首页> 美国卫生研究院文献>The Plant Cell >Interaction between the bHLH Transcription Factor FIT and ETHYLENE INSENSITIVE3/ETHYLENE INSENSITIVE3-LIKE1 Reveals Molecular Linkage between the Regulation of Iron Acquisition and Ethylene Signaling in Arabidopsis
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Interaction between the bHLH Transcription Factor FIT and ETHYLENE INSENSITIVE3/ETHYLENE INSENSITIVE3-LIKE1 Reveals Molecular Linkage between the Regulation of Iron Acquisition and Ethylene Signaling in Arabidopsis

机译:bHLH转录因子FIT和乙烯不敏感3 /乙烯不敏感3-LIKE1之间的相互作用揭示了拟南芥中铁的吸收调控与乙烯信号传导之间的分子联系。

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摘要

Understanding the regulation of key genes involved in plant iron acquisition is of crucial importance for breeding of micronutrient-enriched crops. The basic helix-loop-helix protein FER-LIKE FE DEFICIENCY-INDUCED TRANSCRIPTION FACTOR (FIT), a central regulator of Fe acquisition in roots, is regulated by environmental cues and internal requirements for iron at the transcriptional and posttranscriptional levels. The plant stress hormone ethylene promotes iron acquisition, but the molecular basis for this remained unknown. Here, we demonstrate a direct molecular link between ethylene signaling and FIT. We identified ETHYLENE INSENSITIVE3 (EIN3) and ETHYLENE INSENSITIVE3-LIKE1 (EIL1) in a screen for direct FIT interaction partners and validated their physical interaction in planta. We demonstrate that the ein3 eil1 transcriptome was affected to a greater extent upon iron deficiency than normal iron compared with the wild type. Ethylene signaling by way of EIN3/EIL1 was required for full-level FIT accumulation. FIT levels were reduced upon application of aminoethoxyvinylglycine and in the ein3 eil1 background. MG132 could restore FIT levels. We propose that upon ethylene signaling, FIT is less susceptible to proteasomal degradation, presumably due to a physical interaction between FIT and EIN3/EIL1. Increased FIT abundance then leads to the high level of expression of genes required for Fe acquisition. This way, ethylene is one of the signals that triggers Fe deficiency responses at the transcriptional and posttranscriptional levels.
机译:了解富含植物铁的关键基因的调控对于富含微量元素的农作物的育种至关重要。基本的螺旋-环-螺旋蛋白FER-like FE缺陷诱导转录因子(FIT)是根中Fe吸收的主要调节剂,在转录和转录后水平受到环境提示和铁的内部需求的调节。植物逆境激素乙烯促进铁的获取,但是其分子基础仍然未知。在这里,我们证明了乙烯信号传导和FIT之间的直接分子联系。我们在直接FIT相互作用伙伴的筛选中确定了乙烯不敏感3(EIN3)和乙烯不敏感3-LIKE1(EIL1),并验证了它们在植物中的物理相互作用。我们证明,与野生型铁相比,ein3 eil1转录组在铁缺乏时比正常铁受到的影响更大。全水平FIT积累需要通过EIN3 / EIL1发出乙烯信号。应用氨基乙氧基乙烯基甘氨酸和在ein3 eil1背景下FIT水平降低。 MG132可以恢复FIT水平。我们提出,在乙烯信号传导下,FIT不太容易被蛋白酶体降解,这可能是由于FIT与EIN3 / EIL1之间的物理相互作用所致。 FIT丰度增加会导致获得铁所需基因的高水平表达。这样,乙烯是在转录和转录后水平上触发铁缺乏反应的信号之一。

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