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Research Article

The effect of dietary hemp and camelina cakes on liver fatty acid profile of ducks

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Pages 152-160 | Received 25 May 2021, Accepted 15 Feb 2022, Published online: 01 Mar 2022

References

  • Acamovic T, Gilbert K, Lamb K, Walker KC. 1999. Nutritive value of Camelina sativa meal for poultry. Br Poult Sci. 40:S27–S41.
  • Ajuyah AO, Hardin RT, Sim JS. 1993. Studies on canola seed in Turkey grower diet: effects on ώ-3 fatty acid composition of breast meat, breast skin and selected organs. Can J Anim Sci. 73:177–181.
  • AOAC. 1990. Official methods of analysis. Washington, DC: AOAC.
  • Association of Poultry Processors and Poultry Trade in the EU Countries ASBL. 2019. AVEC annual report. Accessed 15 April 2021. https://www.avec-poultry.eu/wp-content/uploads/2019/10/05494-AVEC-annual-report-2019.pdf.
  • Aziza AE, Awadin WF, Quezada N, Cherian G. 2014. Gastrointestinal morphology, fatty acid profile, and production performance of broiler chicken fed camelina meal or fish oil. Eur J Lipid Sci Technol. 116:1727–1733.
  • Aziza AE, Quezada N, Cherian G. 2010. Feeding Camelina sativa meal to meat-type chickens: effect on production performance and tissue fatty acid composition. J App Poult Res. 19:157–168.
  • Bacenetti J, Restuccia A, Schillaci G, Failla S. 2017. Biodiesel production from unconventional oilseed crops (Linum usitatissimum L. and Camelina sativa L.) in Mediterranean conditions: environmental sustainability assessment. Renew Energy. 112:444–456.
  • Barth F, Rinaldi-Carmonia M. 2005. Cannabinoids in appetite and obesity. In: Mechoulam R, editor. Cannabinoids as therapeutics. Basel: Birkhäuserv Verlag; p. 219.
  • Berry EM, Mechoulam R. 2002. Tetrahydrocannabinol and endocannabinoids in feeding and appetite. Pharmacol Ther. 95:185–190.
  • Buckiuniene V, Gruzauskas R, Kliseviciute V, Raceviciute-Stupeliene A, Svirmickas G, Bliznikas S, Miezeliene A, Alencikiene G, Grashorn MA. 2016. Effect of organic and inorganic iron on iron content, fatty acid profile, content of malondialdehyde, texture and sensory properties of broiler meat. Europ Poult Sci. 80:1–14.
  • Bulbul T, Rahman A, Ozdemir V. 2015. Effect of false flax meal on certain growth, serum and meat parameters of Japanese quails. J Anim Plant Sci. 25(5):1245–1250.
  • Callaway JC. 2004. Hempseed as a nutritional resource: an overview. Euphytica. 140:65–72.
  • Chen W, Zhao R, Yan BX, Zhang JS, Huang YQ, Wang ZX, Guo YM. 2014. Effects of the replacement of corn oil with linseed oil on fatty acid composition and the expression of lipogenic genes in broiler chickens. Czech J Anim Sci. 59:353–364.
  • Chen X, Du X, Shen J, Lu L, Wang W. 2017. Effect of various dietary fats on fatty acid profile in duck liver: efficient conversion of short-chain to long-chain omega-3 fatty acids. Exp Biol Med. 242:80–87.
  • Ciurescu G, Hebean V, Tamas V, Burcea D. 2007. Use of dietary Camelina (Camelina sativa) seeds during the finishing period: effects on broiler performance and on the organoleptic traits of broiler meat. Anim Sci Biotechnol. 40(1):410–417.
  • Ciurescu G, Ropota M, Toncea I, Habeanu M. 2016. Camelina (Camelina sativa L. Crantz variety) oil and seeds as n-3 fatty acids rich products in broiler diets and its effects on performance, meat fatty acid composition, immune tissue weights, and plasma metabolic profile. J Agr Sci Tech 18(2):315–326.
