Статья: Кетоз и его роль в нарушении репродуктивной функции Bos Taurus

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34. Авдеенко В.С., Калюжный И.И., Тресницкий С.Н. Метаболический стресс у сухостойных коров и нетелей при развитии субклинического кетоза // Ветеринария. 2019. № 2. С. 36--41. doi: 10.30896/00424846.2019.22.2.36-41

35. Тресницкий С.Н. Теоретическое обоснование и практическое применение инновационных технологий в диагностике, терапии и профилактике экламптического синдрома у коров: дис.... д-ра вет. наук. Саратов: Саратов. гос. аграрный ун-т им. Н.И. Вавилова, 2018.

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37. Mc Fadden J.W. Review: Lipid biology in the periparturient dairy cow: contemporary perspectives // Animal. 2020. Vol. 14. N S1 N 1. P. 165--175. doi:10.1017/S1751731119003185

38. Leroy J., Vanholder T., Opsomer G., Van Soom A., Kruif A. The In Vitro Development of Bovine Oocytes after Maturation in Glucose and beta-Hydroxybutyrate Concentrations Associated with Negative Energy Balance in Dairy Cows // Reproduction in Domestic Animals. 2006. Vol. 41. № 2. Р. 119--123.

39. Лукашик Г.В. Морфологические и цитохимические изменения клеток крови у высокопродуктивных коров при кетозе // Известия сельскохозяйственной науки Тавриды. 2014. № 160. С. 130--135.

40. Hoeben D., Heyneman R., Burvenich C. Elevated levels of P-hydroxybutyric acid in periparturient cows and in vitro effect on respiratory burst activity of bovine neutrophils // Veterinary Immunology and Im- munopathology. 1997. Vol. 58. № 2. Р. 165--170.

41. Zdzisinska B., Filar J., Paduch R., Kaczor J., Lokaj I., Kandefer-Szerszen M. The influence of ketone bodies and glucose on interferon, tumor necrosis factor production and NO release in bovine aorta endothelial cells // Veterinary Immunology and Immunopathology. 2000. Vol. 74. № 3-4. Р. 237--247.

42. Ярован Н.И., Новикова И.А. Окислительный стресс у высокопродуктивных коров при субклиническом кетозе в условиях промышленного содержания // Вестник Орловского государственного аграрного университета. 2012. № 5. С. 146--148.

43. Shi X., Li X., Li D., Li Y., Song Y., Deng Q., et al. P-Hydroxybutyrate activates the NF-kB signaling pathway to promote the expression of pro-inflammatory factors in calf hepatocytes // Cellular Physiology and Biochemistry. 2014. № 33. P. 920--932.

44. Song Y., Li N., Gu J., Fu S., Peng Z., Zhao C., et al. P-Hydroxybutyrate induces bovine hepatocyte apoptosis via an ROS-p38 signaling pathway // Journal of Dairy Science. 2016. Vol. 99. № 11. Р. 9184--9198. doi:10.3168/jds.2016-11219

45. Ковалёв С.П., Щербаков Г.Г., Раднатаров В.Д. и др. Обмен витаминов у коров, больных кетозом // Вопросы нормативно-правового регулирования в ветеринарии. 2018. № 2. С. 140--142.

46. Gupta R.K., Miller K.P., Babus J.K., Flaws J.A. Methoxychlor inhibits growth and induces atresia of antral follicles through an oxidative stress pathway // Toxicological Sciences. 2006. Vol. 93. № 2. P. 382--389. doi:10.1080/01926230701459960

47. Devine P.J., Perreault S.D., Luderer U. Roles of reative oxygen species and antioxidants in ovarian toxicity // Biology of Reproduction. 2012. Vol. 86. № 2. P. 1-27. doi:10.1095/biolreprod.111.095224

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