The effect of feed restriction on the fat profile of Santa Inês lamb meat
Resumo
Consumers today are increasingly more demanding regarding their food, seeking healthier and better quality products, and in this context animal nutrition plays a key role. The meat composition can be altered by animal feed itself, being that lipid profile may directly contribute to consumer health, reducing the predisposition of developing cardiovascular diseases, main cause of mortality in the world. Thus, the aim of this study was to assess the effect of dietary feed restriction in Santa Inês lambs on their intramuscular, intermuscular, and subcutaneous fat profile, fat profile of the longissimus thoracis et lumborum (LTL) muscle, and the total meat lipids and cholesterol. Three groups of lambs were subjected to diets: without restriction (WR), and 30 and 60% feed restriction. Overall, stearic, palmitic, and oleic acids were the predominant and the lowest lipid and cholesterol levels were observed at the highest restriction level, presenting higher polyunsaturated:saturated (PUFA:SFA) and desirable (DFA) fatty acid ratios (p < 0.05). Lambs subjected to 60% dietary feed restriction had a better quality meat with lower lipid and cholesterol contents, and profile favorable for human health due the presence of unsaturated fatty acids, that is important parameter the market demands to meet the consumers’ expectations.
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Aguiar, A. C. R., Rocha Júnior, V. R., Caldeira, L. A., Ruas, J. R. M., de Almeida Filho, S. H. C., Monção, F. P., ... Pimentel, P. R. S. (2017). Quality of Minas fresh cheese made with milk from F1 Holstein/Zebu cows fed diets with different sources of nitrogen compounds. Arquivos do Instituto Biológico, 84, e0192015. doi: 10.1590/1808-1657000192015
Alves, L. G. C., Fernandes, A. R. M., Osório, J. C. S., Osório, M. T. M., Nubiato, K. E. Z., Cunha, C. M., ... Neto, A. P. C. (2012). Composição de ácidos graxos na carne de cordeiro em confinamento. Pubvet, 6(32), 1455-1459. doi: 10.22256/pubvet.v6n32.1455
Andreo, N., Bridi, A. M., Soares, A. L., Prohmann, P. E. F., Peres, L. M., Tarsitano, M. A., ... Takabayashi, A. A. (2016). Fatty acid profile of beef from immunocastrated (BOPRIVA®). Meat Science, 117, 12-17. doi: 10.1016/j.meatsci.2016.02.029
Arruda, P. C. L., Pereira, E. S., Pimentel P. G., Bomfim M. A. D., Mizubuti, I. Y., Ribeiro E. L. A., ... Regadas Filho, J. G. L. (2012). Perfil de ácidos graxos no Longissimus dorsi de cordeiro Santa Inês alimentado com diferentes níveis energéticos. Semina: Ciências Agrárias, 33(3), 1229-1240. doI: 10.5433/1679-0359.2012v33n3p1229
Banskalieva, V., Sahlu, T., & Goetsch, A. L. (2000). Fatty acid composition of goat muscles and fat depots: a review. Small Ruminant Research, 37(3), 255-268. doi: 10.1016/S0921-4488(00)00128-0
Berrighi, N., Belkacemi, L., Bouderoua, K., Santaella, M., Ros, G., & Nieto, G. (2017). Fatty acids composition and sensory properties of lamb meat fed on steppe and highland pastures. Asian Journal of Animal Sciences, 11(2), 88-95. doi: 10.3923/ajas.2017.88.95
Bragagnolo, N., & Rodriguez-Amaya, D. B. (1997). Otimização da determinação de colesterol por CLAE e teores de colesterol, lipídios totais e ácidos graxos em camarão rosa (Penaeus brasiliensis). Food Science and Technology, 17(3), 275-280. doi: 10.1590/S0101-20611997000300016
Brito, G. F., Ponnampalam, E. N., & Hopkins, D. L. (2016). The Effect of extensive feeding systems on growth rate, carcass traits, and meat quality of finishing lambs. Comprehensive Reviews in Food Science and Food Safety, 16(1), 23-38. doi: 10.1111/1541-4337.12230
