作物学报 ›› 2009, Vol. 35 ›› Issue (7): 1268-1273.doi: 10.3724/SP.J.1006.2009.01268
蒋洪蔚1,2,李灿东1,2,刘春燕1,2,张闻博2,邱鹏程2,李文12福,高运来1,2,胡国华1,3*,陈庆山2,*
JIANG Hong-Wei1,2,LI Can-Dong1,2,LIU Chun-Yan1,2,ZHANG Wen-Bo2,QIU Peng-Cheng2,LI Wen-Fu12,GAO Yun-Lai12,HU Guo-Hua13*,CHEN Qing-Shan2*
摘要:
利用美国大豆品种Clark (供体亲本)与主栽品种红丰11 (轮回亲本)所构建的回交导入系,经过严格的芽期耐低温筛选鉴定,得到46个在芽期耐低温性状上明显超过轮回亲本的导入系个体。利用这套选择群体结合随机对照群体和基因型分析,通过基于遗传搭车原理的卡方分析和单向方差分析方法,检测到分布于大豆10个连锁群的14个与大豆芽期耐低温相关的QTL。其中卡方分析检测到12个供体片段的超导入位点,对芽期耐低温性状表现为正效应。方差分析检测到5个位点,也表现为正效应,且其中Satt237、SOYPRP1和Satt540 3个位点是两种方法共同检测到的,应视为与耐低温直接相关的QTL。本研究旨在创建大豆芽期耐低温分子育种的检测方法平台,为大豆芽期耐低温研究提供有用的分子标记。
| [1] Shan C-Y(单彩云). Screening and Proteomics Research of Soybean Low Temperature Tolerance Germplasm. MS Dissertation of Northeast Agricultural University, 2008. pp 30-31 (in Chinese with English abstract) [2] Hu G-Y(胡国玉). Genetic Analysis and Molecular Marker on Chilling Tolerance of Soybean in Early Stage. MS Dissertation of Nanjing Agricultural University, 2005. pp 44-46 (in Chinese with English abstract) [3] Song Y(宋友), Wang J-A(王继安). Identification of chilling tolerance: In: Early soybean varieties at germination and seeding growth stages. Soybean Sci (大豆科学), 2006, 25(3): 99-303 (in Chinese with English abstract) [4] Wang P(王萍), Tao D(陶丹), Song H-X(宋海星), Song L-Q(宋立泉), Zhang Y-H(张玉华), Yuan Y(袁鹰), Ran Y-Z(冉彦中), Yin T-F(尹田夫). The response of soybeans to low temperature at blooming stage. Crops (作物杂志), 2000, (2): 5-6 (in Chinese) [5] Eshed Y, Zamir D. An introgression line population of Lycopersicon pernellii in the cultivated tomato enables the identification and fine mapping of yield-associated QTL. Genetics, 1995, 141: 1147-1162 [6] Fulton T M, Nelson J C, Tanksley S D. Introgression and DNA marker analysis of Lycopersicon peruvianum, a wild relative of the cultivated tomato into Lycopersicon esculentum, followed through three successive backcross generations. Theor Appl Genet, 1997, 95: 895-902 [7] Zamir D, Eshed Y. Tomato Genetics and Breeding Using Nearly Isogenic Introgression Lines Derived from Wild Species. In: Paterson A H ed. Molecular Dissection of Complex Traits. Boca Raton, FL: CRC Press, 1998. pp 207-217 [8] Zhang Y S, Luo L J, Xu C G, Zhang Q F, Xing Y Z. Quantitative trait loci for panicle size, heading date and plant height co-segregating in trait-performance derived near-isogenic lines