[1]常 玮,王 娟,于 洋,等.基于F1家系关联群体的野生大豆优异基因挖掘方法研究[J].大豆科学,2018,37(01):50-57.[doi:10.11861/j.issn.1000-9841.2018.01.0050]
 CHANG Wei,WANG Juan,YU Yang,et al.Study of Mining Excellent Genes in Glycine soja by F1 Family Association Population[J].Soybean Science,2018,37(01):50-57.[doi:10.11861/j.issn.1000-9841.2018.01.0050]
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基于F1家系关联群体的野生大豆优异基因挖掘方法研究

参考文献/References:

[1] 徐豹. 中国野生大豆(G.soja)研究十年[J]. 吉林农业科学, 1989, 1: 5-13. (Xu B. A ten years studying of Glycine soja(G.soja) in China[J]. Journal of Jilin Agricultural Sciences, 1989, 1: 5-13.)

[2] Pazdernik D L, Hartman G L, Huang Y H, et al. A greenhouse technique for assessing Phytophthora root rot resistance in Glycine max and G.soja[J]. Plant Disease, 1997, 81(10): 1112-1114.
[3] Wang D, Diers B W, Arelli P R, et al. Loci underlying resistance to race 3 of soybean cyst nematode in Glycine soja plant introduction 468916[J]. Theoretical and Applied Genetics, 2001, 103(4): 561-566.
[4] Shi H. Studies on the drought resistance of wild soybean germplasm[J]. Soybean Science, 2003, 22(4): 5.
[5] Lee J D, Shannon J G, Vuong T D, et al. Inheritance of salt tolerance in wild soybean (Glycine soja Sieb. and Zucc.) accession PI483463[J]. Journal of Heredity, 2009: esp027.
[6] 马淑梅, 韩新华. 野生大豆资源对灰斑病抗性鉴定与评价[J]. 中国农学通报, 2015, 31(30): 86-91. (Ma S M, Han X H. Evaluation and identification of resistance of wild soybean germplasm to Cercospora sojina[J]. Chinese Agricultural Science Bulletin, 2015, 31(30): 86-91.)
[7] Concibido V, La Vallee B, Mclaird P, et al. Introgression of a quantitative trait locus for yield from Glycine soja into commercial soybean cultivars[J]. Theoretical and Applied Genetics, 2003, 106(4): 575-582.
[8] Song Q, Hyten D L, Jia G, et al. Development and evaluation of Soy SNP50K, a high-density genotyping array for soybean[J]. PLoS One, 2013, 8(1): e54985.
[9] Purcell S, Neale B, Todd-Brown K, et al. PLINK: A tool set for whole-genome association and population-based linkage analyses[J]. American Journal of Human Genetics, 2007, 81(3): 559-575.
[10]赵桂云, 李红丽, 王宇, 等. 大豆抗大豆食心虫机制研究进展[J]. 吉林农业, 2013(3): 73,72. (Zhao G Y, Li H L, Wang Y, et al. Advances in study on the mechanism of pod borer resistance in soybean[J]. Jilin Agriculture, 2013(3): 73,72.)
[11]裴颜龙, 王岚, 葛颂, 等. 野生大豆遗传多样性研究Ⅰ: 4个天然居群等位酶水平的分析[J]. 大豆科学, 1996, 25(4): 302-309. (Pei Y L, Wang L, Ge S, et al. Study on the genetic diversity of wild soybeanⅠ: Allozyme analysis of four natural populations[J]. Soybean Science, 1996, 25(4): 302-309.)
[12]Sesay S, Ojo D K, Ariyo O J, et al. Genetic variability, heritability and genetic advance studies in top-cross and three-way cross maize (Zea mays L.) hybrids[J]. Maydica, 2016, 61(2): M12, 1-7.
[13]周坤华, 雷刚, 方荣, 等. 利用辣椒种间F2和F2∶3两个群体进行其主要农艺性状QTL分析[J]. 园艺学报, 2015, 42(5): 879-889. (Zhou K H, Lei G, Fang R, et al. Detection of QTLs for main agronomic traits using F2 and F2∶3 inter specific populations in pepper[J]. Acta Horticulturae Sinical, 2015, 42(5): 879-889.)
[14]Wang H, Smith K P, Combs E, et al. Effect of population size and unbalanced data sets on QTL detection using genome-wide association mapping in barley breeding germplasm[J]. Theoretical and Applied Genetics, 2012, 124(1): 111-124.
[15]何小红, 徐辰武, 蒯建敏, 等. 数量性状基因作图精度的主要影响因子[J]. 作物学报, 2001, 28(4): 469-475. (He X H, Xu C W, Kuai J M, et al. Principal factors affecting the power of detection and accuracy of QTL mapping[J]. Acta Agronomica Sinica, 2001, 28(4): 469-475.)
[16]赵洪波, 李明丽, 鲁绍雄, 等. 群体规模和性状遗传力对F2设计下QTL定位效果的影响[J]. 云南农业大学学报, 2007, 22(2): 159-163. (Zhao H B, Li M L, Lu S X, et al. Study on the effects of population size and trait heritability on the accuracy of QTL mapping under F2 design[J]. Journal of Yunnan Agricultural University, 2007, 22(2): 159-163.)
[17]王孝义, 李明丽, 刘刚, 等. 基因型选择和基因辅助BLUP对不同遗传力性状的选择效果[J]. 云南农业大学学报(自然科学), 2013, 28(6): 796-803. (Wang X Y, Li M L, Liu G, Lu S X. Effects of genotype selection and gene-assisted BLUP forselection on the traits with different heritabilities[J]. Journal of Yunnan Agricultural University (Natural Sciences), 2013, 28(6): 796-803.)
[18]王军, 周美学, 黄祖六, 等. 大麦DH群体若干数量性状的遗传分析[J]. 扬州大学学报(农业与生命科学版), 2006, 27(3): 65-69. (Wang J, Zhou M X, Huang Z L, et al. Genetic analysis of quantitative traits of a doubled haploid population in barley[J]. Journal of Yangzhou University (Agricultural and Life Science Edition), 2006, 27(3): 65-69.)

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备注/Memo

收稿日期:2017-06-07

基金项目:河南省科技攻关计划(农业领域)(162102110139)。
第一作者简介:常玮(1984-),男,博士,讲师,主要从事大豆分子育种研究。E-mail:weichang0@126.com。

更新日期/Last Update: 2018-03-13