Buccioni, A., Decandia, M., Minieri, S., Molle, G., & Cabiddu, A. (2012). Lipid metabolism in the rumen: New insights on lipolysis and biohydrogenation with an emphasis on the role of endogenous plant factors. Animal Feed Science and Technology, 174(1-2), 1-25. doi: 10.1016/j.anifeedsci.2012.02.009
Christophersen, O. A., & Haug, A. (2011). Animal products, diseases and drugs: a plea for better integration between agricultural sciences, human nutrition and human pharmacology. Lipids in Health and Disease, 10(16), 1-38. doi: 10.1186/1476-511X-10-16
Costa, A. S. H., Costa, P., Alves, S. P., Alfaia, C. M., Prates, J. A. M., Vleck, V., ... Bessa, R. J. B. (2018). Does growth path influence beef lipid deposition and fatty acid composition?. PLoS ONE, 13(8), e0193875. doi: 10.1371/journal.pone.0201997
Costa, R. G., Batista, A. S. M., Azevedo, P. S., Queiroga, R. C. R. E., Madruga, M.S., & Araújo Filho, J. T. (2009). Lipid profile of lamb meat from different genotypes submitted to diets with different energy levels. Revista Brasileira de Zootecnia, 38(3), 532-538. doi: 10.1590/S1516-35982009000300019
den Hartigh, L. J. (2019). Conjugated linoleic acid effects on cancer, obesity, and atherosclerosis: a review of pre-clinical and human trials with current perspectives. Nutrients, 11(2), 370. doi: 10.3390/nu11020370
Dewanckele, L. Vlaeminck, B., Hernandez-Sanabria, E., Ruiz-González, A., Debruyne, S., Jeyanathan, J., & Fievez, V. (2018). Rumen biohydrogenation and microbial community changes upon early life supplementation of 22:6n-3 enriched microalgae to goats. Frontiers in Microbiology, 9, 573. doi: 10.3389/fmicb.2018.00573
Ferguson, L. R. (2010). Meat and cancer. Meat Science, 84(2), 308-313. doi: 10.1016/j.meatsci.2009.06.032
Fernandes, R. P. P., Trindade, M. A., Lorenzo, J. M., & de Melo, M. P. (2018). Assessment of the stability of sheep sausages with the addition of different concentrations of Origanum vulgare extract during storage. Meat Science, 137, 244-257. doi: 10.1016/j.meatsci.2017.11.018
Folch, J., Lees, M., & Sloane Stanley, G. H. (1957). Simple method for the isolation and purification of total lipids from animal tissues. The Journal of Biological Chemistry, 226(1), 497-509.
Hajji, H., Joy, M., Ripoll, G., Smeti, S., Mekki, I., Molino Gahete, F., Mahouachi, M., & Atti, N. (2016). Meat physicochemical properties, fatty acid profile, lipid oxidation and sensory characteristics from three North African lamb breeds, as influenced by concentrate or pasture finishing diets. Journal of Food Composition and Analysis, 48, 102-110. doi: 10.1017/S1751731118000071
Hausman, G. J., Bergen, W. G., Etherton, T. D., & Smith, S. B. (2018). The history of adipocyte and adipose tissue research in meat animals. Journal Animal Science, 96(2), 473-486. doi: 10.1093/jas/skx050
Irshad, A., Kandeepan, G., Kumar, S., Ashish, K. A., Vishnuraj, M. R., & Shukla V. (2012). Factors influencing carcass composition of livestock: A review. Journal of Animal Production Advances, 3(5): 177-186. doi: 10.5455/japa.20130531093231
Kaić, A., & Mioč, B. (2016). Fat tissue and fatty acid composition in lamb meat. Journal of Central European Agriculture, 17(3), 856-873. doi: 10.5513/JCEA01/17.3.1783
Komprda, T., Kuchtík, J., Jarošová, A., Dračková, E., Zemánek, L., & Filipčík, B. (2012). Meat quality characteristics of lambs of three organically raised breeds. Meat Science, 91(4), 499-505. doi: 10.1016/j.meatsci.2012.03.004
