沉默 TdIPK1 基因可提高硬质小麦籽粒中的微量营养素浓度

IF 5.4 Q1 PLANT SCIENCES Current Plant Biology Pub Date : 2023-09-01 DOI:10.1016/j.cpb.2023.100309
Arianna Frittelli , Samuela Palombieri , Giulia Quagliata , Silvia Celletti , Stefania Astolfi , Ermelinda Botticella , Stefania Masci , Pasquale De Vita , Mirko Volpato , Francesco Sestili
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引用次数: 0

摘要

植酸(PA)是磷在果仁中的主要贮存形式,由于能与铁(Fe)、锌(Zn)、钾(K)、钙(Ca)和镁(Mg)等必需矿物质结合,因此被认为是一种抗营养化合物,从而限制了这些矿物质的供应,尤其是对于主要以主食作物为主食的人群。该方法的基础是通过基因组定位诱导局部病变(TILLING)方法,沉默参与 PA 生物合成途径最后一步的肌醇五磷酸 2- 激酶 1(IPK1)的编码基因。确定了 IPK1 同源等位基因的单基因敲除突变体,并将两个突变体杂交成金字塔型。尽管分析了大量植株(F2 和 F3 后代),但没有发现同时缺乏两个同源基因的基因型,这表明 IPK1 的表达对于穗中种子的形成和/或植物的发芽和发育至关重要。单个基因型的特征突出表明,与对照野生型相比,部分 TdIPK1-B1- 突变体的核仁中 PA 的积累较低,而必需微量元素(铁、锰、锌)的含量较高。而 TdIPK1-A1- 突变体的矿物质积累模式则不同,它们只表现出较多的钾积累。
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The silencing of TdIPK1 genes enhances micronutrient concentration in durum wheat grain

Phytic acid (PA) is the main storage form of phosphorus in kernel and is considered an anti-nutritional compound because of its ability to bind to essential minerals such as iron (Fe), zinc (Zn), potassium (K), calcium (Ca) and magnesium (Mg), thus limiting their availability, especially for populations whose diet is largely based on staple crops.

This study reports a promising nutrient biofortification approach of durum wheat. The approach was based on the silencing of the gene encoding the inositol pentakisphosphate 2- kinase 1 (IPK1), involved in the last step of the PA biosynthetic pathway, through a Targeting Induced Local Lesions IN Genomes (TILLING) approach. Single knockout mutants for the IPK1 homeoalleles were identified and crossed to pyramid the two mutations. Although an elevated number of plants (F2 and F3 progenies) were analysed, no genotypes lacking both the homeoalleles were recovered, suggesting that the expression of IPK1 is crucial for seed formation in the spike and/or for plant germination and development.

The characterization of the single null genotypes highlighted that the partial TdIPK1-B1- mutants showed a lower accumulation of PA in the kernel along with a higher content of essential microelements (Fe, Mn, Zn) compared to the control wild-type. The pattern of mineral accumulation was different for the TdIPK1-A1- mutants which only presented a greater accumulation of K.

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来源期刊
Current Plant Biology
Current Plant Biology Agricultural and Biological Sciences-Plant Science
CiteScore
10.90
自引率
1.90%
发文量
32
审稿时长
50 days
期刊介绍: Current Plant Biology aims to acknowledge and encourage interdisciplinary research in fundamental plant sciences with scope to address crop improvement, biodiversity, nutrition and human health. It publishes review articles, original research papers, method papers and short articles in plant research fields, such as systems biology, cell biology, genetics, epigenetics, mathematical modeling, signal transduction, plant-microbe interactions, synthetic biology, developmental biology, biochemistry, molecular biology, physiology, biotechnologies, bioinformatics and plant genomic resources.
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