Do Growing Rabbits with a High Growth Rate Require Diets with High Levels of Essential Amino Acids? A Choice-Feeding Trial
Abstract
:Simple Summary
Abstract
1. Introduction
2. Materials and Methods
2.1. Experimental Diets
2.2. Animals
2.3. Experimental Procedure
2.4. Chemical Analysis
2.5. Statistical Analysis
3. Results
4. Discussion
4.1. Differences between Diets (M and H)
4.2. Choice Feeding
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Blasco, A. Genética y nutrición del conejo. In Alimentación del Conejo; de Blas, C., Ed.; Ediciones Mundi Prensa: Madrid, Spain, 1989; pp. 1–15. [Google Scholar]
- Baselga, M. Genetic improvement of meat rabbits. Programmes and diffusion. In Proceedings of the 8th World Rabbit Congress, Puebla, Mexico, 7–10 September 2004; pp. 1–13. [Google Scholar]
- Partridge, G.G.; Garthwaite, P.H.; Findlay, M. Protein and energy retention by growing rabbits offered diets with increasing proportions of fibre. J. Agric. Sci. 1989, 112, 171–178. [Google Scholar] [CrossRef]
- Bahnhazi, T.M.; Babinszky, L.; Halas, V.; Tscharke, M. Precision livestock farming: Precision feeding technologies and sustainable livestock production. J. Agric. Biol. Eng. 2012, 5, 54–61. [Google Scholar]
- Chamorro, S.; Gómez-Conde, M.S.; Pérez de Rozas, A.M.; Badiola, I.; Carabaño, R.; de Blas, J.C. Effect on digestion and performance of dietary protein content and of increased substitution of lucerne hay with soya-bean protein concentrate in starter diets for young rabbits. Animal 2007, 1, 651–659. [Google Scholar] [CrossRef] [Green Version]
- Xiccato, G.; Trocino, A.; Majolini, D.; Fragkiadakis, M.; Tazzoli, M. Effect of decreasing dietary protein level and replacing starch with soluble fibre on digestive physiology and performance of growing rabbits. Animal 2011, 5, 1179–1187. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Gidenne, T.; Kerdiles, V.; Jehl, N.; Arveux, P.; Eckenfelder, B.; Briens, C.; Stephan, S.; Fortune, H.; Montessuy, S.; Muraz, G. Protein replacement by digestible fibre in the diet of growing rabbits. 2: Impact on performances, digestive health and nitrogen output. Anim. Feed Sci. Technol. 2013, 183, 142–150. [Google Scholar] [CrossRef]
- Martínez-Vallespín, B.; Martínez-Paredes, E.; Ródenas, L.; Moya, V.J.; Cervera, C.; Pascual, J.J.; Blas, E. Partial replacement of starch with acid detergent fibre and/or neutral detergent soluble fibre at two protein levels: Effects on ileal apparent digestibility and caecal environment of growing rabbits. Livest. Sci. 2013, 154, 123–130. [Google Scholar] [CrossRef]
- Xiccato, G.; Trocino, A.; Carraro, L.; Fragkiadakis, M. Digestible fibre to ADF ratio and protein concentration in diets for early-weaned rabbits. In Proceedings of the 8th World Rabbit Congress, Puebla, Mexico, 7–10 September 2004; p. 6. [Google Scholar]
