研究报告

拟南芥AtWRKY25、AtWRKY26AtWRKY33在非生物胁迫条件下的表达分析

展开
  • 1. 中国科学院西双版纳热带植物园, 昆明 650223; 2. 中国科学院研究生院, 北京 100049

收稿日期: 2009-10-28

  修回日期: 2010-01-14

  网络出版日期: 2010-08-23

基金资助

转基因生物新品种培育科技重大专项(编号:2009ZX08009-066B)和国家自然科学基金项目(编号:90817003)资助

Expression profiles of AtWRKY25, AtWRKY26 and AtWRKY33 under abiotic stresses

Expand
  • 1. Xishuangbanna Tropical Botanical Garden, Chinese Academy of Sciences, Kunming 650223, China; 2. Graduate University of Chinese Academy of Sciences, Beijing 100049, China

Received date: 2009-10-28

  Revised date: 2010-01-14

  Online published: 2010-08-23

摘要

WRKY 转录因子家族在调控植物逆境诱导反应、生长发育及其信号转导等方面起着重要的分子生物学功能。文章采用Northern 杂交的方法, 对拟南芥3个WRKY基因进行表达谱分析。结果表明: AtWRKY25AtWRKY26AtWRKY33受多种非生物逆境因子(温度因子、高盐、渗透胁迫和激素脱落酸)的影响, 其中低温和高盐对AtWRKY25AtWRKY26AtWRKY33的诱导尤为明显, 表明这3个AtWRKY基因可能在响应环境信号方面起着一定的作用。作为序列相似性较高的AtWRKY25AtWRKY26AtWRKY33对一些胁迫因子的表达模式呈现一定的相似性; 但AtWRKY33受高温的抑制和低温的快速诱导, 与另外两个基因的表达模式不同, 推测它们对温度胁迫因子的反应存在差异。此外, 对启动子序列的生物信息学分析发现, 3个基因的启动子包含多个与非生物逆境反应相关的顺式作用元件。

本文引用格式

付乾堂,余迪求 . 拟南芥AtWRKY25、AtWRKY26AtWRKY33在非生物胁迫条件下的表达分析[J]. 遗传, 2010 , 32(8) : 848 -856 . DOI: 10.3724/SP.J.1005.2010.00848

Abstract

The transcription factor WRKY family is one type of key regulatory components of plant development and defense against stress factors. The expression profiles of three AtWRKY genes under abiotic stresses were analyzed by Northern blotting analysis. The expression of AtWRKY25, AtWRKY26, and AtWRKY33 changed during stress treatments including thermal factors, NaCl, abscisic acid (ABA) and osmotic stress, and significantly under NaCl and cold treatments, suggesting a specific role of the three AtWRKYs in adaptation to environmental stresses in plants. We also found that the three AtWRKY genes showed distinct expression patterns under thermal stresses. AtWRKY25 and AtWRKY26 were gradually induced during heat and cold treatments, whereas AtWRKY33 was suppressed by heat treatment and induced rapidly during cold stress, indicating that the three AtWRKYs may play different roles in response to temperature factors. In addition, we analyzed the sequence of the promoters with bioinformatics approach, and some cis-elements involved in abiotic stresses and hormonal responses were revealed. The results provided important information for studying biological functions of three AtWRKY genes.

