研究报告

Pib启动子中茉莉酸和乙烯响应元件的转基因分析

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  • 南京农业大学作物遗传与种质创新国家重点实验室, 南京210095

收稿日期: 2009-05-14

  修回日期: 2009-08-12

  网络出版日期: 2010-01-15

基金资助

国家自然科学基金项目(编号:30571044), 江苏省高科技项目(编号:BG2001305)和长江学者和创新团队发展计划资助

Analysis of the molecular motif for inducing response to jasmonic acid and ethylene in Pib promoter via rice transformation

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  • National Key Laboratory of Crop Genetics and Germplasm Enhancement, Nanjing Agricultural university, Nanjing 210095

Received date: 2009-05-14

  Revised date: 2009-08-12

  Online published: 2010-01-15

摘要

水稻Pib基因的表达受茉莉酸、乙烯等激素诱导, 为了确定该基因启动子响应茉莉酸和乙烯诱导的必需区域, 进一步阐明茉莉酸和乙烯响应分子元件, 文章用PCR制备了Pib全长启动子-3 572~2 bp及3个5′端有不同长度缺失的Pib启动子片段-2 692~2 bp、-1 335~2 bp、-761~2 bp。4个不同长度Pib启动子分别置换掉双元质粒中gus基因上游的35S构建为重组质粒, 经农杆菌介导转入水稻获得转基因植株。转基因水稻中gus活性的蛋白质水平和mRNA水平的定性和定量分析结果表明, 全长Pib启动子(-3 572~2 bp, pNAR901)启动活性最强, 茉莉酸或乙烯诱导6 h后, 其驱动gus基因在转基因植株各部组织中的表达量明显上升。而-3 572~-2 692 bp区段序列缺失后不但Pib启动子启动活性显著降低而且也丧失了对茉莉酸和乙烯的诱导活性。pNAR902(-2 692~2 bp),pNAR903(-1 335~2 bp)和pNAR904(-761~2 bp)中的Pib启动子序列的缺失长度相差达2倍和3倍以上, 但其对茉莉酸和乙烯的诱导响应没有区别。这些结果显示3个Pib启动子缺失体构建中, 其共同缺失序列即-3 572~-2 692 bp区域是Pib启动子茉莉酸和乙烯诱导响应的必需区域。软件检索证实, Pib启动子序列中只在上述共同缺失区段之内的-2 722 bp处有一个GCCGCC基序。文章报道的转基因实验表明GCCGCC基序可能是Pib基因中有关茉莉酸和乙烯诱导响应的顺式分子元件。

本文引用格式

余丽,杨世湖,晋玉宽,万建民,赵宝泉 . Pib启动子中茉莉酸和乙烯响应元件的转基因分析[J]. 遗传, 2010 , 32(1) : 73 -80 . DOI: 10.3724/SP.J.1005.2010.00073

Abstract

The expression of Pib gene in rice was induced by hormone, such as jasmonic acid and ethylene. In order to determine the necessary regions of sequence or motifs for response to jasmonic acid and ethylene in Pib promoter, the full length promoter of Pib (-3 572~2 bp) and three different 5′ deletion fragments of Pib promoter (-2 692~2 bp, -1 335~2 bp, -761~2 bp) were synthesized by PCR and then were substituted for 35S upstream gus in a binary plasmid to construct re-combined plasmids of Pib promoter-gus fusions. Transgenic rice plants of the four recombined plasmids were produced by Agrobacterium-mediated transformation. Quality and quantum analysis of gus activities in transgenic plants at both protein and mRNA levels were conducted. The promotion activity of the full length promoter of Pib (-3 572~2 bp, pNAR901) was the highest in the four recombinants and the gus activities in its transgenic plant organs were enhanced obviously at 6 h after treatment with jasmonic acid or ethylene. The promotion activity of the deleted Pib promoters was significantly decreased and the response to jasmonic acid or ethylene treatment was not present when the -3 572~-2 692 bp sequence was knocked out from the Pib promoter. Although the disparity in the lengths of the deleted Pib promoter of pNAR902 (-2 692~2 bp), pNAR903 (-1 335~2 bp), and pNAR904 (-761~2 bp) was more than 2 or 3 times, the response to jasmonic acid or ethylene treatment was not different among their transgenic plants. All these results indicated that the common deleted sequences (-3 572 ~-2 692 bp) in the three deleted Pib promoter constructs were the essential region to the response to jasmonic acid and ethylene treatment. The result of pib promoter sequence searching indicated that there was only one GCCGCC motif at -2 722 bp of this common deleted segment in the Pib promoter sequence. Our rice transgenic results showed that the GCCGCC may be a cis-motif for Pib gene conferring response to jasmonic acid and ethylene for Pib gene.

