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BvGLP1过表达增强了转基因小麦对根腐病的抗性 被引量:2

Expression of BvGLP1 in Transgenic Wheat Enhances Resistance to Common Root Rot
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摘要 类萌发素蛋白(germin-like protein,GLP)是一类含有cupins结构域的糖蛋白,在植物基础抗性等方面起着重要作用。本研究人工合成了甜菜GLP基因BvGLP1,并利用基因重组技术构建了受韧皮部特异表达启动子RSS1P驱动的BvGLP1基因单子叶植物表达载体pA20-RSS1P::BvGLP1。通过基因枪介导法将其转入小麦品种扬麦18中,对转基因扬麦18的T0至T3代植株中BvGLP1进行了PCR、半定量RT-PCR和荧光定量QPCR检测,并对转基因小麦进行根腐病和纹枯病抗性鉴定。结果表明,BvGLP1已转入转基因小麦扬麦18,并能在转基因小麦中遗传、转录表达;5个转BvGLP1基因小麦株系的根腐病抗性比受体品种扬麦18有显著提高,说明BvGLP1过表达增强了转基因小麦对根腐病的抗性。 BvGLP1 is a kind of germin-like protein (GLP) from sugar beet. GLP catalyzes the oxidation of oxalic acid to produce hydrogen peroxide that induces plant defense response to pathogen and results in enhanced-resistance. The open-reading-frame sequenceof BvGLP1 was synthesized and used to construct a BvGLP1 expression vector pA20-RSS1P::BvGLP1. In the vector, the expression of BvGLP1 was controlled by rice sucrose synthase-1 promoter (RSS1P). BvGLP1 was introducedinto wheat variety Yangmai 18 through bombardment. The presence and expression of BvGLP1 in T0 to T3 transgenic wheat plants were characterized by PCR, RT-PCR, and QPCR analyses. The common root rot and sharp eyespot disease tests on BvGLP1 transgenic wheat plants following artificial inoculation with the pathogens revealed that the expression of BvGLP1 in five transgenic wheat lines significantly enhanced resistance to common root rot.
出处 《作物学报》 CAS CSCD 北大核心 2013年第2期368-372,共5页 Acta Agronomica Sinica
基金 国家转基因生物新品种培育科技重大专项(2011ZX08002-001)资助
关键词 类萌发素蛋白 BvGLP1 转基因小麦 小麦根腐病 抗性 Germin-like protein BvGLP1 Transgenic wheat Wheat common root rot Resistance
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参考文献25

  • 1ChenY-X(陈延熙) TangW-H(唐文华) ZhangD-H(张敦华) JianX—Y(简小鹰).A preliminary study on etiology of sharp eyespot of wheat in China[J].植物保护学报,1986,13(1):39-44.
  • 2路妍,张增艳,任丽娟,刘宝业,廖勇,徐惠君,杜丽璞,马鸿翔,任正隆,井金学,辛志勇.转Rs-AFP2基因小麦的分子分析及其纹枯病抗性[J].作物学报,2009,35(4):640-646. 被引量:16
  • 3Kumar J, Schafer R Hiickelhoven R, Langen G, Baltruschat H, Stein E, Nagarajan, S, Kogel K H. Bipolaris sorokiniana, a cereal pathogen of global concern: cytological and molecular ap- proaches towards better control. Mol Plant Pathol, 2002, 3: 185-195.
  • 4Knecht K, Seyffarth M, Desel C, Thurau T, Sherameti I, Lou B, Oelmtiller R, Cai D. Expression of BvGLP-1 encoding a ger- min-like protein from sugar beet in Arabidopsis thaliana leads to resistance against phyto- pathogenic fungi. Mol Plant-Microbe Interact, 2010, 23:446457.
  • 5Breen J, Bellgard M. Germin-like proteins (GLPs) in cereal ge- nomes: gene clustering and dynamic roles in plant defence. Funct Integr Genom, 2010, 10:463476.
  • 6Lane B G, Dunwell J M, Ray J A, Schmitt M R, Cuming A C. Germin, a protein marker of early plant development, is an ox- alate oxidase. J Biol Chem, 1993, 268:12239-12242.
  • 7Olson P D, Varner J E. Hydrogen peroxide and lignifications. Plant J, 1993, 4:887-892.
  • 8Wei Y D, Zhang Z G, Andersen C H, Schmelzer E, Gregersen P L, Collinge D B, Smedegaard-Petersen V, Thordal-Christensen H An epidermis/papilla-specific oxalate oxidase-like protein in the defense response of barley attacked by the powdery mildew fun- gus. Plant Mol Biol, 1998, 36:101-112.
  • 9Fry S C. Oxidative scission of plant cell wall polysaccharides by ascorbate induced hydroxyl radicals. Biochem J, 1998, 332: 507-515.
  • 10Caliskan M, Cuming A C. Spatial specificity of H202-generating oxalate oxidase gene expression during wheat embryo germina- tion. Planta, 1998, 15:165-171.

二级参考文献62

  • 1张小村,李斯深,赵新华,李瑞军.15个小麦重组自交系群体抗纹枯病性的遗传分析[J].麦类作物学报,2004,24(3):13-16. 被引量:8
  • 2汤頲,任丽娟,蔡士宾,吴纪中,陆维忠,陈建民,马鸿翔.小麦AR_z抗纹枯病的QTL定位研究[J].麦类作物学报,2004,24(4):11-16. 被引量:14
  • 3蔡士宾,任丽娟,颜伟,吴纪中,陈怀谷,吴小有,张仙义.小麦抗纹枯病种质创新及QTL定位的初步研究[J].中国农业科学,2006,39(5):928-934. 被引量:34
  • 4廖勇,张增艳,徐惠君,杜丽璞,姚乌兰,辛志勇,任正隆.基因枪法介导转人工合成Rs-AFP2基因小麦的获得和检测[J].麦类作物学报,2006,26(4):15-19. 被引量:7
  • 5陈延熙 唐文华 等.我国小麦纹枯病病原学的初步研究[J].植物保护学报,1986,13(1):39-44.
  • 6Almasia N I, Bazzini A A, Hopp H E, Vazquez-Rovere C. Overexpression of snakin-1 gene enhances resistance to Rhizoctonia solani and Erwinia carotovora in transgenic potato plants. Mol Plant Plantpthol, 2008, 9:329-338.
  • 7Terras F R G, Schoofs H M E, De Bolle M F C, Leuven F V, Rees S B, Vanderleyden J, Cammue B P A, Broekaert W F. Analysis of two novel classes of antifungal proteins from radish (Raphanus sativus) seed. J Biol Chem, 1992, 267:15301-15309.
  • 8Ten'as F R G, Goderis I J, Leuven F V, Vanderleyden J, Cammue B P A. Broekaert W E In vitro antifungal activity of a radish (Raphanus sativus) seed protein homologous to nonspecific lipid transfer proteins. Plant Physiol, 1992, 100:1055-1058.
  • 9Terras F R G, Eggermont K, Kovaleva V, Raikhel N V, Osborn R W, Kester A, Rees S B, Torrekemd S, Leuven F V, Vanderleyden J, Cammue B P A, Broekaert W F. Small cyteine-rich antifungal proteins from radish: Their role in host defense. Plant Cell, 1995,7:573-588.
  • 10Sharp P J, Kries M, Shewry P R, Gale M D. Location of β-amylase sequences in wheat and its relatives. Theor Appl Genet, 1988, 75:286-290.

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