- García-Palomares, J.; Carabaño, R.; García-Rebollar, P.; De Blas, J.C.; Corujo, A.; García-Ruiz, A.I. Effects of a dietary protein reduction and enzyme supplementation on growth performance in the fattening period. World Rabbit Sci. 2006, 14, 231–236. [Google Scholar] [CrossRef] [Green Version]
- Trocino, A.; García, J.; Carabaño, R.; Xiccato, G. A meta-analysis on the role of soluble fibre in diets for growing rabbits. World Rabbit Sci. 2013, 21, 1–15. [Google Scholar] [CrossRef] [Green Version]
- Carabaño, R.; Villamide, M.J.; García, J.; Nicodemus, N.; Llorente, A.; Chamorro, S.; Menoyo, D.; García-Rebollar, P.; García-Ruiz, A.I.; De Blas, J.C. New concepts and objectives for protein-amino acid nutrition in rabbits. A review. World Rabbit Sci. 2009, 17, 1–14. [Google Scholar]
- Marín-García, P.J.; Ródenas, L.; Martínez-Paredes, E.M.; Cambra-López, M.; Blas, E.; Pascual, J.J. A moderate protein diet does not cover the requirements of growing rabbits with high growth rate. J. Anim. Feed. Sci. Technol. 2020, 264. [Google Scholar] [CrossRef]
- de Blas, J.C.; Gonzalez-Mateos, G. Feed Formulation. In Nutrition of the Rabbit, 2nd ed.; de Blas, C., Wiseman, J., Eds.; CABI International: Wallingford, UK, 2010; pp. 222–232. [Google Scholar]
- Bonato, M.A.; Sakomura, N.K.; Silva, E.P.; Araújo, J.A.; Sünder, A.; Liebert, F. Amino acid requirements for pullets based on potential protein deposition and the efficiency of amino acid utilization. In Nutritional Modelling for Pig and Poultry; Sakomura, N.K., Gous, R.M., Kyriazakis, I., Hauschild, L., Eds.; CAB International: Wallingford, UK, 2015; Volume 1, pp. 269–282. [Google Scholar]
- Van Milgen, J.; Dourmad, J.Y. Concept and application of ideal protein for pigs. J. Anim. Sci. Biot. 2015, 6, 15. [Google Scholar] [CrossRef] [Green Version]
- Carabaño, R.; de Blas, J.C.; García, A.I. Recent advances in nitrogen nutrition in rabbits. World Rabbit Sci. 2000, 8, 14–28. [Google Scholar]
- Villamide, M.J.; Nicodemus, N.; Fraga, M.J.; Carabaño, R. Protein digestión. In Nutrition of the Rabbit, 2nd ed.; de Blas, C., Wiseman, J., Eds.; CABI International: Wallingford, UK, 2010; pp. 39–55. [Google Scholar]
- Kyriazakis, I.; Emmans, G.C.; Whittemore, C.T. Diet selection in pigs: Choices made by growing pigs given feeds of different protein contents. Anim. Prod. 1990, 51, 189–200. [Google Scholar] [CrossRef]
- Cheeke, P.R.; Kinzell, J.H.; Pedersen, M.W. Influence of sapoins on alfalfa utilization by rats, rabbits and swine. J. Anim. Sci. 1977, 46, 476–481. [Google Scholar] [CrossRef] [Green Version]
- Lebas, F.; Greppi, G. Ingestion d’eau et d’aliment chez le jeune lapin disposant d’un aliment carencé en méthionine ou en lysine et pour boisson, en libre choix, d’une solution de cet acide aminé ou d’eau pure. Reprod. Nutr. Dev. 1980, 20, 1661–1665. [Google Scholar] [CrossRef]
- Fernández-Carmona, J.; Blas, E.; Pascual, J.J.; Maertens, L.; Gidenne, T.; Xicatto, G.; García, J. Recommendations and guidelines for applied nutrition experiments in rabbits. World Rabbit Sci. 2005, 13, 209–228. [Google Scholar] [CrossRef] [Green Version]
