欢迎访问作物学报,今天是

作物学报 ›› 2011, Vol. 37 ›› Issue (09): 1577-1584.doi: 10.3724/SP.J.1006.2011.01577

• 作物遗传育种·种质资源·分子遗传学 • 上一篇    下一篇

烟草六个重要性状的QTL定位

李华丽1,陈美霞1,**,周东新2,陈顺辉3,陶爱芬1,李延坤1,马红勃1,祁建民1,*,郭玉春1,*   

  1. 1福建农林大学 / 作物遗传育种与综合利用省部共建教育部重点实验室,福建福州350002;2 福建省龙岩市烟草科学研究所,福建龙岩364000;3福建省烟草科学研究所,福建福州350003
  • 收稿日期:2010-12-21 修回日期:2011-04-27 出版日期:2011-09-12 网络出版日期:2011-06-28
  • 通讯作者: 祁建民, E-mail: Qijm863@163.com; 郭玉春, E-mail: ycguo168@sina.com
  • 基金资助:

    本研究由国家烟草专卖局科技项目(110200601006)和国家烟草专卖局资助项目(国烟科[2005])资助。

QTL Analysis of Six Important Traits in Tobacco (Nicotiana tabacum L.)

LI Hua-Li1,CHEN Mei-Xia1,ZHOU Dong-Xin2,CHEN Shun-Hui3,TAO Ai-Fen1,LI Yan-Kun1,MA Hong-Bo1,QI Jian-Min1,*,GUO Yu-Chun1,*   

  1. 1 Key Laboratory of Ministry of Education for Genetics, Breeding and Multiple Utilization of Crops / Fujian Agriculture and Forestry University, Fuzhou 350002, China; 2 Fujian Longyan Tobacco Science Institute, Longyan 364000, China; 3 Fujian Tobacco Science Institute, Fuzhou 350003, China
  • Received:2010-12-21 Revised:2011-04-27 Published:2011-09-12 Published online:2011-06-28
  • Contact: 祁建民, E-mail: Qijm863@163.com; 郭玉春, E-mail: ycguo168@sina.com

摘要: 以烤烟台烟7号与白肋烟白肋21作为杂交亲本,后代自交衍生的127个F2和F2:3家系为材料,构建了全长3 483 cM包括26个连锁群、190个标记位点的烟草遗传连锁图谱。通过一年两地各3次重复的随机区组田间试验,测定烟叶烟碱、总氯、总钾、叶长、茎叶夹角、白粉病6个重要性状,采用混合线性模型的复合区间作图法定位QTL并分析其遗传互作效应。结果检测到2个烟碱相关QTL、2个总氯相关QTL、1个总钾相关QTL、4个叶长相关QTL、茎叶夹角和白粉病相关QTL各1个,其中6个加性效应QTL和4对加加上位性效应QTL。这11个基因位点遗传效应中除加性效应外,上位性效应也具有重要作用。

关键词: 烟草, 性状, QTL定位, 上位性

Abstract: The agronomic traits, chemical components and diseases are very important factors affecting the yield and leaf quality of tobacco. QTLs linked to the three aspects of traits can be used in marker-assisted selection for the yield and leaf quality improvement in tobacco. The objective of this study was to identify QTLs controlling important traits in tobacco, which could promote the basic research of molecular marker-assisted selection breeding. A population with 127 F2 and F2:3 individuals from the cross between Taiyan 7 and Baile 21 was used to establish a genetic linkage map of tobacco, 190 marker loci were mapped into 26 linkage groups which spanned a total map length of 3 483 cM. With a randomized complete block design, two location field tests with three replicates one year were conducted to charactererize six important traits, including nicotine, total chlorine, total kalium, leaf length, leaf angle, and powdery mildew. Utilizing data of field trials and MCIM method, QTLs for six important characters were mapped and their genetic interactions were analyzed. As the results, two QTLs for nicotine, two QTLs for total chlorine, one QTL for total kalium, four QTLs for leaf length, one QTL for leaf angle, and one QTL for powdery mildew were detected, of which six QTLs had additive effect, and the others were epistatic. The results indicated that epistatic QTLs, the additive QTLs also played important roles in the genetic basis of the six important traits with eleven gene loci in tobacco.

