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Seed Biofortification and Phytic Acid Reduction: A Conflict of Interest for the Plant?

机译:种子生物强化和植酸减少:植物的利益冲突?

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摘要

Most of the phosphorus in seeds is accumulated in the form of phytic acid (myo-inositol-1,2,3,4,5,6-hexakisphosphate, InsP6). This molecule is a strong chelator of cations important for nutrition, such as iron, zinc, magnesium, and calcium. For this reason, InsP6 is considered an antinutritional factor. In recent years, efforts to biofortify seeds through the generation of low phytic acid (lpa) mutants have been noteworthy. Moreover, genes involved in the biosynthesis and accumulation of this molecule have been isolated and characterized in different species. Beyond its role in phosphorus storage, phytic acid is a very important signaling molecule involved in different regulatory processes during plant development and responses to different stimuli. Consequently, many lpa mutants show different negative pleitotropic effects. The strength of these pleiotropic effects depends on the specific mutated gene, possible functional redundancy, the nature of the mutation, and the spatio-temporal expression of the gene. Breeding programs or transgenic approaches aimed at development of new lpa mutants must take into consideration these different aspects in order to maximize the utility of these mutants.
机译:种子中的大多数磷都以植酸的形式积累(肌醇-1,2,3,4,5,6-六六磷酸,InsP6)。该分子是对营养至关重要的阳离子的强螯合剂,例如铁,锌,镁和钙。因此,InsP6被认为是抗营养因子。近年来,通过低植酸(lpa)突变体的生物强化种子的努力已经引起人们的注意。此外,已经分离并在不同物种中鉴定了涉及该分子的生物合成和积累的基因。植酸除了在磷的储存中起着重要的作用外,它还是一种非常重要的信号分子,参与植物发育过程中的不同调控过程以及对不同刺激的反应。因此,许多lpa突变体表现出不同的负多效性作用。这些多效效应的强度取决于特定的突变基因,可能的功能冗余,突变的性质以及基因的时空表达。旨在开发新的lpa突变体的育种程序或转基因方法必须考虑这些不同方面,以最大程度地利用这些突变体。

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