- Boletín Oficial del Estado. Real Decreto 53/2013, por el que se establecen las normas básicas aplicables para la protección de los animales utilizados en experimentación y otros fines científicos, incluyendo la docencia. BOE 2013, 34, 11370–11421. [Google Scholar]
- Marín-García, P.J.; Ródenas, L.; Martínez-Paredes, E.; Blas, E.; Pascual, J.J. Plasmatic urea nitrogen in growing rabbits with different combinations of dietary levels of lysine, sulphur amino acids and threonine. Animals 2020, 10, 946. [Google Scholar] [CrossRef]
- Estany, J.; Camacho, J.; Baselga, M.; Blasco, A. Selection response of growth rate in rabbits for meat production. Genet. Sel. Evol. 1992, 24, 527–537. [Google Scholar] [CrossRef]
- Perez, J.M.; Lebas, F.; Gidenne, T.; Maertens, L.; Xiccato, G.; Parigi-Bini, R.; Dalla Zotte, A.; Cossu, M.E.; Carazzolo, A.; Villamide, M.J.; et al. European reference method for in vivo determination of diet digestibility in rabbits. World Rabbit Sci. 1995, 3, 41–43. [Google Scholar]
- AOAC. Official Methods of Analysis, 21st ed.; Association of Official Analytical Chemist: Rockville, MD, USA, 2019. [Google Scholar]
- Van Soest, P.J.; Robertson, J.B.; Lewis, B.A. Methods for dietary fiber, neutral detergent fiber and non-starch polysaccharides in relation to animal nutrition. J. Dairy Sci. 1991, 74, 3583–3597. [Google Scholar] [CrossRef]
- Bosch, L.; Alegría, A.; Farré, R. Application of the 6-aminoquinolyl-N- hydroxysccinimidyl carbamate (AQC) reagent to the RP-HPLC determination of amino acids in infant foods. J. Chromatogr. 2006, 831, 176–183. [Google Scholar] [CrossRef]
- Alagón, G.; Arce, O.N.; Martínez-Paredes, E.M.; Ródenas, L.; Moya, V.J.; Blas, E.; Cervera, C.; Pascual, J.J. Nutritive value of distillers dried grains with solubles from barley, corn and wheat for growing rabbits. Anim. Feed Sci. Technol. 2016, 222, 217–226. [Google Scholar] [CrossRef]
- SAS Institute. SAS/STAT® 9.2 User’s Guide; Sas Institute Inc.: Cary, NC, USA, 2009. [Google Scholar]
- Colin, M.; Allain, D. Etude du besoin en lysine du lapin en croissance en relation avec la concentration énergétique de l’aliment. Ann. Zootech. 1978, 27, 17–31. [Google Scholar] [CrossRef]
- de Blas, C.; Taboada, E.; Nicodemus, N.; Campos, R.; Piquer, J.; Méndez, J. Performance response of lactating and growing rabbits to dietary threonine content. Anim. Feed. Sci. Technol. 1998, 70, 151–160. [Google Scholar] [CrossRef]
- Ojebiyi, O.O.; Oladunjoye, I.O.; Eso, I.R. The grain replacement value of sun dried cassava (Manihot esculenta crantz) leaf + peel meal with or without DL-methionine supplementation on performance of rabbit bucks in the derived Savannah zone of N igeria. Agric. Trop. Subtrop. 2010, 43, 291–299. [Google Scholar]
- Yesmin, S.; Uddin, M.; Chacrabati, R.; Al-Mamun, M. Effect of methionine supplementation on the growth performance of rabbit. Bangladesh J. Anim. Sci. 2013, 42, 40–43. [Google Scholar] [CrossRef]