参考文献

[1] Zhu JK. Cell signaling under salt, water and cold stresses. Curr Opin Plant Biol, 2001, 4(5): 401–406. [2] Seki M, Kamei A, Yamaguchi-Shinozaki K, Shinozaki K. Molecular responses to dehydration, salinity and frost: common and different paths for plant protection. Curr Opin Biotechnol, 2003, 14(2): 194–199. [3] Clarke SM, Mur LA, Wood JE, Scott IM. Salicylic acid dependent signaling promotes basal thermotolerance but is not essential for acquired thermotolerance in Arabidopsis thaliana. Plant J, 2004, 38(3): 432–447. [4] Yu D, Chen C, Chen Z. Evidence for an important role of WRKY DNA binding proteins in the regulation of NPR1 gene expression. Plant Cell, 2001, 13(7): 1527–1540. [5] Asai T, Tena G, Plotnikova J, Willmann MR, Chiu WL, Gomez-Gomez L, Boller T, Ausubel FM, Sheen J. MAP kinase signaling cascade in Arabidopsis innate immunity. Nature, 2002, 415(6875): 977–983. [6] Johnson CS, Kolevski B, Smyth DR. TRANSPARENT TESTA GLABRA2, a trichome and seed coat develop-ment gene of Arabidopsis, encodes a WRKY transcription factor. Plant Cell, 2002, 14(6): 1359–1375. [7] Luo M, Dennis ES, Berger F, Peacock WJ, Chaudhury A. MINISEED3 (MINI3), a WRKY family gene, and HAIKU2 (IKU2), a leucine-rich repeat (LRR) KINASE gene, are regulators of seed size in Arabidopsis. Proc Natl Acad Sci USA, 2005, 102(48): 17531–17536. [8] Robatzek S, Somssich IE. Targets of AtWRKY6 regula-tion during plant senescence and pathogen defense. Genes Dev, 2002, 16(9): 1139–1149. [9] Zhou QY, Tian AG, Zou HF, Xie ZM, Lei G, Huang J, Wang CM, Wang HW, Zhang JS, Chen SY. Soybean WRKY-type transcription factor genes, GmWRKY13, GmWRKY21, and GmWRKY54, confer differential tol-erance to abiotic stresses in transgenic Arabidopsis plants. Plant Biotechnol J, 2008, 6(5): 486–503. [10] Fowler S, Thomashow MF. Arabidopsis transcriptome profiling indicates that multiple regulatory pathways are activated during cold acclimation in addition to the CBF cold response pathway. Plant Cell, 2002, 14(8): 1675–1690. [11] Ramamoorthy R, Jiang SY, Kumar N, Venkatesh PN, Ramachandran S. A comprehensive transcriptional profil-ing of the WRKY gene family in rice under various abiotic and phytohormone treatments. Plant Cell Physiol, 2008, 49(6): 865-879. [12] Wu X, Shiroto Y, Kishitani S, Ito Y, Toriyama K. En-hanced heat and drought tolerance in transgenic rice seed-lings overexpressing OsWRKY11 under the control of HSP101 promoter. Plant Cell Rep, 2009, 28(1): 21–30. [13] Qiu Y, Yu D. Over-expression of the stress-induced Os-WRKY45 enhances disease resistance and drought toler-ance in Arabidopsis. Environ Exp Bot, 2009, 65(1): 35–47. [14] Wei W, Zhang YX, Han L, Guan ZQ, Chai TY. A novel WRKY transcriptional factor from Thlaspi caerulescens negatively regulates the osmotic stress tolerance of trans-genic tobacco. Plant Cell Rep, 2008, 27(4): 795–803. [15] Sanchez-Ballesta MT, Lluch Y, Gosalbes MJ, Zacarias L, Granell A, Lafuente MT. A survey of genes differentially expressed during long-term heat induced chilling tolerance in citrus fruit. Planta, 2003, 218(1): 65–70. [16] Zou X, Seemann JR, Nemnan D, Shen QJ. A WRKY gene from creosote bush encodes an activator of the abscisic acid signal-ing pathway. J Biol Chem, 2004, 279(53): 55770–55779. [17] Dong J, Chen C, Chen Z. Expression profiles of the Arabidopsis WRKY gene superfamily during plant defense response. Plant Mol Biol, 2003, 51(1): 21–37. [18] Ülker B, Somssich IE. WRKY transcription factors: from DNA binding towards biological function. Curr Opin Plant Biol, 2004, 7(5): 491–498. [19] Andreasson E, Jenkins T, Brodersen P, Thorgrimsen S, Petersen NHT, Zhu SJ, Qiu JL, Micheelsen P, Rocher A, Petersen M, Newman MA,
文章导航

/