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Changes in body composition and meat quality in response to dietary amino acid provision in finishing broilers

Published online by Cambridge University Press:  05 October 2018

P. Belloir
Affiliation:
BOA, INRA, Université de Tours, 37380 Nouzilly, France Ajinomoto-Eurolysine S.A.S., 153 rue de Courcelles, 75817 Paris Cedex 1, France
M. Lessire
Affiliation:
BOA, INRA, Université de Tours, 37380 Nouzilly, France
W. Lambert
Affiliation:
Ajinomoto-Eurolysine S.A.S., 153 rue de Courcelles, 75817 Paris Cedex 1, France
E. Corrent
Affiliation:
Ajinomoto-Eurolysine S.A.S., 153 rue de Courcelles, 75817 Paris Cedex 1, France
C. Berri
Affiliation:
BOA, INRA, Université de Tours, 37380 Nouzilly, France
S. Tesseraud*
Affiliation:
BOA, INRA, Université de Tours, 37380 Nouzilly, France
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Abstract

In order to control and optimize chicken quality products, it is necessary to improve the description of the responses to dietary amino acid (AA) concentration in terms of carcass composition and meat quality, especially during the finishing period. The aim of this study was to investigate the effects of Lysine (Lys, i.e. a limiting AA used as reference in AA nutrition) and AA other than Lys (AA effect). In total, 12 experimental diets were formulated with four levels of digestible Lys content (7, 8.5, 10 and 11.5 g/kg) combined with either a low (AA−), adequate control (AAc) and high (AA+) amount of other essential AA (EAA) expressed as a proportion of Lys. They were distributed to male Ross PM3 from 3 to 5 weeks of age. No significant AA×Lys interaction was found for growth performance or carcass composition. Body weight and feed conversion ratio were significantly improved by addition of Lys but were impaired in broilers receiving the AA− diets, whereas breast meat yield and abdominal fat were only affected by Lys. No additional benefit was found when the relative amount of other EAA was increased. There was a significant AA×Lys interaction on most of the meat quality traits, including ultimate pH, color and drip loss, with a significant effect of both AA and Lys. For example, AA− combined with reduced Lys level favored the production of meat with high ultimate pH (>6.0), dark color and low drip loss whereas more acid, light and exudative meat (<5.85) was produced with AA+ combined with a low Lys level. In conclusion, growth performance, carcass composition and meat quality are affected by the levels of dietary Lys and AA in finishing broilers. In addition, interactive responses to Lys and AA are found on meat quality traits, leading to great variations in breast pHu, color and drip loss according AA balance or imbalance.

