Department of Plant Breeding and Biotechnology (PBB), Faculty of Agriculture, University of Zabol, Zabol, Iran.
Department of Bioinformatics, Laboratory of Computational Biotechnology and Bioinformatics (CBB Lab), University of Zabol, Zabol, Iran.
PLoS One. 2022 Jun 3;17(6):e0268036. doi: 10.1371/journal.pone.0268036. eCollection 2022.
Seed-specific expression using appropriate promoters is a recommended strategy for the efficiently producing valuable metabolites in transgenic plants. In the present study, we investigated the sequence of sucrose binding protein (SBP) as a seed-specific promoter to find the cis-acting elements specific to gene expression in seeds. The 1860 bp SBP sequence was analyzed using Plant Care and PLACE databases to find cis-acting elements, which resulted in a finding of 22 cis-acting elements required for seed expression. In addition, we have discovered cis- acting elements that are indirectly involved in triacylglycerol synthesis (GATABOX, DOFCOREZM, CACGTGMOTIF). The seed specificity of SBP was analyzed by generating a stable transgenic tobacco plant harboring β-glucuronidase (GUS) reporter gene under the control of the SBP promoter. Histochemical analysis of these transgenic tobacco plants indicated decreasing GUS activity in the leaves during the vegetative stage. However, the mature seeds of transgenic plants showed GUS activity. Moreover, the SBP promoter function in the seed oil content was evaluated by the expression of DGAT1. The expression analysis of DGAT1 in SBP-DGAT1 transgenic tobacco seeds using quantitative real-time PCR revealed a 7.8-fold increase in DGAT1 than in non-transgenic plants. Moreover, oil content increased up to 2.19 times more than in non-transgenic plants. And the oil content of the SBP-DGAT1 transgenic tobacco leaves did not change compared to the control plant. Therefore, we suggested that the SBP promoter could be used as a seed-specific promoter for targeted expression of desired genes in the metabolite engineering of oilseed crops.
利用合适的启动子进行种子特异性表达是在转基因植物中高效生产有价值代谢物的推荐策略。在本研究中,我们研究了蔗糖结合蛋白(SBP)作为种子特异性启动子的序列,以寻找种子中基因表达特异性的顺式作用元件。使用 Plant Care 和 PLACE 数据库分析了 1860 bp 的 SBP 序列,以寻找顺式作用元件,结果发现了 22 个种子表达所需的顺式作用元件。此外,我们还发现了间接参与三酰基甘油合成的顺式作用元件(GATABOX、DOFCOREZM、CACGTGMOTIF)。通过生成稳定的转基因烟草植物,在 SBP 启动子的控制下携带β-葡萄糖醛酸酶(GUS)报告基因,分析了 SBP 的种子特异性。对这些转基因烟草植物进行组织化学分析表明,在营养阶段,叶片中的 GUS 活性逐渐降低。然而,转基因植物的成熟种子显示出 GUS 活性。此外,通过 DGAT1 的表达评估了 SBP 启动子在种子油含量中的功能。使用定量实时 PCR 对 SBP-DGAT1 转基因烟草种子中 DGAT1 的表达分析表明,DGAT1 的表达比非转基因植物高 7.8 倍。此外,油含量比非转基因植物增加了 2.19 倍。与对照植物相比,SBP-DGAT1 转基因烟草叶片的油含量没有变化。因此,我们认为 SBP 启动子可用于靶向表达代谢工程中油籽作物中所需基因的种子特异性启动子。