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ASIL1 对于拟南芥种子填充的适时发生是必需的。

ASIL1 is required for proper timing of seed filling in Arabidopsis.

机构信息

Agriculture and Agri-Food Canada, Saskatoon Research Centre, Saskatoon, SK Canada.

出版信息

Plant Signal Behav. 2011 Dec;6(12):1886-8. doi: 10.4161/psb.6.12.18709.

Abstract

In flowering plants, seed development and seed filling are intricate genetically programmed processes that correlate with changes in metabolite levels and that are spatially and temporally regulated by a complex signaling network mediated mainly by sugars and hormones. ASIL1, a member of the plant-specific trihelix family of DNA-binding transcription factors, was isolated based on its interaction with the GT-element of the Arabidopsis thaliana 2S albumin At2S3 promoter. Mutation of ASIL1 derepressed expression of a subset of embryonic genes resulting in accumulation of 2S albumin and embryo-specific lipids in leaves. It was recently reported that mutation of ASIL1 led to early embryo development in Arabidopsis. In this study, we demonstrated that ASIL1 acts as a temporal regulator of seed filling. In developing siliques, mutation of ASIL1 led to earlier expression of master regulatory genes LEC2, FUS3 and ABI3 as well as genes for seed storage reserves. Moreover, the 12S globulin accumulated to a much higher level in the developing seeds of asil1-1 compared to wild type. To our knowledge, this is the first evidence that ASIL1 not only functions as a negative regulator of embryonic traits in seedlings but also contributes to the maintenance of precise temporal control of seed filling. Thus, ASIL1 represents a novel component of the regulatory framework controlling embryonic gene expression in Arabidopsis.

摘要

在开花植物中,种子发育和种子填充是复杂的遗传编程过程,与代谢物水平的变化相关,并受主要由糖和激素介导的复杂信号网络的时空调节。ASIL1 是植物特异性三螺旋家族 DNA 结合转录因子的成员,它是基于与拟南芥 2S 白蛋白 At2S3 启动子 GT 元件的相互作用而被分离出来的。ASIL1 的突变使一组胚胎基因的表达去抑制,导致 2S 白蛋白和胚胎特异性脂质在叶片中积累。最近有报道称,ASIL1 的突变导致拟南芥的早期胚胎发育。在本研究中,我们证明 ASIL1 是种子填充的时间调节剂。在发育中的蒴果中,ASIL1 的突变导致主调控基因 LEC2、FUS3 和 ABI3 以及种子贮藏物质的基因更早表达。此外,与野生型相比,asil1-1 发育中的种子中 12S 球蛋白积累到更高的水平。据我们所知,这是第一个证明 ASIL1 不仅作为幼苗中胚胎特征的负调控因子发挥作用,而且有助于维持种子填充的精确时间控制的证据。因此,ASIL1 代表了调控框架中控制拟南芥胚胎基因表达的一个新组件。

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