School of Food and Biological Engineering, Hefei University of Technology, Hefei, 230009, China.
Plant J. 2023 Apr;114(1):193-208. doi: 10.1111/tpj.16130. Epub 2023 Feb 17.
Iron (Fe) is an indispensable trace mineral element for the normal growth of plants, and it is involved in different biological processes; Fe shortage in plants can induce chlorosis and yield loss. The objective of this research is to identify novel genes that participated in the regulation of Fe-deficiency stress in Arabidopsis thaliana. A basic helix-loop-helix (bHLH) transcription factor (MYC1) was identified to be interacting with the FER-LIKE IRON DEFICIENCY-INDUCED TRANSCRIPTION FACTOR (FIT) using a yeast-two-hybrid assay. Transcript-level analysis showed that there was a decrease in MYC1 expression in Arabidopsis to cope with Fe-deficiency stress. Functional deficiency of MYC1 in Arabidopsis leads to an increase in Fe-deficiency tolerance and Fe-accumulation, whereas MYC1-overexpressing plants have an enhanced sensitivity to Fe-deficiency stress. Additionally, MYC1 inhibited the formation of FIT and bHLH38/39 heterodimers, which suppressed the expressed level for Fe acquisition genes FRO2 and IRT1 during Fe-deficiency stress. These results showed that MYC1 functions as a negative modulator of the Fe-deficiency stress response by inhibiting the formation of FIT and bHLH38/39 heterodimers, thereby suppressing the binding of FIT and bHLH38/39 heterodimers to the promoters of FRO2 and IRT1 to modulate Fe intake during Fe-deficiency stress. Overall, the findings of this study elucidated the role of MYC1 in coping with Fe-deficiency stress, and provided potential targets for the developing of crop varieties resistant to Fe-deficiency stress.
铁(Fe)是植物正常生长所必需的痕量矿物质元素,它参与不同的生物过程;植物缺铁会导致黄化和产量损失。本研究的目的是鉴定参与拟南芥 Fe 缺乏胁迫调节的新基因。通过酵母双杂交试验鉴定到一个碱性螺旋-环-螺旋(bHLH)转录因子(MYC1)与 FER-LIKE IRON DEFICIENCY-INDUCED TRANSCRIPTION FACTOR(FIT)相互作用。转录水平分析表明,拟南芥中 MYC1 的表达减少以应对 Fe 缺乏胁迫。MYC1 在拟南芥中的功能缺陷导致对 Fe 缺乏胁迫的耐受性和 Fe 积累增加,而 MYC1 过表达植物对 Fe 缺乏胁迫的敏感性增强。此外,MYC1 抑制 FIT 和 bHLH38/39 异源二聚体的形成,从而抑制 Fe 摄取基因 FRO2 和 IRT1 在 Fe 缺乏胁迫下的表达水平。这些结果表明,MYC1 通过抑制 FIT 和 bHLH38/39 异源二聚体的形成来作为 Fe 缺乏胁迫反应的负调节剂,从而抑制 FIT 和 bHLH38/39 异源二聚体与 FRO2 和 IRT1 启动子的结合,在 Fe 缺乏胁迫下调节 Fe 摄取。总之,本研究结果阐明了 MYC1 在应对 Fe 缺乏胁迫中的作用,并为开发耐 Fe 缺乏胁迫的作物品种提供了潜在的靶标。