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Association of GH, STAT5A, MYF5 gene polymorphisms with milk somatic cell count, EC and pH levels of Holstein dairy cattle

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References

  • Wojdak-Maksymiec K, Kmiec M, Ziemak J. Associations between bovine lactoferrin gene polymorphism and somatic cell count in milk. Veterinarni Med. 2012;51(1):14–20.
  • Hu Z-L, Park CA, Reecy JM. Building a livestock genetic and genomic information knowledgebase through integrative developments of animal QTLdb and CorrDB. Nucleic Acids Res. 2019;47(D1):701–710.
  • Coffey EM, Vinson WE, Pearson RE. Potential of somatic cell concentration in milk as a sire selection criteri an to reduce mastitis in dairy cattle. J Dairy Sci. 1986;69(8):2163–2172.
  • Green MJ, Green LE, Schukken YH, et al. Somatic cell count distributions during lactation predict clinical mastitis. J Dairy Sci. 2004;87(5):1256–1264.
  • Zhao X, Lacasse P. Mammary tissue damage during bovine mastitis: causes and control. J Anim Sci. 2008;86(13 Suppl):57–65.
  • Santos MV, Ma Y, Barbano DM. Effect of somatic cell count on proteolysis and lipolysis in pasteurized fluid milk during shelf-life storage. J Dairy Sci. 2003;86(8):2491–2503.
  • Miles AM, McArt JA, Yepes FAL, Stambuk CR, Virkler PD, Huson HJ. Udder and teat conformational risk factors for elevated somatic cell count and clinical mastitis in New York Holsteins. Prev Vet Med. 2019;163:7–13.
  • Berry DP, Lee JM, Macdonald KA, Stafford K, Matthews L, Roche JR. Associations among body condition score, body weight, somatic cell count, and clinical mastitis in seasonally calving dairy cattle. J Dairy Sci. 2007;90(2):637–648.
  • Veerkamp RF, Beerda B. Genetics and genomics to improve fertility in high producing dairy cows. Theriogenology. 2007;68:S266–S273.
  • Maharani D, Jung Y, Jung WY, et al. Association of five candidate genes with fatty acid composition in Korean cattle. Mol Biol Rep. 2012;39(5):6113–6121.
  • Hradeck E, Čítek J, Panicke L, Řehout V, Hanusová L. The relation of GH1, GHR and DGAT1 polymorphisms with estimated breeding values for milk production traits of German Holstein sires. Czech J Anim Sci. 2008;53(6):238–245.
  • Tahmoorespur M, Taheri A, Gholami H, Ansary M. PCR-SSCP variation of GH and STAT5A genes and their association with estimated breeding values of growth traits in Baluchi sheep. Anim Biotechnol. 2011;22(1):37–43.
  • Mullen MP, Berry DP, Howard DJ, et al. Associations between novel single nucleotide polymorphisms in the Bos taurus growth hormone gene and performance traits in Holstein-Friesian dairy cattle. J Dairy Sci. 2010;93(12):5959–5969.
  • Balogh O, Kovacs K, Kulcsar M, et al. AluI polymorphism of the bovine growth hormone (GH) gene, resumption of ovarian cyclicity, milk production and loss of body condition at the onset of lactation in dairy cows. Theriogenology. 2009;71(4):553–559.
  • Metin Kiyici J, Arslan K, Akyuz B, Kaliber M, Aksel EG, Çinar MU. Relationships between polymorphisms of growth hormone, leptin and myogenic factor 5 genes with some milk yield traits in Holstein dairy cows. Int J Dairy Technol. 2019;72(1):1–7.
  • Wakao H, Gouilleux F, Groner B. Mammary gland factor (MGF) is a novel member of he cytokine regulated transcription factor gene family and confers the prolactin response. Embo J. 1994;13(9):2182–2191.
  • Moriggl R, Gouilleux-Gruart V, Jahne R, et al. Deletion of the carboxyl-terminal transactivation domain of MGF-STAT5 results in sustained DNA binding and a dominant negative phenotype. Mol Cell Biol. 1996;16(10):5691–5700.
  • Selvaggi M, Dario C, Normanno G, Celano GV, Dario M. Genetic polymorphism of STAT5A protein: relationships with production traits and milk composition in Italian Brown cattle. J Dairy Res. 2009;76(4):441–445.
  • Seyfert H, Pitra C, Meyer L, et al. Molecular characterization of Stat5A- and Stat5B-encoding genes reveals extended intragenic sequence homogeneity in cattle and mouse and different degrees of divergent evolution of various domains. J Mol Evol. 2000;50(6):550–561.