Leão, A. G., Silva Sobrinho, A. G., Moreno, G. M. B., Souza, H. B. A., Perez, H. L., & Loureiro, C. M. B. (2011). Características nutricionais da carne de cordeiros terminados com dietas contendo cana-de-açúcar ou silagem de milho e dois níveis de concentrado. Revista Brasileira de Zootecnia, 40(5), 1072-1079. doi: 10.17523/bia.v72n1p1
Lopes, L. S., Ladeira, M. M., Machado Neto, O. R., Ramos, E. M., Paulino, P. V., Chizzotti, R. M., & Guerreiro, L. M. C. (2012). Composição química e de ácidos graxos do músculo longissimus dorsi e da gordura subcutânea de tourinhos Red Norte e Nelore. Revista Brasileira de Zootecnia, 41(4), 978-985. doi: 10.1590/S1516-35982012000400020
Lopez-Huertas, E. Health effects of oleic acid and long chain omega-3 fatty acids (EPA and DHA) enriched milks. A review of intervention studies (2010). Pharmacological Research, 61(3), 200-207. doi: 10.1016/j.phrs.2009.10.007
Lourenço, M., Ramos-Morales. E., & Wallace, R. J. (2010). The role of microbes in rumen lipolysis and biohydrogenation and their manipulation. Animal, 4(7), 1008-1023. doi: 10.1017/S175173111000042X
Madruga, M. S., De Araújo, W. O., De Sousa, W. H., Cézar, M. F., Galvão, M. S., & Cunha, M. G. G. (2006). Efeito do genótipo e do sexo sobre a composição química e o perfil de ácidos graxos da carne de cordeiros. Revista Brasileira de Zootecnia, 35(4), 1838-1844. doi: 10.1590/S1516-35982006000600035
Madruga, M. S., Sousa, W. H., Rosales, M. D., Cunha, M. G. G., & Ramos, J. L. F. (2005). Qualidade da carne de cordeiros Santa Inês terminados com diferentes dietas. Revista Brasileira de Zootecnia, 34(1), 309-315. doi: 10.1590/S1516-35982005000100035
Monroig, Ó., & Kabeya, N. Desaturases and elongases involved in polyunsaturated fatty acid biosynthesis in aquatic invertebrates: a comprehensive review. (2018). Fisheries Science, 84(6), 911-928. doi: 10.1007/s12562-018-1254-x
Mushi, D. E., Thomassen, M. S., Kifaro, G. C., & Eik, L. O. (2010). Fatty acid composition of minced meat, longissimus muscle and omental fat from Small East African goats finished on different levels of concentrate supplementation. Meat Science, 86(2), 337-342. doi: 10.1016/j.meatsci.2010.05.006
National Research Council [NRC]. (2007). Nutrient Requirements of Small Ruminants: Sheep, Goats, Cervids, and New World Camelids. Washington, DC: The National Academies Press.
Nieto, G., & Ros, G. (2012). Modification of Fatty Acid Composition in Meat Through Diet: Effect on Lipid Peroxidation and Relationship to Nutritional Quality – A Review. London, UK: IntechOpen.
Oliveira, E. A., Sampaio, A. A. M., Henrique, W., Pivaro, T. M., Rosa, B. L., Fernandes, A. R. M., & Andrade, A. T. (2012). Quality traits and lipid composition of meat from Nellore young bulls fed with different oils either protected or unprotected from rumen degradation. Meat Science, 90(1), 28-35. doi: 10.1016/j.meatsci.2011.05.024
Park, S. J., Beak, S.-H., Jung, D. J. S., Kim, S. Y., Jeong, I. H., Piao, M. Y., … Baik, M. (2018). Genetic, management, and nutritional factors affecting intramuscular fat deposition in beef cattle — A review. Asian-Australasian Journal of Animal Sciences, 31(7), 1043-1061. doi: 10.5713/ajas.18.0310
Paulino, P. V. R., Valadares Filho, S. C., Detmann, E., Valadares, R. F. D., Fonseca, M. A., & Marcondes, M. I. (2009). Deposição de tecidos e componentes químicos corporais em bovinos Nelore de diferentes classes sexuais. Revista Brasileira de Zootecnia, 38(12), 2516-2524. doi: 10.1590/S1516-35982009001200030
Pizzini, A., Lunger, L., Demetz, E., Hilbe, R., Weiss, G., Ebenbichler, C., & Tancevski, I. (2017). The role of omega-3 fatty acids in reverse cholesterol transport: A review. Nutrients, 9(10), 1099. doi: 10.3390/nu9101099
