HU Zhen-bang,LIU Hang,XIN Da-wei,et al.QTL Analysis of Seed Length and Seed Width by the Wild Soybean Genome Introgression Lines[J].Soybean Science,2015,34(06):945-949.[doi:10.11861/j.issn.1000-9841.2015.06.0945]
基于野生大豆导入系的大豆粒长和粒宽的QTL分析
- Title:
- QTL Analysis of Seed Length and Seed Width by the Wild Soybean Genome Introgression Lines
- Keywords:
- Soybean; Seed length; Seed width; QTL
- 文献标志码:
- A
- 摘要:
- 以野生大豆ZYD00006(父本)和绥农14 (母本)为亲本构建的导入系为定位群体,群体含有102个株系,遗传图谱使用了329个SSR标记位点,针对粒长和粒宽2个籽粒性状进行定位分析。结果表明:有18个位点存在不同性状间被同时检测到的情况,其中与QTL连锁的位点Sat_227、Satt338和Satt568被2个性状同时检测到。通过比较分析也发现3个位点也同时影响着百粒重的大小,进一步通过加性效应分析表明,定位区段对粒长的影响为-10%~15.4%,定位区段对粒宽的影响为-26.72%~2.76%。明确导入位点对粒长和粒宽的影响,可以作为进一步大豆粒长和粒宽相关基因挖掘。
- Abstract:
- Using the chromosome fragment introgression lines of soybean derived from the cross between ZYD00006 (Glycine soja) as male parent and Suinong 14 (Glycine max) as female parent, to study location of seed length and seed width.This population has 102 lines and 329 SSR markers were used to construct the genetic map. In the results, 18 different traits were found underlying those two seed traits. And the QTL sites of Sat_227, Satt388 and Satt568 were found underlying those two traits at the same time.By the comparison, these 3 sites were found in different genetic population for seed traits.The additive effect of location interval underlying seed length was range from -10% to 15.4%, and the additive effect of location interval underlying seed width was range from -26.72% to 2.76%. So these markers was useful to molecular assistant breeding and gene mining。
参考文献/References:
[1]Salas P, Oyarzo-Llaipen J C, Wang D, et al. Genetic mapping of seed shape in three populations of recombinant inbred lines of soybean (Glycine max L Merr)[J].Theoretical and Applied Genetics, 2006, 113(8): 1459-1466.
相似文献/References:
[1]刘章雄,李卫东,孙石,等.1983~2010年北京大豆育成品种的亲本地理来源及其遗传贡献[J].大豆科学,2013,32(01):1.[doi:10.3969/j.issn.1000-9841.2013.01.002]
LIU Zhang-xiong,LI Wei-dong,SUN Shi,et al.Geographical Sources of Germplasm and Their Nuclear Contribution to Soybean Cultivars Released during 1983 to 2010 in Beijing[J].Soybean Science,2013,32(06):1.[doi:10.3969/j.issn.1000-9841.2013.01.002]
[2]李彩云,余永亮,杨红旗,等.大豆脂质转运蛋白基因GmLTP3的特征分析[J].大豆科学,2013,32(01):8.[doi:10.3969/j.issn.1000-9841.2013.01.003]
LI Cai-yun,YU Yong-liang,YANG Hong-qi,et al.Characteristics of a Lipid-transfer Protein Gene GmLTP3 in Glycine max[J].Soybean Science,2013,32(06):8.[doi:10.3969/j.issn.1000-9841.2013.01.003]
[3]王明霞,崔晓霞,薛晨晨,等.大豆耐盐基因GmHAL3a的克隆及RNAi载体的构建[J].大豆科学,2013,32(01):12.[doi:10.3969/j.issn.1000-9841.2013.01.004]
