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比较表达谱分析揭示了根质外体在局部磷响应中的作用。

Comparative expression profiling reveals a role of the root apoplast in local phosphate response.

作者信息

Hoehenwarter Wolfgang, Mönchgesang Susann, Neumann Steffen, Majovsky Petra, Abel Steffen, Müller Jens

机构信息

Proteome Analytics Research Group, Leibniz Institute of Plant Biochemistry, D-06120, Halle (Saale), Germany.

Department of Stress and Developmental Biology, Leibniz Institute of Plant Biochemistry, D-06120, Halle (Saale), Germany.

出版信息

BMC Plant Biol. 2016 Apr 28;16:106. doi: 10.1186/s12870-016-0790-8.

Abstract

BACKGROUND

Plant adaptation to limited phosphate availability comprises a wide range of responses to conserve and remobilize internal phosphate sources and to enhance phosphate acquisition. Vigorous restructuring of root system architecture provides a developmental strategy for topsoil exploration and phosphate scavenging. Changes in external phosphate availability are locally sensed at root tips and adjust root growth by modulating cell expansion and cell division. The functionally interacting Arabidopsis genes, LOW PHOSPHATE RESPONSE 1 and 2 (LPR1/LPR2) and PHOSPHATE DEFICIENCY RESPONSE 2 (PDR2), are key components of root phosphate sensing. We recently demonstrated that the LOW PHOSPHATE RESPONSE 1 - PHOSPHATE DEFICIENCY RESPONSE 2 (LPR1-PDR2) module mediates apoplastic deposition of ferric iron (Fe(3+)) in the growing root tip during phosphate limitation. Iron deposition coincides with sites of reactive oxygen species generation and triggers cell wall thickening and callose accumulation, which interfere with cell-to-cell communication and inhibit root growth.

RESULTS

We took advantage of the opposite phosphate-conditional root phenotype of the phosphate deficiency response 2 mutant (hypersensitive) and low phosphate response 1 and 2 double mutant (insensitive) to investigate the phosphate dependent regulation of gene and protein expression in roots using genome-wide transcriptome and proteome analysis. We observed an overrepresentation of genes and proteins that are involved in the regulation of iron homeostasis, cell wall remodeling and reactive oxygen species formation, and we highlight a number of candidate genes with a potential function in root adaptation to limited phosphate availability. Our experiments reveal that FERRIC REDUCTASE DEFECTIVE 3 mediated, apoplastic iron redistribution, but not intracellular iron uptake and iron storage, triggers phosphate-dependent root growth modulation. We further highlight expressional changes of several cell wall-modifying enzymes and provide evidence for adjustment of the pectin network at sites of iron accumulation in the root.

CONCLUSION

Our study reveals new aspects of the elaborate interplay between phosphate starvation responses and changes in iron homeostasis. The results emphasize the importance of apoplastic iron redistribution to mediate phosphate-dependent root growth adjustment and suggest an important role for citrate in phosphate-dependent apoplastic iron transport. We further demonstrate that root growth modulation correlates with an altered expression of cell wall modifying enzymes and changes in the pectin network of the phosphate-deprived root tip, supporting the hypothesis that pectins are involved in iron binding and/or phosphate mobilization.

摘要

背景

植物对有限磷有效性的适应包括一系列保存和重新利用内部磷源以及增强磷获取的反应。根系结构的剧烈重塑为表土探索和磷 scavenging 提供了一种发育策略。外部磷有效性的变化在根尖局部被感知,并通过调节细胞扩张和细胞分裂来调节根的生长。功能相互作用的拟南芥基因,低磷反应 1 和 2(LPR1/LPR2)以及磷缺乏反应 2(PDR2),是根磷感知的关键组成部分。我们最近证明,低磷反应 1 - 磷缺乏反应 2(LPR1-PDR2)模块在磷限制期间介导了三价铁(Fe(3+))在生长根尖中的质外体沉积。铁沉积与活性氧产生的部位一致,并触发细胞壁增厚和胼胝质积累,这会干扰细胞间通讯并抑制根的生长。

结果

我们利用磷缺乏反应 2 突变体(超敏感)和低磷反应 1 和 2 双突变体(不敏感)相反的磷条件根表型,通过全基因组转录组和蛋白质组分析来研究根中基因和蛋白质表达的磷依赖性调节。我们观察到参与铁稳态调节、细胞壁重塑和活性氧形成的基因和蛋白质的过度表达,并突出了一些在根适应有限磷有效性方面具有潜在功能的候选基因。我们的实验表明,三价铁还原酶缺陷 3 介导的质外体铁重新分布,而不是细胞内铁摄取和铁储存,触发了磷依赖性根生长调节。我们进一步突出了几种细胞壁修饰酶的表达变化,并为根中铁积累部位果胶网络的调整提供了证据。

结论

我们的研究揭示了磷饥饿反应与铁稳态变化之间复杂相互作用的新方面。结果强调了质外体铁重新分布对介导磷依赖性根生长调节的重要性,并表明柠檬酸在磷依赖性质外体铁运输中起重要作用。我们进一步证明根生长调节与细胞壁修饰酶表达的改变以及缺磷根尖果胶网络的变化相关,支持了果胶参与铁结合和/或磷动员的假设。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0814/4849097/18b0670b77b7/12870_2016_790_Fig1_HTML.jpg

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