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根际细菌介导的拟南芥根中铁缺乏反应的激活:对铁状态和信号传导的影响

Rhizobacteria-Mediated Activation of the Fe Deficiency Response in Arabidopsis Roots: Impact on Fe Status and Signaling.

作者信息

Verbon Eline H, Trapet Pauline L, Kruijs Sophie, Temple-Boyer-Dury Coline, Rouwenhorst T Gerrit, Pieterse Corné M J

机构信息

Plant-Microbe Interactions, Department of Biology, Science4Life, Utrecht University, Utrecht, Netherlands.

Ecology and Biodiversity, Department of Biology, Science4Life, Utrecht University, Utrecht, Netherlands.

出版信息

Front Plant Sci. 2019 Jul 12;10:909. doi: 10.3389/fpls.2019.00909. eCollection 2019.

Abstract

The beneficial root-colonizing rhizobacterium WCS417 stimulates plant growth and induces systemic resistance against a broad spectrum of plant diseases. In (Arabidopsis), the root transcriptional response to WCS417 shows significant overlap with the root response to iron (Fe) starvation, including activation of the marker genes and . Here, we investigated how colonization of Arabidopsis roots by WCS417 impacts Fe homeostasis in roots and shoots. Under Fe-sufficient conditions, root colonization by WCS417 induced a transient Fe deficiency response in the root and elevated both the total amount of Fe in the shoot and the shoot fresh weight. When plants were grown under Fe-starvation conditions, WCS417 still promoted plant growth, but did not increase the total amount of Fe, resulting in chlorosis. Thus, increased Fe uptake in response to WCS417 is essential to maintain Fe homeostasis in the more rapidly growing plant. As the WCS417-induced Fe deficiency response is known to require a shoot-derived signal, we tested whether the Fe deficiency response is activated in response to an increased Fe demand in the more rapidly growing shoot. Exogenous application of Fe to the leaves to reduce a potential shoot Fe shortage did not prevent WCS417-mediated induction of the Fe deficiency response in the roots. Moreover, the leaf Fe status-dependent shoot-to-root signaling mutant , which is impaired in the phloem-specific Fe transporter OPT3, still up-regulated the Fe deficiency response genes and in response to WCS417. Collectively, our results suggest that the WCS417-induced Fe deficiency response in the root is controlled by a shoot-to-root signaling system that functions independently of both leaf Fe status and OPT3.

摘要

有益的根际定殖根瘤菌WCS417可刺激植物生长,并诱导对多种植物病害的系统抗性。在拟南芥中,根系对WCS417的转录反应与对铁(Fe)饥饿的根系反应显示出显著重叠,包括标记基因和的激活。在这里,我们研究了WCS417定殖拟南芥根系如何影响根和地上部的铁稳态。在铁充足的条件下,WCS417定殖根系会在根中诱导短暂的铁缺乏反应,并增加地上部铁的总量和地上部鲜重。当植物在铁饥饿条件下生长时,WCS417仍能促进植物生长,但不会增加铁的总量,导致黄化。因此,响应WCS417增加铁的吸收对于在生长较快的植物中维持铁稳态至关重要。由于已知WCS417诱导的铁缺乏反应需要来自地上部的信号,我们测试了铁缺乏反应是否是响应生长较快的地上部对铁需求的增加而被激活的。向叶片外源施用铁以减少潜在的地上部铁短缺并不能阻止WCS417介导的根系中铁缺乏反应的诱导。此外,韧皮部特异性铁转运蛋白OPT3受损的叶片铁状态依赖性地上部到根系信号突变体,在响应WCS417时仍上调铁缺乏反应基因和。总体而言,我们的结果表明,根中WCS417诱导的铁缺乏反应受地上部到根系信号系统控制,该系统独立于叶片铁状态和OPT3发挥作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e231/6639660/98d178fe91a4/fpls-10-00909-g001.jpg

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