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根-茎-根铁在异质铁供应条件下生长的黄瓜植株中的迁移。

Root-shoot-root Fe translocation in cucumber plants grown in a heterogeneous Fe provision.

机构信息

Faculty of Science and Technology, Free University of Bozen-Bolzano, I-39100, Bolzano, Italy.

Faculty of Science and Technology, Free University of Bozen-Bolzano, I-39100, Bolzano, Italy.

出版信息

Plant Sci. 2020 Apr;293:110431. doi: 10.1016/j.plantsci.2020.110431. Epub 2020 Jan 30.

Abstract

Iron (Fe) is an essential micronutrient for plant life and development. However, in soil, Fe bioavailability is often limited and variable in space and time, thus different regions of the same root system might be exposed to different nutrient provisions. Few studies showed that the response to variable Fe provision is controlled at local and systemic levels, albeit the identity of the signals involved is still elusive. Iron itself was suggested as local mediator, whilst hormones were proposed for the long-distance signalling pathway. Therefore, the aim of this work was to assess whether Fe, when localized in a restricted area of the root system, might be involved in both local and systemic signaling. The combination of resupply experiments in a split-root system, the use of Fe isotope and chemical imaging techniques allowed tracing Fe movement within cucumber plants. Soon after the resupply, Fe is distributed to the whole plant, likely to overcome a minimum Fe concentration threshold aimed at repressing the deficiency response. Iron was then preferentially translocated to leaves and, only afterwards, the root system was completely resupplied. Collectively, these observations might thus highlight a root-to-shoot-to-root Fe translocation route in cucumber plants grown on a patchy nutrient substrate.

摘要

铁(Fe)是植物生命和发育所必需的微量元素。然而,在土壤中,Fe 的生物利用度通常是有限的,并且在空间和时间上是可变的,因此同一根系的不同区域可能会接触到不同的养分供应。很少有研究表明,对可变 Fe 供应的响应是在局部和系统水平上控制的,尽管涉及的信号的身份仍然难以捉摸。Fe 本身被认为是局部介质,而激素则被认为是长距离信号通路的介质。因此,本工作的目的是评估 Fe 局部供应是否可能参与局部和系统信号。在分根系统中进行再供应实验,使用 Fe 同位素和化学成像技术的组合,允许追踪黄瓜植物内 Fe 的移动。再供应后不久,Fe 就会分布到整个植物中,可能是为了克服旨在抑制缺乏反应的最低 Fe 浓度阈值。然后,Fe 优先被转运到叶片中,并且只有在这之后,根系才会被完全补充。总的来说,这些观察结果可能突出了在斑块状养分基质上生长的黄瓜植物中根到茎到根的 Fe 转运途径。

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