Detection and analysis of polymorphisms of 59571364 and 59912586 loci on X chromosome in fat-tail and thin-tail sheep flocks
Received date: 2013-07-22
Revised date: 2013-11-04
Online published: 2013-11-21
In order to analyze the correlation of tail fat deposition and two SNP loci on Ovis arise chromosome X and provide a theoretical basis for using molecular assisted selection technology in further low-fat sheep breeding, the breeds with extreme differences in tail types (Altay, Small Tail Han Sheep, Hu, Chinese Merino and Suffolk) were used to detect the polymorphisms of two SNP loci on X chromosome and the haplotypes with PCR-RFLP method. The results showed that the TT genotype at 59571364 locus and GG genotype at 59912586 locus were preponderant genotypes in thin-tailed Chinese Merino and Suffolk sheep flocks, while the percentage of the two genotypes in fat-tailed (fat-rmup) Altay and Hu flocks is less than 2%. Haplotype analysis showed that CA haplotype is the main haplotype, the percentage of CA is up to 55%, and the percentage of CA and TA haplotypes together was 88.33% in Altay sheep flock. These results suggest that there are great differences in the SNP distribution of the 59571364 and 59912586 loci among different tail-typed sheep flocks, which can be used as molecular markers in high or low fat sheep breeding.
Key words: fat-tail trait; Altay sheep; SNP locus; polymorphism; genotype
ZHANG Wei, SHEN Min, LI Huan, GAO Lei, LIANG Yao-Wei, YANG Jing-Quan, LIU Shou-Ren, WANG Xin-Hua, GAN Shang-Quan . Detection and analysis of polymorphisms of 59571364 and 59912586 loci on X chromosome in fat-tail and thin-tail sheep flocks[J]. Hereditas(Beijing), 2013 , 35(12) : 1384 -1390 . DOI: 10.3724/SP.J.1005.2013.01384
[1] Dacidson A. The Oxford Companion to Food. 2nd ed. London: Oxford University Press, 2006. <\p>
[2] Ermias E, Yami A, Rege JEO. Fat deposition in tropical sheep as adaptive attribute to periodic feed fluctuation. J Anim Breed Genet, 2002, 119: 235–246. <\p>
[3] Gökdal Ö, Ulker H, Karakus F, Cengiz F, Temur C, Handil H. Growth, feedlot performance and carcass char-acteristics of Karakas and crossbred lambs (F1) (Ile de France × Akkaraman (G1) × Karakas) under rural farm conditions in Turkey. South Afr J Anim Sci, 2004, 34(4): 223–232. <\p>
[4] Kashan NEJ, Manafi-Azar GH, Afzalzadeh A, Salehi A. Growth performance and carcass quality of fattening lambs from fat-tailed and tailed sheep breeds. Small Ru-minant Res, 2005, 60(3): 267–271. <\p>
[5] Güney O. Commercial crossbreeding between Ile-de-France, Rambouillet, Chios and local fat-tail Awassi for market lamb production. Small Ruminant Res, 1990, 3(5): 449– 456. <\p>
[6] Farid A. Slaughter and carcass characteristics of three fat-tailed sheep breeds and their crosses with Corriedale and Targhee rams. Small Ruminant Res, 1991, 5(3): 255–271. <\p>
[7] Momani-Shaker M, Abdullah AY, Kridli RT, Bláha J, Šáda I, Sovják R. Fattening performance and carcass value of Awassi ram lambs, F1 crossbreds of Romanov × Awassi and Charollais × Awassi in Jordan. Czech J Anim Sci, 2002, 47(10): 429–438. <\p>
[8] Ünal N, Akçapinar H, Aytaç M, Atasoy F. Fattening per-formance and carcass traits in crossbred ram lambs. Me-dycyna Wet, 2006, 62(2): 401–404. <\p>
[9] Khaldari M, Kashan NEJ, Afzalzadeh A, Salehi A. Growth and carcass characteristics of crossbred progeny from lean-tailed and fat-tailed sheep breeds. South Afr J Anim Sci, 2007, 37(1): 51–56. <\p>
[10] Marai IFM, Daader AH, Bahgat LB. Performance traits of purebred Ossimi and Rahmani lambs and their crosses with Finnsheep born under two accelerated mating sys-tems. Arch Tierz, 2009, 52: 497–451. <\p>
[11] Moradi MH, Nejati-Javaremi A, Moradi-Shahrbabak M, Dodds KG, McEwan JC. Genomic scan of selective sweeps in thin and fat tail sheep breeds for identifying of candidate regions associated with fat deposition. BMC Genet, 2012, 13(1): 1–15. <\p>
[12] 甘尚权, 张伟, 沈敏, 李欢, 杨井泉, 梁耀伟, 高磊, 刘守仁, 王新华. 绵羊X染色体59383635位点多态性与脂尾性状的相关性分析. 遗传, 2013, 35(10): 1209– 1216. <\p>
[13] 马桢, 郝耿, 杨会国, 陈童, 艾布什. 阿勒泰羊品种资源现状及发展思路. 草食家畜, 2012, (2): 10–12, 15. <\p>
[14] Raoofi A, Rahmani Shahraki A, Namjoo A, Momtaz H. A survey on prevalence and pathological findings of gallstones in Lori-Bakhtiari sheep in Iran. Sci World J, 2012, 2012: 524607. <\p>
[15] Farhangfar H, Naeemipour H, Zinvand B. Application of random regression model to estimate genetic parameters for average daily gains in Lori-Bakhtiari sheep breed of Iran. Pak J Biol Sci, 2007, 10(14): 2407–2412. <\p>
[16] 孟详人, 郭军, 赵倩君, 马月辉, 关伟军, 刘娣, 狄冉, 乔海云, 那日苏. 11个绵羊品种MSTN基因非翻译区的变异. 遗传, 2008, 30(12): 1585–1590. <\p>
[17] 高蓝, 李浩明. DNA分子标记在番茄遗传育种研究中的应用. 遗传, 2003, 25(3): 361–366. <\p>
[18] 何风华, 席章营, 曾瑞珍, Talukdar A, 张桂权. 利用高代回交和分子标记辅助选择建立水稻单片段代换系. 遗传学报, 2005, 32(8): 825–831. <\p>
[19] Hu ZL, Park CA, Wu XL, Reecy JM. Animal QTLdb: an improved database tool for livestock animal QTL/association data dissemination in the post-genome era. Nucleic Acids Res, 2013, 41(D1): D871–D879. <\p>
[20] Rohrer GA, Keele JW. Identification of quantitative trait loci affecting carcass composition in swine: I. Fat deposition traits. J Anim Sci, 1998, 76(9): 2247–2254. <\p>
[21] Rohrer GA, Keele JW. Identification of quantitative trait loci affecting carcass composition in sw
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