- Oloruntola, O.D.; Ayodele, S.O.; Jimoh, O.A.; Agbede, J.O. Dietary cassava peel meal, methionine, and multi-enzyme supplementation in rabbits’ nutrition: Effect on growth, digestibility, and carcass traits. J. Basic Appl. Zool. 2019, 80, 46. [Google Scholar] [CrossRef]
- Colin, M. Contribution à L’étude des Besoins en Acides Aminés Essentiels du Lapin en Croissance. Ph.D. Thesis, Montpellier University, Montpellier, France, 1978. [Google Scholar]
- Taboada, E.; Méndez, J.; de Blas, C. The response of highly productive rabbits to dietary sulphur amino acid content for reproduction and growth. Reprod. Nutr. Dev. 1996, 36, 191–203. [Google Scholar] [CrossRef]
- Delgado, R.; Nicodemus, N.; Abad-Guamán, R.; Menoyo, D.; García, R.; Carabaño, R. Effect of arginine and glutamine supplementation on performance, health and nitrogen and energy balance in growing rabbits. Anim. Feed Sci. Technol. 2019, 247, 63–73. [Google Scholar] [CrossRef]
- Elahi, U.; Wang, J.; Ma, Y.; Wu, S.; Qi, G.; Zhang, H. The response of broiler chickens to dietary soybean meal reduction with glycine and cysteine inclusion at marginal sulfur amino acids (SAA) deficiency. Animals 2020, 10, 1686. [Google Scholar] [CrossRef]
- Lash, L.H.; Jones, D.P. Characteristics of cysteine uptake in intestinal basolateral membrane vesicles. Am. J. Physiol. Gastr. Liver 1984, 247, 394–401. [Google Scholar] [CrossRef] [PubMed]
- Brannon, P.M. Adaptation of the exocrine pancreas to diet. Annu. Rev. Nutr. 1990, 10, 85–105. [Google Scholar] [CrossRef] [PubMed]
- García-Quirós, A.; Arnau-Bonachera, A.; Penadés, M.; Cervera, C.; Martínez-Paredes, E.M.; Ródenas, L.; Selva, L.; Vianam, D.; Corpa, J.M.; Pascual, J.J. A robust rabbit line increases leucocyte counts at weaning and reduces mortality by digestive disorder during fattening. Vet. Immunol. Immunopathol. 2014, 161, 123–131. [Google Scholar] [CrossRef] [Green Version]
- Mínguez, C.; Sánchez, J.P.; El Nagar, A.G.; Ragab, M.; Baselga, M. Growth traits of four maternal lines of rabbits founded on different criteria: Comparisons at foundation and at last periods after selection. J. Anim. Breed. Genet. 2016, 133, 303–315. [Google Scholar] [CrossRef]
- Marín-García, P.J.; Ródenas, L.; Martínez-Paredes, E.; Blas, E.; Pascual, J.J. Plasma urea nitrogen as an indicator of amino acid imbalance in rabbit diets. World Rabbit Sci. 2020, 28, 63–72. [Google Scholar] [CrossRef]
- Marín-García, P.J.; López, M.C.; Ródenas, L.; Martínez-Paredes, E.; Blas, E.; Pascual, J.J. Dietary protein optimization using a rabbit model: Towards a more sustainable production in nitrogen contamination. In Proceedings of the 70th Annual Meeting of EAAP, Ghent, Belgium, 26–30 August 2019; Volume 1, p. 493. [Google Scholar]
- Bohinski, R.C. Modern Concepts in Biochemistry, Allyn and Bacon; EEUU: Boston, MA, USA, 1979. [Google Scholar]
