Department of Agriculture, Northeast Agricultural University, Harbin, 150000, China.
Key Lab of Maize Genetics and Breeding, Heilongjiang Academy of Agricultural Sciences, Harbin, 150000, China.
J Integr Plant Biol. 2021 Jun;63(6):1036-1053. doi: 10.1111/jipb.13094.
There is growing interest in expanding the production of soybean oils (mainly triacylglycerol, or TAG) to meet rising feed demand and address global energy concerns. We report that a plastid-localized glycerol-3-phosphate dehydrogenase (GPDH), encoded by GmGPDHp1 gene, catalyzes the formation of glycerol-3-phosphate (G3P), an obligate substrate required for TAG biosynthesis. Overexpression of GmGPDHp1 increases soybean seed oil content with high levels of unsaturated fatty acids (FAs), especially oleic acid (C18:1), without detectably affecting growth or seed protein content or seed weight. Based on the lipidomic analyses, we found that the increase in G3P content led to an elevated diacylglycerol (DAG) pool, in which the Kennedy pathway-derived DAG was mostly increased, followed by PC-derived DAG, thereby promoting the synthesis of TAG containing relatively high proportion of C18:1. The increased G3P levels induced several transcriptional alterations of genes involved in the glycerolipid pathways. In particular, genes encoding the enzymes responsible for de novo glycerolipid synthesis were largely upregulated in the transgenic lines, in-line with the identified biochemical phenotype. These results reveal a key role for GmGPDHp1-mediated G3P metabolism in enhancing TAG synthesis and demonstrate a strategy to modify the FA compositions of soybean oils for improved nutrition and biofuel.
人们对扩大大豆油(主要是三酰基甘油,或 TAG)的生产以满足不断增长的饲料需求和解决全球能源问题的兴趣日益浓厚。我们报告说,质体定位的甘油-3-磷酸脱氢酶(GPDH),由 GmGPDHp1 基因编码,催化甘油-3-磷酸(G3P)的形成,G3P 是 TAG 生物合成所必需的必需底物。GmGPDHp1 的过表达增加了大豆种子油含量,同时具有高水平的不饱和脂肪酸(FAs),特别是油酸(C18:1),而不会明显影响生长或种子蛋白质含量或种子重量。基于脂质组学分析,我们发现 G3P 含量的增加导致二酰基甘油(DAG)池的增加,其中 Kennedy 途径衍生的 DAG 增加最多,其次是 PC 衍生的 DAG,从而促进了含有相对较高比例 C18:1 的 TAG 的合成。增加的 G3P 水平诱导了甘油磷脂途径中参与基因的转录改变。特别是,负责从头甘油磷脂合成的酶的基因在转基因系中被大量上调,与鉴定的生化表型一致。这些结果揭示了 GmGPDHp1 介导的 G3P 代谢在增强 TAG 合成中的关键作用,并证明了一种改变大豆油 FA 组成以提高营养和生物燃料的策略。