  • Da Porto C, Decorti D, Tubaro F. 2012. Fatty acid composition and oxidation stability of hemp (Cannabis sativa L.) seed oil extracted by supercritical carbon dioxide. Ind Crops Prod. 36:401–404.
  • Della Rocca G, Di Salvo A. 2020. Hemp in veterinary medicine: from feed to drug. Front Vet Sci. 7:387.
  • De Smet S, Vossen E. 2016. Meat: the balance between nutrition and health. A review. Meat Sci. 120:145–156.
  • EU Regulation. 2010. No 116/2010 of 9 February 2010 amending regulation No1924/2006 of the European parliament and of the council with regard to the list of nutrition claims. Off J Eur Union L. 37:16–18.
  • European Food Safety Authority (EFSA). 2009. Labelling reference intake values for n-3 and n-6 polyunsaturated fatty acids. EFSA Journal. 1176:1–11.
  • European Parliament and the Council. 2010. Directive 2010/63/EU. The protection of animals used for scientific purposes. Official Journal of the European Union L 276/78.
  • FAO. 2018. Livestock primary, production quantity, duck meat. Accessed 7 April 2021. http://www.fao.org/faostat/en/#data/QL.
  • Fernández M, Ordonez JA, Cambero I, Santos C, Pin C, de la Hoz L. 2007. Fatty acid compositions of selected varieties of Spanish ham related to their nutritional implications. Food Chem. 101:107–112.
  • Folch J, Lees M, Sloane-Stanley GH. 1957. A simple method for the isolation and purification of total lipids from animal tissues. J Biol Chem. 226(1):497–509.
  • Frame DD, Palmer M, Peterso B. 2007. Use of Camelina sativa in the diets of young turkeys. J Appl Poult Res. 16(3):381–386.
  • González-Esquerra R, Leeson S. 2001. Alternatives for enrichment of eggs and chicken meat with omega-3 fatty acids. Can J Anim Sci. 81:295–305.
  • Gregory MK, James MJ. 2014. Functional characterization of the duck and Turkey fatty acyl elongase enzymes ELOVL5 and ELOVL2. J Nutr. 144:1234–1239.
  • Holman RT. 1998. The slow discovery of the importance of ώ3 essential fatty acids in human health. J Nutr. 128(2):427S–433S.
  • Jing M, Gakhar N, Gibson RA, House JD. 2013. Dietary and ontogenic regulation of fatty acid desaturase and elongase expression in broiler chickens. Prostaglandins Leukot Essen Fatty Acids. 89:107–113.
  • Jing M, Zhao S, House JD. 2017. Performance and tissue fatty acid profile of broiler chickens and laying hens fed hemp oil and HempOmegaTM. Poult Sci. 96:1809–1819.
  • Juodka R, Juska R, Juskiene V, Leikus R, Stankeviciene D, Nainiene R. 2018. The effect of feeding with hemp and Camelina cakes on the fatty acid profile of duck muscles. Arch Anim Breed. 61:293–303.
  • Khan RU, Durrani FR, Chand N, Anwar H. 2010. Influence of feed supplementation with Cannabis sativa on quality of broiler carcass. Pak Vet J. 30:34–38.
  • Kicińska A, Glichowska P, Mamak M. 2019. Micro- and macroelement contents in the liver of farm and wild animals and the health risks involved in liver consumption. Environ Monit Assess. 191:132.
  • Konieczka P, Czauderna M, Smulikowska S. 2017. The enrichment of chicken meat with omega-3 fatty acids by dietary fish oil or its mixture with rapeseed or flaxseed – effect of feeding duration: dietary fish oil, flaxseed, and rapeseed and n-3 enriched broiler meat. Anim Feed Sci Technol. 223:42–52.
  • Leclere M, Jueffroy M-H, Butier A, Chatain C, Loyce C. 2019. Controlling weeds in Camelina with innovative herbicide-free crop management routes across various environments. Ind Crops Prod. 140:111605.
