基于重测序的染色体片段代换系定位水稻抽穗期QTL

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  • 1扬州大学 江苏省粮食作物现代产业技术协同创新中心/教育部植物功能基因组学重点实验室, 江苏 扬州 225009
    2江苏省农业科学院粮食作物研究所/国家水稻改良中心南京分中心, 南京 210014
*通讯联系人, E-mail: ricegb@yzu.edu.cn

收稿日期: 2017-02-08

  修回日期: 2017-03-08

  网络出版日期: 2017-07-10

基金资助

国家973计划资助项目(2013CBA01405);公益性行业科研专项(201303102);江苏省现代农业重点研发项目(BE2015355,BE2015341);扬州市农业前瞻性研究资助项目(YZ2014165)

Mapping of QTLs for Heading Date Using Whole-genome Re-sequenced Chromosome Segment Substitution Lines in Rice

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  • 1Jiangsu Co-Innovation Center for Modern Production Technology of Grain Crops/Key Laboratory of Plant Function Genomics, Ministry of Education Yangzhou University, Yangzhou 225009, China
    2 Institute of Food Crops, Jiangsu Academy of Agricultural Sciences/Nanjing Branch of Chinese National Center for Rice Improvement, Nanjing 210014, China
*Corresponding author, E-mail: ricegb@yzu.edu.cn

Received date: 2017-02-08

  Revised date: 2017-03-08

  Online published: 2017-07-10

摘要

目的水稻的抽穗期是决定水稻产量及其适用性的重要农艺性状之一,是由多基因控制的数量性状。染色体片段代换系减少了个体间遗传背景的干扰,已经成为定位和克隆复杂性状QTL的重要材料。方法本研究以9311为受体,日本晴为供体构建的128个重测序的染色体片段代换系群体为试验材料,利用多元回归,结合Bin-map图谱,【结果】鉴定到6个在南京、扬州不同年份间稳定表达的抽穗期QTL,其中,qHD2.1被定位在第2染色体上的759 848 bp区间内;qHD2.2被定位在第2染色体上的45 286 bp区间内;qHD 3.1被定位在第3染色体上的147 931 bp区间内;qHD5.1被定位在第5染色体上的213 351 bp区间内;qHD5.2被定位在第5染色体上的442 305 bp区间内;qHD8.1被定位在第8染色体上的538 176 bp区间内。结论本研究为精细定位并克隆相应QTL,进而探明抽穗期QTL的分子调控机制奠定了基础。

本文引用格式

王军, 朱金燕, 陶亚军, 周勇, 范方军, 李文奇, 王芳权, 仲维功, 杨杰, 梁国华 . 基于重测序的染色体片段代换系定位水稻抽穗期QTL[J]. 中国水稻科学, 2017 , 31(4) : 364 -370 . DOI: 10.16819/j.1001-7216.2017.7017

Abstract

【Objective】Heading date is an important agronomic trait in rice, it is a typical quantitative trait controlled by multiple genes. As novel research material, chromosome segment substitution lines are useful in QTL fine mapping and cloning because of minimizing the interference of genetic background among plants. 【Method】In this study, 128 whole-genome re-sequenced chromosome segment substitution lines derived from Nipponbare as donor parent in the background of 9311, were used for mapping QTLs for heading date by combining the sequencing-based Bin-map with multiple linear regression analysis. 【Result】Six QTLs for heading date were identified in two environments and two years. qHD2.1 was mapped in the region of 759 848 bp on the chromosome 2; qHD2.2 was mapped in the region of 45 286 bp on the chromosome 2; qHD 3.1 was mapped in the region of 147 931 bp on the chromosome 3; qHD5.1 was mapped in the region of 213 351 bp on the chromosome 5; qHD5.2 was mapped in the region of 442 305 bp on the chromosome 5; qHD8.1 was mapped in the region of 538 176 bp on the chromosome 8. 【Conclusion】The results are important for the QTLs cloning and provide a foundation for understanding molecular regulation mechanism of heading date in rice.