参考文献

[1] 黄海群, 林拥军. 水稻rbcS基因启动子的克隆及结构功能分析. 农业生物技术学报, 2007, 15(3): 451–458.

[2] Lorenzo O, Piqueras R, Sánchez-Serrano JJ, Solano R. ETHYLENE RESPONSE FACTOR1 integrates signals from ethylene and jasmonate pathways in plant defense. Plant Cell, 2003, 15(1): 165–178.

[3] Robert-Seilaniantz A, Navarro L, Bari R, Jones JD. Pathological hormone imbalances. Curr Opin Plant Biol, 2007, 10(4): 372–379.

[4] Anderson JP, Badruzsaufari E, Schenk PM, Manners JM, Desmond OJ, Ehlert C, Maclean DJ, Ebert PR, Kazan K. Antagonistic interaction between abscisic acid and jas-monate-ethylene signaling pathways modulates defense gene expression and disease resistance in Arabidopsis. Plant Cell, 2004, 16(12): 3460–3479.

[5] Wang ZX, Yano M, Yamanouchi U, Iwamoto M, Monna L, Hayasaka H, Katayose Y, Sasaki T. The Pib gene for rice blast resistance belongs to the nucleotide binding and leu-cine-rich repeat class of plant disease resistance genes. Plant J, 1999, 19(1): 55–64.

[6] Wang ZX, Yamanouchi U, Katayose Y, Sasaki T, Yano M. Expression of the Pib rice–blast–resistance gene family is up-regulated by environmental conditions favoring infec-tion and by chemical signals that trigger secondary plant defenses. Plant Mol Biol, 2001, 47(5): 653–661.

[7] 李婵娟, 杨世湖, 武亮, 万建民. Pib基因启动子及其诱导启动性初探. 遗传, 2006, 28(6): 689–694.

[8] 邵克强, 杨世湖, 余丽, 万建民. Pib基因启动子内YTCANTYY暗诱导分子元件功能的转基因验证. 作物学报, 2008, 34(9): 1667–1672.

[9] 倪 丹, 杨世湖, 徐士清, 万建民. 非洲菊组培快繁技术的优化. 细胞生物学杂志, 2002, 24(5): 316–319.

[10] Hiei Y, Ohta S, Komari T, Kumashiro T. Efficient trans-formation of rice (Oryza sativa L.) mediated by Agrobacterium and sequence analysis of the boundaries of the T-DNA. Plant J, 1994, 6(2): 271–282.

[11] Dellaporta SL, Wood J, Hicks JB. A plant DNA miniprepara-tion: Version II. Plant Mol Biol Rep, 1983, 1(4): 19–21.

[12] Murray MG, Thompson WF. Rapid isolation of high mo-lecular weight plant DNA. Nucl Acids Res, 1980, 8(19): 4321–4326.

[13] Sambrook J, Fritsch EF, Maniatis T. Molecular Cloning: A Laboratory Manual, 2nd edn. Cold Spring Harbor Labo-ratory Press, Cold Spring Harbor, NY, 1989, 496-499.

[14] Jfferson RA. Assaying chimeric genes in plants: the GUS gene fusion system. Plant Mol Biol Rep, 1987, 5(4): 387–405.

[15] Jefferson RA, Kavanagh TA, Bevan MW. GUS fusions: β-glucuronidase as a sensitive and versatile gene fusion marker in higher plant. EMBO J, 1987, 6(13): 3901–3907.

[16] Bradford MM. A rapid and sensitive method for the quan-titation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem, 1976, 72(1–2): 248–254.

[17] Livak KJ, Schmittgen TD. Analysis of relative gene ex-pression data using real-time quantitative PCR and the 2-△Ct method. Methods, 2001, 25(4): 402–408.

[18] Brown RL, Kazan K, Mcgrath KC, Maclean DJ, Manners JM. A role for the GCC-box in jasmonate-mediated acti-vation of the PDF1.2 gene of Arabidopsis. Plant Physiol, 2003, 132(2): 1020–1032.

[19] 张海文, 谢丙炎, 卢向阳, 杨宇红, 陈棋, 黄荣峰. 拟南芥防卫基因PDF1. 2启动子中GCC盒是应答茉莉素反应必要的顺式作用元件. 科学通报, 2004, 49(23): 2444–2448.

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