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在拟南芥中过表达 ATG8 可刺激自噬活性并提高氮再利用效率和灌浆。

Overexpression of ATG8 in Arabidopsis Stimulates Autophagic Activity and Increases Nitrogen Remobilization Efficiency and Grain Filling.

机构信息

Institut Jean-Pierre Bourgin, INRA, AgroParisTech, CNRS, Universit� Paris-Saclay, Versailles, France.

出版信息

Plant Cell Physiol. 2019 Feb 1;60(2):343-352. doi: 10.1093/pcp/pcy214.

DOI:10.1093/pcp/pcy214
PMID:30407574
Abstract

Autophagy knock-out mutants in maize and in Arabidopsis are impaired in nitrogen (N) recycling and exhibit reduced levels of N remobilization to their seeds. It is thus impoortant to determine whether higher autophagy activity could, conversely, improve N remobilization efficiency and seed protein content, and under what circumstances. As the autophagy machinery involves many genes amongst which 18 are important for the core machinery, the choice of which AUTOPHAGY (ATG) gene to manipulate to increase autophagy was examined. We choose ATG8 overexpression since it has been shown that this gene could increase autophagosome size and autophagic activity in yeast. The results we report here are original as they show for the first time that increasing ATG8 gene expression in plants increases autophagosome number and promotes autophagy activity. More importantly, our data demonstrate that, when cultivated under full nitrate conditions, known to repress N remobilization due to sufficient N uptake from the soil, N remobilization efficiency can nevertheless be sharply and significantly increased by overexpressing ATG8 genomic sequences under the control of the ubiquitin promoter. We show that overexpressors have improved seed N% and at the same time reduced N waste in their dry remains. In addition, we show that overexpressing ATG8 does not modify vegetative biomass or harvest index, and thus does not affect plant development.

摘要

在玉米和拟南芥中,自噬敲除突变体在氮(N)回收方面存在缺陷,并且其向种子中再移动的 N 水平降低。因此,重要的是要确定更高的自噬活性是否可以相反地提高 N 再移动效率和种子蛋白质含量,以及在什么情况下可以提高。由于自噬机制涉及许多基因,其中 18 个基因对于核心机制很重要,因此研究了选择哪种自噬(ATG)基因进行操纵以增加自噬的问题。我们选择过表达 ATG8,因为已经表明该基因可以增加酵母中的自噬体大小和自噬活性。我们在这里报告的结果是原始的,因为它们首次表明,在植物中增加 ATG8 基因的表达可以增加自噬体的数量并促进自噬活性。更重要的是,我们的数据表明,在完全硝酸盐条件下培养时,由于从土壤中吸收足够的 N,会抑制 N 的再移动,但通过在泛素启动子的控制下过表达 ATG8 基因组序列,可以大大提高 N 的再移动效率。我们表明,过表达植株的种子 N%提高了,同时其干燥残余物中的 N 浪费减少了。此外,我们还表明,过表达 ATG8 不会改变营养生物量或收获指数,因此不会影响植物的发育。

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