Type
Research Article
Copyright
© The Animal Consortium 2018 

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References

Abasht, B, Mutryn, MF, Michalek, RD and Lee, WR 2016. Oxidative stress and metabolic perturbations in wooden breast disorder in chickens. PLoS One 11, e0153750.10.1371/journal.pone.0153750Google Scholar
Alnahhas, N, Berri, C, Chabault-Dhuit, M, Bourin, M, Arnould, C and Le Bihan-Duval, E 2017. Combined effect of divergent selection for breast muscle ultimate pH and dietary amino acids on chicken performance, physical activity and meat quality. Animal 11, 335344.10.1017/S1751731116001580Google Scholar
Alnahhas, N, Berri, C, Chabault, M, Chartrin, P, Boulay, M, Bourin, MC and Le Bihan-Duval, E. 2016. Genetic parameters of white striping in relation to body weight, carcass composition, and meat quality traits in two broiler lines divergently selected for the ultimate pH of the pectoralis major muscle. BMC Genetics 17, 61.10.1186/s12863-016-0369-2Google Scholar
Beauclercq, S, Hennequet-Antier, C, Praud, C, Godet, E, Collin, A, Tesseraud, S, Métayer-Coustard, S, Bourin, M, Moroldo, M, Martins, F, Lagarrigue, S, Le Bihan-Duval, E and Berri, C 2017. Muscle transcriptome analysis reveals molecular pathways and biomarkers involved in extreme ultimate pH and meat defect occurrence in chicken. Scientific Reports 7, 6447.10.1038/s41598-017-06511-6Google Scholar
Beauclercq, S, Nadal-Desbarats, L, Hennequet-Antier, C, Collin, A, Tesseraud, S, Bourin, M, Le Bihan-Duval, E and Berri, C 2016. Serum and muscle metabolomics for the prediction of ultimate ph, a key factor for chicken-meat quality. Journal of Proteome Research 15, 11681178.10.1021/acs.jproteome.5b01050Google Scholar
Belloir, P, Méda, B, Lambert, W, Corrent, E, Juin, H, Lessire, M and Tesseraud, S 2017. Reducing the CP content in broiler feeds: impact on animal performance, meat quality and nitrogen utilization. Animal 11, 18811889.10.1017/S1751731117000660Google Scholar
Berri, C, Besnard, J and Relandeau, C 2008. Increasing dietary Lys increases final pH and decreases drip loss of broiler breast meat. Poultry Science 87, 480484.10.3382/ps.2007-00226Google Scholar
Berri, C, Debut, M, Santé-Lhoutellier, V, Arnould, C, Boutten, B, Sellier, N, Baéza, E, Jehl, N, Jégo, Y, Duclos, MJ and Le Bihan-Duval, E 2005. Variations in chicken breast meat quality: implications of struggle and muscle glycogen content at death. British Poultry Science 46, 572579.10.1080/00071660500303099Google Scholar
Cruz, RF, Vieira, SL, Kindlein, L, Kipper, M, Cemin, HS and Rauber, SM 2017. Occurrence of white striping and wooden breast in broilers fed grower and finisher diets with increasing lysine levels. Poultry Science 96, 501510.10.3382/ps/pew310Google Scholar
D’Mello, JPF 2003. Responses of growing poultry to amino acids. In Amino acids in animal nutrition (ed. JPF D’Mello 2nd edition), pp. 237263. CAB International, Wallingford, UK.10.1079/9780851996547.0237Google Scholar
Dozier, WA III, Corzo, A, Kidd, MT, Tillman, PB and Branton, SL 2009. Digestible Lys requirements of male and female broilers from fourteen to twenty-eight days of age. Poultry Science 88, 16761682.10.3382/ps.2008-00539Google Scholar
Garcia, AR, Batal, AB and Baker, DH 2006. Variations in the digestible Lys requirement of broiler chickens due to sex, performance parameters, rearing environment, and processing yield characteristics. Poultry Science 85, 498504.10.1093/ps/85.3.498Google Scholar
Gous, RM 2007. Predicting nutrient responses in poultry: future challenges. Animal 1, 5765.10.1017/S1751731107657784Google Scholar
Grisoni, ML, Uzu, G, Larbier, M and Geraert, PA 1991. Effect of dietary Lys level on lipogenesis in broilers. Reproduction Nutrition Development 31, 683690.10.1051/rnd:19910608Google Scholar
Guardia, S, Lessire, M, Corniaux, A, Metayer-Coustard, S, Mercerand, F, Tesseraud, S, Bouvarel, I and Berri, C 2014. Short-term nutritional strategies before slaughter are effective in modulating the final pH and color of broiler breast meat. Poultry Science 93, 17641773.10.3382/ps.2013-03768Google Scholar
Han, Y and Baker, DH 1994. Digestible lysine requirement of male and female broiler chicks during the period three to six weeks posthatching. Poultry Science 73, 17391745.10.3382/ps.0731739Google Scholar
Hou, Y and Wu, G 2017. Nutritionally nonessential amino acids: a misnomer in nutritional sciences. Advances in nutrition 8, 137139.10.3945/an.116.012971Google Scholar
Hou, Y, Yao, K, Yin, Y and Wu, G 2016. Endogenous synthesis of amino acids limits growth, lactation, and reproduction in animals. Advances in Nutrition 7, 331342.10.3945/an.115.010850Google Scholar
Hou, Y, Yin, Y and Wu, G 2015. Dietary essentiality of “nutritionally non-essential amino acids” for animals and humans. Experimental Biology and Medicine 240, 9971007.10.1177/1535370215587913Google Scholar
