Потребность лактирующих коров в незаменимых аминокислотах

Разработка факториальной модели определения потребности лактирующих коров в незаменимых аминокислотах. Обоснование необходимости исследований по совершенствованию моделей и прогнозированию обменных незаменимых аминокислот в рационах лактирующих коров.

Рубрика Сельское, лесное хозяйство и землепользование
Вид статья
Язык русский
Дата добавления 18.10.2019
Размер файла 159,6 K

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14. . Colombini, S., G. A. Broderick, and M. K. Clayton. Effect of quantifying peptide release on ruminal protein degradation determined using the inhibitor in vitro system. Journal of Dairy Science. 2011. 94:1967- 1977 / 94:1952-1960. doi: 10.3168/jds.2010-3523

15. Brito, A. F., and G. A. Broderick. Effects of different protein supplements on milk production and nutrient utilization in lactating dairy cows. Journal of Dairy Science. 2007. 90:1816-1827. 10.3168/jds.2006-558

16. White, R. R., Y. Roman-Garcia, J. L. Firkins, P. Kononoff, M. J. VandeHaar, H. Tran, T. McGill, R. Garnett, and M. D. Hanigan. 1. Evaluation of the National Research Council dairy model and derivation of new prediction equations. 2. Rumen degradable and undegradable protein. Journal of Dairy Science. 2017. 100:3611-3627.doi: 10.3168/jds.2015-10801

17. . Lapierre H., Pacheco D., Bertiaume R., Ouellet D.R., Schwab C.G., P.Dubreuil, G.Holtrop and G.E. Lobley. What is the True Supply of Amino Acid for a Dairy Cow? Journal of Dairy Science. 2006. 89(E. Suppl.):Е1-Е14. DOI:10.3168/jds.S00220302(06)72359-1

18. . Ipharraguerre I.R, Clark J.H, Freeman D.E.Rumen fermentation and intestinal supply of nutrients in dairy cows fed rumen-protected soy products. Journal of Dairy Science.2005. 88:2879-2892. 10.3168/jds.S0022-0302(05)72969-6

19. Laflin, S.L., Gnad, D.P., Walz, P.H. Rumen cannulation and utilization of a donor animal. The Bovine Practitioner, 2004. 38 (1): 54-58.

20. . Krizsan, S. J., S. Ahvenjarvi, H. Volden, and G. A. Broderick. Estimation of rumen outflow in dairy cows fed grass silage-based diets by use of reticular sampling as an alternative to sampling from the omasal canal. Journal of Dairy Science. 2010. 93:1138-1147. doi: 10.3168/jds.2009-2661

21. Starke A., Wussow K., Matthies L., Kusenda. M, Busche R., Haudum A., Beineke A., Pfarrer C., Rehage J. Minimally-invasive catheterization of the portal, hepatic and cranial mesenteric veins and the abdominal aorta for quantitative determination of hepatic metabolism in dairy cows. The Veterinary Journal. 2011. 192 (2012):403-411. doi: 10.1016/j.tvjl.2011.07.002.

22. Larsen, M., H. Lapierre, and N. B. Kristensen. Abomasal protein infusion in postpartum transition dairy cows: Effect on performance and mammary metabolism. J. Dairy Sci. 2014 97:5608-5622.doi: 10.3168/jds.2013-7247. Epub 2014 Jul 2

23. .Berthiaume, R., P. Dubreuil, M. Stevenson, B.W. McBride, and H. Lapierre. Intestinal disappearance and mesenteric and portal appearance of amino acid in dairy cows fed ruminally-protected methionine. J. Dairy Sci. 2001. 84:194-203. https://doi.org/10.3168/jds.S0022-0302(01)74469-4

24. Hvelplund, T., M.R. Weisbjerg, and L.S. Andersen. 1992. Estimation of the true digestibility of rumen undegraded dietaty protein in the small intestine of ruminants by the mobile bag technique. Acta Agric. Scand. A Anim. Sci. 421:34

25. Ross D.A., Gutierrez - Botero M., M.E. Van Amburgh. Development of an in vitro intestinal digestibility assay for ruminant feedas. P.190-202 in Proc. Of the Cornell Nutrition conference for Feed Manulactur. East Syracuse, NY. Dept. Animal Science Cornell University. Ithaca, NY. 2013. P.1990-2020. file:///C:/Users/user/Downloads/Development%20of%20an%20in%20vitro%20intestinal%20digestibility%20assay%20for%20ruminant%20feeds%20-%20Ross%20-%20Cornell%202013%20Manuscript%20(1).pdf

26. Freetly, H. C., Ferrell, C. L., & Archibeque, S. Net flux of amino acids across the portal-drained viscera and liver of the ewe during abomasal infusion of protein and glucose12. Journal of Animal Science, 88(3), 2010. 1093-1107. doi:10.2527/jas.2009-2260

