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首页 > 过刊浏览>2020年第21卷第2期 >386-393. DOI:10.13430/j.cnki.jpgr.20190417001 优先出版
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来自西尔斯山羊草的抗小麦白粉病基因Pm57抗性丧失突变体的筛选与鉴定
DOI:
10.13430/j.cnki.jpgr.20190417001
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作者:
  • 马超

    马超

    河南农业大学生命科学学院
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  • 董振杰

    董振杰

    河南农业大学生命科学学院
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  • 田修斌

    田修斌

    河南农业大学生命科学学院
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  • 王贝麟

    王贝麟

    河南农业大学生命科学学院
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  • 张玥琦

    张玥琦

    河南农业大学生命科学学院
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  • 李欢欢

    李欢欢

    河南农业大学生命科学学院
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  • 刘文轩

    刘文轩

    河南农业大学生命科学学院
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作者单位:

河南农业大学生命科学学院

作者简介:

通讯作者:

中图分类号:

基金项目:

国家自然科学基金项目(31571658);河南省科技重大专项(161100110400),


Screening and Identification of Susceptible Pm57 Mutants, Whose Modifications Compromise to Powdery Mildew Derived from Aegilops searsii
Author:
  • MA Chao

    MA Chao

    College of Life Sciences, Henan Agricultural University
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  • DONG Zhen-jie

    DONG Zhen-jie

    College of Life Sciences, Henan Agricultural University
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  • TIAN Xiu-bin

    TIAN Xiu-bin

    College of Life Sciences, Henan Agricultural University
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  • WANG Bei-lin

    WANG Bei-lin

    College of Life Sciences, Henan Agricultural University
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  • ZHANG Yue-qi

    ZHANG Yue-qi

    College of Life Sciences, Henan Agricultural University
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  • LI Huan-huan

    LI Huan-huan

    College of Life Sciences, Henan Agricultural University
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  • LIU Wen-xuan

    LIU Wen-xuan

    College of Life Sciences, Henan Agricultural University
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Affiliation:

College of Life Sciences, Henan Agricultural University

Fund Project:

The National Natural Science Foundation of China (31571658); Science and Technology Major Project of Henan Province (161100110400)

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    摘要:

    亲缘种属来源的抗白粉病基因是培育小麦抗病品种,防治白粉病危害的最重要基因来源。Pm57是位于西尔斯山羊草 2Ss#l 染色体长臂上的一个外源基因,对小麦白粉病具有苗期和成株期广谱抗性。为了创制 Pm57 白粉病抗性丧失突变体,利用基于基因突变体的植物抗病基因克隆新兴技术分离 Pm57 基因,我们选用 0.625%的甲基磺酸乙酯(EMS)对 1 万粒小麦-西尔斯山羊草 Pm57 易位系 89(5)69 种子进行了诱变处理,M1 大田密播种植,收获了 1598 个 M2 可育株系。初步对其中 300 个 M2株系进行苗期白粉病抗性接种鉴定,并利用 2 个 Pm57 基因特异分子标记 X2L4g9P4/HaeIII 和 X284274 及小麦全国区试品系 DUS 测试所用的 42 对 SSR 核心引物对 Pm57 抗性丧失突变体进行鉴定,筛选出来自 27 个 M2株系的真实抗性丧失突变体 70 个,Pm57 基因抗性丧失突变体频率达到 9.0%。本研究所获得的白粉病抗性丧失突变体为 Pm57 基因的后续克隆与抗白粉病分子机理研究提供了重要的材料基础。

    关键词:小麦白粉病;Pm57;甲基磺酸乙酯;抗性丧失突变体;分子标记
    Abstract:

    Wheat relatives-derived alien genes provide most important resource to develop resistant varieties and protect wheat from the damage of powdery mildew. Pm57, a gene resided on the long arm of chromosome 2Ss#1 from Aegilops searsii caused broad-spectrum resistance against powdery mildew isolates at seedling and adult plant stage. In order to develop Pm57 mutants with loss of resistance to powdery mildew for further gene isolation using susceptible mutant-based resistant cloning approache, 10000 seeds of 89(5)69, a wheat-Ae. searsii recombinant stock containing Pm57 genes,were treated using 0.625% Ethyl methane sulfonate (EMS). M1seeds were then dense sowed in experiment station, and 1598 M2 lines were harvested. Of which 300 M2 lines randomly selected were used for resistance test by inoculation at seedling stage. After further validation of susceptible individual plants using two Pm57 specific molecular markers (X2L4g9P4/HaeIII and X284274) and 42 pairs of core primers,which are applied in DUS identification of wheat lines, 70 Pm57 mutants with loss of resistance to powdery mildew from 27 independent M2 lines were identified, with a mutant ratio as high as 9.0%. Thus, the newly-identified resistance-compromised mutants might lay a foundation for further cloning of the Pm57 gene.