- Ottaway, J.H.; Apps, D.K. Concise Medical Textbooks. In Biochemistry, 4th ed.; Longman: London, UK, 1984. [Google Scholar]
- Gidenne, T.; Perez, J.M. Replacement of digestible fibre by starch in the diet of the growing rabbit. I. Effects on digestion, rate of passage and retention of nutrients. Anm. Zootech. 2000, 49, 357–368. [Google Scholar] [CrossRef] [Green Version]
- Birolo, M.; Trocino, A.; Zuffellato, A.; Xiccato, G. Effect of feed restriction programs and slaughter age on digestive efficiency, growth performance and body composition of growing rabbits. Anim. Feed Sci. Technol. 2016, 222, 194–203. [Google Scholar] [CrossRef]
- Marín-García, P.J. Lysine, Amino Acids and Threonine Requirements of Growing Rabbits from a Line Selected by Growth Rate. Ph.D. Thesis, Universitat Politècnica de València, Valencia, Spain, 2019. [Google Scholar]
- Costrel, G.; Hess, V.; Helmbrecht, A.; Madsen, T.; Saksit, S. Influence du niveau alimentaire en acides amines sur les performances et le choix alimentaire des poulets de chair de 14–35 jours en periode de stress lie a la temperature. In Proceedings of the 9èmes Jounrées de la Recherche Avicole, Tours, France, 29–30 March 2011; pp. 201–206. [Google Scholar]
- Xiccato, G.; Trocino, A. Energy and protein metabolism and requirements. In The Nutrition of the Rabbit, 2nd ed.; De Blas, C., Wiseman, J., Eds.; CABI International: Wallingford, UK, 2011; pp. 83–119. [Google Scholar]
- Steenfeldt, S.; Sørensen, P.; Nielsen, B.L. Effects of choice feeding and lower ambient temperature on feed intake, growth, foot health, and panting of fast- and slow-growing broiler strains. Poult. Sci. 2019, 98, 503–513. [Google Scholar] [CrossRef] [PubMed]
Ingredients | Basal Mixture |
---|---|
Wheat bran | 300 |
Straw | 175 |
Sunflower meal | 167 |
Alfalfa hay | 148 |
Beet pulp | 120 |
Barley | 42 |
Sugar beet molasses | 29 |
Palm oil | 4.5 |
Sodium chloride | 4.8 |
Calcium carbonate | 2.6 |
L-lysine HCL | 2.4 |
Monocalcium phosphate | 0.2 |
Vitamin/Trace element mixture 1 | 5.2 |
Basal Mixture | M | H | |
---|---|---|---|
Dry matter (DM; g/kg) | 896 | 905 | 902 |
Ashes | 73.2 | 72.5 | 72.7 |
Crude protein | 157 | 155 | 156 |
Ether extract | 26.7 | 26.4 | 26.5 |
Neutral detergent fibre | 473 | 468 | 470 |
Acid detergent fibre | 275 | 272 | 273 |
Acid detergent lignin | 58.1 | 57.5 | 57.7 |
Gross energy (MJ/kg DM) | - | 18.50 | 18.64 |
Digestible energy 1 (DE; MJ/kg DM) | - | 11.21 | 11.35 |
Digestible protein 1 (DP; g/kg DM) | - | 117 | 118 |
DP/DE (g DP/MJ DE) | - | 10.44 | 10.39 |
Amino acids | |||
Alanine | 5.81 | 5.75 | 5.77 |
Arginine | 8.25 | 8.17 | 8.20 |
Aspartic acid | 12.7 | 12.6 | 12.6 |
Cysteine | 2.36 | 2.37 | 2.37 |
Glutamic acid | 26.7 | 26.4 | 26.5 |
Glycine | 7.43 | 7.36 | 7.38 |
Histidine | 3.02 | 2.99 | 3.00 |
Isoleucine | 5.42 | 5.37 | 5.38 |
Leucine | 9.59 | 9.49 | 9.53 |
Lysine | 7.29 | 8.10 2 | 9.40 2 |
Methionine | 2.64 | 3.43 2 | 4.23 2 |
