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燕麦AsRBP1基因克隆及表达特性分析

Cloning of AsRBP1 Gene from Oat(Avena sterilis) and Analysis on Its Expressions to Stresses
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摘要 为了给AsRBP1基因在小麦抗逆转基因分子育种中的应用奠定理论基础,采用同源克隆方法从燕麦中克隆、获得AsRBP1基因,其cDNA序列全长447bp,编码148个氨基酸。AsRBP1在氨基端具有典型的RNA识别基序(RNA-Recognition Motif,RRM),在羧基端富含甘氨酸,其含量达35.8%。系统进化树分析表明,AsRBP1与拟南芥AtGR-RBP7亲缘关系很近。实时荧光定量聚合酶链式反应(Real-time PolymeraseChain Reaction,RT-PCR)分析该基因的表达特性表明,AsRBP1明显受到外源脱落酸(Abscisic acid,ABA)与低温的诱导,同时对干旱和高盐胁迫也做出响应。由此,推测该基因属于GR-RBPs基因家族成员,可能参与逆境胁迫应答,在增强植物的抗逆性中发挥着重要的作用,可以为小麦抗逆分子育种提供优良候选抗逆基因资源。 Glycine-rich RNA-binding proteins(GR-RBPs) play important roles in the regulation of stress and improve the resistance in plants.In this study,in order to mine stress-related genes and supply important candidate genes for transgenic wheat,AsRBP1 was cloned from Avena sterilis based on homologous cloning method.The results showed that the cDNA of AsRBP1 was 447 bp in length and encoded 148 amino acids.There was a typical RNA recognition motif(RRM) in the N-terminal in AsRBP1 and Glycine-rich domain in the C-terminal,which content was 35.8 %.The Phylogenetic tree showed that AsRBP1 and Arabidopsis AtGR-RBP7 had a close relationship.Real-time PCR analysis of the expression characteristics showed that AsRBP1 was significantly induced by exogenous abscisic acid and low temperature,and at the same time it responded to drought and high salt stress.Therefore,it was speculated that AsRBP1 was a member of GR-RBPs family and might be involved in stress response and enhanced the stress resistance of plants.Finally,it was very useful for wheat molecular breeding aspect to provide good candidate stress genes.
出处 《麦类作物学报》 CAS CSCD 北大核心 2013年第2期217-223,共7页 Journal of Triticeae Crops
基金 国家转基因生物新品种培育重大专项(2011ZX08002-002) 国家自然科学基金项目(31201200)
关键词 白燕 GR-RBP 基因克隆 系统进化树 Avena sterilis GR-RBP Gene cloning Polygenetic tree
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参考文献16

  • 1HoganD J, Riordan D P, Gerber A P,et al. Diverse RNA-binding protein interact with functionally related sets ofRNAs, suggesting an extensive regulatory system [J]. PLoSBiology,2008,6(10):2297-2310. 被引量:1
  • 2杜光伟,周严,袁建刚,强伯勤.RRM RNA结合蛋白的结构与功能[J].生物化学与生物物理进展,1999,26(4):305-307. 被引量:8
  • 3Bailey-Serrse.SorensonR,Juntawong P. Getting the messageacross : cytoplasmic ribonucleoprotein complexes匸J]. Plant Sci-ence, 2009 ,14 : 443-453. 被引量:1
  • 4LeeM-H, Schedl T. RNA-binding protein[OB/OL]. http// :www. wormbook. org. April,18,2006. 被引量:1
  • 5唐蜻.植物RNA结合蛋白的研究进展[J].安徽农业科学,2010,38(1):38-41. 被引量:7
  • 6Sachetto M G, Franco L ., Oliveira D E. Plant glycine-richproteint a family or just protein with a common motif[J]. Bio-chimica et Biophysica Acta .2000,1492 j 1-14. 被引量:1
  • 7DunnM A,Brown K, Lightowlers K^et al. A Low-tempera-ture-responsive gene from barley encodes a protein with sin-gle-stranded nucleic acid-binding activity which is phosphoryl-ated in vitro[J]. Plant Molecular Biology .1996,30 .947-959. 被引量:1
  • 8Aneeta,SananM N.Tuteja N^etal. Salinity-and ABA-inducedup-regulation and light-mediated modulation of mRNA enco-ding glycine-rich RNA-binding protein from sorghum bicolor[J]. Biochemical and Biophysical Research Communications,2002,396(5):1063-1068. 被引量:1
  • 9NakaminamiK,Sasaki K,Kajita S,et al. Heat stable ssDNA/RNA-binding protein activity of a wheat cold shock domainprotein[J]. Federation of European Biochemical Societies Let-ters, 2005 ,579 :4887-4891. 被引量:1
  • 10KimJ Y,Kim W Y,Kwak K],et al. Glycine-rich RNA-bind-ing proteins are functionally conserved in Arabidopsis thali-ana and Oryza Sativa during cold adaptation process[J], Jour-nal of Experimental Botany,2010,61(9) :2317-2325. 被引量:1

二级参考文献44

  • 1陈璇,李文正,邵岩,曾千春.动植物中RNA结合蛋白的研究进展[J].生物技术通报,2007,23(3):9-15. 被引量:6
  • 2FEDOROFF N V. RigA-binding proteins in plants: the tip of an iceberg [J].Curr Opin Plant Biol, 2002,5(5) :452 -459. 被引量:1
  • 3MAR M ALBA, MONTSERRAT PAGES. Plant proteins containing the RNA-recognition motif[ J ]. Trends in Plant Science,1998,3 : 15 - 21. 被引量:1
  • 4HELLMAN L M,FRIED M G. Electmphoretic mobility shift assay(EMSA) for detecting protein-nucleic acid interactions[J]. Nat Protoc,2007,2(8) : 1849 - 1861. 被引量:1
  • 5ZHAO B,SCHNEID C ,ILIEV D. The circadian ma-binding protein ehlamy 1 represents a novel type heteromer of RNA recognition motif and lysine homology domain-containing subunits [ J ]. Eukaryot Cell ,2004,3 (3) :815 -825. 被引量:1
  • 6MACKNIGHT R, BANCROFT I, PAGE T. FCA, a gene controlling flowering time in Arabidopsis, encodes a protein containing RNA-binding do- mains [J].Cell 1997,89(5) :737 -745. 被引量:1
  • 7SENGUPTA D J,ZHANG B,KRAEMER B. A three-hybrid system to detect RNA-protein interactions in vivo[J]. Proc Natl Acad Sci USA, 1996, 93(16) :8496 -8501. 被引量:1
  • 8PUTZ U,SKEHELP,KUHL D. A trihybrid system for the analysis and detection of RNA-protein interactions[J]. Nucleic Acids Res ,1996,24(23 ): 4838 - 4840. 被引量:1
  • 9WALKER N S,STIFFLER N,BARKAN A. POGs/PlantRBP:a resource for comparative genomics in plants [ J ]. Nucleic Acids Res, 2007,35 : 852 - 856. 被引量:1
  • 10JIN SUN KIN, HYUN JU 2UNG, HWA JUNG LEE. Glycine-rich RNA- binding protein7 affects abiotic stress responses by regulating stomata opening and closing in Arabidopsis thaliana [J]. The Plant Journal,2008, 55:455 - 466. 被引量:1

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