    Key words:wheat powdery mildew; Pm57; ethyl methane sulfonate; mutant; molecular markers
    参考文献
    [1] Wan P, Ling L J, Cao S H, Wang X P, Zhang W J, Ling H Q, Zhu L H, Zhang X Q. Isolation, chromosomal location, and expression analysis of putative powdery mildew resistance genes in wheat ( Triticum aestivum L.)[J]. Euphytica, 2007, 155(1-2): 125-133.
    [2] Tan C C, Li G Q, Christina C, Brett F C, Xu X Y. Characterization of Pm63, a powdery mildew resistance gene in Iranian landrace PI 628024[J]. Theoretical Applied Genetics, 2018, 132(4): 1137-1141.
    [3] Zou S H, Wang H, Li Y W, Kong Z S, Tang D Z. The NB-LRR gene Pm60 confers powdery mildew resistance in wheat[J]. New Phytologist, 2017, 218(1): 298-309.
    [4] Tan C C, Li G Q, Christina C, Brett F C, Xu X Y. Characterization of Pm59, a novel powdery mildew resistance gene in Afghanistan wheat landrace PI 181356[J]. Theoretical Applied Genetics, 2018, 131(5): 1145-1152.
    [5] Javier S M, Burkhard S, Sreya G, Gerhard H, Severine H, Nikolai A, Jan V, Marie K, Simon G K, Thomas W, Jaroslav D, Beat K, Brande B H W. Rapid gene isolation in barley and wheat by mutant chromosome sequencing[J]. Genome Biology, 2016,17(1): 221.
    [6] Nabila Y, Payorm S, Robert D, Beat K. Genome analysis at different ploidy levels allows cloning of the powdery mildew resistance gene Pm3b from hexaploid wheat[J]. The Plant Journal, 2004, 37(4): 37(4):528-538.
    [7] Severine H, Susanne B, Gabriele B, Gerhard H, Tina J, Patricia K, Thomas W, Nabila Y, Rohit M, Beat K. Rye Pm8 and wheat Pm3 are orthologous genes and show evolutionary conservation of resistance function against powdery mildew[J]. The Plant Journal, 2013, 76(6): 957-969.
    [8] 胡立芹, 唐恒, 马信, 王宏伟, 孔令让. 粗山羊草抗白粉病基因Pm35的图位克隆及利用[A]. 中国作物学会.第八届全国小麦基因组学及分子育种大会摘要集[C]. 河北石家庄: 中国作物学会, 2017: 1.Hu L Q, Tang H, Ma X, Wang H W, Kong L R. Map-based cloning and utilization of Pm35 resistance gene from Aegilops tauschii[A]. Chinese Crop Society. 8<sup>th</sup> National Wheat Genomics and Molecular Breeding Conference Summary [C]. Hebei Shijiazhuang: China Crop Society, 2017: 1.
    [9] Xing L P, Hu P, Liu J Q, Witek.K, Zhou S, Xu J F, Zhou W H, Gao L, Huang Z P, Zhang R.Q, Wang X, Chen P D, Wang H Y, Jonathan.D.G..J, Miroslava.K, Jan.V, Jan.B, Jaroslav.D, Cao A Z. Pm21 from Haynaldia villosa encodes a CC-NBS-LRR that confers powdery mildew resistance in wheat[J]. Molecular Plant, 2018, 11(6): 874-878.
    [10] He H G, Zhu S Y, Zhao R H, Jiang Z N, Ji Y Y, Ji J, Qiu D, Li H J, Bie T D. Pm21, encoding a typical CC-NBS-LRR protein, confers Broad-spectrum resistance to wheat powdery mildew disease[J]. Molecular Plant, 2018, 11(6): 879-882.
    [11] 安学丽, 蔡一林, 王久光, 王国强, 孙海燕. 化学诱变及其在农作物育种上应用[J]. 核农学报, 2003, 17(3): 239-242.An X L, Cai Y L, Wang J G, Wang G Q, Sun H Y. Chemical mutagenesis and its application in crop breeding[J]. Journal of Nuclear Agricultural Sciences, 2003, 17(3): 239-242.
    [12] 闫智慧, 郭会君, 徐荣旗, 刘录祥. TILLING技术的发展及其在不同植物中的应用[J]. 核农学报, 2014, 28(2): 224-233.Yan Z H, Guo H J, Xu R Q, Liu L X.The development of TILLING technology and its application in different plants[J]. Journal of Nuclear Agricultural Sciences, 2014, 28(2): 224-233.
    [13] McCallum C M, Comai L, Greene E A, Henikoff S. Targeting induced local lesions in genomes (TILLING) for plant functional genomics[J]. Plant Physiology, 2000, 123(2): 439-442.
    [14] Slade A J, Fuerstenberg S I, Loeffler D, Steine M N, Facciotti D. A reverse genetic, nontransgenic approach to wheat crop improvement by TILLING[J]. Nature Biotechnology, 2005, 23(1): 75-81.