Phenylalanine | 6.07 | 6.01 | 6.03 |
Proline | 8.44 | 8.36 | 8.38 |
Serine | 6.63 | 6.56 | 6.59 |
Sulphur amino acids | 5.00 | 5.80 | 6.60 |
Threonine | 5.04 | 6.90 2 | 7.80 2 |
Tyrosine | 2.99 | 2.96 | 2.97 |
Valine | 7.42 | 7.35 | 7.37 |
M | H | p-Value | |||
---|---|---|---|---|---|
CTTAD | |||||
Dry matter | 0.547 | ±0.005 | 0.549 | ±0.005 | 0.8194 |
Crude protein | 0.751 | ±0.007 | 0.755 | ±0.008 | 0.6854 |
Gross energy | 0.606 | ±0.005 | 0.609 | ±0.005 | 0.6831 |
AID | |||||
Dry matter | 0.338 | ±0.035 | 0.368 | ±0.037 | 0.6425 |
Crude protein | 0.576 | ±0.027 | 0.602 | ±0.027 | 0.5199 |
Alanine | 0.592 | ±0.031 | 0.605 | ±0.036 | 0.7760 |
Arginine | 0.805 | ±0.019 | 0.810 | ±0.021 | 0.8565 |
Aspartic acid | 0.618 | ±0.031 | 0.655 | ±0.035 | 0.4338 |
Cysteine | 0.416 | ±0.047 | 0.579 | ±0.050 | 0.0247 |
Glutamic acid | 0.781 | ±0.021 | 0.800 | ±0.023 | 0.6488 |
Glycine | 0.345 | ±0.047 | 0.365 | ±0.052 | 0.7643 |
Histidine | 0.753 | ±0.025 | 0.748 | ±0.028 | 0.8862 |
Isoleucine | 0.658 | ±0.032 | 0.690 | ±0.036 | 0.5004 |
Leucine | 0.664 | ±0.032 | 0.697 | ±0.036 | 0.4997 |
Lysine | 0.708 | ±0.029 | 0.769 | ±0.032 | 0.1717 |
Methionine | 0.741 | ±0.023 | 0.795 | ±0.025 | 0.1210 |
Phenylalanine | 0.691 | ±0.029 | 0.717 | ±0.033 | 0.5646 |
Proline | 0.678 | ±0.021 | 0.693 | ±0.023 | 0.6492 |
Serine | 0.521 | ±0.034 | 0.540 | ±0.038 | 0.7148 |
Threonine | 0.645 | ±0.025 | 0.706 | ±0.028 | 0.1217 |
Tyrosine | 0.549 | ±0.033 | 0.573 | ±0.037 | 0.6389 |
Valine | 0.622 | ±0.031 | 0.657 | ±0.034 | 0.4431 |
M | H | MH | p-Value | |
---|---|---|---|---|
Body weight (g) | ||||
Day 28 | 607 ± 27.7 | 581 ± 21.4 | 610 ± 28.9 | 0.5886 |
Day 35 | 922 ± 27.7 | 904 ± 23.5 | 917 ± 28.9 | 0.8689 |
Day 42 | 1323 ± 27.7 | 1318 ± 27.2 | 1326 ± 28.9 | 0.9732 |
Day 49 | 1758 ± 27.7 | 1737 ± 30.0 | 1750 ± 28.9 | 0.8569 |
Day 56 | 2155 ± 27.7 | 2135 ± 32.3 | 2130 ± 28.9 | 0.7949 |
Day 63 | 2534 ± 27.7 | 2503 ± 36.5 | 2486 ± 28.9 | 0.4453 |
Daily feed intake (g/d) | ||||
Week 1 | 79 ± 2.30 | 76 ± 2.43 | 78 ± 3.24 | 0.6154 |
Week 2 | 121 ± 3.30 | 124 ± 2.78 | 124 ± 2.66 | 0.7596 |
Week 3 | 165 ± 2.90 | 157 ± 3.27 | 164 ± 3.72 | 0.1036 |
Week 4 | 194 ± 3.50 | 190 ± 3.54 | 194 ± 3.39 | 0.6358 |
Week 5 | 214 ± 4.58 | 205 ± 5.10 | 208 ± 4.37 | 0.4020 |
Global | 155 ± 2.45 | 150 ± 2.53 | 153 ± 2.56 | 0.4070 |
Average daily growth (g/d) | ||||
Week 1 | 44.18 ± 1.24 | 45.63 ± 0.95 | 43.36 ± 1.53 | 0.3670 |
Week 2 | 56.55 ± 1.55 | 58.42 ± 1.41 | 58.06 ± 1.21 | 0.6314 |
Week 3 | 62.48 ± 1.24 | 60.42 ± 1.48 | 60.06 ± 1.02 | 0.2691 |
Week 4 | 55.84 ± 1.41 | 56.34 ± 1.42 | 53.84 ± 1.64 | 0.4768 |
Week 5 | 53.42 ± 1.34 | 52.36 ± 1.54 | 50.35 ± 1.82 | 0.3866 |
Global | 54.49 ± 0.75 | 54.63 ± 0.72 | 53.14 ± 0.80 | 0.2697 |
Feed conversion ratio | ||||
Week 1 | 1.76 ± 0.04 | 1.65 ± 0.04 | 1.80 ± 0.07 | 0.0504 |
Week 2 | 2.14 ± 0.03 | 2.12 ± 0.03 | 2.13 ± 0.04 | 0.8480 |
Week 3 | 2.65 ± 0.05 | 2.61 ± 0.04 | 2.73 ± 0.05 | 0.1833 |
