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Research Article

Association of polymorphisms in exon 6 and 3′-untranslated region of the OLR1 gene with milk production traits in Sahiwal cattle

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Pages 156-165 | Received 21 Oct 2021, Accepted 08 Jan 2023, Published online: 03 Feb 2023

References

  • Al-Thuwaini T. 2020. Association between polymorphism in BMP15 and GDF9 genes and impairing female fecundity in diabetes type 2. Middle East Fertil Soc J. 25(1):1–10. doi:10.1186/s43043-020-00032-5.
  • Al-Thuwaini TM. 2021. Novel single nucleotide polymorphism in the prolactin gene of awassi ewes and its role in the reproductive traits. Iraqi J Veterinary Sci. 35(3):429–435. doi:10.33899/ijvs.2020.126973.1423.
  • Ardicli S, Soyudal B, Samli H, Dincel D, Balci F. 2018. Effect of STAT1, OLR1, CSN1S1, CSN1S2, and DGAT1 genes on milk yield and composition traits of Holstein breed. Rev Bras Zootec. 47:e20170247.
  • Ashwell MS, Heyen DW, Sonstegard TS, Van Tassell CP, Da Y, VanRaden PM, Ron M, Weller JI, Lewin HA. 2004. Detection of quantitative trait loci affecting milk production, health, and reproductive traits in Holstein cattle. J Dairy Sci. 87:468–475. doi:10.3168/jds.S0022-0302(04)73186-0.
  • Ates A, Hosturk GT, Akis I, Gursel FE, Yardibi H, Oztabak K. 2014. Genotype and allele frequencies of polymorphisms in ABCG2, PPARGC1A and OLR1 genes in indigenous cattle breeds in Turkey. ActaVeterinaria. 64(1):73–80.
  • Dunn S, Vohra RS, Murphy JE, Homer–Vanniasinkam S, Walker JH, Ponnambalam S. 2008. The lectin–like oxidized low–density–lipoprotein receptor: a pro–inflammatory factor in vascular disease. Biochem J. 409:349–355. doi:10.1042/BJ20071196.
  • FAO. 1983. Food and Agricultural Organization of United Nations. Animal Genetics Resources Information Newsletter 1. https://www.fao.org/.
  • Gasteiger E, Gattiker A, Hoogland C, Ivanyi I, Appel RD, Bairoch A. 2003. ExPASy: the proteomics server for in-depth protein knowledge and analysis. Nucleic Acids Res. 31:3784–3788. doi:10.1093/nar/gkg563.
  • Georges M, Nielsen D, MacKinnon M, Mishra A, Okimoto R, Pasquino AT, Sargeant LS, Sorensen A, Steele MR, Zhao X. 1995. Mapping quantitative trait loci controlling milk production in dairy cattle by exploiting progeny testing. Genetics. 139:907–920. doi:10.1093/genetics/139.2.907.
  • Harvey WR. 1990. Guide for LSMLMW, PC-1 version, mixed model least squares and maximum likelihood computer programme. Mimeograph Ohio state. USA: University.
  • Ilatsia ED, Roessler R, Kahi AK, Piepho HP, Zarate V. 2012. Production objectives and breeding goals of sahiwal cattle keepers in Kenya and implications for a breeding programme. Trop Anim Health Prod. 44(3):519–530. doi:10.1007/s11250-011-9928-8.
  • Iverson SJ, Hamosh M, Bowen WD. 1995. Lipoprotein lipase activity and its relationship to high milk fat transfer during lactation in grey seals. Journal of Comparative Physiology B. 165:384–395.
  • Jensen DR, Gavigan S, Sawicki V, Witsell DL, Eckel RH, Neville MC. 1994. Regulation of lipoprotein lipase activity and mRNA in the mammary gland of the lactating mouse. Biochem J. 298:321–327. doi:10.1042/bj2980321.
  • Khatib H, Leonard S, Schutzkus V, Luo W, Chang Y. 2006. Association of the OLR1 gene with milk composition in Holstein dairy cattle. J Dairy Sci. 89:1753–1760. doi:10.3168/jds.S0022-0302(06)72243-3.
  • Khatib H, Rosa K, Weigal F, Schiavini F, Snatus E, Bagnato A. 2007. Additional support for an association between OLR1 and milk fat traits in cattle. Anim Genet. 38:308–310. doi:10.1111/j.1365-2052.2007.01584.x.
  • Kim S, Lim B, Cho J, Lee S, Dang CG, Jeon JH, Kim JM, Lee J. 2021. Genome-wide identification of candidate genes for milk production traits in Korean Holstein cattle. Animals. 11(5):1392. doi:10.3390/ani11051392.
  • Komisarek J, Dorynek Z. 2009. Effect of ABCG2. PPARGC. 1A. OLR1 and SCD1 gene polymorphism on estimated breeding values for functional and production traits in Polish Holstein-Friesian bulls. J Appl Genet. 50:125–132.
