Key Laboratory of Cell Activities and Stress Adaptations, Ministry of Education, School of Life Sciences, Lanzhou University, Lanzhou, Gansu, 730000, PR China.
Academy of Agricultural Sciences, Lanzhou, Gansu, 7300700, PR China.
Plant Physiol Biochem. 2021 May;162:74-85. doi: 10.1016/j.plaphy.2021.02.021. Epub 2021 Feb 21.
Glucose-6-phosphate dehydrogenase (G6PD or G6PDH) plays an important role in response to salt stress in plants. However, much less is known about G6PD proteins in soybean (Glycine max L.). Here, we found that a soybean cytosolic G6PD gene, GmG6PD7, was induced by NaCl. We generated Arabidopsis transgenic lines overexpressing GmG6PD7. The seed germination rate and primary root length of Arabidopsis thaliana over-expressing GmG6PD7 under NaCl treatment were enhanced. Salt stress induced an obvious increase of the total and cytosolic G6PD activity and the marked decrease of ROS levels in the transgenic plants. At the same time, over-expressing GmG6PD7 in Arabidopsis affected the glutathione and NADPH level and activated ROS scavengers, suggesting that GmG6PD7 contributes to increase salinity tolerance by decreasing ROS accumulation. What's more, we found GmG6PD7 overexpression led to the up-regulation of abscisic acid (ABA) degradation gene and the down-regulation of ABA synthesis and ABA-responsive genes, which finally reduced ABA content to improve seed germination rate under salinity stress. It was noteworthy that GmG6PD7 can rescue the seed and root phenotype of Arabidopsis cytosolic G6PD mutant (Atg6pd5 and Atg6pd6) under salt stress, suggesting cytosolic G6PD may have a conserved function in soybean and Arabidopsis.
葡萄糖-6-磷酸脱氢酶(G6PD 或 G6PDH)在植物应对盐胁迫中起着重要作用。然而,人们对大豆(Glycine max L.)中的 G6PD 蛋白知之甚少。在这里,我们发现大豆细胞质 G6PD 基因 GmG6PD7 受 NaCl 诱导。我们生成了过表达 GmG6PD7 的拟南芥转基因系。在 NaCl 处理下,过表达 GmG6PD7 的拟南芥种子发芽率和主根长度增加。盐胁迫诱导转基因植物中总 G6PD 和细胞质 G6PD 活性明显增加,ROS 水平明显下降。同时,过表达 GmG6PD7 影响拟南芥中的谷胱甘肽和 NADPH 水平并激活 ROS 清除剂,表明 GmG6PD7 通过减少 ROS 积累来提高耐盐性。更重要的是,我们发现 GmG6PD7 的过表达导致脱落酸(ABA)降解基因上调和 ABA 合成及 ABA 响应基因下调,最终降低 ABA 含量以提高盐胁迫下的种子发芽率。值得注意的是,GmG6PD7 可以挽救拟南芥细胞质 G6PD 突变体(Atg6pd5 和 Atg6pd6)在盐胁迫下的种子和根表型,表明细胞质 G6PD 在大豆和拟南芥中可能具有保守功能。