WANG Ming-xia,CUI Xiao-xia,XUE Chen-chen,et al.Cloning of Halotolerance 3 Gene and Construction of Its RNAi Vector in Soybean (Glycine max)[J].Soybean Science,2013,32(06):12.[doi:10.3969/j.issn.1000-9841.2013.01.004]
[4]张春宝,李玉秋,彭宝,等.线粒体ISSR与SCAR标记鉴定大豆细胞质雄性不育系与保持系[J].大豆科学,2013,32(01):19.[doi:10.3969/j.issn.1000-9841.2013.01.005]
ZHANG Chun-bao,LI Yu-qiu,PENG Bao,et al.Identification of Soybean Cytoplasmic Male Sterile Line and Maintainer Line with Mitochondrial ISSR and SCAR Markers[J].Soybean Science,2013,32(06):19.[doi:10.3969/j.issn.1000-9841.2013.01.005]
[5]卢清瑶,赵琳,李冬梅,等.RAV基因对拟南芥和大豆不定芽再生的影响[J].大豆科学,2013,32(01):23.[doi:10.3969/j.issn.1000-9841.2013.01.006]
LU Qing-yao,ZHAO Lin,LI Dong-mei,et al.Effects of RAV gene on Shoot Regeneration of Arabidopsis and Soybean[J].Soybean Science,2013,32(06):23.[doi:10.3969/j.issn.1000-9841.2013.01.006]
[6]杜景红,刘丽君.大豆fad3c基因沉默载体的构建[J].大豆科学,2013,32(01):28.[doi:10.3969/j.issn.1000-9841.2013.01.007]
DU Jing-hong,LIU Li-jun.Construction of fad3c Gene Silencing Vector in Soybean[J].Soybean Science,2013,32(06):28.[doi:10.3969/j.issn.1000-9841.2013.01.007]
[7]张力伟,樊颖伦,牛腾飞,等.大豆“冀黄13”突变体筛选及突变体库的建立[J].大豆科学,2013,32(01):33.[doi:10.3969/j.issn.1000-9841.2013.01.008]
ZHANG Li-wei,FAN Ying-lun,NIU Teng-fei?,et al.Screening of Mutants and Construction of Mutant Population for Soybean Cultivar "Jihuang13”[J].Soybean Science,2013,32(06):33.[doi:10.3969/j.issn.1000-9841.2013.01.008]
[8]盖江南,张彬彬,吴瑶,等.大豆不定胚悬浮培养基因型筛选及基因枪遗传转化的研究[J].大豆科学,2013,32(01):38.[doi:10.3969/j.issn.1000-9841.2013.01.009]
GAI Jiang-nan,ZHANG Bin-bin,WU Yao,et al.Screening of Soybean Genotypes Suitable for Suspension Culture with Adventitious Embryos and Genetic Transformation by Particle Bombardment[J].Soybean Science,2013,32(06):38.[doi:10.3969/j.issn.1000-9841.2013.01.009]
[9]王鹏飞,刘丽君,唐晓飞,等.适于体细胞胚发生的大豆基因型筛选[J].大豆科学,2013,32(01):43.[doi:10.3969/j.issn.1000-9841.2013.01.010]
WANG Peng-fei,LIU Li-jun,TANG Xiao-fei,et al.Screening of Soybean Genotypes Suitable for Somatic Embryogenesis[J].Soybean Science,2013,32(06):43.[doi:10.3969/j.issn.1000-9841.2013.01.010]
[10]刘德兴,年海,杨存义,等.耐酸铝大豆品种资源的筛选与鉴定[J].大豆科学,2013,32(01):46.[doi:10.3969/j.issn.1000-9841.2013.01.011]
LIU De-xing,NIAN Hai,YANG Cun-yi,et al.Screening and Identifying Soybean Germplasm Tolerant to Acid Aluminum[J].Soybean Science,2013,32(06):46.[doi:10.3969/j.issn.1000-9841.2013.01.011]
备注/Memo
基金项目:教育部新世纪优秀人才支持计划(NECT-1207-01);国家自然基金面上项目(31271747,31471516);国家自然科学基金青年基金(31400074,31401465);黑龙江省自然科学基金重点项目(ZD201213);黑龙江省博士后基金(LBH-Z12035); 中国博士后基金(2012M520030); 黑龙江省高校长江后备支持计划项目(2014CJHB004)。