参考文献

[1] Fitzgerald M A,McCouch S R,Hall R D. Not just a grain of rice: the quest for quality.Trends Plant Sci, 2009, 14(3): 133-139.
[2] Miura K, Ashikari M, Matsuoka M.The role of QTLs in the breeding of high-yielding rice. Trends Plant Sci, 2011, 16(6): 319-326.
[3] 谢新华, 肖昕, 李晓方, 刘邻渭. 稻米蛋白质的研究进展. 广东农业科学, 2003, 30(6): 2-4.
[3] Xie X H, Xiao X, Liu X F.Research progress on rice protein.Guangdong Agric Sci, 2003, 30(6): 2-4. (in Chinese)
[4] 胡时开, 苏岩, 叶卫军, 郭龙彪. 水稻抽穗期遗传与分子调控机理研究进展. 中国水稻科学, 2012, 26(3): 373-382.
[4] Hu S K, Su Y, Ye W J, Guo L B.Advances in Genetic analysis and molecular regulation mechanism of heading date in rice (Oryza sativa L.). Chin J Rice Sci, 2012, 26(3): 373-382. (in Chinese with English abstract)
[5] Qiao W H, Qi L, Cheng Z J, Su L, Li J, Sun Y, Ren J F, Zheng X M, Yang Q W.Development and characterization of chromosome segment substitution lines derived from Oryza rufipogon in the genetic background of O. sativa spp. indica cultivar 9311. BMC Genomics, 2016, 17(1): 580-591.
[6] Shen G J, Xing Y Z.Two novel QTLs for heading date are identified using a set of chromosome segment substitution lines in rice (Oryza sativa L.). J Genet Genomics, 2014, 41(12): 659-662.
[7] 王军, 朱金燕, 周勇, 杨杰, 范方军, 李文奇, 王芳权, 仲维功, 梁国华. 不同温光条件下水稻抽穗期QTL的定位与分析. 中国水稻科学, 2016, 30(3): 247-255.
[7] Wang J, Zhu J Y, Zhou Y, Yang J, Fan F J, Li W Q, Wang F Q, Zhong W G, Liang G H.QTL analysis for heading date in rice (Oryza sativa L.) under different temperatures and light intensities. Chin J Rice Sci, 2016, 30(3): 247-255. (in Chinese with English abstract)
[8] 杨德卫, 张亚东, 朱镇, 赵凌, 林静, 陈涛, 朱文银, 王才林. 基于CSSL的水稻抽穗期QTL定位及遗传分析. 植物学报, 2010, 45(2): 189-197.
[8] Yang D W, Zhang Y D, Zhu Z, Zhao L, Lin J, Chen T, Zhu W Y, Wang C L.Mapping and genetic analysis of quantitative trait loci for heading date with chromosome segment substitution lines inOryza sativa. Chin Bull Bot, 2010, 45(2): 189-197. (in Chinese with English abstract)
[9] 王韵, 程立锐, 孙勇, 周政, 朱苓华, 徐正进, 徐建龙, 黎志康. 利用双向导入系解析水稻抽穗期和株高QTL及其与环境互作表达的遗传背景效应. 作物学报, 2009, 5(8): 1386-1394.
[9] Wang Y, Cheng L R, Sun Y, Zhou Z, Zhu L H, Xu Z J, Xu J L, Li Z K.Genetic background effect on QTL Expression of heading date and plant height and their interaction with environment in reciprocal introgression lines of rice. Acta Agron Sin, 2009, 5(8): 1386-1394. (in Chinese with English abstract)
[10] 何风华, 席章营, 曾瑞珍, Akshay T, 张桂权. 利用单片段代换系定位水稻抽穗期QTL. 中国农业科学, 2005, 38(8): 1505-1513.
[10] He F H, Xi Z Y, Zeng R Z, Akshay T, Zhang G Q.Mapping of heading date QTLs in rice (Oryza sativa L.) using single segment substitution lines. Sci Agric Sin, 2005, 38(8): 1505-1513. (in Chinese with English abstract)
[11] Xu J J, Zhao Q, Du P N, Xu C W, Wang B H, Feng Q, Liu Q Q, Tang S Z, Gu M H, Han B, Liang G H.Developing high throughput genotyped chromosome segment substitution lines based on population whole-genome re-sequencing in rice (Oryza sativa L.). BMC Genom, 2010, 11(1): 656-670.
[12] Huang X H, Feng Q, Qian Q, Zhao Q, Wang L, Wang A H, Guan J P, Fan D L, Weng Q J, Huang T, Dong G J, Sang T, Han B.High-throughput genotyping by whole-genome resequencing.Genom Res, 2009, 19(6): 1068-1076.
[13] Paran I, Zamir D.Quantitative traits in plants: beyond the QTL.Trends Genet, 2003, 19(6): 303-306.
[14] Eshed Y, Zamir D.An introgression line population of Lycopersicon pennellii in the cultivated tomato enables the identification and fine mapping of yield-associated QTL. Genetics, 1995, 141(3): 1147-1162.
[15] McCouch S R, CGSNL. Gene nomenclature system for rice.Rice, 2008, 1(1): 72-84.
[16] Yano M, Kojima S, Takahashi Y, Lin H X, Sasaki T.Genetic control of flowering time in rice, a short-day plant.Plant Physiol, 2001, 127(4): 1425-1429.
