大菱鲆选育家系抗鳗弧菌性能
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1. 中国水产科学研究院 黄海水产研究所, 青岛市海水鱼类种子工程与生物技术重点实验室 农业部海洋渔业可持续发展重点实验室, 山东 青岛266071;2. 大连海洋大学 辽宁 大连116023

作者简介:

马爱军, 研究员, 主要从事海水鱼类增养殖. Tel: 0532-85835103; E-mail: maaj@ysfri.ac.cn

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S917

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现代农业产业技术体系建设专项资金项目(CARS-50-01).


Family selection and estimation of disease resistance in turbot, Scop­htha­lmus maximus
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1. Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences; Qingdao Key Laboratory for Marine Fish Breeding and Biotechnology; Key Laboratory for Sustainable Development of Marine Fisheries, Ministry of Agriculture, Qingdao 266071, Ch

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    摘要:

    年构建的感染实验个家系中个家系的存活率达到其余家系的存活率则低于通过计算各家系的优势比个家系的存活率达到对个家系聚为一类。综合感染家系的高成活率、高优势比以及聚类分析的结果个抗病力较强的优良家系。选育出的抗病力较强的家系可做为抗鳗弧菌选育的核心育种群体

    Abstract:

    ), a flatfish of deep water species, is a high-nutrition and economic valued species and currently cultured widely in ChinaIn recent years, however, serious germ plasm degeneration occurred due to the lack of long-term and effective broodstock management programsproduction of farmed turbot became highly unstable and total output declined gradually. Thereforethe genetic improvement of turbot will be necessary to sustain the industry development. Within a breeding program in aquacultureThe traits which determines the total harvest yield are highly desirable economic traits, for example, fast-growing, high survival, . The sustainability of turbot culture has been threatened by disease outbreaks and, at present, there is no program in place to minimize such outbreaks. To aid selective breeding for disease resistance traits, in this, study, we conducted a challenge test against using 30 2nd-generation families that were constructed by consecutive selection for faster growth from a base population. We quantified their disease resistance based on survival and tested for differences among families using an odds ratio. There was a significant difference in disease resistance to bacterial infection among families. Twelve families (Family 1, 3, 4, 6, 9, 12, 14, 19, 22, 23, 29, and 30) had high disease resistance with a >65% survival rate; 11 families (Family 8, 10, 13, 16, 18, 20, 21, 24, 25, 27, and 28) had moderately high disease resistance with a 50%–65% survival rate; 3 families (Family 2, 7, and 17) had moderate disease resistance with a 35%–50% survival rate; and 4 families (Family 5, 11, 15, and 26) had low disease resistance with a <35% survival rate. We calculated the odds ratio for disease resistance by b-COX regression analysis, and screened 5 superior families (Family 3, 9, 14, 19, and 23) for third parental generation breeding. The selected families can be used as the core breeding population for turbot resistance to. In addition, the results of the study also provide a reference for selective breeding for disease resistance in cultured turbot.

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马爱军,郭建丽,王新安,黄智慧,王婷,商晓梅.大菱鲆选育家系抗鳗弧菌性能[J].中国水产科学,2014,21(3):484-493
MA Aijun, GUO Jianli, WANG Xin’an, HUANG Zhihui, WANG Ting, SHANG Xiaomei. Family selection and estimation of disease resistance in turbot, Scop­htha­lmus maximus[J]. Journal of Fishery Sciences of China,2014,21(3):484-493

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  • 在线发布日期: 2015-07-16
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