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A Role for Auxin Redistribution in the Responses of the Root System Architecture to Phosphate Starvation in Arabidopsis

机译:生长素重新分布在根系体系结构对拟南芥磷饥饿的反应中的作用。

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摘要

The changes in root system architecture (RSA) triggered by phosphate (P) deprivation were studied in Arabidopsis (Arabidopsis thaliana) plants grown for 14 d on 1 mM or 3 µM P. Two different temporal phases were observed in the response of RSA to low P. First, lateral root (LR) development was promoted between days 7 and 11 after germination, but, after day 11, all root growth parameters were negatively affected, leading to a general reduction of primary root (PR) and LR lengths and of LR density. Low P availability had contrasting effects on various stages of LR development, with a marked inhibition of primordia initiation but a strong stimulation of activation of the initiated primordia. The involvement of auxin signaling in these morphological changes was investigated in wild-type plants treated with indole-3-acetic acid or 2,3,5-triiodobenzoic acid and in axr4-1, aux1-7, and eir1-1 mutants. Most effects of low P on RSA were dramatically modified in the mutants or hormone-treated wild-type plants. This shows that auxin plays a major role in the P starvation-induced changes of root development. From these data, we hypothesize that several aspects of the RSA response to low P are triggered by local modifications of auxin concentration. A model is proposed that postulates that P starvation results in (1) an overaccumulation of auxin in the apex of the PR and in young LRs, (2) an overaccumulation of auxin or a change in sensitivity to auxin in the lateral primordia, and (3) a decrease in auxin concentration in the lateral primordia initiation zone of the PR and in old laterals. Measurements of local changes in auxin concentrations induced by low P, either by direct quantification or by biosensor expression pattern (DR5::-glucuronidase reporter gene), are in line with these hypotheses. Furthermore, the observation that low P availability mimicked the action of auxin in promoting LR development in the alf3 mutant confirmed that P starvation stimulates primordia emergence through increased accumulation of auxin or change in sensitivity to auxin in the primordia. Both the strong effect of 2,3,5-triiodobenzoic acid and the phenotype of the auxin-transport mutants (aux1, eir1) suggest that low P availability modifies local auxin concentrations within the root system through changes in auxin transport rather than auxin synthesis.
机译:在1 mM或3 µM P上生长14 d的拟南芥(Arabidopsis thaliana)植物中,研究了由磷(P)剥夺引发的根系体系结构(RSA)的变化。观察到RSA对低磷的响应存在两个不同的时间阶段。 P.首先,发芽后第7天到第11天之间促进了侧根(LR)的发育,但是在第11天后,所有根生长参数均受到不利影响,从而导致初生根(PR)和LR长度普遍减少。 LR密度。低磷的可利用性对LR发育的各个阶段具有相反的影响,明显抑制了原基的启动,但是强烈刺激了原基的激活。在用吲哚-3-乙酸或2,3,5-三碘苯甲酸处理的野生型植物以及axr4-1,aux1-7和eir1-1突变体中研究了生长素信号传导参与这些形态变化。在突变体或激素处理的野生型植物中,低磷对RSA的大多数影响都得到了显着修饰。这表明生长素在磷饥饿诱导的根发育变化中起主要作用。从这些数据,我们假设RSA对低磷的响应的几个方面是由生长素浓度的局部改变触发的。提出了一个模型,该模型假定P饥饿导致(1)PR根尖和年轻LR中的生长素过度积累,(2)侧原基中的生长素过度积累或对生长素的敏感性变化,以及( 3)PR的外侧原基起始区和较旧的外侧中的生长素浓度降低。通过直接定量或通过生物传感器表达模式(DR5 ::-葡萄糖醛酸苷酶报道基因)来测量由低磷引起的生长素浓度的局部变化与这些假设相符。此外,低磷可用性模仿了生长素在alf3突变体中促进LR发育的作用的观察结果证实,磷饥饿通过增加生长素的积累或改变原基中对生长素的敏感性来刺激原基的出现。 2,3,5-三碘苯甲酸的强效作用和生长素转运突变体(aux1,eir1)的表型都表明,低磷可用性通过生长素转运而不是生长素合成改变根系内局部生长素浓度。

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  • 来源
    《Plant Physiology》 |2005年第4期|p.00002061-00002074|共14页
  • 作者单位

    Laboratoire de Biochimie and Physiologie Moléculaire des Plantes, Unité Mixte de Recherche 5004, Institut National de la Recherche Agronomique/Centre National de la Recherche Scientifique/Ecole Nationale Supérieure Agronomique de Montpellier/Université Montpellier 2, F–34060 Montpellier cedex 1, France (P.N., G.C., M.R., P.D.)Laboratoire d'Ecophysiologie des Plantes sous Stress Environnementaux, Unité Mixte de Recherche 759, Institut National de la Recherche Agronomique/Ecole Nationale Supérieure Agronomique de Montpellier, F–34060 Montpellier cedex 1, France (B.M.)and Laboratory of Plant Physiology and Biochemistry, University of Antwerp, Campus Drie Eiken, B-2610 Wilrijk, Belgium (A.A., H.V.O.);

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