Department of Botany and Microbiology, Faculty of Science, Minia University, El-Minia, 61519, Egypt.
Department of Agriculture, Higher Technical Teachers' Training College, University of Buea, PO Box 249, Kumba, SWR, Cameroon.
J Plant Res. 2020 May;133(3):429-440. doi: 10.1007/s10265-020-01187-y. Epub 2020 Apr 6.
Metallothioneins (MT) are primarily involved in metal chelation. Recent studies have shown that MT proteins are also involved in the responses of plants to various environmental stresses. The rice metallothionein-like gene OsMT-3a is upregulated by salinity and various abiotic stressors. A DNA construct containing the complete OsMT-3a coding sequence cloned downstream to the CaMV35S promoter was transformed into Arabidopsis and homozygous single-copy transgenic lines were produced. Compared to wild-type plants, transgenic plants showed substantially increased salinity tolerance (NaCl), drought tolerance (PEG), and heavy metal tolerance (CdCl) as individual stresses, as well as different combinations of these stresses. Relevantly, under unstressed control conditions, vegetative growth of transgenic plants was also improved. The shoot Na concentration and hydrogen peroxide in transgenic plants were lower than those in wild-type plants. OsMT-3a-overexpressing Arabidopsis lines accumulated higher levels of Cd in both shoots and roots following CdCl treatment. In the transgenic MT-3a lines, increased activity of two major antioxidant enzymes, catalase and ascorbate peroxidase, was observed. Thus, rice OsMT-3a is a valuable target gene for plant genetic improvement against multiple abiotic stresses.
金属硫蛋白(MT)主要参与金属螯合。最近的研究表明,MT 蛋白还参与植物对各种环境胁迫的反应。水稻金属硫蛋白样基因 OsMT-3a 受盐度和各种非生物胁迫诱导而上调。含有完整 OsMT-3a 编码序列的 DNA 构建体被克隆到 CaMV35S 启动子的下游,转化到拟南芥中,并产生了纯合单拷贝转基因系。与野生型植物相比,转基因植物在单一胁迫(NaCl、PEG 和 CdCl)以及这些胁迫的不同组合下,表现出明显的耐盐性、耐旱性和耐重金属性。相关地,在非胁迫对照条件下,转基因植物的营养生长也得到了改善。与野生型植物相比,转基因植物的地上部 Na 浓度和过氧化氢含量较低。在 CdCl 处理后,OsMT-3a 过表达的拟南芥系在地上部和根部积累了更高水平的 Cd。在转基因 MT-3a 系中,观察到两种主要抗氧化酶,过氧化氢酶和抗坏血酸过氧化物酶的活性增加。因此,水稻 OsMT-3a 是一种有价值的靶基因,可用于植物对多种非生物胁迫的遗传改良。