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kNACking on heaven’s door: how important are NAC transcription factors for leaf senescence and Fe/Zn remobilization to seeds?

机译:在天堂的门上敲门:NAC转录因子对于叶片衰老和Fe / Zn固定在种子上有多重要?

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摘要

Senescence is a coordinated process where a plant, or a part of it, engages in programmed cell death to salvage nutrients by remobilizing them to younger tissues or to developing seeds. As Fe and Zn deficiency are the two major nutritional disorders in humans, increased concentration of these nutrients through biofortification in cereal grains is a long-sought goal. Recent evidences point to a link between the onset of leaf senescence and increased Fe and Zn remobilization. In wheat, one member of the NAC (NAM, ATAF, and CUC) transcription factor (TF) family (NAM-B1) has a major role in the process, probably regulating key genes for the early onset of senescence, which results in higher Fe and Zn concentrations in grains. In rice, the most important staple food for nearly half of the world population, the NAM-B1 ortholog does not have the same function. However, other NAC proteins are related to senescence, and could be playing roles on the same remobilization pathway. Thus, these genes are potential tools for biofortification strategies in rice. Here we review the current knowledge on the relationship between senescence, Fe and Zn remobilization and the role of NAC TFs, with special attention to rice. We also propose a working model for OsNAC5, which would act on the regulation of nicotianamine (NA) synthesis and metal–NA remobilization.
机译:衰老是一个协调的过程,在此过程中,植物或植物的一部分参与程序性细胞死亡,通过将养分转移到年轻的组织或发育中的种子中来挽救养分。由于铁和锌的缺乏是人类的两个主要营养失调,因此通过生物强化谷物中的这些营养素的浓度增加是一个长期的目标。最近的证据表明,叶片衰老的开始与铁和锌固定化的增加之间存在联系。在小麦中,NAC(NAM,ATAF和CUC)转录因子(TF)家族(NAM-B1)的一个成员在该过程中起着重要作用,可能调节了衰老的早期发作的关键基因,从而导致衰老的初期谷物中的铁和锌含量。 NAM-B1直系同源物在稻米中是最接近世界人口一半的最重要的主食,其功能不相同。但是,其他NAC蛋白与衰老有关,并且可能在相同的固定途径中发挥作用。因此,这些基因是水稻生物强化策略的潜在工具。在这里,我们回顾了有关衰老,铁和锌固定化与NAC TF的作用之间的关系的当前知识,并特别注意了水稻。我们还提出了OsNAC5的工作模型,该模型将作用于烟碱胺(NA)合成和金属-NA固定化的调控。

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