  • López-Ferrer S, Baucells MD, Barroeta AC, Galobart J, Grashorn MA. 2001a. n-3 enrichment of chicken meat. 2. Use of precursors of long-chain polyunsaturated fatty acids: linseed oil. Poult Sci 80:753–761.
  • López-Ferrer S, Baucells MD, Barroeta AC, Grashorn MA. 2001b. n-3 enrichment of chicken meat 1. Use of very long-chain fatty acids in chicken diets and their influence on meat quality: fish oil. Poult Sci. 80:741–752.
  • Lukashenko VS, Lisenko MA, Stoliar TA. 1984. Methodological recommendation of anatomic carcass dissection and organoleptic evaluation of poultry. VASCHNIL, Moscow (in Russian).
  • Matthäus B. 1997. Antinutritive compounds in different oilseeds. Lipid Fett. 99:170–174.
  • Matthäus B, Zubr J. 2000. Variability of specific components in Camelina sativa oilseed cakes. Ind Crops Prod. 12:9–18.
  • Mattila PH, Pihlava JM, Hellström J, Nurmi M, Eurola M, Mäkinen S, Jalava T, Pihlanto A. 2018. Content of phytochemicals and antinutritional factors in commercial protein-rich plant products. FQS. 2(4):213–219.
  • Mierlita D. 2018. Effects of diets containing hemp seeds or hemp cake on fatty acid composition and oxidative stability of sheep milk. S Afr J Anim Sci. 48:504–515.
  • Mohammed YA, Chen C, Afshar RK. 2017. Nutrient requirements of Camelina for biodiesel feedstock in Central Montana. Agron J. 109(1):309–316.
  • Nain S, Oryschak MA, Betti M, Beltranena E. 2015. Camelina sativa cake for broilers: effects of increasing dietary inclusion from 0 to 24% on tissue fatty acid proportions at 14, 28, and 42 d of age. Poult Sci 94:1247–1258.
  • Orczewska-Dudek S, Pietras M. 2019. The effect of dietary Camelina sativa oil or cake in the diets of broiler chickens on growth performance, fatty acid profile, and sensory quality of meat. Animals. 9:734.
  • Palmquist DL. 2009. Omega-3 fatty acids in metabolism, health, and nutrition and for modified animal product foods. Prof Anim Sci. 25(3):207–249.
  • Pekel AY, Kim JL, Chapple C, Adeola O. 2015. Nutritional characteristics of camelina meal for 3 week-old broiler chickens. Poult Sci. 94:371–378.
  • Pekel AY, Patterson PH, Hulet RM, Acar N, Cravener TL, Dowler DB, Hunter JM. 2009. Dietary camelina meal versus flaxseed with and without supplemental copper for broiler chickens: Live performance and processing yield. Poultry Science. 88(11):2392–2398. https://doi.org/10.3382/ps.2009-00051
  • Pietras MP, Orczewska-Dudek S. 2013. The effect of dietary camelina sativa oil on quality of broiler chicken meat. Ann Anim Sci. 13:869–882.
  • Poureslami R, Raes K, Turchini GM, Huyghebaert G, De Smet S. 2010. Effect of diet, sex and age on fatty acid metabolism in broiler chickens: n-3 and n-6 PUFA. Br J Nutr. 104:189–197.
  • Russo R, Galasso I, Reggiani R. 2014. Variability in glucosinolate content among camelina species. Am J Plant Sci. 5:294–298.
  • Russo R, Reggiani R. 2015. Evaluation of protein concentration, amino acid profile and antinutritional compounds in hempseed meal from dioecious and monoecious varieties. Am J Plant Sci. 6:14–22.
  • Ryhänen EL, Pertilä S, Tupasela T, Valaja J, Eriksson C, Larkka K. 2007. Effect of Camelina sativa expeller cake on performance and meat quality of broilers. J Sci Food Agric. 87:1489–1494.
  • Rymer C, Gibbs RA, Givens DI. 2010. Comparison of algal and fish sources on the oxidative stability of poultry meat and its enrichment with omega-3 polyunsaturated fatty acids. Poult Sci. 89:150–159.
