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茉莉酸信号转导控制水稻耐盐胁迫的正负效应子。

Jasmonate signaling controls negative and positive effectors of salt stress tolerance in rice.

机构信息

Institut de Biologie Moléculaire des Plantes (IBMP) du CNRS, Université de Strasbourg, Strasbourg, France.

DIADE, Institut de Recherche et de Développement (IRD), Université de Montpellier, Montpellier, France.

出版信息

J Exp Bot. 2023 May 19;74(10):3220-3239. doi: 10.1093/jxb/erad086.

DOI:10.1093/jxb/erad086
PMID:36879437
Abstract

Plant responses to salt exposure involve large reconfigurations of hormonal pathways that orchestrate physiological changes towards tolerance. Jasmonate (JA) hormones are essential to withstand biotic and abiotic assaults, but their roles in salt tolerance remain unclear. Here we describe the dynamics of JA metabolism and signaling in root and leaf tissue of rice, a plant species that is highly exposed and sensitive to salt. Roots activate the JA pathway in an early pulse, while the second leaf displays a biphasic JA response with peaks at 1 h and 3 d post-exposure. Based on higher salt tolerance of a rice JA-deficient mutant (aoc), we examined, through kinetic transcriptome and physiological analysis, the salt-triggered processes that are under JA control. Profound genotype-differential features emerged that could underlie the observed phenotypes. Abscisic acid (ABA) content and ABA-dependent water deprivation responses were impaired in aoc shoots. Moreover, aoc accumulated more Na+ in roots, and less in leaves, with reduced ion translocation correlating with root derepression of the HAK4 Na+ transporter gene. Distinct reactive oxygen species scavengers were also stronger in aoc leaves, along with reduced senescence and chlorophyll catabolism markers. Collectively, our results identify contrasted contributions of JA signaling to different sectors of the salt stress response in rice.

摘要

植物对盐暴露的反应涉及激素途径的大规模重新配置,这些激素途径协调了朝向耐受的生理变化。茉莉酸(JA)激素对于耐受生物和非生物攻击至关重要,但它们在耐盐性中的作用仍不清楚。在这里,我们描述了 JA 代谢和信号转导在水稻根和叶组织中的动态,水稻是一种高度暴露和敏感于盐的植物物种。根在早期脉冲中激活 JA 途径,而第二片叶子在暴露后 1 小时和 3 天显示出双峰 JA 反应。基于 JA 缺陷突变体(aoc)对盐具有更高的耐受性,我们通过动态转录组和生理分析检查了 JA 控制的盐触发过程。出现了明显的基因型差异特征,这可能是观察到的表型的基础。aoc 植株中的脱落酸(ABA)含量和 ABA 依赖性水分剥夺反应受损。此外,aoc 在根中积累了更多的 Na+,在叶中积累了更少的 Na+,离子转运减少与 HAK4 Na+转运基因在根中的去阻遏相关。aoc 叶片中也有更强的活性氧清除剂,同时衰老和叶绿素分解标志物减少。总的来说,我们的结果确定了 JA 信号在水稻盐胁迫反应的不同部分中的对比贡献。

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