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Comparative proteomics analysis reveals the mechanism of pre-harvest seed deterioration of soybean under high temperature and humidity stress

机译:比较蛋白质组学分析揭示了高温高湿条件下大豆收获前种子变质的机理

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摘要

High temperature and humidity (HTH) stress during soybean seed development and maturity in the field easily leads seed to pre-harvest deterioration. However, how proteins and their involved pathways in developing soybean seed systematically cause deterioration is still not largely understood. To reveal it, we compared the proteome composition of developing seed (R 7 period) of a pre-harvest seed deterioration sensitive soybean cultivar at different HTH stress time points (24, 96 and 168h) with their corresponding controls by 2-DE. 42 protein spots were found to be differentially expressed and successfully identified by MALDI-TOF MS to match 31 diverse protein species. These proteins were involved in 13 cellular responses and metabolic processes including carbohydrate metabolism, signal transduction, protein biosynthesis, photosynthesis, protein folding and assembly, energy pathway, cell rescue and defense, cell cycle, nitrogen metabolism, lipid metabolism, amino acid metabolism, transcription regulation, and secondary metabolite biosynthesis. Based on these proteins' functions and involved pathways, together with ultrastructural, physical and chemical, and metabolomic data, a pre-harvest seed deterioration mechanism was proposed. Such a mechanism allows us to further understand the possible management strategy of cellular activities occurring in the HTH-stressed developing seeds and provides new insights into the HTH stress responses in crop developing seeds.
机译:大豆种子发育期间的高温高湿(HTH)胁迫和田间成熟很容易导致种子收获前恶化。然而,人们对蛋白质及其在大豆种子发育过程中所涉及的途径是如何系统地引起变质的了解仍不多。为了揭示这一点,我们通过2-DE比较了在不同HTH胁迫时间点(24、96和168h)收获前对种子变质敏感的大豆品种的发育种子(R 7期)的蛋白质组组成及其相应的对照。发现有42个蛋白质斑点被差异表达,并通过MALDI-TOF MS成功鉴定出,以匹配31种不同的蛋白质种类。这些蛋白质参与了13种细胞反应和代谢过程,包括碳水化合物代谢,信号转导,蛋白质生物合成,光合作用,蛋白质折叠和组装,能量途径,细胞拯救和防御,细胞周期,氮代谢,脂质代谢,氨基酸代谢,转录调节和次级代谢产物的生物合成。基于这些蛋白质的功能和所涉及的途径,以及超微结构,物理和化学以及代谢组学数据,提出了收获前种子变质的机理。这种机制使我们能够进一步了解在HTH胁迫的发育种子中发生的细胞活动的可能管理策略,并为作物生长种子中的HTH胁迫反应提供新的见解。

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