Kobayashi Takanori, Yoshihara Toshihiro, Itai Reiko Nakanishi, Nakanishi Hiromi, Takahashi Michiko, Mori Satoshi, Nishizawa Naoko K
Graduate School of Agricultural and Life Sciences, The University of Tokyo, 1-1 Yayoi, Bunkyo-ku, Tokyo 113-8657, Japan.
Plant Physiol Biochem. 2007 May;45(5):262-9. doi: 10.1016/j.plaphy.2007.03.007. Epub 2007 Mar 14.
Under conditions of iron deficiency, graminaceous plants induce the expression of genes involved in the biosynthesis of mugineic acid family phytosiderophores. We previously identified the novel cis-acting elements IDE1 and IDE2 (iron-deficiency-responsive element 1 and 2) through promoter analysis of the barley (Hordeum vulgare L.) iron-deficiency-inducible IDS2 gene in tobacco (Nicotiana tabacum L.). To gain further insight into plant gene regulation under iron deficiency, we analyzed the barley iron-deficiency-inducible IDS3 gene, which encodes mugineic acid synthase. IDS3 promoter fragments were fused to the beta-glucuronidase (GUS) gene, and this construct was introduced into Arabidopsis thaliana L. and tobacco plants. In both Arabidopsis and tobacco, GUS activity driven by the IDS3 promoter showed strongly iron-deficiency-inducible and root-specific expression. Expression occurred mainly in the epidermis of Arabidopsis roots, whereas expression was dominant in the pericycle, endodermis, and cortex of tobacco roots, resembling the expression pattern conferred by IDE1 and IDE2. Deletion analysis revealed that a sequence within -305 nucleotides from the translation start site was sufficient for specific expression in both Arabidopsis and tobacco roots. Gain-of-function analysis revealed functional regions at -305/-169 and -168/-93, whose coexistence was required for the induction activity in Arabidopsis roots. Multiple IDE-like sequences were distributed in the IDS3 promoter and were especially abundant within the functional region at -305/-169. A sequence moderately homologous to that of IDE1 was also present within the -168/-93 region. These IDE-like sequences would be the first candidates for the functional iron-deficiency-responsive elements in the IDS3 promoter.
在缺铁条件下,禾本科植物会诱导与 mugineic 酸家族植物铁载体生物合成相关的基因表达。我们之前通过对烟草(Nicotiana tabacum L.)中大麦(Hordeum vulgare L.)缺铁诱导型 IDS2 基因的启动子分析,鉴定出了新的顺式作用元件 IDE1 和 IDE2(缺铁响应元件 1 和 2)。为了更深入了解缺铁条件下的植物基因调控,我们分析了编码 mugineic 酸合酶的大麦缺铁诱导型 IDS3 基因。将 IDS3 启动子片段与 β-葡萄糖醛酸酶(GUS)基因融合,并将该构建体导入拟南芥(Arabidopsis thaliana L.)和烟草植株中。在拟南芥和烟草中,由 IDS3 启动子驱动的 GUS 活性均表现出强烈的缺铁诱导型和根特异性表达。表达主要发生在拟南芥根的表皮,而在烟草根的中柱鞘、内皮层和皮层中表达占主导,类似于 IDE1 和 IDE2 赋予的表达模式。缺失分析表明,翻译起始位点上游 -305 个核苷酸内的一个序列足以在拟南芥和烟草根中进行特异性表达。功能获得分析揭示了 -305/-169 和 -168/-93 处的功能区域,它们的共存是拟南芥根中诱导活性所必需的。多个 IDE 样序列分布在 IDS3 启动子中,在 -305/-169 的功能区域内尤其丰富。在 -168/-93 区域内也存在一个与 IDE1 序列适度同源的序列。这些 IDE 样序列将是 IDS3 启动子中功能性缺铁响应元件的首批候选序列。