Forage Seed Laboratory, China Agricultural University, Beijing 100193, China.
Grassland Agri-husbandry Research Center, College of Grassland Science, Qingdao Agricultural University, Qingdao 266109, China.
Int J Mol Sci. 2020 Mar 10;21(5):1898. doi: 10.3390/ijms21051898.
Although melatonin has been reported to play an important role in regulating metabolic events under adverse stresses, its underlying mechanisms on germination in aged seeds remain unclear. This study was conducted to investigate the effect of melatonin priming (MP) on embryos of aged oat seeds in relation to germination, ultrastructural changes, antioxidant responses, and protein profiles. Proteomic analysis revealed, in total, 402 differentially expressed proteins (DEPs) in normal, aged, and aged + MP embryos. The downregulated DEPs in aged embryos were enriched in sucrose metabolism, glycolysis, β-oxidation of lipid, and protein synthesis. MP (200 μM) turned four downregulated DEPs into upregulated DEPs, among which, especially 3-ketoacyl-CoA thiolase-like protein (KATLP) involved in the β-oxidation pathway played a key role in maintaining TCA cycle stability and providing more energy for protein translation. Furthermore, it was found that MP enhanced antioxidant capacity in the ascorbate-glutathione (AsA-GSH) system, declined reactive oxygen species (ROS), and improved cell ultrastructure. These results indicated that the impaired germination and seedling growth of aged seeds could be rescued to a certain level by melatonin, predominantly depending on β-oxidation, protein translation, and antioxidant protection of AsA-GSH. This work reveals new insights into melatonin-mediated mechanisms from protein profiles that occur in embryos of oat seeds processed by both aging and priming.
虽然褪黑素已被报道在调节逆境下的代谢事件中发挥重要作用,但它在老化种子萌发中的潜在机制仍不清楚。本研究旨在探讨褪黑素引发(MP)对燕麦老化种子胚胎萌发的影响,以及相关的超微结构变化、抗氧化响应和蛋白质谱。蛋白质组学分析总共鉴定出 402 个差异表达蛋白(DEPs),包括正常、老化和老化+MP 胚胎。老化胚胎中下调的 DEPs 富集在蔗糖代谢、糖酵解、脂质β-氧化和蛋白质合成中。MP(200μM)将四个下调的 DEPs 上调为上调的 DEPs,其中,β-氧化途径中涉及的 3-酮酰基辅酶 A 硫解酶样蛋白(KATLP)在维持 TCA 循环稳定性和为蛋白质翻译提供更多能量方面发挥着关键作用。此外,研究还发现 MP 增强了抗坏血酸-谷胱甘肽(AsA-GSH)系统的抗氧化能力,降低了活性氧(ROS),改善了细胞超微结构。这些结果表明,褪黑素可以在一定程度上挽救老化种子的萌发和幼苗生长受损,主要依赖于β-氧化、蛋白质翻译和 AsA-GSH 的抗氧化保护。这项工作从蛋白质谱上揭示了褪黑素介导的机制,该机制在老化和引发处理后的燕麦种子胚胎中发生。