canola meal can partially replace soybean meal as a protein source in finishing pigs. J. Appl. Anim. Res., 46: 195–199.10.1080/09712119.2017.1284076
DOI: https://doi.org/10.2478/aoas-2019-0045 | Journal eISSN: 2300-8733 | Journal ISSN: 1642-3402
Language: English
Page range: 1083 - 1097
Submitted on: Nov 16, 2018
Accepted on: Jul 8, 2019
Published on: Oct 30, 2019
Published by: National Research Institute of Animal Production
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2019 Piotr Kaczmarek, Daniel Korniewicz, Krzysztof Lipiński, Magdalena Mazur-Kuśnirek, published by National Research Institute of Animal Production
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.