Murata Yoshiko, Ma Jian Feng, Yamaji Naoki, Ueno Daisei, Nomoto Kyosuke, Iwashita Takashi
Suntory Institute for Bioorganic Research, 1-1-1 Wakayamadai, Shimamoto-cho, Mishima-gun, Osaka 618-8503, Japan.
Plant J. 2006 May;46(4):563-72. doi: 10.1111/j.1365-313X.2006.02714.x.
Iron acquisition of graminaceous plants is characterized by the synthesis and secretion of the iron-chelating phytosiderophore, mugineic acid (MA), and by a specific uptake system for iron(III)-phytosiderophore complexes. We identified a gene specifically encoding an iron-phytosiderophore transporter (HvYS1) in barley, which is the most tolerant species to iron deficiency among graminaceous plants. HvYS1 was predicted to encode a polypeptide of 678 amino acids and to have 72.7% identity with ZmYS1, a first protein identified as an iron(III)-phytosiderophore transporter in maize. Real-time RT-PCR analysis showed that the HvYS1 gene was mainly expressed in the roots, and its expression was enhanced under iron deficiency. In situ hybridization analysis of iron-deficient barley roots revealed that the mRNA of HvYS1 was localized in epidermal root cells. Furthermore, immunohistological staining with anti-HvYS1 polyclonal antibody showed the same localization as the mRNA. HvYS1 functionally complemented yeast strains defective in iron uptake on media containing iron(III)-MA, but not iron-nicotianamine (NA). Expression of HvYS1 in Xenopus oocytes showed strict specificity for both metals and ligands: HvYS1 transports only iron(III) chelated with phytosiderophore. The localization and substrate specificity of HvYS1 is different from those of ZmYS1, indicating that HvYS1 is a specific transporter for iron(III)-phytosiderophore involved in primary iron acquisition from soil in barley roots.
禾本科植物获取铁的特征在于铁螯合植物铁载体 mugineic 酸(MA)的合成与分泌,以及铁(III)-植物铁载体复合物的特定摄取系统。我们在大麦中鉴定出一个特异性编码铁-植物铁载体转运蛋白(HvYS1)的基因,大麦是禾本科植物中对缺铁耐受性最强的物种。预测 HvYS1 编码一个由 678 个氨基酸组成的多肽,与玉米中首个被鉴定为铁(III)-植物铁载体转运蛋白的 ZmYS1 具有 72.7%的同一性。实时 RT-PCR 分析表明,HvYS1 基因主要在根中表达,且在缺铁条件下其表达增强。对缺铁大麦根的原位杂交分析显示,HvYS1 的 mRNA 定位于根表皮细胞。此外,用抗 HvYS1 多克隆抗体进行的免疫组织化学染色显示出与 mRNA 相同的定位。HvYS1 在含有铁(III)-MA 而非铁-烟酰胺(NA)的培养基上对铁摄取缺陷的酵母菌株起到功能互补作用。HvYS1 在非洲爪蟾卵母细胞中的表达对金属和配体均表现出严格的特异性:HvYS1 仅转运与植物铁载体螯合的铁(III)。HvYS1 的定位和底物特异性与 ZmYS1 不同,这表明 HvYS1 是大麦根中参与从土壤中获取初级铁的铁(III)-植物铁载体的特异性转运蛋白。