Key words: Tobacco (Nicotiana tobacum L.), Trait, QTL, Epistasis

[1]Xiao B-G(肖炳光), Zhu J(朱军), Lu X-P(卢秀萍), Li Y-P(李永平), Bai Y-F(白永富). Genetic analysis for chemical constituents in flue-cured tobacco (Nicotiana tabacum L.). Acta Agron Sin (作物学报), 2005, 31(12): 1557–1561 (in Chinese with English abstract)
[2]Yang J, Zhu J. Methods for predicting superior genotypes under multiple environments based on QTL effects. Theor Appl Genet, 2005, 110: 1268–1274
[3]Julio E, Denoyes-Rothan B, Verrier J L, Dorlhac de Borne F. Detection of QTLs linked to leaf and smoke properties in Nicotiana tabacum based on a study of 114 recombinant inbred lines. Mol Breed, 2006, 18: 69–91
[4]Xiao B-G(肖炳光), Xu Z-L(徐照丽), Chen X-J(陈学军), Shen A-R(申爱荣), Li Y-P(李永平), Zhu J(朱军). Genetic linkage map constructed by using a DH population for the flue-cured tobacco. Acta Tabacaria Sin (中国烟草学报), 2006, 12(4): 35–40 (in Chinese with English abstract)
[5]Xiao B-G(肖炳光), Lu X-P(卢秀萍), Jiao F-C(焦芳蝉), Li Y-P(李永平), Sun Y-H(孙玉合), Guo Z-K(郭兆奎). Preliminary QTL analysis of several chemical components in flue-cured tobacco (Nicotiana tabacum L.). Acta Agron Sin (作物学报), 2008, 34(10): 1762–1769 (in Chinese with English abstract)
[6]Cai C-C(蔡长春), Chai L-G(柴利广), Wang Y(王毅), Xu F-S(徐芳森), Zhang J-J(张俊杰), Lin G-P(林国平). Construction of genetic linkage map of burley tobacco (Nicotiana tabacum L.) and genetic dissection of partial traits. Acta Agron Sin (作物学报), 2009, 35(9): 1646–1654 (in Chinese with English abstract)
[7]Bai D, Reeleder R, Brandle J E. Identification of two RAPD markers tightly linked with the Nicotiana debneyi for resistance to black root rot of tobacco. Theor Appl Genet, 1995, 91: 1184–1189
[8]Julio E, Verrier J L, Dorlhac de Borne F. Development of SCAR markers linked to three disease resistances based on AFLP within Nicotiana tabacum L. Theor Appl Genet, 2006, 112: 335–346
[9]Yi Y H, Rufty R C, Wernsman E A. Identification of RAPD markers linked to the wildfire resistance gene of tobacco using bulked segregant analysis. Tob Sci, 1998, 42: 52–57
[10]Julio E, Denoyes-Rothan B, Verrier J L, Dorlhac de Borne F. Detection of QTLs linked to leaf and smoke properties in Nicotiana tabacum based on a study of 114 recombinant inbred lines. Mol Breed, 2006, 18: 69–91
[11]Liu X-X(刘晓侠), Wang L(王荔), Wen G-S(文国松), Yang Y-Q(杨艳琼). Screening and study of RAPD markers linked to tobacco black shank resistance gene Bs1(t). Acta Agron Sin (作物学报), 2004, 30(5): 516–518 (in Chinese with English abstract)
