肖炜, 王腾, 李大宇, 邹芝英, 祝璟琳, 韩珏, 杨弘. 埃及品系尼罗罗非鱼不同选育世代mtDNA D-loop区 遗传多样性分析[J]. 南方水产科学, 2015, 11(3): 29-34. DOI: 10.3969/j.issn.2095-0780.2015.03.005
引用本文: 肖炜, 王腾, 李大宇, 邹芝英, 祝璟琳, 韩珏, 杨弘. 埃及品系尼罗罗非鱼不同选育世代mtDNA D-loop区 遗传多样性分析[J]. 南方水产科学, 2015, 11(3): 29-34. DOI: 10.3969/j.issn.2095-0780.2015.03.005
XIAO Wei, WANG Teng, LI Dayu, ZOU Zhiying, ZHU Jinglin, HAN Jue, YANG Hong. Genetic variation of mitochondrial DNA D-loop region in different generations of Egyptian strain of Oreochromis niloticus[J]. South China Fisheries Science, 2015, 11(3): 29-34. DOI: 10.3969/j.issn.2095-0780.2015.03.005
Citation: XIAO Wei, WANG Teng, LI Dayu, ZOU Zhiying, ZHU Jinglin, HAN Jue, YANG Hong. Genetic variation of mitochondrial DNA D-loop region in different generations of Egyptian strain of Oreochromis niloticus[J]. South China Fisheries Science, 2015, 11(3): 29-34. DOI: 10.3969/j.issn.2095-0780.2015.03.005

埃及品系尼罗罗非鱼不同选育世代mtDNA D-loop区 遗传多样性分析

Genetic variation of mitochondrial DNA D-loop region in different generations of Egyptian strain of Oreochromis niloticus

  • 摘要: 为评价现有选育方式下的遗传结构现状及选育潜力,采用mtDNA D-loop序列差异分析技术,对埃及品系尼罗罗非鱼(Oreochromis niloticus)的3个选育世代群体共80尾鱼开展世代间遗传结构变异分析。结果显示:1)3个世代群体中个体序列长度为552~555 bp,包括52个变异位点、12个单倍型,平均单倍型多样度(H)为0.569;2)3个世代群体的核苷酸多态性(Pi)分别为0.021 9、0.040 3和0.039 7,各世代具备较高的多态性;3)3个世代中,F1具有5个单倍型,F2和F3均具有7个单倍型,F1、F2和F3共享2个单倍型,F1与F2共享1个单倍型,3个选育世代群体的单倍型在NJ系统树上相互交叉,无独立的进化枝。表明在目前选育方式下埃及品系尼罗罗非鱼世代间遗传信息较为稳定,选育并没有对罗非鱼选育群体的遗传结构造成大影响。

     

    Abstract: To evaluate the effect of the present breeding ways ongenetic structure and breeding potential of Egyptian strain of Oreochromis niloticus, we analyzed the variation of mitochondrial DNA D-loop region in theirthree generations (80 individuals).The results show that: 1) The length of the region sequenceswas 552~555 bp; 52 variable sites and 12 haplotypes were detected. The average haplotype diversity was 0.569. 2) The nucleotide polymorphisms (Pi) of three generations were 0.021 9, 0.040 3 and 0.039 7, respectively, each generation showing high polymorphism in the mitochondrial genetic diversity. 3) F1 generation contained five haplotypes; F2 generation contained seven haplotypes; F3 generation contained seven haplotypes. The three generations shared two haplotupes, and F1 and F2 generations shared a haplotype. The haplotypes of three generations crossed each other in the NJ tree and no unique clade of haplotype existed in each generation. It is concluded that therewas no significant variation in genetic structure at the control region sequence in the three generations. The genetic information among three generations of O.niloticus was stable by the present breeding ways.

     

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