of rice (Oryza sativa). Theor Appl Genet, 2006, 113: 361-368 [9] Steele K A, Price A H, Shashidhar H E, Witcombe J R. Marker-assisted selection to introgress rice QTLs controlling root traits into an Indian upland rice variety. Theor Appl Genet,2006, 112: 208-221 [10] Chen B-X(陈冰嬬), Shi Y-R(石英尧), Cui J-T(崔金腾), Qian Y-L(钱益亮), Liu H-Y(刘海燕), Zhang L-K(张力科), Wang H(王辉), Gao Y-M(高用明), Zhu L-H(朱苓华), Li Z-K(黎志康). QTL detection of grain size and shape with BC2F2 advanced backcross population of rice (Oryza sativa L.). Acta Agron Sin(作物学报), 2008, 34(8): 1299-1307 (in Chinese with English abstract) [11] Sun Y(孙勇), Zang J-P(藏金萍), Wang Y(王韵), Zhu L-H(朱苓华), Xu J-L(徐建龙), Li Z-K(黎志康). Mining favorable salt-tolerant QTL from rice germplasm using a backcrossing introgression line population. Acta AgronSin (作物学报), 2007, 33(10): 1611-1617 (in Chinese with English abstract) [12] Zhao Y-F(赵永锋), Chen J-T(陈景堂), Zhu L-Y(祝丽英), Jia X-Y(贾晓艳), Huang Y-Q(黄亚群), Liu Z-Z(刘志增). Status of research on application and establishment of SSILs in maize. J Maize Sci (玉米科学), 2006, 14(3): 17-19(in Chinese with English abstract) [13] Fu D-X (傅大雄), Ruan R-W(阮仁武), Liu D-J(刘大军), Zong X-F(宗学凤), Yin J-M(殷家明), Hu K(胡奎). Study of dwarfing wheat sources using near isogenic lines. Sci Agric Sin (中国农业科学), 2007, 40(4): 655-664 (in Chinese with English abstract) [14] Ramsay L D, Jennings D E, Bohuon E J R, Arthur A E, Lydiate D J, Kearsey M J, Marshall D F. The construction of a substitution library of recombinant backcross lines in Brassica oleracea for the precision mapping of quantitative trait loci. Genome, 1996, 39: 558-567 [15] Howell P M, Marshall D J. Towards developing intervarietal substitution lines in Brassica napus using marker-assisted selection. Genome, 1996, 39: 348-358 [16] Burns M J, Barnes S R, Boeman J C X. QTL analysis of an intervarietal set of substitution line in Brassica napus: (i) Seed oil content and fatty acid composition. Heredity, 2003, 90: 39-48 [17] Schlotterer C. Hitchhiking mapping-functional genomics from the population genetics from the population genetics perspective. Trends Genet, 2003, 19: 32-38 [18] Choi I Y, Hyten D L, Matukumalli L K, Song Q J, Chaky J M, Quigley C V, Chase K, Lark K G, Reiter R S, Yoon M S, Hwang E Y, Yi S I, Young N D, Shoemaker R C, van Tassell C P, Specht J E, Cregan P B. A soybean transcript map: Gene distribution, haplotype and single-nucleotide polymorphism analysis. Genetics, 2007, 176: 685-696 [19] Harr B, Kauer M, Schlotterer C, Hitchhiking mapping: A population-based fine-mapping strategy for adaptive mutations in Drosophilamelanogaster. Proc Natl Acad Sci USA, 2002, 99: 32-28 Zheng T-Q(郑天清), Xu J-L(徐建龙), Fu B-Y(傅彬英), Gao Y-M(高用明), Veruka S, Lafitte H R, Zhai H-Q(瞿虎渠), Wan J-M(万建民), Li Z-K(黎志康). Application of Genetic hitch-hiking and ANOVA in identification of loci for drought tolerance in populations of rice from directional selection. Acta Agron Sin (作物学报), 2007, 33(5): 799-804 (in Chinese with English abstract) |
| [1] | 金昱何, 王雪菲, 徐张一娃, 缪怡宁, 蒋云杰, 伊莹, 缪德麟, 朱静仪, 钟一帆, 陈铭亨, 方芳, 刘鹏. 外源激素对低温胁迫下大豆叶片叶绿素荧光参数及抗氧化酶系统的影响[J]. 作物学报, 2026, 52(6): 1817-1829. |
| [2] | 唐宽强, 李公允, 宋美毅, 赵雪, 常春玲. 大豆株高性状全基因组关联分析及预测模型构建[J]. 作物学报, 2026, 52(6): 1743-1756. |
| [3] | 郑玉珍, 齐飞艳, 孙子淇, 刘华, 秦利, 石磊, 王娟, 汪蒙蒙, 韩锁义, 徐静, 苗利娟, 黄冰艳, 董文召, 郑峥, 张新友. 花生籽仁总超长链脂肪酸和7种脂肪酸组分的QTL定位[J]. 作物学报, 2026, 52(6): 1646-1657. |
| [4] | 姚术, 郭凯悦, 翟慧慧, 姚佳慧, 邓文琪, 闫玲, 黄驰, 高阳, 俞嫣然, 赵振邦, 李英慧, 王晓波, 李佳佳. 大豆苗期耐低铁综合评价及优异种质筛选[J]. 作物学报, 2026, 52(5): 1373-1387. |
| [5] | 刘长友, 王珅, 时会影, 沈颖超, 孙蕾, 王彦, 张志肖, 苏秋竹, 田静, 范保杰. 基于饭豆基因资源的小豆远缘杂交群体抗豆象QTL定位[J]. 作物学报, 2026, 52(3): 936-944. |
| [6] | 张晴, 杨昱, 郭茜, 岳霈尧, 殷丛丛, 牛景萍, 赵晋忠, 杜维俊, 岳爱琴. 大豆GmARA6a的克隆及响应盐胁迫的功能分析[J]. 作物学报, 2026, 52(2): 480-493. |
| [7] | 亓青松, 牛翔雨, 刘冰可, 康禄, 王琛, 封德顺. 小偃麦辐射诱变种质芽期和苗期耐盐鉴定、筛选及耐盐指标评价[J]. 作物学报, 2026, 52(2): 389-404. |
| [8] | 王克晶, 李向华. 我国珍稀的大豆属多年生烟豆和短绒野大豆物种遗传资源濒危性评估分析[J]. 作物学报, 2025, 51(8): 2009-2019. |
| [9] | 孟然, 李赵嘉, 冯薇, 陈悦, 刘路平, 杨春燕, 鲁雪林, 王秀萍. 大豆不同生育时期耐盐性综合评价及耐盐种质筛选[J]. 作物学报, 2025, 51(8): 1991-2008. |
| [10] | 贺红利, 张雨涵, 杨静, 程云清, 赵杨, 李星诺, 司洪亮, 张兴政, 杨向东. 大豆e1-as基因突变体的创制及生理分析[J]. 作物学报, 2025, 51(8): 2228-2239. |
| [11] | 邵顺伟, 陈卓, 兰振东, 蔡兴奎, 邹华芬, 李晨曦, 唐景华, 朱熙, 张彧, 董建科, 金辉, 宋波涛. 基于BSA-seq技术的块茎芽眼深度QTL定位分析[J]. 作物学报, 2025, 51(7): 1725-1735. |
| [12] | 胡蒙, 沙丹, 张晟瑞, 谷勇哲, 张世碧, 李静, 孙君明, 邱丽娟, 李斌. 大豆分枝数QTL定位及候选基因筛选[J]. 作物学报, 2025, 51(7): 1747-1756. |
| [13] | 杨海洋, 吴林宣, 李博纹, 石翰峰, 袁禧龙, 刘金朝, 蔡海荣, 陈诗怡, 郭涛, 王慧. 基于QTL定位发现的OsWRI3调控水稻种子的落粒性[J]. 作物学报, 2025, 51(7): 1712-1724. |
| [14] | 王琼, 邹丹霞, 陈兴运, 张威, 张红梅, 刘晓庆, 贾倩茹, 魏利斌, 崔晓艳, 陈新, 王学军, 陈华涛. 大豆开花时间和成熟期性状全基因组关联分析与候选基因预测[J]. 作物学报, 2025, 51(6): 1558-1568. |
| [15] | 殷丛丛, 李睿琦, 岳霈尧, 李晨, 牛景萍, 赵晋忠, 杜维俊, 岳爱琴. 基于闭合哑铃介导等温扩增可视化检测大豆花叶病毒SC15方法的建立及应用[J]. 作物学报, 2025, 51(5): 1248-1260. |
|
||