[12]Milla S R, Levin J S, Lewis R S, Rufty R C. RAPD and SCAR markers linked to an introgressed gene conditioning resistance to Peronospora tabacina D. B. Adam. in tobacco. Crop Sci, 2005, 45: 2346–2354
[13]Moon H, Nicholson J S. AFLP and SCAR markers linked to tomato spotted wilt virus resistance in tobacco. Crop Sci, 2007, 47: 1887–1894
[14]Yang J, Hu C C, Ye X Z. QTL Network 2.0. Institute of Bioinformatics, Zhejiang University, Hangzhou, China, 2005
[15]McCouch S R, Cho Y G, Yang M, Paul E, Blinstrub M, Morishima H, Kinoshita T. Report on QTL nomenclature. Rice Genet Newsl, 1997, 14: 11–13
[16]Ma H-B(马红勃), Qi J-M(祁建民), Li Y-K(李延坤), Liang J-X(梁景霞), Wang T(王涛), Lan T(兰涛), Chen S-H(陈顺辉), Tao A-F(陶爱芬), Lin L-H(林荔辉), Wu J-M(吴建梅). Construction of a molecular genetic map of tobacco based on SRAP and ISSR markers. Acta Agron Sin (作物学报), 2008, 34(11): 1958–1963 (in Chinese with English abstract)
[17]Li Y-K(李延坤). Construction of Genetic Linkage Map of Tobacco (Nicotiana tabacum L.). MS Dissertation of Fujian Agriculture and Forestry University, 2009 (in Chinese with English abstract)
[18]Knapp S J, Bridges W C, Birkes D. Mapping quantitative trait loci using molecular marker linkage maps. Theor Appl Genet, 1990, 79: 583–592
[19]Cai H W, Morishima H. Genomie regions affecting seed shattering and seed dormancy in rice. Theor Appl Genet, 2000, 100: 840–846
[20]Richter T E, Pryor T J, Bennetzen J L, Hulbert S H. New rust resistance specificities associated with recombination in the Rpl complex in maize. Genetics, 1995, 141: 373–381
[21]Hammond K E, Jones J D G. Plant disease resistance genes: Unraveling how they work. Can J Bot  1996, 73(supp1-1): 495–505
[22]Witsenboer H, Kesseli R V, Fortin M, Stangellini M, Michelmore R W. Sources and genetic structure of a cluster of genes for resistance to three pathogens in lettuce. Thero Appl Genet, 1995, 91: 178–188
[23]Li Z K, Yu S B, Lafitte H R, Huang N, Courtois B, Hittalmani S, Vijayakumar C H M, Liu G F, Wang G C, Shashidhar H E, Zhuang J Y, Zheng K L, Singh V P, Sidhu J S, Srivantaneeyakul S, Khush G S. QTL × environment interactions in rice: I. Heading date and plant height. Theor Appl Genet, 2003, 108: 141–153
[24]Yadav R S, Bidinger F R, Hash C T, Yadav Y P, Yadav O P, Bhatnagar S K, Howarth C J. Mapping and characterisation of QTL × E interactions for traits determining grain and stover yield in pearl millet. Theor Appl Genet, 2003, 106: 512–520
[25]Zhang K P, Tian J C, Zhao L, Wang S S. Mapping QTLs with epistatic effects and QTL×environment interactions for plant height using a doubled haploid population in cultivated wheat. Genet Genomics, 2008, 35: 119–127
