The Chinese Livestock and Poultry Breeding ›› 2023, Vol. 19 ›› Issue (8): 33-41.

Previous Articles     Next Articles

  

  • Received:2023-06-13 Online:2023-08-26 Published:2023-09-05
[1] Mangino M, Roederer M, Beddall M H, et al.Innate and adaptive immune traits are differentially affected by genetic and environmental factors[J]. Nat Commun, 2017, 8:13850.
[2] Heriazon A, Quinton M, Miglior F, Leslie K E, et al.Phenotypic and genetic parameters of antibody and delayed-type hypersensitivity responses of lactating Holstein cows[J]. Vet Immunol Immunopathol, 2013, 154(3-4):83-92.
[3] Usman T, Wang Y, Liu C, et al.Novel SNPs in IL-17F and IL-17A genes associated with somatic cell count in Chinese Holstein and Inner-Mongolia Sanhe cattle[J]. J Anim Sci Biotechnol, 2017, 8:5.
[4] Barden M, Anagnostopoulos A, Griffiths B E, et al.Genetic pa-rameters of sole lesion recovery in Holstein cows[J]. J Dairy Sci, 2023, 106(3):1874-1888.
[5] Martin P, Barkema HW, Brito LF, et al.Symposium review: Novel strategies to genetically improve mastitis resistance in dairy cattle[J]. J Dairy Sci, 2018, 101(3):2724-2736.
[6] Macedo A A, Costa E A, Silva A P,et al.Monocyte-derived macrophages from Zebu (Bos taurus indicus) are more efficient to control Brucella abortus intracellular survival than macrophages from European cattle (Bos taurus taurus)[J]. Vet Immunol Immunopathol, 2013, 151(3-4):294-302.
[7] Doeschl-Wilson A, Knap P W, Opriessnig T, et al.Review: Live stock disease resilience: from individual to herd level[J]. Animal, 2021, (Suppl 1):100286.
[8] Adams L G, Templeton J W.Genetic resistance to bacterial diseases of animals[J]. Rev Sci Tech, 1998, 17(1):200-219.
[9] Parker Gaddis K L, VanRaden P M, Cole J B, et al. Symposium review: Development, implementation, and perspectives of health evaluations in the United States[J]. J Dairy Sci, 2020, 103(6):5354-5365.
[10] Abdelsayed M, Haile-Mariam M, Pryce J E.Genetic parameters for health traits using data collected from genomic information nucleus herds[J]. J Dairy Sci, 2017, 100(12):9643-9655.
[11] Warnick L D, Janssen D, Guard C L, et al.The effect of lame-ness on milk production in dairy cows[J]. J Dairy Sci, 2001, 84(9):1988-1997.
[12] Van der Waaij E H, Holzhauer M, Ellen E, et al. Genetic parameters for claw disorders in Dutch dairy cattle and correlations with conformation traits[J]. J Dairy Sci, 2005, 88(10):3672-3678.
[13] Koenig S, Sharifi A R, Wentrot H, et al.Genetic parameters of claw and foot disorders estimated with logistic models[J]. J Dairy Sci, 2005, 88(9):3316-3325.
[14] De Mol R M, André G, Bleumer E J, et al. Applicability of day-to-day variation in behavior for the automated detection of lameness in dairy cows[J]. J Dairy Sci, 2013, 96(6):3703-3712.
[15] Van der Spek D, van Arendonk J A, Vallée A A, et al. Genetic parameters for claw disorders and the effect of preselecting cows for trimming[J]. J Dairy Sci, 2013, 96(9):6070-6078.
[16] Koeck A, Miglior F, Kelton D F, et al.Short communication: Genetic parameters for mastitis and its predictors in Canadian Holsteins[J]. J Dairy Sci, 2012, 95(12):7363-7366.
[17] Vukasinovic N, Bacciu N, Przybyla C A, et al.Development of genetic and genomic evaluation for wellness traits in US Holstein cows[J]. J Dairy Sci, 2017, 100(1):428-438.
[18] 张海亮, 常瑶, 娄文琦, 等. 奶牛育种中关注的新性状[J]. 畜牧兽医学报, 2021, 52(10):2687-2697.
[19] Egger-Danner C, Cole J B, Pryce J E, et al.Invited review: overview of new traits and phenotyping strategies in dairy cattle with a focus on functional traits[J]. Animal, 2015, 9(2):191-207.
[20] Thompson-Crispi K A, Sewalem A, Miglior F, et al. Genetic parameters of adaptive immune response traits in Canadian Holsteins[J]. J Dairy Sci, 2012, 95(1):401-409.
[21] Burton J L, Burnside E B, Kennedy B W, et al.Antibody responses to human erythrocytes and ovalbumin as marker traits of disease resistance in dairy calves[J]. J Dairy Sci, 1989, 72(5):1252-1265.
[22] 安涛, 张海亮, 王雅春. 免疫大师公牛女儿的疾病抗性分析[J]. 中国畜牧兽医, 2020, 47(6):1791-1799.
[23] Qureshi T, Templeton J W, Adams L G.Intracellular survival of Brucella abortus, Mycobacterium bovis BCG, Salmonella dublin, and Salmonella typhimurium in macrophages from cattle genetically resistant to Brucella abortus[J]. Vet Immunol Immunopathol, 1996, 50(1-2):55-65.
[24] Bateman R M, Sharpe M D, Jagger J E, et al.36th International Symposium on Intensive Care and Emergency Medicine : Brussels, Belgium. 15-18 March 2016[J]. Crit Care, 2016, 20(Suppl 2):94.
[25] Mallard B A, Wilkie B.N, Kennedy B W, et al. Use of estimated breeding values in a selection index to breed Yorkshire pigs for high and low immune and innate resistance factors[J]. Animal Biotechnology, 1992, 3(2):257-280.
[26] Pishesha N, Harmand T J, Ploegh H L.A guide to antigen processing and presentation[J]. Nat Rev Immunol, 2022, 22(12):751-764.
[27] Puel A, Mevel J C, Bouthillier Y, et al.Toward genetic dissection of high and low antibody responsiveness in Biozzi mice[J]. Proc Natl Acad Sci U S A, 1996, 93(25):14742-14746.
[28] Thompson-Crispi K A, Miglior F, Mallard B A. Incidence rates of clinical mastitis among Canadian Holsteins classified as high, average, or low immune responders[J]. Clin Vaccine Immunol, 2013, 20(1):106-112.
[29] Cartwright S L, Schmied J, Livernois A, et al.Effect of In-vivo heat challenge on physiological parameters and function of peripheral blood mononuclear cells in immune phenotyped dairy cattle[J]. Vet Immunol Immunopathol, 2022, 246:110405.
[30] Altvater-Hughes T E, Wagter-Lesperance L C, Hodgins D C, et al. The association of immune response and colostral immunoglobulin G in Canadian and US Holstein-Friesian dairy cows[J]. J Dairy Sci, 2023, 106(4):2857-2865.
[31] Van Dorp T E, Dekkers J C, Martin S W, et al. Genetic parameters of health disorders, and relationships with 305-day milk yield and conformation traits of registered Holstein cows[J]. J Dairy Sci, 1998, 81(8):2264-2270.
[32] Wu Z W, Gao Z R, Liang H, et al.Network analysis reveals different hub genes and molecular pathways for pig in vitro fertilized early embryos and parthenogenotes[J]. Reprod Domest Anim, 2022, 57(12):1544-1553.
[33] Soto D A, Ross P J.Similarities between bovine and human germline development revealed by single-cell RNA sequencing[J]. Reproduction, 2021, 161(3):239-253.
No related articles found!
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!