Catusse Julie, Strub Jean-Marc, Job Claudette, Van Dorsselaer Alain, Job Dominique
Centre National de la Recherche Scientifique-Université Claude Bernard Lyon 1, Institut National des Sciences Appliquées-Bayer CropScience Joint Laboratory, Unité Mixte de Recherche 5240, Bayer CropScience, 14-20 rue Pierre Baizet, Lyon Cedex 9, France.
Proc Natl Acad Sci U S A. 2008 Jul 22;105(29):10262-7. doi: 10.1073/pnas.0800585105. Epub 2008 Jul 17.
Proteomic analysis of mature sugarbeet seeds led to the identification of 759 proteins and their specific tissue expression in root, cotyledons, and perisperm. In particular, the proteome of the perispermic storage tissue found in many seeds of the Caryophyllales is described here. The data allowed us to reconstruct in detail the metabolism of the seeds toward recapitulating facets of seed development and provided insights into complex behaviors such as germination. The seed appears to be well prepared to mobilize the major classes of reserves (the proteins, triglycerides, phytate, and starch) during germination, indicating that the preparation of the seed for germination is mainly achieved during its maturation on the mother plant. Furthermore, the data revealed several pathways that can contribute to seed vigor, an important agronomic trait defined as the potential to produce vigorous seedlings, such as glycine betaine accumulation in seeds. This study also identified several proteins that, to our knowledge, have not previously been described in seeds. For example, the data revealed that the sugarbeet seed can initiate translation either through the traditional cap-dependent mechanism or by a cap-independent process. The study of the tissue specificity of the seed proteome demonstrated a compartmentalization of metabolic activity between the roots, cotyledons, and perisperm, indicating a division of metabolic tasks between the various tissues. Furthermore, the perisperm, although it is known as a dead tissue, appears to be very active biochemically, playing multiple roles in distributing sugars and various metabolites to other tissues of the embryo.
对成熟甜菜种子进行蛋白质组分析,鉴定出了759种蛋白质及其在根、子叶和外胚乳中的特定组织表达。特别是,本文描述了石竹目许多种子中存在的外胚乳贮藏组织的蛋白质组。这些数据使我们能够详细重建种子的代谢过程,以概括种子发育的各个方面,并深入了解诸如萌发等复杂行为。种子似乎已做好充分准备,在萌发过程中调动主要储备物质(蛋白质、甘油三酯、肌醇六磷酸和淀粉),这表明种子为萌发所做的准备主要是在其母株上成熟期间完成的。此外,数据揭示了几条有助于种子活力的途径,种子活力是一个重要的农艺性状,定义为产生健壮幼苗的潜力,例如种子中甘氨酸甜菜碱的积累。本研究还鉴定出了几种据我们所知此前未在种子中描述过的蛋白质。例如,数据显示甜菜种子可以通过传统的帽依赖性机制或帽非依赖性过程启动翻译。对种子蛋白质组组织特异性的研究表明,根、子叶和外胚乳之间存在代谢活动的区室化,这表明不同组织之间存在代谢任务的分工。此外,外胚乳尽管被认为是一种死亡组织,但在生化方面似乎非常活跃,在将糖类和各种代谢物分配到胚的其他组织中发挥着多种作用。