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Dual Regulation Role of GH3.5 in Salicylic Acid and Auxin Signaling during Arabidopsis-Pseudomonas syringae Interaction1[W][OA]

机译:GH3.5在拟南芥-丁香假单胞菌相互作用中的水杨酸和生长素信号转导中的双重调控作用[W] [OA]

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摘要

Salicylic acid (SA) plays a central role in plant disease resistance, and emerging evidence indicates that auxin, an essential plant hormone in regulating plant growth and development, is involved in plant disease susceptibility. GH3.5, a member of the GH3 family of early auxin-responsive genes in Arabidopsis (Arabidopsis thaliana), encodes a protein possessing in vitro adenylation activity on both indole-3-acetic acid (IAA) and SA. Here, we show that GH3.5 acts as a bifunctional modulator in both SA and auxin signaling during pathogen infection. Overexpression of the GH3.5 gene in an activation-tagged mutant gh3.5-1D led to elevated accumulation of SA and increased expression of PR-1 in local and systemic tissues in response to avirulent pathogens. In contrast, two T-DNA insertional mutations of GH3.5 partially compromised the systemic acquired resistance associated with diminished PR-1 expression in systemic tissues. The gh3.5-1D mutant also accumulated high levels of free IAA after pathogen infection and impaired different resistance-gene-mediated resistance, which was also observed in the GH3.6 activation-tagged mutant dfl1-D that impacted the auxin pathway, indicating an important role of GH3.5/GH3.6 in disease susceptibility. Furthermore, microarray analysis showed that the SA and auxin pathways were simultaneously augmented in gh3.5-1D after infection with an avirulent pathogen. The SA pathway was amplified by GH3.5 through inducing SA-responsive genes and basal defense components, whereas the auxin pathway was derepressed through up-regulating IAA biosynthesis and down-regulating auxin repressor genes. Taken together, our data reveal novel regulatory functions of GH3.5 in the plant-pathogen interaction.
机译:水杨酸(SA)在植物抗病性中起着核心作用,并且新出现的证据表明生长素是调节植物生长和发育的重要植物激素,与植物病害的敏感性有关。 GH3.5是拟南芥(Arabidopsis thaliana)早期生长素应答基因GH3家族的成员,它编码一种对吲哚-3-乙酸(IAA)和SA均具有体外腺苷酸化活性的蛋白质。在这里,我们表明GH3.5在病原体感染期间在SA和生长素信号传导中均充当双功能调节剂。 GH3.5基因在活化标记突变体gh3.5-1D中的过表达导致SA和无毒病原体在局部和全身组织中SA积累增加和PR-1表达增加。相反,GH3.5的两个T-DNA插入突变部分损害了与全身组织中PR-1表达减少相关的全身获得性抗性。 gh3.5-1D突变体在病原体感染后也积累了高水平的游离IAA,并削弱了不同的抗性基因介导的抗性,这在影响生长素途径的GH3.6激活标记突变体dfl1-D中也观察到,表明GH3.5 / GH3.6在疾病易感性中的重要作用。此外,微阵列分析表明,感染无毒病原体后,gh3.5-1D中的SA和生长素途径同时增加。 GH3.5通过诱导SA反应基因和基础防御成分来扩增SA途径,而通过上调IAA生物合成和下调生长素抑制基因来抑制生长素途径。两者合计,我们的数据揭示了GH3.5在植物-病原体相互作用中的新型调控功能。

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