[17] 周勇, 崔国昆, 张言周, 关成冉, 常思源, 顾铭洪, 梁国华. 水稻抽穗期主效QTL qHd8.1的精细定位. 中国水稻科学, 2012, 26(1): 43-48.
[17] Zhou Y, Cui G K, Zhang Y Z, Guan C R, Chang S Y, Gu M H, Liang G H.Fine mapping of a major QTL qHd8.1 for heading date in rice. Chin J Rice Sci, 2012, 26(1): 43-48. (in Chinese with English abstract)
[18] Pei C G, Liu X, Wang W Y, Ding H F, Jiang M S, Li G X, Zhu C X, Wen F J, Yao F Y.Fine mapping of qHD8-1, a QTL controlling the heading date, to a 26-kb DNA fragment in rice(Oryza sativa L.). J Plant Biol, 2011, 54(3): 190-198.
[19] Wang B B, Zhu C X, Liu X, Wang W Y, Ding H F, Jiang M S, Li G X, Liu W, Yao F Y.Fine mapping of qHD4-1, a QTL controlling the heading date, to a 20.7-kb DNA fragment in rice(Oryza sativa L.). Plant Mol Biol Rep, 2011, 29(3): 702-713.
[20] Yano M, Harushima Y, Nagamura Y, Kurata N, Minobe Y, Sasaki T.Identification of quantitative trait loci controlling heading date in rice using a high-density linkage map.Theor Appl Genet, 1997, 95(7): 1025-1032.
[21] Yano M, Katayose Y, Ashikari M, Yamanouchi U, Monna L, Fuse T, Baba T, Yamamoto K, Umehara Y, Nagamura Y, Sasaki T.Hd1, a major photoperiod sensitivity quantitative trait locus in rice, is closely related to the Arabidopsis flowering time gene CONSTANS. Plant Cell, 2000, 12(12): 2473-2484.
[22] Yamamoto T, Lin H X, Sasaki T, Yano M.Identification of heading date quantitative trait locusHd6 and characterization of its epistatic interactions with Hd2 in rice using advanced backcross progeny. Genetics, 2000, 154(2): 885-891.
[23] Takahashi Y, Shomura A, Sasaki T, Yano M.Hd6,a rice quantitative trait locus involved in photoperiod sensitivity, encodes the α subunit of protein kinase CK2. Proc Natl Acad Sci USA, 2001, 98(14): 7922-7927.
[24] Hori K, Ogiso-Tanaka E, Matsubara K, Yamanouchi U, Ebana K, Yano M.Hd16, a gene for casein kinase I, is involved in the control of rice flowering time by modulating the day-length response. Plant J, 2013, 76(1): 36-46.
[25] Gao H, Jin M N, Zheng X M, Chen J, Yuan D Y, Xin Y Y, Wang M Q, Huang D Y, Zhang Z, Zhou K N, Sheng P K, Ma J, Ma W W, Deng H F, Jiang L, Liu S J, Wang H Y, Wu C Y, Yuan L P, Wan J M.Days to heading 7, a major quantitative locus determining photoperiod sensitivity and regional adaptation in rice. Proc Natl Acad Sci USA, 2014, 111(46): 16337-16342.
[26] 徐建军, 赵强, 汤在祥, 赵元凤, 朱磊, 徐辰武, 顾铭洪, 韩斌, 梁国华. 利用重测序的染色体片段代换系群体定位水稻粒型QTL. 中国水稻科学, 2011, 25(4): 365-369.
[26] Xu J J, Zhao Q, Tang Z X, Zhao Y F, Zhu L, Xu C W, Gu M H, Han B, Liang G H.Mapping of QTLs for grain shape using whole genome resequenced chromosome segment substitution lines in rice.Chin J Rice Sci, 2011, 25(4): 365-369. (in Chinese with English abstract)
[27] 徐建军, 赵强, 赵元凤, 朱磊, 徐辰武, 顾铭洪, 韩斌, 梁国华. 利用重测序的水稻染色体片段代换系群体定位剑叶形态QTL. 中国水稻科学, 2011, 25(5): 483-487.
[27] Xu J J, Zhao Q, Zhao Y F, Zhu L, Xu C W, Gu M H, Han B, Liang G H.Mapping of QTLs for flag leaf shape using whole genome re-sequenced chromosome segment substitution lines in rice.Chin J Rice Sci, 2011, 25(5): 483-487. (in Chinese with English abstract)
[28] Lee S, Jia M H, Jia Y L, Liu G.Tagging quantitative trait loci for heading date and plant height in important breeding parents of rice (Oryza sativa). Euphytica, 2014, 197(2):191-200.
[29] 张永生, 江玲, 刘喜, 陈亮明, 刘世家, 翟虎渠, 万建民. 控制水稻品种Koshihikari抽穗期的数量性状位点. 作物学报, 2008, 34(11): 1869-1876.
[29] Zhang Y S, Jiang L, Liu X, Chen L M, Liu S J, Zhai H Q, Wan J M.Quantitative trait loci for rice heading time in Koshihikari.Acta Agron Sin, 2008, 34(11): 1869-1876. (in Chinese with English abstract)
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