  • Scans CG, Christensen KD. 2020. Poultry Science. Long Grove, IL: Waveland Press.
  • Seimas of the Republic of Lithuania. 2012. The provisions of the Republic of Lithuania (2012-10-03) for animal welfare and handling. Law No. XI-2271, No. 108-2728, State News, No. 122-6126, Vilnius, Lithuania (in Lithuanian).
  • Sirri F, Minelli G, Iaffaldano N, Tallarico N, Franchini A. 2003. Oxidative stability and quality traits of n-3 PUFA enriched chicken meat. Ital J Anim Sci. 2(Suppl. 1):450–452.
  • Skřivan M, Englmaierová M, Taubner T, Skrivanová E. 2020. Effects of dietary hempseed and flaxseed on growth performance, meat fatty acid compositions, liver tocopherol concentration and bone strength of cockerels. Animals. 10:458.
  • Soriano J. 2010. Chemical composition and nutritional content of raw poultry meat. In: Guerrero-Legarreta I., Hui Y.H., editor. Handbook of poultry science and technology, volume 1: primary processing. Hoboken, NJ: John Wiley & Sons Inc; p. 467–489.
  • Stastník O, Juzl M, Karasek F, Fernandova D, Mrkvicova E, Pavlata L, Nedomova S, Vyhnanek T, Trojan V, Dolezal P. 2019. The effect of hempseed expellers on selected quality indicators of broiler chicken’s meat. Acta Vet Brno. 88:121–128.
  • State Food and Veterinary Service. 2012. Sub-statutory act by the State Food and Veterinary Service of Lithuanian Republic regarding the confirmation of the requirements for keeping, maintenance and use of animals intended for science and education purposes, State News, No. 130-6595, Vilnius, Lithuania (in Lithuanian).
  • StatSoft Inc. 2006. STATISTICA (data analysis software system), Version 7.0. Tulsa: StatSoft Inc.
  • Thacker P, Widyaratne G. 2012. Effects of expeller pressed camelina meal and/or canola meal on digestibility, performance and fatty acid composition of broiler chickens fed wheat-soybean meal-based diets. Anim Nutr. 66:402–415.
  • Toldra F, Mora L, Reig M. 2016. New insights into meat by-product utilization. Meat Sci. 120:54–59.
  • Tripathi MK, Mishra AS. 2007. Glucosinolates in animal nutrition: a review. Anim Feed Sci Technol. 132:1–27.
  • Ulbricht TLV, Southgate DAT. 1991. Coronary heart disease: seven dietary factors. Lancet. 338:985–992.
  • Villaverde C, Baucells MD, Cortinas L, Barroeta AC. 2006. Effects of dietary concentration and degree of polyunsaturation of dietary fat on endogenous synthesis and deposition of fatty acids in chickens. Br Poult Sci. 47:173–179.
  • Wang Y, Botolin D, Christian B, Busik J, Xu J, Jump DB. 2005. Tissue-specific, nutritional, and developmental regulation of rat fatty acid elongases. J Lipid Res. 46:706–715.
  • Wild C. 2019. Performance of current Peking duck breeds. Lohmann Inform. 53(2):28–32.
  • Wood JD, Enser M. 1997. Factors influencing fatty acids in meat and the role of antioxidants in improving meat quality. Br J Nutr. 78:49–60.
  • Wood JD, Enser M, Fisher AV, Nute GR, Sheard PR, Richardson RI, Hughes SI, Whittington FM. 2008. Fat deposition, fatty acid composition and meat quality: a review. Meat Sci. 78(4):343–358.
  • Woyengo TA, Beltranena E, Zijlstra RT. 2017. Effect of anti-nutritional factors of oilseed co-product on feed intake of pigs and poultry. Anim Feed Sci Technol. 233:76–86.
  • Wu L, Guo X, Fang Y. 2012. Effect of diet dilution ratio at early age on growth performance, carcass characteristics and hepatic lipogenesis of pekin ducks. Rev Bras Cienc Avic. 14:43–49.