27. Hanigan, M. D., Reynolds, C. K., Humphries, D. J., Lupoli, B., & Sutton, J. D. (2004). A Model of Net Amino Acid Absorption and Utilization by the Portal-Drained Viscera of the Lactating Dairy Cow. Journal of Dairy Science, 87(12), 4247-4268. 10.3168/jds.S0022-0302(04)73570-5

28. Sadri, H., von Soosten, D., Meyer, U., Kluess, J., Dдnicke, S., Saremi, B., & Sauerwein, H. Plasma amino acids and metabolic profiling of dairy cows in response to a bolus duodenal infusion of leucine. PLOS ONE, 2017. 12(4), P.1-14. https://doi.org/10.1371/journal.pone.0176647.

29. Patton, R. A., Hristov, A. N., Parys, C., & Lapierre, H. Relationships between circulating plasma concentrations and duodenal flows of essential amino acids in lactating dairy cows. Journal of Dairy Science, 2015. 98(7): 4707-4734. http://dx.doi.org/ 10.3168/jds.2014-9000

30. Харитонов Е.Л. Физиология и биохимия питания молочных коров. Глава 4 «Протеиновое питание молочных коров». С. 75-139. Монография. Боровск. Изд-во «Оптима Пресс». 2011 УДК 636.2.034.084.41:612:5771

31. Харитонов Е.Л. Методические и инструментальные подходы к изучению физиологическиих и биохимических процессов образования конечных продуктов переваривания питательных веществ кормов // Журнал Проблемы биологии продуктивных животных, 2008. Боровск: №4 с. 1-27 УДК 636.2/3.085.2:612.3:57.08

32. Рядчиков В.Г. Качество белка для жвачных. С. 262-272 В кн.: Основы питания и кормления сельскохозяйственных животных. Краснодар: КГАУ, 2013. 616 с. УДК 636.084 (076)

33. . National Research Council. Nutrient Requirements of Dairy Cattle, 7th rev. ed., 2001 Natl. Acad. Press, Washington, DC.

34. Cornel-Penn-Miner (CPM), CNCPS; version 3.0.1., Ihtaca, NY, США;

35. Agricultural Modeling and Trainig Systems LLS (AMTS) version 2.0.15., Cortland, NY, США.

36. Amino Cow version 3.5.2 Evonik AC Industries, Hanau, Германия.

37. Institut National de la Recherche Agronomique (INRA). INRA feeding system for ruminants. Wageningen Academic Publishers, Wageningen, The Netherlands, 2018. 640 pp.

38. NorFor 2011. The Nordic feed evaluation system. Wageningen Academic Publishers, The Netherlands (www.norfor.info).https://doi.org/10.3920/978-90-8686-718-9

39. Tamminga S, Brandsma GG, Dijkstra J, Van Duinkerken G, Van Vuuren AM and Blok MC. 2007. Protein evaluation for ruminants: the DVE/OEB system. CVB Documentation report nr. 53, 2007. Centraal Veevoederbureau, Lelystad, The Netherlands. http://edepot.wur.nl/336208 10.1017/S0021859610000912

40. Van Amburgh ME, Collao-Saenz EA, Higgs RJ, Ross DA, Recktenwald EB, Raffrenato E, Chase LE, Overton TR, Mills JK and Foskolos. The Cornell Net Carbohydrate and Protein System: updates to the model and evaluation of version 6.5. Journal of Dairy Science 98, 2015, 6361-6380.DOI: 10.3168/jds.2015-9378.

41. Pacheco D., Patton R.A., Parys C, and. Lapierre H. Ability of commercially available dairy ration programs to predict duodenal flows of protein and essential amino acids in dairy cows. J. Dairy Sci.2012. 95:931-963doi: 10.3168/jds.2011-4171

42. Lapierre, H., Larsen, M., Sauvant, D., Van Amburgh, M. E., & Van Duinkerken, G. Review: Converting nutritional knowledge into feeding practices: a case study comparing different protein feeding systems for dairy cows. Animal, 2018. 1-10. doi:10.1017/S1751731118001763

43. Giallongo, F., Harper, M. T., Oh, J., Lopes, J. C., Lapierre, H., Patton, R. A. Hristov, A. N. Effects of rumen-protected methionine, lysine, and histidine on lactation performance of dairy cows. Journal of Dairy Science, 2016. 99(6): 4437-4452. http://dx.doi.org/10.3168/jds.2015-10822

44. Giallongo, F., Harper, M. T., Oh, J., Parys, C., Shinzato, I., & Hristov, A. N. Histidine deficiency has a negative effect on lactational performance of dairy cows. Journal of Dairy Science, 2017. 100(4): 2784-2800. https://doi.org/10.3168/jds.2016-11992.

