Triticeae Research Institute, Sichuan Agricultural University, Wenjiang, 611130, Sichuan, China.
Joint International Research Laboratory of Crop Resources and Genetic Improvement, Sichuan Agricultural University, Wenjiang, 611130, Sichuan, China.
Planta. 2018 Jun;247(6):1395-1406. doi: 10.1007/s00425-018-2872-3. Epub 2018 Mar 9.
TpRNAMP5 is mainly expressed in the plasma membrane of roots and basal stems. It functions as a metal transporter for Cd, Mn and Co accumulation. Numerous natural resistance-associated macrophage proteins (NRAMPs) have been functionally identified in various plant species, including Arabidopsis, rice, soybean and tobacco, but no information is available on NRAMP genes in wheat. In this study, we isolated a TpNRAMP5 from dwarf Polish wheat (DPW, Triticum polonicum L.), a species with high tolerance to Cd and Zn. Expression pattern analysis revealed that TpNRAMP5 is mainly expressed in roots and basal stems of DPW. TpNRAMP5 was localized at the plasma membrane of Arabidopsis leaf protoplast. Expression of TpNRAMP5 in yeast significantly increased yeast sensitivity to Cd and Co, but not Zn, and enhanced Cd and Co concentrations. Expression of TpNRAMP5 in Arabidopsis significantly increased Cd, Co and Mn concentrations in roots, shoots and whole plants, but had no effect on Fe and Zn concentrations. These results indicate that TpNRAMP5 is a metal transporter enhancing the accumulation of Cd, Co and Mn, but not Zn and Fe. Genetic manipulation of TpNRAMP5 can be applied in the future to limit the transfer of Cd from soil to wheat grains, thereby protecting human health.
TpRNAMP5 主要表达于根和基茎的质膜上,它作为 Cd、Mn 和 Co 积累的金属转运蛋白发挥作用。在包括拟南芥、水稻、大豆和烟草在内的多种植物物种中,已对大量天然抗性相关巨噬细胞蛋白(NRAMP)进行了功能鉴定,但在小麦中尚未有关于 NRAMP 基因的信息。在本研究中,我们从小麦近缘种矮波兰小麦(DPW,Triticum polonicum L.)中分离出一个 TpNRAMP5,该种对 Cd 和 Zn 具有高耐受性。表达模式分析表明,TpNRAMP5 主要在 DPW 的根和基茎中表达。TpNRAMP5 定位于拟南芥叶片原生质体的质膜上。在酵母中表达 TpNRAMP5 显著增加了酵母对 Cd 和 Co 的敏感性,但对 Zn 没有影响,并增强了 Cd 和 Co 的浓度。在拟南芥中表达 TpNRAMP5 显著增加了根、茎和整株植物中 Cd、Co 和 Mn 的浓度,但对 Fe 和 Zn 的浓度没有影响。这些结果表明,TpNRAMP5 是一种增强 Cd、Co 和 Mn 积累但不增强 Zn 和 Fe 积累的金属转运蛋白。未来可对 TpNRAMP5 进行遗传操作,以限制 Cd 从土壤向小麦籽粒的转移,从而保护人类健康。