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AINTEGUMENTA-LIKE 7 过表达对拟南芥种子脂肪酸生物合成、储存油脂积累和转录组的影响。

The effect of AINTEGUMENTA-LIKE 7 over-expression on seed fatty acid biosynthesis, storage oil accumulation and the transcriptome in Arabidopsis thaliana.

机构信息

Department of Agricultural, Food and Nutritional Science, University of Alberta, Edmonton, AB, T6G 2P5, Canada.

Agriculture and Agri-Food Canada, Lethbridge Research and Development Centre, Lethbridge, AB, T1J 4B1, Canada.

出版信息

Plant Cell Rep. 2021 Sep;40(9):1647-1663. doi: 10.1007/s00299-021-02715-3. Epub 2021 Jul 2.

DOI:10.1007/s00299-021-02715-3
PMID:34215912
Abstract

AIL7 over-expression modulates fatty acid biosynthesis and triacylglycerol accumulation in Arabidopsis developing seeds through the transcriptional regulation of associated genes. Seed fatty acids (FAs) and triacylglycerol (TAG) contribute to many functions in plants, and seed lipids have broad food, feed and industrial applications. As a result, an enormous amount of attention has been dedicated towards uncovering the regulatory cascade responsible for the fine-tuning of the lipid biosynthetic pathway in seeds, which is regulated in part through the action of LEAFY COTYLEDON1, ABSCISSIC ACID INSENSITIVE 3, FUSCA3 and LEC2 (LAFL) transcription factors. Although AINTEGUMENTA-LIKE 7 (AIL7) is involved in meristematic function and shoot phyllotaxy, its effect in the context of lipid biosynthesis has yet to be assessed. Here, we generated AIL7 seed-specific over-expression lines and found that they exhibited significant alterations in FA composition and decreased total lipid accumulation in seeds. Seeds and seedlings from transgenic lines also exhibited morphological deviations compared to wild type. Correspondingly, RNA-Seq analysis demonstrated that the expression of many genes related to FA biosynthesis and TAG breakdown were significantly altered in developing siliques from transgenic lines compared to wild-type plants. The seed-specific over-expression of AIL7 also altered the expression profiles of many genes related to starch metabolism, photosynthesis and stress response, suggesting further roles for AIL7 in plants. These findings not only advance our understanding of the lipid biosynthetic pathway in seeds, but also provide evidence for additional functions of AIL7, which could prove valuable in downstream breeding and/or metabolic engineering endeavors.

摘要

AIL7 过表达通过调节相关基因的转录来调节拟南芥发育种子中的脂肪酸生物合成和三酰基甘油积累。种子脂肪酸 (FAs) 和三酰基甘油 (TAG) 对植物的许多功能有贡献,种子脂质在食品、饲料和工业中有广泛的应用。因此,人们投入了大量的精力来揭示负责精细调节种子中脂质生物合成途径的调控级联,部分通过 LEAFY COTYLEDON1、ABSCISSIC ACID INSENSITIVE 3、FUSCA3 和 LEC2 (LAFL) 转录因子的作用来调节。尽管 AINTEGUMENTA-LIKE 7 (AIL7) 参与分生组织功能和芽序,但它在脂质生物合成中的作用尚未得到评估。在这里,我们生成了 AIL7 种子特异性过表达系,并发现它们在 FA 组成和种子中总脂质积累方面表现出显著变化。与野生型相比,转基因系的种子和幼苗也表现出形态偏差。相应地,RNA-Seq 分析表明,与野生型植物相比,转基因系发育中的蒴果中许多与 FA 生物合成和 TAG 分解相关的基因表达显著改变。AIL7 的种子特异性过表达也改变了与淀粉代谢、光合作用和应激反应相关的许多基因的表达谱,这表明 AIL7 在植物中具有进一步的作用。这些发现不仅提高了我们对种子中脂质生物合成途径的理解,而且为 AIL7 的其他功能提供了证据,这可能在下游的繁殖和/或代谢工程努力中具有价值。

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