Li Suzhen, Zhou Xiaojin, Zhao Yongfeng, Li Hongbo, Liu Yuanfeng, Zhu Liying, Guo Jinjie, Huang Yaqun, Yang Wenzhu, Fan Yunliu, Chen Jingtang, Chen Rumei
Department of Agronomy, Agricultural University of Hebei/Hebei Sub-center of Chinese National Maize Improvement Center, Baoding, 071001, China; Department of Crop Genomics & Genetic Improvement, Biotechnology Research Institute, Chinese Academy of Agricultural Sciences, Beijing, 100081, China.
Department of Crop Genomics & Genetic Improvement, Biotechnology Research Institute, Chinese Academy of Agricultural Sciences, Beijing, 100081, China.
Plant Physiol Biochem. 2016 Sep;106:1-10. doi: 10.1016/j.plaphy.2016.04.044. Epub 2016 Apr 25.
Iron (Fe) and zinc (Zn) are important micronutrients for plant growth and development. Zinc-regulated transporters and the iron-regulated transporter-like protein (ZIP) are necessary for the homeostatic regulation of these metal micronutrients. In this study, the physiological function of ZmZIP7 which encodes a ZIP family transporter was characterized. We detected the expression profiles of ZmZIP7 in maize, and found that the accumulation of ZmZIP7 in root, stem, leaf, and seed was relatively higher than tassel and young ear. ZmZIP7 overexpression transgenic Arabidopsis lines were generated and the metal contents in transgenic and wild-type (WT) plants were examined using inductively coupled plasma atomic emission spectroscopy (ICP-OES) and Zinpyr-1 staining. Fe and Zn concentrations were elevated in the roots and shoots of ZmZIP7-overexpressing plants, while only Fe content was elevated in the seeds. We also analyzed the expression profiles of endogenous genes associated with metal homeostasis. Both endogenic Fe-deficiency inducible genes and the genes responsible for Zn and Fe transport and storage were stimulated in ZmZIP7 transgenic plants. In conclusion, ZmZIP7 encodes a functional Zn and Fe transporter, and ectopic overexpression of ZmZIP7 in Arabidopsis stimulate endogenous Fe and Zn uptake mechanisms, thereby facilitating both metal uptake and homeostasis. Our results contribute to improved understanding of ZIP family transporter functions and suggest that ZmZIP7 could be used to enhance Fe levels in grains.
铁(Fe)和锌(Zn)是植物生长发育所需的重要微量营养素。锌调控转运蛋白和铁调控转运蛋白样蛋白(ZIP)对于这些金属微量营养素的稳态调节至关重要。在本研究中,对编码ZIP家族转运蛋白的ZmZIP7的生理功能进行了表征。我们检测了ZmZIP7在玉米中的表达谱,发现ZmZIP7在根、茎、叶和种子中的积累相对高于雄穗和幼穗。构建了ZmZIP7过表达转基因拟南芥株系,并使用电感耦合等离子体原子发射光谱法(ICP-OES)和锌荧光探针1(Zinpyr-1)染色检测了转基因和野生型(WT)植物中的金属含量。ZmZIP7过表达植物的根和地上部中Fe和Zn浓度升高,而种子中仅Fe含量升高。我们还分析了与金属稳态相关的内源基因的表达谱。ZmZIP7转基因植物中,内源性缺铁诱导基因以及负责Zn和Fe运输与储存的基因均受到刺激。总之,ZmZIP7编码一种功能性的Zn和Fe转运蛋白,在拟南芥中异位过表达ZmZIP7会刺激内源Fe和Zn吸收机制,从而促进两种金属的吸收和稳态。我们的研究结果有助于更好地理解ZIP家族转运蛋白的功能,并表明ZmZIP7可用于提高谷物中的Fe含量。