Laboratory of Plant Cell Technology, Graduate School of Horticulture, Faculty of Horticulture, Chiba University, 648 Matsudo Matsudo-shi, Chiba, 271-8510, Japan.
Department of Agricultural Biotechnology, Faculty of Agriculture, Ondokuz Mayıs University, 55200, Samsun, Turkey.
Mol Biol Rep. 2019 Dec;46(6):5745-5757. doi: 10.1007/s11033-019-05008-x. Epub 2019 Aug 5.
Agricultural production is greatly affected by environmental stresses, such as cold, drought and high-salinity. It is possible to produce tolerant genotypes by transferring genes encoding protective proteins or enzymes from other organisms. In this regard, the current study was aimed to clone a novel OeSRC1 gene identified during the transcriptome profiling of olives (Olea europaea L.) and to investigate the function of this gene in tobacco plants. Functional evaluation of OeSRC1 gene in putative transgenic tobacco plants were carried out under drought, cold and salt stress conditions by using molecular and biochemical tools. It was observed that the transgenic tobacco plants exhibited higher seed germination and survival rates, better root and shoot growth under cold, salt and drought stress treatments compared to wild type plants. Our results also demonstrated that, under stress conditions, transgenic plants accumulated more free proline while no significant changes were observed regarding electrolyte leakage. Ascorbate peroxidase activity of OeSRC1-overexpressing plants was higher than those of the WT plants under different stress conditions. The overall results demonstrate the explicit role of OeSRC1 gene in conferring multiple abiotic stress tolerance at the whole-plant level. The multifunctional role of olive OeSRC1 gene looks good to enhance environmental stress tolerance in diverse plants.
农业生产受到环境胁迫的极大影响,如寒冷、干旱和高盐。通过从其他生物体转移编码保护蛋白或酶的基因,可以生产出耐受基因型。在这方面,本研究旨在克隆一种在橄榄(Olea europaea L.)转录组分析中鉴定的新型 OeSRC1 基因,并研究该基因在烟草植物中的功能。通过分子和生化工具,在干旱、寒冷和盐胁迫条件下对 OeSRC1 基因的拟转基因烟草植物进行功能评估。观察到与野生型植物相比,转基因烟草植物在寒冷、盐和干旱胁迫处理下表现出更高的种子发芽率和存活率、更好的根和茎生长。我们的结果还表明,在胁迫条件下,转基因植物积累了更多的游离脯氨酸,而电解质渗漏没有明显变化。在不同胁迫条件下,过表达 OeSRC1 植物的抗坏血酸过氧化物酶活性高于 WT 植物。总的来说,这些结果表明 OeSRC1 基因在赋予植物整体水平的多种非生物胁迫耐受性方面具有明确的作用。橄榄 OeSRC1 基因的多功能作用有望提高多种植物的环境胁迫耐受性。