Bie Beibei, Sun Jin, Pan Junsong, He Huanle, Cai Run
Plant Science Department, School of Agriculture and Biology, Shanghai Jiaotong University, Shanghai 200240, China.
National-Local Joint Engineering Research Center of Biodiagnostics & Biotherapy, Xi'an Jiaotong University, Xi'an 710004, Shaanxi, China.
Int J Mol Sci. 2014 Sep 15;15(9):16331-50. doi: 10.3390/ijms150916331.
The gaseous plant hormone ethylene regulates many aspects of plant growth, development and responses to the environment. Constitutive triple response 1 (CTR1) is a central regulator involved in the ethylene signal transduction pathway. To obtain a better understanding of this particular pathway in cucumber, the cDNA-encoding CTR1 (designated CsCTR1) was isolated from cucumber. A sequence alignment and phylogenetic analyses revealed that CsCTR1 has a high degree of homology with other plant CTR1 proteins. The ectopic expression of CsCTR1 in the Arabidopsis ctr1-1 mutant attenuates constitutive ethylene signaling of this mutant, suggesting that CsCTR1 indeed performs its function as negative regulator of the ethylene signaling pathway. CsCTR1 is constitutively expressed in all of the examined cucumber organs, including roots, stems, leaves, shoot apices, mature male and female flowers, as well as young fruits. CsCTR1 expression gradually declined during male flower development and increased during female flower development. Additionally, our results indicate that CsCTR1 can be induced in the roots, leaves and shoot apices by external ethylene. In conclusion, this study provides a basis for further studies on the role of CTR1 in the biological processes of cucumber and on the molecular mechanism of the cucumber ethylene signaling pathway.
气态植物激素乙烯调节植物生长、发育及对环境响应的诸多方面。组成型三重反应1(CTR1)是乙烯信号转导途径中的核心调节因子。为了更好地了解黄瓜中的这一特定途径,从黄瓜中分离出了编码CTR1的cDNA(命名为CsCTR1)。序列比对和系统发育分析表明,CsCTR1与其他植物CTR1蛋白具有高度同源性。CsCTR1在拟南芥ctr1-1突变体中的异位表达减弱了该突变体的组成型乙烯信号,这表明CsCTR1确实作为乙烯信号途径的负调节因子发挥作用。CsCTR1在所有检测的黄瓜器官中组成型表达,包括根、茎、叶、茎尖、成熟雄花和雌花以及幼果。CsCTR1的表达在雄花发育过程中逐渐下降,在雌花发育过程中增加。此外,我们的结果表明,外部乙烯可诱导CsCTR1在根、叶和茎尖中表达。总之,本研究为进一步研究CTR1在黄瓜生物学过程中的作用以及黄瓜乙烯信号途径的分子机制提供了基础。