Jlali, M, Gigaud, V, Métayer-Coustard, S, Sellier, N, Tesseraud, S, Le Bihan-Duval, E and Berri, C 2012. Modulation of glycogen and breast meat processing ability by nutrition in chickens: effect of crude protein level in 2 chicken genotypes. Journal of Animal Science 90, 447455.10.2527/jas.2011-4405Google Scholar
Kuttappan, VA, Brewer, VB, Apple, JK, Waldroup, PW and Owens, CM 2012. Influence of growth rate on the occurrence of white striping in broiler breast fillets. Poultry Science 91, 26772685.10.3382/ps.2012-02259Google Scholar
Le Bihan-Duval, E, Debut, M, Berri, C, Sellier, N, Santé-Lhoutellier, V, Jégo, Y and Beaumont, C 2008. Chicken meat quality: genetic variability and relationship with growth and muscle characteristics. BMC Genetics 9, 53.10.1186/1471-2156-9-53Google Scholar
Leclercq, B 1998. Lys: specific effects of lysine on broiler production: comparison with threonine and valine. Poultry Science 77, 118123.Google Scholar
Lilly, RA, Schilling, MW, Silva, JL, Martin, JM and Corzo, A 2011. The effects of dietary amino acid density in broiler feed on carcass characteristics and meat quality. Journal of Applied Poultry Research 20, 5667.10.3382/japr.2010-00222Google Scholar
Mack, S, Bercovici, D, De Groote, G, Leclercq, B, Lippens, M, Pack, M, Schutte, JB and Van Cauwenberghe, S 1999. Ideal AA profile and dietary Lys specification for broiler chickens of 20 to 40 days of age. British Poultry Science 40, 257265.10.1080/00071669987683Google Scholar
Moran, ET and Bilgili, SF 1990. Processing losses, carcass quality, and meat yields of broiler chickens receiving diets marginally deficient to adequate in lysine prior to marketing. Poultry Science 69, 702710.10.3382/ps.0690702Google Scholar
Nasr, J and Kheiri, F 2012. Effects of Lys levels of diets formulated based on total or digestible AA on broiler carcass composition. Revista Brasileira de Ciencias Avicolas 14, 249258.10.1590/S1516-635X2012000400004Google Scholar
National Research Council 1994. Nutrient requirements of poultry, 9th revised edition, pp. 176. The National Academies Press, Washington, DC, USA.Google Scholar
Oliveira, WP, RFM, Oliveira, Donzele, JP, LFT, Albino, PHRF, Campos, Balbino, EM, Maia, AP and Pastora, SM 2013. Lysine levels in diets for broilers from 8 to 21 days of age. Revista Brasileira de Zootecnia 42, 869878.10.1590/S1516-35982013001200006Google Scholar
Petracci, M, Mudalal, S, Soglia, F and Cavani, C 2015. Meat quality in fast-growing broiler chickens. World’s Poultry Science Journal 71, 363374.10.1017/S0043933915000367Google Scholar
Sauvant, D, Perez, JM and Tran, G 2004. Tables of composition and nutritional value of feed materials: pigs, poultry, cattle, sheep, goats, rabbits, horses, fish, 2nd edition, pp. 304. INRA, Paris, France.Google Scholar
Si, J, Fritts, CA, Burnham, DJ and Waldroup, PW 2001. Relationship of dietary Lys level to the concentration of all essential AA in broiler diets. Poultry Science 80, 14721479.10.1093/ps/80.10.1472Google Scholar
Sterling, KG, Pesti, GM and Bakalli, RI 2006. Performance of different broiler genotypes fed diets with varying levels of dietary crude protein and lysine. Poultry Science 85, 10451054.10.1093/ps/85.6.1045Google Scholar
Tesseraud, S, Le Bihan-Duval, E, Peresson, R, Michel, J and Chagneau, AM 1999. Response of chick lines selected on carcass quality to dietary Lys supply: live performance and muscle development. Poultry Science 78, 8084.10.1093/ps/78.1.80Google Scholar
Tesseraud, S, Peresson, R, Lopes, J and Chagneau, AM 1996. Dietary Lys deficiency greatly affects muscle and liver protein turnover in growing chickens. British Journal of Nutrition 75, 853865.10.1079/BJN19960191Google Scholar
Tesseraud, S, Temim, S, Le Bihan-Duval, E and Chagneau, AM 2001. Increased responsiveness to dietary lysine deficiency of pectoralis major muscle protein turnover in broilers selected on breast development. Journal of Animal Science 79, 927933.10.2527/2001.794927xGoogle Scholar
Urdaneta-Rincon, M and Leeson, S 2004. Muscle (pectoralis major) protein turnover in young broiler chickens fed graded levels of lysine and crude protein. Poultry Science 83, 18971903.10.1093/ps/83.11.1897Google Scholar
Wu, G 2013. Amino acids: biochemistry and nutrition, pp. 503. CRC Press, Boca Raton, FL, USA.10.1201/b14661Google Scholar
Wu, G 2014. Dietary requirements of synthesizable amino acids by animals: a paradigm shift in protein nutrition. Journal of Animal Science Biotechnology 5, 34.10.1186/2049-1891-5-34Google Scholar
Zhao, JP, Zhao, GP, Jiang, RR, Zheng, MQ, Chen, JL, Liu, RR and Wen, J 2012. Effects of diet-induced differences in growth rate on metabolic, histological, and meat quality properties of 2 muscles in male chickens of 2 distinct broiler breeds. Poultry Science 91, 237247.10.3382/ps.2011-01667Google Scholar
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