Nozoye Tomoko, von Wirén Nicolaus, Sato Yoshikatsu, Higashiyama Tetsuya, Nakanishi Hiromi, Nishizawa Naoko K
Center for Liberal Arts, Meiji Gakuin University, Tokyo, Japan.
Graduate School of Agricultural and Life Sciences, The University of Tokyo, Tokyo, Japan.
Front Plant Sci. 2019 Apr 30;10:502. doi: 10.3389/fpls.2019.00502. eCollection 2019.
Under iron (Fe) deficiency, graminaceous plants produce and secrete Fe-chelating phytosiderophores of the mugineic acid (MA) family into the rhizosphere to solubilize and mediate uptake of sparingly soluble Fe in the soil. MAs and their biosynthetic intermediate, nicotianamine (NA), are also important for the translocation of divalent metals such as Fe and zinc (Zn) throughout the plant body. In this study, the physiological role of the efflux transporter EFFLUX TRANSPORTER OF NA (ENA1), which exports NA out of cells, was analyzed in rice. analysis showed that was mainly expressed in roots, and strongly upregulated under Fe-deficient conditions. In epidermal onion cells and rice roots, green fluorescent protein-tagged ENA1 localized mainly to the plasma membrane, while a part of the fluorescence was observed in vesicular structures in the cytoplasm. In the younger stage after germination, -overexpressing rice plants exhibited truncated roots with many root hairs compared to wild-type plants, while these phenotype were not observed in high Zn-containing medium. In , which use a different strategy for Fe uptake from rice, overexpression did not show any apparent phenotypes. Oligo DNA microarray analysis in rice showed that knockout affects the response to stress, especially in root plastids. These results suggest that ENA1 might be recycling between the plasma membrane and cellular compartments by vesicular transport, playing an important role in the transport of NA, which is important for the physiological response to Fe deficiency.
在缺铁条件下,禾本科植物会产生并向根际分泌麦根酸(MA)家族的铁螯合植物铁载体,以溶解并介导土壤中难溶性铁的吸收。麦根酸及其生物合成中间体烟酰胺(NA)对于铁和锌(Zn)等二价金属在整个植物体内的转运也很重要。在本研究中,对水稻中负责将NA转运出细胞的外向转运体NA外向转运体(ENA1)的生理作用进行了分析。分析表明,ENA1主要在根中表达,在缺铁条件下强烈上调。在表皮洋葱细胞和水稻根中,绿色荧光蛋白标记的ENA1主要定位于质膜,同时在细胞质的囊泡结构中也观察到部分荧光。在发芽后的较幼龄阶段,与野生型植株相比,过表达ENA1的水稻植株根系截断且根毛众多,而在高锌培养基中未观察到这些表型。在采用与水稻不同铁吸收策略的植物中,ENA1过表达未表现出任何明显表型。水稻的寡核苷酸DNA微阵列分析表明,ENA1敲除会影响对胁迫的响应,尤其是在根质体中。这些结果表明,ENA1可能通过囊泡运输在质膜和细胞区室之间循环,在NA的转运中发挥重要作用,而NA对于缺铁的生理响应很重要。