45. Stahel, P., Purdie, N. G., & Cant, J. P. Use of dietary feather meal to induce histidine deficiency or imbalance in dairy cows and effects on milk composition. Journal of Dairy Science, 2014. 97(1): 439-445. http://dx.doi.org/ 10.3168/jds.2013-7269.

46. Haque, M. N., Rulquin, H., & Lemosquet, S. Milk protein responses in dairy cows to changes in postruminal supplies of arginine, isoleucine, and valine. Journal of Dairy Science, 2013. 96(1): 420-430. http://dx.doi.org/ 10.3168/jds.2012-5610

47. Schwab C.G. and Foster G.N. / Maximizing milk components and metabolizable protein utilization through amino acid formulation // Proceeding of the Cornel l Nutrition Conference for Need Manufacturers. New York. October 20-22, 2009. https://formulate2corecomponents.com/files/Cornell_Nutrition_Conference_2009.pdf.

48. Lean, I. J., M. B. de Ondarza, C. J. Sniffen, J. E. P. Santos, and K. E. Griswold. Meta-analysis to predict the effects of metabolizable amino acids on dairy cattle performance. J. Dairy Sci. 2018. 101:340-364. https://doi.org/10.3168/jds.2016-12493

49. . Doepel L., D. Pacheco, J.J. Kennelly, M.D. Hanigan, I.F. Lopez and H. Lapierre. Milk protein as a Function of amino acid supply J. Dairy Sci. 2004. 87:1279-1297. DOI:10.3168/jds.S0022-0302(04)73278-6

50. Nursoy, H., M. G. Ronquillo, A. P. Faciola, and G. A. Broderick. Lactation response to soybean meal and rumen-protected methionine supplementation of corn silage-based diets. J. Dairy Sci. 2017. 101: 1-12. doi: 10.3168/jds.2017-13227

51. Vyas, D., and R. A. Erdman. Meta-analysis of milk protein yield responses to lysine and methionine supplementation. J. Dairy Sci. 2009. 92:5011-5018.doi: 10.3168/jds.2008-1769

52. . Wang, C., H. Y. Liu, Y. M. Wang, Z. Q. Yang, J. X. Liu, Y. M. Wu, T. Yan, and H. W. Ye.. Effects of dietary supplementation of methionine and lysine on milk production and nitrogen utilization in dairy cows. J. Dairy Sci. 2010. 93:3661-3670.doi: 10.3168/jds.2009-2750

53. Robinson, P. H. Impacts of manipulating ration metabolizable lysine and methionine levels on the performance of lactating dairy cows: A systematic review of the literature. Livestock Science, 2010. 127(2-3): 115-126.https://doi.org/10.1016/j.livsci.2009.10.003.

54. Whitehouse N, Schwab C, Luchini D and Sloan B. A critique of dose response plots that relate changes in content and yield of milk protein to predicted concentrations of lysine in metabolizable protein by the NRC (2001), CPM-Dairy (v.3.0.10) and AMTS. Cattle (v.2.1.1) models. Journal of Dairy Science 93. 2010 (E-suppl. 1), 447

55. Рядчиков В.Г. Животные белки. С. 589-612. В Кн.: Мировые ресурсы растительного и животного белка. Аминокислотный состав / В. Г. Рядчиков, Е.Н. Головко, И.Г. Бескаравайная. Краснодар: КубГАУ, 2004. 732 с. УДК 577.112.3

56. Stein, H.H., N.L. Trottier, C. Bellaver, and R.A. Easter. The effect of feeding level and physiological status on total flow and amino acid composition of endogenous protein at the distal ileum in swine. J. Anim. Sci. 1999. 77:1180-1187.https://doi.org/10.2527/1999.7751180x

57. Рядчиков В. Г. Кишечный изолят у свиней на безбелковом рационе. С. 203-218. В дис. док. биол. наук: Обмен веществ у моногастричных животных при балансе и имбалансе аминокислот и пути повышения биологической ценности белка зерна злаковых культур: Дис. док. биол. наук. Краснодар, 1981

58. Ainslie S.J., Fox D.G., Perry T.C., Ketchen D.J. and Barry M.C. / Predicting amino acid adequacy of diets fed to Holstein streers // J. Anim. Sci. 1993. 71:1312-1319. https://doi.org/10.2527/1993.7151312x

59. Sok, M., D. R. Ouellet, J. L. Firkins, D. Pellerin, and H. Lapierre. Amino acid composition of rumen bacteria and protozoa in cattle. J. Dairy Sci. 2017. 100:5241-5249. DOI:10.3168/jds.2016-12447

60. CNCPS. 2000. The Cornell University Nutrient Management Planning System. The net carbohydrate and protein system for evaluating herd nutrient excretion. CNCPS version 4.0, November 3 rd, 2000. Model Documentation.