Rodrigues, G. H., Susin, I., Pires, A. V., Alencar, S. M., Mendes, C. Q., & Gentil, R. S. (2010). Perfil de ácidos graxos e composição química do músculo Longissimus dorsi de cordeiros alimentados com dietas contendo polpa cítrica. Revista Brasileira de Zootecnia, 39(6), 1346-1352. doi: 10.1590/S1516-35982010000600025
Romero-Bernal, J., Almaraz, E. M., Ortega, O., Salas, N. P., & González-Ronquillo, M. (2017). Chemical composition and fatty acid profile in meat from grazing lamb diets supplemented with ryegrass hay, fishmeal and soya bean meal as PUFA sources. Ciência Rural, 47(4), e20160533. doi: 10.1590/0103-8478cr20160533
Santos, R. D., Gagliardi, A. C. M., Xavier, H. T., Magnoni, C. D., Cassani, R., & Lottenberg, A. M. (2013). Sociedade Brasileira de Cardiologia. I diretriz sobre o consumo de gorduras e saúde cardiovascular. Arquivos Brasileiros De Cardiologia, 100(1), 1-4. doi: 10.1590/S0066-782X2013000900001
Siri-Tarino, P. W., Chiu, S., Bergeron, N., & Krauss, R. M. (2015). Saturated Fats Versus Polyunsaturated Fats Versus Carbohydrates for Cardiovascular Disease Prevention and Treatment. Annual Review of Nutrition, 35, 517-543. doi: 10.1146/annurev-nutr-071714-034449
Statistical Analysis System [SAS]. (2011). SAS/STAT Software - version 9.3. Cary, NC: SAS Institute Inc.
Sokoła-Wysoczanska, E., Wysoczanski, T., Wagner, J., Katarzyna, C., Bodkowski, R., Lochynski, S., & Patkowska-Sokoła, B. (2018). Polyunsaturated fatty acids and their potential therapeutic role in cardiovascular system disorders: A review. Nutrients, 10(10), 1561. doi: 10.3390/nu10101561
Terré, M., Nudda, A., Boe, F., Gaias, G., & Bach, A. (2011). Performance, immune response and fatty acid profile in lambs supplemented with a CLA-mixture. Animal Feed Science Technology, 165(1), 1-7. doi: 10.1016/j.anifeedsci.2010.10.014
Tran, L. V., Malla, B. A., Kumar, S., & Tyagi, A. K. (2017). Polyunsaturated fatty acids in male ruminant reproduction: A review. Journal of Animal Science, 30(5), 622–637. doi: 10.5713/ajas.15.1034
Vainionpää, J., Kervinen, R., Prado, M., Laurila, E., Kari, M., Mustonen, L., & Ahvenainen, R. (2000). Exploration of storage and process tolerance of different potato cultivars using principal component and canonical correlation analyses. Journal of Food Engineering, 44(1), 47-61. doi: 10.1016/S0260-8774(99)00164-8
Wang, Z., Chen, Y., Luo, H., Liu, X., & Liu, K. J. (2015). Influence of restricted grazing time systems on productive performance and fatty acid composition of longissimus dorsi in growing lambs. Animal Science, 28(8), 1105-1115. doi: 10.5713/ajas.14.0937
Wilches, D., Rovira, J., Jaime, I., Palacios, C., Lurueña-Martínez, M. A., Vivar-Quintana, A. M., & Revilla, I. (2011). Evaluation of the effect of a maternal rearing system on the odour profile of meat from suckling lamb. Meat Science, 88(3), 415-423. doi: 10.1016/j.meatsci.2011.01.020
Yáñez, E. A., Resende, K. T., Ferreira, A. C. D., Pereira Filho, J. M., Silva Sobrinho, A. G., Teixeira, I. A. M. A., & Medeiros, A. N. (2006). Restrição alimentar em caprinos: rendimento, cortes comerciais e composição da carcaça. Revista Brasileira de Zootecnia, 35(5), 2093-2100. doi: 10.1590/S1516-35982006000700029
Zeng, H., Umar, S., Rust, B., Lazarova, D., & Bordonaro, M. (2019). Secondary bile acids and short chain fatty acids in the colon: A focus on colonic microbiome, cell proliferation, inflammation, and cancer. International Journal of Molecular Sciences, 20(5), 1214. doi: 10.3390/ijms20051214
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