Division of Plant Sciences, C.S. Bond Life Sciences Center, University of Missouri, Columbia, MO, 65211, USA.
Department of Chemistry, University of Missouri, Columbia, MO, 65211, USA.
Plant Cell Environ. 2018 Oct;41(10):2263-2276. doi: 10.1111/pce.13192. Epub 2018 Jun 19.
The OLIGOPEPTIDE TRANSPORTER 3 (OPT3) has recently been identified as a component of the systemic network mediating iron (Fe) deficiency responses in Arabidopsis. Reduced expression of OPT3 induces an over accumulation of Fe in roots and leaves, due in part by an elevated expression of the IRON-REGULATED TRANSPORTER 1. Here we show however, that opt3 leaves display a transcriptional program consistent with an Fe overload, suggesting that Fe excess is properly sensed in opt3 leaves and that the OPT3-mediated shoot-to-root signaling is critical to prevent a systemic Fe overload. We also took advantage of the tissue-specific localization of OPT3, together with other Fe-responsive genes, to determine the timing and location of early transcriptional events during Fe limitation and resupply. Our results show that the leaf vasculature responds more rapidly than roots to both Fe deprivation and resupply, suggesting that the leaf vasculature is within the first tissues that sense and respond to changes in Fe availability. Our data highlight the importance of the leaf vasculature in Fe homeostasis by sensing changes in apoplastic levels of Fe coming through the xylem and relaying this information back to roots via the phloem to regulate Fe uptake at the root level.
寡肽转运蛋白 3(OPT3)最近被鉴定为系统网络的一个组成部分,该网络介导拟南芥铁(Fe)缺乏反应。由于铁调节转运蛋白 1 的表达升高,OPT3 表达减少会导致根和叶中 Fe 的过度积累。然而,我们在这里表明,opt3 叶片显示出与 Fe 过载一致的转录程序,这表明 opt3 叶片中正确感知到 Fe 过量,并且 OPT3 介导的地上部到根部的信号对于防止系统性 Fe 过载至关重要。我们还利用 OPT3 与其他 Fe 响应基因的组织特异性定位,来确定在 Fe 限制和再供应期间早期转录事件的时间和位置。我们的结果表明,叶片脉管系统对 Fe 剥夺和再供应的反应比根更快,这表明叶片脉管系统是最早感知和响应 Fe 供应变化的组织之一。我们的数据通过感测通过木质部进入的质外体 Fe 水平的变化,并通过韧皮部将此信息传递回根部来调节根部的 Fe 摄取,从而强调了叶片脉管系统在 Fe 稳态中的重要性。