61. Van Amburgh M.E., Overton T.R., Chase L.E., Ross D.A. and Recktenwald E.B. / The cornell net carbohydrate and protein system: currend and future approaches for balancing of amino acids // Proceeding of the Cornel l Nutrition Conference For Need Manufacturers. New York. October 20-22, 2009. С. 28-37.DOI: 10.3168/jds.2015-9378.

62. Рядчиков В.Г. Аминокислотное питание молочных коров. Материалы конференции, посвященной 120-летию М.Ф. Томмэ «Фундаментальные и прикладные аспекты кормления сельскохозяйственных животных и технология кормов». 14-16 июня 2016 г. С. 400-404. Дубровицы. 2016. УДК 636.2.034.084.523.

63. Рядчиков В. Г. Концентрация аминокислот в плазме крови у коров в переходный период, трансформация обменного белка, лизина и метионина в их компоненты молока в зависимости от уровня белка в рационе / В. Г. Рядчиков, О.Г. Шляхова // Труды Кубанского ГАУ. 2013. - № 5(44). С.212-225. УДК 636.2.085.13

64. . Qin, C., P. Sun, D.P. Bu, J.Q. Wang, P. Zhang, P. An. Comparison of mammary amino acid utilization in dairy cows fed a corn straw or mixed forage diet. J. Animal Sci. 2009. Vol 92, E-Suppl. 2/3, p.754

65. Olmos Colmenero. JJ and Broderick GA. Effect of dietary crude protein concentration on ruminal nitrogen metabolism in lactating dairy cows. Journal of Dairy Science 2006. 89: 1694-1703.DOI: 10.3168/jds.S0022-0302(06)72238-X

66. Haque, M.N., H. Rulquin, A. Andrade, P. Faverdin, J.L. Peyraud, and S. Lemosquet. Milk protein synthesis in response to the provision of an “ideal” amino acid profile at 2 levels of metabolizable protein supply in dairy cows. J. Dairy Sci. 2012. 95:5876-5887. DOI: 10.3168/jds.2011-5230

67. C. Lee, F. Giallongo, A.N. Hristov, H. Lapierre, T.W. Cassidy, K.S. Heyler, G.A. Varga, and C. Parys. Effect of dietary protein level and ruman-protected amino acid supplementation on amino acid utilization for milk protein in lactating dairy cows. J.Dairy Sci. 2015. 98:1885-1902. http://dx.doi.org/ 10.3168/jds.2014-8496

68. Hanigan M.D., White R.R. The current state of amino acid and protein requirement models. J. Anim. Sci. Vol. 93, Suppl. s3/J. Dairy Sci. Vol. 98, Suppl. 2. https://articles.extension.org/pages/11231/current-status-of-amino-acid-requirement-models-for-lactating-dairy-cows.

69. Roseler, D.K. D. G. FOX, L. E. CHASE, A. N. PELL, and W. C. STONE. Development and Evaluations for Prediction of Feed Intake for Lactating Holstein Dairy Cows. J/Dairy Sci. 1997. 80:878-893

70. Swanson E.W. Factors for computing requirements of protein for maintenance of cattle. J. Dairy Sci. 1977, 60:1583-1593. https://doi.org/10.3168/jds.S0022-0302(77)84074-5

71. . Swanson E.W. Estimation of metabolic protein requirement to cover unavoidable losses of endogenous nitrogen in maintenance of cattle, Pp. 183-197. In: Protein Requirements for Cattle: Sympodium F.N. Owens, ed. Oklahoma State University, Stillwater. 1982

72. . Ouellet, D.R., M. Demers, G. Zuur, G.E. Lobley, J.R. Seoane, J.V. Nolan, and H. Lapierre. Effects of dietary fiber on endogenous nitrogen flows in lactating dairy cows. J. Dary Sci. 2002. 85:3013-3025.DOI: 10.3168/jds.S0022-0302(02)74387-7

73. Ouellet, D.R., R. Berthiaume, G. Holtrop, G.E. Lobley, R. Martineau, and H. Lapierre. Endogenous nitrogen (EN) flows: Effect of methods of conservation of timothy in lactating dairy cows. J. Dairy Sci. 2005. 85:3013-3025. doi: 10.3168/jds.2010-3085.

74. Lapierre, Ouellet D.R. and Lobley G.E. Estimation of histidine requirement in lactating dairy cows. J. Anim. Sci Vol. 92, E-Suppl. 2/J. Dairy Sci Vol. 97, E-Suppl. 1. 2014.

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