College of Light Industry and Food Engineering, Nanjing Forestry University, Nanjing, 210037, China; National Key Laboratory of Crop Genetic Improvement, Huazhong Agricultural University, Wuhan, 430070, China.
National Key Laboratory of Crop Genetic Improvement, Huazhong Agricultural University, Wuhan, 430070, China.
Plant Physiol Biochem. 2024 Aug;213:108803. doi: 10.1016/j.plaphy.2024.108803. Epub 2024 Jun 13.
Soybean research has gained immense attention due to its extensive use in food, feedstock, and various industrial applications, such as the production of lubricants and engine oils. In oil crops, the process of seed development and storage substances accumulation is intricate and regulated by multiple transcription factors (TFs). In this study, FUSCA3 (GmFUS3) was characterized for its roles in plant development, lipid metabolism, and stress regulation. Expressing GmFUS3 in atfus3 plants restored normal characteristics observed in wild-type plants, including cotyledon morphology, seed shape, leaf structure, and flower development. Additionally, its expression led to a significant increase of 25% triacylglycerols (TAG) and 33% in protein levels. Transcriptomic analysis further supported the involvement of GmFUS3 in various phases of plant development, lipid biosynthesis, lipid trafficking, and flavonoid biosynthesis. To assess the impact of stress on GmFUS3 expression, soybean plants were subjected to different stress conditions, and the its expression was assessed. Transcriptomic data revealed significant alterations in the expression levels of approximately 80 genes linked to reactive oxygen species (ROS) signaling and 40 genes associated with both abiotic and biotic stresses. Additionally, GmFUS3 was found to regulate abscisic acid synthesis and interact with nucleoside diphosphate kinase 1, which is responsible for plant cellular processes, development, and stress response. Overall, this research sheds light on the multifaceted functions of GmFUS3 and its potential applications in enhancing crop productivity and stress tolerance.
由于大豆在食品、饲料和各种工业应用(如润滑剂和发动机油的生产)中的广泛应用,其研究受到了极大的关注。在油料作物中,种子发育和储存物质积累的过程是复杂的,受多个转录因子(TFs)的调节。在这项研究中,对 FUSCA3(GmFUS3)进行了表征,以研究其在植物发育、脂质代谢和应激调节中的作用。在 atfus3 植物中表达 GmFUS3 恢复了野生型植物中观察到的正常特征,包括子叶形态、种子形状、叶片结构和花发育。此外,其表达导致三酰基甘油(TAG)增加了 25%,蛋白质水平增加了 33%。转录组分析进一步支持 GmFUS3 参与植物发育的各个阶段、脂质生物合成、脂质运输和类黄酮生物合成。为了评估胁迫对 GmFUS3 表达的影响,对大豆植物进行了不同胁迫条件的处理,并对其表达进行了评估。转录组数据显示,约 80 个与活性氧(ROS)信号相关的基因和 40 个与非生物和生物胁迫相关的基因的表达水平发生了显著变化。此外,还发现 GmFUS3 调节脱落酸的合成,并与核苷二磷酸激酶 1 相互作用,后者负责植物细胞过程、发育和应激反应。总的来说,这项研究揭示了 GmFUS3 的多方面功能及其在提高作物生产力和耐胁迫性方面的潜在应用。