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Effect of feeding strawberry, raspberry and rapeseed oil in rats’ diet on the fatty acid profile of muscle tissue

Open Access
|Oct 2022

References

  1. AOCS (1997). Official Method Ch 6-91. Determination of the composition of the sterol fraction of animal and vegetable oils and fats by TLC and capillary GLC. In: Methods and recommended practices of the AOCS, Firestone D. (ed). 6th ed. AOCS Press, Champaign, IL, USA, pp. 1–5.
  2. Ayre K.J., Hulbert A.J. (1996). Dietary fatty acid profile influences the composition of skeletal muscle phospholipids in rats. J. Nutr., 126: 653–662.10.1093/jn/126.3.653
  3. Bada J.C., León-Camacho M., Copovi P., Alonso L. (2014). Characterization of berry and currant seed oils from Asturias, Spain. Int. J. Food Prop., 17: 77–85.10.1080/10942912.2011.614369
  4. Barcelo-Coblijn G., Murphy E.J. (2009). Alpha-linolenic acid and its conversion to longer chain n-3 fatty acids: benefits for human health and a role in maintaining tissue n-3 fatty acid levels. Prog. Lipid Res., 48: 355–374.10.1016/j.plipres.2009.07.002
  5. Benatti P., Peluso G., Nicolai R., Calvani M. (2004). Polyunsaturated fatty acids: biochemical, nutritional and epigenetic properties. J. Am. Coll. Nutr., 23: 281–302.10.1080/07315724.2004.10719371
  6. Bere E. (2007). Wild berries: a good source of omega-3. Eur. J. Clin. Nutr., 61: 431–433.10.1038/sj.ejcn.1602512
  7. Czauderna M., Kowalczyk J., Wąsowska I., Niedźwiedzka K.M., Pastuszewska B. (2004). Conjugated linoleic acid (CLA) content and fatty acids composition of muscle in rats fed isomers of CLA and selenium. J. Anim. Feed Sci., 13: 183–196.10.22358/jafs/67402/2004
  8. Enser M., Hallett K.G., Hewett B., Fursey G.A.J., Wood J.D., Harrington G. (1998). Fatty acid content and composition of UK beef and lamb muscle in relation to production system and implications for human nutrition. Meat Sci., 49: 329–341.10.1016/S0309-1740(97)00144-7
  9. Folch J. (1957). A simple method for the isolation and purification of total lipids from animal tissues. J. Biol. Chem., 226: 497–509.10.1016/S0021-9258(18)64849-5
  10. Fotschki B., Jurgoński A., Juśkiewicz J., Zduńczyk Z. (2015). Dietary supplementation with raspberry seed oil modulates liver functions, inflammatory state, and lipid metabolism in rats. J. Nutr., 145: 1793–1799.10.3945/jn.115.212407
  11. Gibbs R.A., Rymer C., Givens D.I. (2010). Postgraduate symposium: long-chain n-3 PUFA intakes in the UK and the potential of a chicken meat prototype to increase them. Proc. Nutr. Soc., 69: 144–155.10.1017/S0029665109991716
  12. Gomez-Candela C., Roldan Puchalt M.C., Palma Milla S., Lopez Plaza B., Bermejo L. (2015). The role of omega-3 fatty acids in diets. J. Am. Coll. Nutr., 34: 42–47.10.1080/07315724.2015.1080111
  13. Gregory M.K., Gibson R.A., Cook-Johnson R.J., Cleland L.G., James M.J. (2011). Elongase reactions as control points in long-chain polyunsaturated fatty acid synthesis. PLoS One, 6 (12): 1–9.10.1371/journal.pone.0029662
  14. Gregory M.K., Geier M.S., Gibson R.A., James M.J. (2013). Functional characterization of the chicken fatty acid elongases. J. Nutr., 143 : 12–16.10.3945/jn.112.170290
  15. Harper C.R., Jacobson T.A. (2001). The fats of life: the role of omega-3 fatty acids in the prevention of coronary heart disease. Arch. Intern. Med., 161: 2185–2192.10.1001/archinte.161.18.2185
  16. Haug A., Nyquist N.F., Mosti T.J., Andersen M., Hostmark A.T. (2012). Increased EPA levels in serum phospholipids of humans after four weeks daily ingestion of one portion chicken fed linseed and rapeseed oil. Lipids Health Dis., 11: 104–115.10.1186/1476-511X-11-104
  17. Inagaki K., Aki T., Fukuda Y., Kawamoto S., Shigeta S., Ono K., Suzuki O. (2002). Identification and expression of a rat fatty acid elongase involved in the biosynthesis of C18 fatty acids. Biosci. Biotechnol. Biochem., 66: 613–621.10.1271/bbb.66.613
