Department of Stress, Development and Signaling in Plants, Estacion Experimental del Zaidin, Spanish National Research Council (CSIC), 18008 Granada, Spain.
Proteomic Research Unit, Biosanitary Research Institute of Granada (ibs.Granada), 18012 Granada, Spain.
Genes (Basel). 2023 Sep 28;14(10):1889. doi: 10.3390/genes14101889.
(1) Background: Seed storage mobilization, together with oxidative metabolism, with the ascorbate-glutathione (AsA-GSH) cycle as a crucial signaling and metabolic functional crossroad, is one of the main regulators of the control of cell morphogenesis and division, a fundamental physiological process driving seed germination and seedling growth. This study aims to characterize the cellular changes, composition, and patterns of the protein mobilization and ROS-dependent gene expression of redox metabolism in L. (narrow-leafed lupin, NLL) cotyledons during seed germination. (2) Methods: We performed gene expression analyses via RT-qPCR for conglutins α (1, 2, and 3), β (1, 2, and 5), γ (1, 2), and δ (2 and 4), including a ubiquitin gene as a control, and for redox metabolism-related genes; GADPH was used as a control gene. A microscopic study was developed on cotyledon samples from different germination stages, including as IMB (imbibition), and 2-5, 7, 9, and 11 DAI (days after imbibition), which were processed for light microscopy. SDS-PAGE and immunocytochemistry assays were performed using an anti-β-conglutin antibody (Agrisera), and an anti-rabbit IgG Daylight 488-conjugated secondary antibody. The controls were made while omitting primary Ab. (3) Results and Discussion: Our results showed that a large amount of seed storage protein (SSP) accumulates in protein bodies (PBs) and mobilizes during germination. Families of conglutins (β and γ) may play important roles as functional and signaling molecules, beyond the storage function, at intermediate steps of the seed germination process. In this regard, metabolic activities are closely associated with the regulation of oxidative homeostasis through AsA-GSH activities (γ-L-Glutamyl-L-cysteine synthetase, NOS, Catalase, Cu/Zn-SOD, GPx, GR, GS, GsT) after the imbibition of NLL mature seeds, metabolism activation, and dormancy breakage, which are key molecular and regulatory signaling pathways with particular importance in morphogenesis and developmental processes. (4) Conclusions: The knowledge generated in this study provides evidence for the functional changes and cellular tightly regulated events occurring in the NLL seed cotyledon, orchestrated by the oxidative-related metabolic machinery involved in seed germination advancement.
(1) 背景:种子贮藏动员与氧化代谢一起,以抗坏血酸-谷胱甘肽(AsA-GSH)循环作为关键的信号转导和代谢功能交叉点,是控制细胞形态发生和分裂的主要调节剂之一,这是驱动种子萌发和幼苗生长的基本生理过程。本研究旨在描述 L.(窄叶羽扇豆,NLL)子叶在种子萌发过程中细胞变化、组成以及蛋白质动员和 ROS 依赖的氧化还原代谢基因表达模式。(2) 方法:我们通过 RT-qPCR 对凝集素 α(1、2 和 3)、β(1、2 和 5)、γ(1、2)和 δ(2 和 4)进行基因表达分析,包括一个泛素基因作为对照,以及对与氧化还原代谢相关的基因进行分析;GADPH 用作对照基因。对不同萌发阶段的子叶样本进行了显微镜研究,包括 IMB(吸胀)以及 2-5、7、9 和 11 DAI(吸胀后天数),并对其进行了光镜处理。使用抗-β-凝集素抗体(Agrisera)和抗兔 IgG Daylight 488 缀合的二级抗体进行 SDS-PAGE 和免疫细胞化学测定。在省略初级 Ab 的情况下进行对照。(3) 结果与讨论:我们的结果表明,大量种子贮藏蛋白(SSP)在种子萌发过程中积累在蛋白体(PB)中并动员。凝集素家族(β 和 γ)可能除了存储功能外,在种子萌发过程的中间步骤中作为功能和信号分子发挥重要作用。在这方面,代谢活动与通过 AsA-GSH 活性(γ-L-谷氨酰-L-半胱氨酸合成酶、NOS、过氧化氢酶、Cu/Zn-SOD、GPx、GR、GS、GsT)调节氧化平衡密切相关,在 NLL 成熟种子吸胀后,代谢激活和休眠破坏,这是形态发生和发育过程中特别重要的关键分子和调节信号通路。(4) 结论:本研究提供的知识为 NLL 种子子叶中发生的功能变化和细胞紧密调控事件提供了证据,这些变化由涉及种子萌发进展的氧化相关代谢机制协调。