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Evidence for Proteomic and Metabolic Adaptations Associated with Alterations of Seed Yield and Quality in Sulfur-limited Brassica napus L

机译:硫限制型甘蓝型油菜蛋白质组和代谢适应性与种子产量和品质变化相关的证据

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摘要

In Brassica napus, seed yield and quality are related to sulfate availability, but the seed metabolic changes in response to sulfate limitation remain largely unknown. To address this question, proteomics and biochemical studies were carried out on mature seeds obtained from plants grown under low sulfate applied at the bolting (LS32), early flowering (LS53), or start of pod filling (LS70) stage. The protein quality of all low-sulfate seeds was reduced and associated with a reduction of S-rich seed storage protein accumulation (as Cruciferin Cru4) and an increase of S-poor seed storage protein (as Cruciferin BnC1). This compensation allowed the protein content to be maintained in LS70 and LS53 seeds but was not sufficient to maintain the protein content in LS32 seeds. The lipid content and quality of LS53 and LS32 seeds were also affected, and these effects were primarily associated with a reduction of C18-derivative accumulation. Proteomics changes related to lipid storage, carbohydrate metabolism, and energy (reduction of caleosins, phosphoglycerate kinase, malate synthase, ATP-synthase β-subunit, and thiazole biosynthetic enzyme THI1 and accumulation of β-glucosidase and citrate synthase) provide insights into processes that may contribute to decreased oil content and altered lipid composition (in favor of long-chain fatty acids in LS53 and LS32 seeds). These data indicate that metabolic changes associated with S limitation responses affect seed storage protein composition and lipid quality. Proteins involved in plant stress response, such as dehydroascorbate reductase and Cu/Zn-superoxide dismutase, were also accumulated in LS53 and LS32 seeds, and this might be a consequence of reduced glutathione content under low S availability. LS32 treatment also resulted in (i) reduced germination vigor, as evidenced by lower germination indexes, (ii) reduced seed germination capacity, related to a lower seed viability, and (iii) a strong decrease of glyoxysomal malate synthase, which is essential for the use of fatty acids during seedling establishment.
机译:在甘蓝型油菜中,种子的产量和质量与硫酸盐的利用率有关,但是响应于硫酸盐限制的种子代谢变化仍然未知。为了解决这个问题,对从在螺栓(LS32),早花(LS53)或豆荚灌装开始(LS70)阶段施用低硫酸盐的植物中获得的成熟种子进行了蛋白质组学和生化研究。所有低硫酸盐种子的蛋白质质量都降低了,并且与富含S的种子贮藏蛋白积累(如Cruciferin Cru4)减少和与S差的种子贮藏蛋白(Cruciferin BnC1)增加有关。这种补偿使得可以在LS70和LS53种子中维持蛋白质含量,但不足以维持LS32种子中的蛋白质含量。 LS53和LS32种子的脂质含量和质量也受到影响,这些影响主要与C18衍生物积累的减少有关。与脂质存储,碳水化合物代谢和能量有关的蛋白质组学变化(减少钙黄绿素,磷酸甘油酸激酶,苹果酸合酶,ATP合酶β亚基和噻唑生物合成酶THI1以及β-葡萄糖苷酶和柠檬酸合酶的积累)提供了对过程的洞见可能导致油含量降低和脂质组成改变(有利于LS53和LS32种子中的长链脂肪酸)。这些数据表明与S限制反应相关的代谢变化会影响种子贮藏蛋白的组成和脂质质量。 LS53和LS32种子中也积累了与植物胁迫反应有关的蛋白质,例如脱氢抗坏血酸还原酶和Cu / Zn超氧化物歧化酶,这可能是由于低S利用率下谷胱甘肽含量降低的结果。 LS32处理还导致(i)发芽活力降低,如较低的发芽指数所证明的;(ii)种子发芽能力降低,与种子活力降低有关;以及(iii)乙醛酸苹果酸合酶的强烈降低,这对于在苗期建立过程中使用脂肪酸。

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