  • Flisikowski K, Oprzadek J, Dymnicki E, Zwierzchowski L. New polymorphism in the bovine STAT5A gene and its association with meat production traits in beef cattle. Anim Sci Papers Rep. 2003;21(3):147–157.
  • Te Pas MFW, Harders FL, Soumillion A, Born L, Buist W, Meuwissen THE. Genetic variation at the porcine MYF-5 gene locus. Lack Of association with meat production traits. Mamm Genome. 1999;10(2):123–127.
  • Maak S, Neumann K, Swalve HH. Identification and analysis of putative regulatory sequences for the Myf5/Myf6 locus in different vertebrate species. Gene. 2006;379:141–147.
  • Seong J, Oh JD, Cheong IC, et al. Association between polymorphisms of Myf5 and POU1F1 genes with growth and carcass traits in Hanwoo (Korean cattle). Genes Genom. 2011;33(4):425–430.
  • Cinar MU, Akyüz B, Kiyici JM, Arslan K, Kaliber M, Aksel EG. Effects of GH-AluI and MYF5-TaqI polymorphisms on weaning weight and body measurements in Holstein young bulls. Kafkas Univ Vet Fak Derg. 2018;24(6):873–880.
  • Schlee P, Graml R, Rottman O, Pirchner F. Influence of growth hormone genotypes on breeding values of Simmental bulls. J Anim Breed Genet. 1994;111(1-6):253–256.
  • Şahin C, Akyüz B. Türkiye’de yetiştirilen beş sığır ırkında Myf5 gen polimorfizminin PCR-RFLP yöntemi ile belirlenmesi. Mediterr Agric Sci. 2017;1(30):35–38.
  • Weigel KA, Shook GE. Genetic selection for mastitis resistance. Vet Clin Food Anim Prac. 2018;34(3):457–472.
  • Shook GE, Schutz MM. Selection on somatic cell score to improve resistance to mastitis in the United States. J Dairy Sic. 1994;77(2):648–658.
  • Ogorevc J, Kunej T, Razpet A, Dovc P. Database of cattle candidate genes and genetic markers for milk production and mastitis. Anim Genet. 2009;40(6):832–851.
  • Dettori ML, Rocchigiani AM, Luridiana S, Mura MC, et al. Growth hormone gene variability and its effects on milk traits in primiparous Sarda goats. J Dairy Res. 2013;80(3):255–262.
  • Kadri NK, Guldbrandtsen B, Lund MS, Sahana G. Genetic dissection of milk yield traits and mastitis resistance quantitative trait loci on chromosome 20 in dairy cattle. J Dairy Sci. 2015;98(12):9015–9025.
  • Hiller S, Kowalewska-Łuczak I, Czerniawska-Piątkowska E. Association between CATHL2 gene polymorphism and milk production traits and somatic cells count in dairy cattle. Russ J Genet. 2020;56(3):383–386.
  • Sender G, Korwin-Kossakowska A, Pawlik A, Hameed KGA, Oprządek J. Genetic basis of mastitis resistance in dairy cattle–A. Review Annals Anim Sci. 2013;13(4):663–673.
  • Komisarek J, Michalak A, Walendowska A. The effects of polymorphisms in Dgat 1, GH and GHR genes on reproduction and production traits in Jersey cows. Anim Sci Papers and Reports. 2011;29(1):29–36.
  • Biggadike H, Ohnstad I, Hillerton DE. A practical evaluation of milk conductivity measurements. Proceedings of British Mastitis Conference. 2000;56–61.
  • Xu D, Qu CK. Protein tyrosine phosphatases in the Jak/Stat pathway. Front Biosci. 2008;13:4925–4932.
  • Miyoshi K, Shillingford JM, Smith GH, et al. Signal transducer and activator of transcription (Stat) 5 controls the proliferation and differentiation of mammary alveolar epithelium. J Cell Biol. 2001;155(4):531–542.
  • Cai Z, Guldbrandtsen B, Lund MS, Sahana G. Prioritizing candidate genes for fertility in dairy cows using gene-based analysis, functional annotation and differential gene expression. BMC Genomics. 2019;20(1):255.
  • Ebrahimie E, Ebrahimi F, Ebrahimi M, Tomlinson S, Petrowski KR. A large-scale study of indicators of sub-clinical mastitis in dairy cattle by attribute weighting analysis of milk composition features: highlighting the predictive power of lactose and electrical conductivity. J Dairy Res. 2018;85(2):193–200.
  • Usman T, Yu Y, Liu C, Wang X, Zhang Q, Wang Y. Genetic effects of single nucleotide polymorphisms in JAK2 and STAT5A genes on susceptibility of Chinese Holsteins to mastitis. Mol Biol Rep. 2014;41(12):8293–8301.
  • Klover P, Hennighausen L. Postnatal body growth is dependent on the transcription factors signal transducers and activators of transcription 5a/b in muscle: a role for autocrine/paracrine insulin-like growth factor I. Endocrinology. 2007;148(4):1489–1497.

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