Li Hongyou, Wang Ning, Ding Jianzhou, Liu Chan, Du Hanmei, Huang Kaifeng, Cao Moju, Lu Yanli, Gao Shibin, Zhang Suzhi
Key Laboratory of Biology and Genetic Improvement of Maize in Southwest China of Agricultural Department, Maize Research Institute, Ministry of Agriculture, Sichuan Agricultural University, Chengdu, 611130, China.
Plant Mol Biol. 2017 Oct;95(3):269-278. doi: 10.1007/s11103-017-0645-1. Epub 2017 Sep 4.
ZmMGT10 was specifically expressed in maize roots and induced by a deficiency of magnesium. Overexpression of ZmMGT10 restored growth deficiency of the Salmonella typhimurium MM281 strain and enhanced the tolerance in Arabidopsis to stress induced by low magnesium levels by increasing uptake of Mg via roots. CorA/MRS2/MGT-type Mg transporters play a significant role in maintaining magnesium (Mg) homeostasis in plants. Although the maize CorA/MRS2/MGT family comprises of 12 members, currently no member has been functionally characterized. Here, we report the isolation and functional characterization of ZmMGT10 from the maize MRS2/MGT gene family. ZmMGT10 has a typical structure feature which includes two conserved TMs near the C-terminal end and an altered AMN tripeptide motif. The high sequence similarity and close phylogenetic relationship indicates that ZmMGT10 is probably the counterpart of Arabidopsis AtMGT6. The complementation of the Salmonella typhimurium mutated MM281 strain indicates that ZmMGT10 possesses the ability to transport Mg. ZmMGT10 was specifically expressed in the plant roots and it can be stimulated by a deficiency of Mg. Transgenic Arabidopsis plants which overexpressed ZmMGT10 grew more vigorously than wild-type plants under low Mg conditions, exhibited by longer root length, higher plant fresh weight and chlorophyll content, suggesting ZmMGT10 was essential for plant growth and development under low Mg conditions. Further investigations found that high accumulation of Mg occurred in transgenic plants attributed to improved Mg uptake and thereby enhanced tolerance to Mg deficiency. Results from this investigation illustrate that ZmMGT10 is a Mg transporter of maize which can enhance the tolerance to Mg deficient conditions by improving Mg uptake in the transgenic plants of Arabidopsis.
ZmMGT10在玉米根中特异性表达,并受镁缺乏诱导。ZmMGT10的过表达恢复了鼠伤寒沙门氏菌MM281菌株的生长缺陷,并通过增加根部对镁的吸收增强了拟南芥对低镁胁迫的耐受性。CorA/MRS2/MGT型镁转运蛋白在维持植物体内镁(Mg)稳态中起重要作用。虽然玉米CorA/MRS2/MGT家族由12个成员组成,但目前尚无成员进行功能表征。在此,我们报道了从玉米MRS2/MGT基因家族中分离并鉴定ZmMGT10的功能。ZmMGT10具有典型的结构特征,包括靠近C末端的两个保守跨膜结构域和一个改变的AMN三肽基序。高度的序列相似性和紧密的系统发育关系表明ZmMGT10可能是拟南芥AtMGT6的对应物。对鼠伤寒沙门氏菌突变体MM281菌株的互补实验表明ZmMGT10具有转运镁的能力。ZmMGT10在植物根中特异性表达,并且可以被镁缺乏所刺激。在低镁条件下,过表达ZmMGT10的转基因拟南芥植株比野生型植株生长更旺盛,表现为根长更长、植株鲜重和叶绿素含量更高,这表明ZmMGT10在低镁条件下对植物生长发育至关重要。进一步研究发现,转基因植物中镁的高积累归因于镁吸收的改善,从而增强了对镁缺乏的耐受性。本研究结果表明,ZmMGT10是一种玉米镁转运蛋白,通过改善拟南芥转基因植株中的镁吸收来增强对镁缺乏条件的耐受性。