欢迎访问作物学报,今天是

作物学报 ›› 2006, Vol. 32 ›› Issue (12): 1809-1816.

• 研究论文 • 上一篇    下一篇

TaMyb2-Ⅱ基因在普通小麦(Triticum aestivum L.)及其近缘种中的单核苷酸多态性分析

王爱萍1,2;毛新国2;景蕊莲2,*;昌小平2;杨武德1   

  1. 1山西农业大学农学院,山西太谷030801; 2中国农业科学院作物科学研究所/农作物基因资源与基因改良国家重大科学工程/农业部作物种质资源与生物技术重点开放实验室,北京100081
  • 收稿日期:2006-01-26 修回日期:1900-01-01 出版日期:2006-12-12 网络出版日期:2006-12-12

Single Nucleotide Polymorphism of TaMyb2-Ⅱ Gene in Common Wheat (Triticum aestivum L.) and Its Relatives

WANG Ai-Ping12,MAO Xin-Guo2,JING Rui-Lian2*,CHANG Xiao-Ping2,YANG Wu-De1   

  1. 1 Agronomy College, Shanxi Agricultural University, Taigu 030801, Shanxi; 2 National Key Facility for Crop Gene Resources and Genetic Improvement / Key Laboratory of Crop Germplasm & Biotechnology, Ministry of Agriculture / Institute of Crop Sciences, Chinese Academy of Agricultural Sciences, Beijing 100081, China
  • Received:2006-01-26 Revised:1900-01-01 Published:2006-12-12 Published online:2006-12-12

摘要:

以39份抗旱性不同的普通小麦、5份A基因组材料、4份拟斯卑尔脱山羊草(Aegilops speltoides)、6份粗山羊草(Aegilops tauschii)和2份四倍体小麦,分析TaMyb2基因的核苷酸序列长度多态性和单核苷酸多态性,及其与抗旱性的关系。结果发现,TaMyb2在A基因组材料中无目标片段扩增,在其他材料中检测到Ⅰ、Ⅱ、Ⅲ 3种类型序列。经详细分析,TaMyb2-Ⅱ序列长1 606 bp,在供试材料77 088 bp的核苷酸序列中包括34个单核苷酸变异,其中26个SNP,8个InDel,二者出现的频率分别为1/2 965 bp和1/9 636 bp,编码区π值(0.00055)小于非编码区的π值(0.00185), 说明编码区的遗传变异小于非编码区的遗传变异。从SNP水平上分析,发现普通小麦与其D基因组供体种粗山羊草及四倍体小麦的亲缘关系较近,与B基因组供体种拟斯卑尔脱山羊草的亲缘关系较远。48份材料的TaMyb2-Ⅱ序列共分为18个单倍型(haplotype),其中haplotype 2、3、5、6、8、9均为旱地栽培的普通小麦品种,说明普通小麦TaMyb2-Ⅱ的这几个haplotype结构可能与抗旱性有关。

关键词: TaMyb2-Ⅱ, 单核苷酸多态性, 普通小麦, 近缘种, 抗旱性

Abstract:

Drought is one of the major elements affecting the yield of wheat, one of the most important crops in arid and semi-arid areaes. Mining pivotal drought-resistant genes and probing their polymorphisms are a feasible approach to decipher crops’ drought resistance. The genes involved in drought resistance are classified into two classifications, functional genes and regulatory genes, based on their functions responding to water deficient. Much attention has been paid to regulatory genes because of their crucial roles in drought resistance. AtMyb2 regulates the expression of dehydration-responsive genes rd22 and AtADH1 in plants. Recent studies indicate that TaMyb2 is involved in response to water stress in common wheat, but whether its polymorphisms associated with drought resistance is still unclear. To probe the polymorphisms of TaMyb2 gene and uncover their functions in drought resistance, a total of fifty-six accessions, including thirty-nine common wheat cultivars with different drought resistance, five species with A genome including three T. urartu, one T. monococcum and one T. boeoticum, four Aegilops. speltoides, six Ae. tauschii and two tetraploid wheat species, were selected to perform the research. The PCR amplification showed that TaMyb2 was detectable in all accessions except A genome species. Based on the genomic sequences, TaMyb2 was classified into 3 types named as TaMyb2-Ⅰ, TaMyb2-Ⅱ and TaMyb2-Ⅲ, respectively. The full-length sequence of TaMyb-Ⅱ geneomic DNA was 1 606 bp. Twenty-six SNPs (single nucleotide polymorphism) and eight InDels (insertion-deletion) were identified in 77 088 bp nucleotide acid sequence of forty-eight accessions, and the frequencies of SNP and InDel were 1/2 965 bp and 1/9 636 bp, respectively. The frequency of SNP in coding region (π=0.00055) of TaMyb-Ⅱ was lower than that in noncoding region (π=0.00185), the ratio of Ka/Ks was 0.32 which seemed to suggest TaMyb2-Ⅱ suffered artificial selection pressure and was very conservative. Phylogenetic analysis demonstrated that the relationship between Ae. tauschii and common wheat was much closer than that between Ae. speltoides and common wheat. Eighteen haplotypes were detected in forty-eight accessions, in which haplotype 2, 3, 5, 6, 8 and 9 were common wheat cultivars with drought resistance, which indicated that these haplotypes might relate to the drought resistance of common wheat.

