Shimono Masaki, Sugano Shoji, Nakayama Akira, Jiang Chang-Jie, Ono Kazuko, Toki Seiichi, Takatsuji Hiroshi
Plant Disease Resistance Research Unit, National Institute of Agrobiological Sciences, Ibaraki, Japan.
Plant Cell. 2007 Jun;19(6):2064-76. doi: 10.1105/tpc.106.046250. Epub 2007 Jun 29.
Benzothiadiazole (BTH) is a so-called plant activator and protects plants from diseases by activating the salicylic acid (SA) signaling pathway. By microarray screening, we identified BTH- and SA-inducible WRKY transcription factor (TF) genes that were upregulated within 3 h after BTH treatment. Overexpression of one of them, WRKY45, in rice (Oryza sativa) markedly enhanced resistance to rice blast fungus. RNA interference-mediated knockdown of WRKY45 compromised BTH-inducible resistance to blast disease, indicating that it is essential for BTH-induced defense responses. In a transient expression system, WRKY45 activated reporter gene transcription through W-boxes. Epistasis analysis suggested that WRKY45 acts in the SA signaling pathway independently of NH1, a rice ortholog of Arabidopsis thaliana NPR1, which distinguishes WRKY45 from known Arabidopsis WRKY TFs. Two defense-related genes, encoding a glutathione S-transferase and a cytochrome P450, were found to be regulated downstream of WRKY45 but were not regulated by NH1, consistent with the apparent independence of the WRKY45- and NH1-dependent pathways. Defense gene expression in WRKY45-overexpressed rice plants varied with growth conditions, suggesting that some environmental factor(s) acts downstream of WRKY45 transcription. We propose a role for WRKY45 in BTH-induced and SA-mediated defense signaling in rice and its potential utility in improving disease resistance of rice, an importance food resource worldwide.
苯并噻二唑(BTH)是一种所谓的植物激活剂,通过激活水杨酸(SA)信号通路来保护植物免受病害。通过微阵列筛选,我们鉴定出了BTH和SA诱导型WRKY转录因子(TF)基因,这些基因在BTH处理后3小时内上调。其中一个基因WRKY45在水稻(Oryza sativa)中过表达显著增强了对稻瘟病菌的抗性。RNA干扰介导的WRKY45基因敲低削弱了BTH诱导的对稻瘟病的抗性,表明它对BTH诱导的防御反应至关重要。在瞬时表达系统中,WRKY45通过W盒激活报告基因转录。上位性分析表明,WRKY45在SA信号通路中独立于NH1发挥作用,NH1是拟南芥NPR1在水稻中的同源物,这使WRKY45与已知的拟南芥WRKY转录因子有所不同。发现两个与防御相关的基因,分别编码谷胱甘肽S-转移酶和细胞色素P450,受WRKY45下游调控,但不受NH1调控,这与WRKY45和NH1依赖途径的明显独立性一致。WRKY45过表达水稻植株中的防御基因表达随生长条件而变化,表明某些环境因素在WRKY45转录的下游起作用。我们提出WRKY45在水稻BTH诱导和SA介导的防御信号传导中的作用及其在提高水稻抗病性方面的潜在效用,水稻是全球重要的粮食资源。