  • Kramer CY. 1957. Extension of multiple range tests to group correlated adjusted means. Biometrics. 13:13–18. doi:10.2307/3001898.
  • Liao CH, Shaw HM, Chao PM. 2008. Impairment of glucose metabolism in mice induced by dietary oxidized frying oil is different from that induced by conjugated linoleic acid. Nutrition. 24:744–752. doi:10.1016/j.nut.2008.03.010.
  • Mashhadi MH, Sobhanirad S, Nooraee SE, Kashani RB. 2014. Polymorphism of oxidized low density lipoprotein receptor1 (OLR1) gene in the Iranian Holstein dairy cattle. Res Opin Anim Veterinary Sci. 4(5):237–240.
  • Metha JL, Li DY. 2002. Identification, regulation and function of a novel lectin-like oxidized lowdensitylipoprotein receptor. J Am Coll Cardiol. 39:1429–1435.
  • Meyer K. 2007. WOMBAT—a tool for mixed model analyses in quantitative genetics by restricted maximum likelihood (REML). J Zhejiang Univ Sci B. 8:815–821. doi:10.1631/jzus.2007.B0815.
  • Mohammed MM, Al-Thuwaini TM, Al-Shuhaib MBS. 2021. Association of OLR1 polymorphism with lipid profile levels and lipid ratio of Iraqi awassi ewes. Adv Anim Veterinary Sci. 9(9):1460–1465.
  • NAC. 1976. The report of the national commission of agriculture, Government of India.
  • Ogorevc J, Kunej T, Razpet A, Dovc P. 2009. Database of cattle candidate genes and genetic markers for milk production and mastitis. Anim Genet. 40:832–851. doi:10.1111/j.1365-2052.2009.01921.x.
  • Olsen HG, Gomez-Raya L, Vage DI, Olsaker I, Klungland H, Svendsen M, Adnoy T, Sabry A, Klemetsdal G, Schulman N, et al. 2002. A genome scan for quantitative trait loci affecting milk production in Norwegian dairy cattle. J Dairy Sci. 85:3124–3130. doi:10.3168/jds.S0022-0302(02)74400-7.
  • Ringseis R, Dathe C, Muschick A, Brandsch C, Eder K. 2007. Oxidized fat reduces milk triacylglycerol concentrations by inhibiting gene expression of lipoprotein lipase and fatty acid transporters in the mammary gland of rats. J Nutr. 137:2056–2061.
  • Rodriguez-Zas SL, Southey BR, Heyen DW, Lewin HA. 2002. Interval and composite interval mapping of somatic cell score, yield, and components of milk in dairy cattle. J Dairy Sci. 85:3081–3091.
  • Rychtarova J, Sztankoova Z, Kyselova J, Zink V, Stipkova M, Vacek M, Stolc L. 2014. Effect of DGAT1, BTN1A1, OLR1, and STAT1 genes on milk production and reproduction traits in the Czech Fleckvieh breed. Czech J Anim Sci. 59:45–53.
  • Sambrook J, Russell DW. 2001. Cold spring laboratory press; NY, cold spring harbour. Molecular cloning: A laboratory manual III.
  • Schennink A, Bovenhuis H, Leon-Kloosterziel KM, Van Arendonk JA, Visker MH. 2009. Effect of polymorphisms in the FASN, OLR1, PPARGC1A, PRL and STAT5A genes on bovine milk-fat composition. Anim Genet. 40(6):909–916.
  • Sim N-L, Kumar P, Hu J, Henikoff S, Schneider G, Ng PC. 2012. SIFT web server: predicting effects of amino acid substitutions on proteins. Nucleic Acids Res. 40(1):452–457.
  • Singh OP. 1983. Climate of Karnal. Bulletin No. 8. Karnal (India): Central Soil Salinity Research Institute (ICAR).
  • Soltani-Ghombavani M, Ansari-Mahyari S, Ali-Edriss M. 2013. Association of a polymorphism in the 3’ untranslated region of the OLR1 gene with milk fat and protein in dairy cows. Archiv Tierzucht. 56(32):328–334.
  • Sturges HA. 1926. The choice of a class interval. J Am Stat Assoc. 21:65–66. doi:10.1080/01621459.1926.10502161.
  • Viitala SM, Schulman NF, De Koning DJ, Elo K, Kinos R, Virta A, Virta J, Maki-Tanila A, Vilkki JH. 2003. Quantitative trait loci affecting milk production traits in Finnish Ayrshire dairy cattle. J Dairy Sci. 86:1828–1836. doi:10.3168/jds.S0022-0302(03)73769-2.
  • Wang X, Penagaricano F, Tal-Stein R, Lipkin E, Khatib H. 2012. Association of an OLR1 polymorphism with milk production traits in the Israeli Holstein population. J Dairy Sci. 95:1565–1567.
  • Yeh FC, Yang RC, Boyle T. 1999. Popgene. microsoft windows-based freeware for population genetic analysis. version 1.31. Canada: University of Alberta.