  18. Jankowski J., Juśkiewicz J., Zduńczyk P., Kosmala M., Zieliński H., Antoszkiewicz Z., Zduńczyk Z. (2016). Antioxidant status of blood and liver of turkeys fed diets enriched with polyunsaturated fatty acids and fruit pomaces as a source of polyphenols. Pol. J. Vet. Sci., 19: 89–98.10.1515/pjvs-2016-0012
  19. Jurgoński A., Fotschki B., Juśkiewicz J. (2015). Dietary strawberry seed oil affects metabolite formation in the distal intestine and ameliorates lipid metabolism in rats fed an obesogenic diet. Food Nutr. Res., 59: 26104.10.3402/fnr.v59.26104
  20. Jurgoński A., Koza J., Chu D-T., Opyd P.M. (2018). Berry seed oils as potential cardioprotective food supplements. Nutrire, 43: 26.10.1186/s41110-018-0086-x
  21. Juśkiewicz J., Król B., Kosmala M., Milala J., Zduńczyk Z., Żary-Sikorska E. (2015). Physiological properties of dietary ellagitannin-rich preparations obtained from strawberry pomace using different extraction methods. Pol. J. Food Nutr. Sci., 65: 199–209.10.2478/pjfns-2013-0004
  22. Kartikasari L., Hughes R., Geier M., Makrides M., Gibson R. (2012). Dietary alpha-linolenic acid enhances omega-3 long chain polyunsaturated fatty acid levels in chicken tissues. Prostaglandins Leukot. Essent. Fat. Acids, 87: 103–109.10.1016/j.plefa.2012.07.005
  23. Konieczka P., Czauderna M., Rozbicka-Wieczorek A., Smulikowska S. (2015). The effect of dietary fat, vitamin E and selenium concentrations on the fatty acid profile and oxidative stability of frozen stored broiler meat. J. Anim. Feed. Sci., 24: 244–251.10.22358/jafs/65630/2015
  24. Kosmala M., Zduńczyk Z., Kołodzieczyk K., Klimczak E., Juskiewicz J., Zduńczyk P. (2014). Chemical composition of polyphenols extracted from strawberry pomace and their effect on physiological properties of diets supplemented with different types of dietary fibre in rats. Eur. J. Nutr., 53: 521–532.10.1007/s00394-013-0557-z
  25. Kritschevsky D., Chen S.C. (2005). Phytosterols – health benefits and potential concerns: a review. Nutr. Res., 25: 413–428.10.1016/j.nutres.2005.02.003
  26. Leonard A.E., Kelder B., Bobik E.G., Chuang L.T., Lewis C.J., Kopchick J.J., Mukerji P., Huang Y.-S. (2002) Identification and expression of mammalian long-chain PUFA elongation enzymes. Lipids, 37: 733–740.10.1007/s11745-002-0955-612371743
  27. Marciniak-Łukasiak K. (2011). The role and significance of omega 3 fatty acids (in Polish). Żywn. Nauka Technol. Jakość, 6: 24–35.10.15193/zntj/2011/79/024-035
  28. Materac E., Marczyński Z., Bodek K. (2013). The role of long-chain fatty acids omega-3 and omega-6 in human body (in Polish). Bromat. Chem. Toksykol, 2: 225–233.
  29. Michalak M., Kiełtyka-Dadasiewicz A. (2018). Oils from fruit seeds and their dietetic and cosmetic significance. Herba Pol., 64: 63–70.10.2478/hepo-2018-0026
  30. Mikołajczak N. (2018). Fatty acids composition of selected plant oils obtained from seeds and stones of fruits and their impact on human health. J. Educ. Health Sport, 8: 1117–1132.
  31. Milicevic D., Vranic D., Masic Z., Parunovic N., Trbovic D., Nedeljkovic-Trailovic J.N., Petrovic Z. (2014). The role of total fats, saturated/unsaturated fatty acids and cholesterol content in chicken meat as cardiovascular risk factors. Lipids Health Dis., 13: 42–53.10.1186/1476-511X-13-42
  32. Morais S., Monroig O., Zheng X., Leaver M.J., Tocher D.R. (2009). Highly unsaturated fatty acid synthesis in Atlantic salmon: characterization of ELOVL5- and ELOVL2-like elongases. Mar. Biotechnol. (NY), 11: 627–639.10.1007/s10126-009-9179-0
  33. Nawar W.W. (1996). Chemistry. In: Bailey’s Industrial Oil & Fat products, Y.H. Hui (ed.). John Wiley & Sons, Inc., New York, Chichester, Brisbane, Toronto, Singapore, pp. 397–426.
