Cooperative functioning between phenylalanine ammonia lyase and isochorismate synthase activities contributes to salicylic acid biosynthesis in soybean

苯丙氨酸解氨酶 丁香假单胞菌 水杨酸 大豆疫霉 拟南芥 生物合成 生物 病菌 植物对草食的防御 裂解酶 疫霉菌 系统获得性抵抗 生物化学 植物抗病性 拟南芥 微生物学 苯丙氨酸 基因 氨基酸 植物 突变体
作者
M.B. Shine,Jung-Wook Yang,Mohamed El-Habbak,Padmaja Nagyabhyru,Daqi Fu,Duroy A. Navarre,Said A. Ghabrial,Pradeep Kachroo,Aardra Kachroo
出处
期刊:New Phytologist [Wiley]
卷期号:212 (3): 627-636 被引量:147
标识
DOI:10.1111/nph.14078
摘要

Salicylic acid (SA), an essential regulator of plant defense, is derived from chorismate via either the phenylalanine ammonia lyase (PAL) or the isochorismate synthase (ICS) catalyzed steps. The ICS pathway is thought to be the primary contributor of defense-related SA, at least in Arabidopsis. We investigated the relative contributions of PAL and ICS to defense-related SA accumulation in soybean (Glycine max). Soybean plants silenced for five PAL isoforms or two ICS isoforms were analyzed for SA concentrations and SA-derived defense responses to the hemibiotrophic pathogens Pseudomonas syringae and Phytophthora sojae. We show that, unlike in Arabidopsis, PAL and ICS pathways are equally important for pathogen-induced SA biosynthesis in soybean. Knock-down of either pathway shuts down SA biosynthesis and abrogates pathogen resistance. Moreover, unlike in Arabidopsis, pathogen infection is associated with the suppression of ICS gene expression. Pathogen-induced biosynthesis of SA via the PAL pathway correlates inversely with phenylalanine concentrations. Although infections with either virulent or avirulent strains of the pathogens increase SA concentrations, resistance protein-mediated response to avirulent P. sojae strains may function in an SA-independent manner. These results show that PAL- and ICS-catalyzed reactions function cooperatively in soybean defense and highlight the importance of PAL in pathogen-induced SA biosynthesis.

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