[26]Cao G-Q(曹刚强), Zhu J(朱军), He C-X(何慈信), Gao Y-M(高用明), Wu P(吴平). QTL analysis for epistatic effects and QTL × environment interaction effects on final height of rice (Oryza sativa L.). Acta Genet Sin (遗传学报), 2001, 28(2): 135–143(in Chinese with English abstract)
[27]Yu S B, Li J X, Xu C G, Tan Y F, Li X H, Zhang Q. Identification of quantitative trait loci and epistatic interactions for plant height and heading date in rice. Theor Appl Genet, 2002, 104: 619–625
[28]Shan D-P(单大鹏), Zhu R-S(朱荣胜), Chen L-J(陈立君), Qi Z-M(齐照明), Liu C-Y(刘春艳), Hu G-H(胡国华), Chen Q-S(陈庆生). Epistatic effects and QE interaction effects of QTLs for protein content in soybean. Acta Agron Sin (作物学报), 2009, 35(1): 41–47 (in Chinese with English abstract)
[29]Zhang X-L(张先亮), Gao J-S(高俊山), Song G-L(宋国立), Liu F(刘芳). Additive and epistatic effects QTL analysis on upland cotton CRI-G6. Mol Plant Breed (分子植物育种), 2009, 7(2): 312–320 (in Chinese with English abstract)
[1] 马小倩, 秦娜, 代书桃, 秦家范, 李小艳, 王淑婷, 刘忠玲, 李君霞. 175份谷子种质在2种环境下的表型变异分析[J]. 作物学报, 2026, 52(6): 1757-1773.
[2] 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.
[3] 张颖星, 宋裕祯, 王跃, 曹越, 曹晓宁, 王瑞云. EMS诱导糜子优异性状突变体的筛选及表型分析[J]. 作物学报, 2026, 52(5): 1388-1400.
[4] 徐建霞, 丁延庆, 曹宁, 程斌, 高旭, 李文贞, 王若若, 王磊, 张立异. 397份高粱种质资源在贵州表型多样性分析及综合评价[J]. 作物学报, 2026, 52(4): 1073-1087.
[5] 蒋嘉卉, 江炳志, 刘冠明, 王章英, 唐朝臣. 紫肉甘薯品质性状的近红外光谱预测模型构建与优化[J]. 作物学报, 2026, 52(4): 1088-1102.
[6] 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.
[7] 赵翔, 李佳宜, 李爽, 韩文辉, 黄俊霞, 姚兴东, 张惠君, 王海英, 谢甫绨. 高温对不同大豆品种干物质积累和糖代谢的影响[J]. 作物学报, 2026, 52(3): 857-865.
[8] 杨月, 张新新, 贺增辉, 李瑞东, 潘昱洁, 李嘉康, 杜薇, 徐大勇, 堵劲松. 基于高光谱成像的烟叶主要化学成分无损检测与可视化[J]. 作物学报, 2026, 52(3): 922-935.
[9] 李瑞, 余意雯, 王敦亮, 田婷, 孙灵湘, 陶玥玥, 孙华. 长江中下游油菜薹油兼用模式菜籽产量特征比较研究[J]. 作物学报, 2026, 52(2): 620-630.
[10] 张胜忠, 李国卫, 戈立江, 王菲菲, 胡晓辉, 苗华荣, 李燕, 钟文, 陈静. 花生机械脱壳损伤相关农艺指标筛选与QTL定位[J]. 作物学报, 2026, 52(2): 644-652.
[11] 詹戈锐, 余文, 李锋, 武明珠, 徐馨, 罗朝鹏, 巫升鑫, 杨军, 张智强, 王中. 烟草NtWRKY6基因响应ABA表达及其调控多酚合成的功能研究[J]. 作物学报, 2026, 52(2): 446-458.
[12] 杨锐, 陈敬东, 黄郢, 张学昆, 周登文, 刘清云, 徐劲松, 谢伶俐, 许本波. 基于北纬30°分界的长江中游油菜增产策略研究[J]. 作物学报, 2026, 52(1): 99-117.
[13] 马婷婷, 郭晓江, 李豪, 邓梅, 蒲至恩, 李伟, 张亚洲, 王凤涛, 崔凤娟, 魏育明, 王际睿, 蒋云峰, 陈国跃. 利用小麦农家种孝感麦协同改良蜀麦753产量与抗病耐逆性的育种实践[J]. 作物学报, 2026, 52(1): 56-71.
[14] 迟晓元, 刘庆, 张君, 赵旭红, 李美, 于天一, 潘丽娟, 许静, 姜骁, 殷祥贞, 马俊卿, 陈娜. 不同花生品种(系)耐盐碱性田间鉴定及各性状指标相关性研究[J]. 作物学报, 2026, 52(1): 85-98.
[15] 孔娜, 刘涛, 刘文婷, 陈刚, 文利超, 邓智超, 郭梅, 李伟, 郭永峰. 烟草NtCEP7基因克隆及其编码小肽在苗期抗旱中的作用分析[J]. 作物学报, 2026, 52(1): 249-261.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!