  34. Oomah B.D., Ladet S., Godfrey D.V., Liang J., Girard B. (2000). Characteristics of raspberry (Rubus idaeus L. ) seed oil. Food Chem., 69: 187–193.10.1016/S0308-8146(99)00260-5
  35. Panfili G., Fratianni A., Irano M. (2003). Normal phase high-performance liquid chromatography method for the determination of tocopherols and tocotrienols in cereals. J. Agric. Food Chem., 51: 3940–3944.10.1021/jf030009v
  36. Parry J.W., Yu L. (2004). Fatty acid content and antioxidant properties of cold-pressed black raspberry seed oil and meal. J. Food Sci., 69: 189–193.10.1111/j.1365-2621.2004.tb13356.x
  37. Parry J., Su L., Luther M., Zhou K., Yurawecz M.P., Whittaker P., Yo L. (2005). Fatty acid composition and antioxidant properties of cold-pressed marionberry, boysenberry, red raspberry and blueberry seed oils. J. Agric. Food Chem., 53: 566–573.10.1021/jf048615t
  38. Pieszka M., Tombarkiewicz B., Roman A., Migdał W., Niedziółka J. (2013). Effect of bioactive substances found in rapeseed, raspberry and strawberry seed oils on blood lipid profile and selected parameters of oxidative status in rats. Environ. Toxicol. Pharmacol., 36: 1055–1062.10.1016/j.etap.2013.09.007
  39. Poli A., Marangoni F., Corsini A., Manzato E., Marrocco W., Martini D., Medea G., Visioli F. (2021). Phytosterols, cholesterol control, and cardiovascular disease. Nutrients, 13: 2810.10.3390/nu13082810
  40. Rudzińska M., Kazuś T., Wąsowicz E. (2001). Sterols and their oxidized derivatives in refined and cold-pressed oils (in Polish). Rośliny Oleiste, 22: 477–494.
  41. Simopoulos A.P. (2010). The omega-6/omega-3 fatty acid ratio: Health implications. Oléagineux Corps Gras Lipides, 17: 267–275.10.1051/ocl.2010.0325
  42. Stepien A., Wojtkowiak K., Pietrzak-Fiecko R. (2017). Nutrient content, fat yield and fatty acid profile of winter rapeseed (Brassica napus L.) grown under different agricultural production systems. Chil. J. Agric. Res., 77: 266–272.10.4067/S0718-58392017000300266
  43. Tuberoso C.I.G., Kowalczyk A., Sarritzu E., Cabras P. (2007). Determination of antioxidant compounds and antioxidant activity in commercial oilseeds for food use. Food Chem., 103: 1494–1501.10.1016/j.foodchem.2006.08.014
  44. Van Hoed V., De Clercq N., Echim C., Andjelkovic M., Leber E., Dewettinck K., Verhé R. (2009). Berry seeds: a source of specialty oils with high content of bioactives and nutritional value. J. Food Lipids, 16: 33–49.10.1111/j.1745-4522.2009.01130.x
  45. Van Hoed V., Barbouche I., De Clercq N., Dewettinck K., Slah M., Leber E., Verhé R. (2011). Influence of filtering of cold pressed berry seed oils on their antioxidant profile and quality characteristics. Food Chem., 127: 1848–1855.10.1016/j.foodchem.2011.01.134
  46. Vehovský K., Stupka R., Zadinová K., Šprysl M., Okrouhlá M., Lebedová N., Mlynekova E., Čítek J. (2019). Effect of dietary rapeseed and soybean oil on growth performance, carcass traits, and fatty acid composition of pigs. Rev. Bras. Zootec., 48: e20180131.10.1590/rbz4820180131
  47. Verleyen T., Forcades M., Verhe R., Dewettinck K., Huyghebaert A., De Greyt W. (2002). Analysis of free and esterified sterols in vegetable oils. JAOCS, 79: 117–122.10.1007/s11746-002-0444-3
  48. Wood J.D., Richardson R.I,, Nute G.R., Kasapidou E., Sheard P.R., Enser M. (2003). Effects of fatty acids on meat quality: A review. Meat Sci., 66: 21–23.10.1016/S0309-1740(03)00022-6
  49. Zhang W., Xiao S., Samaraweera H., Lee E.J., Ahn D.U. (2010). Improving functional value of meat products. Meat Sci., 86: 15–31.10.1016/j.meatsci.2010.04.018
  50. Zheng X., Ding Z., Xu Y., Monroig O., Morais S., Tocher D.R. (2009). Physiological roles of fatty acyl desaturases and elongases in marinefish: characterisation of cDNAs of fatty acid Δ6 desaturase and elovl5 elongase of cobia (Rachycentron canadum). Aquaculture, 290: 122–131.10.1016/j.aquaculture.2009.02.010
DOI: https://doi.org/10.2478/aoas-2022-0048 | Journal eISSN: 2300-8733 | Journal ISSN: 1642-3402
Language: English
Page range: 1385 - 1391
Submitted on: Mar 18, 2021
Accepted on: Jun 9, 2022
Published on: Oct 29, 2022
Published by: National Research Institute of Animal Production
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2022 Paulina Szczurek-Janicka, Magdalena Pieszka, Łukasz Migdał, Sylwia Orczewska-Dudek, Barbara Tombarkiewicz, Adam Roman, Władysław Migdał, Magdalena Rudzińska, Marek Pieszka, published by National Research Institute of Animal Production
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.