Week 4 | 3.49 ± 0.07 | 3.38 ± 0.06 | 3.58 ± 0.08 | 0.1149 |
Week 5 | 4.00 ± 0.08 | 3.94 ± 0.08 | 4.08 ± 0.11 | 0.5673 |
Global | 2.81 ± 0.03 ab | 2.73 ± 0.03 a | 2.87 ± 0.04 b | 0.0242 |
M | H | MH | p-Value | ||||
---|---|---|---|---|---|---|---|
Energy (MJ/d) | 0.414 | ±0.016 | 0.443 | ±0.016 | 0.403 | ±0.015 | 0.1581 |
Protein | 9.797 | ±0.288 | 10.489 | ±0.298 | 9.680 | ±0.285 | 0.0927 |
Alanine | 0.471 | ±0.016 | 0.497 | ±0.016 | 0.460 | ±0.016 | 0.2402 |
Arginine | 0.691 | ±0.027 | 0.739 | ±0.028 | 0.669 | ±0.027 | 0.1680 |
Aspartic acid | 0.701 | ±0.031 | 0.742 | ±0.032 | 0.680 | ±0.030 | 0.3470 |
Cysteine | 0.177 | ±0.010 | 0.183 | ±0.011 | 0.183 | ±0.010 | 0.8704 |
Glutamic acid | 1.116 | ±0.046 | 1.227 | ±0.048 | 1.110 | ±0.046 | 0.1252 |
Glycine | 0.807 | ±0.028 | 0.807 | ±0.029 | 0.758 | ±0.028 | 0.3192 |
Histidine | 0.194 | ±0.011 | 0.196 | ±0.012 | 0.175 | ±0.011 | 0.3117 |
Isoleucine | 0.321 | ±0.011 | 0.349 | ±0.012 | 0.325 | ±0.011 | 0.1476 |
Leucine | 0.642 | ±0.022 | 0.698 | ±0.023 | 0.643 | ±0.022 | 0.1179 |
Lysine | 0.561 | ±0.022 | 0.619 | ±0.023 | 0.565 | ±0.022 | 0.1143 |
Methionine | 0.191 | ±0.009 | 0.195 | ±0.010 | 0.202 | ±0.009 | 0.6557 |
Phenylalanine | 0.318 | ±0.011 | 0.336 | ±0.012 | 0.324 | ±0.011 | 0.4935 |
Proline | 0.463 | ±0.019 | 0.475 | ±0.019 | 0.456 | ±0.018 | 0.7456 |
Serine | 0.391 | ±0.018 | 0.417 | ±0.019 | 0.382 | ±0.018 | 0.3495 |
Threonine | 0.344 | ±0.014 a | 0.384 | ±0.014 b | 0.341 | ±0.014 a | 0.0439 |
Tyrosine | 0.264 | ±0.011 | 0.280 | ±0.011 | 0.280 | ±0.011 | 0.4609 |
Valine | 0.435 | ±0.015 | 0.471 | ±0.015 | 0.442 | ±0.015 | 0.1747 |
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Marín-García, P.J.; López-Luján, M.C.; Ródenas, L.; Martínez-Paredes, E.; Cambra-López, M.; Blas, E.; Pascual, J.J. Do Growing Rabbits with a High Growth Rate Require Diets with High Levels of Essential Amino Acids? A Choice-Feeding Trial. Animals 2021, 11, 824. https://doi.org/10.3390/ani11030824
Marín-García PJ, López-Luján MC, Ródenas L, Martínez-Paredes E, Cambra-López M, Blas E, Pascual JJ. Do Growing Rabbits with a High Growth Rate Require Diets with High Levels of Essential Amino Acids? A Choice-Feeding Trial. Animals. 2021; 11(3):824. https://doi.org/10.3390/ani11030824
Chicago/Turabian StyleMarín-García, Pablo Jesús, Mari Carmen López-Luján, Luís Ródenas, Eugenio Martínez-Paredes, María Cambra-López, Enrique Blas, and Juan José Pascual. 2021. "Do Growing Rabbits with a High Growth Rate Require Diets with High Levels of Essential Amino Acids? A Choice-Feeding Trial" Animals 11, no. 3: 824. https://doi.org/10.3390/ani11030824
APA StyleMarín-García, P. J., López-Luján, M. C., Ródenas, L., Martínez-Paredes, E., Cambra-López, M., Blas, E., & Pascual, J. J. (2021). Do Growing Rabbits with a High Growth Rate Require Diets with High Levels of Essential Amino Acids? A Choice-Feeding Trial. Animals, 11(3), 824. https://doi.org/10.3390/ani11030824