Key words: TaMyb2-Ⅱ, Single nucleotide polymorphism, Common wheat, Relative, Drought resistance

中图分类号: 

  • S512
[1] 王兴荣, 李玥, 张彦军, 李永生, 汪军成, 徐银萍, 祁旭升. 青稞种质资源成株期抗旱性鉴定及抗旱指标筛选[J]. 作物学报, 2022, 48(5): 1279-1287.
[2] 张海燕, 解备涛, 姜常松, 冯向阳, 张巧, 董顺旭, 汪宝卿, 张立明, 秦桢, 段文学. 不同抗旱性甘薯品种叶片生理性状差异及抗旱指标筛选[J]. 作物学报, 2022, 48(2): 518-528.
[3] 靳义荣, 刘金栋, 刘彩云, 贾德新, 刘鹏, 王雅美. 普通小麦氮素利用效率相关性状全基因组关联分析[J]. 作物学报, 2021, 47(3): 394-404.
[4] 韩贝, 王旭文, 李保奇, 余渝, 田琴, 杨细燕. 陆地棉种质资源抗旱性状的关联分析[J]. 作物学报, 2021, 47(3): 438-450.
[5] 张平平,姚金保,王化敦,宋桂成,姜朋,张鹏,马鸿翔. 江苏省优质软麦品种品质特性与饼干加工品质的关系[J]. 作物学报, 2020, 46(4): 491-502.
[6] 徐银萍, 潘永东, 刘强德, 姚元虎, 贾延春, 任诚, 火克仓, 陈文庆, 赵锋, 包奇军, 张华瑜. 大麦种质资源成株期抗旱性鉴定及抗旱指标筛选[J]. 作物学报, 2020, 46(3): 448-461.
[7] 张海燕,解备涛,汪宝卿,董顺旭,段文学,张立明. 不同甘薯品种抗旱性评价及耐旱指标筛选[J]. 作物学报, 2019, 45(3): 419-430.
[8] 杨芳萍,刘金栋,郭莹,贾奥琳,闻伟鄂,巢凯翔,伍玲,岳维云,董亚超,夏先春. 普通小麦‘Holdfast’条锈病成株抗性QTL定位[J]. 作物学报, 2019, 45(12): 1832-1840.
[9] 张笑笑,潘映红,任富莉,蒲伟军,王道平,李玉斌,陆平,李桂英,朱莉. 基于多重表型分析的准确评价高粱抗旱性方法的建立[J]. 作物学报, 2019, 45(11): 1735-1745.
[10] 李龙,毛新国,王景一,昌小平,柳玉平,景蕊莲. 小麦种质资源抗旱性鉴定评价[J]. 作物学报, 2018, 44(7): 988-999.
[11] 王建伟,贺晓岚,李文旭,陈新宏. 小麦近缘属植物1-FFT基因的克隆及功能分析[J]. 作物学报, 2018, 44(6): 814-823.
[12] 王林生,张雅莉,南广慧. 普通小麦-大赖草易位系T5AS-7LrL·7LrS分子细胞遗传学鉴定[J]. 作物学报, 2018, 44(10): 1442-1447.
[13] 赵德辉, 张勇, 王德森, 黄玲, 陈新民, 肖永贵, 阎俊, 张艳, 何中虎. 北方冬麦区新育成优质品种的面包和馒头品质性状[J]. 作物学报, 2018, 44(05): 697-705.
[14] 吕品, 于海峰, 侯建华. 利用抗旱选择导入系定位向日葵产量性状QTL[J]. 作物学报, 2018, 44(03): 385-396.
[15] 苗永杰, 阎俊, 赵德辉, 田宇兵, 闫俊良, 夏先春, 张勇, 何中虎. 黄淮麦区小麦主栽品种粒重与籽粒灌浆特性的关系[J]. 作物学报, 2018, 44(02): 260-267.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!