    [15] 赵天祥, 孔秀英, 周荣华, 高双成, 贾继增. EMS诱变六倍体小麦偃展4110的形态突变体鉴定与分析[J]. 中国农业科学, 2009, 42(3): 755-764.Zhao T X, Kong X Y, Zhou R H, Gao S C, Jia J Z. Identification and analysis of morphological mutants of mutant hexaploid wheat Variety 4110 by EMS[J]. Chinese Agricultural Science, 2009, 42(3): 755-764.
    [16] Riccardo B, Valentina T, Salvi S, Maria C S, Paolo T, Francesca S, Roberto T. Starch metabolism mutants in barley: a TILLING approach[J]. Plant Genetic Resources, 2011, 9(2): 170-173.
    [17] Joong H L, Seung Y L. Selection of stable mutants from cultured rice anthers treated with ethyl methane sulfonic acid[J]. Plant Cell, Tissue and Organ Culture, 2002, 71(2): 165-171.
    [18] Till B J, Reynolds S H, Weil C, Springer N, Burtner C, Young K, Bowers E, Codomo C A, Enns L C, Odden A R, Greene E A, Comai L, Henikoff S. Discovery of induced point mutations in maize genes by TILLING[J]. BMC Plant Biology, 2004, 4(1): 12.
    [19] Liu S , Kandoth P K , Warren S D , Yeckel G, Heinz R, Alden J, Yang C L, Jamai A, El-Mellouki T, Juvale P S, Hill J, Baum T J, Cianzio S, Whitham S A, Korkin D, Mitchum M G, Meksem K. A soybean cyst nematode resistance gene points to a new mechanism of plant resistance to pathogens[J]. Nature, 2012, 492(7428): 256-60.
    [20] 马燕欣. 南农9918感白粉病突变体NM14的创制及在抗病机理研究中的应用[D]. 南京: 南京农业大学, 2013.Ma Y X. Creation of Nannong 9918 powdery mildew mutant NM14 and its application in disease resistance mechanism research[D]. Nanjing: Nanjing Agricultural University, 2013.
    [21] Steuernagel B, Periyannan S K, Hernández-Pinzón I, Witek K, Rouse M N, Yu G T, Hatta A, Ayliffe M, Bariana H, Jones J D G, Lagudah E S, Wulff B B H. Rapid cloning of disease resistance genes in plants using mutagenesis and sequence capture[J]. Nature Biotechnology, 2016, 34(6): 652-655.
    [22] Liu W X, Koo D H, Xia Q, Li C X, Bai F Q, Song Y L, Friebe B, Gill B S. Homoeologous recombination based transfer and molecular cytogenetic mapping of powdery mildew resistant gene Pm57 from Aegilops searsii into wheat[J]. Theoretical Applied Genetics, 2017, 130(4): 841-848.
    [23] 盛宝钦. 用反应型记载小麦苗期白粉病[J]. 植物保护, 1988, 14(1): 49-49.Sheng B Q. Recording Powdery Mildew In Wheat Seedling By Reactive Type[J]. Plant Protection, 1988, 14(1): 49-49.
    [24] 王立新, 常利芳, 李宏博, 葛玲玲, 信爱华, 高世庆, 季伟, 孙辉, 赵昌平.小麦种子纯度的分子标记检测方法[J]. 麦类作物学报, 2009, 29(1):1-8.Wang L X, Chang L F, Li H B, Ge L L, Xin A H, Gao S Q, Ji W, Sun H, Zhao C P. Molecular marker detection method for purity of wheat seeds[J]. Journal of Triticeae Crops, 2009, 29(1): 1-8.
    [25] 袁秀芳, 王丹峰, 殷慧娟, 何方, 刘树兵. 小麦EMS突变体的创制与性状鉴定[J]. 山东农业科学, 2018, 50(7): 61-66.Yuan X F, Wang D F, Yin H J, He F, Liu S B.Creation and character identification of wheat EMS mutants[J]. Shandong Agricultural Sciences, 2018, 50(7): 61-66.
    [26] Bettgenhaeuser J, Krattinger S G. Rapid gene cloning in cereals[J]. Theoretical Applied Genetics, 2018, 132(3): 699-711.
    [27] Feiz L, Beecher B S, Martin J M, Giroux M J. In planta mutagenesis determines the functional regions of the wheat puroindoline proteins.[J]. Genetics, 2009, 183(3): 853.
    [28] Feiz L, Martin J M, Giroux M J. Creation and functional analysis of new puroindoline alleles in Triticum aestivum[J]. Theoretical Applied Genetics, 2009, 118(2): 247-257.
    [29] 张维宏, 安哲, 范学锋, 冯月琪, 杨文香, 刘大群. EMS诱导小麦TcLr19感叶锈病突变体的筛选[J]. 华北农学报, 2016, 31(4): 88-93.Zhang W H, An Z, Fan X F, Feng Y Q, Yang W X, Liu D Q. Screening of TcLr19 sensitive leaf rust mutants induced by EMS[J]. North China Agricultural Journal, 2016, 31(4): 88-93.
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马超,董振杰,田修斌,等.来自西尔斯山羊草的抗小麦白粉病基因Pm57抗性丧失突变体的筛选与鉴定[J].植物遗传资源学报,2020,21(2):386-393.

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  • 收稿日期:2019-04-17
  • 最后修改日期:2019-10-25
  • 录用日期:2019-06-05
  • 在线发布日期: 2020-03-17
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